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/* BFD back-end for PDP-11 a.out binaries.
/* BFD back-end for PDP-11 a.out binaries.
   Copyright 2001 Free Software Foundation, Inc.
   Copyright 2001 Free Software Foundation, Inc.
 
 
This file is part of BFD, the Binary File Descriptor library.
This file is part of BFD, the Binary File Descriptor library.
 
 
This program is free software; you can redistribute it and/or modify
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
(at your option) any later version.
 
 
This program is distributed in the hope that it will be useful,
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
GNU General Public License for more details.
GNU General Public License for more details.
 
 
You should have received a copy of the GNU General Public License
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA. */
Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA. */
 
 
/* BFD backend for PDP-11, running 2.11BSD in particular.
/* BFD backend for PDP-11, running 2.11BSD in particular.
 
 
   This file was hacked up by looking hard at the existing vaxnetbsd
   This file was hacked up by looking hard at the existing vaxnetbsd
   back end and the header files in 2.11BSD.
   back end and the header files in 2.11BSD.
 
 
   TODO
   TODO
   * support for V7 file formats
   * support for V7 file formats
   * support for overlay object files (see 2.11 a.out(5))
   * support for overlay object files (see 2.11 a.out(5))
   * support for old and very old archives
   * support for old and very old archives
   (see 2.11 ar(5), historical section)
   (see 2.11 ar(5), historical section)
 
 
   Search for TODO to find other areas needing more work.  */
   Search for TODO to find other areas needing more work.  */
 
 
#define BYTES_IN_WORD   2
#define BYTES_IN_WORD   2
#define BYTES_IN_LONG   4
#define BYTES_IN_LONG   4
#define ARCH_SIZE       16
#define ARCH_SIZE       16
#undef TARGET_IS_BIG_ENDIAN_P
#undef TARGET_IS_BIG_ENDIAN_P
 
 
#define TARGET_PAGE_SIZE        1024
#define TARGET_PAGE_SIZE        1024
#define SEGMENT__SIZE   TARGET_PAGE_SIZE
#define SEGMENT__SIZE   TARGET_PAGE_SIZE
 
 
#define DEFAULT_ARCH    bfd_arch_pdp11
#define DEFAULT_ARCH    bfd_arch_pdp11
#define DEFAULT_MID     M_PDP11
#define DEFAULT_MID     M_PDP11
 
 
#define MY(OP) CAT(pdp11_aout_,OP)
#define MY(OP) CAT(pdp11_aout_,OP)
/* This needs to start with a.out so GDB knows it is an a.out variant.  */
/* This needs to start with a.out so GDB knows it is an a.out variant.  */
#define TARGETNAME "a.out-pdp11"
#define TARGETNAME "a.out-pdp11"
 
 
/* This is the normal load address for executables.  */
/* This is the normal load address for executables.  */
#define TEXT_START_ADDR         0
#define TEXT_START_ADDR         0
 
 
/* The header is not included in the text segment.  */
/* The header is not included in the text segment.  */
#define N_HEADER_IN_TEXT(x)     0
#define N_HEADER_IN_TEXT(x)     0
 
 
/* There are no shared libraries.  */
/* There are no shared libraries.  */
#define N_SHARED_LIB(x)         0
#define N_SHARED_LIB(x)         0
 
 
/* There is no flags field.  */
/* There is no flags field.  */
#define N_FLAGS(exec)           0
#define N_FLAGS(exec)           0
 
 
#define N_SET_FLAGS(exec, flags) do { } while (0)
#define N_SET_FLAGS(exec, flags) do { } while (0)
#define N_BADMAG(x) (((x).a_info != OMAGIC) && \
#define N_BADMAG(x) (((x).a_info != OMAGIC) && \
                     ((x).a_info != NMAGIC) && \
                     ((x).a_info != NMAGIC) && \
                     ((x).a_info != A_MAGIC3) && \
                     ((x).a_info != A_MAGIC3) && \
                     ((x).a_info != A_MAGIC4) && \
                     ((x).a_info != A_MAGIC4) && \
                     ((x).a_info != A_MAGIC5) && \
                     ((x).a_info != A_MAGIC5) && \
                     ((x).a_info != A_MAGIC6))
                     ((x).a_info != A_MAGIC6))
 
 
#include "bfd.h"
#include "bfd.h"
 
 
#define external_exec pdp11_external_exec
#define external_exec pdp11_external_exec
struct pdp11_external_exec
struct pdp11_external_exec
  {
  {
    bfd_byte e_info[2]; /* magic number                         */
    bfd_byte e_info[2]; /* magic number                         */
    bfd_byte e_text[2]; /* length of text section in bytes      */
    bfd_byte e_text[2]; /* length of text section in bytes      */
    bfd_byte e_data[2]; /* length of data section in bytes      */
    bfd_byte e_data[2]; /* length of data section in bytes      */
    bfd_byte e_bss[2];  /* length of bss area in bytes          */
    bfd_byte e_bss[2];  /* length of bss area in bytes          */
    bfd_byte e_syms[2]; /* length of symbol table in bytes      */
    bfd_byte e_syms[2]; /* length of symbol table in bytes      */
    bfd_byte e_entry[2];        /* start address                        */
    bfd_byte e_entry[2];        /* start address                        */
    bfd_byte e_unused[2];       /* not used                             */
    bfd_byte e_unused[2];       /* not used                             */
    bfd_byte e_flag[2]; /* relocation info stripped             */
    bfd_byte e_flag[2]; /* relocation info stripped             */
    bfd_byte e_relocatable; /* ugly hack */
    bfd_byte e_relocatable; /* ugly hack */
  };
  };
 
 
#define EXEC_BYTES_SIZE (8 * 2)
#define EXEC_BYTES_SIZE (8 * 2)
 
 
#define A_MAGIC1        OMAGIC
#define A_MAGIC1        OMAGIC
#define OMAGIC          0407    /* ...object file or impure executable.  */
#define OMAGIC          0407    /* ...object file or impure executable.  */
#define A_MAGIC2        NMAGIC
#define A_MAGIC2        NMAGIC
#define NMAGIC          0410    /* pure executable.  */
#define NMAGIC          0410    /* pure executable.  */
#define ZMAGIC          0413    /* demand-paged executable.  */
#define ZMAGIC          0413    /* demand-paged executable.  */
#define A_MAGIC3        0411    /* separated I&D */
#define A_MAGIC3        0411    /* separated I&D */
#define A_MAGIC4        0405    /* overlay */
#define A_MAGIC4        0405    /* overlay */
#define A_MAGIC5        0430    /* auto-overlay (nonseparate) */
#define A_MAGIC5        0430    /* auto-overlay (nonseparate) */
#define A_MAGIC6        0431    /* auto-overlay (separate) */
#define A_MAGIC6        0431    /* auto-overlay (separate) */
#define QMAGIC          0
#define QMAGIC          0
#define BMAGIC          0
#define BMAGIC          0
 
 
#define A_FLAG_RELOC_STRIPPED   0x0001
#define A_FLAG_RELOC_STRIPPED   0x0001
 
 
#define external_nlist pdp11_external_nlist
#define external_nlist pdp11_external_nlist
struct pdp11_external_nlist
struct pdp11_external_nlist
  {
  {
    bfd_byte e_unused[2];       /* unused */
    bfd_byte e_unused[2];       /* unused */
    bfd_byte e_strx[2];         /* index into string table of name */
    bfd_byte e_strx[2];         /* index into string table of name */
    bfd_byte e_type[1];         /* type of symbol */
    bfd_byte e_type[1];         /* type of symbol */
    bfd_byte e_ovly[1];         /* overlay number */
    bfd_byte e_ovly[1];         /* overlay number */
    bfd_byte e_value[2];        /* value of symbol */
    bfd_byte e_value[2];        /* value of symbol */
  };
  };
 
 
#define EXTERNAL_NLIST_SIZE     8
#define EXTERNAL_NLIST_SIZE     8
 
 
#define N_TXTOFF(x)     (EXEC_BYTES_SIZE)
#define N_TXTOFF(x)     (EXEC_BYTES_SIZE)
#define N_DATOFF(x)     (N_TXTOFF(x) + (x).a_text)
#define N_DATOFF(x)     (N_TXTOFF(x) + (x).a_text)
#define N_TRELOFF(x)    (N_DATOFF(x) + (x).a_data)
#define N_TRELOFF(x)    (N_DATOFF(x) + (x).a_data)
#define N_DRELOFF(x)    (N_TRELOFF(x) + (x).a_trsize)
#define N_DRELOFF(x)    (N_TRELOFF(x) + (x).a_trsize)
#define N_SYMOFF(x)     (N_DRELOFF(x) + (x).a_drsize)
#define N_SYMOFF(x)     (N_DRELOFF(x) + (x).a_drsize)
#define N_STROFF(x)     (N_SYMOFF(x) + (x).a_syms)
#define N_STROFF(x)     (N_SYMOFF(x) + (x).a_syms)
 
 
#define WRITE_HEADERS(abfd, execp) pdp11_aout_write_headers (abfd, execp)
#define WRITE_HEADERS(abfd, execp) pdp11_aout_write_headers (abfd, execp)
 
 
#include "sysdep.h"
#include "sysdep.h"
#include "libbfd.h"
#include "libbfd.h"
#include "libaout.h"
#include "libaout.h"
 
 
#define SWAP_MAGIC(ext) bfd_getl16 (ext)
#define SWAP_MAGIC(ext) bfd_getl16 (ext)
 
 
#define MY_entry_is_text_address 1
#define MY_entry_is_text_address 1
 
 
#define MY_write_object_contents MY(write_object_contents)
#define MY_write_object_contents MY(write_object_contents)
static boolean MY(write_object_contents) PARAMS ((bfd *abfd));
static boolean MY(write_object_contents) PARAMS ((bfd *abfd));
#define MY_text_includes_header 1
#define MY_text_includes_header 1
 
 
bfd_vma         bfd_getp32         PARAMS ((const bfd_byte *));
bfd_vma         bfd_getp32         PARAMS ((const bfd_byte *));
bfd_signed_vma  bfd_getp_signed_32 PARAMS ((const bfd_byte *));
bfd_signed_vma  bfd_getp_signed_32 PARAMS ((const bfd_byte *));
void            bfd_putp32         PARAMS ((bfd_vma, bfd_byte *));
void            bfd_putp32         PARAMS ((bfd_vma, bfd_byte *));
 
 
#define MY_BFD_TARGET
#define MY_BFD_TARGET
 
 
#include "aout-target.h"
#include "aout-target.h"
 
 
const bfd_target MY(vec) =
const bfd_target MY(vec) =
{
{
  TARGETNAME,           /* name */
  TARGETNAME,           /* name */
  bfd_target_aout_flavour,
  bfd_target_aout_flavour,
  BFD_ENDIAN_LITTLE,            /* target byte order (little) */
  BFD_ENDIAN_LITTLE,            /* target byte order (little) */
  BFD_ENDIAN_LITTLE,            /* target headers byte order (little) */
  BFD_ENDIAN_LITTLE,            /* target headers byte order (little) */
  (HAS_RELOC | EXEC_P |         /* object flags */
  (HAS_RELOC | EXEC_P |         /* object flags */
   HAS_LINENO | HAS_DEBUG |
   HAS_LINENO | HAS_DEBUG |
   HAS_SYMS | HAS_LOCALS | WP_TEXT),
   HAS_SYMS | HAS_LOCALS | WP_TEXT),
  (SEC_HAS_CONTENTS | SEC_ALLOC | SEC_LOAD | SEC_RELOC | SEC_CODE | SEC_DATA),
  (SEC_HAS_CONTENTS | SEC_ALLOC | SEC_LOAD | SEC_RELOC | SEC_CODE | SEC_DATA),
  MY_symbol_leading_char,
  MY_symbol_leading_char,
  AR_PAD_CHAR,                  /* ar_pad_char */
  AR_PAD_CHAR,                  /* ar_pad_char */
  15,                           /* ar_max_namelen */
  15,                           /* ar_max_namelen */
  bfd_getl64, bfd_getl_signed_64, bfd_putl64,
  bfd_getl64, bfd_getl_signed_64, bfd_putl64,
     bfd_getp32, bfd_getp_signed_32, bfd_putp32,
     bfd_getp32, bfd_getp_signed_32, bfd_putp32,
     bfd_getl16, bfd_getl_signed_16, bfd_putl16, /* data */
     bfd_getl16, bfd_getl_signed_16, bfd_putl16, /* data */
  bfd_getl64, bfd_getl_signed_64, bfd_putl64,
  bfd_getl64, bfd_getl_signed_64, bfd_putl64,
     bfd_getp32, bfd_getp_signed_32, bfd_putp32,
     bfd_getp32, bfd_getp_signed_32, bfd_putp32,
     bfd_getl16, bfd_getl_signed_16, bfd_putl16, /* hdrs */
     bfd_getl16, bfd_getl_signed_16, bfd_putl16, /* hdrs */
    {_bfd_dummy_target, MY_object_p, /* bfd_check_format */
    {_bfd_dummy_target, MY_object_p, /* bfd_check_format */
       bfd_generic_archive_p, MY_core_file_p},
       bfd_generic_archive_p, MY_core_file_p},
    {bfd_false, MY_mkobject,    /* bfd_set_format */
    {bfd_false, MY_mkobject,    /* bfd_set_format */
       _bfd_generic_mkarchive, bfd_false},
       _bfd_generic_mkarchive, bfd_false},
    {bfd_false, MY_write_object_contents, /* bfd_write_contents */
    {bfd_false, MY_write_object_contents, /* bfd_write_contents */
       _bfd_write_archive_contents, bfd_false},
       _bfd_write_archive_contents, bfd_false},
 
 
     BFD_JUMP_TABLE_GENERIC (MY),
     BFD_JUMP_TABLE_GENERIC (MY),
     BFD_JUMP_TABLE_COPY (MY),
     BFD_JUMP_TABLE_COPY (MY),
     BFD_JUMP_TABLE_CORE (MY),
     BFD_JUMP_TABLE_CORE (MY),
     BFD_JUMP_TABLE_ARCHIVE (MY),
     BFD_JUMP_TABLE_ARCHIVE (MY),
     BFD_JUMP_TABLE_SYMBOLS (MY),
     BFD_JUMP_TABLE_SYMBOLS (MY),
     BFD_JUMP_TABLE_RELOCS (MY),
     BFD_JUMP_TABLE_RELOCS (MY),
     BFD_JUMP_TABLE_WRITE (MY),
     BFD_JUMP_TABLE_WRITE (MY),
     BFD_JUMP_TABLE_LINK (MY),
     BFD_JUMP_TABLE_LINK (MY),
     BFD_JUMP_TABLE_DYNAMIC (MY),
     BFD_JUMP_TABLE_DYNAMIC (MY),
 
 
  /* Alternative_target */
  /* Alternative_target */
  NULL,
  NULL,
 
 
  (PTR) MY_backend_data,
  (PTR) MY_backend_data,
};
};
 
 
/* start of modified aoutx.h */
/* start of modified aoutx.h */
/* BFD semi-generic back-end for a.out binaries.
/* BFD semi-generic back-end for a.out binaries.
   Copyright 1990, 91, 92, 93, 94, 95, 96, 97, 1998
   Copyright 1990, 91, 92, 93, 94, 95, 96, 97, 1998
   Free Software Foundation, Inc.
   Free Software Foundation, Inc.
   Written by Cygnus Support.
   Written by Cygnus Support.
 
 
This file is part of BFD, the Binary File Descriptor library.
This file is part of BFD, the Binary File Descriptor library.
 
 
This program is free software; you can redistribute it and/or modify
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
(at your option) any later version.
 
 
This program is distributed in the hope that it will be useful,
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
GNU General Public License for more details.
GNU General Public License for more details.
 
 
You should have received a copy of the GNU General Public License
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.  */
Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.  */
 
 
/*
/*
SECTION
SECTION
        a.out backends
        a.out backends
 
 
 
 
DESCRIPTION
DESCRIPTION
 
 
        BFD supports a number of different flavours of a.out format,
        BFD supports a number of different flavours of a.out format,
        though the major differences are only the sizes of the
        though the major differences are only the sizes of the
        structures on disk, and the shape of the relocation
        structures on disk, and the shape of the relocation
        information.
        information.
 
 
        The support is split into a basic support file @file{aoutx.h}
        The support is split into a basic support file @file{aoutx.h}
        and other files which derive functions from the base. One
        and other files which derive functions from the base. One
        derivation file is @file{aoutf1.h} (for a.out flavour 1), and
        derivation file is @file{aoutf1.h} (for a.out flavour 1), and
        adds to the basic a.out functions support for sun3, sun4, 386
        adds to the basic a.out functions support for sun3, sun4, 386
        and 29k a.out files, to create a target jump vector for a
        and 29k a.out files, to create a target jump vector for a
        specific target.
        specific target.
 
 
        This information is further split out into more specific files
        This information is further split out into more specific files
        for each machine, including @file{sunos.c} for sun3 and sun4,
        for each machine, including @file{sunos.c} for sun3 and sun4,
        @file{newsos3.c} for the Sony NEWS, and @file{demo64.c} for a
        @file{newsos3.c} for the Sony NEWS, and @file{demo64.c} for a
        demonstration of a 64 bit a.out format.
        demonstration of a 64 bit a.out format.
 
 
        The base file @file{aoutx.h} defines general mechanisms for
        The base file @file{aoutx.h} defines general mechanisms for
        reading and writing records to and from disk and various
        reading and writing records to and from disk and various
        other methods which BFD requires. It is included by
        other methods which BFD requires. It is included by
        @file{aout32.c} and @file{aout64.c} to form the names
        @file{aout32.c} and @file{aout64.c} to form the names
        <<aout_32_swap_exec_header_in>>, <<aout_64_swap_exec_header_in>>, etc.
        <<aout_32_swap_exec_header_in>>, <<aout_64_swap_exec_header_in>>, etc.
 
 
        As an example, this is what goes on to make the back end for a
        As an example, this is what goes on to make the back end for a
        sun4, from @file{aout32.c}:
        sun4, from @file{aout32.c}:
 
 
|       #define ARCH_SIZE 32
|       #define ARCH_SIZE 32
|       #include "aoutx.h"
|       #include "aoutx.h"
 
 
        Which exports names:
        Which exports names:
 
 
|       ...
|       ...
|       aout_32_canonicalize_reloc
|       aout_32_canonicalize_reloc
|       aout_32_find_nearest_line
|       aout_32_find_nearest_line
|       aout_32_get_lineno
|       aout_32_get_lineno
|       aout_32_get_reloc_upper_bound
|       aout_32_get_reloc_upper_bound
|       ...
|       ...
 
 
        from @file{sunos.c}:
        from @file{sunos.c}:
 
 
|       #define TARGET_NAME "a.out-sunos-big"
|       #define TARGET_NAME "a.out-sunos-big"
|       #define VECNAME    sunos_big_vec
|       #define VECNAME    sunos_big_vec
|       #include "aoutf1.h"
|       #include "aoutf1.h"
 
 
        requires all the names from @file{aout32.c}, and produces the jump vector
        requires all the names from @file{aout32.c}, and produces the jump vector
 
 
|       sunos_big_vec
|       sunos_big_vec
 
 
        The file @file{host-aout.c} is a special case.  It is for a large set
        The file @file{host-aout.c} is a special case.  It is for a large set
        of hosts that use ``more or less standard'' a.out files, and
        of hosts that use ``more or less standard'' a.out files, and
        for which cross-debugging is not interesting.  It uses the
        for which cross-debugging is not interesting.  It uses the
        standard 32-bit a.out support routines, but determines the
        standard 32-bit a.out support routines, but determines the
        file offsets and addresses of the text, data, and BSS
        file offsets and addresses of the text, data, and BSS
        sections, the machine architecture and machine type, and the
        sections, the machine architecture and machine type, and the
        entry point address, in a host-dependent manner.  Once these
        entry point address, in a host-dependent manner.  Once these
        values have been determined, generic code is used to handle
        values have been determined, generic code is used to handle
        the  object file.
        the  object file.
 
 
        When porting it to run on a new system, you must supply:
        When porting it to run on a new system, you must supply:
 
 
|        HOST_PAGE_SIZE
|        HOST_PAGE_SIZE
|        HOST_SEGMENT_SIZE
|        HOST_SEGMENT_SIZE
|        HOST_MACHINE_ARCH       (optional)
|        HOST_MACHINE_ARCH       (optional)
|        HOST_MACHINE_MACHINE    (optional)
|        HOST_MACHINE_MACHINE    (optional)
|        HOST_TEXT_START_ADDR
|        HOST_TEXT_START_ADDR
|        HOST_STACK_END_ADDR
|        HOST_STACK_END_ADDR
 
 
        in the file @file{../include/sys/h-@var{XXX}.h} (for your host).  These
        in the file @file{../include/sys/h-@var{XXX}.h} (for your host).  These
        values, plus the structures and macros defined in @file{a.out.h} on
        values, plus the structures and macros defined in @file{a.out.h} on
        your host system, will produce a BFD target that will access
        your host system, will produce a BFD target that will access
        ordinary a.out files on your host. To configure a new machine
        ordinary a.out files on your host. To configure a new machine
        to use @file{host-aout.c}, specify:
        to use @file{host-aout.c}, specify:
 
 
|       TDEFAULTS = -DDEFAULT_VECTOR=host_aout_big_vec
|       TDEFAULTS = -DDEFAULT_VECTOR=host_aout_big_vec
|       TDEPFILES= host-aout.o trad-core.o
|       TDEPFILES= host-aout.o trad-core.o
 
 
        in the @file{config/@var{XXX}.mt} file, and modify @file{configure.in}
        in the @file{config/@var{XXX}.mt} file, and modify @file{configure.in}
        to use the
        to use the
        @file{@var{XXX}.mt} file (by setting "<<bfd_target=XXX>>") when your
        @file{@var{XXX}.mt} file (by setting "<<bfd_target=XXX>>") when your
        configuration is selected.
        configuration is selected.
 
 
*/
*/
 
 
/* Some assumptions:
/* Some assumptions:
   * Any BFD with D_PAGED set is ZMAGIC, and vice versa.
   * Any BFD with D_PAGED set is ZMAGIC, and vice versa.
     Doesn't matter what the setting of WP_TEXT is on output, but it'll
     Doesn't matter what the setting of WP_TEXT is on output, but it'll
     get set on input.
     get set on input.
   * Any BFD with D_PAGED clear and WP_TEXT set is NMAGIC.
   * Any BFD with D_PAGED clear and WP_TEXT set is NMAGIC.
   * Any BFD with both flags clear is OMAGIC.
   * Any BFD with both flags clear is OMAGIC.
   (Just want to make these explicit, so the conditions tested in this
   (Just want to make these explicit, so the conditions tested in this
   file make sense if you're more familiar with a.out than with BFD.)  */
   file make sense if you're more familiar with a.out than with BFD.)  */
 
 
#define KEEPIT udata.i
#define KEEPIT udata.i
 
 
#include <string.h>             /* For strchr and friends */
#include <string.h>             /* For strchr and friends */
#include <ctype.h>
#include <ctype.h>
#include "bfd.h"
#include "bfd.h"
#include "sysdep.h"
#include "sysdep.h"
#include "bfdlink.h"
#include "bfdlink.h"
 
 
#include "libaout.h"
#include "libaout.h"
/*#include "libbfd.h"*/
/*#include "libbfd.h"*/
#include "aout/aout64.h"
#include "aout/aout64.h"
#include "aout/stab_gnu.h"
#include "aout/stab_gnu.h"
#include "aout/ar.h"
#include "aout/ar.h"
 
 
#undef N_TYPE
#undef N_TYPE
#undef N_UNDF
#undef N_UNDF
#undef N_ABS
#undef N_ABS
#undef N_TEXT
#undef N_TEXT
#undef N_DATA
#undef N_DATA
#undef N_BSS
#undef N_BSS
#undef N_REG
#undef N_REG
#undef N_FN
#undef N_FN
#undef N_EXT
#undef N_EXT
#define N_TYPE          0x1f    /* type mask */
#define N_TYPE          0x1f    /* type mask */
#define N_UNDF          0x00    /* undefined */
#define N_UNDF          0x00    /* undefined */
#define N_ABS           0x01    /* absolute */
#define N_ABS           0x01    /* absolute */
#define N_TEXT          0x02    /* text segment */
#define N_TEXT          0x02    /* text segment */
#define N_DATA          0x03    /* data segment */
#define N_DATA          0x03    /* data segment */
#define N_BSS           0x04    /* bss segment */
#define N_BSS           0x04    /* bss segment */
#define N_REG           0x14    /* register symbol */
#define N_REG           0x14    /* register symbol */
#define N_FN            0x1f    /* file name */
#define N_FN            0x1f    /* file name */
 
 
#define N_EXT           0x20    /* external flag */
#define N_EXT           0x20    /* external flag */
 
 
#define RELOC_SIZE 2
#define RELOC_SIZE 2
 
 
struct pdp11_aout_reloc_external
struct pdp11_aout_reloc_external
{
{
  bfd_byte e_reloc_entry[2];
  bfd_byte e_reloc_entry[2];
};
};
 
 
#define RELFLG          0x0001  /* pc-relative flag */
#define RELFLG          0x0001  /* pc-relative flag */
#define RTYPE           0x000e  /* type mask */
#define RTYPE           0x000e  /* type mask */
#define RIDXMASK        0xfff0  /* index mask */
#define RIDXMASK        0xfff0  /* index mask */
 
 
#define RABS            0x00    /* absolute */
#define RABS            0x00    /* absolute */
#define RTEXT           0x02    /* text */
#define RTEXT           0x02    /* text */
#define RDATA           0x04    /* data */
#define RDATA           0x04    /* data */
#define RBSS            0x06    /* bss */
#define RBSS            0x06    /* bss */
#define REXT            0x08    /* external */
#define REXT            0x08    /* external */
 
 
#define RINDEX(x)       (((x) & 0xfff0) >> 4)
#define RINDEX(x)       (((x) & 0xfff0) >> 4)
 
 
static boolean aout_get_external_symbols PARAMS ((bfd *));
static boolean aout_get_external_symbols PARAMS ((bfd *));
static boolean translate_from_native_sym_flags
static boolean translate_from_native_sym_flags
  PARAMS ((bfd *, aout_symbol_type *));
  PARAMS ((bfd *, aout_symbol_type *));
static boolean translate_to_native_sym_flags
static boolean translate_to_native_sym_flags
  PARAMS ((bfd *, asymbol *, struct external_nlist *));
  PARAMS ((bfd *, asymbol *, struct external_nlist *));
static void adjust_o_magic PARAMS ((bfd *, struct internal_exec *));
static void adjust_o_magic PARAMS ((bfd *, struct internal_exec *));
static void adjust_z_magic PARAMS ((bfd *, struct internal_exec *));
static void adjust_z_magic PARAMS ((bfd *, struct internal_exec *));
static void adjust_n_magic PARAMS ((bfd *, struct internal_exec *));
static void adjust_n_magic PARAMS ((bfd *, struct internal_exec *));
 
 
/*
/*
SUBSECTION
SUBSECTION
        Relocations
        Relocations
 
 
DESCRIPTION
DESCRIPTION
        The file @file{aoutx.h} provides for both the @emph{standard}
        The file @file{aoutx.h} provides for both the @emph{standard}
        and @emph{extended} forms of a.out relocation records.
        and @emph{extended} forms of a.out relocation records.
 
 
        The standard records contain only an
        The standard records contain only an
        address, a symbol index, and a type field. The extended records
        address, a symbol index, and a type field. The extended records
        (used on 29ks and sparcs) also have a full integer for an
        (used on 29ks and sparcs) also have a full integer for an
        addend.
        addend.
 
 
*/
*/
 
 
#ifndef MY_final_link_relocate
#ifndef MY_final_link_relocate
#define MY_final_link_relocate _bfd_final_link_relocate
#define MY_final_link_relocate _bfd_final_link_relocate
#endif
#endif
 
 
#ifndef MY_relocate_contents
#ifndef MY_relocate_contents
#define MY_relocate_contents _bfd_relocate_contents
#define MY_relocate_contents _bfd_relocate_contents
#endif
#endif
 
 
reloc_howto_type howto_table_pdp11[] =
reloc_howto_type howto_table_pdp11[] =
{
{
  /* type              rs size bsz  pcrel bitpos ovrf                     sf name     part_inpl readmask  setmask    pcdone */
  /* type              rs size bsz  pcrel bitpos ovrf                     sf name     part_inpl readmask  setmask    pcdone */
HOWTO( 0,               0,  1,  16,  false, 0, complain_overflow_signed,0,"16",     true, 0x0000ffff,0x0000ffff, false),
HOWTO( 0,               0,  1,  16,  false, 0, complain_overflow_signed,0,"16",     true, 0x0000ffff,0x0000ffff, false),
HOWTO( 1,              0,  1,  16,  true,  0, complain_overflow_signed,0,"DISP16", true, 0x0000ffff,0x0000ffff, false),
HOWTO( 1,              0,  1,  16,  true,  0, complain_overflow_signed,0,"DISP16", true, 0x0000ffff,0x0000ffff, false),
};
};
 
 
#define TABLE_SIZE(TABLE)       (sizeof(TABLE)/sizeof(TABLE[0]))
#define TABLE_SIZE(TABLE)       (sizeof(TABLE)/sizeof(TABLE[0]))
 
 
reloc_howto_type *
reloc_howto_type *
NAME(aout,reloc_type_lookup) (abfd,code)
NAME(aout,reloc_type_lookup) (abfd,code)
     bfd * abfd ATTRIBUTE_UNUSED;
     bfd * abfd ATTRIBUTE_UNUSED;
     bfd_reloc_code_real_type code;
     bfd_reloc_code_real_type code;
{
{
  switch (code)
  switch (code)
    {
    {
    case BFD_RELOC_16:
    case BFD_RELOC_16:
      return &howto_table_pdp11[0];
      return &howto_table_pdp11[0];
    case BFD_RELOC_16_PCREL:
    case BFD_RELOC_16_PCREL:
      return &howto_table_pdp11[1];
      return &howto_table_pdp11[1];
    default:
    default:
      return (reloc_howto_type *)NULL;
      return (reloc_howto_type *)NULL;
    }
    }
}
}
 
 
static int
static int
pdp11_aout_write_headers (abfd, execp)
pdp11_aout_write_headers (abfd, execp)
     bfd *abfd;
     bfd *abfd;
     struct internal_exec *execp;
     struct internal_exec *execp;
{
{
  struct external_exec exec_bytes;
  struct external_exec exec_bytes;
  bfd_size_type text_size;
  bfd_size_type text_size;
  file_ptr text_end;
  file_ptr text_end;
 
 
  if (adata(abfd).magic == undecided_magic)
  if (adata(abfd).magic == undecided_magic)
    NAME(aout,adjust_sizes_and_vmas) (abfd, &text_size, &text_end);
    NAME(aout,adjust_sizes_and_vmas) (abfd, &text_size, &text_end);
 
 
  execp->a_syms = bfd_get_symcount (abfd) * EXTERNAL_NLIST_SIZE;
  execp->a_syms = bfd_get_symcount (abfd) * EXTERNAL_NLIST_SIZE;
  execp->a_entry = bfd_get_start_address (abfd);
  execp->a_entry = bfd_get_start_address (abfd);
 
 
  if (obj_textsec (abfd)->reloc_count > 0 ||
  if (obj_textsec (abfd)->reloc_count > 0 ||
      obj_datasec (abfd)->reloc_count > 0)
      obj_datasec (abfd)->reloc_count > 0)
    {
    {
      execp->a_trsize = execp->a_text;
      execp->a_trsize = execp->a_text;
      execp->a_drsize = execp->a_data;
      execp->a_drsize = execp->a_data;
    }
    }
  else
  else
    {
    {
      execp->a_trsize = 0;
      execp->a_trsize = 0;
      execp->a_drsize = 0;
      execp->a_drsize = 0;
    }
    }
 
 
  NAME(aout,swap_exec_header_out) (abfd, execp, &exec_bytes);
  NAME(aout,swap_exec_header_out) (abfd, execp, &exec_bytes);
 
 
  if (bfd_seek (abfd, (file_ptr) 0, SEEK_SET) != 0)
  if (bfd_seek (abfd, (file_ptr) 0, SEEK_SET) != 0)
    return false;
    return false;
 
 
  if (bfd_write ((PTR) &exec_bytes, 1, EXEC_BYTES_SIZE, abfd)
  if (bfd_write ((PTR) &exec_bytes, 1, EXEC_BYTES_SIZE, abfd)
      != EXEC_BYTES_SIZE)
      != EXEC_BYTES_SIZE)
    return false;
    return false;
 
 
  /* Now write out reloc info, followed by syms and strings */
  /* Now write out reloc info, followed by syms and strings */
 
 
  if (bfd_get_outsymbols (abfd) != (asymbol **) NULL
  if (bfd_get_outsymbols (abfd) != (asymbol **) NULL
      && bfd_get_symcount (abfd) != 0)
      && bfd_get_symcount (abfd) != 0)
    {
    {
      if (bfd_seek (abfd, (file_ptr)(N_SYMOFF(*execp)), SEEK_SET) != 0)
      if (bfd_seek (abfd, (file_ptr)(N_SYMOFF(*execp)), SEEK_SET) != 0)
        return false;
        return false;
 
 
      if (! NAME(aout,write_syms)(abfd)) return false;
      if (! NAME(aout,write_syms)(abfd)) return false;
    }
    }
 
 
  if (obj_textsec (abfd)->reloc_count > 0 ||
  if (obj_textsec (abfd)->reloc_count > 0 ||
      obj_datasec (abfd)->reloc_count > 0)
      obj_datasec (abfd)->reloc_count > 0)
    {
    {
      if (bfd_seek (abfd, (file_ptr)(N_TRELOFF(*execp)), SEEK_SET) != 0)
      if (bfd_seek (abfd, (file_ptr)(N_TRELOFF(*execp)), SEEK_SET) != 0)
        return false;
        return false;
      if (!NAME(aout,squirt_out_relocs) (abfd, obj_textsec (abfd)))
      if (!NAME(aout,squirt_out_relocs) (abfd, obj_textsec (abfd)))
        return false;
        return false;
 
 
      if (bfd_seek (abfd, (file_ptr)(N_DRELOFF(*execp)), SEEK_SET) != 0)
      if (bfd_seek (abfd, (file_ptr)(N_DRELOFF(*execp)), SEEK_SET) != 0)
        return false;
        return false;
      if (!NAME(aout,squirt_out_relocs)(abfd, obj_datasec (abfd)))
      if (!NAME(aout,squirt_out_relocs)(abfd, obj_datasec (abfd)))
        return false;
        return false;
    }
    }
 
 
  return true;
  return true;
}
}
 
 
/* Write an object file.
/* Write an object file.
   Section contents have already been written.  We write the
   Section contents have already been written.  We write the
   file header, symbols, and relocation.  */
   file header, symbols, and relocation.  */
 
 
static boolean
static boolean
MY(write_object_contents) (abfd)
MY(write_object_contents) (abfd)
     bfd *abfd;
     bfd *abfd;
{
{
  struct internal_exec *execp = exec_hdr (abfd);
  struct internal_exec *execp = exec_hdr (abfd);
 
 
  /* We must make certain that the magic number has been set.  This
  /* We must make certain that the magic number has been set.  This
     will normally have been done by set_section_contents, but only if
     will normally have been done by set_section_contents, but only if
     there actually are some section contents.  */
     there actually are some section contents.  */
  if (! abfd->output_has_begun)
  if (! abfd->output_has_begun)
    {
    {
      bfd_size_type text_size;
      bfd_size_type text_size;
      file_ptr text_end;
      file_ptr text_end;
 
 
      NAME(aout,adjust_sizes_and_vmas) (abfd, &text_size, &text_end);
      NAME(aout,adjust_sizes_and_vmas) (abfd, &text_size, &text_end);
    }
    }
 
 
  obj_reloc_entry_size (abfd) = RELOC_SIZE;
  obj_reloc_entry_size (abfd) = RELOC_SIZE;
 
 
  return WRITE_HEADERS(abfd, execp);
  return WRITE_HEADERS(abfd, execp);
}
}
 
 
/*
/*
SUBSECTION
SUBSECTION
        Internal entry points
        Internal entry points
 
 
DESCRIPTION
DESCRIPTION
        @file{aoutx.h} exports several routines for accessing the
        @file{aoutx.h} exports several routines for accessing the
        contents of an a.out file, which are gathered and exported in
        contents of an a.out file, which are gathered and exported in
        turn by various format specific files (eg sunos.c).
        turn by various format specific files (eg sunos.c).
 
 
*/
*/
 
 
/*
/*
FUNCTION
FUNCTION
         aout_@var{size}_swap_exec_header_in
         aout_@var{size}_swap_exec_header_in
 
 
SYNOPSIS
SYNOPSIS
        void aout_@var{size}_swap_exec_header_in,
        void aout_@var{size}_swap_exec_header_in,
           (bfd *abfd,
           (bfd *abfd,
            struct external_exec *raw_bytes,
            struct external_exec *raw_bytes,
            struct internal_exec *execp);
            struct internal_exec *execp);
 
 
DESCRIPTION
DESCRIPTION
        Swap the information in an executable header @var{raw_bytes} taken
        Swap the information in an executable header @var{raw_bytes} taken
        from a raw byte stream memory image into the internal exec header
        from a raw byte stream memory image into the internal exec header
        structure @var{execp}.
        structure @var{execp}.
*/
*/
 
 
#ifndef NAME_swap_exec_header_in
#ifndef NAME_swap_exec_header_in
void
void
NAME(aout,swap_exec_header_in) (abfd, raw_bytes, execp)
NAME(aout,swap_exec_header_in) (abfd, raw_bytes, execp)
     bfd *abfd;
     bfd *abfd;
     struct external_exec *raw_bytes;
     struct external_exec *raw_bytes;
     struct internal_exec *execp;
     struct internal_exec *execp;
{
{
  struct external_exec *bytes = (struct external_exec *)raw_bytes;
  struct external_exec *bytes = (struct external_exec *)raw_bytes;
 
 
  /* The internal_exec structure has some fields that are unused in this
  /* The internal_exec structure has some fields that are unused in this
     configuration (IE for i960), so ensure that all such uninitialized
     configuration (IE for i960), so ensure that all such uninitialized
     fields are zero'd out.  There are places where two of these structs
     fields are zero'd out.  There are places where two of these structs
     are memcmp'd, and thus the contents do matter. */
     are memcmp'd, and thus the contents do matter. */
  memset ((PTR) execp, 0, sizeof (struct internal_exec));
  memset ((PTR) execp, 0, sizeof (struct internal_exec));
  /* Now fill in fields in the execp, from the bytes in the raw data.  */
  /* Now fill in fields in the execp, from the bytes in the raw data.  */
  execp->a_info   = GET_MAGIC (abfd, bytes->e_info);
  execp->a_info   = GET_MAGIC (abfd, bytes->e_info);
  execp->a_text   = GET_WORD (abfd, bytes->e_text);
  execp->a_text   = GET_WORD (abfd, bytes->e_text);
  execp->a_data   = GET_WORD (abfd, bytes->e_data);
  execp->a_data   = GET_WORD (abfd, bytes->e_data);
  execp->a_bss    = GET_WORD (abfd, bytes->e_bss);
  execp->a_bss    = GET_WORD (abfd, bytes->e_bss);
  execp->a_syms   = GET_WORD (abfd, bytes->e_syms);
  execp->a_syms   = GET_WORD (abfd, bytes->e_syms);
  execp->a_entry  = GET_WORD (abfd, bytes->e_entry);
  execp->a_entry  = GET_WORD (abfd, bytes->e_entry);
 
 
  if (GET_WORD (abfd, bytes->e_flag) & A_FLAG_RELOC_STRIPPED)
  if (GET_WORD (abfd, bytes->e_flag) & A_FLAG_RELOC_STRIPPED)
    {
    {
      execp->a_trsize = 0;
      execp->a_trsize = 0;
      execp->a_drsize = 0;
      execp->a_drsize = 0;
    }
    }
  else
  else
    {
    {
      execp->a_trsize = execp->a_text;
      execp->a_trsize = execp->a_text;
      execp->a_drsize = execp->a_data;
      execp->a_drsize = execp->a_data;
    }
    }
}
}
#define NAME_swap_exec_header_in NAME(aout,swap_exec_header_in)
#define NAME_swap_exec_header_in NAME(aout,swap_exec_header_in)
#endif
#endif
 
 
/*
/*
FUNCTION
FUNCTION
        aout_@var{size}_swap_exec_header_out
        aout_@var{size}_swap_exec_header_out
 
 
SYNOPSIS
SYNOPSIS
        void aout_@var{size}_swap_exec_header_out
        void aout_@var{size}_swap_exec_header_out
          (bfd *abfd,
          (bfd *abfd,
           struct internal_exec *execp,
           struct internal_exec *execp,
           struct external_exec *raw_bytes);
           struct external_exec *raw_bytes);
 
 
DESCRIPTION
DESCRIPTION
        Swap the information in an internal exec header structure
        Swap the information in an internal exec header structure
        @var{execp} into the buffer @var{raw_bytes} ready for writing to disk.
        @var{execp} into the buffer @var{raw_bytes} ready for writing to disk.
*/
*/
void
void
NAME(aout,swap_exec_header_out) (abfd, execp, raw_bytes)
NAME(aout,swap_exec_header_out) (abfd, execp, raw_bytes)
     bfd *abfd;
     bfd *abfd;
     struct internal_exec *execp;
     struct internal_exec *execp;
     struct external_exec *raw_bytes;
     struct external_exec *raw_bytes;
{
{
  struct external_exec *bytes = (struct external_exec *)raw_bytes;
  struct external_exec *bytes = (struct external_exec *)raw_bytes;
 
 
  /* Now fill in fields in the raw data, from the fields in the exec struct. */
  /* Now fill in fields in the raw data, from the fields in the exec struct. */
  PUT_MAGIC (abfd, execp->a_info,               bytes->e_info);
  PUT_MAGIC (abfd, execp->a_info,               bytes->e_info);
  PUT_WORD (abfd, execp->a_text,                bytes->e_text);
  PUT_WORD (abfd, execp->a_text,                bytes->e_text);
  PUT_WORD (abfd, execp->a_data,                bytes->e_data);
  PUT_WORD (abfd, execp->a_data,                bytes->e_data);
  PUT_WORD (abfd, execp->a_bss,                 bytes->e_bss);
  PUT_WORD (abfd, execp->a_bss,                 bytes->e_bss);
  PUT_WORD (abfd, execp->a_syms,                bytes->e_syms);
  PUT_WORD (abfd, execp->a_syms,                bytes->e_syms);
  PUT_WORD (abfd, execp->a_entry,               bytes->e_entry);
  PUT_WORD (abfd, execp->a_entry,               bytes->e_entry);
  PUT_WORD (abfd, 0,                             bytes->e_unused);
  PUT_WORD (abfd, 0,                             bytes->e_unused);
 
 
  if ((execp->a_trsize == 0 || execp->a_text == 0) &&
  if ((execp->a_trsize == 0 || execp->a_text == 0) &&
      (execp->a_drsize == 0 || execp->a_data == 0))
      (execp->a_drsize == 0 || execp->a_data == 0))
    PUT_WORD (abfd, A_FLAG_RELOC_STRIPPED,      bytes->e_flag);
    PUT_WORD (abfd, A_FLAG_RELOC_STRIPPED,      bytes->e_flag);
  else if (execp->a_trsize == execp->a_text &&
  else if (execp->a_trsize == execp->a_text &&
           execp->a_drsize == execp->a_data)
           execp->a_drsize == execp->a_data)
    PUT_WORD (abfd, 0,                           bytes->e_flag);
    PUT_WORD (abfd, 0,                           bytes->e_flag);
  else
  else
    {
    {
      /* TODO: print a proper warning message */
      /* TODO: print a proper warning message */
      fprintf (stderr, "BFD:%s:%d: internal error\n", __FILE__, __LINE__);
      fprintf (stderr, "BFD:%s:%d: internal error\n", __FILE__, __LINE__);
      PUT_WORD (abfd, 0,                 bytes->e_flag);
      PUT_WORD (abfd, 0,                 bytes->e_flag);
    }
    }
}
}
 
 
/* Make all the section for an a.out file.  */
/* Make all the section for an a.out file.  */
 
 
boolean
boolean
NAME(aout,make_sections) (abfd)
NAME(aout,make_sections) (abfd)
     bfd *abfd;
     bfd *abfd;
{
{
  if (obj_textsec (abfd) == (asection *) NULL
  if (obj_textsec (abfd) == (asection *) NULL
      && bfd_make_section (abfd, ".text") == (asection *) NULL)
      && bfd_make_section (abfd, ".text") == (asection *) NULL)
    return false;
    return false;
  if (obj_datasec (abfd) == (asection *) NULL
  if (obj_datasec (abfd) == (asection *) NULL
      && bfd_make_section (abfd, ".data") == (asection *) NULL)
      && bfd_make_section (abfd, ".data") == (asection *) NULL)
    return false;
    return false;
  if (obj_bsssec (abfd) == (asection *) NULL
  if (obj_bsssec (abfd) == (asection *) NULL
      && bfd_make_section (abfd, ".bss") == (asection *) NULL)
      && bfd_make_section (abfd, ".bss") == (asection *) NULL)
    return false;
    return false;
  return true;
  return true;
}
}
 
 
/*
/*
FUNCTION
FUNCTION
        aout_@var{size}_some_aout_object_p
        aout_@var{size}_some_aout_object_p
 
 
SYNOPSIS
SYNOPSIS
        const bfd_target *aout_@var{size}_some_aout_object_p
        const bfd_target *aout_@var{size}_some_aout_object_p
         (bfd *abfd,
         (bfd *abfd,
          const bfd_target *(*callback_to_real_object_p)());
          const bfd_target *(*callback_to_real_object_p)());
 
 
DESCRIPTION
DESCRIPTION
        Some a.out variant thinks that the file open in @var{abfd}
        Some a.out variant thinks that the file open in @var{abfd}
        checking is an a.out file.  Do some more checking, and set up
        checking is an a.out file.  Do some more checking, and set up
        for access if it really is.  Call back to the calling
        for access if it really is.  Call back to the calling
        environment's "finish up" function just before returning, to
        environment's "finish up" function just before returning, to
        handle any last-minute setup.
        handle any last-minute setup.
*/
*/
 
 
const bfd_target *
const bfd_target *
NAME(aout,some_aout_object_p) (abfd, execp, callback_to_real_object_p)
NAME(aout,some_aout_object_p) (abfd, execp, callback_to_real_object_p)
     bfd *abfd;
     bfd *abfd;
     struct internal_exec *execp;
     struct internal_exec *execp;
     const bfd_target *(*callback_to_real_object_p) PARAMS ((bfd *));
     const bfd_target *(*callback_to_real_object_p) PARAMS ((bfd *));
{
{
  struct aout_data_struct *rawptr, *oldrawptr;
  struct aout_data_struct *rawptr, *oldrawptr;
  const bfd_target *result;
  const bfd_target *result;
 
 
  rawptr = (struct aout_data_struct  *) bfd_zalloc (abfd, sizeof (struct aout_data_struct ));
  rawptr = (struct aout_data_struct  *) bfd_zalloc (abfd, sizeof (struct aout_data_struct ));
  if (rawptr == NULL)
  if (rawptr == NULL)
    return 0;
    return 0;
 
 
  oldrawptr = abfd->tdata.aout_data;
  oldrawptr = abfd->tdata.aout_data;
  abfd->tdata.aout_data = rawptr;
  abfd->tdata.aout_data = rawptr;
 
 
  /* Copy the contents of the old tdata struct.
  /* Copy the contents of the old tdata struct.
     In particular, we want the subformat, since for hpux it was set in
     In particular, we want the subformat, since for hpux it was set in
     hp300hpux.c:swap_exec_header_in and will be used in
     hp300hpux.c:swap_exec_header_in and will be used in
     hp300hpux.c:callback.  */
     hp300hpux.c:callback.  */
  if (oldrawptr != NULL)
  if (oldrawptr != NULL)
    *abfd->tdata.aout_data = *oldrawptr;
    *abfd->tdata.aout_data = *oldrawptr;
 
 
  abfd->tdata.aout_data->a.hdr = &rawptr->e;
  abfd->tdata.aout_data->a.hdr = &rawptr->e;
  *(abfd->tdata.aout_data->a.hdr) = *execp;     /* Copy in the internal_exec struct */
  *(abfd->tdata.aout_data->a.hdr) = *execp;     /* Copy in the internal_exec struct */
  execp = abfd->tdata.aout_data->a.hdr;
  execp = abfd->tdata.aout_data->a.hdr;
 
 
  /* Set the file flags */
  /* Set the file flags */
  abfd->flags = BFD_NO_FLAGS;
  abfd->flags = BFD_NO_FLAGS;
  if (execp->a_drsize || execp->a_trsize)
  if (execp->a_drsize || execp->a_trsize)
    abfd->flags |= HAS_RELOC;
    abfd->flags |= HAS_RELOC;
  /* Setting of EXEC_P has been deferred to the bottom of this function */
  /* Setting of EXEC_P has been deferred to the bottom of this function */
  if (execp->a_syms)
  if (execp->a_syms)
    abfd->flags |= HAS_LINENO | HAS_DEBUG | HAS_SYMS | HAS_LOCALS;
    abfd->flags |= HAS_LINENO | HAS_DEBUG | HAS_SYMS | HAS_LOCALS;
  if (N_DYNAMIC(*execp))
  if (N_DYNAMIC(*execp))
    abfd->flags |= DYNAMIC;
    abfd->flags |= DYNAMIC;
 
 
  if (N_MAGIC (*execp) == ZMAGIC)
  if (N_MAGIC (*execp) == ZMAGIC)
    {
    {
      abfd->flags |= D_PAGED | WP_TEXT;
      abfd->flags |= D_PAGED | WP_TEXT;
      adata (abfd).magic = z_magic;
      adata (abfd).magic = z_magic;
    }
    }
  else if (N_MAGIC (*execp) == QMAGIC)
  else if (N_MAGIC (*execp) == QMAGIC)
    {
    {
      abfd->flags |= D_PAGED | WP_TEXT;
      abfd->flags |= D_PAGED | WP_TEXT;
      adata (abfd).magic = z_magic;
      adata (abfd).magic = z_magic;
      adata (abfd).subformat = q_magic_format;
      adata (abfd).subformat = q_magic_format;
    }
    }
  else if (N_MAGIC (*execp) == NMAGIC)
  else if (N_MAGIC (*execp) == NMAGIC)
    {
    {
      abfd->flags |= WP_TEXT;
      abfd->flags |= WP_TEXT;
      adata (abfd).magic = n_magic;
      adata (abfd).magic = n_magic;
    }
    }
  else if (N_MAGIC (*execp) == OMAGIC
  else if (N_MAGIC (*execp) == OMAGIC
           || N_MAGIC (*execp) == BMAGIC)
           || N_MAGIC (*execp) == BMAGIC)
    adata (abfd).magic = o_magic;
    adata (abfd).magic = o_magic;
  else
  else
    {
    {
      /* Should have been checked with N_BADMAG before this routine
      /* Should have been checked with N_BADMAG before this routine
         was called.  */
         was called.  */
      abort ();
      abort ();
    }
    }
 
 
  bfd_get_start_address (abfd) = execp->a_entry;
  bfd_get_start_address (abfd) = execp->a_entry;
 
 
  obj_aout_symbols (abfd) = (aout_symbol_type *)NULL;
  obj_aout_symbols (abfd) = (aout_symbol_type *)NULL;
  bfd_get_symcount (abfd) = execp->a_syms / sizeof (struct external_nlist);
  bfd_get_symcount (abfd) = execp->a_syms / sizeof (struct external_nlist);
 
 
  /* The default relocation entry size is that of traditional V7 Unix.  */
  /* The default relocation entry size is that of traditional V7 Unix.  */
  obj_reloc_entry_size (abfd) = RELOC_SIZE;
  obj_reloc_entry_size (abfd) = RELOC_SIZE;
 
 
  /* The default symbol entry size is that of traditional Unix. */
  /* The default symbol entry size is that of traditional Unix. */
  obj_symbol_entry_size (abfd) = EXTERNAL_NLIST_SIZE;
  obj_symbol_entry_size (abfd) = EXTERNAL_NLIST_SIZE;
 
 
#ifdef USE_MMAP
#ifdef USE_MMAP
  bfd_init_window (&obj_aout_sym_window (abfd));
  bfd_init_window (&obj_aout_sym_window (abfd));
  bfd_init_window (&obj_aout_string_window (abfd));
  bfd_init_window (&obj_aout_string_window (abfd));
#endif
#endif
  obj_aout_external_syms (abfd) = NULL;
  obj_aout_external_syms (abfd) = NULL;
  obj_aout_external_strings (abfd) = NULL;
  obj_aout_external_strings (abfd) = NULL;
  obj_aout_sym_hashes (abfd) = NULL;
  obj_aout_sym_hashes (abfd) = NULL;
 
 
  if (! NAME(aout,make_sections) (abfd))
  if (! NAME(aout,make_sections) (abfd))
    return NULL;
    return NULL;
 
 
  obj_datasec (abfd)->_raw_size = execp->a_data;
  obj_datasec (abfd)->_raw_size = execp->a_data;
  obj_bsssec (abfd)->_raw_size = execp->a_bss;
  obj_bsssec (abfd)->_raw_size = execp->a_bss;
 
 
  obj_textsec (abfd)->flags =
  obj_textsec (abfd)->flags =
    (execp->a_trsize != 0
    (execp->a_trsize != 0
     ? (SEC_ALLOC | SEC_LOAD | SEC_CODE | SEC_HAS_CONTENTS | SEC_RELOC)
     ? (SEC_ALLOC | SEC_LOAD | SEC_CODE | SEC_HAS_CONTENTS | SEC_RELOC)
     : (SEC_ALLOC | SEC_LOAD | SEC_CODE | SEC_HAS_CONTENTS));
     : (SEC_ALLOC | SEC_LOAD | SEC_CODE | SEC_HAS_CONTENTS));
  obj_datasec (abfd)->flags =
  obj_datasec (abfd)->flags =
    (execp->a_drsize != 0
    (execp->a_drsize != 0
     ? (SEC_ALLOC | SEC_LOAD | SEC_DATA | SEC_HAS_CONTENTS | SEC_RELOC)
     ? (SEC_ALLOC | SEC_LOAD | SEC_DATA | SEC_HAS_CONTENTS | SEC_RELOC)
     : (SEC_ALLOC | SEC_LOAD | SEC_DATA | SEC_HAS_CONTENTS));
     : (SEC_ALLOC | SEC_LOAD | SEC_DATA | SEC_HAS_CONTENTS));
  obj_bsssec (abfd)->flags = SEC_ALLOC;
  obj_bsssec (abfd)->flags = SEC_ALLOC;
 
 
#ifdef THIS_IS_ONLY_DOCUMENTATION
#ifdef THIS_IS_ONLY_DOCUMENTATION
  /* The common code can't fill in these things because they depend
  /* The common code can't fill in these things because they depend
     on either the start address of the text segment, the rounding
     on either the start address of the text segment, the rounding
     up of virtual addresses between segments, or the starting file
     up of virtual addresses between segments, or the starting file
     position of the text segment -- all of which varies among different
     position of the text segment -- all of which varies among different
     versions of a.out.  */
     versions of a.out.  */
 
 
  /* Call back to the format-dependent code to fill in the rest of the
  /* Call back to the format-dependent code to fill in the rest of the
     fields and do any further cleanup.  Things that should be filled
     fields and do any further cleanup.  Things that should be filled
     in by the callback:  */
     in by the callback:  */
 
 
  struct exec *execp = exec_hdr (abfd);
  struct exec *execp = exec_hdr (abfd);
 
 
  obj_textsec (abfd)->size = N_TXTSIZE(*execp);
  obj_textsec (abfd)->size = N_TXTSIZE(*execp);
  obj_textsec (abfd)->raw_size = N_TXTSIZE(*execp);
  obj_textsec (abfd)->raw_size = N_TXTSIZE(*execp);
  /* data and bss are already filled in since they're so standard */
  /* data and bss are already filled in since they're so standard */
 
 
  /* The virtual memory addresses of the sections */
  /* The virtual memory addresses of the sections */
  obj_textsec (abfd)->vma = N_TXTADDR(*execp);
  obj_textsec (abfd)->vma = N_TXTADDR(*execp);
  obj_datasec (abfd)->vma = N_DATADDR(*execp);
  obj_datasec (abfd)->vma = N_DATADDR(*execp);
  obj_bsssec  (abfd)->vma = N_BSSADDR(*execp);
  obj_bsssec  (abfd)->vma = N_BSSADDR(*execp);
 
 
  /* The file offsets of the sections */
  /* The file offsets of the sections */
  obj_textsec (abfd)->filepos = N_TXTOFF(*execp);
  obj_textsec (abfd)->filepos = N_TXTOFF(*execp);
  obj_datasec (abfd)->filepos = N_DATOFF(*execp);
  obj_datasec (abfd)->filepos = N_DATOFF(*execp);
 
 
  /* The file offsets of the relocation info */
  /* The file offsets of the relocation info */
  obj_textsec (abfd)->rel_filepos = N_TRELOFF(*execp);
  obj_textsec (abfd)->rel_filepos = N_TRELOFF(*execp);
  obj_datasec (abfd)->rel_filepos = N_DRELOFF(*execp);
  obj_datasec (abfd)->rel_filepos = N_DRELOFF(*execp);
 
 
  /* The file offsets of the string table and symbol table.  */
  /* The file offsets of the string table and symbol table.  */
  obj_str_filepos (abfd) = N_STROFF (*execp);
  obj_str_filepos (abfd) = N_STROFF (*execp);
  obj_sym_filepos (abfd) = N_SYMOFF (*execp);
  obj_sym_filepos (abfd) = N_SYMOFF (*execp);
 
 
  /* Determine the architecture and machine type of the object file.  */
  /* Determine the architecture and machine type of the object file.  */
  abfd->obj_arch = bfd_arch_obscure;
  abfd->obj_arch = bfd_arch_obscure;
 
 
  adata(abfd)->page_size = TARGET_PAGE_SIZE;
  adata(abfd)->page_size = TARGET_PAGE_SIZE;
  adata(abfd)->segment_size = SEGMENT_SIZE;
  adata(abfd)->segment_size = SEGMENT_SIZE;
  adata(abfd)->exec_bytes_size = EXEC_BYTES_SIZE;
  adata(abfd)->exec_bytes_size = EXEC_BYTES_SIZE;
 
 
  return abfd->xvec;
  return abfd->xvec;
 
 
  /* The architecture is encoded in various ways in various a.out variants,
  /* The architecture is encoded in various ways in various a.out variants,
     or is not encoded at all in some of them.  The relocation size depends
     or is not encoded at all in some of them.  The relocation size depends
     on the architecture and the a.out variant.  Finally, the return value
     on the architecture and the a.out variant.  Finally, the return value
     is the bfd_target vector in use.  If an error occurs, return zero and
     is the bfd_target vector in use.  If an error occurs, return zero and
     set bfd_error to the appropriate error code.
     set bfd_error to the appropriate error code.
 
 
     Formats such as b.out, which have additional fields in the a.out
     Formats such as b.out, which have additional fields in the a.out
     header, should cope with them in this callback as well.  */
     header, should cope with them in this callback as well.  */
#endif                          /* DOCUMENTATION */
#endif                          /* DOCUMENTATION */
 
 
  result = (*callback_to_real_object_p)(abfd);
  result = (*callback_to_real_object_p)(abfd);
 
 
  /* Now that the segment addresses have been worked out, take a better
  /* Now that the segment addresses have been worked out, take a better
     guess at whether the file is executable.  If the entry point
     guess at whether the file is executable.  If the entry point
     is within the text segment, assume it is.  (This makes files
     is within the text segment, assume it is.  (This makes files
     executable even if their entry point address is 0, as long as
     executable even if their entry point address is 0, as long as
     their text starts at zero.).
     their text starts at zero.).
 
 
     This test had to be changed to deal with systems where the text segment
     This test had to be changed to deal with systems where the text segment
     runs at a different location than the default.  The problem is that the
     runs at a different location than the default.  The problem is that the
     entry address can appear to be outside the text segment, thus causing an
     entry address can appear to be outside the text segment, thus causing an
     erroneous conclusion that the file isn't executable.
     erroneous conclusion that the file isn't executable.
 
 
     To fix this, we now accept any non-zero entry point as an indication of
     To fix this, we now accept any non-zero entry point as an indication of
     executability.  This will work most of the time, since only the linker
     executability.  This will work most of the time, since only the linker
     sets the entry point, and that is likely to be non-zero for most systems. */
     sets the entry point, and that is likely to be non-zero for most systems. */
 
 
  if (execp->a_entry != 0
  if (execp->a_entry != 0
      || (execp->a_entry >= obj_textsec(abfd)->vma
      || (execp->a_entry >= obj_textsec(abfd)->vma
          && execp->a_entry < obj_textsec(abfd)->vma + obj_textsec(abfd)->_raw_size))
          && execp->a_entry < obj_textsec(abfd)->vma + obj_textsec(abfd)->_raw_size))
    abfd->flags |= EXEC_P;
    abfd->flags |= EXEC_P;
#ifdef STAT_FOR_EXEC
#ifdef STAT_FOR_EXEC
  else
  else
    {
    {
      struct stat stat_buf;
      struct stat stat_buf;
 
 
      /* The original heuristic doesn't work in some important cases.
      /* The original heuristic doesn't work in some important cases.
        The a.out file has no information about the text start
        The a.out file has no information about the text start
        address.  For files (like kernels) linked to non-standard
        address.  For files (like kernels) linked to non-standard
        addresses (ld -Ttext nnn) the entry point may not be between
        addresses (ld -Ttext nnn) the entry point may not be between
        the default text start (obj_textsec(abfd)->vma) and
        the default text start (obj_textsec(abfd)->vma) and
        (obj_textsec(abfd)->vma) + text size.  This is not just a mach
        (obj_textsec(abfd)->vma) + text size.  This is not just a mach
        issue.  Many kernels are loaded at non standard addresses.  */
        issue.  Many kernels are loaded at non standard addresses.  */
      if (abfd->iostream != NULL
      if (abfd->iostream != NULL
          && (abfd->flags & BFD_IN_MEMORY) == 0
          && (abfd->flags & BFD_IN_MEMORY) == 0
          && (fstat(fileno((FILE *) (abfd->iostream)), &stat_buf) == 0)
          && (fstat(fileno((FILE *) (abfd->iostream)), &stat_buf) == 0)
          && ((stat_buf.st_mode & 0111) != 0))
          && ((stat_buf.st_mode & 0111) != 0))
        abfd->flags |= EXEC_P;
        abfd->flags |= EXEC_P;
    }
    }
#endif /* STAT_FOR_EXEC */
#endif /* STAT_FOR_EXEC */
 
 
  if (result)
  if (result)
    {
    {
#if 0 /* These should be set correctly anyways.  */
#if 0 /* These should be set correctly anyways.  */
      abfd->sections = obj_textsec (abfd);
      abfd->sections = obj_textsec (abfd);
      obj_textsec (abfd)->next = obj_datasec (abfd);
      obj_textsec (abfd)->next = obj_datasec (abfd);
      obj_datasec (abfd)->next = obj_bsssec (abfd);
      obj_datasec (abfd)->next = obj_bsssec (abfd);
#endif
#endif
    }
    }
  else
  else
    {
    {
      free (rawptr);
      free (rawptr);
      abfd->tdata.aout_data = oldrawptr;
      abfd->tdata.aout_data = oldrawptr;
    }
    }
  return result;
  return result;
}
}
 
 
/*
/*
FUNCTION
FUNCTION
        aout_@var{size}_mkobject
        aout_@var{size}_mkobject
 
 
SYNOPSIS
SYNOPSIS
        boolean aout_@var{size}_mkobject, (bfd *abfd);
        boolean aout_@var{size}_mkobject, (bfd *abfd);
 
 
DESCRIPTION
DESCRIPTION
        Initialize BFD @var{abfd} for use with a.out files.
        Initialize BFD @var{abfd} for use with a.out files.
*/
*/
 
 
boolean
boolean
NAME(aout,mkobject) (abfd)
NAME(aout,mkobject) (abfd)
     bfd *abfd;
     bfd *abfd;
{
{
  struct aout_data_struct  *rawptr;
  struct aout_data_struct  *rawptr;
 
 
  bfd_set_error (bfd_error_system_call);
  bfd_set_error (bfd_error_system_call);
 
 
  /* Use an intermediate variable for clarity */
  /* Use an intermediate variable for clarity */
  rawptr = (struct aout_data_struct *)bfd_zalloc (abfd, sizeof (struct aout_data_struct ));
  rawptr = (struct aout_data_struct *)bfd_zalloc (abfd, sizeof (struct aout_data_struct ));
 
 
  if (rawptr == NULL)
  if (rawptr == NULL)
    return false;
    return false;
 
 
  abfd->tdata.aout_data = rawptr;
  abfd->tdata.aout_data = rawptr;
  exec_hdr (abfd) = &(rawptr->e);
  exec_hdr (abfd) = &(rawptr->e);
 
 
  obj_textsec (abfd) = (asection *)NULL;
  obj_textsec (abfd) = (asection *)NULL;
  obj_datasec (abfd) = (asection *)NULL;
  obj_datasec (abfd) = (asection *)NULL;
  obj_bsssec (abfd) = (asection *)NULL;
  obj_bsssec (abfd) = (asection *)NULL;
 
 
  return true;
  return true;
}
}
 
 
 
 
/*
/*
FUNCTION
FUNCTION
        aout_@var{size}_machine_type
        aout_@var{size}_machine_type
 
 
SYNOPSIS
SYNOPSIS
        enum machine_type  aout_@var{size}_machine_type
        enum machine_type  aout_@var{size}_machine_type
         (enum bfd_architecture arch,
         (enum bfd_architecture arch,
          unsigned long machine));
          unsigned long machine));
 
 
DESCRIPTION
DESCRIPTION
        Keep track of machine architecture and machine type for
        Keep track of machine architecture and machine type for
        a.out's. Return the <<machine_type>> for a particular
        a.out's. Return the <<machine_type>> for a particular
        architecture and machine, or <<M_UNKNOWN>> if that exact architecture
        architecture and machine, or <<M_UNKNOWN>> if that exact architecture
        and machine can't be represented in a.out format.
        and machine can't be represented in a.out format.
 
 
        If the architecture is understood, machine type 0 (default)
        If the architecture is understood, machine type 0 (default)
        is always understood.
        is always understood.
*/
*/
 
 
enum machine_type
enum machine_type
NAME(aout,machine_type) (arch, machine, unknown)
NAME(aout,machine_type) (arch, machine, unknown)
     enum bfd_architecture arch;
     enum bfd_architecture arch;
     unsigned long machine;
     unsigned long machine;
     boolean *unknown;
     boolean *unknown;
{
{
  enum machine_type arch_flags;
  enum machine_type arch_flags;
 
 
  arch_flags = M_UNKNOWN;
  arch_flags = M_UNKNOWN;
  *unknown = true;
  *unknown = true;
 
 
  switch (arch)
  switch (arch)
    {
    {
    case bfd_arch_sparc:
    case bfd_arch_sparc:
      if (machine == 0
      if (machine == 0
          || machine == bfd_mach_sparc
          || machine == bfd_mach_sparc
          || machine == bfd_mach_sparc_sparclite
          || machine == bfd_mach_sparc_sparclite
          || machine == bfd_mach_sparc_v9)
          || machine == bfd_mach_sparc_v9)
        arch_flags = M_SPARC;
        arch_flags = M_SPARC;
      else if (machine == bfd_mach_sparc_sparclet)
      else if (machine == bfd_mach_sparc_sparclet)
        arch_flags = M_SPARCLET;
        arch_flags = M_SPARCLET;
      break;
      break;
 
 
    case bfd_arch_m68k:
    case bfd_arch_m68k:
      switch (machine)
      switch (machine)
        {
        {
        case 0:                arch_flags = M_68010; break;
        case 0:                arch_flags = M_68010; break;
        case bfd_mach_m68000: arch_flags = M_UNKNOWN; *unknown = false; break;
        case bfd_mach_m68000: arch_flags = M_UNKNOWN; *unknown = false; break;
        case bfd_mach_m68010: arch_flags = M_68010; break;
        case bfd_mach_m68010: arch_flags = M_68010; break;
        case bfd_mach_m68020: arch_flags = M_68020; break;
        case bfd_mach_m68020: arch_flags = M_68020; break;
        default:              arch_flags = M_UNKNOWN; break;
        default:              arch_flags = M_UNKNOWN; break;
        }
        }
      break;
      break;
 
 
    case bfd_arch_i386:
    case bfd_arch_i386:
      if (machine == 0)  arch_flags = M_386;
      if (machine == 0)  arch_flags = M_386;
      break;
      break;
 
 
    case bfd_arch_a29k:
    case bfd_arch_a29k:
      if (machine == 0)  arch_flags = M_29K;
      if (machine == 0)  arch_flags = M_29K;
      break;
      break;
 
 
    case bfd_arch_arm:
    case bfd_arch_arm:
      if (machine == 0)  arch_flags = M_ARM;
      if (machine == 0)  arch_flags = M_ARM;
      break;
      break;
 
 
    case bfd_arch_mips:
    case bfd_arch_mips:
      switch (machine)
      switch (machine)
        {
        {
        case 0:
        case 0:
        case 2000:
        case 2000:
        case bfd_mach_mips3000:
        case bfd_mach_mips3000:
          arch_flags = M_MIPS1;
          arch_flags = M_MIPS1;
          break;
          break;
        case bfd_mach_mips4000: /* mips3 */
        case bfd_mach_mips4000: /* mips3 */
        case bfd_mach_mips4400:
        case bfd_mach_mips4400:
        case bfd_mach_mips8000: /* mips4 */
        case bfd_mach_mips8000: /* mips4 */
        case bfd_mach_mips6000: /* real mips2: */
        case bfd_mach_mips6000: /* real mips2: */
          arch_flags = M_MIPS2;
          arch_flags = M_MIPS2;
          break;
          break;
        default:
        default:
          arch_flags = M_UNKNOWN;
          arch_flags = M_UNKNOWN;
          break;
          break;
        }
        }
      break;
      break;
 
 
    case bfd_arch_ns32k:
    case bfd_arch_ns32k:
      switch (machine)
      switch (machine)
        {
        {
        case 0:                  arch_flags = M_NS32532; break;
        case 0:                  arch_flags = M_NS32532; break;
        case 32032:             arch_flags = M_NS32032; break;
        case 32032:             arch_flags = M_NS32032; break;
        case 32532:             arch_flags = M_NS32532; break;
        case 32532:             arch_flags = M_NS32532; break;
        default:                arch_flags = M_UNKNOWN; break;
        default:                arch_flags = M_UNKNOWN; break;
        }
        }
      break;
      break;
 
 
    case bfd_arch_pdp11:
    case bfd_arch_pdp11:
      /* TODO: arch_flags = M_PDP11; */
      /* TODO: arch_flags = M_PDP11; */
      *unknown = false;
      *unknown = false;
      break;
      break;
 
 
    case bfd_arch_vax:
    case bfd_arch_vax:
      *unknown = false;
      *unknown = false;
      break;
      break;
 
 
    default:
    default:
      arch_flags = M_UNKNOWN;
      arch_flags = M_UNKNOWN;
    }
    }
 
 
  if (arch_flags != M_UNKNOWN)
  if (arch_flags != M_UNKNOWN)
    *unknown = false;
    *unknown = false;
 
 
  return arch_flags;
  return arch_flags;
}
}
 
 
 
 
/*
/*
FUNCTION
FUNCTION
        aout_@var{size}_set_arch_mach
        aout_@var{size}_set_arch_mach
 
 
SYNOPSIS
SYNOPSIS
        boolean aout_@var{size}_set_arch_mach,
        boolean aout_@var{size}_set_arch_mach,
         (bfd *,
         (bfd *,
          enum bfd_architecture arch,
          enum bfd_architecture arch,
          unsigned long machine));
          unsigned long machine));
 
 
DESCRIPTION
DESCRIPTION
        Set the architecture and the machine of the BFD @var{abfd} to the
        Set the architecture and the machine of the BFD @var{abfd} to the
        values @var{arch} and @var{machine}.  Verify that @var{abfd}'s format
        values @var{arch} and @var{machine}.  Verify that @var{abfd}'s format
        can support the architecture required.
        can support the architecture required.
*/
*/
 
 
boolean
boolean
NAME(aout,set_arch_mach) (abfd, arch, machine)
NAME(aout,set_arch_mach) (abfd, arch, machine)
     bfd *abfd;
     bfd *abfd;
     enum bfd_architecture arch;
     enum bfd_architecture arch;
     unsigned long machine;
     unsigned long machine;
{
{
  if (! bfd_default_set_arch_mach (abfd, arch, machine))
  if (! bfd_default_set_arch_mach (abfd, arch, machine))
    return false;
    return false;
 
 
  if (arch != bfd_arch_unknown)
  if (arch != bfd_arch_unknown)
    {
    {
      boolean unknown;
      boolean unknown;
 
 
      NAME(aout,machine_type) (arch, machine, &unknown);
      NAME(aout,machine_type) (arch, machine, &unknown);
      if (unknown)
      if (unknown)
        return false;
        return false;
    }
    }
 
 
  obj_reloc_entry_size (abfd) = RELOC_SIZE;
  obj_reloc_entry_size (abfd) = RELOC_SIZE;
 
 
  return (*aout_backend_info(abfd)->set_sizes) (abfd);
  return (*aout_backend_info(abfd)->set_sizes) (abfd);
}
}
 
 
static void
static void
adjust_o_magic (abfd, execp)
adjust_o_magic (abfd, execp)
     bfd *abfd;
     bfd *abfd;
     struct internal_exec *execp;
     struct internal_exec *execp;
{
{
  file_ptr pos = adata (abfd).exec_bytes_size;
  file_ptr pos = adata (abfd).exec_bytes_size;
  bfd_vma vma = 0;
  bfd_vma vma = 0;
  int pad = 0;
  int pad = 0;
 
 
  /* Text.  */
  /* Text.  */
  obj_textsec (abfd)->filepos = pos;
  obj_textsec (abfd)->filepos = pos;
  if (! obj_textsec (abfd)->user_set_vma)
  if (! obj_textsec (abfd)->user_set_vma)
    obj_textsec (abfd)->vma = vma;
    obj_textsec (abfd)->vma = vma;
  else
  else
    vma = obj_textsec (abfd)->vma;
    vma = obj_textsec (abfd)->vma;
 
 
  pos += obj_textsec (abfd)->_raw_size;
  pos += obj_textsec (abfd)->_raw_size;
  vma += obj_textsec (abfd)->_raw_size;
  vma += obj_textsec (abfd)->_raw_size;
 
 
  /* Data.  */
  /* Data.  */
  if (!obj_datasec (abfd)->user_set_vma)
  if (!obj_datasec (abfd)->user_set_vma)
    {
    {
#if 0       /* ?? Does alignment in the file image really matter? */
#if 0       /* ?? Does alignment in the file image really matter? */
      pad = align_power (vma, obj_datasec (abfd)->alignment_power) - vma;
      pad = align_power (vma, obj_datasec (abfd)->alignment_power) - vma;
#endif
#endif
      obj_textsec (abfd)->_raw_size += pad;
      obj_textsec (abfd)->_raw_size += pad;
      pos += pad;
      pos += pad;
      vma += pad;
      vma += pad;
      obj_datasec (abfd)->vma = vma;
      obj_datasec (abfd)->vma = vma;
    }
    }
  else
  else
    vma = obj_datasec (abfd)->vma;
    vma = obj_datasec (abfd)->vma;
  obj_datasec (abfd)->filepos = pos;
  obj_datasec (abfd)->filepos = pos;
  pos += obj_datasec (abfd)->_raw_size;
  pos += obj_datasec (abfd)->_raw_size;
  vma += obj_datasec (abfd)->_raw_size;
  vma += obj_datasec (abfd)->_raw_size;
 
 
  /* BSS.  */
  /* BSS.  */
  if (! obj_bsssec (abfd)->user_set_vma)
  if (! obj_bsssec (abfd)->user_set_vma)
    {
    {
#if 0
#if 0
      pad = align_power (vma, obj_bsssec (abfd)->alignment_power) - vma;
      pad = align_power (vma, obj_bsssec (abfd)->alignment_power) - vma;
#endif
#endif
      obj_datasec (abfd)->_raw_size += pad;
      obj_datasec (abfd)->_raw_size += pad;
      pos += pad;
      pos += pad;
      vma += pad;
      vma += pad;
      obj_bsssec (abfd)->vma = vma;
      obj_bsssec (abfd)->vma = vma;
    }
    }
  else
  else
    {
    {
      /* The VMA of the .bss section is set by the the VMA of the
      /* The VMA of the .bss section is set by the the VMA of the
         .data section plus the size of the .data section.  We may
         .data section plus the size of the .data section.  We may
         need to add padding bytes to make this true.  */
         need to add padding bytes to make this true.  */
      pad = obj_bsssec (abfd)->vma - vma;
      pad = obj_bsssec (abfd)->vma - vma;
      if (pad > 0)
      if (pad > 0)
        {
        {
          obj_datasec (abfd)->_raw_size += pad;
          obj_datasec (abfd)->_raw_size += pad;
          pos += pad;
          pos += pad;
        }
        }
    }
    }
  obj_bsssec (abfd)->filepos = pos;
  obj_bsssec (abfd)->filepos = pos;
 
 
  /* Fix up the exec header.  */
  /* Fix up the exec header.  */
  execp->a_text = obj_textsec (abfd)->_raw_size;
  execp->a_text = obj_textsec (abfd)->_raw_size;
  execp->a_data = obj_datasec (abfd)->_raw_size;
  execp->a_data = obj_datasec (abfd)->_raw_size;
  execp->a_bss  = obj_bsssec (abfd)->_raw_size;
  execp->a_bss  = obj_bsssec (abfd)->_raw_size;
  N_SET_MAGIC (*execp, OMAGIC);
  N_SET_MAGIC (*execp, OMAGIC);
}
}
 
 
static void
static void
adjust_z_magic (abfd, execp)
adjust_z_magic (abfd, execp)
     bfd *abfd;
     bfd *abfd;
     struct internal_exec *execp;
     struct internal_exec *execp;
{
{
  bfd_size_type data_pad, text_pad;
  bfd_size_type data_pad, text_pad;
  file_ptr text_end;
  file_ptr text_end;
  CONST struct aout_backend_data *abdp;
  CONST struct aout_backend_data *abdp;
  int ztih;                     /* Nonzero if text includes exec header.  */
  int ztih;                     /* Nonzero if text includes exec header.  */
 
 
  abdp = aout_backend_info (abfd);
  abdp = aout_backend_info (abfd);
 
 
  /* Text.  */
  /* Text.  */
  ztih = (abdp != NULL
  ztih = (abdp != NULL
          && (abdp->text_includes_header
          && (abdp->text_includes_header
              || obj_aout_subformat (abfd) == q_magic_format));
              || obj_aout_subformat (abfd) == q_magic_format));
  obj_textsec(abfd)->filepos = (ztih
  obj_textsec(abfd)->filepos = (ztih
                                ? adata(abfd).exec_bytes_size
                                ? adata(abfd).exec_bytes_size
                                : adata(abfd).zmagic_disk_block_size);
                                : adata(abfd).zmagic_disk_block_size);
  if (! obj_textsec(abfd)->user_set_vma)
  if (! obj_textsec(abfd)->user_set_vma)
    {
    {
      /* ?? Do we really need to check for relocs here?  */
      /* ?? Do we really need to check for relocs here?  */
      obj_textsec(abfd)->vma = ((abfd->flags & HAS_RELOC)
      obj_textsec(abfd)->vma = ((abfd->flags & HAS_RELOC)
                                ? 0
                                ? 0
                                : (ztih
                                : (ztih
                                   ? (abdp->default_text_vma
                                   ? (abdp->default_text_vma
                                      + adata (abfd).exec_bytes_size)
                                      + adata (abfd).exec_bytes_size)
                                   : abdp->default_text_vma));
                                   : abdp->default_text_vma));
      text_pad = 0;
      text_pad = 0;
    }
    }
  else
  else
    {
    {
      /* The .text section is being loaded at an unusual address.  We
      /* The .text section is being loaded at an unusual address.  We
         may need to pad it such that the .data section starts at a page
         may need to pad it such that the .data section starts at a page
         boundary.  */
         boundary.  */
      if (ztih)
      if (ztih)
        text_pad = ((obj_textsec (abfd)->filepos - obj_textsec (abfd)->vma)
        text_pad = ((obj_textsec (abfd)->filepos - obj_textsec (abfd)->vma)
                    & (adata (abfd).page_size - 1));
                    & (adata (abfd).page_size - 1));
      else
      else
        text_pad = ((- obj_textsec (abfd)->vma)
        text_pad = ((- obj_textsec (abfd)->vma)
                    & (adata (abfd).page_size - 1));
                    & (adata (abfd).page_size - 1));
    }
    }
 
 
  /* Find start of data.  */
  /* Find start of data.  */
  if (ztih)
  if (ztih)
    {
    {
      text_end = obj_textsec (abfd)->filepos + obj_textsec (abfd)->_raw_size;
      text_end = obj_textsec (abfd)->filepos + obj_textsec (abfd)->_raw_size;
      text_pad += BFD_ALIGN (text_end, adata (abfd).page_size) - text_end;
      text_pad += BFD_ALIGN (text_end, adata (abfd).page_size) - text_end;
    }
    }
  else
  else
    {
    {
      /* Note that if page_size == zmagic_disk_block_size, then
      /* Note that if page_size == zmagic_disk_block_size, then
         filepos == page_size, and this case is the same as the ztih
         filepos == page_size, and this case is the same as the ztih
         case.  */
         case.  */
      text_end = obj_textsec (abfd)->_raw_size;
      text_end = obj_textsec (abfd)->_raw_size;
      text_pad += BFD_ALIGN (text_end, adata (abfd).page_size) - text_end;
      text_pad += BFD_ALIGN (text_end, adata (abfd).page_size) - text_end;
      text_end += obj_textsec (abfd)->filepos;
      text_end += obj_textsec (abfd)->filepos;
    }
    }
 
 
  obj_textsec (abfd)->_raw_size += text_pad;
  obj_textsec (abfd)->_raw_size += text_pad;
  text_end += text_pad;
  text_end += text_pad;
 
 
  /* Data.  */
  /* Data.  */
  if (!obj_datasec(abfd)->user_set_vma)
  if (!obj_datasec(abfd)->user_set_vma)
    {
    {
      bfd_vma vma;
      bfd_vma vma;
      vma = obj_textsec(abfd)->vma + obj_textsec(abfd)->_raw_size;
      vma = obj_textsec(abfd)->vma + obj_textsec(abfd)->_raw_size;
      obj_datasec(abfd)->vma = BFD_ALIGN (vma, adata(abfd).segment_size);
      obj_datasec(abfd)->vma = BFD_ALIGN (vma, adata(abfd).segment_size);
    }
    }
  if (abdp && abdp->zmagic_mapped_contiguous)
  if (abdp && abdp->zmagic_mapped_contiguous)
    {
    {
      text_pad = (obj_datasec(abfd)->vma
      text_pad = (obj_datasec(abfd)->vma
                  - obj_textsec(abfd)->vma
                  - obj_textsec(abfd)->vma
                  - obj_textsec(abfd)->_raw_size);
                  - obj_textsec(abfd)->_raw_size);
      obj_textsec(abfd)->_raw_size += text_pad;
      obj_textsec(abfd)->_raw_size += text_pad;
    }
    }
  obj_datasec (abfd)->filepos = (obj_textsec (abfd)->filepos
  obj_datasec (abfd)->filepos = (obj_textsec (abfd)->filepos
                                + obj_textsec (abfd)->_raw_size);
                                + obj_textsec (abfd)->_raw_size);
 
 
  /* Fix up exec header while we're at it.  */
  /* Fix up exec header while we're at it.  */
  execp->a_text = obj_textsec(abfd)->_raw_size;
  execp->a_text = obj_textsec(abfd)->_raw_size;
  if (ztih && (!abdp || (abdp && !abdp->exec_header_not_counted)))
  if (ztih && (!abdp || (abdp && !abdp->exec_header_not_counted)))
    execp->a_text += adata(abfd).exec_bytes_size;
    execp->a_text += adata(abfd).exec_bytes_size;
  if (obj_aout_subformat (abfd) == q_magic_format)
  if (obj_aout_subformat (abfd) == q_magic_format)
    N_SET_MAGIC (*execp, QMAGIC);
    N_SET_MAGIC (*execp, QMAGIC);
  else
  else
    N_SET_MAGIC (*execp, ZMAGIC);
    N_SET_MAGIC (*execp, ZMAGIC);
 
 
  /* Spec says data section should be rounded up to page boundary.  */
  /* Spec says data section should be rounded up to page boundary.  */
  obj_datasec(abfd)->_raw_size
  obj_datasec(abfd)->_raw_size
    = align_power (obj_datasec(abfd)->_raw_size,
    = align_power (obj_datasec(abfd)->_raw_size,
                   obj_bsssec(abfd)->alignment_power);
                   obj_bsssec(abfd)->alignment_power);
  execp->a_data = BFD_ALIGN (obj_datasec(abfd)->_raw_size,
  execp->a_data = BFD_ALIGN (obj_datasec(abfd)->_raw_size,
                             adata(abfd).page_size);
                             adata(abfd).page_size);
  data_pad = execp->a_data - obj_datasec(abfd)->_raw_size;
  data_pad = execp->a_data - obj_datasec(abfd)->_raw_size;
 
 
  /* BSS.  */
  /* BSS.  */
  if (!obj_bsssec(abfd)->user_set_vma)
  if (!obj_bsssec(abfd)->user_set_vma)
    obj_bsssec(abfd)->vma = (obj_datasec(abfd)->vma
    obj_bsssec(abfd)->vma = (obj_datasec(abfd)->vma
                             + obj_datasec(abfd)->_raw_size);
                             + obj_datasec(abfd)->_raw_size);
  /* If the BSS immediately follows the data section and extra space
  /* If the BSS immediately follows the data section and extra space
     in the page is left after the data section, fudge data
     in the page is left after the data section, fudge data
     in the header so that the bss section looks smaller by that
     in the header so that the bss section looks smaller by that
     amount.  We'll start the bss section there, and lie to the OS.
     amount.  We'll start the bss section there, and lie to the OS.
     (Note that a linker script, as well as the above assignment,
     (Note that a linker script, as well as the above assignment,
     could have explicitly set the BSS vma to immediately follow
     could have explicitly set the BSS vma to immediately follow
     the data section.)  */
     the data section.)  */
  if (align_power (obj_bsssec(abfd)->vma, obj_bsssec(abfd)->alignment_power)
  if (align_power (obj_bsssec(abfd)->vma, obj_bsssec(abfd)->alignment_power)
      == obj_datasec(abfd)->vma + obj_datasec(abfd)->_raw_size)
      == obj_datasec(abfd)->vma + obj_datasec(abfd)->_raw_size)
    execp->a_bss = (data_pad > obj_bsssec(abfd)->_raw_size) ? 0 :
    execp->a_bss = (data_pad > obj_bsssec(abfd)->_raw_size) ? 0 :
      obj_bsssec(abfd)->_raw_size - data_pad;
      obj_bsssec(abfd)->_raw_size - data_pad;
  else
  else
    execp->a_bss = obj_bsssec(abfd)->_raw_size;
    execp->a_bss = obj_bsssec(abfd)->_raw_size;
}
}
 
 
static void
static void
adjust_n_magic (abfd, execp)
adjust_n_magic (abfd, execp)
     bfd *abfd;
     bfd *abfd;
     struct internal_exec *execp;
     struct internal_exec *execp;
{
{
  file_ptr pos = adata(abfd).exec_bytes_size;
  file_ptr pos = adata(abfd).exec_bytes_size;
  bfd_vma vma = 0;
  bfd_vma vma = 0;
  int pad;
  int pad;
 
 
  /* Text.  */
  /* Text.  */
  obj_textsec(abfd)->filepos = pos;
  obj_textsec(abfd)->filepos = pos;
  if (!obj_textsec(abfd)->user_set_vma)
  if (!obj_textsec(abfd)->user_set_vma)
    obj_textsec(abfd)->vma = vma;
    obj_textsec(abfd)->vma = vma;
  else
  else
    vma = obj_textsec(abfd)->vma;
    vma = obj_textsec(abfd)->vma;
  pos += obj_textsec(abfd)->_raw_size;
  pos += obj_textsec(abfd)->_raw_size;
  vma += obj_textsec(abfd)->_raw_size;
  vma += obj_textsec(abfd)->_raw_size;
 
 
  /* Data.  */
  /* Data.  */
  obj_datasec(abfd)->filepos = pos;
  obj_datasec(abfd)->filepos = pos;
  if (!obj_datasec(abfd)->user_set_vma)
  if (!obj_datasec(abfd)->user_set_vma)
    obj_datasec(abfd)->vma = BFD_ALIGN (vma, adata(abfd).segment_size);
    obj_datasec(abfd)->vma = BFD_ALIGN (vma, adata(abfd).segment_size);
  vma = obj_datasec(abfd)->vma;
  vma = obj_datasec(abfd)->vma;
 
 
  /* Since BSS follows data immediately, see if it needs alignment.  */
  /* Since BSS follows data immediately, see if it needs alignment.  */
  vma += obj_datasec(abfd)->_raw_size;
  vma += obj_datasec(abfd)->_raw_size;
  pad = align_power (vma, obj_bsssec(abfd)->alignment_power) - vma;
  pad = align_power (vma, obj_bsssec(abfd)->alignment_power) - vma;
  obj_datasec(abfd)->_raw_size += pad;
  obj_datasec(abfd)->_raw_size += pad;
  pos += obj_datasec(abfd)->_raw_size;
  pos += obj_datasec(abfd)->_raw_size;
 
 
  /* BSS.  */
  /* BSS.  */
  if (!obj_bsssec(abfd)->user_set_vma)
  if (!obj_bsssec(abfd)->user_set_vma)
    obj_bsssec(abfd)->vma = vma;
    obj_bsssec(abfd)->vma = vma;
  else
  else
    vma = obj_bsssec(abfd)->vma;
    vma = obj_bsssec(abfd)->vma;
 
 
  /* Fix up exec header.  */
  /* Fix up exec header.  */
  execp->a_text = obj_textsec(abfd)->_raw_size;
  execp->a_text = obj_textsec(abfd)->_raw_size;
  execp->a_data = obj_datasec(abfd)->_raw_size;
  execp->a_data = obj_datasec(abfd)->_raw_size;
  execp->a_bss = obj_bsssec(abfd)->_raw_size;
  execp->a_bss = obj_bsssec(abfd)->_raw_size;
  N_SET_MAGIC (*execp, NMAGIC);
  N_SET_MAGIC (*execp, NMAGIC);
}
}
 
 
boolean
boolean
NAME(aout,adjust_sizes_and_vmas) (abfd, text_size, text_end)
NAME(aout,adjust_sizes_and_vmas) (abfd, text_size, text_end)
     bfd *abfd;
     bfd *abfd;
     bfd_size_type *text_size;
     bfd_size_type *text_size;
     file_ptr * text_end ATTRIBUTE_UNUSED;
     file_ptr * text_end ATTRIBUTE_UNUSED;
{
{
  struct internal_exec *execp = exec_hdr (abfd);
  struct internal_exec *execp = exec_hdr (abfd);
 
 
  if (! NAME(aout,make_sections) (abfd))
  if (! NAME(aout,make_sections) (abfd))
    return false;
    return false;
 
 
  if (adata(abfd).magic != undecided_magic)
  if (adata(abfd).magic != undecided_magic)
    return true;
    return true;
 
 
  obj_textsec(abfd)->_raw_size =
  obj_textsec(abfd)->_raw_size =
    align_power(obj_textsec(abfd)->_raw_size,
    align_power(obj_textsec(abfd)->_raw_size,
                obj_textsec(abfd)->alignment_power);
                obj_textsec(abfd)->alignment_power);
 
 
  *text_size = obj_textsec (abfd)->_raw_size;
  *text_size = obj_textsec (abfd)->_raw_size;
  /* Rule (heuristic) for when to pad to a new page.  Note that there
  /* Rule (heuristic) for when to pad to a new page.  Note that there
     are (at least) two ways demand-paged (ZMAGIC) files have been
     are (at least) two ways demand-paged (ZMAGIC) files have been
     handled.  Most Berkeley-based systems start the text segment at
     handled.  Most Berkeley-based systems start the text segment at
     (TARGET_PAGE_SIZE).  However, newer versions of SUNOS start the text
     (TARGET_PAGE_SIZE).  However, newer versions of SUNOS start the text
     segment right after the exec header; the latter is counted in the
     segment right after the exec header; the latter is counted in the
     text segment size, and is paged in by the kernel with the rest of
     text segment size, and is paged in by the kernel with the rest of
     the text. */
     the text. */
 
 
  /* This perhaps isn't the right way to do this, but made it simpler for me
  /* This perhaps isn't the right way to do this, but made it simpler for me
     to understand enough to implement it.  Better would probably be to go
     to understand enough to implement it.  Better would probably be to go
     right from BFD flags to alignment/positioning characteristics.  But the
     right from BFD flags to alignment/positioning characteristics.  But the
     old code was sloppy enough about handling the flags, and had enough
     old code was sloppy enough about handling the flags, and had enough
     other magic, that it was a little hard for me to understand.  I think
     other magic, that it was a little hard for me to understand.  I think
     I understand it better now, but I haven't time to do the cleanup this
     I understand it better now, but I haven't time to do the cleanup this
     minute.  */
     minute.  */
 
 
  if (abfd->flags & WP_TEXT)
  if (abfd->flags & WP_TEXT)
    adata(abfd).magic = n_magic;
    adata(abfd).magic = n_magic;
  else
  else
    adata(abfd).magic = o_magic;
    adata(abfd).magic = o_magic;
 
 
#ifdef BFD_AOUT_DEBUG /* requires gcc2 */
#ifdef BFD_AOUT_DEBUG /* requires gcc2 */
#if __GNUC__ >= 2
#if __GNUC__ >= 2
  fprintf (stderr, "%s text=<%x,%x,%x> data=<%x,%x,%x> bss=<%x,%x,%x>\n",
  fprintf (stderr, "%s text=<%x,%x,%x> data=<%x,%x,%x> bss=<%x,%x,%x>\n",
           ({ char *str;
           ({ char *str;
              switch (adata(abfd).magic) {
              switch (adata(abfd).magic) {
              case n_magic: str = "NMAGIC"; break;
              case n_magic: str = "NMAGIC"; break;
              case o_magic: str = "OMAGIC"; break;
              case o_magic: str = "OMAGIC"; break;
              case z_magic: str = "ZMAGIC"; break;
              case z_magic: str = "ZMAGIC"; break;
              default: abort ();
              default: abort ();
              }
              }
              str;
              str;
            }),
            }),
           obj_textsec(abfd)->vma, obj_textsec(abfd)->_raw_size,
           obj_textsec(abfd)->vma, obj_textsec(abfd)->_raw_size,
                obj_textsec(abfd)->alignment_power,
                obj_textsec(abfd)->alignment_power,
           obj_datasec(abfd)->vma, obj_datasec(abfd)->_raw_size,
           obj_datasec(abfd)->vma, obj_datasec(abfd)->_raw_size,
                obj_datasec(abfd)->alignment_power,
                obj_datasec(abfd)->alignment_power,
           obj_bsssec(abfd)->vma, obj_bsssec(abfd)->_raw_size,
           obj_bsssec(abfd)->vma, obj_bsssec(abfd)->_raw_size,
                obj_bsssec(abfd)->alignment_power);
                obj_bsssec(abfd)->alignment_power);
#endif
#endif
#endif
#endif
 
 
  switch (adata(abfd).magic)
  switch (adata(abfd).magic)
    {
    {
    case o_magic:
    case o_magic:
      adjust_o_magic (abfd, execp);
      adjust_o_magic (abfd, execp);
      break;
      break;
    case z_magic:
    case z_magic:
      adjust_z_magic (abfd, execp);
      adjust_z_magic (abfd, execp);
      break;
      break;
    case n_magic:
    case n_magic:
      adjust_n_magic (abfd, execp);
      adjust_n_magic (abfd, execp);
      break;
      break;
    default:
    default:
      abort ();
      abort ();
    }
    }
 
 
#ifdef BFD_AOUT_DEBUG
#ifdef BFD_AOUT_DEBUG
  fprintf (stderr, "       text=<%x,%x,%x> data=<%x,%x,%x> bss=<%x,%x>\n",
  fprintf (stderr, "       text=<%x,%x,%x> data=<%x,%x,%x> bss=<%x,%x>\n",
           obj_textsec(abfd)->vma, obj_textsec(abfd)->_raw_size,
           obj_textsec(abfd)->vma, obj_textsec(abfd)->_raw_size,
                obj_textsec(abfd)->filepos,
                obj_textsec(abfd)->filepos,
           obj_datasec(abfd)->vma, obj_datasec(abfd)->_raw_size,
           obj_datasec(abfd)->vma, obj_datasec(abfd)->_raw_size,
                obj_datasec(abfd)->filepos,
                obj_datasec(abfd)->filepos,
           obj_bsssec(abfd)->vma, obj_bsssec(abfd)->_raw_size);
           obj_bsssec(abfd)->vma, obj_bsssec(abfd)->_raw_size);
#endif
#endif
 
 
  return true;
  return true;
}
}
 
 
/*
/*
FUNCTION
FUNCTION
        aout_@var{size}_new_section_hook
        aout_@var{size}_new_section_hook
 
 
SYNOPSIS
SYNOPSIS
        boolean aout_@var{size}_new_section_hook,
        boolean aout_@var{size}_new_section_hook,
           (bfd *abfd,
           (bfd *abfd,
            asection *newsect));
            asection *newsect));
 
 
DESCRIPTION
DESCRIPTION
        Called by the BFD in response to a @code{bfd_make_section}
        Called by the BFD in response to a @code{bfd_make_section}
        request.
        request.
*/
*/
boolean
boolean
NAME(aout,new_section_hook) (abfd, newsect)
NAME(aout,new_section_hook) (abfd, newsect)
     bfd *abfd;
     bfd *abfd;
     asection *newsect;
     asection *newsect;
{
{
  /* align to double at least */
  /* align to double at least */
  newsect->alignment_power = bfd_get_arch_info(abfd)->section_align_power;
  newsect->alignment_power = bfd_get_arch_info(abfd)->section_align_power;
 
 
 
 
  if (bfd_get_format (abfd) == bfd_object)
  if (bfd_get_format (abfd) == bfd_object)
    {
    {
      if (obj_textsec (abfd) == NULL
      if (obj_textsec (abfd) == NULL
          && ! strcmp (newsect->name, ".text"))
          && ! strcmp (newsect->name, ".text"))
        {
        {
          obj_textsec(abfd)= newsect;
          obj_textsec(abfd)= newsect;
          newsect->target_index = N_TEXT;
          newsect->target_index = N_TEXT;
          return true;
          return true;
        }
        }
 
 
    if (obj_datasec (abfd) == NULL
    if (obj_datasec (abfd) == NULL
        && ! strcmp (newsect->name, ".data"))
        && ! strcmp (newsect->name, ".data"))
      {
      {
        obj_datasec (abfd) = newsect;
        obj_datasec (abfd) = newsect;
        newsect->target_index = N_DATA;
        newsect->target_index = N_DATA;
        return true;
        return true;
      }
      }
 
 
    if (obj_bsssec (abfd) == NULL
    if (obj_bsssec (abfd) == NULL
        && !strcmp (newsect->name, ".bss"))
        && !strcmp (newsect->name, ".bss"))
      {
      {
        obj_bsssec (abfd) = newsect;
        obj_bsssec (abfd) = newsect;
        newsect->target_index = N_BSS;
        newsect->target_index = N_BSS;
        return true;
        return true;
      }
      }
  }
  }
 
 
  /* We allow more than three sections internally */
  /* We allow more than three sections internally */
  return true;
  return true;
}
}
 
 
boolean
boolean
NAME(aout,set_section_contents) (abfd, section, location, offset, count)
NAME(aout,set_section_contents) (abfd, section, location, offset, count)
     bfd *abfd;
     bfd *abfd;
     sec_ptr section;
     sec_ptr section;
     PTR location;
     PTR location;
     file_ptr offset;
     file_ptr offset;
     bfd_size_type count;
     bfd_size_type count;
{
{
  file_ptr text_end;
  file_ptr text_end;
  bfd_size_type text_size;
  bfd_size_type text_size;
 
 
  if (! abfd->output_has_begun)
  if (! abfd->output_has_begun)
    {
    {
      if (! NAME(aout,adjust_sizes_and_vmas) (abfd, &text_size, &text_end))
      if (! NAME(aout,adjust_sizes_and_vmas) (abfd, &text_size, &text_end))
        return false;
        return false;
    }
    }
 
 
  if (section == obj_bsssec (abfd))
  if (section == obj_bsssec (abfd))
    {
    {
      bfd_set_error (bfd_error_no_contents);
      bfd_set_error (bfd_error_no_contents);
      return false;
      return false;
    }
    }
 
 
  if (section != obj_textsec (abfd)
  if (section != obj_textsec (abfd)
      && section != obj_datasec (abfd))
      && section != obj_datasec (abfd))
    {
    {
      (*_bfd_error_handler)
      (*_bfd_error_handler)
        ("%s: can not represent section `%s' in a.out object file format",
        ("%s: can not represent section `%s' in a.out object file format",
         bfd_get_filename (abfd), bfd_get_section_name (abfd, section));
         bfd_get_filename (abfd), bfd_get_section_name (abfd, section));
      bfd_set_error (bfd_error_nonrepresentable_section);
      bfd_set_error (bfd_error_nonrepresentable_section);
      return false;
      return false;
    }
    }
 
 
  if (count != 0)
  if (count != 0)
    {
    {
      if (bfd_seek (abfd, section->filepos + offset, SEEK_SET) != 0
      if (bfd_seek (abfd, section->filepos + offset, SEEK_SET) != 0
          || bfd_write (location, 1, count, abfd) != count)
          || bfd_write (location, 1, count, abfd) != count)
        return false;
        return false;
    }
    }
 
 
  return true;
  return true;
}
}


/* Read the external symbols from an a.out file.  */
/* Read the external symbols from an a.out file.  */
 
 
static boolean
static boolean
aout_get_external_symbols (abfd)
aout_get_external_symbols (abfd)
     bfd *abfd;
     bfd *abfd;
{
{
  if (obj_aout_external_syms (abfd) == (struct external_nlist *) NULL)
  if (obj_aout_external_syms (abfd) == (struct external_nlist *) NULL)
    {
    {
      bfd_size_type count;
      bfd_size_type count;
      struct external_nlist *syms;
      struct external_nlist *syms;
 
 
      count = exec_hdr (abfd)->a_syms / EXTERNAL_NLIST_SIZE;
      count = exec_hdr (abfd)->a_syms / EXTERNAL_NLIST_SIZE;
 
 
#ifdef USE_MMAP
#ifdef USE_MMAP
      if (bfd_get_file_window (abfd,
      if (bfd_get_file_window (abfd,
                               obj_sym_filepos (abfd), exec_hdr (abfd)->a_syms,
                               obj_sym_filepos (abfd), exec_hdr (abfd)->a_syms,
                               &obj_aout_sym_window (abfd), true) == false)
                               &obj_aout_sym_window (abfd), true) == false)
        return false;
        return false;
      syms = (struct external_nlist *) obj_aout_sym_window (abfd).data;
      syms = (struct external_nlist *) obj_aout_sym_window (abfd).data;
#else
#else
      /* We allocate using malloc to make the values easy to free
      /* We allocate using malloc to make the values easy to free
         later on.  If we put them on the objalloc it might not be
         later on.  If we put them on the objalloc it might not be
         possible to free them.  */
         possible to free them.  */
      syms = ((struct external_nlist *)
      syms = ((struct external_nlist *)
              bfd_malloc ((size_t) count * EXTERNAL_NLIST_SIZE));
              bfd_malloc ((size_t) count * EXTERNAL_NLIST_SIZE));
      if (syms == (struct external_nlist *) NULL && count != 0)
      if (syms == (struct external_nlist *) NULL && count != 0)
        return false;
        return false;
 
 
      if (bfd_seek (abfd, obj_sym_filepos (abfd), SEEK_SET) != 0
      if (bfd_seek (abfd, obj_sym_filepos (abfd), SEEK_SET) != 0
          || (bfd_read (syms, 1, exec_hdr (abfd)->a_syms, abfd)
          || (bfd_read (syms, 1, exec_hdr (abfd)->a_syms, abfd)
              != exec_hdr (abfd)->a_syms))
              != exec_hdr (abfd)->a_syms))
        {
        {
          free (syms);
          free (syms);
          return false;
          return false;
        }
        }
#endif
#endif
 
 
      obj_aout_external_syms (abfd) = syms;
      obj_aout_external_syms (abfd) = syms;
      obj_aout_external_sym_count (abfd) = count;
      obj_aout_external_sym_count (abfd) = count;
    }
    }
 
 
  if (obj_aout_external_strings (abfd) == NULL
  if (obj_aout_external_strings (abfd) == NULL
      && exec_hdr (abfd)->a_syms != 0)
      && exec_hdr (abfd)->a_syms != 0)
    {
    {
      unsigned char string_chars[BYTES_IN_LONG];
      unsigned char string_chars[BYTES_IN_LONG];
      bfd_size_type stringsize;
      bfd_size_type stringsize;
      char *strings;
      char *strings;
 
 
      /* Get the size of the strings.  */
      /* Get the size of the strings.  */
      if (bfd_seek (abfd, obj_str_filepos (abfd), SEEK_SET) != 0
      if (bfd_seek (abfd, obj_str_filepos (abfd), SEEK_SET) != 0
          || (bfd_read ((PTR) string_chars, BYTES_IN_LONG, 1, abfd) !=
          || (bfd_read ((PTR) string_chars, BYTES_IN_LONG, 1, abfd) !=
              BYTES_IN_LONG))
              BYTES_IN_LONG))
        return false;
        return false;
      stringsize = bfd_h_get_32 (abfd, string_chars);
      stringsize = bfd_h_get_32 (abfd, string_chars);
 
 
#ifdef USE_MMAP
#ifdef USE_MMAP
      if (bfd_get_file_window (abfd, obj_str_filepos (abfd), stringsize,
      if (bfd_get_file_window (abfd, obj_str_filepos (abfd), stringsize,
                               &obj_aout_string_window (abfd), true) == false)
                               &obj_aout_string_window (abfd), true) == false)
        return false;
        return false;
      strings = (char *) obj_aout_string_window (abfd).data;
      strings = (char *) obj_aout_string_window (abfd).data;
#else
#else
      strings = (char *) bfd_malloc ((size_t) stringsize + 1);
      strings = (char *) bfd_malloc ((size_t) stringsize + 1);
      if (strings == NULL)
      if (strings == NULL)
        return false;
        return false;
 
 
      /* Skip space for the string count in the buffer for convenience
      /* Skip space for the string count in the buffer for convenience
         when using indexes.  */
         when using indexes.  */
      if (bfd_read (strings + 4, 1, stringsize - 4, abfd) != stringsize - 4)
      if (bfd_read (strings + 4, 1, stringsize - 4, abfd) != stringsize - 4)
        {
        {
          free (strings);
          free (strings);
          return false;
          return false;
        }
        }
#endif
#endif
 
 
      /* Ensure that a zero index yields an empty string.  */
      /* Ensure that a zero index yields an empty string.  */
      strings[0] = '\0';
      strings[0] = '\0';
 
 
      strings[stringsize - 1] = 0;
      strings[stringsize - 1] = 0;
 
 
      obj_aout_external_strings (abfd) = strings;
      obj_aout_external_strings (abfd) = strings;
      obj_aout_external_string_size (abfd) = stringsize;
      obj_aout_external_string_size (abfd) = stringsize;
    }
    }
 
 
  return true;
  return true;
}
}
 
 
/* Translate an a.out symbol into a BFD symbol.  The desc, other, type
/* Translate an a.out symbol into a BFD symbol.  The desc, other, type
   and symbol->value fields of CACHE_PTR will be set from the a.out
   and symbol->value fields of CACHE_PTR will be set from the a.out
   nlist structure.  This function is responsible for setting
   nlist structure.  This function is responsible for setting
   symbol->flags and symbol->section, and adjusting symbol->value.  */
   symbol->flags and symbol->section, and adjusting symbol->value.  */
 
 
static boolean
static boolean
translate_from_native_sym_flags (abfd, cache_ptr)
translate_from_native_sym_flags (abfd, cache_ptr)
     bfd *abfd;
     bfd *abfd;
     aout_symbol_type *cache_ptr;
     aout_symbol_type *cache_ptr;
{
{
  flagword visible;
  flagword visible;
 
 
  if (cache_ptr->type == N_FN)
  if (cache_ptr->type == N_FN)
    {
    {
      asection *sec;
      asection *sec;
 
 
      /* This is a debugging symbol.  */
      /* This is a debugging symbol.  */
 
 
      cache_ptr->symbol.flags = BSF_DEBUGGING;
      cache_ptr->symbol.flags = BSF_DEBUGGING;
 
 
      /* Work out the symbol section.  */
      /* Work out the symbol section.  */
      switch (cache_ptr->type & N_TYPE)
      switch (cache_ptr->type & N_TYPE)
        {
        {
        case N_TEXT:
        case N_TEXT:
        case N_FN:
        case N_FN:
          sec = obj_textsec (abfd);
          sec = obj_textsec (abfd);
          break;
          break;
        case N_DATA:
        case N_DATA:
          sec = obj_datasec (abfd);
          sec = obj_datasec (abfd);
          break;
          break;
        case N_BSS:
        case N_BSS:
          sec = obj_bsssec (abfd);
          sec = obj_bsssec (abfd);
          break;
          break;
        default:
        default:
        case N_ABS:
        case N_ABS:
          sec = bfd_abs_section_ptr;
          sec = bfd_abs_section_ptr;
          break;
          break;
        }
        }
 
 
      cache_ptr->symbol.section = sec;
      cache_ptr->symbol.section = sec;
      cache_ptr->symbol.value -= sec->vma;
      cache_ptr->symbol.value -= sec->vma;
 
 
      return true;
      return true;
    }
    }
 
 
  /* Get the default visibility.  This does not apply to all types, so
  /* Get the default visibility.  This does not apply to all types, so
     we just hold it in a local variable to use if wanted.  */
     we just hold it in a local variable to use if wanted.  */
  if ((cache_ptr->type & N_EXT) == 0)
  if ((cache_ptr->type & N_EXT) == 0)
    visible = BSF_LOCAL;
    visible = BSF_LOCAL;
  else
  else
    visible = BSF_GLOBAL;
    visible = BSF_GLOBAL;
 
 
  switch (cache_ptr->type)
  switch (cache_ptr->type)
    {
    {
    default:
    default:
    case N_ABS: case N_ABS | N_EXT:
    case N_ABS: case N_ABS | N_EXT:
      cache_ptr->symbol.section = bfd_abs_section_ptr;
      cache_ptr->symbol.section = bfd_abs_section_ptr;
      cache_ptr->symbol.flags = visible;
      cache_ptr->symbol.flags = visible;
      break;
      break;
 
 
    case N_UNDF | N_EXT:
    case N_UNDF | N_EXT:
      if (cache_ptr->symbol.value != 0)
      if (cache_ptr->symbol.value != 0)
        {
        {
          /* This is a common symbol.  */
          /* This is a common symbol.  */
          cache_ptr->symbol.flags = BSF_GLOBAL;
          cache_ptr->symbol.flags = BSF_GLOBAL;
          cache_ptr->symbol.section = bfd_com_section_ptr;
          cache_ptr->symbol.section = bfd_com_section_ptr;
        }
        }
      else
      else
        {
        {
          cache_ptr->symbol.flags = 0;
          cache_ptr->symbol.flags = 0;
          cache_ptr->symbol.section = bfd_und_section_ptr;
          cache_ptr->symbol.section = bfd_und_section_ptr;
        }
        }
      break;
      break;
 
 
    case N_TEXT: case N_TEXT | N_EXT:
    case N_TEXT: case N_TEXT | N_EXT:
      cache_ptr->symbol.section = obj_textsec (abfd);
      cache_ptr->symbol.section = obj_textsec (abfd);
      cache_ptr->symbol.value -= cache_ptr->symbol.section->vma;
      cache_ptr->symbol.value -= cache_ptr->symbol.section->vma;
      cache_ptr->symbol.flags = visible;
      cache_ptr->symbol.flags = visible;
      break;
      break;
 
 
    case N_DATA: case N_DATA | N_EXT:
    case N_DATA: case N_DATA | N_EXT:
      cache_ptr->symbol.section = obj_datasec (abfd);
      cache_ptr->symbol.section = obj_datasec (abfd);
      cache_ptr->symbol.value -= cache_ptr->symbol.section->vma;
      cache_ptr->symbol.value -= cache_ptr->symbol.section->vma;
      cache_ptr->symbol.flags = visible;
      cache_ptr->symbol.flags = visible;
      break;
      break;
 
 
    case N_BSS: case N_BSS | N_EXT:
    case N_BSS: case N_BSS | N_EXT:
      cache_ptr->symbol.section = obj_bsssec (abfd);
      cache_ptr->symbol.section = obj_bsssec (abfd);
      cache_ptr->symbol.value -= cache_ptr->symbol.section->vma;
      cache_ptr->symbol.value -= cache_ptr->symbol.section->vma;
      cache_ptr->symbol.flags = visible;
      cache_ptr->symbol.flags = visible;
      break;
      break;
    }
    }
 
 
  return true;
  return true;
}
}
 
 
/* Set the fields of SYM_POINTER according to CACHE_PTR.  */
/* Set the fields of SYM_POINTER according to CACHE_PTR.  */
 
 
static boolean
static boolean
translate_to_native_sym_flags (abfd, cache_ptr, sym_pointer)
translate_to_native_sym_flags (abfd, cache_ptr, sym_pointer)
     bfd *abfd;
     bfd *abfd;
     asymbol *cache_ptr;
     asymbol *cache_ptr;
     struct external_nlist *sym_pointer;
     struct external_nlist *sym_pointer;
{
{
  bfd_vma value = cache_ptr->value;
  bfd_vma value = cache_ptr->value;
  asection *sec;
  asection *sec;
  bfd_vma off;
  bfd_vma off;
 
 
  /* Mask out any existing type bits in case copying from one section
  /* Mask out any existing type bits in case copying from one section
     to another.  */
     to another.  */
  sym_pointer->e_type[0] &= ~N_TYPE;
  sym_pointer->e_type[0] &= ~N_TYPE;
 
 
  sec = bfd_get_section (cache_ptr);
  sec = bfd_get_section (cache_ptr);
  off = 0;
  off = 0;
 
 
  if (sec == NULL)
  if (sec == NULL)
    {
    {
      /* This case occurs, e.g., for the *DEBUG* section of a COFF
      /* This case occurs, e.g., for the *DEBUG* section of a COFF
         file.  */
         file.  */
      (*_bfd_error_handler)
      (*_bfd_error_handler)
        ("%s: can not represent section for symbol `%s' in a.out object file format",
        ("%s: can not represent section for symbol `%s' in a.out object file format",
         bfd_get_filename (abfd),
         bfd_get_filename (abfd),
         cache_ptr->name != NULL ? cache_ptr->name : "*unknown*");
         cache_ptr->name != NULL ? cache_ptr->name : "*unknown*");
      bfd_set_error (bfd_error_nonrepresentable_section);
      bfd_set_error (bfd_error_nonrepresentable_section);
      return false;
      return false;
    }
    }
 
 
  if (sec->output_section != NULL)
  if (sec->output_section != NULL)
    {
    {
      off = sec->output_offset;
      off = sec->output_offset;
      sec = sec->output_section;
      sec = sec->output_section;
    }
    }
 
 
  if (bfd_is_abs_section (sec))
  if (bfd_is_abs_section (sec))
    sym_pointer->e_type[0] |= N_ABS;
    sym_pointer->e_type[0] |= N_ABS;
  else if (sec == obj_textsec (abfd))
  else if (sec == obj_textsec (abfd))
    sym_pointer->e_type[0] |= N_TEXT;
    sym_pointer->e_type[0] |= N_TEXT;
  else if (sec == obj_datasec (abfd))
  else if (sec == obj_datasec (abfd))
    sym_pointer->e_type[0] |= N_DATA;
    sym_pointer->e_type[0] |= N_DATA;
  else if (sec == obj_bsssec (abfd))
  else if (sec == obj_bsssec (abfd))
    sym_pointer->e_type[0] |= N_BSS;
    sym_pointer->e_type[0] |= N_BSS;
  else if (bfd_is_und_section (sec))
  else if (bfd_is_und_section (sec))
    sym_pointer->e_type[0] = N_UNDF | N_EXT;
    sym_pointer->e_type[0] = N_UNDF | N_EXT;
  else if (bfd_is_com_section (sec))
  else if (bfd_is_com_section (sec))
    sym_pointer->e_type[0] = N_UNDF | N_EXT;
    sym_pointer->e_type[0] = N_UNDF | N_EXT;
  else
  else
    {
    {
      (*_bfd_error_handler)
      (*_bfd_error_handler)
        ("%s: can not represent section `%s' in a.out object file format",
        ("%s: can not represent section `%s' in a.out object file format",
         bfd_get_filename (abfd), bfd_get_section_name (abfd, sec));
         bfd_get_filename (abfd), bfd_get_section_name (abfd, sec));
      bfd_set_error (bfd_error_nonrepresentable_section);
      bfd_set_error (bfd_error_nonrepresentable_section);
      return false;
      return false;
    }
    }
 
 
  /* Turn the symbol from section relative to absolute again */
  /* Turn the symbol from section relative to absolute again */
  value += sec->vma + off;
  value += sec->vma + off;
 
 
  if ((cache_ptr->flags & BSF_DEBUGGING) != 0)
  if ((cache_ptr->flags & BSF_DEBUGGING) != 0)
    sym_pointer->e_type[0] = ((aout_symbol_type *) cache_ptr)->type;
    sym_pointer->e_type[0] = ((aout_symbol_type *) cache_ptr)->type;
  else if ((cache_ptr->flags & BSF_GLOBAL) != 0)
  else if ((cache_ptr->flags & BSF_GLOBAL) != 0)
    sym_pointer->e_type[0] |= N_EXT;
    sym_pointer->e_type[0] |= N_EXT;
 
 
#if 0
#if 0
  if ((cache_ptr->flags & BSF_CONSTRUCTOR) != 0)
  if ((cache_ptr->flags & BSF_CONSTRUCTOR) != 0)
    {
    {
      int type = ((aout_symbol_type *) cache_ptr)->type;
      int type = ((aout_symbol_type *) cache_ptr)->type;
 
 
 
 
      switch (type)
      switch (type)
        {
        {
        case N_ABS:     type = N_SETA; break;
        case N_ABS:     type = N_SETA; break;
        case N_TEXT:    type = N_SETT; break;
        case N_TEXT:    type = N_SETT; break;
        case N_DATA:    type = N_SETD; break;
        case N_DATA:    type = N_SETD; break;
        case N_BSS:     type = N_SETB; break;
        case N_BSS:     type = N_SETB; break;
        }
        }
      sym_pointer->e_type[0] = type;
      sym_pointer->e_type[0] = type;
    }
    }
#endif
#endif
 
 
#if 0
#if 0
  if ((cache_ptr->flags & BSF_WEAK) != 0)
  if ((cache_ptr->flags & BSF_WEAK) != 0)
    {
    {
      int type;
      int type;
 
 
      switch (sym_pointer->e_type[0] & N_TYPE)
      switch (sym_pointer->e_type[0] & N_TYPE)
        {
        {
        default:
        default:
        case N_ABS:     type = N_WEAKA; break;
        case N_ABS:     type = N_WEAKA; break;
        case N_TEXT:    type = N_WEAKT; break;
        case N_TEXT:    type = N_WEAKT; break;
        case N_DATA:    type = N_WEAKD; break;
        case N_DATA:    type = N_WEAKD; break;
        case N_BSS:     type = N_WEAKB; break;
        case N_BSS:     type = N_WEAKB; break;
        case N_UNDF:    type = N_WEAKU; break;
        case N_UNDF:    type = N_WEAKU; break;
        }
        }
      sym_pointer->e_type[0] = type;
      sym_pointer->e_type[0] = type;
    }
    }
#endif
#endif
 
 
  PUT_WORD(abfd, value, sym_pointer->e_value);
  PUT_WORD(abfd, value, sym_pointer->e_value);
 
 
  return true;
  return true;
}
}


/* Native-level interface to symbols. */
/* Native-level interface to symbols. */
 
 
asymbol *
asymbol *
NAME(aout,make_empty_symbol) (abfd)
NAME(aout,make_empty_symbol) (abfd)
     bfd *abfd;
     bfd *abfd;
{
{
  aout_symbol_type  *new =
  aout_symbol_type  *new =
    (aout_symbol_type *)bfd_zalloc (abfd, sizeof (aout_symbol_type));
    (aout_symbol_type *)bfd_zalloc (abfd, sizeof (aout_symbol_type));
  if (!new)
  if (!new)
    return NULL;
    return NULL;
  new->symbol.the_bfd = abfd;
  new->symbol.the_bfd = abfd;
 
 
  return &new->symbol;
  return &new->symbol;
}
}
 
 
/* Translate a set of internal symbols into external symbols.  */
/* Translate a set of internal symbols into external symbols.  */
 
 
boolean
boolean
NAME(aout,translate_symbol_table) (abfd, in, ext, count, str, strsize, dynamic)
NAME(aout,translate_symbol_table) (abfd, in, ext, count, str, strsize, dynamic)
     bfd *abfd;
     bfd *abfd;
     aout_symbol_type *in;
     aout_symbol_type *in;
     struct external_nlist *ext;
     struct external_nlist *ext;
     bfd_size_type count;
     bfd_size_type count;
     char *str;
     char *str;
     bfd_size_type strsize;
     bfd_size_type strsize;
     boolean dynamic;
     boolean dynamic;
{
{
  struct external_nlist *ext_end;
  struct external_nlist *ext_end;
 
 
  ext_end = ext + count;
  ext_end = ext + count;
  for (; ext < ext_end; ext++, in++)
  for (; ext < ext_end; ext++, in++)
    {
    {
      bfd_vma x;
      bfd_vma x;
 
 
      x = GET_WORD (abfd, ext->e_strx);
      x = GET_WORD (abfd, ext->e_strx);
      in->symbol.the_bfd = abfd;
      in->symbol.the_bfd = abfd;
 
 
      /* For the normal symbols, the zero index points at the number
      /* For the normal symbols, the zero index points at the number
         of bytes in the string table but is to be interpreted as the
         of bytes in the string table but is to be interpreted as the
         null string.  For the dynamic symbols, the number of bytes in
         null string.  For the dynamic symbols, the number of bytes in
         the string table is stored in the __DYNAMIC structure and the
         the string table is stored in the __DYNAMIC structure and the
         zero index points at an actual string.  */
         zero index points at an actual string.  */
      if (x == 0 && ! dynamic)
      if (x == 0 && ! dynamic)
        in->symbol.name = "";
        in->symbol.name = "";
      else if (x < strsize)
      else if (x < strsize)
        in->symbol.name = str + x;
        in->symbol.name = str + x;
      else
      else
        return false;
        return false;
 
 
      in->symbol.value = GET_SWORD (abfd,  ext->e_value);
      in->symbol.value = GET_SWORD (abfd,  ext->e_value);
      /* TODO: is 0 a safe value here? */
      /* TODO: is 0 a safe value here? */
      in->desc = 0;
      in->desc = 0;
      in->other = 0;
      in->other = 0;
      in->type = bfd_h_get_8 (abfd,  ext->e_type);
      in->type = bfd_h_get_8 (abfd,  ext->e_type);
      in->symbol.udata.p = NULL;
      in->symbol.udata.p = NULL;
 
 
      if (! translate_from_native_sym_flags (abfd, in))
      if (! translate_from_native_sym_flags (abfd, in))
        return false;
        return false;
 
 
      if (dynamic)
      if (dynamic)
        in->symbol.flags |= BSF_DYNAMIC;
        in->symbol.flags |= BSF_DYNAMIC;
    }
    }
 
 
  return true;
  return true;
}
}
 
 
/* We read the symbols into a buffer, which is discarded when this
/* We read the symbols into a buffer, which is discarded when this
   function exits.  We read the strings into a buffer large enough to
   function exits.  We read the strings into a buffer large enough to
   hold them all plus all the cached symbol entries. */
   hold them all plus all the cached symbol entries. */
 
 
boolean
boolean
NAME(aout,slurp_symbol_table) (abfd)
NAME(aout,slurp_symbol_table) (abfd)
     bfd *abfd;
     bfd *abfd;
{
{
  struct external_nlist *old_external_syms;
  struct external_nlist *old_external_syms;
  aout_symbol_type *cached;
  aout_symbol_type *cached;
  size_t cached_size;
  size_t cached_size;
 
 
  /* If there's no work to be done, don't do any */
  /* If there's no work to be done, don't do any */
  if (obj_aout_symbols (abfd) != (aout_symbol_type *) NULL)
  if (obj_aout_symbols (abfd) != (aout_symbol_type *) NULL)
    return true;
    return true;
 
 
  old_external_syms = obj_aout_external_syms (abfd);
  old_external_syms = obj_aout_external_syms (abfd);
 
 
  if (! aout_get_external_symbols (abfd))
  if (! aout_get_external_symbols (abfd))
    return false;
    return false;
 
 
  cached_size = (obj_aout_external_sym_count (abfd)
  cached_size = (obj_aout_external_sym_count (abfd)
                 * sizeof (aout_symbol_type));
                 * sizeof (aout_symbol_type));
  cached = (aout_symbol_type *) bfd_malloc (cached_size);
  cached = (aout_symbol_type *) bfd_malloc (cached_size);
  if (cached == NULL && cached_size != 0)
  if (cached == NULL && cached_size != 0)
    return false;
    return false;
  if (cached_size != 0)
  if (cached_size != 0)
    memset (cached, 0, cached_size);
    memset (cached, 0, cached_size);
 
 
  /* Convert from external symbol information to internal.  */
  /* Convert from external symbol information to internal.  */
  if (! (NAME(aout,translate_symbol_table)
  if (! (NAME(aout,translate_symbol_table)
         (abfd, cached,
         (abfd, cached,
          obj_aout_external_syms (abfd),
          obj_aout_external_syms (abfd),
          obj_aout_external_sym_count (abfd),
          obj_aout_external_sym_count (abfd),
          obj_aout_external_strings (abfd),
          obj_aout_external_strings (abfd),
          obj_aout_external_string_size (abfd),
          obj_aout_external_string_size (abfd),
          false)))
          false)))
    {
    {
      free (cached);
      free (cached);
      return false;
      return false;
    }
    }
 
 
  bfd_get_symcount (abfd) = obj_aout_external_sym_count (abfd);
  bfd_get_symcount (abfd) = obj_aout_external_sym_count (abfd);
 
 
  obj_aout_symbols (abfd) = cached;
  obj_aout_symbols (abfd) = cached;
 
 
  /* It is very likely that anybody who calls this function will not
  /* It is very likely that anybody who calls this function will not
     want the external symbol information, so if it was allocated
     want the external symbol information, so if it was allocated
     because of our call to aout_get_external_symbols, we free it up
     because of our call to aout_get_external_symbols, we free it up
     right away to save space.  */
     right away to save space.  */
  if (old_external_syms == (struct external_nlist *) NULL
  if (old_external_syms == (struct external_nlist *) NULL
      && obj_aout_external_syms (abfd) != (struct external_nlist *) NULL)
      && obj_aout_external_syms (abfd) != (struct external_nlist *) NULL)
    {
    {
#ifdef USE_MMAP
#ifdef USE_MMAP
      bfd_free_window (&obj_aout_sym_window (abfd));
      bfd_free_window (&obj_aout_sym_window (abfd));
#else
#else
      free (obj_aout_external_syms (abfd));
      free (obj_aout_external_syms (abfd));
#endif
#endif
      obj_aout_external_syms (abfd) = NULL;
      obj_aout_external_syms (abfd) = NULL;
    }
    }
 
 
  return true;
  return true;
}
}


/* We use a hash table when writing out symbols so that we only write
/* We use a hash table when writing out symbols so that we only write
   out a particular string once.  This helps particularly when the
   out a particular string once.  This helps particularly when the
   linker writes out stabs debugging entries, because each different
   linker writes out stabs debugging entries, because each different
   contributing object file tends to have many duplicate stabs
   contributing object file tends to have many duplicate stabs
   strings.
   strings.
 
 
   This hash table code breaks dbx on SunOS 4.1.3, so we don't do it
   This hash table code breaks dbx on SunOS 4.1.3, so we don't do it
   if BFD_TRADITIONAL_FORMAT is set.  */
   if BFD_TRADITIONAL_FORMAT is set.  */
 
 
static bfd_size_type add_to_stringtab
static bfd_size_type add_to_stringtab
  PARAMS ((bfd *, struct bfd_strtab_hash *, const char *, boolean));
  PARAMS ((bfd *, struct bfd_strtab_hash *, const char *, boolean));
static boolean emit_stringtab PARAMS ((bfd *, struct bfd_strtab_hash *));
static boolean emit_stringtab PARAMS ((bfd *, struct bfd_strtab_hash *));
 
 
/* Get the index of a string in a strtab, adding it if it is not
/* Get the index of a string in a strtab, adding it if it is not
   already present.  */
   already present.  */
 
 
static INLINE bfd_size_type
static INLINE bfd_size_type
add_to_stringtab (abfd, tab, str, copy)
add_to_stringtab (abfd, tab, str, copy)
     bfd *abfd;
     bfd *abfd;
     struct bfd_strtab_hash *tab;
     struct bfd_strtab_hash *tab;
     const char *str;
     const char *str;
     boolean copy;
     boolean copy;
{
{
  boolean hash;
  boolean hash;
  bfd_size_type index;
  bfd_size_type index;
 
 
  /* An index of 0 always means the empty string.  */
  /* An index of 0 always means the empty string.  */
  if (str == 0 || *str == '\0')
  if (str == 0 || *str == '\0')
    return 0;
    return 0;
 
 
  /* Don't hash if BFD_TRADITIONAL_FORMAT is set, because SunOS dbx
  /* Don't hash if BFD_TRADITIONAL_FORMAT is set, because SunOS dbx
     doesn't understand a hashed string table.  */
     doesn't understand a hashed string table.  */
  hash = true;
  hash = true;
  if ((abfd->flags & BFD_TRADITIONAL_FORMAT) != 0)
  if ((abfd->flags & BFD_TRADITIONAL_FORMAT) != 0)
    hash = false;
    hash = false;
 
 
  index = _bfd_stringtab_add (tab, str, hash, copy);
  index = _bfd_stringtab_add (tab, str, hash, copy);
 
 
  if (index != (bfd_size_type) -1)
  if (index != (bfd_size_type) -1)
    {
    {
      /* Add BYTES_IN_LONG to the return value to account for the
      /* Add BYTES_IN_LONG to the return value to account for the
         space taken up by the string table size.  */
         space taken up by the string table size.  */
      index += BYTES_IN_LONG;
      index += BYTES_IN_LONG;
    }
    }
 
 
  return index;
  return index;
}
}
 
 
/* Write out a strtab.  ABFD is already at the right location in the
/* Write out a strtab.  ABFD is already at the right location in the
   file.  */
   file.  */
 
 
static boolean
static boolean
emit_stringtab (abfd, tab)
emit_stringtab (abfd, tab)
     register bfd *abfd;
     register bfd *abfd;
     struct bfd_strtab_hash *tab;
     struct bfd_strtab_hash *tab;
{
{
  bfd_byte buffer[BYTES_IN_LONG];
  bfd_byte buffer[BYTES_IN_LONG];
 
 
  /* The string table starts with the size.  */
  /* The string table starts with the size.  */
  bfd_h_put_32 (abfd, _bfd_stringtab_size (tab) + BYTES_IN_LONG, buffer);
  bfd_h_put_32 (abfd, _bfd_stringtab_size (tab) + BYTES_IN_LONG, buffer);
  if (bfd_write ((PTR) buffer, 1, BYTES_IN_LONG, abfd) != BYTES_IN_LONG)
  if (bfd_write ((PTR) buffer, 1, BYTES_IN_LONG, abfd) != BYTES_IN_LONG)
    return false;
    return false;
 
 
  return _bfd_stringtab_emit (abfd, tab);
  return _bfd_stringtab_emit (abfd, tab);
}
}


boolean
boolean
NAME(aout,write_syms) (abfd)
NAME(aout,write_syms) (abfd)
     bfd *abfd;
     bfd *abfd;
{
{
  unsigned int count ;
  unsigned int count ;
  asymbol **generic = bfd_get_outsymbols (abfd);
  asymbol **generic = bfd_get_outsymbols (abfd);
  struct bfd_strtab_hash *strtab;
  struct bfd_strtab_hash *strtab;
 
 
  strtab = _bfd_stringtab_init ();
  strtab = _bfd_stringtab_init ();
  if (strtab == NULL)
  if (strtab == NULL)
    return false;
    return false;
 
 
  for (count = 0; count < bfd_get_symcount (abfd); count++)
  for (count = 0; count < bfd_get_symcount (abfd); count++)
    {
    {
      asymbol *g = generic[count];
      asymbol *g = generic[count];
      bfd_size_type indx;
      bfd_size_type indx;
      struct external_nlist nsp;
      struct external_nlist nsp;
 
 
      PUT_WORD (abfd, 0, (bfd_byte *)nsp.e_unused);
      PUT_WORD (abfd, 0, (bfd_byte *)nsp.e_unused);
 
 
      indx = add_to_stringtab (abfd, strtab, g->name, false);
      indx = add_to_stringtab (abfd, strtab, g->name, false);
      if (indx == (bfd_size_type) -1)
      if (indx == (bfd_size_type) -1)
        goto error_return;
        goto error_return;
      PUT_WORD (abfd, indx, (bfd_byte *) nsp.e_strx);
      PUT_WORD (abfd, indx, (bfd_byte *) nsp.e_strx);
 
 
      if (bfd_asymbol_flavour(g) == abfd->xvec->flavour)
      if (bfd_asymbol_flavour(g) == abfd->xvec->flavour)
        bfd_h_put_8 (abfd, aout_symbol(g)->type,  nsp.e_type);
        bfd_h_put_8 (abfd, aout_symbol(g)->type,  nsp.e_type);
      else
      else
        bfd_h_put_8 (abfd, 0, nsp.e_type);
        bfd_h_put_8 (abfd, 0, nsp.e_type);
 
 
      if (! translate_to_native_sym_flags (abfd, g, &nsp))
      if (! translate_to_native_sym_flags (abfd, g, &nsp))
        goto error_return;
        goto error_return;
 
 
      bfd_h_put_8 (abfd, 0, nsp.e_ovly);
      bfd_h_put_8 (abfd, 0, nsp.e_ovly);
 
 
      if (bfd_write((PTR)&nsp,1,EXTERNAL_NLIST_SIZE, abfd)
      if (bfd_write((PTR)&nsp,1,EXTERNAL_NLIST_SIZE, abfd)
          != EXTERNAL_NLIST_SIZE)
          != EXTERNAL_NLIST_SIZE)
        goto error_return;
        goto error_return;
 
 
      /* NB: `KEEPIT' currently overlays `udata.p', so set this only
      /* NB: `KEEPIT' currently overlays `udata.p', so set this only
         here, at the end.  */
         here, at the end.  */
      g->KEEPIT = count;
      g->KEEPIT = count;
    }
    }
 
 
  if (! emit_stringtab (abfd, strtab))
  if (! emit_stringtab (abfd, strtab))
    goto error_return;
    goto error_return;
 
 
  _bfd_stringtab_free (strtab);
  _bfd_stringtab_free (strtab);
 
 
  return true;
  return true;
 
 
error_return:
error_return:
  _bfd_stringtab_free (strtab);
  _bfd_stringtab_free (strtab);
  return false;
  return false;
}
}
 
 


long
long
NAME(aout,get_symtab) (abfd, location)
NAME(aout,get_symtab) (abfd, location)
     bfd *abfd;
     bfd *abfd;
     asymbol **location;
     asymbol **location;
{
{
    unsigned int counter = 0;
    unsigned int counter = 0;
    aout_symbol_type *symbase;
    aout_symbol_type *symbase;
 
 
    if (!NAME(aout,slurp_symbol_table)(abfd))
    if (!NAME(aout,slurp_symbol_table)(abfd))
      return -1;
      return -1;
 
 
    for (symbase = obj_aout_symbols(abfd); counter++ < bfd_get_symcount (abfd);)
    for (symbase = obj_aout_symbols(abfd); counter++ < bfd_get_symcount (abfd);)
      *(location++) = (asymbol *)( symbase++);
      *(location++) = (asymbol *)( symbase++);
    *location++ =0;
    *location++ =0;
    return bfd_get_symcount (abfd);
    return bfd_get_symcount (abfd);
}
}
 
 


/* Standard reloc stuff */
/* Standard reloc stuff */
 
 
/* Extended stuff */
/* Extended stuff */
/* Output extended relocation information to a file in target byte order. */
/* Output extended relocation information to a file in target byte order. */
 
 
void
void
pdp11_aout_swap_reloc_out (abfd, g, natptr)
pdp11_aout_swap_reloc_out (abfd, g, natptr)
     bfd *abfd;
     bfd *abfd;
     arelent *g;
     arelent *g;
     register struct pdp11_aout_reloc_external *natptr;
     register struct pdp11_aout_reloc_external *natptr;
{
{
  int r_index;
  int r_index;
  int r_pcrel;
  int r_pcrel;
  int reloc_entry;
  int reloc_entry;
  int r_type;
  int r_type;
  asymbol *sym = *(g->sym_ptr_ptr);
  asymbol *sym = *(g->sym_ptr_ptr);
  asection *output_section = sym->section->output_section;
  asection *output_section = sym->section->output_section;
 
 
  if (g->addend != 0)
  if (g->addend != 0)
    fprintf (stderr, "BFD: can't do this reloc addend stuff\n");
    fprintf (stderr, "BFD: can't do this reloc addend stuff\n");
 
 
  r_pcrel = g->howto->pc_relative;
  r_pcrel = g->howto->pc_relative;
 
 
  if (bfd_is_abs_section (output_section))
  if (bfd_is_abs_section (output_section))
    r_type = RABS;
    r_type = RABS;
  else if (output_section == obj_textsec (abfd))
  else if (output_section == obj_textsec (abfd))
    r_type = RTEXT;
    r_type = RTEXT;
  else if (output_section == obj_datasec (abfd))
  else if (output_section == obj_datasec (abfd))
    r_type = RDATA;
    r_type = RDATA;
  else if (output_section == obj_bsssec (abfd))
  else if (output_section == obj_bsssec (abfd))
    r_type = RBSS;
    r_type = RBSS;
  else if (bfd_is_und_section (output_section))
  else if (bfd_is_und_section (output_section))
    r_type = REXT;
    r_type = REXT;
  else if (bfd_is_com_section (output_section))
  else if (bfd_is_com_section (output_section))
    r_type = REXT;
    r_type = REXT;
  else
  else
    r_type = -1;
    r_type = -1;
 
 
  BFD_ASSERT (r_type != -1);
  BFD_ASSERT (r_type != -1);
 
 
  if (r_type == RABS)
  if (r_type == RABS)
    r_index = 0;
    r_index = 0;
  else
  else
    r_index = (*(g->sym_ptr_ptr))->KEEPIT;
    r_index = (*(g->sym_ptr_ptr))->KEEPIT;
 
 
#if 0
#if 0
  if (bfd_is_abs_section (bfd_get_section (sym)))
  if (bfd_is_abs_section (bfd_get_section (sym)))
    {
    {
      r_extern = 0;
      r_extern = 0;
      r_index = N_ABS;
      r_index = N_ABS;
      r_type = RABS;
      r_type = RABS;
    }
    }
  else if ((sym->flags & BSF_SECTION_SYM) == 0)
  else if ((sym->flags & BSF_SECTION_SYM) == 0)
    {
    {
      if (bfd_is_und_section (bfd_get_section (sym))
      if (bfd_is_und_section (bfd_get_section (sym))
          || (sym->flags & BSF_GLOBAL) != 0)
          || (sym->flags & BSF_GLOBAL) != 0)
        r_extern = 1;
        r_extern = 1;
      else
      else
        r_extern = 0;
        r_extern = 0;
      r_index = (*(g->sym_ptr_ptr))->KEEPIT;
      r_index = (*(g->sym_ptr_ptr))->KEEPIT;
    }
    }
  else
  else
    {
    {
      /* Just an ordinary section */
      /* Just an ordinary section */
      r_extern = 0;
      r_extern = 0;
      r_index = output_section->target_index;
      r_index = output_section->target_index;
    }
    }
#endif
#endif
 
 
  reloc_entry = r_index << 4 | r_type | r_pcrel;
  reloc_entry = r_index << 4 | r_type | r_pcrel;
 
 
  PUT_WORD (abfd, reloc_entry, natptr->e_reloc_entry);
  PUT_WORD (abfd, reloc_entry, natptr->e_reloc_entry);
}
}
 
 
/* BFD deals internally with all things based from the section they're
/* BFD deals internally with all things based from the section they're
   in. so, something in 10 bytes into a text section  with a base of
   in. so, something in 10 bytes into a text section  with a base of
   50 would have a symbol (.text+10) and know .text vma was 50.
   50 would have a symbol (.text+10) and know .text vma was 50.
 
 
   Aout keeps all it's symbols based from zero, so the symbol would
   Aout keeps all it's symbols based from zero, so the symbol would
   contain 60. This macro subs the base of each section from the value
   contain 60. This macro subs the base of each section from the value
   to give the true offset from the section */
   to give the true offset from the section */
 
 
 
 
#define MOVE_ADDRESS(ad)                                                \
#define MOVE_ADDRESS(ad)                                                \
  if (r_extern)                                                         \
  if (r_extern)                                                         \
    {                                                                   \
    {                                                                   \
      /* Undefined symbol.  */                                          \
      /* Undefined symbol.  */                                          \
      cache_ptr->sym_ptr_ptr = symbols + r_index;                       \
      cache_ptr->sym_ptr_ptr = symbols + r_index;                       \
      cache_ptr->addend = ad;                                           \
      cache_ptr->addend = ad;                                           \
    }                                                                   \
    }                                                                   \
  else                                                                  \
  else                                                                  \
    {                                                                   \
    {                                                                   \
      /* Defined, section relative. replace symbol with pointer to      \
      /* Defined, section relative. replace symbol with pointer to      \
         symbol which points to section.  */                            \
         symbol which points to section.  */                            \
      switch (r_index)                                                  \
      switch (r_index)                                                  \
        {                                                               \
        {                                                               \
        case N_TEXT:                                                    \
        case N_TEXT:                                                    \
        case N_TEXT | N_EXT:                                            \
        case N_TEXT | N_EXT:                                            \
          cache_ptr->sym_ptr_ptr  = obj_textsec (abfd)->symbol_ptr_ptr; \
          cache_ptr->sym_ptr_ptr  = obj_textsec (abfd)->symbol_ptr_ptr; \
          cache_ptr->addend = ad  - su->textsec->vma;                   \
          cache_ptr->addend = ad  - su->textsec->vma;                   \
          break;                                                        \
          break;                                                        \
        case N_DATA:                                                    \
        case N_DATA:                                                    \
        case N_DATA | N_EXT:                                            \
        case N_DATA | N_EXT:                                            \
          cache_ptr->sym_ptr_ptr  = obj_datasec (abfd)->symbol_ptr_ptr; \
          cache_ptr->sym_ptr_ptr  = obj_datasec (abfd)->symbol_ptr_ptr; \
          cache_ptr->addend = ad - su->datasec->vma;                    \
          cache_ptr->addend = ad - su->datasec->vma;                    \
          break;                                                        \
          break;                                                        \
        case N_BSS:                                                     \
        case N_BSS:                                                     \
        case N_BSS | N_EXT:                                             \
        case N_BSS | N_EXT:                                             \
          cache_ptr->sym_ptr_ptr  = obj_bsssec (abfd)->symbol_ptr_ptr;  \
          cache_ptr->sym_ptr_ptr  = obj_bsssec (abfd)->symbol_ptr_ptr;  \
          cache_ptr->addend = ad - su->bsssec->vma;                     \
          cache_ptr->addend = ad - su->bsssec->vma;                     \
          break;                                                        \
          break;                                                        \
        default:                                                        \
        default:                                                        \
        case N_ABS:                                                     \
        case N_ABS:                                                     \
        case N_ABS | N_EXT:                                             \
        case N_ABS | N_EXT:                                             \
          cache_ptr->sym_ptr_ptr = bfd_abs_section_ptr->symbol_ptr_ptr; \
          cache_ptr->sym_ptr_ptr = bfd_abs_section_ptr->symbol_ptr_ptr; \
          cache_ptr->addend = ad;                                       \
          cache_ptr->addend = ad;                                       \
          break;                                                        \
          break;                                                        \
        }                                                               \
        }                                                               \
    }
    }
 
 
void
void
pdp11_aout_swap_reloc_in (abfd, bytes, cache_ptr, offset,
pdp11_aout_swap_reloc_in (abfd, bytes, cache_ptr, offset,
                          symbols, symcount)
                          symbols, symcount)
     bfd *abfd;
     bfd *abfd;
     struct pdp11_aout_reloc_external *bytes;
     struct pdp11_aout_reloc_external *bytes;
     arelent *cache_ptr;
     arelent *cache_ptr;
     bfd_size_type offset;
     bfd_size_type offset;
     asymbol **symbols;
     asymbol **symbols;
     bfd_size_type symcount;
     bfd_size_type symcount;
{
{
  struct aoutdata *su = &(abfd->tdata.aout_data->a);
  struct aoutdata *su = &(abfd->tdata.aout_data->a);
  unsigned int r_index;
  unsigned int r_index;
  int reloc_entry;
  int reloc_entry;
  int r_extern;
  int r_extern;
  int r_pcrel;
  int r_pcrel;
 
 
  reloc_entry = GET_WORD (abfd, (PTR)bytes);
  reloc_entry = GET_WORD (abfd, (PTR)bytes);
 
 
  r_pcrel = reloc_entry & RELFLG;
  r_pcrel = reloc_entry & RELFLG;
 
 
  cache_ptr->address = offset;
  cache_ptr->address = offset;
  cache_ptr->howto = howto_table_pdp11 + (r_pcrel ? 1 : 0);
  cache_ptr->howto = howto_table_pdp11 + (r_pcrel ? 1 : 0);
 
 
  if ((reloc_entry & RTYPE) == RABS)
  if ((reloc_entry & RTYPE) == RABS)
    r_index = N_ABS;
    r_index = N_ABS;
  else
  else
    r_index = RINDEX (reloc_entry);
    r_index = RINDEX (reloc_entry);
 
 
  /* r_extern reflects whether the symbol the reloc is against is
  /* r_extern reflects whether the symbol the reloc is against is
     local or global.  */
     local or global.  */
  r_extern = (reloc_entry & RTYPE) == REXT;
  r_extern = (reloc_entry & RTYPE) == REXT;
 
 
  if (r_extern && r_index > symcount)
  if (r_extern && r_index > symcount)
    {
    {
      /* We could arrange to return an error, but it might be useful
      /* We could arrange to return an error, but it might be useful
         to see the file even if it is bad.  */
         to see the file even if it is bad.  */
      r_extern = 0;
      r_extern = 0;
      r_index = N_ABS;
      r_index = N_ABS;
    }
    }
 
 
  MOVE_ADDRESS(0);
  MOVE_ADDRESS(0);
}
}
 
 
/* Read and swap the relocs for a section.  */
/* Read and swap the relocs for a section.  */
 
 
boolean
boolean
NAME(aout,slurp_reloc_table) (abfd, asect, symbols)
NAME(aout,slurp_reloc_table) (abfd, asect, symbols)
     bfd *abfd;
     bfd *abfd;
     sec_ptr asect;
     sec_ptr asect;
     asymbol **symbols;
     asymbol **symbols;
{
{
  struct pdp11_aout_reloc_external *rptr;
  struct pdp11_aout_reloc_external *rptr;
  unsigned int count;
  unsigned int count;
  bfd_size_type reloc_size;
  bfd_size_type reloc_size;
  PTR relocs;
  PTR relocs;
  arelent *reloc_cache;
  arelent *reloc_cache;
  size_t each_size;
  size_t each_size;
  unsigned int counter = 0;
  unsigned int counter = 0;
  arelent *cache_ptr;
  arelent *cache_ptr;
 
 
  if (asect->relocation)
  if (asect->relocation)
    return true;
    return true;
 
 
  if (asect->flags & SEC_CONSTRUCTOR)
  if (asect->flags & SEC_CONSTRUCTOR)
    return true;
    return true;
 
 
  if (asect == obj_datasec (abfd))
  if (asect == obj_datasec (abfd))
    reloc_size = exec_hdr(abfd)->a_drsize;
    reloc_size = exec_hdr(abfd)->a_drsize;
  else if (asect == obj_textsec (abfd))
  else if (asect == obj_textsec (abfd))
    reloc_size = exec_hdr(abfd)->a_trsize;
    reloc_size = exec_hdr(abfd)->a_trsize;
  else if (asect == obj_bsssec (abfd))
  else if (asect == obj_bsssec (abfd))
    reloc_size = 0;
    reloc_size = 0;
  else
  else
    {
    {
      bfd_set_error (bfd_error_invalid_operation);
      bfd_set_error (bfd_error_invalid_operation);
      return false;
      return false;
    }
    }
 
 
  if (bfd_seek (abfd, asect->rel_filepos, SEEK_SET) != 0)
  if (bfd_seek (abfd, asect->rel_filepos, SEEK_SET) != 0)
    return false;
    return false;
 
 
  each_size = obj_reloc_entry_size (abfd);
  each_size = obj_reloc_entry_size (abfd);
 
 
  relocs = bfd_malloc ((size_t) reloc_size);
  relocs = bfd_malloc ((size_t) reloc_size);
  if (relocs == NULL && reloc_size != 0)
  if (relocs == NULL && reloc_size != 0)
    return false;
    return false;
 
 
  if (bfd_read (relocs, 1, reloc_size, abfd) != reloc_size)
  if (bfd_read (relocs, 1, reloc_size, abfd) != reloc_size)
    {
    {
      free (relocs);
      free (relocs);
      return false;
      return false;
    }
    }
 
 
  count = reloc_size / each_size;
  count = reloc_size / each_size;
 
 
  /* Count the number of NON-ZERO relocs, this is the count we want. */
  /* Count the number of NON-ZERO relocs, this is the count we want. */
  {
  {
    unsigned int real_count = 0;
    unsigned int real_count = 0;
 
 
    for (counter = 0; counter < count; counter++)
    for (counter = 0; counter < count; counter++)
      {
      {
        int x;
        int x;
 
 
        x = GET_WORD (abfd, relocs + each_size * counter);
        x = GET_WORD (abfd, relocs + each_size * counter);
        if (x != 0)
        if (x != 0)
          real_count++;
          real_count++;
      }
      }
 
 
    count = real_count;
    count = real_count;
  }
  }
 
 
  reloc_cache = (arelent *) bfd_malloc ((size_t) (count * sizeof (arelent)));
  reloc_cache = (arelent *) bfd_malloc ((size_t) (count * sizeof (arelent)));
  if (reloc_cache == NULL && count != 0)
  if (reloc_cache == NULL && count != 0)
    return false;
    return false;
  memset (reloc_cache, 0, count * sizeof (arelent));
  memset (reloc_cache, 0, count * sizeof (arelent));
 
 
  cache_ptr = reloc_cache;
  cache_ptr = reloc_cache;
 
 
  rptr = (struct pdp11_aout_reloc_external *) relocs;
  rptr = (struct pdp11_aout_reloc_external *) relocs;
  for (counter = 0;
  for (counter = 0;
       counter < count;
       counter < count;
       counter++, ((char *)rptr) += RELOC_SIZE, cache_ptr++)
       counter++, ((char *)rptr) += RELOC_SIZE, cache_ptr++)
    {
    {
      while (GET_WORD (abfd, (PTR)rptr) == 0)
      while (GET_WORD (abfd, (PTR)rptr) == 0)
        {
        {
          rptr =
          rptr =
            (struct pdp11_aout_reloc_external *)
            (struct pdp11_aout_reloc_external *)
            ((char *)rptr + RELOC_SIZE);
            ((char *)rptr + RELOC_SIZE);
          if ((char *)rptr >= (char *)relocs + reloc_size)
          if ((char *)rptr >= (char *)relocs + reloc_size)
            goto done;
            goto done;
        }
        }
 
 
      pdp11_aout_swap_reloc_in (abfd, rptr, cache_ptr,
      pdp11_aout_swap_reloc_in (abfd, rptr, cache_ptr,
                                (char *)rptr - (char *)relocs,
                                (char *)rptr - (char *)relocs,
                                    symbols, bfd_get_symcount (abfd));
                                    symbols, bfd_get_symcount (abfd));
    }
    }
 done:
 done:
  /* Just in case, if rptr >= relocs + reloc_size should happen
  /* Just in case, if rptr >= relocs + reloc_size should happen
     too early. */
     too early. */
  BFD_ASSERT (counter == count);
  BFD_ASSERT (counter == count);
 
 
  free (relocs);
  free (relocs);
 
 
  asect->relocation = reloc_cache;
  asect->relocation = reloc_cache;
  asect->reloc_count = cache_ptr - reloc_cache;
  asect->reloc_count = cache_ptr - reloc_cache;
 
 
  return true;
  return true;
}
}
 
 
/* Write out a relocation section into an object file.  */
/* Write out a relocation section into an object file.  */
 
 
boolean
boolean
NAME(aout,squirt_out_relocs) (abfd, section)
NAME(aout,squirt_out_relocs) (abfd, section)
     bfd *abfd;
     bfd *abfd;
     asection *section;
     asection *section;
{
{
  arelent **generic;
  arelent **generic;
  unsigned char *native;
  unsigned char *native;
  unsigned int count = section->reloc_count;
  unsigned int count = section->reloc_count;
  size_t natsize;
  size_t natsize;
 
 
#if 0
#if 0
  /* If we're writing an .o file, we must write
  /* If we're writing an .o file, we must write
     relocation information, even if there is none. */
     relocation information, even if there is none. */
  if ((count == 0 || section->orelocation == NULL) &&
  if ((count == 0 || section->orelocation == NULL) &&
      <writing_executable>)
      <writing_executable>)
    return true;
    return true;
#endif
#endif
 
 
  natsize = bfd_get_section_size_before_reloc (section);
  natsize = bfd_get_section_size_before_reloc (section);
  native = (unsigned char *) bfd_zalloc (abfd, natsize);
  native = (unsigned char *) bfd_zalloc (abfd, natsize);
  if (!native)
  if (!native)
    return false;
    return false;
 
 
  memset ((PTR)native, 0, natsize);
  memset ((PTR)native, 0, natsize);
 
 
  generic = section->orelocation;
  generic = section->orelocation;
  if (generic != NULL)
  if (generic != NULL)
    {
    {
      while (count > 0)
      while (count > 0)
        {
        {
          struct pdp11_aout_reloc_external *r;
          struct pdp11_aout_reloc_external *r;
 
 
          r = (struct pdp11_aout_reloc_external *)
          r = (struct pdp11_aout_reloc_external *)
            (native + (*generic)->address);
            (native + (*generic)->address);
          pdp11_aout_swap_reloc_out (abfd, *generic, r);
          pdp11_aout_swap_reloc_out (abfd, *generic, r);
          count--;
          count--;
          generic++;
          generic++;
        }
        }
    }
    }
 
 
  if (bfd_write ((PTR) native, 1, natsize, abfd) != natsize)
  if (bfd_write ((PTR) native, 1, natsize, abfd) != natsize)
    {
    {
      bfd_release(abfd, native);
      bfd_release(abfd, native);
      return false;
      return false;
    }
    }
 
 
  bfd_release (abfd, native);
  bfd_release (abfd, native);
 
 
  return true;
  return true;
}
}
 
 
/* This is stupid.  This function should be a boolean predicate */
/* This is stupid.  This function should be a boolean predicate */
long
long
NAME(aout,canonicalize_reloc) (abfd, section, relptr, symbols)
NAME(aout,canonicalize_reloc) (abfd, section, relptr, symbols)
     bfd *abfd;
     bfd *abfd;
     sec_ptr section;
     sec_ptr section;
     arelent **relptr;
     arelent **relptr;
     asymbol **symbols;
     asymbol **symbols;
{
{
  arelent *tblptr = section->relocation;
  arelent *tblptr = section->relocation;
  unsigned int count;
  unsigned int count;
 
 
  if (section == obj_bsssec (abfd))
  if (section == obj_bsssec (abfd))
    {
    {
      *relptr = NULL;
      *relptr = NULL;
      return 0;
      return 0;
    }
    }
 
 
  if (!(tblptr || NAME(aout,slurp_reloc_table)(abfd, section, symbols)))
  if (!(tblptr || NAME(aout,slurp_reloc_table)(abfd, section, symbols)))
    return -1;
    return -1;
 
 
  if (section->flags & SEC_CONSTRUCTOR)
  if (section->flags & SEC_CONSTRUCTOR)
    {
    {
      arelent_chain *chain = section->constructor_chain;
      arelent_chain *chain = section->constructor_chain;
 
 
      for (count = 0; count < section->reloc_count; count ++)
      for (count = 0; count < section->reloc_count; count ++)
        {
        {
          *relptr ++ = &chain->relent;
          *relptr ++ = &chain->relent;
          chain = chain->next;
          chain = chain->next;
        }
        }
    }
    }
  else
  else
    {
    {
      tblptr = section->relocation;
      tblptr = section->relocation;
 
 
      for (count = 0; count++ < section->reloc_count;)
      for (count = 0; count++ < section->reloc_count;)
        *relptr++ = tblptr++;
        *relptr++ = tblptr++;
    }
    }
 
 
  *relptr = 0;
  *relptr = 0;
 
 
  return section->reloc_count;
  return section->reloc_count;
}
}
 
 
long
long
NAME(aout,get_reloc_upper_bound) (abfd, asect)
NAME(aout,get_reloc_upper_bound) (abfd, asect)
     bfd *abfd;
     bfd *abfd;
     sec_ptr asect;
     sec_ptr asect;
{
{
  if (bfd_get_format (abfd) != bfd_object)
  if (bfd_get_format (abfd) != bfd_object)
    {
    {
      bfd_set_error (bfd_error_invalid_operation);
      bfd_set_error (bfd_error_invalid_operation);
      return -1;
      return -1;
    }
    }
 
 
  if (asect->flags & SEC_CONSTRUCTOR)
  if (asect->flags & SEC_CONSTRUCTOR)
    return (sizeof (arelent *) * (asect->reloc_count+1));
    return (sizeof (arelent *) * (asect->reloc_count+1));
 
 
  if (asect == obj_datasec (abfd))
  if (asect == obj_datasec (abfd))
    return (sizeof (arelent *)
    return (sizeof (arelent *)
            * ((exec_hdr(abfd)->a_drsize / obj_reloc_entry_size (abfd))
            * ((exec_hdr(abfd)->a_drsize / obj_reloc_entry_size (abfd))
               + 1));
               + 1));
 
 
  if (asect == obj_textsec (abfd))
  if (asect == obj_textsec (abfd))
    return (sizeof (arelent *)
    return (sizeof (arelent *)
            * ((exec_hdr(abfd)->a_trsize / obj_reloc_entry_size (abfd))
            * ((exec_hdr(abfd)->a_trsize / obj_reloc_entry_size (abfd))
               + 1));
               + 1));
 
 
  /* TODO: why are there two if statements for obj_bsssec()? */
  /* TODO: why are there two if statements for obj_bsssec()? */
 
 
  if (asect == obj_bsssec (abfd))
  if (asect == obj_bsssec (abfd))
    return sizeof (arelent *);
    return sizeof (arelent *);
 
 
  if (asect == obj_bsssec (abfd))
  if (asect == obj_bsssec (abfd))
    return 0;
    return 0;
 
 
  bfd_set_error (bfd_error_invalid_operation);
  bfd_set_error (bfd_error_invalid_operation);
  return -1;
  return -1;
}
}
 
 


long
long
NAME(aout,get_symtab_upper_bound) (abfd)
NAME(aout,get_symtab_upper_bound) (abfd)
     bfd *abfd;
     bfd *abfd;
{
{
  if (!NAME(aout,slurp_symbol_table)(abfd))
  if (!NAME(aout,slurp_symbol_table)(abfd))
    return -1;
    return -1;
 
 
  return (bfd_get_symcount (abfd) + 1) * (sizeof (aout_symbol_type *));
  return (bfd_get_symcount (abfd) + 1) * (sizeof (aout_symbol_type *));
}
}
 
 
alent *
alent *
NAME(aout,get_lineno) (abfd, symbol)
NAME(aout,get_lineno) (abfd, symbol)
     bfd * abfd ATTRIBUTE_UNUSED;
     bfd * abfd ATTRIBUTE_UNUSED;
     asymbol * symbol ATTRIBUTE_UNUSED;
     asymbol * symbol ATTRIBUTE_UNUSED;
{
{
  return (alent *)NULL;
  return (alent *)NULL;
}
}
 
 
void
void
NAME(aout,get_symbol_info) (abfd, symbol, ret)
NAME(aout,get_symbol_info) (abfd, symbol, ret)
     bfd * abfd ATTRIBUTE_UNUSED;
     bfd * abfd ATTRIBUTE_UNUSED;
     asymbol *symbol;
     asymbol *symbol;
     symbol_info *ret;
     symbol_info *ret;
{
{
  bfd_symbol_info (symbol, ret);
  bfd_symbol_info (symbol, ret);
 
 
  if (ret->type == '?')
  if (ret->type == '?')
    {
    {
      int type_code = aout_symbol(symbol)->type & 0xff;
      int type_code = aout_symbol(symbol)->type & 0xff;
      const char *stab_name = bfd_get_stab_name (type_code);
      const char *stab_name = bfd_get_stab_name (type_code);
      static char buf[10];
      static char buf[10];
 
 
      if (stab_name == NULL)
      if (stab_name == NULL)
        {
        {
          sprintf(buf, "(%d)", type_code);
          sprintf(buf, "(%d)", type_code);
          stab_name = buf;
          stab_name = buf;
        }
        }
      ret->type = '-';
      ret->type = '-';
      ret->stab_type = type_code;
      ret->stab_type = type_code;
      ret->stab_other = (unsigned)(aout_symbol(symbol)->other & 0xff);
      ret->stab_other = (unsigned)(aout_symbol(symbol)->other & 0xff);
      ret->stab_desc = (unsigned)(aout_symbol(symbol)->desc & 0xffff);
      ret->stab_desc = (unsigned)(aout_symbol(symbol)->desc & 0xffff);
      ret->stab_name = stab_name;
      ret->stab_name = stab_name;
    }
    }
}
}
 
 
/*ARGSUSED*/
/*ARGSUSED*/
void
void
NAME(aout,print_symbol) (abfd, afile, symbol, how)
NAME(aout,print_symbol) (abfd, afile, symbol, how)
     bfd * abfd ATTRIBUTE_UNUSED;
     bfd * abfd ATTRIBUTE_UNUSED;
     PTR afile;
     PTR afile;
     asymbol *symbol;
     asymbol *symbol;
     bfd_print_symbol_type how;
     bfd_print_symbol_type how;
{
{
  FILE *file = (FILE *)afile;
  FILE *file = (FILE *)afile;
 
 
  switch (how)
  switch (how)
    {
    {
    case bfd_print_symbol_name:
    case bfd_print_symbol_name:
      if (symbol->name)
      if (symbol->name)
        fprintf(file,"%s", symbol->name);
        fprintf(file,"%s", symbol->name);
      break;
      break;
    case bfd_print_symbol_more:
    case bfd_print_symbol_more:
      fprintf(file,"%4x %2x %2x",(unsigned)(aout_symbol(symbol)->desc & 0xffff),
      fprintf(file,"%4x %2x %2x",(unsigned)(aout_symbol(symbol)->desc & 0xffff),
              (unsigned)(aout_symbol(symbol)->other & 0xff),
              (unsigned)(aout_symbol(symbol)->other & 0xff),
              (unsigned)(aout_symbol(symbol)->type));
              (unsigned)(aout_symbol(symbol)->type));
      break;
      break;
    case bfd_print_symbol_all:
    case bfd_print_symbol_all:
      {
      {
        CONST char *section_name = symbol->section->name;
        CONST char *section_name = symbol->section->name;
 
 
        bfd_print_symbol_vandf ((PTR)file,symbol);
        bfd_print_symbol_vandf ((PTR)file,symbol);
 
 
        fprintf (file," %-5s %04x %02x %02x",
        fprintf (file," %-5s %04x %02x %02x",
                 section_name,
                 section_name,
                 (unsigned)(aout_symbol(symbol)->desc & 0xffff),
                 (unsigned)(aout_symbol(symbol)->desc & 0xffff),
                 (unsigned)(aout_symbol(symbol)->other & 0xff),
                 (unsigned)(aout_symbol(symbol)->other & 0xff),
                 (unsigned)(aout_symbol(symbol)->type  & 0xff));
                 (unsigned)(aout_symbol(symbol)->type  & 0xff));
        if (symbol->name)
        if (symbol->name)
          fprintf(file," %s", symbol->name);
          fprintf(file," %s", symbol->name);
      }
      }
      break;
      break;
    }
    }
}
}
 
 
/* If we don't have to allocate more than 1MB to hold the generic
/* If we don't have to allocate more than 1MB to hold the generic
   symbols, we use the generic minisymbol method: it's faster, since
   symbols, we use the generic minisymbol method: it's faster, since
   it only translates the symbols once, not multiple times.  */
   it only translates the symbols once, not multiple times.  */
#define MINISYM_THRESHOLD (1000000 / sizeof (asymbol))
#define MINISYM_THRESHOLD (1000000 / sizeof (asymbol))
 
 
/* Read minisymbols.  For minisymbols, we use the unmodified a.out
/* Read minisymbols.  For minisymbols, we use the unmodified a.out
   symbols.  The minisymbol_to_symbol function translates these into
   symbols.  The minisymbol_to_symbol function translates these into
   BFD asymbol structures.  */
   BFD asymbol structures.  */
 
 
long
long
NAME(aout,read_minisymbols) (abfd, dynamic, minisymsp, sizep)
NAME(aout,read_minisymbols) (abfd, dynamic, minisymsp, sizep)
     bfd *abfd;
     bfd *abfd;
     boolean dynamic;
     boolean dynamic;
     PTR *minisymsp;
     PTR *minisymsp;
     unsigned int *sizep;
     unsigned int *sizep;
{
{
  if (dynamic)
  if (dynamic)
    {
    {
      /* We could handle the dynamic symbols here as well, but it's
      /* We could handle the dynamic symbols here as well, but it's
         easier to hand them off.  */
         easier to hand them off.  */
      return _bfd_generic_read_minisymbols (abfd, dynamic, minisymsp, sizep);
      return _bfd_generic_read_minisymbols (abfd, dynamic, minisymsp, sizep);
    }
    }
 
 
  if (! aout_get_external_symbols (abfd))
  if (! aout_get_external_symbols (abfd))
    return -1;
    return -1;
 
 
  if (obj_aout_external_sym_count (abfd) < MINISYM_THRESHOLD)
  if (obj_aout_external_sym_count (abfd) < MINISYM_THRESHOLD)
    return _bfd_generic_read_minisymbols (abfd, dynamic, minisymsp, sizep);
    return _bfd_generic_read_minisymbols (abfd, dynamic, minisymsp, sizep);
 
 
  *minisymsp = (PTR) obj_aout_external_syms (abfd);
  *minisymsp = (PTR) obj_aout_external_syms (abfd);
 
 
  /* By passing the external symbols back from this routine, we are
  /* By passing the external symbols back from this routine, we are
     giving up control over the memory block.  Clear
     giving up control over the memory block.  Clear
     obj_aout_external_syms, so that we do not try to free it
     obj_aout_external_syms, so that we do not try to free it
     ourselves.  */
     ourselves.  */
  obj_aout_external_syms (abfd) = NULL;
  obj_aout_external_syms (abfd) = NULL;
 
 
  *sizep = EXTERNAL_NLIST_SIZE;
  *sizep = EXTERNAL_NLIST_SIZE;
  return obj_aout_external_sym_count (abfd);
  return obj_aout_external_sym_count (abfd);
}
}
 
 
/* Convert a minisymbol to a BFD asymbol.  A minisymbol is just an
/* Convert a minisymbol to a BFD asymbol.  A minisymbol is just an
   unmodified a.out symbol.  The SYM argument is a structure returned
   unmodified a.out symbol.  The SYM argument is a structure returned
   by bfd_make_empty_symbol, which we fill in here.  */
   by bfd_make_empty_symbol, which we fill in here.  */
 
 
asymbol *
asymbol *
NAME(aout,minisymbol_to_symbol) (abfd, dynamic, minisym, sym)
NAME(aout,minisymbol_to_symbol) (abfd, dynamic, minisym, sym)
     bfd *abfd;
     bfd *abfd;
     boolean dynamic;
     boolean dynamic;
     const PTR minisym;
     const PTR minisym;
     asymbol *sym;
     asymbol *sym;
{
{
  if (dynamic
  if (dynamic
      || obj_aout_external_sym_count (abfd) < MINISYM_THRESHOLD)
      || obj_aout_external_sym_count (abfd) < MINISYM_THRESHOLD)
    return _bfd_generic_minisymbol_to_symbol (abfd, dynamic, minisym, sym);
    return _bfd_generic_minisymbol_to_symbol (abfd, dynamic, minisym, sym);
 
 
  memset (sym, 0, sizeof (aout_symbol_type));
  memset (sym, 0, sizeof (aout_symbol_type));
 
 
  /* We call translate_symbol_table to translate a single symbol.  */
  /* We call translate_symbol_table to translate a single symbol.  */
  if (! (NAME(aout,translate_symbol_table)
  if (! (NAME(aout,translate_symbol_table)
         (abfd,
         (abfd,
          (aout_symbol_type *) sym,
          (aout_symbol_type *) sym,
          (struct external_nlist *) minisym,
          (struct external_nlist *) minisym,
          (bfd_size_type) 1,
          (bfd_size_type) 1,
          obj_aout_external_strings (abfd),
          obj_aout_external_strings (abfd),
          obj_aout_external_string_size (abfd),
          obj_aout_external_string_size (abfd),
          false)))
          false)))
    return NULL;
    return NULL;
 
 
  return sym;
  return sym;
}
}
 
 
/*
/*
 provided a BFD, a section and an offset into the section, calculate
 provided a BFD, a section and an offset into the section, calculate
 and return the name of the source file and the line nearest to the
 and return the name of the source file and the line nearest to the
 wanted location.
 wanted location.
*/
*/
 
 
boolean
boolean
NAME(aout,find_nearest_line)
NAME(aout,find_nearest_line)
     (abfd, section, symbols, offset, filename_ptr, functionname_ptr, line_ptr)
     (abfd, section, symbols, offset, filename_ptr, functionname_ptr, line_ptr)
     bfd *abfd;
     bfd *abfd;
     asection *section;
     asection *section;
     asymbol **symbols;
     asymbol **symbols;
     bfd_vma offset;
     bfd_vma offset;
     CONST char **filename_ptr;
     CONST char **filename_ptr;
     CONST char **functionname_ptr;
     CONST char **functionname_ptr;
     unsigned int *line_ptr;
     unsigned int *line_ptr;
{
{
  /* Run down the file looking for the filename, function and linenumber */
  /* Run down the file looking for the filename, function and linenumber */
  asymbol **p;
  asymbol **p;
  CONST char *directory_name = NULL;
  CONST char *directory_name = NULL;
  CONST char *main_file_name = NULL;
  CONST char *main_file_name = NULL;
  CONST char *current_file_name = NULL;
  CONST char *current_file_name = NULL;
  CONST char *line_file_name = NULL; /* Value of current_file_name at line number. */
  CONST char *line_file_name = NULL; /* Value of current_file_name at line number. */
  bfd_vma low_line_vma = 0;
  bfd_vma low_line_vma = 0;
  bfd_vma low_func_vma = 0;
  bfd_vma low_func_vma = 0;
  asymbol *func = 0;
  asymbol *func = 0;
  size_t filelen, funclen;
  size_t filelen, funclen;
  char *buf;
  char *buf;
 
 
  *filename_ptr = abfd->filename;
  *filename_ptr = abfd->filename;
  *functionname_ptr = 0;
  *functionname_ptr = 0;
  *line_ptr = 0;
  *line_ptr = 0;
 
 
  if (symbols != (asymbol **)NULL)
  if (symbols != (asymbol **)NULL)
    {
    {
      for (p = symbols; *p; p++)
      for (p = symbols; *p; p++)
        {
        {
          aout_symbol_type  *q = (aout_symbol_type *)(*p);
          aout_symbol_type  *q = (aout_symbol_type *)(*p);
        next:
        next:
          switch (q->type)
          switch (q->type)
            {
            {
            case N_TEXT:
            case N_TEXT:
              /* If this looks like a file name symbol, and it comes after
              /* If this looks like a file name symbol, and it comes after
                 the line number we have found so far, but before the
                 the line number we have found so far, but before the
                 offset, then we have probably not found the right line
                 offset, then we have probably not found the right line
                 number.  */
                 number.  */
              if (q->symbol.value <= offset
              if (q->symbol.value <= offset
                  && ((q->symbol.value > low_line_vma
                  && ((q->symbol.value > low_line_vma
                       && (line_file_name != NULL
                       && (line_file_name != NULL
                           || *line_ptr != 0))
                           || *line_ptr != 0))
                      || (q->symbol.value > low_func_vma
                      || (q->symbol.value > low_func_vma
                          && func != NULL)))
                          && func != NULL)))
                {
                {
                  const char * symname;
                  const char * symname;
 
 
                  symname = q->symbol.name;
                  symname = q->symbol.name;
                  if (strcmp (symname + strlen (symname) - 2, ".o") == 0)
                  if (strcmp (symname + strlen (symname) - 2, ".o") == 0)
                    {
                    {
                      if (q->symbol.value > low_line_vma)
                      if (q->symbol.value > low_line_vma)
                        {
                        {
                          *line_ptr = 0;
                          *line_ptr = 0;
                          line_file_name = NULL;
                          line_file_name = NULL;
                        }
                        }
                      if (q->symbol.value > low_func_vma)
                      if (q->symbol.value > low_func_vma)
                        func = NULL;
                        func = NULL;
                    }
                    }
                }
                }
              break;
              break;
 
 
            case N_SO:
            case N_SO:
              /* If this symbol is less than the offset, but greater than
              /* If this symbol is less than the offset, but greater than
                 the line number we have found so far, then we have not
                 the line number we have found so far, then we have not
                 found the right line number.  */
                 found the right line number.  */
              if (q->symbol.value <= offset)
              if (q->symbol.value <= offset)
                {
                {
                  if (q->symbol.value > low_line_vma)
                  if (q->symbol.value > low_line_vma)
                    {
                    {
                      *line_ptr = 0;
                      *line_ptr = 0;
                      line_file_name = NULL;
                      line_file_name = NULL;
                    }
                    }
                  if (q->symbol.value > low_func_vma)
                  if (q->symbol.value > low_func_vma)
                    func = NULL;
                    func = NULL;
                }
                }
 
 
              main_file_name = current_file_name = q->symbol.name;
              main_file_name = current_file_name = q->symbol.name;
              /* Look ahead to next symbol to check if that too is an N_SO. */
              /* Look ahead to next symbol to check if that too is an N_SO. */
              p++;
              p++;
              if (*p == NULL)
              if (*p == NULL)
                break;
                break;
              q = (aout_symbol_type *)(*p);
              q = (aout_symbol_type *)(*p);
              if (q->type != (int)N_SO)
              if (q->type != (int)N_SO)
                goto next;
                goto next;
 
 
              /* Found a second N_SO  First is directory; second is filename. */
              /* Found a second N_SO  First is directory; second is filename. */
              directory_name = current_file_name;
              directory_name = current_file_name;
              main_file_name = current_file_name = q->symbol.name;
              main_file_name = current_file_name = q->symbol.name;
              if (obj_textsec(abfd) != section)
              if (obj_textsec(abfd) != section)
                goto done;
                goto done;
              break;
              break;
            case N_SOL:
            case N_SOL:
              current_file_name = q->symbol.name;
              current_file_name = q->symbol.name;
              break;
              break;
 
 
            case N_SLINE:
            case N_SLINE:
            case N_DSLINE:
            case N_DSLINE:
            case N_BSLINE:
            case N_BSLINE:
              /* We'll keep this if it resolves nearer than the one we have
              /* We'll keep this if it resolves nearer than the one we have
                 already.  */
                 already.  */
              if (q->symbol.value >= low_line_vma
              if (q->symbol.value >= low_line_vma
                  && q->symbol.value <= offset)
                  && q->symbol.value <= offset)
                {
                {
                  *line_ptr = q->desc;
                  *line_ptr = q->desc;
                  low_line_vma = q->symbol.value;
                  low_line_vma = q->symbol.value;
                  line_file_name = current_file_name;
                  line_file_name = current_file_name;
                }
                }
              break;
              break;
 
 
            case N_FUN:
            case N_FUN:
              {
              {
                /* We'll keep this if it is nearer than the one we have already */
                /* We'll keep this if it is nearer than the one we have already */
                if (q->symbol.value >= low_func_vma &&
                if (q->symbol.value >= low_func_vma &&
                    q->symbol.value <= offset)
                    q->symbol.value <= offset)
                  {
                  {
                    low_func_vma = q->symbol.value;
                    low_func_vma = q->symbol.value;
                    func = (asymbol *)q;
                    func = (asymbol *)q;
                  }
                  }
                else if (q->symbol.value > offset)
                else if (q->symbol.value > offset)
                  goto done;
                  goto done;
              }
              }
              break;
              break;
            }
            }
        }
        }
    }
    }
 
 
 done:
 done:
  if (*line_ptr != 0)
  if (*line_ptr != 0)
    main_file_name = line_file_name;
    main_file_name = line_file_name;
 
 
  if (main_file_name == NULL
  if (main_file_name == NULL
      || main_file_name[0] == '/'
      || main_file_name[0] == '/'
      || directory_name == NULL)
      || directory_name == NULL)
    filelen = 0;
    filelen = 0;
  else
  else
    filelen = strlen (directory_name) + strlen (main_file_name);
    filelen = strlen (directory_name) + strlen (main_file_name);
  if (func == NULL)
  if (func == NULL)
    funclen = 0;
    funclen = 0;
  else
  else
    funclen = strlen (bfd_asymbol_name (func));
    funclen = strlen (bfd_asymbol_name (func));
 
 
  if (adata (abfd).line_buf != NULL)
  if (adata (abfd).line_buf != NULL)
    free (adata (abfd).line_buf);
    free (adata (abfd).line_buf);
  if (filelen + funclen == 0)
  if (filelen + funclen == 0)
    adata (abfd).line_buf = buf = NULL;
    adata (abfd).line_buf = buf = NULL;
  else
  else
    {
    {
      buf = (char *) bfd_malloc (filelen + funclen + 3);
      buf = (char *) bfd_malloc (filelen + funclen + 3);
      adata (abfd).line_buf = buf;
      adata (abfd).line_buf = buf;
      if (buf == NULL)
      if (buf == NULL)
        return false;
        return false;
    }
    }
 
 
  if (main_file_name != NULL)
  if (main_file_name != NULL)
    {
    {
      if (main_file_name[0] == '/' || directory_name == NULL)
      if (main_file_name[0] == '/' || directory_name == NULL)
        *filename_ptr = main_file_name;
        *filename_ptr = main_file_name;
      else
      else
        {
        {
          sprintf (buf, "%s%s", directory_name, main_file_name);
          sprintf (buf, "%s%s", directory_name, main_file_name);
          *filename_ptr = buf;
          *filename_ptr = buf;
          buf += filelen + 1;
          buf += filelen + 1;
        }
        }
    }
    }
 
 
  if (func)
  if (func)
    {
    {
      const char *function = func->name;
      const char *function = func->name;
      char *p;
      char *p;
 
 
      /* The caller expects a symbol name.  We actually have a
      /* The caller expects a symbol name.  We actually have a
         function name, without the leading underscore.  Put the
         function name, without the leading underscore.  Put the
         underscore back in, so that the caller gets a symbol name.  */
         underscore back in, so that the caller gets a symbol name.  */
      if (bfd_get_symbol_leading_char (abfd) == '\0')
      if (bfd_get_symbol_leading_char (abfd) == '\0')
        strcpy (buf, function);
        strcpy (buf, function);
      else
      else
        {
        {
          buf[0] = bfd_get_symbol_leading_char (abfd);
          buf[0] = bfd_get_symbol_leading_char (abfd);
          strcpy (buf + 1, function);
          strcpy (buf + 1, function);
        }
        }
 
 
      /* Have to remove : stuff.  */
      /* Have to remove : stuff.  */
      p = strchr (buf, ':');
      p = strchr (buf, ':');
      if (p != NULL)
      if (p != NULL)
        *p = '\0';
        *p = '\0';
      *functionname_ptr = buf;
      *functionname_ptr = buf;
    }
    }
 
 
  return true;
  return true;
}
}
 
 
int
int
NAME(aout,sizeof_headers) (abfd, execable)
NAME(aout,sizeof_headers) (abfd, execable)
     bfd *abfd;
     bfd *abfd;
     boolean execable ATTRIBUTE_UNUSED;
     boolean execable ATTRIBUTE_UNUSED;
{
{
  return adata(abfd).exec_bytes_size;
  return adata(abfd).exec_bytes_size;
}
}
 
 
/* Free all information we have cached for this BFD.  We can always
/* Free all information we have cached for this BFD.  We can always
   read it again later if we need it.  */
   read it again later if we need it.  */
 
 
boolean
boolean
NAME(aout,bfd_free_cached_info) (abfd)
NAME(aout,bfd_free_cached_info) (abfd)
     bfd *abfd;
     bfd *abfd;
{
{
  asection *o;
  asection *o;
 
 
  if (bfd_get_format (abfd) != bfd_object)
  if (bfd_get_format (abfd) != bfd_object)
    return true;
    return true;
 
 
#define BFCI_FREE(x) if (x != NULL) { free (x); x = NULL; }
#define BFCI_FREE(x) if (x != NULL) { free (x); x = NULL; }
  BFCI_FREE (obj_aout_symbols (abfd));
  BFCI_FREE (obj_aout_symbols (abfd));
#ifdef USE_MMAP
#ifdef USE_MMAP
  obj_aout_external_syms (abfd) = 0;
  obj_aout_external_syms (abfd) = 0;
  bfd_free_window (&obj_aout_sym_window (abfd));
  bfd_free_window (&obj_aout_sym_window (abfd));
  bfd_free_window (&obj_aout_string_window (abfd));
  bfd_free_window (&obj_aout_string_window (abfd));
  obj_aout_external_strings (abfd) = 0;
  obj_aout_external_strings (abfd) = 0;
#else
#else
  BFCI_FREE (obj_aout_external_syms (abfd));
  BFCI_FREE (obj_aout_external_syms (abfd));
  BFCI_FREE (obj_aout_external_strings (abfd));
  BFCI_FREE (obj_aout_external_strings (abfd));
#endif
#endif
  for (o = abfd->sections; o != (asection *) NULL; o = o->next)
  for (o = abfd->sections; o != (asection *) NULL; o = o->next)
    BFCI_FREE (o->relocation);
    BFCI_FREE (o->relocation);
#undef BFCI_FREE
#undef BFCI_FREE
 
 
  return true;
  return true;
}
}


/* a.out link code.  */
/* a.out link code.  */
 
 
static boolean aout_link_add_object_symbols
static boolean aout_link_add_object_symbols
  PARAMS ((bfd *, struct bfd_link_info *));
  PARAMS ((bfd *, struct bfd_link_info *));
static boolean aout_link_check_archive_element
static boolean aout_link_check_archive_element
  PARAMS ((bfd *, struct bfd_link_info *, boolean *));
  PARAMS ((bfd *, struct bfd_link_info *, boolean *));
static boolean aout_link_free_symbols PARAMS ((bfd *));
static boolean aout_link_free_symbols PARAMS ((bfd *));
static boolean aout_link_check_ar_symbols
static boolean aout_link_check_ar_symbols
  PARAMS ((bfd *, struct bfd_link_info *, boolean *pneeded));
  PARAMS ((bfd *, struct bfd_link_info *, boolean *pneeded));
static boolean aout_link_add_symbols
static boolean aout_link_add_symbols
  PARAMS ((bfd *, struct bfd_link_info *));
  PARAMS ((bfd *, struct bfd_link_info *));
 
 
/* Routine to create an entry in an a.out link hash table.  */
/* Routine to create an entry in an a.out link hash table.  */
 
 
struct bfd_hash_entry *
struct bfd_hash_entry *
NAME(aout,link_hash_newfunc) (entry, table, string)
NAME(aout,link_hash_newfunc) (entry, table, string)
     struct bfd_hash_entry *entry;
     struct bfd_hash_entry *entry;
     struct bfd_hash_table *table;
     struct bfd_hash_table *table;
     const char *string;
     const char *string;
{
{
  struct aout_link_hash_entry *ret = (struct aout_link_hash_entry *) entry;
  struct aout_link_hash_entry *ret = (struct aout_link_hash_entry *) entry;
 
 
  /* Allocate the structure if it has not already been allocated by a
  /* Allocate the structure if it has not already been allocated by a
     subclass.  */
     subclass.  */
  if (ret == (struct aout_link_hash_entry *) NULL)
  if (ret == (struct aout_link_hash_entry *) NULL)
    ret = ((struct aout_link_hash_entry *)
    ret = ((struct aout_link_hash_entry *)
           bfd_hash_allocate (table, sizeof (struct aout_link_hash_entry)));
           bfd_hash_allocate (table, sizeof (struct aout_link_hash_entry)));
  if (ret == (struct aout_link_hash_entry *) NULL)
  if (ret == (struct aout_link_hash_entry *) NULL)
    return (struct bfd_hash_entry *) ret;
    return (struct bfd_hash_entry *) ret;
 
 
  /* Call the allocation method of the superclass.  */
  /* Call the allocation method of the superclass.  */
  ret = ((struct aout_link_hash_entry *)
  ret = ((struct aout_link_hash_entry *)
         _bfd_link_hash_newfunc ((struct bfd_hash_entry *) ret,
         _bfd_link_hash_newfunc ((struct bfd_hash_entry *) ret,
                                 table, string));
                                 table, string));
  if (ret)
  if (ret)
    {
    {
      /* Set local fields.  */
      /* Set local fields.  */
      ret->written = false;
      ret->written = false;
      ret->indx = -1;
      ret->indx = -1;
    }
    }
 
 
  return (struct bfd_hash_entry *) ret;
  return (struct bfd_hash_entry *) ret;
}
}
 
 
/* Initialize an a.out link hash table.  */
/* Initialize an a.out link hash table.  */
 
 
boolean
boolean
NAME(aout,link_hash_table_init) (table, abfd, newfunc)
NAME(aout,link_hash_table_init) (table, abfd, newfunc)
     struct aout_link_hash_table *table;
     struct aout_link_hash_table *table;
     bfd *abfd;
     bfd *abfd;
     struct bfd_hash_entry *(*newfunc) PARAMS ((struct bfd_hash_entry *,
     struct bfd_hash_entry *(*newfunc) PARAMS ((struct bfd_hash_entry *,
                                                struct bfd_hash_table *,
                                                struct bfd_hash_table *,
                                                const char *));
                                                const char *));
{
{
  return _bfd_link_hash_table_init (&table->root, abfd, newfunc);
  return _bfd_link_hash_table_init (&table->root, abfd, newfunc);
}
}
 
 
/* Create an a.out link hash table.  */
/* Create an a.out link hash table.  */
 
 
struct bfd_link_hash_table *
struct bfd_link_hash_table *
NAME(aout,link_hash_table_create) (abfd)
NAME(aout,link_hash_table_create) (abfd)
     bfd *abfd;
     bfd *abfd;
{
{
  struct aout_link_hash_table *ret;
  struct aout_link_hash_table *ret;
 
 
  ret = ((struct aout_link_hash_table *)
  ret = ((struct aout_link_hash_table *)
         bfd_alloc (abfd, sizeof (struct aout_link_hash_table)));
         bfd_alloc (abfd, sizeof (struct aout_link_hash_table)));
  if (ret == NULL)
  if (ret == NULL)
    return (struct bfd_link_hash_table *) NULL;
    return (struct bfd_link_hash_table *) NULL;
  if (! NAME(aout,link_hash_table_init) (ret, abfd,
  if (! NAME(aout,link_hash_table_init) (ret, abfd,
                                         NAME(aout,link_hash_newfunc)))
                                         NAME(aout,link_hash_newfunc)))
    {
    {
      free (ret);
      free (ret);
      return (struct bfd_link_hash_table *) NULL;
      return (struct bfd_link_hash_table *) NULL;
    }
    }
  return &ret->root;
  return &ret->root;
}
}
 
 
/* Given an a.out BFD, add symbols to the global hash table as
/* Given an a.out BFD, add symbols to the global hash table as
   appropriate.  */
   appropriate.  */
 
 
boolean
boolean
NAME(aout,link_add_symbols) (abfd, info)
NAME(aout,link_add_symbols) (abfd, info)
     bfd *abfd;
     bfd *abfd;
     struct bfd_link_info *info;
     struct bfd_link_info *info;
{
{
  switch (bfd_get_format (abfd))
  switch (bfd_get_format (abfd))
    {
    {
    case bfd_object:
    case bfd_object:
      return aout_link_add_object_symbols (abfd, info);
      return aout_link_add_object_symbols (abfd, info);
    case bfd_archive:
    case bfd_archive:
      return _bfd_generic_link_add_archive_symbols
      return _bfd_generic_link_add_archive_symbols
        (abfd, info, aout_link_check_archive_element);
        (abfd, info, aout_link_check_archive_element);
    default:
    default:
      bfd_set_error (bfd_error_wrong_format);
      bfd_set_error (bfd_error_wrong_format);
      return false;
      return false;
    }
    }
}
}
 
 
/* Add symbols from an a.out object file.  */
/* Add symbols from an a.out object file.  */
 
 
static boolean
static boolean
aout_link_add_object_symbols (abfd, info)
aout_link_add_object_symbols (abfd, info)
     bfd *abfd;
     bfd *abfd;
     struct bfd_link_info *info;
     struct bfd_link_info *info;
{
{
  if (! aout_get_external_symbols (abfd))
  if (! aout_get_external_symbols (abfd))
    return false;
    return false;
  if (! aout_link_add_symbols (abfd, info))
  if (! aout_link_add_symbols (abfd, info))
    return false;
    return false;
  if (! info->keep_memory)
  if (! info->keep_memory)
    {
    {
      if (! aout_link_free_symbols (abfd))
      if (! aout_link_free_symbols (abfd))
        return false;
        return false;
    }
    }
  return true;
  return true;
}
}
 
 
/* Check a single archive element to see if we need to include it in
/* Check a single archive element to see if we need to include it in
   the link.  *PNEEDED is set according to whether this element is
   the link.  *PNEEDED is set according to whether this element is
   needed in the link or not.  This is called from
   needed in the link or not.  This is called from
   _bfd_generic_link_add_archive_symbols.  */
   _bfd_generic_link_add_archive_symbols.  */
 
 
static boolean
static boolean
aout_link_check_archive_element (abfd, info, pneeded)
aout_link_check_archive_element (abfd, info, pneeded)
     bfd *abfd;
     bfd *abfd;
     struct bfd_link_info *info;
     struct bfd_link_info *info;
     boolean *pneeded;
     boolean *pneeded;
{
{
  if (! aout_get_external_symbols (abfd))
  if (! aout_get_external_symbols (abfd))
    return false;
    return false;
 
 
  if (! aout_link_check_ar_symbols (abfd, info, pneeded))
  if (! aout_link_check_ar_symbols (abfd, info, pneeded))
    return false;
    return false;
 
 
  if (*pneeded)
  if (*pneeded)
    {
    {
      if (! aout_link_add_symbols (abfd, info))
      if (! aout_link_add_symbols (abfd, info))
        return false;
        return false;
    }
    }
 
 
  if (! info->keep_memory || ! *pneeded)
  if (! info->keep_memory || ! *pneeded)
    {
    {
      if (! aout_link_free_symbols (abfd))
      if (! aout_link_free_symbols (abfd))
        return false;
        return false;
    }
    }
 
 
  return true;
  return true;
}
}
 
 
/* Free up the internal symbols read from an a.out file.  */
/* Free up the internal symbols read from an a.out file.  */
 
 
static boolean
static boolean
aout_link_free_symbols (abfd)
aout_link_free_symbols (abfd)
     bfd *abfd;
     bfd *abfd;
{
{
  if (obj_aout_external_syms (abfd) != (struct external_nlist *) NULL)
  if (obj_aout_external_syms (abfd) != (struct external_nlist *) NULL)
    {
    {
#ifdef USE_MMAP
#ifdef USE_MMAP
      bfd_free_window (&obj_aout_sym_window (abfd));
      bfd_free_window (&obj_aout_sym_window (abfd));
#else
#else
      free ((PTR) obj_aout_external_syms (abfd));
      free ((PTR) obj_aout_external_syms (abfd));
#endif
#endif
      obj_aout_external_syms (abfd) = (struct external_nlist *) NULL;
      obj_aout_external_syms (abfd) = (struct external_nlist *) NULL;
    }
    }
  if (obj_aout_external_strings (abfd) != (char *) NULL)
  if (obj_aout_external_strings (abfd) != (char *) NULL)
    {
    {
#ifdef USE_MMAP
#ifdef USE_MMAP
      bfd_free_window (&obj_aout_string_window (abfd));
      bfd_free_window (&obj_aout_string_window (abfd));
#else
#else
      free ((PTR) obj_aout_external_strings (abfd));
      free ((PTR) obj_aout_external_strings (abfd));
#endif
#endif
      obj_aout_external_strings (abfd) = (char *) NULL;
      obj_aout_external_strings (abfd) = (char *) NULL;
    }
    }
  return true;
  return true;
}
}
 
 
/* Look through the internal symbols to see if this object file should
/* Look through the internal symbols to see if this object file should
   be included in the link.  We should include this object file if it
   be included in the link.  We should include this object file if it
   defines any symbols which are currently undefined.  If this object
   defines any symbols which are currently undefined.  If this object
   file defines a common symbol, then we may adjust the size of the
   file defines a common symbol, then we may adjust the size of the
   known symbol but we do not include the object file in the link
   known symbol but we do not include the object file in the link
   (unless there is some other reason to include it).  */
   (unless there is some other reason to include it).  */
 
 
static boolean
static boolean
aout_link_check_ar_symbols (abfd, info, pneeded)
aout_link_check_ar_symbols (abfd, info, pneeded)
     bfd *abfd;
     bfd *abfd;
     struct bfd_link_info *info;
     struct bfd_link_info *info;
     boolean *pneeded;
     boolean *pneeded;
{
{
  register struct external_nlist *p;
  register struct external_nlist *p;
  struct external_nlist *pend;
  struct external_nlist *pend;
  char *strings;
  char *strings;
 
 
  *pneeded = false;
  *pneeded = false;
 
 
  /* Look through all the symbols.  */
  /* Look through all the symbols.  */
  p = obj_aout_external_syms (abfd);
  p = obj_aout_external_syms (abfd);
  pend = p + obj_aout_external_sym_count (abfd);
  pend = p + obj_aout_external_sym_count (abfd);
  strings = obj_aout_external_strings (abfd);
  strings = obj_aout_external_strings (abfd);
  for (; p < pend; p++)
  for (; p < pend; p++)
    {
    {
      int type = bfd_h_get_8 (abfd, p->e_type);
      int type = bfd_h_get_8 (abfd, p->e_type);
      const char *name;
      const char *name;
      struct bfd_link_hash_entry *h;
      struct bfd_link_hash_entry *h;
 
 
      /* Ignore symbols that are not externally visible.  This is an
      /* Ignore symbols that are not externally visible.  This is an
         optimization only, as we check the type more thoroughly
         optimization only, as we check the type more thoroughly
         below.  */
         below.  */
      if ((type & N_EXT) == 0
      if ((type & N_EXT) == 0
          || type == N_FN)
          || type == N_FN)
        continue;
        continue;
 
 
      name = strings + GET_WORD (abfd, p->e_strx);
      name = strings + GET_WORD (abfd, p->e_strx);
      h = bfd_link_hash_lookup (info->hash, name, false, false, true);
      h = bfd_link_hash_lookup (info->hash, name, false, false, true);
 
 
      /* We are only interested in symbols that are currently
      /* We are only interested in symbols that are currently
         undefined or common.  */
         undefined or common.  */
      if (h == (struct bfd_link_hash_entry *) NULL
      if (h == (struct bfd_link_hash_entry *) NULL
          || (h->type != bfd_link_hash_undefined
          || (h->type != bfd_link_hash_undefined
              && h->type != bfd_link_hash_common))
              && h->type != bfd_link_hash_common))
        continue;
        continue;
 
 
      if (type == (N_TEXT | N_EXT)
      if (type == (N_TEXT | N_EXT)
          || type == (N_DATA | N_EXT)
          || type == (N_DATA | N_EXT)
          || type == (N_BSS | N_EXT)
          || type == (N_BSS | N_EXT)
          || type == (N_ABS | N_EXT))
          || type == (N_ABS | N_EXT))
        {
        {
          /* This object file defines this symbol.  We must link it
          /* This object file defines this symbol.  We must link it
             in.  This is true regardless of whether the current
             in.  This is true regardless of whether the current
             definition of the symbol is undefined or common.  If the
             definition of the symbol is undefined or common.  If the
             current definition is common, we have a case in which we
             current definition is common, we have a case in which we
             have already seen an object file including
             have already seen an object file including
                 int a;
                 int a;
             and this object file from the archive includes
             and this object file from the archive includes
                 int a = 5;
                 int a = 5;
             In such a case we must include this object file.
             In such a case we must include this object file.
 
 
             FIXME: The SunOS 4.1.3 linker will pull in the archive
             FIXME: The SunOS 4.1.3 linker will pull in the archive
             element if the symbol is defined in the .data section,
             element if the symbol is defined in the .data section,
             but not if it is defined in the .text section.  That
             but not if it is defined in the .text section.  That
             seems a bit crazy to me, and I haven't implemented it.
             seems a bit crazy to me, and I haven't implemented it.
             However, it might be correct.  */
             However, it might be correct.  */
          if (! (*info->callbacks->add_archive_element) (info, abfd, name))
          if (! (*info->callbacks->add_archive_element) (info, abfd, name))
            return false;
            return false;
          *pneeded = true;
          *pneeded = true;
          return true;
          return true;
        }
        }
 
 
      if (type == (N_UNDF | N_EXT))
      if (type == (N_UNDF | N_EXT))
        {
        {
          bfd_vma value;
          bfd_vma value;
 
 
          value = GET_WORD (abfd, p->e_value);
          value = GET_WORD (abfd, p->e_value);
          if (value != 0)
          if (value != 0)
            {
            {
              /* This symbol is common in the object from the archive
              /* This symbol is common in the object from the archive
                 file.  */
                 file.  */
              if (h->type == bfd_link_hash_undefined)
              if (h->type == bfd_link_hash_undefined)
                {
                {
                  bfd *symbfd;
                  bfd *symbfd;
                  unsigned int power;
                  unsigned int power;
 
 
                  symbfd = h->u.undef.abfd;
                  symbfd = h->u.undef.abfd;
                  if (symbfd == (bfd *) NULL)
                  if (symbfd == (bfd *) NULL)
                    {
                    {
                      /* This symbol was created as undefined from
                      /* This symbol was created as undefined from
                         outside BFD.  We assume that we should link
                         outside BFD.  We assume that we should link
                         in the object file.  This is done for the -u
                         in the object file.  This is done for the -u
                         option in the linker.  */
                         option in the linker.  */
                      if (! (*info->callbacks->add_archive_element) (info,
                      if (! (*info->callbacks->add_archive_element) (info,
                                                                     abfd,
                                                                     abfd,
                                                                     name))
                                                                     name))
                        return false;
                        return false;
                      *pneeded = true;
                      *pneeded = true;
                      return true;
                      return true;
                    }
                    }
                  /* Turn the current link symbol into a common
                  /* Turn the current link symbol into a common
                     symbol.  It is already on the undefs list.  */
                     symbol.  It is already on the undefs list.  */
                  h->type = bfd_link_hash_common;
                  h->type = bfd_link_hash_common;
                  h->u.c.p = ((struct bfd_link_hash_common_entry *)
                  h->u.c.p = ((struct bfd_link_hash_common_entry *)
                              bfd_hash_allocate (&info->hash->table,
                              bfd_hash_allocate (&info->hash->table,
                                  sizeof (struct bfd_link_hash_common_entry)));
                                  sizeof (struct bfd_link_hash_common_entry)));
                  if (h->u.c.p == NULL)
                  if (h->u.c.p == NULL)
                    return false;
                    return false;
 
 
                  h->u.c.size = value;
                  h->u.c.size = value;
 
 
                  /* FIXME: This isn't quite right.  The maximum
                  /* FIXME: This isn't quite right.  The maximum
                     alignment of a common symbol should be set by the
                     alignment of a common symbol should be set by the
                     architecture of the output file, not of the input
                     architecture of the output file, not of the input
                     file.  */
                     file.  */
                  power = bfd_log2 (value);
                  power = bfd_log2 (value);
                  if (power > bfd_get_arch_info (abfd)->section_align_power)
                  if (power > bfd_get_arch_info (abfd)->section_align_power)
                    power = bfd_get_arch_info (abfd)->section_align_power;
                    power = bfd_get_arch_info (abfd)->section_align_power;
                  h->u.c.p->alignment_power = power;
                  h->u.c.p->alignment_power = power;
 
 
                  h->u.c.p->section = bfd_make_section_old_way (symbfd,
                  h->u.c.p->section = bfd_make_section_old_way (symbfd,
                                                                "COMMON");
                                                                "COMMON");
                }
                }
              else
              else
                {
                {
                  /* Adjust the size of the common symbol if
                  /* Adjust the size of the common symbol if
                     necessary.  */
                     necessary.  */
                  if (value > h->u.c.size)
                  if (value > h->u.c.size)
                    h->u.c.size = value;
                    h->u.c.size = value;
                }
                }
            }
            }
        }
        }
    }
    }
 
 
  /* We do not need this object file.  */
  /* We do not need this object file.  */
  return true;
  return true;
}
}
 
 
/* Add all symbols from an object file to the hash table.  */
/* Add all symbols from an object file to the hash table.  */
 
 
static boolean
static boolean
aout_link_add_symbols (abfd, info)
aout_link_add_symbols (abfd, info)
     bfd *abfd;
     bfd *abfd;
     struct bfd_link_info *info;
     struct bfd_link_info *info;
{
{
  boolean (*add_one_symbol) PARAMS ((struct bfd_link_info *, bfd *,
  boolean (*add_one_symbol) PARAMS ((struct bfd_link_info *, bfd *,
                                     const char *, flagword, asection *,
                                     const char *, flagword, asection *,
                                     bfd_vma, const char *, boolean,
                                     bfd_vma, const char *, boolean,
                                     boolean,
                                     boolean,
                                     struct bfd_link_hash_entry **));
                                     struct bfd_link_hash_entry **));
  struct external_nlist *syms;
  struct external_nlist *syms;
  bfd_size_type sym_count;
  bfd_size_type sym_count;
  char *strings;
  char *strings;
  boolean copy;
  boolean copy;
  struct aout_link_hash_entry **sym_hash;
  struct aout_link_hash_entry **sym_hash;
  register struct external_nlist *p;
  register struct external_nlist *p;
  struct external_nlist *pend;
  struct external_nlist *pend;
 
 
  syms = obj_aout_external_syms (abfd);
  syms = obj_aout_external_syms (abfd);
  sym_count = obj_aout_external_sym_count (abfd);
  sym_count = obj_aout_external_sym_count (abfd);
  strings = obj_aout_external_strings (abfd);
  strings = obj_aout_external_strings (abfd);
  if (info->keep_memory)
  if (info->keep_memory)
    copy = false;
    copy = false;
  else
  else
    copy = true;
    copy = true;
 
 
  if (aout_backend_info (abfd)->add_dynamic_symbols != NULL)
  if (aout_backend_info (abfd)->add_dynamic_symbols != NULL)
    {
    {
      if (! ((*aout_backend_info (abfd)->add_dynamic_symbols)
      if (! ((*aout_backend_info (abfd)->add_dynamic_symbols)
             (abfd, info, &syms, &sym_count, &strings)))
             (abfd, info, &syms, &sym_count, &strings)))
        return false;
        return false;
    }
    }
 
 
  /* We keep a list of the linker hash table entries that correspond
  /* We keep a list of the linker hash table entries that correspond
     to particular symbols.  We could just look them up in the hash
     to particular symbols.  We could just look them up in the hash
     table, but keeping the list is more efficient.  Perhaps this
     table, but keeping the list is more efficient.  Perhaps this
     should be conditional on info->keep_memory.  */
     should be conditional on info->keep_memory.  */
  sym_hash = ((struct aout_link_hash_entry **)
  sym_hash = ((struct aout_link_hash_entry **)
              bfd_alloc (abfd,
              bfd_alloc (abfd,
                         ((size_t) sym_count
                         ((size_t) sym_count
                          * sizeof (struct aout_link_hash_entry *))));
                          * sizeof (struct aout_link_hash_entry *))));
  if (sym_hash == NULL && sym_count != 0)
  if (sym_hash == NULL && sym_count != 0)
    return false;
    return false;
  obj_aout_sym_hashes (abfd) = sym_hash;
  obj_aout_sym_hashes (abfd) = sym_hash;
 
 
  add_one_symbol = aout_backend_info (abfd)->add_one_symbol;
  add_one_symbol = aout_backend_info (abfd)->add_one_symbol;
  if (add_one_symbol == NULL)
  if (add_one_symbol == NULL)
    add_one_symbol = _bfd_generic_link_add_one_symbol;
    add_one_symbol = _bfd_generic_link_add_one_symbol;
 
 
  p = syms;
  p = syms;
  pend = p + sym_count;
  pend = p + sym_count;
  for (; p < pend; p++, sym_hash++)
  for (; p < pend; p++, sym_hash++)
    {
    {
      int type;
      int type;
      const char *name;
      const char *name;
      bfd_vma value;
      bfd_vma value;
      asection *section;
      asection *section;
      flagword flags;
      flagword flags;
      const char *string;
      const char *string;
 
 
      *sym_hash = NULL;
      *sym_hash = NULL;
 
 
      type = bfd_h_get_8 (abfd, p->e_type);
      type = bfd_h_get_8 (abfd, p->e_type);
 
 
#if 0 /* not supported in PDP-11 a.out */
#if 0 /* not supported in PDP-11 a.out */
      /* Ignore debugging symbols.  */
      /* Ignore debugging symbols.  */
      if ((type & N_STAB) != 0)
      if ((type & N_STAB) != 0)
        continue;
        continue;
#endif
#endif
 
 
      name = strings + GET_WORD (abfd, p->e_strx);
      name = strings + GET_WORD (abfd, p->e_strx);
      value = GET_WORD (abfd, p->e_value);
      value = GET_WORD (abfd, p->e_value);
      flags = BSF_GLOBAL;
      flags = BSF_GLOBAL;
      string = NULL;
      string = NULL;
      switch (type)
      switch (type)
        {
        {
        default:
        default:
          abort ();
          abort ();
 
 
        case N_UNDF:
        case N_UNDF:
        case N_ABS:
        case N_ABS:
        case N_TEXT:
        case N_TEXT:
        case N_DATA:
        case N_DATA:
        case N_BSS:
        case N_BSS:
        case N_REG:
        case N_REG:
        case N_FN:
        case N_FN:
          /* Ignore symbols that are not externally visible.  */
          /* Ignore symbols that are not externally visible.  */
          continue;
          continue;
 
 
        case N_UNDF | N_EXT:
        case N_UNDF | N_EXT:
          if (value == 0)
          if (value == 0)
            {
            {
              section = bfd_und_section_ptr;
              section = bfd_und_section_ptr;
              flags = 0;
              flags = 0;
            }
            }
          else
          else
            section = bfd_com_section_ptr;
            section = bfd_com_section_ptr;
          break;
          break;
        case N_ABS | N_EXT:
        case N_ABS | N_EXT:
          section = bfd_abs_section_ptr;
          section = bfd_abs_section_ptr;
          break;
          break;
        case N_TEXT | N_EXT:
        case N_TEXT | N_EXT:
          section = obj_textsec (abfd);
          section = obj_textsec (abfd);
          value -= bfd_get_section_vma (abfd, section);
          value -= bfd_get_section_vma (abfd, section);
          break;
          break;
        case N_DATA | N_EXT:
        case N_DATA | N_EXT:
          /* Treat N_SETV symbols as N_DATA symbol; see comment in
          /* Treat N_SETV symbols as N_DATA symbol; see comment in
             translate_from_native_sym_flags.  */
             translate_from_native_sym_flags.  */
          section = obj_datasec (abfd);
          section = obj_datasec (abfd);
          value -= bfd_get_section_vma (abfd, section);
          value -= bfd_get_section_vma (abfd, section);
          break;
          break;
        case N_BSS | N_EXT:
        case N_BSS | N_EXT:
          section = obj_bsssec (abfd);
          section = obj_bsssec (abfd);
          value -= bfd_get_section_vma (abfd, section);
          value -= bfd_get_section_vma (abfd, section);
          break;
          break;
        }
        }
 
 
      if (! ((*add_one_symbol)
      if (! ((*add_one_symbol)
             (info, abfd, name, flags, section, value, string, copy, false,
             (info, abfd, name, flags, section, value, string, copy, false,
              (struct bfd_link_hash_entry **) sym_hash)))
              (struct bfd_link_hash_entry **) sym_hash)))
        return false;
        return false;
 
 
      /* Restrict the maximum alignment of a common symbol based on
      /* Restrict the maximum alignment of a common symbol based on
         the architecture, since a.out has no way to represent
         the architecture, since a.out has no way to represent
         alignment requirements of a section in a .o file.  FIXME:
         alignment requirements of a section in a .o file.  FIXME:
         This isn't quite right: it should use the architecture of the
         This isn't quite right: it should use the architecture of the
         output file, not the input files.  */
         output file, not the input files.  */
      if ((*sym_hash)->root.type == bfd_link_hash_common
      if ((*sym_hash)->root.type == bfd_link_hash_common
          && ((*sym_hash)->root.u.c.p->alignment_power >
          && ((*sym_hash)->root.u.c.p->alignment_power >
              bfd_get_arch_info (abfd)->section_align_power))
              bfd_get_arch_info (abfd)->section_align_power))
        (*sym_hash)->root.u.c.p->alignment_power =
        (*sym_hash)->root.u.c.p->alignment_power =
          bfd_get_arch_info (abfd)->section_align_power;
          bfd_get_arch_info (abfd)->section_align_power;
 
 
      /* If this is a set symbol, and we are not building sets, then
      /* If this is a set symbol, and we are not building sets, then
         it is possible for the hash entry to not have been set.  In
         it is possible for the hash entry to not have been set.  In
         such a case, treat the symbol as not globally defined.  */
         such a case, treat the symbol as not globally defined.  */
      if ((*sym_hash)->root.type == bfd_link_hash_new)
      if ((*sym_hash)->root.type == bfd_link_hash_new)
        {
        {
          BFD_ASSERT ((flags & BSF_CONSTRUCTOR) != 0);
          BFD_ASSERT ((flags & BSF_CONSTRUCTOR) != 0);
          *sym_hash = NULL;
          *sym_hash = NULL;
        }
        }
    }
    }
 
 
  return true;
  return true;
}
}


/* A hash table used for header files with N_BINCL entries.  */
/* A hash table used for header files with N_BINCL entries.  */
 
 
struct aout_link_includes_table
struct aout_link_includes_table
{
{
  struct bfd_hash_table root;
  struct bfd_hash_table root;
};
};
 
 
/* A linked list of totals that we have found for a particular header
/* A linked list of totals that we have found for a particular header
   file.  */
   file.  */
 
 
struct aout_link_includes_totals
struct aout_link_includes_totals
{
{
  struct aout_link_includes_totals *next;
  struct aout_link_includes_totals *next;
  bfd_vma total;
  bfd_vma total;
};
};
 
 
/* An entry in the header file hash table.  */
/* An entry in the header file hash table.  */
 
 
struct aout_link_includes_entry
struct aout_link_includes_entry
{
{
  struct bfd_hash_entry root;
  struct bfd_hash_entry root;
  /* List of totals we have found for this file.  */
  /* List of totals we have found for this file.  */
  struct aout_link_includes_totals *totals;
  struct aout_link_includes_totals *totals;
};
};
 
 
/* Look up an entry in an the header file hash table.  */
/* Look up an entry in an the header file hash table.  */
 
 
#define aout_link_includes_lookup(table, string, create, copy) \
#define aout_link_includes_lookup(table, string, create, copy) \
  ((struct aout_link_includes_entry *) \
  ((struct aout_link_includes_entry *) \
   bfd_hash_lookup (&(table)->root, (string), (create), (copy)))
   bfd_hash_lookup (&(table)->root, (string), (create), (copy)))
 
 
/* During the final link step we need to pass around a bunch of
/* During the final link step we need to pass around a bunch of
   information, so we do it in an instance of this structure.  */
   information, so we do it in an instance of this structure.  */
 
 
struct aout_final_link_info
struct aout_final_link_info
{
{
  /* General link information.  */
  /* General link information.  */
  struct bfd_link_info *info;
  struct bfd_link_info *info;
  /* Output bfd.  */
  /* Output bfd.  */
  bfd *output_bfd;
  bfd *output_bfd;
  /* Reloc file positions.  */
  /* Reloc file positions.  */
  file_ptr treloff, dreloff;
  file_ptr treloff, dreloff;
  /* File position of symbols.  */
  /* File position of symbols.  */
  file_ptr symoff;
  file_ptr symoff;
  /* String table.  */
  /* String table.  */
  struct bfd_strtab_hash *strtab;
  struct bfd_strtab_hash *strtab;
  /* Header file hash table.  */
  /* Header file hash table.  */
  struct aout_link_includes_table includes;
  struct aout_link_includes_table includes;
  /* A buffer large enough to hold the contents of any section.  */
  /* A buffer large enough to hold the contents of any section.  */
  bfd_byte *contents;
  bfd_byte *contents;
  /* A buffer large enough to hold the relocs of any section.  */
  /* A buffer large enough to hold the relocs of any section.  */
  PTR relocs;
  PTR relocs;
  /* A buffer large enough to hold the symbol map of any input BFD.  */
  /* A buffer large enough to hold the symbol map of any input BFD.  */
  int *symbol_map;
  int *symbol_map;
  /* A buffer large enough to hold output symbols of any input BFD.  */
  /* A buffer large enough to hold output symbols of any input BFD.  */
  struct external_nlist *output_syms;
  struct external_nlist *output_syms;
};
};
 
 
static struct bfd_hash_entry *aout_link_includes_newfunc
static struct bfd_hash_entry *aout_link_includes_newfunc
  PARAMS ((struct bfd_hash_entry *, struct bfd_hash_table *, const char *));
  PARAMS ((struct bfd_hash_entry *, struct bfd_hash_table *, const char *));
static boolean aout_link_input_bfd
static boolean aout_link_input_bfd
  PARAMS ((struct aout_final_link_info *, bfd *input_bfd));
  PARAMS ((struct aout_final_link_info *, bfd *input_bfd));
static boolean aout_link_write_symbols
static boolean aout_link_write_symbols
  PARAMS ((struct aout_final_link_info *, bfd *input_bfd));
  PARAMS ((struct aout_final_link_info *, bfd *input_bfd));
static boolean aout_link_write_other_symbol
static boolean aout_link_write_other_symbol
  PARAMS ((struct aout_link_hash_entry *, PTR));
  PARAMS ((struct aout_link_hash_entry *, PTR));
static boolean aout_link_input_section
static boolean aout_link_input_section
  PARAMS ((struct aout_final_link_info *, bfd *input_bfd,
  PARAMS ((struct aout_final_link_info *, bfd *input_bfd,
           asection *input_section, file_ptr *reloff_ptr,
           asection *input_section, file_ptr *reloff_ptr,
           bfd_size_type rel_size));
           bfd_size_type rel_size));
static INLINE asection *aout_reloc_type_to_section
static INLINE asection *aout_reloc_type_to_section
  PARAMS ((bfd *, int));
  PARAMS ((bfd *, int));
static boolean aout_link_reloc_link_order
static boolean aout_link_reloc_link_order
  PARAMS ((struct aout_final_link_info *, asection *,
  PARAMS ((struct aout_final_link_info *, asection *,
           struct bfd_link_order *));
           struct bfd_link_order *));
static boolean pdp11_aout_link_input_section
static boolean pdp11_aout_link_input_section
  PARAMS ((struct aout_final_link_info *finfo,
  PARAMS ((struct aout_final_link_info *finfo,
           bfd *input_bfd,
           bfd *input_bfd,
           asection *input_section,
           asection *input_section,
           struct pdp11_aout_reloc_external *relocs,
           struct pdp11_aout_reloc_external *relocs,
           bfd_size_type rel_size,
           bfd_size_type rel_size,
           bfd_byte *contents));
           bfd_byte *contents));
 
 
/* The function to create a new entry in the header file hash table.  */
/* The function to create a new entry in the header file hash table.  */
 
 
static struct bfd_hash_entry *
static struct bfd_hash_entry *
aout_link_includes_newfunc (entry, table, string)
aout_link_includes_newfunc (entry, table, string)
     struct bfd_hash_entry *entry;
     struct bfd_hash_entry *entry;
     struct bfd_hash_table *table;
     struct bfd_hash_table *table;
     const char *string;
     const char *string;
{
{
  struct aout_link_includes_entry *ret =
  struct aout_link_includes_entry *ret =
    (struct aout_link_includes_entry *) entry;
    (struct aout_link_includes_entry *) entry;
 
 
  /* Allocate the structure if it has not already been allocated by a
  /* Allocate the structure if it has not already been allocated by a
     subclass.  */
     subclass.  */
  if (ret == (struct aout_link_includes_entry *) NULL)
  if (ret == (struct aout_link_includes_entry *) NULL)
    ret = ((struct aout_link_includes_entry *)
    ret = ((struct aout_link_includes_entry *)
           bfd_hash_allocate (table,
           bfd_hash_allocate (table,
                              sizeof (struct aout_link_includes_entry)));
                              sizeof (struct aout_link_includes_entry)));
  if (ret == (struct aout_link_includes_entry *) NULL)
  if (ret == (struct aout_link_includes_entry *) NULL)
    return (struct bfd_hash_entry *) ret;
    return (struct bfd_hash_entry *) ret;
 
 
  /* Call the allocation method of the superclass.  */
  /* Call the allocation method of the superclass.  */
  ret = ((struct aout_link_includes_entry *)
  ret = ((struct aout_link_includes_entry *)
         bfd_hash_newfunc ((struct bfd_hash_entry *) ret, table, string));
         bfd_hash_newfunc ((struct bfd_hash_entry *) ret, table, string));
  if (ret)
  if (ret)
    {
    {
      /* Set local fields.  */
      /* Set local fields.  */
      ret->totals = NULL;
      ret->totals = NULL;
    }
    }
 
 
  return (struct bfd_hash_entry *) ret;
  return (struct bfd_hash_entry *) ret;
}
}
 
 
/* Do the final link step.  This is called on the output BFD.  The
/* Do the final link step.  This is called on the output BFD.  The
   INFO structure should point to a list of BFDs linked through the
   INFO structure should point to a list of BFDs linked through the
   link_next field which can be used to find each BFD which takes part
   link_next field which can be used to find each BFD which takes part
   in the output.  Also, each section in ABFD should point to a list
   in the output.  Also, each section in ABFD should point to a list
   of bfd_link_order structures which list all the input sections for
   of bfd_link_order structures which list all the input sections for
   the output section.  */
   the output section.  */
 
 
boolean
boolean
NAME(aout,final_link) (abfd, info, callback)
NAME(aout,final_link) (abfd, info, callback)
     bfd *abfd;
     bfd *abfd;
     struct bfd_link_info *info;
     struct bfd_link_info *info;
     void (*callback) PARAMS ((bfd *, file_ptr *, file_ptr *, file_ptr *));
     void (*callback) PARAMS ((bfd *, file_ptr *, file_ptr *, file_ptr *));
{
{
  struct aout_final_link_info aout_info;
  struct aout_final_link_info aout_info;
  boolean includes_hash_initialized = false;
  boolean includes_hash_initialized = false;
  register bfd *sub;
  register bfd *sub;
  bfd_size_type trsize, drsize;
  bfd_size_type trsize, drsize;
  size_t max_contents_size;
  size_t max_contents_size;
  size_t max_relocs_size;
  size_t max_relocs_size;
  size_t max_sym_count;
  size_t max_sym_count;
  bfd_size_type text_size;
  bfd_size_type text_size;
  file_ptr text_end;
  file_ptr text_end;
  register struct bfd_link_order *p;
  register struct bfd_link_order *p;
  asection *o;
  asection *o;
  boolean have_link_order_relocs;
  boolean have_link_order_relocs;
 
 
  if (info->shared)
  if (info->shared)
    abfd->flags |= DYNAMIC;
    abfd->flags |= DYNAMIC;
 
 
  aout_info.info = info;
  aout_info.info = info;
  aout_info.output_bfd = abfd;
  aout_info.output_bfd = abfd;
  aout_info.contents = NULL;
  aout_info.contents = NULL;
  aout_info.relocs = NULL;
  aout_info.relocs = NULL;
  aout_info.symbol_map = NULL;
  aout_info.symbol_map = NULL;
  aout_info.output_syms = NULL;
  aout_info.output_syms = NULL;
 
 
  if (! bfd_hash_table_init_n (&aout_info.includes.root,
  if (! bfd_hash_table_init_n (&aout_info.includes.root,
                               aout_link_includes_newfunc,
                               aout_link_includes_newfunc,
                               251))
                               251))
    goto error_return;
    goto error_return;
  includes_hash_initialized = true;
  includes_hash_initialized = true;
 
 
  /* Figure out the largest section size.  Also, if generating
  /* Figure out the largest section size.  Also, if generating
     relocateable output, count the relocs.  */
     relocateable output, count the relocs.  */
  trsize = 0;
  trsize = 0;
  drsize = 0;
  drsize = 0;
  max_contents_size = 0;
  max_contents_size = 0;
  max_relocs_size = 0;
  max_relocs_size = 0;
  max_sym_count = 0;
  max_sym_count = 0;
  for (sub = info->input_bfds; sub != NULL; sub = sub->link_next)
  for (sub = info->input_bfds; sub != NULL; sub = sub->link_next)
    {
    {
      size_t sz;
      size_t sz;
 
 
      if (info->relocateable)
      if (info->relocateable)
        {
        {
          if (bfd_get_flavour (sub) == bfd_target_aout_flavour)
          if (bfd_get_flavour (sub) == bfd_target_aout_flavour)
            {
            {
              trsize += exec_hdr (sub)->a_trsize;
              trsize += exec_hdr (sub)->a_trsize;
              drsize += exec_hdr (sub)->a_drsize;
              drsize += exec_hdr (sub)->a_drsize;
            }
            }
          else
          else
            {
            {
              /* FIXME: We need to identify the .text and .data sections
              /* FIXME: We need to identify the .text and .data sections
                 and call get_reloc_upper_bound and canonicalize_reloc to
                 and call get_reloc_upper_bound and canonicalize_reloc to
                 work out the number of relocs needed, and then multiply
                 work out the number of relocs needed, and then multiply
                 by the reloc size.  */
                 by the reloc size.  */
              (*_bfd_error_handler)
              (*_bfd_error_handler)
                ("%s: relocateable link from %s to %s not supported",
                ("%s: relocateable link from %s to %s not supported",
                 bfd_get_filename (abfd),
                 bfd_get_filename (abfd),
                 sub->xvec->name, abfd->xvec->name);
                 sub->xvec->name, abfd->xvec->name);
              bfd_set_error (bfd_error_invalid_operation);
              bfd_set_error (bfd_error_invalid_operation);
              goto error_return;
              goto error_return;
            }
            }
        }
        }
 
 
      if (bfd_get_flavour (sub) == bfd_target_aout_flavour)
      if (bfd_get_flavour (sub) == bfd_target_aout_flavour)
        {
        {
          sz = bfd_section_size (sub, obj_textsec (sub));
          sz = bfd_section_size (sub, obj_textsec (sub));
          if (sz > max_contents_size)
          if (sz > max_contents_size)
            max_contents_size = sz;
            max_contents_size = sz;
          sz = bfd_section_size (sub, obj_datasec (sub));
          sz = bfd_section_size (sub, obj_datasec (sub));
          if (sz > max_contents_size)
          if (sz > max_contents_size)
            max_contents_size = sz;
            max_contents_size = sz;
 
 
          sz = exec_hdr (sub)->a_trsize;
          sz = exec_hdr (sub)->a_trsize;
          if (sz > max_relocs_size)
          if (sz > max_relocs_size)
            max_relocs_size = sz;
            max_relocs_size = sz;
          sz = exec_hdr (sub)->a_drsize;
          sz = exec_hdr (sub)->a_drsize;
          if (sz > max_relocs_size)
          if (sz > max_relocs_size)
            max_relocs_size = sz;
            max_relocs_size = sz;
 
 
          sz = obj_aout_external_sym_count (sub);
          sz = obj_aout_external_sym_count (sub);
          if (sz > max_sym_count)
          if (sz > max_sym_count)
            max_sym_count = sz;
            max_sym_count = sz;
        }
        }
    }
    }
 
 
  if (info->relocateable)
  if (info->relocateable)
    {
    {
      if (obj_textsec (abfd) != (asection *) NULL)
      if (obj_textsec (abfd) != (asection *) NULL)
        trsize += (_bfd_count_link_order_relocs (obj_textsec (abfd)
        trsize += (_bfd_count_link_order_relocs (obj_textsec (abfd)
                                                 ->link_order_head)
                                                 ->link_order_head)
                   * obj_reloc_entry_size (abfd));
                   * obj_reloc_entry_size (abfd));
      if (obj_datasec (abfd) != (asection *) NULL)
      if (obj_datasec (abfd) != (asection *) NULL)
        drsize += (_bfd_count_link_order_relocs (obj_datasec (abfd)
        drsize += (_bfd_count_link_order_relocs (obj_datasec (abfd)
                                                 ->link_order_head)
                                                 ->link_order_head)
                   * obj_reloc_entry_size (abfd));
                   * obj_reloc_entry_size (abfd));
    }
    }
 
 
  exec_hdr (abfd)->a_trsize = trsize;
  exec_hdr (abfd)->a_trsize = trsize;
  exec_hdr (abfd)->a_drsize = drsize;
  exec_hdr (abfd)->a_drsize = drsize;
 
 
  exec_hdr (abfd)->a_entry = bfd_get_start_address (abfd);
  exec_hdr (abfd)->a_entry = bfd_get_start_address (abfd);
 
 
  /* Adjust the section sizes and vmas according to the magic number.
  /* Adjust the section sizes and vmas according to the magic number.
     This sets a_text, a_data and a_bss in the exec_hdr and sets the
     This sets a_text, a_data and a_bss in the exec_hdr and sets the
     filepos for each section.  */
     filepos for each section.  */
  if (! NAME(aout,adjust_sizes_and_vmas) (abfd, &text_size, &text_end))
  if (! NAME(aout,adjust_sizes_and_vmas) (abfd, &text_size, &text_end))
    goto error_return;
    goto error_return;
 
 
  /* The relocation and symbol file positions differ among a.out
  /* The relocation and symbol file positions differ among a.out
     targets.  We are passed a callback routine from the backend
     targets.  We are passed a callback routine from the backend
     specific code to handle this.
     specific code to handle this.
     FIXME: At this point we do not know how much space the symbol
     FIXME: At this point we do not know how much space the symbol
     table will require.  This will not work for any (nonstandard)
     table will require.  This will not work for any (nonstandard)
     a.out target that needs to know the symbol table size before it
     a.out target that needs to know the symbol table size before it
     can compute the relocation file positions.  This may or may not
     can compute the relocation file positions.  This may or may not
     be the case for the hp300hpux target, for example.  */
     be the case for the hp300hpux target, for example.  */
  (*callback) (abfd, &aout_info.treloff, &aout_info.dreloff,
  (*callback) (abfd, &aout_info.treloff, &aout_info.dreloff,
               &aout_info.symoff);
               &aout_info.symoff);
  obj_textsec (abfd)->rel_filepos = aout_info.treloff;
  obj_textsec (abfd)->rel_filepos = aout_info.treloff;
  obj_datasec (abfd)->rel_filepos = aout_info.dreloff;
  obj_datasec (abfd)->rel_filepos = aout_info.dreloff;
  obj_sym_filepos (abfd) = aout_info.symoff;
  obj_sym_filepos (abfd) = aout_info.symoff;
 
 
  /* We keep a count of the symbols as we output them.  */
  /* We keep a count of the symbols as we output them.  */
  obj_aout_external_sym_count (abfd) = 0;
  obj_aout_external_sym_count (abfd) = 0;
 
 
  /* We accumulate the string table as we write out the symbols.  */
  /* We accumulate the string table as we write out the symbols.  */
  aout_info.strtab = _bfd_stringtab_init ();
  aout_info.strtab = _bfd_stringtab_init ();
  if (aout_info.strtab == NULL)
  if (aout_info.strtab == NULL)
    goto error_return;
    goto error_return;
 
 
  /* Allocate buffers to hold section contents and relocs.  */
  /* Allocate buffers to hold section contents and relocs.  */
  aout_info.contents = (bfd_byte *) bfd_malloc (max_contents_size);
  aout_info.contents = (bfd_byte *) bfd_malloc (max_contents_size);
  aout_info.relocs = (PTR) bfd_malloc (max_relocs_size);
  aout_info.relocs = (PTR) bfd_malloc (max_relocs_size);
  aout_info.symbol_map = (int *) bfd_malloc (max_sym_count * sizeof (int *));
  aout_info.symbol_map = (int *) bfd_malloc (max_sym_count * sizeof (int *));
  aout_info.output_syms = ((struct external_nlist *)
  aout_info.output_syms = ((struct external_nlist *)
                           bfd_malloc ((max_sym_count + 1)
                           bfd_malloc ((max_sym_count + 1)
                                       * sizeof (struct external_nlist)));
                                       * sizeof (struct external_nlist)));
  if ((aout_info.contents == NULL && max_contents_size != 0)
  if ((aout_info.contents == NULL && max_contents_size != 0)
      || (aout_info.relocs == NULL && max_relocs_size != 0)
      || (aout_info.relocs == NULL && max_relocs_size != 0)
      || (aout_info.symbol_map == NULL && max_sym_count != 0)
      || (aout_info.symbol_map == NULL && max_sym_count != 0)
      || aout_info.output_syms == NULL)
      || aout_info.output_syms == NULL)
    goto error_return;
    goto error_return;
 
 
  /* If we have a symbol named __DYNAMIC, force it out now.  This is
  /* If we have a symbol named __DYNAMIC, force it out now.  This is
     required by SunOS.  Doing this here rather than in sunos.c is a
     required by SunOS.  Doing this here rather than in sunos.c is a
     hack, but it's easier than exporting everything which would be
     hack, but it's easier than exporting everything which would be
     needed.  */
     needed.  */
  {
  {
    struct aout_link_hash_entry *h;
    struct aout_link_hash_entry *h;
 
 
    h = aout_link_hash_lookup (aout_hash_table (info), "__DYNAMIC",
    h = aout_link_hash_lookup (aout_hash_table (info), "__DYNAMIC",
                               false, false, false);
                               false, false, false);
    if (h != NULL)
    if (h != NULL)
      aout_link_write_other_symbol (h, &aout_info);
      aout_link_write_other_symbol (h, &aout_info);
  }
  }
 
 
  /* The most time efficient way to do the link would be to read all
  /* The most time efficient way to do the link would be to read all
     the input object files into memory and then sort out the
     the input object files into memory and then sort out the
     information into the output file.  Unfortunately, that will
     information into the output file.  Unfortunately, that will
     probably use too much memory.  Another method would be to step
     probably use too much memory.  Another method would be to step
     through everything that composes the text section and write it
     through everything that composes the text section and write it
     out, and then everything that composes the data section and write
     out, and then everything that composes the data section and write
     it out, and then write out the relocs, and then write out the
     it out, and then write out the relocs, and then write out the
     symbols.  Unfortunately, that requires reading stuff from each
     symbols.  Unfortunately, that requires reading stuff from each
     input file several times, and we will not be able to keep all the
     input file several times, and we will not be able to keep all the
     input files open simultaneously, and reopening them will be slow.
     input files open simultaneously, and reopening them will be slow.
 
 
     What we do is basically process one input file at a time.  We do
     What we do is basically process one input file at a time.  We do
     everything we need to do with an input file once--copy over the
     everything we need to do with an input file once--copy over the
     section contents, handle the relocation information, and write
     section contents, handle the relocation information, and write
     out the symbols--and then we throw away the information we read
     out the symbols--and then we throw away the information we read
     from it.  This approach requires a lot of lseeks of the output
     from it.  This approach requires a lot of lseeks of the output
     file, which is unfortunate but still faster than reopening a lot
     file, which is unfortunate but still faster than reopening a lot
     of files.
     of files.
 
 
     We use the output_has_begun field of the input BFDs to see
     We use the output_has_begun field of the input BFDs to see
     whether we have already handled it.  */
     whether we have already handled it.  */
  for (sub = info->input_bfds; sub != (bfd *) NULL; sub = sub->link_next)
  for (sub = info->input_bfds; sub != (bfd *) NULL; sub = sub->link_next)
    sub->output_has_begun = false;
    sub->output_has_begun = false;
 
 
  /* Mark all sections which are to be included in the link.  This
  /* Mark all sections which are to be included in the link.  This
     will normally be every section.  We need to do this so that we
     will normally be every section.  We need to do this so that we
     can identify any sections which the linker has decided to not
     can identify any sections which the linker has decided to not
     include.  */
     include.  */
  for (o = abfd->sections; o != NULL; o = o->next)
  for (o = abfd->sections; o != NULL; o = o->next)
    {
    {
      for (p = o->link_order_head; p != NULL; p = p->next)
      for (p = o->link_order_head; p != NULL; p = p->next)
        {
        {
          if (p->type == bfd_indirect_link_order)
          if (p->type == bfd_indirect_link_order)
            p->u.indirect.section->linker_mark = true;
            p->u.indirect.section->linker_mark = true;
        }
        }
    }
    }
 
 
  have_link_order_relocs = false;
  have_link_order_relocs = false;
  for (o = abfd->sections; o != (asection *) NULL; o = o->next)
  for (o = abfd->sections; o != (asection *) NULL; o = o->next)
    {
    {
      for (p = o->link_order_head;
      for (p = o->link_order_head;
           p != (struct bfd_link_order *) NULL;
           p != (struct bfd_link_order *) NULL;
           p = p->next)
           p = p->next)
        {
        {
          if (p->type == bfd_indirect_link_order
          if (p->type == bfd_indirect_link_order
              && (bfd_get_flavour (p->u.indirect.section->owner)
              && (bfd_get_flavour (p->u.indirect.section->owner)
                  == bfd_target_aout_flavour))
                  == bfd_target_aout_flavour))
            {
            {
              bfd *input_bfd;
              bfd *input_bfd;
 
 
              input_bfd = p->u.indirect.section->owner;
              input_bfd = p->u.indirect.section->owner;
              if (! input_bfd->output_has_begun)
              if (! input_bfd->output_has_begun)
                {
                {
                  if (! aout_link_input_bfd (&aout_info, input_bfd))
                  if (! aout_link_input_bfd (&aout_info, input_bfd))
                    goto error_return;
                    goto error_return;
                  input_bfd->output_has_begun = true;
                  input_bfd->output_has_begun = true;
                }
                }
            }
            }
          else if (p->type == bfd_section_reloc_link_order
          else if (p->type == bfd_section_reloc_link_order
                   || p->type == bfd_symbol_reloc_link_order)
                   || p->type == bfd_symbol_reloc_link_order)
            {
            {
              /* These are handled below.  */
              /* These are handled below.  */
              have_link_order_relocs = true;
              have_link_order_relocs = true;
            }
            }
          else
          else
            {
            {
              if (! _bfd_default_link_order (abfd, info, o, p))
              if (! _bfd_default_link_order (abfd, info, o, p))
                goto error_return;
                goto error_return;
            }
            }
        }
        }
    }
    }
 
 
  /* Write out any symbols that we have not already written out.  */
  /* Write out any symbols that we have not already written out.  */
  aout_link_hash_traverse (aout_hash_table (info),
  aout_link_hash_traverse (aout_hash_table (info),
                           aout_link_write_other_symbol,
                           aout_link_write_other_symbol,
                           (PTR) &aout_info);
                           (PTR) &aout_info);
 
 
  /* Now handle any relocs we were asked to create by the linker.
  /* Now handle any relocs we were asked to create by the linker.
     These did not come from any input file.  We must do these after
     These did not come from any input file.  We must do these after
     we have written out all the symbols, so that we know the symbol
     we have written out all the symbols, so that we know the symbol
     indices to use.  */
     indices to use.  */
  if (have_link_order_relocs)
  if (have_link_order_relocs)
    {
    {
      for (o = abfd->sections; o != (asection *) NULL; o = o->next)
      for (o = abfd->sections; o != (asection *) NULL; o = o->next)
        {
        {
          for (p = o->link_order_head;
          for (p = o->link_order_head;
               p != (struct bfd_link_order *) NULL;
               p != (struct bfd_link_order *) NULL;
               p = p->next)
               p = p->next)
            {
            {
              if (p->type == bfd_section_reloc_link_order
              if (p->type == bfd_section_reloc_link_order
                  || p->type == bfd_symbol_reloc_link_order)
                  || p->type == bfd_symbol_reloc_link_order)
                {
                {
                  if (! aout_link_reloc_link_order (&aout_info, o, p))
                  if (! aout_link_reloc_link_order (&aout_info, o, p))
                    goto error_return;
                    goto error_return;
                }
                }
            }
            }
        }
        }
    }
    }
 
 
  if (aout_info.contents != NULL)
  if (aout_info.contents != NULL)
    {
    {
      free (aout_info.contents);
      free (aout_info.contents);
      aout_info.contents = NULL;
      aout_info.contents = NULL;
    }
    }
  if (aout_info.relocs != NULL)
  if (aout_info.relocs != NULL)
    {
    {
      free (aout_info.relocs);
      free (aout_info.relocs);
      aout_info.relocs = NULL;
      aout_info.relocs = NULL;
    }
    }
  if (aout_info.symbol_map != NULL)
  if (aout_info.symbol_map != NULL)
    {
    {
      free (aout_info.symbol_map);
      free (aout_info.symbol_map);
      aout_info.symbol_map = NULL;
      aout_info.symbol_map = NULL;
    }
    }
  if (aout_info.output_syms != NULL)
  if (aout_info.output_syms != NULL)
    {
    {
      free (aout_info.output_syms);
      free (aout_info.output_syms);
      aout_info.output_syms = NULL;
      aout_info.output_syms = NULL;
    }
    }
  if (includes_hash_initialized)
  if (includes_hash_initialized)
    {
    {
      bfd_hash_table_free (&aout_info.includes.root);
      bfd_hash_table_free (&aout_info.includes.root);
      includes_hash_initialized = false;
      includes_hash_initialized = false;
    }
    }
 
 
  /* Finish up any dynamic linking we may be doing.  */
  /* Finish up any dynamic linking we may be doing.  */
  if (aout_backend_info (abfd)->finish_dynamic_link != NULL)
  if (aout_backend_info (abfd)->finish_dynamic_link != NULL)
    {
    {
      if (! (*aout_backend_info (abfd)->finish_dynamic_link) (abfd, info))
      if (! (*aout_backend_info (abfd)->finish_dynamic_link) (abfd, info))
        goto error_return;
        goto error_return;
    }
    }
 
 
  /* Update the header information.  */
  /* Update the header information.  */
  abfd->symcount = obj_aout_external_sym_count (abfd);
  abfd->symcount = obj_aout_external_sym_count (abfd);
  exec_hdr (abfd)->a_syms = abfd->symcount * EXTERNAL_NLIST_SIZE;
  exec_hdr (abfd)->a_syms = abfd->symcount * EXTERNAL_NLIST_SIZE;
  obj_str_filepos (abfd) = obj_sym_filepos (abfd) + exec_hdr (abfd)->a_syms;
  obj_str_filepos (abfd) = obj_sym_filepos (abfd) + exec_hdr (abfd)->a_syms;
  obj_textsec (abfd)->reloc_count =
  obj_textsec (abfd)->reloc_count =
    exec_hdr (abfd)->a_trsize / obj_reloc_entry_size (abfd);
    exec_hdr (abfd)->a_trsize / obj_reloc_entry_size (abfd);
  obj_datasec (abfd)->reloc_count =
  obj_datasec (abfd)->reloc_count =
    exec_hdr (abfd)->a_drsize / obj_reloc_entry_size (abfd);
    exec_hdr (abfd)->a_drsize / obj_reloc_entry_size (abfd);
 
 
  /* Write out the string table, unless there are no symbols.  */
  /* Write out the string table, unless there are no symbols.  */
  if (abfd->symcount > 0)
  if (abfd->symcount > 0)
    {
    {
      if (bfd_seek (abfd, obj_str_filepos (abfd), SEEK_SET) != 0
      if (bfd_seek (abfd, obj_str_filepos (abfd), SEEK_SET) != 0
          || ! emit_stringtab (abfd, aout_info.strtab))
          || ! emit_stringtab (abfd, aout_info.strtab))
        goto error_return;
        goto error_return;
    }
    }
  else if (obj_textsec (abfd)->reloc_count == 0
  else if (obj_textsec (abfd)->reloc_count == 0
           && obj_datasec (abfd)->reloc_count == 0)
           && obj_datasec (abfd)->reloc_count == 0)
    {
    {
      bfd_byte b;
      bfd_byte b;
 
 
      b = 0;
      b = 0;
      if (bfd_seek (abfd,
      if (bfd_seek (abfd,
                    (obj_datasec (abfd)->filepos
                    (obj_datasec (abfd)->filepos
                     + exec_hdr (abfd)->a_data
                     + exec_hdr (abfd)->a_data
                     - 1),
                     - 1),
                    SEEK_SET) != 0
                    SEEK_SET) != 0
          || bfd_write (&b, 1, 1, abfd) != 1)
          || bfd_write (&b, 1, 1, abfd) != 1)
        goto error_return;
        goto error_return;
    }
    }
 
 
  return true;
  return true;
 
 
 error_return:
 error_return:
  if (aout_info.contents != NULL)
  if (aout_info.contents != NULL)
    free (aout_info.contents);
    free (aout_info.contents);
  if (aout_info.relocs != NULL)
  if (aout_info.relocs != NULL)
    free (aout_info.relocs);
    free (aout_info.relocs);
  if (aout_info.symbol_map != NULL)
  if (aout_info.symbol_map != NULL)
    free (aout_info.symbol_map);
    free (aout_info.symbol_map);
  if (aout_info.output_syms != NULL)
  if (aout_info.output_syms != NULL)
    free (aout_info.output_syms);
    free (aout_info.output_syms);
  if (includes_hash_initialized)
  if (includes_hash_initialized)
    bfd_hash_table_free (&aout_info.includes.root);
    bfd_hash_table_free (&aout_info.includes.root);
  return false;
  return false;
}
}
 
 
/* Link an a.out input BFD into the output file.  */
/* Link an a.out input BFD into the output file.  */
 
 
static boolean
static boolean
aout_link_input_bfd (finfo, input_bfd)
aout_link_input_bfd (finfo, input_bfd)
     struct aout_final_link_info *finfo;
     struct aout_final_link_info *finfo;
     bfd *input_bfd;
     bfd *input_bfd;
{
{
  bfd_size_type sym_count;
  bfd_size_type sym_count;
 
 
  BFD_ASSERT (bfd_get_format (input_bfd) == bfd_object);
  BFD_ASSERT (bfd_get_format (input_bfd) == bfd_object);
 
 
  /* If this is a dynamic object, it may need special handling.  */
  /* If this is a dynamic object, it may need special handling.  */
  if ((input_bfd->flags & DYNAMIC) != 0
  if ((input_bfd->flags & DYNAMIC) != 0
      && aout_backend_info (input_bfd)->link_dynamic_object != NULL)
      && aout_backend_info (input_bfd)->link_dynamic_object != NULL)
    {
    {
      return ((*aout_backend_info (input_bfd)->link_dynamic_object)
      return ((*aout_backend_info (input_bfd)->link_dynamic_object)
              (finfo->info, input_bfd));
              (finfo->info, input_bfd));
    }
    }
 
 
  /* Get the symbols.  We probably have them already, unless
  /* Get the symbols.  We probably have them already, unless
     finfo->info->keep_memory is false.  */
     finfo->info->keep_memory is false.  */
  if (! aout_get_external_symbols (input_bfd))
  if (! aout_get_external_symbols (input_bfd))
    return false;
    return false;
 
 
  sym_count = obj_aout_external_sym_count (input_bfd);
  sym_count = obj_aout_external_sym_count (input_bfd);
 
 
  /* Write out the symbols and get a map of the new indices.  The map
  /* Write out the symbols and get a map of the new indices.  The map
     is placed into finfo->symbol_map.  */
     is placed into finfo->symbol_map.  */
  if (! aout_link_write_symbols (finfo, input_bfd))
  if (! aout_link_write_symbols (finfo, input_bfd))
    return false;
    return false;
 
 
  /* Relocate and write out the sections.  These functions use the
  /* Relocate and write out the sections.  These functions use the
     symbol map created by aout_link_write_symbols.  The linker_mark
     symbol map created by aout_link_write_symbols.  The linker_mark
     field will be set if these sections are to be included in the
     field will be set if these sections are to be included in the
     link, which will normally be the case.  */
     link, which will normally be the case.  */
  if (obj_textsec (input_bfd)->linker_mark)
  if (obj_textsec (input_bfd)->linker_mark)
    {
    {
      if (! aout_link_input_section (finfo, input_bfd,
      if (! aout_link_input_section (finfo, input_bfd,
                                     obj_textsec (input_bfd),
                                     obj_textsec (input_bfd),
                                     &finfo->treloff,
                                     &finfo->treloff,
                                     exec_hdr (input_bfd)->a_trsize))
                                     exec_hdr (input_bfd)->a_trsize))
        return false;
        return false;
    }
    }
  if (obj_datasec (input_bfd)->linker_mark)
  if (obj_datasec (input_bfd)->linker_mark)
    {
    {
      if (! aout_link_input_section (finfo, input_bfd,
      if (! aout_link_input_section (finfo, input_bfd,
                                     obj_datasec (input_bfd),
                                     obj_datasec (input_bfd),
                                     &finfo->dreloff,
                                     &finfo->dreloff,
                                     exec_hdr (input_bfd)->a_drsize))
                                     exec_hdr (input_bfd)->a_drsize))
        return false;
        return false;
    }
    }
 
 
  /* If we are not keeping memory, we don't need the symbols any
  /* If we are not keeping memory, we don't need the symbols any
     longer.  We still need them if we are keeping memory, because the
     longer.  We still need them if we are keeping memory, because the
     strings in the hash table point into them.  */
     strings in the hash table point into them.  */
  if (! finfo->info->keep_memory)
  if (! finfo->info->keep_memory)
    {
    {
      if (! aout_link_free_symbols (input_bfd))
      if (! aout_link_free_symbols (input_bfd))
        return false;
        return false;
    }
    }
 
 
  return true;
  return true;
}
}
 
 
/* Adjust and write out the symbols for an a.out file.  Set the new
/* Adjust and write out the symbols for an a.out file.  Set the new
   symbol indices into a symbol_map.  */
   symbol indices into a symbol_map.  */
 
 
static boolean
static boolean
aout_link_write_symbols (finfo, input_bfd)
aout_link_write_symbols (finfo, input_bfd)
     struct aout_final_link_info *finfo;
     struct aout_final_link_info *finfo;
     bfd *input_bfd;
     bfd *input_bfd;
{
{
  bfd *output_bfd;
  bfd *output_bfd;
  bfd_size_type sym_count;
  bfd_size_type sym_count;
  char *strings;
  char *strings;
  enum bfd_link_strip strip;
  enum bfd_link_strip strip;
  enum bfd_link_discard discard;
  enum bfd_link_discard discard;
  struct external_nlist *outsym;
  struct external_nlist *outsym;
  bfd_size_type strtab_index;
  bfd_size_type strtab_index;
  register struct external_nlist *sym;
  register struct external_nlist *sym;
  struct external_nlist *sym_end;
  struct external_nlist *sym_end;
  struct aout_link_hash_entry **sym_hash;
  struct aout_link_hash_entry **sym_hash;
  int *symbol_map;
  int *symbol_map;
  boolean pass;
  boolean pass;
  boolean skip_next;
  boolean skip_next;
 
 
  output_bfd = finfo->output_bfd;
  output_bfd = finfo->output_bfd;
  sym_count = obj_aout_external_sym_count (input_bfd);
  sym_count = obj_aout_external_sym_count (input_bfd);
  strings = obj_aout_external_strings (input_bfd);
  strings = obj_aout_external_strings (input_bfd);
  strip = finfo->info->strip;
  strip = finfo->info->strip;
  discard = finfo->info->discard;
  discard = finfo->info->discard;
  outsym = finfo->output_syms;
  outsym = finfo->output_syms;
 
 
  /* First write out a symbol for this object file, unless we are
  /* First write out a symbol for this object file, unless we are
     discarding such symbols.  */
     discarding such symbols.  */
  if (strip != strip_all
  if (strip != strip_all
      && (strip != strip_some
      && (strip != strip_some
          || bfd_hash_lookup (finfo->info->keep_hash, input_bfd->filename,
          || bfd_hash_lookup (finfo->info->keep_hash, input_bfd->filename,
                              false, false) != NULL)
                              false, false) != NULL)
      && discard != discard_all)
      && discard != discard_all)
    {
    {
      bfd_h_put_8 (output_bfd, N_TEXT, outsym->e_type);
      bfd_h_put_8 (output_bfd, N_TEXT, outsym->e_type);
      strtab_index = add_to_stringtab (output_bfd, finfo->strtab,
      strtab_index = add_to_stringtab (output_bfd, finfo->strtab,
                                       input_bfd->filename, false);
                                       input_bfd->filename, false);
      if (strtab_index == (bfd_size_type) -1)
      if (strtab_index == (bfd_size_type) -1)
        return false;
        return false;
      PUT_WORD (output_bfd, strtab_index, outsym->e_strx);
      PUT_WORD (output_bfd, strtab_index, outsym->e_strx);
      PUT_WORD (output_bfd,
      PUT_WORD (output_bfd,
                (bfd_get_section_vma (output_bfd,
                (bfd_get_section_vma (output_bfd,
                                      obj_textsec (input_bfd)->output_section)
                                      obj_textsec (input_bfd)->output_section)
                 + obj_textsec (input_bfd)->output_offset),
                 + obj_textsec (input_bfd)->output_offset),
                outsym->e_value);
                outsym->e_value);
      ++obj_aout_external_sym_count (output_bfd);
      ++obj_aout_external_sym_count (output_bfd);
      ++outsym;
      ++outsym;
    }
    }
 
 
  pass = false;
  pass = false;
  skip_next = false;
  skip_next = false;
  sym = obj_aout_external_syms (input_bfd);
  sym = obj_aout_external_syms (input_bfd);
  sym_end = sym + sym_count;
  sym_end = sym + sym_count;
  sym_hash = obj_aout_sym_hashes (input_bfd);
  sym_hash = obj_aout_sym_hashes (input_bfd);
  symbol_map = finfo->symbol_map;
  symbol_map = finfo->symbol_map;
  memset (symbol_map, 0, sym_count * sizeof *symbol_map);
  memset (symbol_map, 0, sym_count * sizeof *symbol_map);
  for (; sym < sym_end; sym++, sym_hash++, symbol_map++)
  for (; sym < sym_end; sym++, sym_hash++, symbol_map++)
    {
    {
      const char *name;
      const char *name;
      int type;
      int type;
      struct aout_link_hash_entry *h;
      struct aout_link_hash_entry *h;
      boolean skip;
      boolean skip;
      asection *symsec;
      asection *symsec;
      bfd_vma val = 0;
      bfd_vma val = 0;
      boolean copy;
      boolean copy;
 
 
      /* We set *symbol_map to 0 above for all symbols.  If it has
      /* We set *symbol_map to 0 above for all symbols.  If it has
         already been set to -1 for this symbol, it means that we are
         already been set to -1 for this symbol, it means that we are
         discarding it because it appears in a duplicate header file.
         discarding it because it appears in a duplicate header file.
         See the N_BINCL code below.  */
         See the N_BINCL code below.  */
      if (*symbol_map == -1)
      if (*symbol_map == -1)
        continue;
        continue;
 
 
      /* Initialize *symbol_map to -1, which means that the symbol was
      /* Initialize *symbol_map to -1, which means that the symbol was
         not copied into the output file.  We will change it later if
         not copied into the output file.  We will change it later if
         we do copy the symbol over.  */
         we do copy the symbol over.  */
      *symbol_map = -1;
      *symbol_map = -1;
 
 
      type = bfd_h_get_8 (input_bfd, sym->e_type);
      type = bfd_h_get_8 (input_bfd, sym->e_type);
      name = strings + GET_WORD (input_bfd, sym->e_strx);
      name = strings + GET_WORD (input_bfd, sym->e_strx);
 
 
      h = NULL;
      h = NULL;
 
 
      if (pass)
      if (pass)
        {
        {
          /* Pass this symbol through.  It is the target of an
          /* Pass this symbol through.  It is the target of an
             indirect or warning symbol.  */
             indirect or warning symbol.  */
          val = GET_WORD (input_bfd, sym->e_value);
          val = GET_WORD (input_bfd, sym->e_value);
          pass = false;
          pass = false;
        }
        }
      else if (skip_next)
      else if (skip_next)
        {
        {
          /* Skip this symbol, which is the target of an indirect
          /* Skip this symbol, which is the target of an indirect
             symbol that we have changed to no longer be an indirect
             symbol that we have changed to no longer be an indirect
             symbol.  */
             symbol.  */
          skip_next = false;
          skip_next = false;
          continue;
          continue;
        }
        }
      else
      else
        {
        {
          struct aout_link_hash_entry *hresolve;
          struct aout_link_hash_entry *hresolve;
 
 
          /* We have saved the hash table entry for this symbol, if
          /* We have saved the hash table entry for this symbol, if
             there is one.  Note that we could just look it up again
             there is one.  Note that we could just look it up again
             in the hash table, provided we first check that it is an
             in the hash table, provided we first check that it is an
             external symbol. */
             external symbol. */
          h = *sym_hash;
          h = *sym_hash;
 
 
          /* Use the name from the hash table, in case the symbol was
          /* Use the name from the hash table, in case the symbol was
             wrapped.  */
             wrapped.  */
          if (h != NULL)
          if (h != NULL)
            name = h->root.root.string;
            name = h->root.root.string;
 
 
          /* If this is an indirect or warning symbol, then change
          /* If this is an indirect or warning symbol, then change
             hresolve to the base symbol.  We also change *sym_hash so
             hresolve to the base symbol.  We also change *sym_hash so
             that the relocation routines relocate against the real
             that the relocation routines relocate against the real
             symbol.  */
             symbol.  */
          hresolve = h;
          hresolve = h;
          if (h != (struct aout_link_hash_entry *) NULL
          if (h != (struct aout_link_hash_entry *) NULL
              && (h->root.type == bfd_link_hash_indirect
              && (h->root.type == bfd_link_hash_indirect
                  || h->root.type == bfd_link_hash_warning))
                  || h->root.type == bfd_link_hash_warning))
            {
            {
              hresolve = (struct aout_link_hash_entry *) h->root.u.i.link;
              hresolve = (struct aout_link_hash_entry *) h->root.u.i.link;
              while (hresolve->root.type == bfd_link_hash_indirect
              while (hresolve->root.type == bfd_link_hash_indirect
                     || hresolve->root.type == bfd_link_hash_warning)
                     || hresolve->root.type == bfd_link_hash_warning)
                hresolve = ((struct aout_link_hash_entry *)
                hresolve = ((struct aout_link_hash_entry *)
                            hresolve->root.u.i.link);
                            hresolve->root.u.i.link);
              *sym_hash = hresolve;
              *sym_hash = hresolve;
            }
            }
 
 
          /* If the symbol has already been written out, skip it.  */
          /* If the symbol has already been written out, skip it.  */
          if (h != (struct aout_link_hash_entry *) NULL
          if (h != (struct aout_link_hash_entry *) NULL
              && h->root.type != bfd_link_hash_warning
              && h->root.type != bfd_link_hash_warning
              && h->written)
              && h->written)
            {
            {
              if ((type & N_TYPE) == N_INDR
              if ((type & N_TYPE) == N_INDR
                  || type == N_WARNING)
                  || type == N_WARNING)
                skip_next = true;
                skip_next = true;
              *symbol_map = h->indx;
              *symbol_map = h->indx;
              continue;
              continue;
            }
            }
 
 
          /* See if we are stripping this symbol.  */
          /* See if we are stripping this symbol.  */
          skip = false;
          skip = false;
          switch (strip)
          switch (strip)
            {
            {
            case strip_none:
            case strip_none:
              break;
              break;
            case strip_debugger:
            case strip_debugger:
              if ((type & N_STAB) != 0)
              if ((type & N_STAB) != 0)
                skip = true;
                skip = true;
              break;
              break;
            case strip_some:
            case strip_some:
              if (bfd_hash_lookup (finfo->info->keep_hash, name, false, false)
              if (bfd_hash_lookup (finfo->info->keep_hash, name, false, false)
                  == NULL)
                  == NULL)
                skip = true;
                skip = true;
              break;
              break;
            case strip_all:
            case strip_all:
              skip = true;
              skip = true;
              break;
              break;
            }
            }
          if (skip)
          if (skip)
            {
            {
              if (h != (struct aout_link_hash_entry *) NULL)
              if (h != (struct aout_link_hash_entry *) NULL)
                h->written = true;
                h->written = true;
              continue;
              continue;
            }
            }
 
 
          /* Get the value of the symbol.  */
          /* Get the value of the symbol.  */
          if ((type & N_TYPE) == N_TEXT
          if ((type & N_TYPE) == N_TEXT
              || type == N_WEAKT)
              || type == N_WEAKT)
            symsec = obj_textsec (input_bfd);
            symsec = obj_textsec (input_bfd);
          else if ((type & N_TYPE) == N_DATA
          else if ((type & N_TYPE) == N_DATA
                   || type == N_WEAKD)
                   || type == N_WEAKD)
            symsec = obj_datasec (input_bfd);
            symsec = obj_datasec (input_bfd);
          else if ((type & N_TYPE) == N_BSS
          else if ((type & N_TYPE) == N_BSS
                   || type == N_WEAKB)
                   || type == N_WEAKB)
            symsec = obj_bsssec (input_bfd);
            symsec = obj_bsssec (input_bfd);
          else if ((type & N_TYPE) == N_ABS
          else if ((type & N_TYPE) == N_ABS
                   || type == N_WEAKA)
                   || type == N_WEAKA)
            symsec = bfd_abs_section_ptr;
            symsec = bfd_abs_section_ptr;
          else if (((type & N_TYPE) == N_INDR
          else if (((type & N_TYPE) == N_INDR
                    && (hresolve == (struct aout_link_hash_entry *) NULL
                    && (hresolve == (struct aout_link_hash_entry *) NULL
                        || (hresolve->root.type != bfd_link_hash_defined
                        || (hresolve->root.type != bfd_link_hash_defined
                            && hresolve->root.type != bfd_link_hash_defweak
                            && hresolve->root.type != bfd_link_hash_defweak
                            && hresolve->root.type != bfd_link_hash_common)))
                            && hresolve->root.type != bfd_link_hash_common)))
                   || type == N_WARNING)
                   || type == N_WARNING)
            {
            {
              /* Pass the next symbol through unchanged.  The
              /* Pass the next symbol through unchanged.  The
                 condition above for indirect symbols is so that if
                 condition above for indirect symbols is so that if
                 the indirect symbol was defined, we output it with
                 the indirect symbol was defined, we output it with
                 the correct definition so the debugger will
                 the correct definition so the debugger will
                 understand it.  */
                 understand it.  */
              pass = true;
              pass = true;
              val = GET_WORD (input_bfd, sym->e_value);
              val = GET_WORD (input_bfd, sym->e_value);
              symsec = NULL;
              symsec = NULL;
            }
            }
          else if ((type & N_STAB) != 0)
          else if ((type & N_STAB) != 0)
            {
            {
              val = GET_WORD (input_bfd, sym->e_value);
              val = GET_WORD (input_bfd, sym->e_value);
              symsec = NULL;
              symsec = NULL;
            }
            }
          else
          else
            {
            {
              /* If we get here with an indirect symbol, it means that
              /* If we get here with an indirect symbol, it means that
                 we are outputting it with a real definition.  In such
                 we are outputting it with a real definition.  In such
                 a case we do not want to output the next symbol,
                 a case we do not want to output the next symbol,
                 which is the target of the indirection.  */
                 which is the target of the indirection.  */
              if ((type & N_TYPE) == N_INDR)
              if ((type & N_TYPE) == N_INDR)
                skip_next = true;
                skip_next = true;
 
 
              symsec = NULL;
              symsec = NULL;
 
 
              /* We need to get the value from the hash table.  We use
              /* We need to get the value from the hash table.  We use
                 hresolve so that if we have defined an indirect
                 hresolve so that if we have defined an indirect
                 symbol we output the final definition.  */
                 symbol we output the final definition.  */
              if (h == (struct aout_link_hash_entry *) NULL)
              if (h == (struct aout_link_hash_entry *) NULL)
                {
                {
                  switch (type & N_TYPE)
                  switch (type & N_TYPE)
                    {
                    {
                    case N_SETT:
                    case N_SETT:
                      symsec = obj_textsec (input_bfd);
                      symsec = obj_textsec (input_bfd);
                      break;
                      break;
                    case N_SETD:
                    case N_SETD:
                      symsec = obj_datasec (input_bfd);
                      symsec = obj_datasec (input_bfd);
                      break;
                      break;
                    case N_SETB:
                    case N_SETB:
                      symsec = obj_bsssec (input_bfd);
                      symsec = obj_bsssec (input_bfd);
                      break;
                      break;
                    case N_SETA:
                    case N_SETA:
                      symsec = bfd_abs_section_ptr;
                      symsec = bfd_abs_section_ptr;
                      break;
                      break;
                    default:
                    default:
                      val = 0;
                      val = 0;
                      break;
                      break;
                    }
                    }
                }
                }
              else if (hresolve->root.type == bfd_link_hash_defined
              else if (hresolve->root.type == bfd_link_hash_defined
                       || hresolve->root.type == bfd_link_hash_defweak)
                       || hresolve->root.type == bfd_link_hash_defweak)
                {
                {
                  asection *input_section;
                  asection *input_section;
                  asection *output_section;
                  asection *output_section;
 
 
                  /* This case usually means a common symbol which was
                  /* This case usually means a common symbol which was
                     turned into a defined symbol.  */
                     turned into a defined symbol.  */
                  input_section = hresolve->root.u.def.section;
                  input_section = hresolve->root.u.def.section;
                  output_section = input_section->output_section;
                  output_section = input_section->output_section;
                  BFD_ASSERT (bfd_is_abs_section (output_section)
                  BFD_ASSERT (bfd_is_abs_section (output_section)
                              || output_section->owner == output_bfd);
                              || output_section->owner == output_bfd);
                  val = (hresolve->root.u.def.value
                  val = (hresolve->root.u.def.value
                         + bfd_get_section_vma (output_bfd, output_section)
                         + bfd_get_section_vma (output_bfd, output_section)
                         + input_section->output_offset);
                         + input_section->output_offset);
 
 
                  /* Get the correct type based on the section.  If
                  /* Get the correct type based on the section.  If
                     this is a constructed set, force it to be
                     this is a constructed set, force it to be
                     globally visible.  */
                     globally visible.  */
                  if (type == N_SETT
                  if (type == N_SETT
                      || type == N_SETD
                      || type == N_SETD
                      || type == N_SETB
                      || type == N_SETB
                      || type == N_SETA)
                      || type == N_SETA)
                    type |= N_EXT;
                    type |= N_EXT;
 
 
                  type &=~ N_TYPE;
                  type &=~ N_TYPE;
 
 
                  if (output_section == obj_textsec (output_bfd))
                  if (output_section == obj_textsec (output_bfd))
                    type |= (hresolve->root.type == bfd_link_hash_defined
                    type |= (hresolve->root.type == bfd_link_hash_defined
                             ? N_TEXT
                             ? N_TEXT
                             : N_WEAKT);
                             : N_WEAKT);
                  else if (output_section == obj_datasec (output_bfd))
                  else if (output_section == obj_datasec (output_bfd))
                    type |= (hresolve->root.type == bfd_link_hash_defined
                    type |= (hresolve->root.type == bfd_link_hash_defined
                             ? N_DATA
                             ? N_DATA
                             : N_WEAKD);
                             : N_WEAKD);
                  else if (output_section == obj_bsssec (output_bfd))
                  else if (output_section == obj_bsssec (output_bfd))
                    type |= (hresolve->root.type == bfd_link_hash_defined
                    type |= (hresolve->root.type == bfd_link_hash_defined
                             ? N_BSS
                             ? N_BSS
                             : N_WEAKB);
                             : N_WEAKB);
                  else
                  else
                    type |= (hresolve->root.type == bfd_link_hash_defined
                    type |= (hresolve->root.type == bfd_link_hash_defined
                             ? N_ABS
                             ? N_ABS
                             : N_WEAKA);
                             : N_WEAKA);
                }
                }
              else if (hresolve->root.type == bfd_link_hash_common)
              else if (hresolve->root.type == bfd_link_hash_common)
                val = hresolve->root.u.c.size;
                val = hresolve->root.u.c.size;
              else if (hresolve->root.type == bfd_link_hash_undefweak)
              else if (hresolve->root.type == bfd_link_hash_undefweak)
                {
                {
                  val = 0;
                  val = 0;
                  type = N_WEAKU;
                  type = N_WEAKU;
                }
                }
              else
              else
                val = 0;
                val = 0;
            }
            }
          if (symsec != (asection *) NULL)
          if (symsec != (asection *) NULL)
            val = (symsec->output_section->vma
            val = (symsec->output_section->vma
                   + symsec->output_offset
                   + symsec->output_offset
                   + (GET_WORD (input_bfd, sym->e_value)
                   + (GET_WORD (input_bfd, sym->e_value)
                      - symsec->vma));
                      - symsec->vma));
 
 
          /* If this is a global symbol set the written flag, and if
          /* If this is a global symbol set the written flag, and if
             it is a local symbol see if we should discard it.  */
             it is a local symbol see if we should discard it.  */
          if (h != (struct aout_link_hash_entry *) NULL)
          if (h != (struct aout_link_hash_entry *) NULL)
            {
            {
              h->written = true;
              h->written = true;
              h->indx = obj_aout_external_sym_count (output_bfd);
              h->indx = obj_aout_external_sym_count (output_bfd);
            }
            }
          else if ((type & N_TYPE) != N_SETT
          else if ((type & N_TYPE) != N_SETT
                   && (type & N_TYPE) != N_SETD
                   && (type & N_TYPE) != N_SETD
                   && (type & N_TYPE) != N_SETB
                   && (type & N_TYPE) != N_SETB
                   && (type & N_TYPE) != N_SETA)
                   && (type & N_TYPE) != N_SETA)
            {
            {
              switch (discard)
              switch (discard)
                {
                {
                case discard_none:
                case discard_none:
                case discard_sec_merge:
                case discard_sec_merge:
                  break;
                  break;
                case discard_l:
                case discard_l:
                  if ((type & N_STAB) == 0
                  if ((type & N_STAB) == 0
                      && bfd_is_local_label_name (input_bfd, name))
                      && bfd_is_local_label_name (input_bfd, name))
                    skip = true;
                    skip = true;
                  break;
                  break;
                case discard_all:
                case discard_all:
                  skip = true;
                  skip = true;
                  break;
                  break;
                }
                }
              if (skip)
              if (skip)
                {
                {
                  pass = false;
                  pass = false;
                  continue;
                  continue;
                }
                }
            }
            }
 
 
          /* An N_BINCL symbol indicates the start of the stabs
          /* An N_BINCL symbol indicates the start of the stabs
             entries for a header file.  We need to scan ahead to the
             entries for a header file.  We need to scan ahead to the
             next N_EINCL symbol, ignoring nesting, adding up all the
             next N_EINCL symbol, ignoring nesting, adding up all the
             characters in the symbol names, not including the file
             characters in the symbol names, not including the file
             numbers in types (the first number after an open
             numbers in types (the first number after an open
             parenthesis).  */
             parenthesis).  */
          if (type == N_BINCL)
          if (type == N_BINCL)
            {
            {
              struct external_nlist *incl_sym;
              struct external_nlist *incl_sym;
              int nest;
              int nest;
              struct aout_link_includes_entry *incl_entry;
              struct aout_link_includes_entry *incl_entry;
              struct aout_link_includes_totals *t;
              struct aout_link_includes_totals *t;
 
 
              val = 0;
              val = 0;
              nest = 0;
              nest = 0;
              for (incl_sym = sym + 1; incl_sym < sym_end; incl_sym++)
              for (incl_sym = sym + 1; incl_sym < sym_end; incl_sym++)
                {
                {
                  int incl_type;
                  int incl_type;
 
 
                  incl_type = bfd_h_get_8 (input_bfd, incl_sym->e_type);
                  incl_type = bfd_h_get_8 (input_bfd, incl_sym->e_type);
                  if (incl_type == N_EINCL)
                  if (incl_type == N_EINCL)
                    {
                    {
                      if (nest == 0)
                      if (nest == 0)
                        break;
                        break;
                      --nest;
                      --nest;
                    }
                    }
                  else if (incl_type == N_BINCL)
                  else if (incl_type == N_BINCL)
                    ++nest;
                    ++nest;
                  else if (nest == 0)
                  else if (nest == 0)
                    {
                    {
                      const char *s;
                      const char *s;
 
 
                      s = strings + GET_WORD (input_bfd, incl_sym->e_strx);
                      s = strings + GET_WORD (input_bfd, incl_sym->e_strx);
                      for (; *s != '\0'; s++)
                      for (; *s != '\0'; s++)
                        {
                        {
                          val += *s;
                          val += *s;
                          if (*s == '(')
                          if (*s == '(')
                            {
                            {
                              /* Skip the file number.  */
                              /* Skip the file number.  */
                              ++s;
                              ++s;
                              while (isdigit ((unsigned char) *s))
                              while (isdigit ((unsigned char) *s))
                                ++s;
                                ++s;
                              --s;
                              --s;
                            }
                            }
                        }
                        }
                    }
                    }
                }
                }
 
 
              /* If we have already included a header file with the
              /* If we have already included a header file with the
                 same value, then replace this one with an N_EXCL
                 same value, then replace this one with an N_EXCL
                 symbol.  */
                 symbol.  */
              copy = ! finfo->info->keep_memory;
              copy = ! finfo->info->keep_memory;
              incl_entry = aout_link_includes_lookup (&finfo->includes,
              incl_entry = aout_link_includes_lookup (&finfo->includes,
                                                      name, true, copy);
                                                      name, true, copy);
              if (incl_entry == NULL)
              if (incl_entry == NULL)
                return false;
                return false;
              for (t = incl_entry->totals; t != NULL; t = t->next)
              for (t = incl_entry->totals; t != NULL; t = t->next)
                if (t->total == val)
                if (t->total == val)
                  break;
                  break;
              if (t == NULL)
              if (t == NULL)
                {
                {
                  /* This is the first time we have seen this header
                  /* This is the first time we have seen this header
                     file with this set of stabs strings.  */
                     file with this set of stabs strings.  */
                  t = ((struct aout_link_includes_totals *)
                  t = ((struct aout_link_includes_totals *)
                       bfd_hash_allocate (&finfo->includes.root,
                       bfd_hash_allocate (&finfo->includes.root,
                                          sizeof *t));
                                          sizeof *t));
                  if (t == NULL)
                  if (t == NULL)
                    return false;
                    return false;
                  t->total = val;
                  t->total = val;
                  t->next = incl_entry->totals;
                  t->next = incl_entry->totals;
                  incl_entry->totals = t;
                  incl_entry->totals = t;
                }
                }
              else
              else
                {
                {
                  int *incl_map;
                  int *incl_map;
 
 
                  /* This is a duplicate header file.  We must change
                  /* This is a duplicate header file.  We must change
                     it to be an N_EXCL entry, and mark all the
                     it to be an N_EXCL entry, and mark all the
                     included symbols to prevent outputting them.  */
                     included symbols to prevent outputting them.  */
                  type = N_EXCL;
                  type = N_EXCL;
 
 
                  nest = 0;
                  nest = 0;
                  for (incl_sym = sym + 1, incl_map = symbol_map + 1;
                  for (incl_sym = sym + 1, incl_map = symbol_map + 1;
                       incl_sym < sym_end;
                       incl_sym < sym_end;
                       incl_sym++, incl_map++)
                       incl_sym++, incl_map++)
                    {
                    {
                      int incl_type;
                      int incl_type;
 
 
                      incl_type = bfd_h_get_8 (input_bfd, incl_sym->e_type);
                      incl_type = bfd_h_get_8 (input_bfd, incl_sym->e_type);
                      if (incl_type == N_EINCL)
                      if (incl_type == N_EINCL)
                        {
                        {
                          if (nest == 0)
                          if (nest == 0)
                            {
                            {
                              *incl_map = -1;
                              *incl_map = -1;
                              break;
                              break;
                            }
                            }
                          --nest;
                          --nest;
                        }
                        }
                      else if (incl_type == N_BINCL)
                      else if (incl_type == N_BINCL)
                        ++nest;
                        ++nest;
                      else if (nest == 0)
                      else if (nest == 0)
                        *incl_map = -1;
                        *incl_map = -1;
                    }
                    }
                }
                }
            }
            }
        }
        }
 
 
      /* Copy this symbol into the list of symbols we are going to
      /* Copy this symbol into the list of symbols we are going to
         write out.  */
         write out.  */
      bfd_h_put_8 (output_bfd, type, outsym->e_type);
      bfd_h_put_8 (output_bfd, type, outsym->e_type);
      copy = false;
      copy = false;
      if (! finfo->info->keep_memory)
      if (! finfo->info->keep_memory)
        {
        {
          /* name points into a string table which we are going to
          /* name points into a string table which we are going to
             free.  If there is a hash table entry, use that string.
             free.  If there is a hash table entry, use that string.
             Otherwise, copy name into memory.  */
             Otherwise, copy name into memory.  */
          if (h != (struct aout_link_hash_entry *) NULL)
          if (h != (struct aout_link_hash_entry *) NULL)
            name = h->root.root.string;
            name = h->root.root.string;
          else
          else
            copy = true;
            copy = true;
        }
        }
      strtab_index = add_to_stringtab (output_bfd, finfo->strtab,
      strtab_index = add_to_stringtab (output_bfd, finfo->strtab,
                                       name, copy);
                                       name, copy);
      if (strtab_index == (bfd_size_type) -1)
      if (strtab_index == (bfd_size_type) -1)
        return false;
        return false;
      PUT_WORD (output_bfd, strtab_index, outsym->e_strx);
      PUT_WORD (output_bfd, strtab_index, outsym->e_strx);
      PUT_WORD (output_bfd, val, outsym->e_value);
      PUT_WORD (output_bfd, val, outsym->e_value);
      *symbol_map = obj_aout_external_sym_count (output_bfd);
      *symbol_map = obj_aout_external_sym_count (output_bfd);
      ++obj_aout_external_sym_count (output_bfd);
      ++obj_aout_external_sym_count (output_bfd);
      ++outsym;
      ++outsym;
    }
    }
 
 
  /* Write out the output symbols we have just constructed.  */
  /* Write out the output symbols we have just constructed.  */
  if (outsym > finfo->output_syms)
  if (outsym > finfo->output_syms)
    {
    {
      bfd_size_type outsym_count;
      bfd_size_type outsym_count;
 
 
      if (bfd_seek (output_bfd, finfo->symoff, SEEK_SET) != 0)
      if (bfd_seek (output_bfd, finfo->symoff, SEEK_SET) != 0)
        return false;
        return false;
      outsym_count = outsym - finfo->output_syms;
      outsym_count = outsym - finfo->output_syms;
      if (bfd_write ((PTR) finfo->output_syms,
      if (bfd_write ((PTR) finfo->output_syms,
                     (bfd_size_type) EXTERNAL_NLIST_SIZE,
                     (bfd_size_type) EXTERNAL_NLIST_SIZE,
                     (bfd_size_type) outsym_count, output_bfd)
                     (bfd_size_type) outsym_count, output_bfd)
          != outsym_count * EXTERNAL_NLIST_SIZE)
          != outsym_count * EXTERNAL_NLIST_SIZE)
        return false;
        return false;
      finfo->symoff += outsym_count * EXTERNAL_NLIST_SIZE;
      finfo->symoff += outsym_count * EXTERNAL_NLIST_SIZE;
    }
    }
 
 
  return true;
  return true;
}
}
 
 
/* Write out a symbol that was not associated with an a.out input
/* Write out a symbol that was not associated with an a.out input
   object.  */
   object.  */
 
 
static boolean
static boolean
aout_link_write_other_symbol (h, data)
aout_link_write_other_symbol (h, data)
     struct aout_link_hash_entry *h;
     struct aout_link_hash_entry *h;
     PTR data;
     PTR data;
{
{
  struct aout_final_link_info *finfo = (struct aout_final_link_info *) data;
  struct aout_final_link_info *finfo = (struct aout_final_link_info *) data;
  bfd *output_bfd;
  bfd *output_bfd;
  int type;
  int type;
  bfd_vma val;
  bfd_vma val;
  struct external_nlist outsym;
  struct external_nlist outsym;
  bfd_size_type indx;
  bfd_size_type indx;
 
 
  output_bfd = finfo->output_bfd;
  output_bfd = finfo->output_bfd;
 
 
  if (aout_backend_info (output_bfd)->write_dynamic_symbol != NULL)
  if (aout_backend_info (output_bfd)->write_dynamic_symbol != NULL)
    {
    {
      if (! ((*aout_backend_info (output_bfd)->write_dynamic_symbol)
      if (! ((*aout_backend_info (output_bfd)->write_dynamic_symbol)
             (output_bfd, finfo->info, h)))
             (output_bfd, finfo->info, h)))
        {
        {
          /* FIXME: No way to handle errors.  */
          /* FIXME: No way to handle errors.  */
          abort ();
          abort ();
        }
        }
    }
    }
 
 
  if (h->written)
  if (h->written)
    return true;
    return true;
 
 
  h->written = true;
  h->written = true;
 
 
  /* An indx of -2 means the symbol must be written.  */
  /* An indx of -2 means the symbol must be written.  */
  if (h->indx != -2
  if (h->indx != -2
      && (finfo->info->strip == strip_all
      && (finfo->info->strip == strip_all
          || (finfo->info->strip == strip_some
          || (finfo->info->strip == strip_some
              && bfd_hash_lookup (finfo->info->keep_hash, h->root.root.string,
              && bfd_hash_lookup (finfo->info->keep_hash, h->root.root.string,
                                  false, false) == NULL)))
                                  false, false) == NULL)))
    return true;
    return true;
 
 
  switch (h->root.type)
  switch (h->root.type)
    {
    {
    default:
    default:
      abort ();
      abort ();
      /* Avoid variable not initialized warnings.  */
      /* Avoid variable not initialized warnings.  */
      return true;
      return true;
    case bfd_link_hash_new:
    case bfd_link_hash_new:
      /* This can happen for set symbols when sets are not being
      /* This can happen for set symbols when sets are not being
         built.  */
         built.  */
      return true;
      return true;
    case bfd_link_hash_undefined:
    case bfd_link_hash_undefined:
      type = N_UNDF | N_EXT;
      type = N_UNDF | N_EXT;
      val = 0;
      val = 0;
      break;
      break;
    case bfd_link_hash_defined:
    case bfd_link_hash_defined:
    case bfd_link_hash_defweak:
    case bfd_link_hash_defweak:
      {
      {
        asection *sec;
        asection *sec;
 
 
        sec = h->root.u.def.section->output_section;
        sec = h->root.u.def.section->output_section;
        BFD_ASSERT (bfd_is_abs_section (sec)
        BFD_ASSERT (bfd_is_abs_section (sec)
                    || sec->owner == output_bfd);
                    || sec->owner == output_bfd);
        if (sec == obj_textsec (output_bfd))
        if (sec == obj_textsec (output_bfd))
          type = h->root.type == bfd_link_hash_defined ? N_TEXT : N_WEAKT;
          type = h->root.type == bfd_link_hash_defined ? N_TEXT : N_WEAKT;
        else if (sec == obj_datasec (output_bfd))
        else if (sec == obj_datasec (output_bfd))
          type = h->root.type == bfd_link_hash_defined ? N_DATA : N_WEAKD;
          type = h->root.type == bfd_link_hash_defined ? N_DATA : N_WEAKD;
        else if (sec == obj_bsssec (output_bfd))
        else if (sec == obj_bsssec (output_bfd))
          type = h->root.type == bfd_link_hash_defined ? N_BSS : N_WEAKB;
          type = h->root.type == bfd_link_hash_defined ? N_BSS : N_WEAKB;
        else
        else
          type = h->root.type == bfd_link_hash_defined ? N_ABS : N_WEAKA;
          type = h->root.type == bfd_link_hash_defined ? N_ABS : N_WEAKA;
        type |= N_EXT;
        type |= N_EXT;
        val = (h->root.u.def.value
        val = (h->root.u.def.value
               + sec->vma
               + sec->vma
               + h->root.u.def.section->output_offset);
               + h->root.u.def.section->output_offset);
      }
      }
      break;
      break;
    case bfd_link_hash_common:
    case bfd_link_hash_common:
      type = N_UNDF | N_EXT;
      type = N_UNDF | N_EXT;
      val = h->root.u.c.size;
      val = h->root.u.c.size;
      break;
      break;
    case bfd_link_hash_undefweak:
    case bfd_link_hash_undefweak:
      type = N_WEAKU;
      type = N_WEAKU;
      val = 0;
      val = 0;
    case bfd_link_hash_indirect:
    case bfd_link_hash_indirect:
    case bfd_link_hash_warning:
    case bfd_link_hash_warning:
      /* FIXME: Ignore these for now.  The circumstances under which
      /* FIXME: Ignore these for now.  The circumstances under which
         they should be written out are not clear to me.  */
         they should be written out are not clear to me.  */
      return true;
      return true;
    }
    }
 
 
  bfd_h_put_8 (output_bfd, type, outsym.e_type);
  bfd_h_put_8 (output_bfd, type, outsym.e_type);
  indx = add_to_stringtab (output_bfd, finfo->strtab, h->root.root.string,
  indx = add_to_stringtab (output_bfd, finfo->strtab, h->root.root.string,
                           false);
                           false);
  if (indx == (bfd_size_type) -1)
  if (indx == (bfd_size_type) -1)
    {
    {
      /* FIXME: No way to handle errors.  */
      /* FIXME: No way to handle errors.  */
      abort ();
      abort ();
    }
    }
  PUT_WORD (output_bfd, indx, outsym.e_strx);
  PUT_WORD (output_bfd, indx, outsym.e_strx);
  PUT_WORD (output_bfd, val, outsym.e_value);
  PUT_WORD (output_bfd, val, outsym.e_value);
 
 
  if (bfd_seek (output_bfd, finfo->symoff, SEEK_SET) != 0
  if (bfd_seek (output_bfd, finfo->symoff, SEEK_SET) != 0
      || bfd_write ((PTR) &outsym, (bfd_size_type) EXTERNAL_NLIST_SIZE,
      || bfd_write ((PTR) &outsym, (bfd_size_type) EXTERNAL_NLIST_SIZE,
                    (bfd_size_type) 1, output_bfd) != EXTERNAL_NLIST_SIZE)
                    (bfd_size_type) 1, output_bfd) != EXTERNAL_NLIST_SIZE)
    {
    {
      /* FIXME: No way to handle errors.  */
      /* FIXME: No way to handle errors.  */
      abort ();
      abort ();
    }
    }
 
 
  finfo->symoff += EXTERNAL_NLIST_SIZE;
  finfo->symoff += EXTERNAL_NLIST_SIZE;
  h->indx = obj_aout_external_sym_count (output_bfd);
  h->indx = obj_aout_external_sym_count (output_bfd);
  ++obj_aout_external_sym_count (output_bfd);
  ++obj_aout_external_sym_count (output_bfd);
 
 
  return true;
  return true;
}
}
 
 
/* Link an a.out section into the output file.  */
/* Link an a.out section into the output file.  */
 
 
static boolean
static boolean
aout_link_input_section (finfo, input_bfd, input_section, reloff_ptr,
aout_link_input_section (finfo, input_bfd, input_section, reloff_ptr,
                         rel_size)
                         rel_size)
     struct aout_final_link_info *finfo;
     struct aout_final_link_info *finfo;
     bfd *input_bfd;
     bfd *input_bfd;
     asection *input_section;
     asection *input_section;
     file_ptr *reloff_ptr;
     file_ptr *reloff_ptr;
     bfd_size_type rel_size;
     bfd_size_type rel_size;
{
{
  bfd_size_type input_size;
  bfd_size_type input_size;
  PTR relocs;
  PTR relocs;
 
 
  /* Get the section contents.  */
  /* Get the section contents.  */
  input_size = bfd_section_size (input_bfd, input_section);
  input_size = bfd_section_size (input_bfd, input_section);
  if (! bfd_get_section_contents (input_bfd, input_section,
  if (! bfd_get_section_contents (input_bfd, input_section,
                                  (PTR) finfo->contents,
                                  (PTR) finfo->contents,
                                  (file_ptr) 0, input_size))
                                  (file_ptr) 0, input_size))
    return false;
    return false;
 
 
  /* Read in the relocs if we haven't already done it.  */
  /* Read in the relocs if we haven't already done it.  */
  if (aout_section_data (input_section) != NULL
  if (aout_section_data (input_section) != NULL
      && aout_section_data (input_section)->relocs != NULL)
      && aout_section_data (input_section)->relocs != NULL)
    relocs = aout_section_data (input_section)->relocs;
    relocs = aout_section_data (input_section)->relocs;
  else
  else
    {
    {
      relocs = finfo->relocs;
      relocs = finfo->relocs;
      if (rel_size > 0)
      if (rel_size > 0)
        {
        {
          if (bfd_seek (input_bfd, input_section->rel_filepos, SEEK_SET) != 0
          if (bfd_seek (input_bfd, input_section->rel_filepos, SEEK_SET) != 0
              || bfd_read (relocs, 1, rel_size, input_bfd) != rel_size)
              || bfd_read (relocs, 1, rel_size, input_bfd) != rel_size)
            return false;
            return false;
        }
        }
    }
    }
 
 
  /* Relocate the section contents.  */
  /* Relocate the section contents.  */
  if (! pdp11_aout_link_input_section (finfo, input_bfd, input_section,
  if (! pdp11_aout_link_input_section (finfo, input_bfd, input_section,
                                       (struct pdp11_aout_reloc_external *) relocs,
                                       (struct pdp11_aout_reloc_external *) relocs,
                                       rel_size, finfo->contents))
                                       rel_size, finfo->contents))
    return false;
    return false;
 
 
  /* Write out the section contents.  */
  /* Write out the section contents.  */
  if (! bfd_set_section_contents (finfo->output_bfd,
  if (! bfd_set_section_contents (finfo->output_bfd,
                                  input_section->output_section,
                                  input_section->output_section,
                                  (PTR) finfo->contents,
                                  (PTR) finfo->contents,
                                  input_section->output_offset,
                                  input_section->output_offset,
                                  input_size))
                                  input_size))
    return false;
    return false;
 
 
  /* If we are producing relocateable output, the relocs were
  /* If we are producing relocateable output, the relocs were
     modified, and we now write them out.  */
     modified, and we now write them out.  */
  if (finfo->info->relocateable && rel_size > 0)
  if (finfo->info->relocateable && rel_size > 0)
    {
    {
      if (bfd_seek (finfo->output_bfd, *reloff_ptr, SEEK_SET) != 0)
      if (bfd_seek (finfo->output_bfd, *reloff_ptr, SEEK_SET) != 0)
        return false;
        return false;
      if (bfd_write (relocs, (bfd_size_type) 1, rel_size, finfo->output_bfd)
      if (bfd_write (relocs, (bfd_size_type) 1, rel_size, finfo->output_bfd)
          != rel_size)
          != rel_size)
        return false;
        return false;
      *reloff_ptr += rel_size;
      *reloff_ptr += rel_size;
 
 
      /* Assert that the relocs have not run into the symbols, and
      /* Assert that the relocs have not run into the symbols, and
         that if these are the text relocs they have not run into the
         that if these are the text relocs they have not run into the
         data relocs.  */
         data relocs.  */
      BFD_ASSERT (*reloff_ptr <= obj_sym_filepos (finfo->output_bfd)
      BFD_ASSERT (*reloff_ptr <= obj_sym_filepos (finfo->output_bfd)
                  && (reloff_ptr != &finfo->treloff
                  && (reloff_ptr != &finfo->treloff
                      || (*reloff_ptr
                      || (*reloff_ptr
                          <= obj_datasec (finfo->output_bfd)->rel_filepos)));
                          <= obj_datasec (finfo->output_bfd)->rel_filepos)));
    }
    }
 
 
  return true;
  return true;
}
}
 
 
/* Get the section corresponding to a reloc index.  */
/* Get the section corresponding to a reloc index.  */
 
 
static INLINE asection *
static INLINE asection *
aout_reloc_type_to_section (abfd, type)
aout_reloc_type_to_section (abfd, type)
     bfd *abfd;
     bfd *abfd;
     int type;
     int type;
{
{
  switch (type)
  switch (type)
    {
    {
    case RTEXT:
    case RTEXT:
      return obj_textsec (abfd);
      return obj_textsec (abfd);
    case RDATA:
    case RDATA:
      return obj_datasec (abfd);
      return obj_datasec (abfd);
    case RBSS:
    case RBSS:
      return obj_bsssec (abfd);
      return obj_bsssec (abfd);
    case RABS:
    case RABS:
      return bfd_abs_section_ptr;
      return bfd_abs_section_ptr;
    case REXT:
    case REXT:
      return bfd_und_section_ptr;
      return bfd_und_section_ptr;
    default:
    default:
      abort ();
      abort ();
    }
    }
}
}
 
 
static boolean
static boolean
pdp11_aout_link_input_section (finfo, input_bfd, input_section, relocs,
pdp11_aout_link_input_section (finfo, input_bfd, input_section, relocs,
                               rel_size, contents)
                               rel_size, contents)
     struct aout_final_link_info *finfo;
     struct aout_final_link_info *finfo;
     bfd *input_bfd;
     bfd *input_bfd;
     asection *input_section;
     asection *input_section;
     struct pdp11_aout_reloc_external *relocs;
     struct pdp11_aout_reloc_external *relocs;
     bfd_size_type rel_size;
     bfd_size_type rel_size;
     bfd_byte *contents;
     bfd_byte *contents;
{
{
  boolean (*check_dynamic_reloc) PARAMS ((struct bfd_link_info *,
  boolean (*check_dynamic_reloc) PARAMS ((struct bfd_link_info *,
                                          bfd *, asection *,
                                          bfd *, asection *,
                                          struct aout_link_hash_entry *,
                                          struct aout_link_hash_entry *,
                                          PTR, bfd_byte *, boolean *,
                                          PTR, bfd_byte *, boolean *,
                                          bfd_vma *));
                                          bfd_vma *));
  bfd *output_bfd;
  bfd *output_bfd;
  boolean relocateable;
  boolean relocateable;
  struct external_nlist *syms;
  struct external_nlist *syms;
  char *strings;
  char *strings;
  struct aout_link_hash_entry **sym_hashes;
  struct aout_link_hash_entry **sym_hashes;
  int *symbol_map;
  int *symbol_map;
  bfd_size_type reloc_count;
  bfd_size_type reloc_count;
  register struct pdp11_aout_reloc_external *rel;
  register struct pdp11_aout_reloc_external *rel;
  struct pdp11_aout_reloc_external *rel_end;
  struct pdp11_aout_reloc_external *rel_end;
 
 
  output_bfd = finfo->output_bfd;
  output_bfd = finfo->output_bfd;
  check_dynamic_reloc = aout_backend_info (output_bfd)->check_dynamic_reloc;
  check_dynamic_reloc = aout_backend_info (output_bfd)->check_dynamic_reloc;
 
 
  BFD_ASSERT (obj_reloc_entry_size (input_bfd) == RELOC_SIZE);
  BFD_ASSERT (obj_reloc_entry_size (input_bfd) == RELOC_SIZE);
  BFD_ASSERT (input_bfd->xvec->header_byteorder
  BFD_ASSERT (input_bfd->xvec->header_byteorder
              == output_bfd->xvec->header_byteorder);
              == output_bfd->xvec->header_byteorder);
 
 
  relocateable = finfo->info->relocateable;
  relocateable = finfo->info->relocateable;
  syms = obj_aout_external_syms (input_bfd);
  syms = obj_aout_external_syms (input_bfd);
  strings = obj_aout_external_strings (input_bfd);
  strings = obj_aout_external_strings (input_bfd);
  sym_hashes = obj_aout_sym_hashes (input_bfd);
  sym_hashes = obj_aout_sym_hashes (input_bfd);
  symbol_map = finfo->symbol_map;
  symbol_map = finfo->symbol_map;
 
 
  reloc_count = rel_size / RELOC_SIZE;
  reloc_count = rel_size / RELOC_SIZE;
  rel = relocs;
  rel = relocs;
  rel_end = (struct pdp11_aout_reloc_external *)(((char *)rel) + rel_size);
  rel_end = (struct pdp11_aout_reloc_external *)(((char *)rel) + rel_size);
  for (; rel < rel_end; ((char *)rel) += RELOC_SIZE)
  for (; rel < rel_end; ((char *)rel) += RELOC_SIZE)
    {
    {
      bfd_vma r_addr;
      bfd_vma r_addr;
      int r_index;
      int r_index;
      int r_type;
      int r_type;
      int r_pcrel;
      int r_pcrel;
      int r_extern;
      int r_extern;
      reloc_howto_type *howto;
      reloc_howto_type *howto;
      struct aout_link_hash_entry *h = NULL;
      struct aout_link_hash_entry *h = NULL;
      bfd_vma relocation;
      bfd_vma relocation;
      bfd_reloc_status_type r;
      bfd_reloc_status_type r;
      int reloc_entry;
      int reloc_entry;
 
 
      reloc_entry = GET_WORD (input_bfd, (PTR)rel);
      reloc_entry = GET_WORD (input_bfd, (PTR)rel);
      if (reloc_entry == 0)
      if (reloc_entry == 0)
        continue;
        continue;
 
 
      {
      {
        unsigned int howto_idx;
        unsigned int howto_idx;
 
 
        r_index = (reloc_entry & RIDXMASK) >> 4;
        r_index = (reloc_entry & RIDXMASK) >> 4;
        r_type = reloc_entry & RTYPE;
        r_type = reloc_entry & RTYPE;
        r_pcrel = reloc_entry & RELFLG;
        r_pcrel = reloc_entry & RELFLG;
        r_addr = (char *)rel - (char *)relocs;
        r_addr = (char *)rel - (char *)relocs;
 
 
        r_extern = (r_type == REXT);
        r_extern = (r_type == REXT);
 
 
        howto_idx = r_pcrel;
        howto_idx = r_pcrel;
        BFD_ASSERT (howto_idx < TABLE_SIZE (howto_table_pdp11));
        BFD_ASSERT (howto_idx < TABLE_SIZE (howto_table_pdp11));
        howto = howto_table_pdp11 + howto_idx;
        howto = howto_table_pdp11 + howto_idx;
      }
      }
 
 
      if (relocateable)
      if (relocateable)
        {
        {
          /* We are generating a relocateable output file, and must
          /* We are generating a relocateable output file, and must
             modify the reloc accordingly.  */
             modify the reloc accordingly.  */
          if (r_extern)
          if (r_extern)
            {
            {
              /* If we know the symbol this relocation is against,
              /* If we know the symbol this relocation is against,
                 convert it into a relocation against a section.  This
                 convert it into a relocation against a section.  This
                 is what the native linker does.  */
                 is what the native linker does.  */
              h = sym_hashes[r_index];
              h = sym_hashes[r_index];
              if (h != (struct aout_link_hash_entry *) NULL
              if (h != (struct aout_link_hash_entry *) NULL
                  && (h->root.type == bfd_link_hash_defined
                  && (h->root.type == bfd_link_hash_defined
                      || h->root.type == bfd_link_hash_defweak))
                      || h->root.type == bfd_link_hash_defweak))
                {
                {
                  asection *output_section;
                  asection *output_section;
 
 
                  /* Compute a new r_index.  */
                  /* Compute a new r_index.  */
                  output_section = h->root.u.def.section->output_section;
                  output_section = h->root.u.def.section->output_section;
                  if (output_section == obj_textsec (output_bfd))
                  if (output_section == obj_textsec (output_bfd))
                    r_type = N_TEXT;
                    r_type = N_TEXT;
                  else if (output_section == obj_datasec (output_bfd))
                  else if (output_section == obj_datasec (output_bfd))
                    r_type = N_DATA;
                    r_type = N_DATA;
                  else if (output_section == obj_bsssec (output_bfd))
                  else if (output_section == obj_bsssec (output_bfd))
                    r_type = N_BSS;
                    r_type = N_BSS;
                  else
                  else
                    r_type = N_ABS;
                    r_type = N_ABS;
 
 
                  /* Add the symbol value and the section VMA to the
                  /* Add the symbol value and the section VMA to the
                     addend stored in the contents.  */
                     addend stored in the contents.  */
                  relocation = (h->root.u.def.value
                  relocation = (h->root.u.def.value
                                + output_section->vma
                                + output_section->vma
                                + h->root.u.def.section->output_offset);
                                + h->root.u.def.section->output_offset);
                }
                }
              else
              else
                {
                {
                  /* We must change r_index according to the symbol
                  /* We must change r_index according to the symbol
                     map.  */
                     map.  */
                  r_index = symbol_map[r_index];
                  r_index = symbol_map[r_index];
 
 
                  if (r_index == -1)
                  if (r_index == -1)
                    {
                    {
                      if (h != NULL)
                      if (h != NULL)
                        {
                        {
                          /* We decided to strip this symbol, but it
                          /* We decided to strip this symbol, but it
                             turns out that we can't.  Note that we
                             turns out that we can't.  Note that we
                             lose the other and desc information here.
                             lose the other and desc information here.
                             I don't think that will ever matter for a
                             I don't think that will ever matter for a
                             global symbol.  */
                             global symbol.  */
                          if (h->indx < 0)
                          if (h->indx < 0)
                            {
                            {
                              h->indx = -2;
                              h->indx = -2;
                              h->written = false;
                              h->written = false;
                              if (! aout_link_write_other_symbol (h,
                              if (! aout_link_write_other_symbol (h,
                                                                  (PTR) finfo))
                                                                  (PTR) finfo))
                                return false;
                                return false;
                            }
                            }
                          r_index = h->indx;
                          r_index = h->indx;
                        }
                        }
                      else
                      else
                        {
                        {
                          const char *name;
                          const char *name;
 
 
                          name = strings + GET_WORD (input_bfd,
                          name = strings + GET_WORD (input_bfd,
                                                     syms[r_index].e_strx);
                                                     syms[r_index].e_strx);
                          if (! ((*finfo->info->callbacks->unattached_reloc)
                          if (! ((*finfo->info->callbacks->unattached_reloc)
                                 (finfo->info, name, input_bfd, input_section,
                                 (finfo->info, name, input_bfd, input_section,
                                  r_addr)))
                                  r_addr)))
                            return false;
                            return false;
                          r_index = 0;
                          r_index = 0;
                        }
                        }
                    }
                    }
 
 
                  relocation = 0;
                  relocation = 0;
                }
                }
 
 
              /* Write out the new r_index value.  */
              /* Write out the new r_index value.  */
              reloc_entry = GET_WORD (input_bfd, rel->e_reloc_entry);
              reloc_entry = GET_WORD (input_bfd, rel->e_reloc_entry);
              reloc_entry &= RIDXMASK;
              reloc_entry &= RIDXMASK;
              reloc_entry |= r_index << 4;
              reloc_entry |= r_index << 4;
              PUT_WORD (input_bfd, reloc_entry, rel->e_reloc_entry);
              PUT_WORD (input_bfd, reloc_entry, rel->e_reloc_entry);
            }
            }
          else
          else
            {
            {
              asection *section;
              asection *section;
 
 
              /* This is a relocation against a section.  We must
              /* This is a relocation against a section.  We must
                 adjust by the amount that the section moved.  */
                 adjust by the amount that the section moved.  */
              section = aout_reloc_type_to_section (input_bfd, r_type);
              section = aout_reloc_type_to_section (input_bfd, r_type);
              relocation = (section->output_section->vma
              relocation = (section->output_section->vma
                            + section->output_offset
                            + section->output_offset
                            - section->vma);
                            - section->vma);
            }
            }
 
 
          /* Change the address of the relocation.  */
          /* Change the address of the relocation.  */
#if 0
#if 0
          PUT_WORD (output_bfd,
          PUT_WORD (output_bfd,
                    r_addr + input_section->output_offset,
                    r_addr + input_section->output_offset,
                    rel->r_address);
                    rel->r_address);
#else
#else
fprintf (stderr, "TODO: change the address of the relocation\n");
fprintf (stderr, "TODO: change the address of the relocation\n");
#endif
#endif
 
 
          /* Adjust a PC relative relocation by removing the reference
          /* Adjust a PC relative relocation by removing the reference
             to the original address in the section and including the
             to the original address in the section and including the
             reference to the new address.  */
             reference to the new address.  */
          if (r_pcrel)
          if (r_pcrel)
            relocation -= (input_section->output_section->vma
            relocation -= (input_section->output_section->vma
                           + input_section->output_offset
                           + input_section->output_offset
                           - input_section->vma);
                           - input_section->vma);
 
 
#ifdef MY_relocatable_reloc
#ifdef MY_relocatable_reloc
          MY_relocatable_reloc (howto, output_bfd, rel, relocation, r_addr);
          MY_relocatable_reloc (howto, output_bfd, rel, relocation, r_addr);
#endif
#endif
 
 
          if (relocation == 0)
          if (relocation == 0)
            r = bfd_reloc_ok;
            r = bfd_reloc_ok;
          else
          else
            r = MY_relocate_contents (howto,
            r = MY_relocate_contents (howto,
                                      input_bfd, relocation,
                                      input_bfd, relocation,
                                      contents + r_addr);
                                      contents + r_addr);
        }
        }
      else
      else
        {
        {
          boolean hundef;
          boolean hundef;
 
 
          /* We are generating an executable, and must do a full
          /* We are generating an executable, and must do a full
             relocation.  */
             relocation.  */
          hundef = false;
          hundef = false;
          if (r_extern)
          if (r_extern)
            {
            {
              h = sym_hashes[r_index];
              h = sym_hashes[r_index];
 
 
              if (h != (struct aout_link_hash_entry *) NULL
              if (h != (struct aout_link_hash_entry *) NULL
                  && (h->root.type == bfd_link_hash_defined
                  && (h->root.type == bfd_link_hash_defined
                      || h->root.type == bfd_link_hash_defweak))
                      || h->root.type == bfd_link_hash_defweak))
                {
                {
                  relocation = (h->root.u.def.value
                  relocation = (h->root.u.def.value
                                + h->root.u.def.section->output_section->vma
                                + h->root.u.def.section->output_section->vma
                                + h->root.u.def.section->output_offset);
                                + h->root.u.def.section->output_offset);
                }
                }
              else if (h != (struct aout_link_hash_entry *) NULL
              else if (h != (struct aout_link_hash_entry *) NULL
                       && h->root.type == bfd_link_hash_undefweak)
                       && h->root.type == bfd_link_hash_undefweak)
                relocation = 0;
                relocation = 0;
              else
              else
                {
                {
                  hundef = true;
                  hundef = true;
                  relocation = 0;
                  relocation = 0;
                }
                }
            }
            }
          else
          else
            {
            {
              asection *section;
              asection *section;
 
 
              section = aout_reloc_type_to_section (input_bfd, r_type);
              section = aout_reloc_type_to_section (input_bfd, r_type);
              relocation = (section->output_section->vma
              relocation = (section->output_section->vma
                            + section->output_offset
                            + section->output_offset
                            - section->vma);
                            - section->vma);
              if (r_pcrel)
              if (r_pcrel)
                relocation += input_section->vma;
                relocation += input_section->vma;
            }
            }
 
 
          if (check_dynamic_reloc != NULL)
          if (check_dynamic_reloc != NULL)
            {
            {
              boolean skip;
              boolean skip;
 
 
              if (! ((*check_dynamic_reloc)
              if (! ((*check_dynamic_reloc)
                     (finfo->info, input_bfd, input_section, h,
                     (finfo->info, input_bfd, input_section, h,
                      (PTR) rel, contents, &skip, &relocation)))
                      (PTR) rel, contents, &skip, &relocation)))
                return false;
                return false;
              if (skip)
              if (skip)
                continue;
                continue;
            }
            }
 
 
          /* Now warn if a global symbol is undefined.  We could not
          /* Now warn if a global symbol is undefined.  We could not
             do this earlier, because check_dynamic_reloc might want
             do this earlier, because check_dynamic_reloc might want
             to skip this reloc.  */
             to skip this reloc.  */
          if (hundef && ! finfo->info->shared)
          if (hundef && ! finfo->info->shared)
            {
            {
              const char *name;
              const char *name;
 
 
              if (h != NULL)
              if (h != NULL)
                name = h->root.root.string;
                name = h->root.root.string;
              else
              else
                name = strings + GET_WORD (input_bfd, syms[r_index].e_strx);
                name = strings + GET_WORD (input_bfd, syms[r_index].e_strx);
              if (! ((*finfo->info->callbacks->undefined_symbol)
              if (! ((*finfo->info->callbacks->undefined_symbol)
                     (finfo->info, name, input_bfd, input_section,
                     (finfo->info, name, input_bfd, input_section,
                      r_addr, true)))
                      r_addr, true)))
                return false;
                return false;
            }
            }
 
 
          r = MY_final_link_relocate (howto,
          r = MY_final_link_relocate (howto,
                                      input_bfd, input_section,
                                      input_bfd, input_section,
                                      contents, r_addr, relocation,
                                      contents, r_addr, relocation,
                                      (bfd_vma) 0);
                                      (bfd_vma) 0);
        }
        }
 
 
      if (r != bfd_reloc_ok)
      if (r != bfd_reloc_ok)
        {
        {
          switch (r)
          switch (r)
            {
            {
            default:
            default:
            case bfd_reloc_outofrange:
            case bfd_reloc_outofrange:
              abort ();
              abort ();
            case bfd_reloc_overflow:
            case bfd_reloc_overflow:
              {
              {
                const char *name;
                const char *name;
 
 
                if (h != NULL)
                if (h != NULL)
                  name = h->root.root.string;
                  name = h->root.root.string;
                else if (r_extern)
                else if (r_extern)
                  name = strings + GET_WORD (input_bfd,
                  name = strings + GET_WORD (input_bfd,
                                             syms[r_index].e_strx);
                                             syms[r_index].e_strx);
                else
                else
                  {
                  {
                    asection *s;
                    asection *s;
 
 
                    s = aout_reloc_type_to_section (input_bfd, r_type);
                    s = aout_reloc_type_to_section (input_bfd, r_type);
                    name = bfd_section_name (input_bfd, s);
                    name = bfd_section_name (input_bfd, s);
                  }
                  }
                if (! ((*finfo->info->callbacks->reloc_overflow)
                if (! ((*finfo->info->callbacks->reloc_overflow)
                       (finfo->info, name, howto->name,
                       (finfo->info, name, howto->name,
                        (bfd_vma) 0, input_bfd, input_section, r_addr)))
                        (bfd_vma) 0, input_bfd, input_section, r_addr)))
                  return false;
                  return false;
              }
              }
              break;
              break;
            }
            }
        }
        }
    }
    }
 
 
  return true;
  return true;
}
}
 
 
/* Handle a link order which is supposed to generate a reloc.  */
/* Handle a link order which is supposed to generate a reloc.  */
 
 
static boolean
static boolean
aout_link_reloc_link_order (finfo, o, p)
aout_link_reloc_link_order (finfo, o, p)
     struct aout_final_link_info *finfo;
     struct aout_final_link_info *finfo;
     asection *o;
     asection *o;
     struct bfd_link_order *p;
     struct bfd_link_order *p;
{
{
  struct bfd_link_order_reloc *pr;
  struct bfd_link_order_reloc *pr;
  int r_index;
  int r_index;
  int r_extern;
  int r_extern;
  reloc_howto_type *howto;
  reloc_howto_type *howto;
  file_ptr *reloff_ptr;
  file_ptr *reloff_ptr;
  struct reloc_std_external srel;
  struct reloc_std_external srel;
  PTR rel_ptr;
  PTR rel_ptr;
 
 
  pr = p->u.reloc.p;
  pr = p->u.reloc.p;
 
 
  if (p->type == bfd_section_reloc_link_order)
  if (p->type == bfd_section_reloc_link_order)
    {
    {
      r_extern = 0;
      r_extern = 0;
      if (bfd_is_abs_section (pr->u.section))
      if (bfd_is_abs_section (pr->u.section))
        r_index = N_ABS | N_EXT;
        r_index = N_ABS | N_EXT;
      else
      else
        {
        {
          BFD_ASSERT (pr->u.section->owner == finfo->output_bfd);
          BFD_ASSERT (pr->u.section->owner == finfo->output_bfd);
          r_index = pr->u.section->target_index;
          r_index = pr->u.section->target_index;
        }
        }
    }
    }
  else
  else
    {
    {
      struct aout_link_hash_entry *h;
      struct aout_link_hash_entry *h;
 
 
      BFD_ASSERT (p->type == bfd_symbol_reloc_link_order);
      BFD_ASSERT (p->type == bfd_symbol_reloc_link_order);
      r_extern = 1;
      r_extern = 1;
      h = ((struct aout_link_hash_entry *)
      h = ((struct aout_link_hash_entry *)
           bfd_wrapped_link_hash_lookup (finfo->output_bfd, finfo->info,
           bfd_wrapped_link_hash_lookup (finfo->output_bfd, finfo->info,
                                         pr->u.name, false, false, true));
                                         pr->u.name, false, false, true));
      if (h != (struct aout_link_hash_entry *) NULL
      if (h != (struct aout_link_hash_entry *) NULL
          && h->indx >= 0)
          && h->indx >= 0)
        r_index = h->indx;
        r_index = h->indx;
      else if (h != NULL)
      else if (h != NULL)
        {
        {
          /* We decided to strip this symbol, but it turns out that we
          /* We decided to strip this symbol, but it turns out that we
             can't.  Note that we lose the other and desc information
             can't.  Note that we lose the other and desc information
             here.  I don't think that will ever matter for a global
             here.  I don't think that will ever matter for a global
             symbol.  */
             symbol.  */
          h->indx = -2;
          h->indx = -2;
          h->written = false;
          h->written = false;
          if (! aout_link_write_other_symbol (h, (PTR) finfo))
          if (! aout_link_write_other_symbol (h, (PTR) finfo))
            return false;
            return false;
          r_index = h->indx;
          r_index = h->indx;
        }
        }
      else
      else
        {
        {
          if (! ((*finfo->info->callbacks->unattached_reloc)
          if (! ((*finfo->info->callbacks->unattached_reloc)
                 (finfo->info, pr->u.name, (bfd *) NULL,
                 (finfo->info, pr->u.name, (bfd *) NULL,
                  (asection *) NULL, (bfd_vma) 0)))
                  (asection *) NULL, (bfd_vma) 0)))
            return false;
            return false;
          r_index = 0;
          r_index = 0;
        }
        }
    }
    }
 
 
  howto = bfd_reloc_type_lookup (finfo->output_bfd, pr->reloc);
  howto = bfd_reloc_type_lookup (finfo->output_bfd, pr->reloc);
  if (howto == 0)
  if (howto == 0)
    {
    {
      bfd_set_error (bfd_error_bad_value);
      bfd_set_error (bfd_error_bad_value);
      return false;
      return false;
    }
    }
 
 
  if (o == obj_textsec (finfo->output_bfd))
  if (o == obj_textsec (finfo->output_bfd))
    reloff_ptr = &finfo->treloff;
    reloff_ptr = &finfo->treloff;
  else if (o == obj_datasec (finfo->output_bfd))
  else if (o == obj_datasec (finfo->output_bfd))
    reloff_ptr = &finfo->dreloff;
    reloff_ptr = &finfo->dreloff;
  else
  else
    abort ();
    abort ();
 
 
#ifdef MY_put_reloc
#ifdef MY_put_reloc
  MY_put_reloc(finfo->output_bfd, r_extern, r_index, p->offset, howto,
  MY_put_reloc(finfo->output_bfd, r_extern, r_index, p->offset, howto,
               &srel);
               &srel);
#else
#else
  {
  {
    int r_pcrel;
    int r_pcrel;
    int r_baserel;
    int r_baserel;
    int r_jmptable;
    int r_jmptable;
    int r_relative;
    int r_relative;
    int r_length;
    int r_length;
 
 
    fprintf (stderr, "TODO: line %d in bfd/pdp11.c\n", __LINE__);
    fprintf (stderr, "TODO: line %d in bfd/pdp11.c\n", __LINE__);
 
 
    r_pcrel = howto->pc_relative;
    r_pcrel = howto->pc_relative;
    r_baserel = (howto->type & 8) != 0;
    r_baserel = (howto->type & 8) != 0;
    r_jmptable = (howto->type & 16) != 0;
    r_jmptable = (howto->type & 16) != 0;
    r_relative = (howto->type & 32) != 0;
    r_relative = (howto->type & 32) != 0;
    r_length = howto->size;
    r_length = howto->size;
 
 
    PUT_WORD (finfo->output_bfd, p->offset, srel.r_address);
    PUT_WORD (finfo->output_bfd, p->offset, srel.r_address);
    if (bfd_header_big_endian (finfo->output_bfd))
    if (bfd_header_big_endian (finfo->output_bfd))
      {
      {
        srel.r_index[0] = r_index >> 16;
        srel.r_index[0] = r_index >> 16;
        srel.r_index[1] = r_index >> 8;
        srel.r_index[1] = r_index >> 8;
        srel.r_index[2] = r_index;
        srel.r_index[2] = r_index;
        srel.r_type[0] =
        srel.r_type[0] =
          ((r_extern ?     RELOC_STD_BITS_EXTERN_BIG : 0)
          ((r_extern ?     RELOC_STD_BITS_EXTERN_BIG : 0)
           | (r_pcrel ?    RELOC_STD_BITS_PCREL_BIG : 0)
           | (r_pcrel ?    RELOC_STD_BITS_PCREL_BIG : 0)
           | (r_baserel ?  RELOC_STD_BITS_BASEREL_BIG : 0)
           | (r_baserel ?  RELOC_STD_BITS_BASEREL_BIG : 0)
           | (r_jmptable ? RELOC_STD_BITS_JMPTABLE_BIG : 0)
           | (r_jmptable ? RELOC_STD_BITS_JMPTABLE_BIG : 0)
           | (r_relative ? RELOC_STD_BITS_RELATIVE_BIG : 0)
           | (r_relative ? RELOC_STD_BITS_RELATIVE_BIG : 0)
           | (r_length <<  RELOC_STD_BITS_LENGTH_SH_BIG));
           | (r_length <<  RELOC_STD_BITS_LENGTH_SH_BIG));
      }
      }
    else
    else
      {
      {
        srel.r_index[2] = r_index >> 16;
        srel.r_index[2] = r_index >> 16;
        srel.r_index[1] = r_index >> 8;
        srel.r_index[1] = r_index >> 8;
        srel.r_index[0] = r_index;
        srel.r_index[0] = r_index;
        srel.r_type[0] =
        srel.r_type[0] =
          ((r_extern ?     RELOC_STD_BITS_EXTERN_LITTLE : 0)
          ((r_extern ?     RELOC_STD_BITS_EXTERN_LITTLE : 0)
           | (r_pcrel ?    RELOC_STD_BITS_PCREL_LITTLE : 0)
           | (r_pcrel ?    RELOC_STD_BITS_PCREL_LITTLE : 0)
           | (r_baserel ?  RELOC_STD_BITS_BASEREL_LITTLE : 0)
           | (r_baserel ?  RELOC_STD_BITS_BASEREL_LITTLE : 0)
           | (r_jmptable ? RELOC_STD_BITS_JMPTABLE_LITTLE : 0)
           | (r_jmptable ? RELOC_STD_BITS_JMPTABLE_LITTLE : 0)
           | (r_relative ? RELOC_STD_BITS_RELATIVE_LITTLE : 0)
           | (r_relative ? RELOC_STD_BITS_RELATIVE_LITTLE : 0)
           | (r_length <<  RELOC_STD_BITS_LENGTH_SH_LITTLE));
           | (r_length <<  RELOC_STD_BITS_LENGTH_SH_LITTLE));
      }
      }
  }
  }
#endif
#endif
  rel_ptr = (PTR) &srel;
  rel_ptr = (PTR) &srel;
 
 
  /* We have to write the addend into the object file, since
  /* We have to write the addend into the object file, since
     standard a.out relocs are in place.  It would be more
     standard a.out relocs are in place.  It would be more
     reliable if we had the current contents of the file here,
     reliable if we had the current contents of the file here,
     rather than assuming zeroes, but we can't read the file since
     rather than assuming zeroes, but we can't read the file since
     it was opened using bfd_openw.  */
     it was opened using bfd_openw.  */
  if (pr->addend != 0)
  if (pr->addend != 0)
    {
    {
      bfd_size_type size;
      bfd_size_type size;
      bfd_reloc_status_type r;
      bfd_reloc_status_type r;
      bfd_byte *buf;
      bfd_byte *buf;
      boolean ok;
      boolean ok;
 
 
      size = bfd_get_reloc_size (howto);
      size = bfd_get_reloc_size (howto);
      buf = (bfd_byte *) bfd_zmalloc (size);
      buf = (bfd_byte *) bfd_zmalloc (size);
      if (buf == (bfd_byte *) NULL)
      if (buf == (bfd_byte *) NULL)
        return false;
        return false;
      r = MY_relocate_contents (howto, finfo->output_bfd,
      r = MY_relocate_contents (howto, finfo->output_bfd,
                                pr->addend, buf);
                                pr->addend, buf);
      switch (r)
      switch (r)
        {
        {
        case bfd_reloc_ok:
        case bfd_reloc_ok:
          break;
          break;
        default:
        default:
        case bfd_reloc_outofrange:
        case bfd_reloc_outofrange:
          abort ();
          abort ();
        case bfd_reloc_overflow:
        case bfd_reloc_overflow:
          if (! ((*finfo->info->callbacks->reloc_overflow)
          if (! ((*finfo->info->callbacks->reloc_overflow)
                 (finfo->info,
                 (finfo->info,
                  (p->type == bfd_section_reloc_link_order
                  (p->type == bfd_section_reloc_link_order
                   ? bfd_section_name (finfo->output_bfd,
                   ? bfd_section_name (finfo->output_bfd,
                                       pr->u.section)
                                       pr->u.section)
                   : pr->u.name),
                   : pr->u.name),
                  howto->name, pr->addend, (bfd *) NULL,
                  howto->name, pr->addend, (bfd *) NULL,
                  (asection *) NULL, (bfd_vma) 0)))
                  (asection *) NULL, (bfd_vma) 0)))
            {
            {
              free (buf);
              free (buf);
              return false;
              return false;
            }
            }
          break;
          break;
        }
        }
      ok = bfd_set_section_contents (finfo->output_bfd, o,
      ok = bfd_set_section_contents (finfo->output_bfd, o,
                                     (PTR) buf,
                                     (PTR) buf,
                                     (file_ptr) p->offset,
                                     (file_ptr) p->offset,
                                     size);
                                     size);
      free (buf);
      free (buf);
      if (! ok)
      if (! ok)
        return false;
        return false;
    }
    }
 
 
  if (bfd_seek (finfo->output_bfd, *reloff_ptr, SEEK_SET) != 0
  if (bfd_seek (finfo->output_bfd, *reloff_ptr, SEEK_SET) != 0
      || (bfd_write (rel_ptr, (bfd_size_type) 1,
      || (bfd_write (rel_ptr, (bfd_size_type) 1,
                     obj_reloc_entry_size (finfo->output_bfd),
                     obj_reloc_entry_size (finfo->output_bfd),
                     finfo->output_bfd)
                     finfo->output_bfd)
          != obj_reloc_entry_size (finfo->output_bfd)))
          != obj_reloc_entry_size (finfo->output_bfd)))
    return false;
    return false;
 
 
  *reloff_ptr += obj_reloc_entry_size (finfo->output_bfd);
  *reloff_ptr += obj_reloc_entry_size (finfo->output_bfd);
 
 
  /* Assert that the relocs have not run into the symbols, and that n
  /* Assert that the relocs have not run into the symbols, and that n
     the text relocs have not run into the data relocs.  */
     the text relocs have not run into the data relocs.  */
  BFD_ASSERT (*reloff_ptr <= obj_sym_filepos (finfo->output_bfd)
  BFD_ASSERT (*reloff_ptr <= obj_sym_filepos (finfo->output_bfd)
              && (reloff_ptr != &finfo->treloff
              && (reloff_ptr != &finfo->treloff
                  || (*reloff_ptr
                  || (*reloff_ptr
                      <= obj_datasec (finfo->output_bfd)->rel_filepos)));
                      <= obj_datasec (finfo->output_bfd)->rel_filepos)));
 
 
  return true;
  return true;
}
}
/* end of modified aoutx.h */
/* end of modified aoutx.h */
 
 
bfd_vma
bfd_vma
bfd_getp32 (addr)
bfd_getp32 (addr)
     const bfd_byte *addr;
     const bfd_byte *addr;
{
{
  return (((((bfd_vma)addr[1] << 8) | addr[0]) << 8)
  return (((((bfd_vma)addr[1] << 8) | addr[0]) << 8)
          | addr[3]) << 8 | addr[2];
          | addr[3]) << 8 | addr[2];
}
}
 
 
#define COERCE32(x) (((bfd_signed_vma) (x) ^ 0x80000000) - 0x80000000)
#define COERCE32(x) (((bfd_signed_vma) (x) ^ 0x80000000) - 0x80000000)
 
 
bfd_signed_vma
bfd_signed_vma
bfd_getp_signed_32 (addr)
bfd_getp_signed_32 (addr)
     const bfd_byte *addr;
     const bfd_byte *addr;
{
{
  return COERCE32((((((bfd_vma)addr[1] << 8) | addr[0]) << 8)
  return COERCE32((((((bfd_vma)addr[1] << 8) | addr[0]) << 8)
                   | addr[3]) << 8 | addr[2]);
                   | addr[3]) << 8 | addr[2]);
}
}
 
 
void
void
bfd_putp32 (data, addr)
bfd_putp32 (data, addr)
     bfd_vma data;
     bfd_vma data;
     bfd_byte *addr;
     bfd_byte *addr;
{
{
  addr[0] = (bfd_byte)(data >> 16);
  addr[0] = (bfd_byte)(data >> 16);
  addr[1] = (bfd_byte)(data >> 24);
  addr[1] = (bfd_byte)(data >> 24);
  addr[2] = (bfd_byte)data;
  addr[2] = (bfd_byte)data;
  addr[3] = (bfd_byte)(data >>  8);
  addr[3] = (bfd_byte)(data >>  8);
}
}
 
 

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