1 /* Support for the generic parts of PE/PEI, for BFD.
2 Copyright (C) 1995-2024 Free Software Foundation, Inc.
3 Written by Cygnus Solutions.
5 This file is part of BFD, the Binary File Descriptor library.
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3 of the License, or
10 (at your option) any later version.
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
17 You should have received a copy of the GNU General Public License
18 along with this program; if not, write to the Free Software
19 Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
20 MA 02110-1301, USA. */
23 /* Most of this hacked by Steve Chamberlain,
26 PE/PEI rearrangement (and code added): Donn Terry
27 Softway Systems, Inc. */
29 /* Hey look, some documentation [and in a place you expect to find it]!
31 The main reference for the pei format is "Microsoft Portable Executable
32 and Common Object File Format Specification 4.1". Get it if you need to
33 do some serious hacking on this code.
36 "Peering Inside the PE: A Tour of the Win32 Portable Executable
37 File Format", MSJ 1994, Volume 9.
39 The *sole* difference between the pe format and the pei format is that the
40 latter has an MSDOS 2.0 .exe header on the front that prints the message
41 "This app must be run under Windows." (or some such).
42 (FIXME: Whether that statement is *really* true or not is unknown.
43 Are there more subtle differences between pe and pei formats?
44 For now assume there aren't. If you find one, then for God sakes
47 The Microsoft docs use the word "image" instead of "executable" because
48 the former can also refer to a DLL (shared library). Confusion can arise
49 because the `i' in `pei' also refers to "image". The `pe' format can
50 also create images (i.e. executables), it's just that to run on a win32
51 system you need to use the pei format.
53 FIXME: Please add more docs here so the next poor fool that has to hack
54 on this code has a chance of getting something accomplished without
55 wasting too much time. */
59 static bool (*pe_saved_coff_bfd_print_private_bfd_data
) (bfd
*, void *) =
60 #ifndef coff_bfd_print_private_bfd_data
63 coff_bfd_print_private_bfd_data
;
64 #undef coff_bfd_print_private_bfd_data
67 static bool pe_print_private_bfd_data (bfd
*, void *);
68 #define coff_bfd_print_private_bfd_data pe_print_private_bfd_data
70 static bool (*pe_saved_coff_bfd_copy_private_bfd_data
) (bfd
*, bfd
*) =
71 #ifndef coff_bfd_copy_private_bfd_data
74 coff_bfd_copy_private_bfd_data
;
75 #undef coff_bfd_copy_private_bfd_data
78 static bool pe_bfd_copy_private_bfd_data (bfd
*, bfd
*);
79 #define coff_bfd_copy_private_bfd_data pe_bfd_copy_private_bfd_data
81 #define coff_mkobject pe_mkobject
82 #define coff_mkobject_hook pe_mkobject_hook
84 #ifdef COFF_IMAGE_WITH_PE
85 /* This structure contains static variables used by the ILF code. */
86 typedef asection
* asection_ptr
;
92 struct bfd_in_memory
* bim
;
96 unsigned int relcount
;
98 coff_symbol_type
* sym_cache
;
99 coff_symbol_type
* sym_ptr
;
100 unsigned int sym_index
;
102 unsigned int * sym_table
;
103 unsigned int * table_ptr
;
105 combined_entry_type
* native_syms
;
106 combined_entry_type
* native_ptr
;
108 coff_symbol_type
** sym_ptr_table
;
109 coff_symbol_type
** sym_ptr_ptr
;
111 unsigned int sec_index
;
115 char * end_string_ptr
;
120 struct internal_reloc
* int_reltab
;
123 #endif /* COFF_IMAGE_WITH_PE */
125 bfd_cleanup coff_real_object_p
126 (bfd
*, unsigned, struct internal_filehdr
*, struct internal_aouthdr
*);
128 #ifndef NO_COFF_RELOCS
130 coff_swap_reloc_in (bfd
* abfd
, void * src
, void * dst
)
132 RELOC
*reloc_src
= (RELOC
*) src
;
133 struct internal_reloc
*reloc_dst
= (struct internal_reloc
*) dst
;
135 reloc_dst
->r_vaddr
= H_GET_32 (abfd
, reloc_src
->r_vaddr
);
136 reloc_dst
->r_symndx
= H_GET_S32 (abfd
, reloc_src
->r_symndx
);
137 reloc_dst
->r_type
= H_GET_16 (abfd
, reloc_src
->r_type
);
138 #ifdef SWAP_IN_RELOC_OFFSET
139 reloc_dst
->r_offset
= SWAP_IN_RELOC_OFFSET (abfd
, reloc_src
->r_offset
);
144 coff_swap_reloc_out (bfd
* abfd
, void * src
, void * dst
)
146 struct internal_reloc
*reloc_src
= (struct internal_reloc
*) src
;
147 struct external_reloc
*reloc_dst
= (struct external_reloc
*) dst
;
149 H_PUT_32 (abfd
, reloc_src
->r_vaddr
, reloc_dst
->r_vaddr
);
150 H_PUT_32 (abfd
, reloc_src
->r_symndx
, reloc_dst
->r_symndx
);
151 H_PUT_16 (abfd
, reloc_src
->r_type
, reloc_dst
->r_type
);
153 #ifdef SWAP_OUT_RELOC_OFFSET
154 SWAP_OUT_RELOC_OFFSET (abfd
, reloc_src
->r_offset
, reloc_dst
->r_offset
);
156 #ifdef SWAP_OUT_RELOC_EXTRA
157 SWAP_OUT_RELOC_EXTRA (abfd
, reloc_src
, reloc_dst
);
161 #endif /* not NO_COFF_RELOCS */
163 #ifdef COFF_IMAGE_WITH_PE
165 #define FILHDR struct external_PEI_IMAGE_hdr
169 coff_swap_filehdr_in (bfd
* abfd
, void * src
, void * dst
)
171 FILHDR
*filehdr_src
= (FILHDR
*) src
;
172 struct internal_filehdr
*filehdr_dst
= (struct internal_filehdr
*) dst
;
174 filehdr_dst
->f_magic
= H_GET_16 (abfd
, filehdr_src
->f_magic
);
175 filehdr_dst
->f_nscns
= H_GET_16 (abfd
, filehdr_src
->f_nscns
);
176 filehdr_dst
->f_timdat
= H_GET_32 (abfd
, filehdr_src
->f_timdat
);
177 filehdr_dst
->f_nsyms
= H_GET_32 (abfd
, filehdr_src
->f_nsyms
);
178 filehdr_dst
->f_flags
= H_GET_16 (abfd
, filehdr_src
->f_flags
);
179 filehdr_dst
->f_symptr
= H_GET_32 (abfd
, filehdr_src
->f_symptr
);
181 /* Other people's tools sometimes generate headers with an nsyms but
183 if (filehdr_dst
->f_nsyms
!= 0 && filehdr_dst
->f_symptr
== 0)
185 filehdr_dst
->f_nsyms
= 0;
186 filehdr_dst
->f_flags
|= F_LSYMS
;
189 filehdr_dst
->f_opthdr
= H_GET_16 (abfd
, filehdr_src
-> f_opthdr
);
192 #ifdef COFF_IMAGE_WITH_PE
193 # define coff_swap_filehdr_out _bfd_XXi_only_swap_filehdr_out
194 #elif defined COFF_WITH_peAArch64
195 # define coff_swap_filehdr_out _bfd_XX_only_swap_filehdr_out
196 #elif defined COFF_WITH_pex64
197 # define coff_swap_filehdr_out _bfd_pex64_only_swap_filehdr_out
198 #elif defined COFF_WITH_pep
199 # define coff_swap_filehdr_out _bfd_pep_only_swap_filehdr_out
201 # define coff_swap_filehdr_out _bfd_pe_only_swap_filehdr_out
205 coff_swap_scnhdr_in (bfd
* abfd
, void * ext
, void * in
)
207 SCNHDR
*scnhdr_ext
= (SCNHDR
*) ext
;
208 struct internal_scnhdr
*scnhdr_int
= (struct internal_scnhdr
*) in
;
210 memcpy (scnhdr_int
->s_name
, scnhdr_ext
->s_name
, sizeof (scnhdr_int
->s_name
));
212 scnhdr_int
->s_vaddr
= GET_SCNHDR_VADDR (abfd
, scnhdr_ext
->s_vaddr
);
213 scnhdr_int
->s_paddr
= GET_SCNHDR_PADDR (abfd
, scnhdr_ext
->s_paddr
);
214 scnhdr_int
->s_size
= GET_SCNHDR_SIZE (abfd
, scnhdr_ext
->s_size
);
215 scnhdr_int
->s_scnptr
= GET_SCNHDR_SCNPTR (abfd
, scnhdr_ext
->s_scnptr
);
216 scnhdr_int
->s_relptr
= GET_SCNHDR_RELPTR (abfd
, scnhdr_ext
->s_relptr
);
217 scnhdr_int
->s_lnnoptr
= GET_SCNHDR_LNNOPTR (abfd
, scnhdr_ext
->s_lnnoptr
);
218 scnhdr_int
->s_flags
= H_GET_32 (abfd
, scnhdr_ext
->s_flags
);
220 /* MS handles overflow of line numbers by carrying into the reloc
221 field (it appears). Since it's supposed to be zero for PE
222 *IMAGE* format, that's safe. This is still a bit iffy. */
223 #ifdef COFF_IMAGE_WITH_PE
224 scnhdr_int
->s_nlnno
= (H_GET_16 (abfd
, scnhdr_ext
->s_nlnno
)
225 + (H_GET_16 (abfd
, scnhdr_ext
->s_nreloc
) << 16));
226 scnhdr_int
->s_nreloc
= 0;
228 scnhdr_int
->s_nreloc
= H_GET_16 (abfd
, scnhdr_ext
->s_nreloc
);
229 scnhdr_int
->s_nlnno
= H_GET_16 (abfd
, scnhdr_ext
->s_nlnno
);
232 if (scnhdr_int
->s_vaddr
!= 0)
234 scnhdr_int
->s_vaddr
+= pe_data (abfd
)->pe_opthdr
.ImageBase
;
235 /* Do not cut upper 32-bits for 64-bit vma. */
236 #if !defined(COFF_WITH_pex64) && !defined(COFF_WITH_peAArch64) && !defined(COFF_WITH_peLoongArch64) && !defined(COFF_WITH_peRiscV64)
237 scnhdr_int
->s_vaddr
&= 0xffffffff;
241 #ifndef COFF_NO_HACK_SCNHDR_SIZE
242 /* If this section holds uninitialized data and is from an object file
243 or from an executable image that has not initialized the field,
244 or if the image is an executable file and the physical size is padded,
245 use the virtual size (stored in s_paddr) instead. */
246 if (scnhdr_int
->s_paddr
> 0
247 && (((scnhdr_int
->s_flags
& IMAGE_SCN_CNT_UNINITIALIZED_DATA
) != 0
248 && (! bfd_pei_p (abfd
) || scnhdr_int
->s_size
== 0))
249 || (bfd_pei_p (abfd
) && (scnhdr_int
->s_size
> scnhdr_int
->s_paddr
))))
250 /* This code used to set scnhdr_int->s_paddr to 0. However,
251 coff_set_alignment_hook stores s_paddr in virt_size, which
252 only works if it correctly holds the virtual size of the
254 scnhdr_int
->s_size
= scnhdr_int
->s_paddr
;
259 pe_mkobject (bfd
* abfd
)
261 /* Some x86 code followed by an ascii string. */
262 static const char default_dos_message
[64] = {
263 0x0e, 0x1f, 0xba, 0x0e, 0x00, 0xb4, 0x09, 0xcd,
264 0x21, 0xb8, 0x01, 0x4c, 0xcd, 0x21, 0x54, 0x68,
265 0x69, 0x73, 0x20, 0x70, 0x72, 0x6f, 0x67, 0x72,
266 0x61, 0x6d, 0x20, 0x63, 0x61, 0x6e, 0x6e, 0x6f,
267 0x74, 0x20, 0x62, 0x65, 0x20, 0x72, 0x75, 0x6e,
268 0x20, 0x69, 0x6e, 0x20, 0x44, 0x4f, 0x53, 0x20,
269 0x6d, 0x6f, 0x64, 0x65, 0x2e, 0x0d, 0x0d, 0x0a,
270 0x24, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00 };
272 pe_data_type
*pe
= bfd_zalloc (abfd
, sizeof (*pe
));
273 abfd
->tdata
.pe_obj_data
= pe
;
279 /* in_reloc_p is architecture dependent. */
280 pe
->in_reloc_p
= in_reloc_p
;
282 memcpy (pe
->dos_message
, default_dos_message
, sizeof (pe
->dos_message
));
284 bfd_coff_long_section_names (abfd
)
285 = coff_backend_info (abfd
)->_bfd_coff_long_section_names
;
290 /* Create the COFF backend specific information. */
293 pe_mkobject_hook (bfd
* abfd
,
295 void * aouthdr ATTRIBUTE_UNUSED
)
297 struct internal_filehdr
*internal_f
= (struct internal_filehdr
*) filehdr
;
300 if (! pe_mkobject (abfd
))
304 pe
->coff
.sym_filepos
= internal_f
->f_symptr
;
305 /* These members communicate important constants about the symbol
306 table to GDB's symbol-reading code. These `constants'
307 unfortunately vary among coff implementations... */
308 pe
->coff
.local_n_btmask
= N_BTMASK
;
309 pe
->coff
.local_n_btshft
= N_BTSHFT
;
310 pe
->coff
.local_n_tmask
= N_TMASK
;
311 pe
->coff
.local_n_tshift
= N_TSHIFT
;
312 pe
->coff
.local_symesz
= SYMESZ
;
313 pe
->coff
.local_auxesz
= AUXESZ
;
314 pe
->coff
.local_linesz
= LINESZ
;
316 pe
->coff
.timestamp
= internal_f
->f_timdat
;
318 obj_raw_syment_count (abfd
) =
319 obj_conv_table_size (abfd
) =
322 pe
->real_flags
= internal_f
->f_flags
;
324 if ((internal_f
->f_flags
& F_DLL
) != 0)
327 if ((internal_f
->f_flags
& IMAGE_FILE_DEBUG_STRIPPED
) == 0)
328 abfd
->flags
|= HAS_DEBUG
;
330 #ifdef COFF_IMAGE_WITH_PE
332 pe
->pe_opthdr
= ((struct internal_aouthdr
*) aouthdr
)->pe
;
336 if (! _bfd_coff_arm_set_private_flags (abfd
, internal_f
->f_flags
))
337 coff_data (abfd
) ->flags
= 0;
340 memcpy (pe
->dos_message
, internal_f
->pe
.dos_message
,
341 sizeof (pe
->dos_message
));
347 pe_print_private_bfd_data (bfd
*abfd
, void * vfile
)
349 FILE *file
= (FILE *) vfile
;
351 if (!_bfd_XX_print_private_bfd_data_common (abfd
, vfile
))
354 if (pe_saved_coff_bfd_print_private_bfd_data
== NULL
)
359 return pe_saved_coff_bfd_print_private_bfd_data (abfd
, vfile
);
362 /* Copy any private info we understand from the input bfd
363 to the output bfd. */
366 pe_bfd_copy_private_bfd_data (bfd
*ibfd
, bfd
*obfd
)
368 /* PR binutils/716: Copy the large address aware flag.
369 XXX: Should we be copying other flags or other fields in the pe_data()
371 if (pe_data (obfd
) != NULL
372 && pe_data (ibfd
) != NULL
373 && pe_data (ibfd
)->real_flags
& IMAGE_FILE_LARGE_ADDRESS_AWARE
)
374 pe_data (obfd
)->real_flags
|= IMAGE_FILE_LARGE_ADDRESS_AWARE
;
376 if (!_bfd_XX_bfd_copy_private_bfd_data_common (ibfd
, obfd
))
379 if (pe_saved_coff_bfd_copy_private_bfd_data
)
380 return pe_saved_coff_bfd_copy_private_bfd_data (ibfd
, obfd
);
385 #define coff_bfd_copy_private_section_data \
386 _bfd_XX_bfd_copy_private_section_data
388 #define coff_get_symbol_info _bfd_XX_get_symbol_info
390 #ifdef COFF_IMAGE_WITH_PE
392 /* Code to handle Microsoft's Import Library Format.
393 Also known as LINK6 format.
394 Documentation about this format can be found at:
396 https://learn.microsoft.com/en-us/windows/win32/debug/pe-format#import-library-format */
398 /* The following constants specify the sizes of the various data
399 structures that we have to create in order to build a bfd describing
400 an ILF object file. The final "+ 1" in the definitions of SIZEOF_IDATA6
401 and SIZEOF_IDATA7 below is to allow for the possibility that we might
402 need a padding byte in order to ensure 16 bit alignment for the section's
405 The value for SIZEOF_ILF_STRINGS is computed as follows:
407 There will be NUM_ILF_SECTIONS section symbols. Allow 9 characters
408 per symbol for their names (longest section name is .idata$x).
410 There will be two symbols for the imported value, one the symbol name
411 and one with _imp__ prefixed. Allowing for the terminating nul's this
412 is strlen (symbol_name) * 2 + 8 + 21 + strlen (source_dll).
414 The strings in the string table must start STRING__SIZE_SIZE bytes into
415 the table in order to for the string lookup code in coffgen/coffcode to
417 #define NUM_ILF_RELOCS 8
418 #define NUM_ILF_SECTIONS 6
419 #define NUM_ILF_SYMS (2 + NUM_ILF_SECTIONS)
421 #define SIZEOF_ILF_SYMS (NUM_ILF_SYMS * sizeof (* vars.sym_cache))
422 #define SIZEOF_ILF_SYM_TABLE (NUM_ILF_SYMS * sizeof (* vars.sym_table))
423 #define SIZEOF_ILF_NATIVE_SYMS (NUM_ILF_SYMS * sizeof (* vars.native_syms))
424 #define SIZEOF_ILF_SYM_PTR_TABLE (NUM_ILF_SYMS * sizeof (* vars.sym_ptr_table))
425 #define SIZEOF_ILF_EXT_SYMS (NUM_ILF_SYMS * sizeof (* vars.esym_table))
426 #define SIZEOF_ILF_RELOCS (NUM_ILF_RELOCS * sizeof (* vars.reltab))
427 #define SIZEOF_ILF_INT_RELOCS (NUM_ILF_RELOCS * sizeof (* vars.int_reltab))
428 #define SIZEOF_ILF_STRINGS (strlen (symbol_name) * 2 + 8 \
429 + 21 + strlen (source_dll) \
430 + NUM_ILF_SECTIONS * 9 \
432 #define SIZEOF_IDATA2 (5 * 4)
434 /* For PEx64 idata4 & 5 have thumb size of 8 bytes. */
435 #if defined(COFF_WITH_pex64) || defined(COFF_WITH_peAArch64)
436 #define SIZEOF_IDATA4 (2 * 4)
437 #define SIZEOF_IDATA5 (2 * 4)
439 #define SIZEOF_IDATA4 (1 * 4)
440 #define SIZEOF_IDATA5 (1 * 4)
443 #define SIZEOF_IDATA6 (2 + strlen (symbol_name) + 1 + 1)
444 #define SIZEOF_IDATA7 (strlen (source_dll) + 1 + 1)
445 #define SIZEOF_ILF_SECTIONS (NUM_ILF_SECTIONS * sizeof (struct coff_section_tdata))
447 #define ILF_DATA_SIZE \
449 + SIZEOF_ILF_SYM_TABLE \
450 + SIZEOF_ILF_NATIVE_SYMS \
451 + SIZEOF_ILF_SYM_PTR_TABLE \
452 + SIZEOF_ILF_EXT_SYMS \
453 + SIZEOF_ILF_RELOCS \
454 + SIZEOF_ILF_INT_RELOCS \
455 + SIZEOF_ILF_STRINGS \
461 + SIZEOF_ILF_SECTIONS \
462 + MAX_TEXT_SECTION_SIZE
464 /* Create an empty relocation against the given symbol. */
467 pe_ILF_make_a_symbol_reloc (pe_ILF_vars
* vars
,
469 bfd_reloc_code_real_type reloc
,
470 struct bfd_symbol
** sym
,
471 unsigned int sym_index
)
474 struct internal_reloc
* internal
;
476 entry
= vars
->reltab
+ vars
->relcount
;
477 internal
= vars
->int_reltab
+ vars
->relcount
;
479 entry
->address
= address
;
481 entry
->howto
= bfd_reloc_type_lookup (vars
->abfd
, reloc
);
482 entry
->sym_ptr_ptr
= sym
;
484 internal
->r_vaddr
= address
;
485 internal
->r_symndx
= sym_index
;
486 internal
->r_type
= entry
->howto
? entry
->howto
->type
: 0;
490 BFD_ASSERT (vars
->relcount
<= NUM_ILF_RELOCS
);
493 /* Create an empty relocation against the given section. */
496 pe_ILF_make_a_reloc (pe_ILF_vars
* vars
,
498 bfd_reloc_code_real_type reloc
,
501 pe_ILF_make_a_symbol_reloc (vars
, address
, reloc
, sec
->symbol_ptr_ptr
,
502 coff_section_data (vars
->abfd
, sec
)->i
);
505 /* Move the queued relocs into the given section. */
508 pe_ILF_save_relocs (pe_ILF_vars
* vars
,
511 /* Make sure that there is somewhere to store the internal relocs. */
512 if (coff_section_data (vars
->abfd
, sec
) == NULL
)
513 /* We should probably return an error indication here. */
516 coff_section_data (vars
->abfd
, sec
)->relocs
= vars
->int_reltab
;
518 sec
->relocation
= vars
->reltab
;
519 sec
->reloc_count
= vars
->relcount
;
520 sec
->flags
|= SEC_RELOC
;
522 vars
->reltab
+= vars
->relcount
;
523 vars
->int_reltab
+= vars
->relcount
;
526 BFD_ASSERT ((bfd_byte
*) vars
->int_reltab
< (bfd_byte
*) vars
->string_table
);
529 /* Create a global symbol and add it to the relevant tables. */
532 pe_ILF_make_a_symbol (pe_ILF_vars
* vars
,
534 const char * symbol_name
,
535 asection_ptr section
,
536 flagword extra_flags
)
538 coff_symbol_type
* sym
;
539 combined_entry_type
* ent
;
541 unsigned short sclass
;
543 if (extra_flags
& BSF_LOCAL
)
549 if (vars
->magic
== THUMBPEMAGIC
)
551 if (extra_flags
& BSF_FUNCTION
)
552 sclass
= C_THUMBEXTFUNC
;
553 else if (extra_flags
& BSF_LOCAL
)
554 sclass
= C_THUMBSTAT
;
560 BFD_ASSERT (vars
->sym_index
< NUM_ILF_SYMS
);
563 ent
= vars
->native_ptr
;
564 esym
= vars
->esym_ptr
;
566 /* Copy the symbol's name into the string table. */
567 int len
= sprintf (vars
->string_ptr
, "%s%s", prefix
, symbol_name
);
570 section
= bfd_und_section_ptr
;
572 /* Initialise the external symbol. */
573 H_PUT_32 (vars
->abfd
, vars
->string_ptr
- vars
->string_table
,
575 H_PUT_16 (vars
->abfd
, section
->target_index
, esym
->e_scnum
);
576 esym
->e_sclass
[0] = sclass
;
578 /* The following initialisations are unnecessary - the memory is
579 zero initialised. They are just kept here as reminders. */
581 /* Initialise the internal symbol structure. */
582 ent
->u
.syment
.n_sclass
= sclass
;
583 ent
->u
.syment
.n_scnum
= section
->target_index
;
584 ent
->u
.syment
._n
._n_n
._n_offset
= (uintptr_t) sym
;
587 sym
->symbol
.the_bfd
= vars
->abfd
;
588 sym
->symbol
.name
= vars
->string_ptr
;
589 sym
->symbol
.flags
= BSF_EXPORT
| BSF_GLOBAL
| extra_flags
;
590 sym
->symbol
.section
= section
;
593 * vars
->table_ptr
= vars
->sym_index
;
594 * vars
->sym_ptr_ptr
= sym
;
596 /* Adjust pointers for the next symbol. */
599 vars
->sym_ptr_ptr
++;
603 vars
->string_ptr
+= len
+ 1;
605 BFD_ASSERT (vars
->string_ptr
< vars
->end_string_ptr
);
608 /* Create a section. */
611 pe_ILF_make_a_section (pe_ILF_vars
* vars
,
614 flagword extra_flags
)
620 sec
= bfd_make_section_old_way (vars
->abfd
, name
);
624 flags
= SEC_HAS_CONTENTS
| SEC_ALLOC
| SEC_LOAD
| SEC_KEEP
| SEC_IN_MEMORY
;
626 bfd_set_section_flags (sec
, flags
| extra_flags
);
628 bfd_set_section_alignment (sec
, 2);
630 /* Check that we will not run out of space. */
631 BFD_ASSERT (vars
->data
+ size
< vars
->bim
->buffer
+ vars
->bim
->size
);
633 /* Set the section size and contents. The actual
634 contents are filled in by our parent. */
635 bfd_set_section_size (sec
, (bfd_size_type
) size
);
636 sec
->contents
= vars
->data
;
637 sec
->target_index
= vars
->sec_index
++;
639 /* Advance data pointer in the vars structure. */
642 /* Skip the padding byte if it was not needed.
643 The logic here is that if the string length is odd,
644 then the entire string length, including the null byte,
645 is even and so the extra, padding byte, is not needed. */
649 /* PR 18758: See note in pe_ILF_buid_a_bfd. We must make sure that we
650 preserve host alignment requirements. The BFD_ASSERTs in this
651 functions will warn us if we run out of room, but we should
652 already have enough padding built in to ILF_DATA_SIZE. */
653 #if GCC_VERSION >= 3000
654 alignment
= __alignof__ (struct coff_section_tdata
);
659 = (bfd_byte
*) (((intptr_t) vars
->data
+ alignment
- 1) & -alignment
);
661 /* Create a coff_section_tdata structure for our use. */
662 sec
->used_by_bfd
= (struct coff_section_tdata
*) vars
->data
;
663 vars
->data
+= sizeof (struct coff_section_tdata
);
665 BFD_ASSERT (vars
->data
<= vars
->bim
->buffer
+ vars
->bim
->size
);
667 /* Create a symbol to refer to this section. */
668 pe_ILF_make_a_symbol (vars
, "", name
, sec
, BSF_LOCAL
);
670 /* Cache the index to the symbol in the coff_section_data structure. */
671 coff_section_data (vars
->abfd
, sec
)->i
= vars
->sym_index
- 1;
676 /* This structure contains the code that goes into the .text section
677 in order to perform a jump into the DLL lookup table. The entries
678 in the table are index by the magic number used to represent the
679 machine type in the PE file. The contents of the data[] arrays in
680 these entries are stolen from the jtab[] arrays in ld/pe-dll.c.
681 The SIZE field says how many bytes in the DATA array are actually
682 used. The OFFSET field says where in the data array the address
683 of the .idata$5 section should be placed. */
684 #define MAX_TEXT_SECTION_SIZE 32
688 unsigned short magic
;
689 unsigned char data
[MAX_TEXT_SECTION_SIZE
];
695 static const jump_table jtab
[] =
699 { 0xff, 0x25, 0x00, 0x00, 0x00, 0x00, 0x90, 0x90 },
706 { 0xff, 0x25, 0x00, 0x00, 0x00, 0x00, 0x90, 0x90 },
713 { /* XXX fill me in */ },
718 #ifdef MIPS_ARCH_MAGIC_WINCE
719 { MIPS_ARCH_MAGIC_WINCE
,
720 { 0x00, 0x00, 0x08, 0x3c, 0x00, 0x00, 0x08, 0x8d,
721 0x08, 0x00, 0x00, 0x01, 0x00, 0x00, 0x00, 0x00 },
726 #ifdef SH_ARCH_MAGIC_WINCE
727 { SH_ARCH_MAGIC_WINCE
,
728 { 0x01, 0xd0, 0x02, 0x60, 0x2b, 0x40,
729 0x09, 0x00, 0x00, 0x00, 0x00, 0x00 },
735 /* We don't currently support jumping to DLLs, so if
736 someone does try emit a runtime trap. Through UDF #0. */
738 { 0x00, 0x00, 0x00, 0x00 },
746 { 0x00, 0xc0, 0x9f, 0xe5, 0x00, 0xf0,
747 0x9c, 0xe5, 0x00, 0x00, 0x00, 0x00},
754 { 0x40, 0xb4, 0x02, 0x4e, 0x36, 0x68, 0xb4, 0x46,
755 0x40, 0xbc, 0x60, 0x47, 0x00, 0x00, 0x00, 0x00 },
760 #ifdef LOONGARCH64MAGIC
761 /* We don't currently support jumping to DLLs, so if
762 someone does try emit a runtime trap. Through BREAK 0. */
764 { 0x00, 0x00, 0x2a, 0x00 },
771 /* We don't currently support jumping to DLLs, so if
772 someone does try emit a runtime trap. Through EBREAK. */
774 { 0x73, 0x00, 0x10, 0x00 },
784 #define NUM_ENTRIES(a) (sizeof (a) / sizeof (a)[0])
787 /* Build a full BFD from the information supplied in a ILF object. */
790 pe_ILF_build_a_bfd (bfd
* abfd
,
794 unsigned int ordinal
,
799 struct internal_filehdr internal_f
;
800 unsigned int import_type
;
801 unsigned int import_name_type
;
802 asection_ptr id4
, id5
, id6
= NULL
, text
= NULL
;
803 coff_symbol_type
** imp_sym
;
804 unsigned int imp_index
;
807 /* Decode and verify the types field of the ILF structure. */
808 import_type
= types
& 0x3;
809 import_name_type
= (types
& 0x1c) >> 2;
818 /* XXX code yet to be written. */
819 /* xgettext:c-format */
820 _bfd_error_handler (_("%pB: unhandled import type; %x"),
825 /* xgettext:c-format */
826 _bfd_error_handler (_("%pB: unrecognized import type; %x"),
831 switch (import_name_type
)
835 case IMPORT_NAME_NOPREFIX
:
836 case IMPORT_NAME_UNDECORATE
:
840 /* xgettext:c-format */
841 _bfd_error_handler (_("%pB: unrecognized import name type; %x"),
842 abfd
, import_name_type
);
846 /* Initialise local variables.
848 Note these are kept in a structure rather than being
849 declared as statics since bfd frowns on global variables.
851 We are going to construct the contents of the BFD in memory,
852 so allocate all the space that we will need right now. */
854 = (struct bfd_in_memory
*) bfd_malloc ((bfd_size_type
) sizeof (*vars
.bim
));
855 if (vars
.bim
== NULL
)
858 ptr
= (bfd_byte
*) bfd_zmalloc ((bfd_size_type
) ILF_DATA_SIZE
);
859 vars
.bim
->buffer
= ptr
;
860 vars
.bim
->size
= ILF_DATA_SIZE
;
864 /* Initialise the pointers to regions of the memory and the
865 other contents of the pe_ILF_vars structure as well. */
866 vars
.sym_cache
= (coff_symbol_type
*) ptr
;
867 vars
.sym_ptr
= (coff_symbol_type
*) ptr
;
869 ptr
+= SIZEOF_ILF_SYMS
;
871 vars
.sym_table
= (unsigned int *) ptr
;
872 vars
.table_ptr
= (unsigned int *) ptr
;
873 ptr
+= SIZEOF_ILF_SYM_TABLE
;
875 vars
.native_syms
= (combined_entry_type
*) ptr
;
876 vars
.native_ptr
= (combined_entry_type
*) ptr
;
877 ptr
+= SIZEOF_ILF_NATIVE_SYMS
;
879 vars
.sym_ptr_table
= (coff_symbol_type
**) ptr
;
880 vars
.sym_ptr_ptr
= (coff_symbol_type
**) ptr
;
881 ptr
+= SIZEOF_ILF_SYM_PTR_TABLE
;
883 vars
.esym_table
= (SYMENT
*) ptr
;
884 vars
.esym_ptr
= (SYMENT
*) ptr
;
885 ptr
+= SIZEOF_ILF_EXT_SYMS
;
887 vars
.reltab
= (arelent
*) ptr
;
889 ptr
+= SIZEOF_ILF_RELOCS
;
891 vars
.int_reltab
= (struct internal_reloc
*) ptr
;
892 ptr
+= SIZEOF_ILF_INT_RELOCS
;
894 vars
.string_table
= (char *) ptr
;
895 vars
.string_ptr
= (char *) ptr
+ STRING_SIZE_SIZE
;
896 ptr
+= SIZEOF_ILF_STRINGS
;
897 vars
.end_string_ptr
= (char *) ptr
;
899 /* The remaining space in bim->buffer is used
900 by the pe_ILF_make_a_section() function. */
902 /* PR 18758: Make sure that the data area is sufficiently aligned for
903 struct coff_section_tdata. __alignof__ is a gcc extension, hence
904 the test of GCC_VERSION. For other compilers we assume 8 byte
906 #if GCC_VERSION >= 3000
907 alignment
= __alignof__ (struct coff_section_tdata
);
911 ptr
= (bfd_byte
*) (((intptr_t) ptr
+ alignment
- 1) & -alignment
);
918 /* Create the initial .idata$<n> sections:
919 [.idata$2: Import Directory Table -- not needed]
920 .idata$4: Import Lookup Table
921 .idata$5: Import Address Table
923 Note we do not create a .idata$3 section as this is
924 created for us by the linker script. */
925 id4
= pe_ILF_make_a_section (& vars
, ".idata$4", SIZEOF_IDATA4
, 0);
926 id5
= pe_ILF_make_a_section (& vars
, ".idata$5", SIZEOF_IDATA5
, 0);
927 if (id4
== NULL
|| id5
== NULL
)
930 /* Fill in the contents of these sections. */
931 if (import_name_type
== IMPORT_ORDINAL
)
934 /* See PR 20907 for a reproducer. */
937 #if defined(COFF_WITH_pex64) || defined(COFF_WITH_peAArch64) || defined(COFF_WITH_peLoongArch64) || defined (COFF_WITH_peRiscV64)
938 ((unsigned int *) id4
->contents
)[0] = ordinal
;
939 ((unsigned int *) id4
->contents
)[1] = 0x80000000;
940 ((unsigned int *) id5
->contents
)[0] = ordinal
;
941 ((unsigned int *) id5
->contents
)[1] = 0x80000000;
943 * (unsigned int *) id4
->contents
= ordinal
| 0x80000000;
944 * (unsigned int *) id5
->contents
= ordinal
| 0x80000000;
952 /* Create .idata$6 - the Hint Name Table. */
953 id6
= pe_ILF_make_a_section (& vars
, ".idata$6", SIZEOF_IDATA6
, 0);
957 /* If necessary, trim the import symbol name. */
958 symbol
= symbol_name
;
960 /* As used by MS compiler, '_', '@', and '?' are alternative
961 forms of USER_LABEL_PREFIX, with '?' for c++ mangled names,
962 '@' used for fastcall (in C), '_' everywhere else. Only one
963 of these is used for a symbol. We strip this leading char for
964 IMPORT_NAME_NOPREFIX and IMPORT_NAME_UNDECORATE as per the
965 PE COFF 6.0 spec (section 8.3, Import Name Type). */
967 if (import_name_type
!= IMPORT_NAME
)
971 /* Check that we don't remove for targets with empty
972 USER_LABEL_PREFIX the leading underscore. */
973 if ((c
== '_' && abfd
->xvec
->symbol_leading_char
!= 0)
974 || c
== '@' || c
== '?')
978 len
= strlen (symbol
);
979 if (import_name_type
== IMPORT_NAME_UNDECORATE
)
981 /* Truncate at the first '@'. */
982 char *at
= strchr (symbol
, '@');
988 id6
->contents
[0] = ordinal
& 0xff;
989 id6
->contents
[1] = ordinal
>> 8;
991 memcpy ((char *) id6
->contents
+ 2, symbol
, len
);
992 id6
->contents
[len
+ 2] = '\0';
995 if (import_name_type
!= IMPORT_ORDINAL
)
997 pe_ILF_make_a_reloc (&vars
, (bfd_vma
) 0, BFD_RELOC_RVA
, id6
);
998 pe_ILF_save_relocs (&vars
, id4
);
1000 pe_ILF_make_a_reloc (&vars
, (bfd_vma
) 0, BFD_RELOC_RVA
, id6
);
1001 pe_ILF_save_relocs (&vars
, id5
);
1004 /* Create an import symbol. */
1005 pe_ILF_make_a_symbol (& vars
, "__imp_", symbol_name
, id5
, 0);
1006 imp_sym
= vars
.sym_ptr_ptr
- 1;
1007 imp_index
= vars
.sym_index
- 1;
1009 /* Create extra sections depending upon the type of import we are dealing with. */
1010 switch (import_type
)
1015 /* CODE functions are special, in that they get a trampoline that
1016 jumps to the main import symbol. Create a .text section to hold it.
1017 First we need to look up its contents in the jump table. */
1018 for (i
= NUM_ENTRIES (jtab
); i
--;)
1020 if (jtab
[i
].size
== 0)
1022 if (jtab
[i
].magic
== magic
)
1025 /* If we did not find a matching entry something is wrong. */
1029 /* Create the .text section. */
1030 text
= pe_ILF_make_a_section (& vars
, ".text", jtab
[i
].size
, SEC_CODE
);
1034 /* Copy in the jump code. */
1035 memcpy (text
->contents
, jtab
[i
].data
, jtab
[i
].size
);
1037 /* Create a reloc for the data in the text section. */
1038 #ifdef MIPS_ARCH_MAGIC_WINCE
1039 if (magic
== MIPS_ARCH_MAGIC_WINCE
)
1041 pe_ILF_make_a_symbol_reloc (&vars
, (bfd_vma
) 0, BFD_RELOC_HI16_S
,
1042 (struct bfd_symbol
**) imp_sym
,
1044 pe_ILF_make_a_reloc (&vars
, (bfd_vma
) 0, BFD_RELOC_LO16
, text
);
1045 pe_ILF_make_a_symbol_reloc (&vars
, (bfd_vma
) 4, BFD_RELOC_LO16
,
1046 (struct bfd_symbol
**) imp_sym
,
1052 if (magic
== AMD64MAGIC
)
1054 pe_ILF_make_a_symbol_reloc (&vars
, (bfd_vma
) jtab
[i
].offset
,
1055 BFD_RELOC_32_PCREL
, (asymbol
**) imp_sym
,
1060 pe_ILF_make_a_symbol_reloc (&vars
, (bfd_vma
) jtab
[i
].offset
,
1061 BFD_RELOC_32
, (asymbol
**) imp_sym
,
1064 pe_ILF_save_relocs (& vars
, text
);
1071 /* XXX code not yet written. */
1075 /* Now create a symbol describing the imported value. */
1076 switch (import_type
)
1079 pe_ILF_make_a_symbol (& vars
, "", symbol_name
, text
,
1080 BSF_NOT_AT_END
| BSF_FUNCTION
);
1085 /* Nothing to do here. */
1089 /* XXX code not yet written. */
1093 /* Create an import symbol for the DLL, without the .dll suffix. */
1094 ptr
= (bfd_byte
*) strrchr (source_dll
, '.');
1097 pe_ILF_make_a_symbol (& vars
, "__IMPORT_DESCRIPTOR_", source_dll
, NULL
, 0);
1101 /* Initialise the bfd. */
1102 memset (& internal_f
, 0, sizeof (internal_f
));
1104 internal_f
.f_magic
= magic
;
1105 internal_f
.f_symptr
= 0;
1106 internal_f
.f_nsyms
= 0;
1107 internal_f
.f_flags
= F_AR32WR
| F_LNNO
; /* XXX is this correct ? */
1109 if ( ! bfd_set_start_address (abfd
, (bfd_vma
) 0)
1110 || ! bfd_coff_set_arch_mach_hook (abfd
, & internal_f
))
1113 if (bfd_coff_mkobject_hook (abfd
, (void *) & internal_f
, NULL
) == NULL
)
1116 obj_pe (abfd
) = true;
1118 if (vars
.magic
== THUMBPEMAGIC
)
1119 /* Stop some linker warnings about thumb code not supporting interworking. */
1120 coff_data (abfd
)->flags
|= F_INTERWORK
| F_INTERWORK_SET
;
1123 /* Switch from file contents to memory contents. */
1124 bfd_cache_close (abfd
);
1126 abfd
->iostream
= (void *) vars
.bim
;
1127 abfd
->flags
|= BFD_IN_MEMORY
| HAS_SYMS
;
1128 abfd
->iovec
= &_bfd_memory_iovec
;
1132 obj_sym_filepos (abfd
) = 0;
1134 /* Point the bfd at the symbol table. */
1135 obj_symbols (abfd
) = vars
.sym_cache
;
1136 abfd
->symcount
= vars
.sym_index
;
1138 obj_raw_syments (abfd
) = vars
.native_syms
;
1139 obj_raw_syment_count (abfd
) = vars
.sym_index
;
1141 obj_coff_external_syms (abfd
) = (void *) vars
.esym_table
;
1142 obj_coff_keep_syms (abfd
) = true;
1144 obj_convert (abfd
) = vars
.sym_table
;
1145 obj_conv_table_size (abfd
) = vars
.sym_index
;
1147 obj_coff_strings (abfd
) = vars
.string_table
;
1148 obj_coff_strings_len (abfd
) = vars
.string_ptr
- vars
.string_table
;
1149 obj_coff_keep_strings (abfd
) = true;
1154 free (vars
.bim
->buffer
);
1159 /* Cleanup function, returned from check_format hook. */
1162 pe_ILF_cleanup (bfd
*abfd
)
1164 coff_object_cleanup (abfd
);
1166 struct bfd_in_memory
*bim
= abfd
->iostream
;
1169 abfd
->iostream
= NULL
;
1172 /* We have detected an Import Library Format archive element.
1173 Decode the element and return the appropriate target. */
1176 pe_ILF_object_p (bfd
* abfd
)
1178 bfd_byte buffer
[14];
1182 unsigned int machine
;
1184 unsigned int ordinal
;
1188 /* Upon entry the first six bytes of the ILF header have
1189 already been read. Now read the rest of the header. */
1190 if (bfd_read (buffer
, 14, abfd
) != 14)
1195 machine
= H_GET_16 (abfd
, ptr
);
1198 /* Check that the machine type is recognised. */
1203 case IMAGE_FILE_MACHINE_UNKNOWN
:
1204 case IMAGE_FILE_MACHINE_ALPHA
:
1205 case IMAGE_FILE_MACHINE_ALPHA64
:
1206 case IMAGE_FILE_MACHINE_IA64
:
1209 case IMAGE_FILE_MACHINE_I386
:
1215 case IMAGE_FILE_MACHINE_AMD64
:
1221 case IMAGE_FILE_MACHINE_R3000
:
1222 case IMAGE_FILE_MACHINE_R4000
:
1223 case IMAGE_FILE_MACHINE_R10000
:
1225 case IMAGE_FILE_MACHINE_MIPS16
:
1226 case IMAGE_FILE_MACHINE_MIPSFPU
:
1227 case IMAGE_FILE_MACHINE_MIPSFPU16
:
1228 #ifdef MIPS_ARCH_MAGIC_WINCE
1229 magic
= MIPS_ARCH_MAGIC_WINCE
;
1233 case IMAGE_FILE_MACHINE_SH3
:
1234 case IMAGE_FILE_MACHINE_SH4
:
1235 #ifdef SH_ARCH_MAGIC_WINCE
1236 magic
= SH_ARCH_MAGIC_WINCE
;
1240 case IMAGE_FILE_MACHINE_ARM
:
1246 case IMAGE_FILE_MACHINE_ARM64
:
1248 magic
= AARCH64MAGIC
;
1252 case IMAGE_FILE_MACHINE_LOONGARCH64
:
1253 #ifdef LOONGARCH64MAGIC
1254 magic
= LOONGARCH64MAGIC
;
1258 case IMAGE_FILE_MACHINE_RISCV64
:
1260 magic
= RISCV64MAGIC
;
1264 case IMAGE_FILE_MACHINE_THUMB
:
1267 extern const bfd_target TARGET_LITTLE_SYM
;
1269 if (abfd
->xvec
== & TARGET_LITTLE_SYM
)
1270 magic
= THUMBPEMAGIC
;
1275 case IMAGE_FILE_MACHINE_POWERPC
:
1276 /* We no longer support PowerPC. */
1279 /* xgettext:c-format */
1280 (_("%pB: unrecognised machine type (0x%x)"
1281 " in Import Library Format archive"),
1283 bfd_set_error (bfd_error_malformed_archive
);
1292 /* xgettext:c-format */
1293 (_("%pB: recognised but unhandled machine type (0x%x)"
1294 " in Import Library Format archive"),
1296 bfd_set_error (bfd_error_wrong_format
);
1301 /* We do not bother to check the date.
1302 date = H_GET_32 (abfd, ptr); */
1305 size
= H_GET_32 (abfd
, ptr
);
1311 (_("%pB: size field is zero in Import Library Format header"), abfd
);
1312 bfd_set_error (bfd_error_malformed_archive
);
1317 ordinal
= H_GET_16 (abfd
, ptr
);
1320 types
= H_GET_16 (abfd
, ptr
);
1323 /* Now read in the two strings that follow. */
1324 ptr
= (bfd_byte
*) _bfd_alloc_and_read (abfd
, size
, size
);
1328 symbol_name
= (char *) ptr
;
1329 /* See PR 20905 for an example of where the strnlen is necessary. */
1330 source_dll
= symbol_name
+ strnlen (symbol_name
, size
- 1) + 1;
1332 /* Verify that the strings are null terminated. */
1333 if (ptr
[size
- 1] != 0
1334 || (bfd_size_type
) ((bfd_byte
*) source_dll
- ptr
) >= size
)
1337 (_("%pB: string not null terminated in ILF object file"), abfd
);
1338 bfd_set_error (bfd_error_malformed_archive
);
1339 bfd_release (abfd
, ptr
);
1343 /* Now construct the bfd. */
1344 if (! pe_ILF_build_a_bfd (abfd
, magic
, symbol_name
,
1345 source_dll
, ordinal
, types
))
1347 bfd_release (abfd
, ptr
);
1351 return pe_ILF_cleanup
;
1355 pe_bfd_read_buildid (bfd
*abfd
)
1357 pe_data_type
*pe
= pe_data (abfd
);
1358 struct internal_extra_pe_aouthdr
*extra
= &pe
->pe_opthdr
;
1361 bfd_size_type dataoff
;
1363 bfd_vma addr
= extra
->DataDirectory
[PE_DEBUG_DATA
].VirtualAddress
;
1364 bfd_size_type size
= extra
->DataDirectory
[PE_DEBUG_DATA
].Size
;
1369 addr
+= extra
->ImageBase
;
1371 /* Search for the section containing the DebugDirectory. */
1372 for (section
= abfd
->sections
; section
!= NULL
; section
= section
->next
)
1374 if ((addr
>= section
->vma
) && (addr
< (section
->vma
+ section
->size
)))
1378 if (section
== NULL
)
1381 if (!(section
->flags
& SEC_HAS_CONTENTS
))
1384 dataoff
= addr
- section
->vma
;
1386 /* PR 20605 and 22373: Make sure that the data is really there.
1387 Note - since we are dealing with unsigned quantities we have
1388 to be careful to check for potential overflows. */
1389 if (dataoff
>= section
->size
1390 || size
> section
->size
- dataoff
)
1393 (_("%pB: error: debug data ends beyond end of debug directory"),
1398 /* Read the whole section. */
1399 if (!bfd_malloc_and_get_section (abfd
, section
, &data
))
1405 /* Search for a CodeView entry in the DebugDirectory */
1406 for (i
= 0; i
< size
/ sizeof (struct external_IMAGE_DEBUG_DIRECTORY
); i
++)
1408 struct external_IMAGE_DEBUG_DIRECTORY
*ext
1409 = &((struct external_IMAGE_DEBUG_DIRECTORY
*)(data
+ dataoff
))[i
];
1410 struct internal_IMAGE_DEBUG_DIRECTORY idd
;
1412 _bfd_XXi_swap_debugdir_in (abfd
, ext
, &idd
);
1414 if (idd
.Type
== PE_IMAGE_DEBUG_TYPE_CODEVIEW
)
1416 char buffer
[256 + 1];
1417 CODEVIEW_INFO
*cvinfo
= (CODEVIEW_INFO
*) buffer
;
1420 The debug entry doesn't have to have to be in a section, in which
1421 case AddressOfRawData is 0, so always use PointerToRawData.
1423 if (_bfd_XXi_slurp_codeview_record (abfd
,
1424 (file_ptr
) idd
.PointerToRawData
,
1425 idd
.SizeOfData
, cvinfo
, NULL
))
1427 struct bfd_build_id
* build_id
= bfd_alloc (abfd
,
1428 sizeof (struct bfd_build_id
) + cvinfo
->SignatureLength
);
1431 build_id
->size
= cvinfo
->SignatureLength
;
1432 memcpy(build_id
->data
, cvinfo
->Signature
,
1433 cvinfo
->SignatureLength
);
1434 abfd
->build_id
= build_id
;
1445 pe_bfd_object_p (bfd
* abfd
)
1448 struct external_DOS_hdr dos_hdr
;
1449 struct external_PEI_IMAGE_hdr image_hdr
;
1450 struct internal_filehdr internal_f
;
1451 struct internal_aouthdr internal_a
;
1452 bfd_size_type opt_hdr_size
;
1456 /* Detect if this a Microsoft Import Library Format element. */
1457 /* First read the beginning of the header. */
1458 if (bfd_seek (abfd
, 0, SEEK_SET
) != 0
1459 || bfd_read (buffer
, 6, abfd
) != 6)
1461 if (bfd_get_error () != bfd_error_system_call
)
1462 bfd_set_error (bfd_error_wrong_format
);
1466 /* Then check the magic and the version (only 0 is supported). */
1467 if (H_GET_32 (abfd
, buffer
) == 0xffff0000
1468 && H_GET_16 (abfd
, buffer
+ 4) == 0)
1469 return pe_ILF_object_p (abfd
);
1471 if (bfd_seek (abfd
, 0, SEEK_SET
) != 0
1472 || bfd_read (&dos_hdr
, sizeof (dos_hdr
), abfd
) != sizeof (dos_hdr
))
1474 if (bfd_get_error () != bfd_error_system_call
)
1475 bfd_set_error (bfd_error_wrong_format
);
1479 /* There are really two magic numbers involved; the magic number
1480 that says this is a NT executable (PEI) and the magic number that
1481 determines the architecture. The former is IMAGE_DOS_SIGNATURE, stored in
1482 the e_magic field. The latter is stored in the f_magic field.
1483 If the NT magic number isn't valid, the architecture magic number
1484 could be mimicked by some other field (specifically, the number
1485 of relocs in section 3). Since this routine can only be called
1486 correctly for a PEI file, check the e_magic number here, and, if
1487 it doesn't match, clobber the f_magic number so that we don't get
1489 if (H_GET_16 (abfd
, dos_hdr
.e_magic
) != IMAGE_DOS_SIGNATURE
)
1491 bfd_set_error (bfd_error_wrong_format
);
1495 offset
= H_GET_32 (abfd
, dos_hdr
.e_lfanew
);
1496 if (bfd_seek (abfd
, offset
, SEEK_SET
) != 0
1497 || bfd_read (&image_hdr
, sizeof (image_hdr
), abfd
) != sizeof (image_hdr
))
1499 if (bfd_get_error () != bfd_error_system_call
)
1500 bfd_set_error (bfd_error_wrong_format
);
1504 if (H_GET_32 (abfd
, image_hdr
.nt_signature
) != 0x4550)
1506 bfd_set_error (bfd_error_wrong_format
);
1510 /* Swap file header, so that we get the location for calling
1512 bfd_coff_swap_filehdr_in (abfd
, &image_hdr
, &internal_f
);
1514 if (! bfd_coff_bad_format_hook (abfd
, &internal_f
)
1515 || internal_f
.f_opthdr
> bfd_coff_aoutsz (abfd
))
1517 bfd_set_error (bfd_error_wrong_format
);
1521 memcpy (internal_f
.pe
.dos_message
, dos_hdr
.dos_message
,
1522 sizeof (internal_f
.pe
.dos_message
));
1524 /* Read the optional header, which has variable size. */
1525 opt_hdr_size
= internal_f
.f_opthdr
;
1527 if (opt_hdr_size
!= 0)
1529 bfd_size_type amt
= opt_hdr_size
;
1532 /* PR 17521 file: 230-131433-0.004. */
1533 if (amt
< sizeof (PEAOUTHDR
))
1534 amt
= sizeof (PEAOUTHDR
);
1536 opthdr
= _bfd_alloc_and_read (abfd
, amt
, opt_hdr_size
);
1539 if (amt
> opt_hdr_size
)
1540 memset (opthdr
+ opt_hdr_size
, 0, amt
- opt_hdr_size
);
1542 bfd_coff_swap_aouthdr_in (abfd
, opthdr
, &internal_a
);
1544 struct internal_extra_pe_aouthdr
*a
= &internal_a
.pe
;
1547 /* Use Subsystem to distinguish between pei-arm-little and
1548 pei-arm-wince-little. */
1550 if (a
->Subsystem
!= IMAGE_SUBSYSTEM_WINDOWS_CE_GUI
)
1552 if (a
->Subsystem
== IMAGE_SUBSYSTEM_WINDOWS_CE_GUI
)
1555 bfd_set_error (bfd_error_wrong_format
);
1560 if ((a
->SectionAlignment
& -a
->SectionAlignment
) != a
->SectionAlignment
1561 || a
->SectionAlignment
>= 0x80000000)
1563 _bfd_error_handler (_("%pB: adjusting invalid SectionAlignment"),
1565 a
->SectionAlignment
&= -a
->SectionAlignment
;
1566 if (a
->SectionAlignment
>= 0x80000000)
1567 a
->SectionAlignment
= 0x40000000;
1570 if ((a
->FileAlignment
& -a
->FileAlignment
) != a
->FileAlignment
1571 || a
->FileAlignment
> a
->SectionAlignment
)
1573 _bfd_error_handler (_("%pB: adjusting invalid FileAlignment"),
1575 a
->FileAlignment
&= -a
->FileAlignment
;
1576 if (a
->FileAlignment
> a
->SectionAlignment
)
1577 a
->FileAlignment
= a
->SectionAlignment
;
1580 if (a
->NumberOfRvaAndSizes
> IMAGE_NUMBEROF_DIRECTORY_ENTRIES
)
1581 _bfd_error_handler (_("%pB: invalid NumberOfRvaAndSizes"), abfd
);
1584 result
= coff_real_object_p (abfd
, internal_f
.f_nscns
, &internal_f
,
1587 : (struct internal_aouthdr
*) NULL
));
1591 /* Now the whole header has been processed, see if there is a build-id */
1592 pe_bfd_read_buildid(abfd
);
1598 #define coff_object_p pe_bfd_object_p
1599 #endif /* COFF_IMAGE_WITH_PE */