New entry point in the transfer vector - bfd_relax_section.
[deliverable/binutils-gdb.git] / bfd / elf.c
1 /* ELF support for BFD.
2 Copyright (C) 1991 Free Software Foundation, Inc.
3
4 Written by Fred Fish @ Cygnus Support, from information published
5 in "UNIX System V Release 4, Programmers Guide: ANSI C and
6 Programming Support Tools".
7
8 This file is part of BFD, the Binary File Descriptor library.
9
10 This program is free software; you can redistribute it and/or modify
11 it under the terms of the GNU General Public License as published by
12 the Free Software Foundation; either version 2 of the License, or
13 (at your option) any later version.
14
15 This program is distributed in the hope that it will be useful,
16 but WITHOUT ANY WARRANTY; without even the implied warranty of
17 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
18 GNU General Public License for more details.
19
20 You should have received a copy of the GNU General Public License
21 along with this program; if not, write to the Free Software
22 Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. */
23
24
25 /****************************************
26
27 WARNING
28
29 This is only a partial ELF implementation,
30 incorporating only those parts that are
31 required to get gdb up and running. It is
32 expected that it will be expanded to a full
33 ELF implementation at some future date.
34
35 Unimplemented stubs call abort() to ensure
36 that they get proper attention if they are
37 ever called. The stubs are here since
38 this version was hacked from the COFF
39 version, and thus they will probably
40 go away or get expanded appropriately in a
41 future version.
42
43 fnf@cygnus.com
44
45 *****************************************/
46
47
48 /* Problems and other issues to resolve.
49
50 (1) BFD expects there to be some fixed number of "sections" in
51 the object file. I.E. there is a "section_count" variable in the
52 bfd structure which contains the number of sections. However, ELF
53 supports multiple "views" of a file. In particular, with current
54 implementations, executable files typically have two tables, a
55 program header table and a section header table, both of which
56 partition the executable.
57
58 In ELF-speak, the "linking view" of the file uses the section header
59 table to access "sections" within the file, and the "execution view"
60 uses the program header table to access "segments" within the file.
61 "Segments" typically may contain all the data from one or more
62 "sections".
63
64 Note that the section header table is optional in ELF executables,
65 but it is this information that is most useful to gdb. If the
66 section header table is missing, then gdb should probably try
67 to make do with the program header table. (FIXME)
68
69 */
70
71 #include "bfd.h"
72 #include "sysdep.h"
73 #include "libbfd.h"
74 #include "obstack.h"
75 #include "elf/common.h"
76 #include "elf/internal.h"
77 #include "elf/external.h"
78
79 #ifdef HAVE_PROCFS /* Some core file support requires host /proc files */
80 #include <sys/procfs.h>
81 #else
82 #define bfd_prstatus(abfd, descdata, descsz, filepos) /* Define away */
83 #define bfd_fpregset(abfd, descdata, descsz, filepos) /* Define away */
84 #define bfd_prpsinfo(abfd, descdata, descsz, filepos) /* Define away */
85 #endif
86
87 /* Forward data declarations */
88
89 extern bfd_target elf_little_vec, elf_big_vec;
90
91 /* Currently the elf_symbol_type struct just contains the generic bfd
92 symbol structure. */
93
94 typedef struct
95 {
96 asymbol symbol;
97 } elf_symbol_type;
98
99 /* Some private data is stashed away for future use using the tdata pointer
100 in the bfd structure. This information is different for ELF core files
101 and other ELF files. */
102
103 typedef struct elf_core_tdata_struct
104 {
105 void *prstatus; /* The raw /proc prstatus structure */
106 void *prpsinfo; /* The raw /proc prpsinfo structure */
107 } elf_core_tdata;
108
109 #define core_prpsinfo(bfd) (((bfd)->tdata.elf_core_data))->prpsinfo)
110 #define core_prpstatus(bfd) (((bfd)->tdata.elf_core_data))->prpstatus)
111
112
113 typedef struct elf_obj_tdata_struct
114 {
115 file_ptr symtab_filepos; /* Offset to start of ELF symtab section */
116 long symtab_filesz; /* Size of ELF symtab section */
117 file_ptr strtab_filepos; /* Offset to start of ELF string tbl section */
118 long strtab_filesz; /* Size of ELF string tbl section */
119 } elf_obj_tdata;
120
121 #define elf_tdata(bfd) ((bfd) -> tdata.elf_obj_data)
122 #define elf_symtab_filepos(bfd) (elf_tdata(bfd) -> symtab_filepos)
123 #define elf_symtab_filesz(bfd) (elf_tdata(bfd) -> symtab_filesz)
124 #define elf_strtab_filepos(bfd) (elf_tdata(bfd) -> strtab_filepos)
125 #define elf_strtab_filesz(bfd) (elf_tdata(bfd) -> strtab_filesz)
126
127 /* Translate an ELF symbol in external format into an ELF symbol in internal
128 format. */
129
130 static void
131 DEFUN(elf_swap_symbol_in,(abfd, src, dst),
132 bfd *abfd AND
133 Elf_External_Sym *src AND
134 Elf_Internal_Sym *dst)
135 {
136 dst -> st_name = bfd_h_get_32 (abfd, (bfd_byte *) src -> st_name);
137 dst -> st_value = bfd_h_get_32 (abfd, (bfd_byte *) src -> st_value);
138 dst -> st_size = bfd_h_get_32 (abfd, (bfd_byte *) src -> st_size);
139 dst -> st_info = bfd_h_get_8 (abfd, (bfd_byte *) src -> st_info);
140 dst -> st_other = bfd_h_get_8 (abfd, (bfd_byte *) src -> st_other);
141 dst -> st_shndx = bfd_h_get_16 (abfd, (bfd_byte *) src -> st_shndx);
142 }
143
144
145 /* Translate an ELF file header in external format into an ELF file header in
146 internal format. */
147
148 static void
149 DEFUN(elf_swap_ehdr_in,(abfd, src, dst),
150 bfd *abfd AND
151 Elf_External_Ehdr *src AND
152 Elf_Internal_Ehdr *dst)
153 {
154 memcpy (dst -> e_ident, src -> e_ident, EI_NIDENT);
155 dst -> e_type = bfd_h_get_16 (abfd, (bfd_byte *) src -> e_type);
156 dst -> e_machine = bfd_h_get_16 (abfd, (bfd_byte *) src -> e_machine);
157 dst -> e_version = bfd_h_get_32 (abfd, (bfd_byte *) src -> e_version);
158 dst -> e_entry = bfd_h_get_32 (abfd, (bfd_byte *) src -> e_entry);
159 dst -> e_phoff = bfd_h_get_32 (abfd, (bfd_byte *) src -> e_phoff);
160 dst -> e_shoff = bfd_h_get_32 (abfd, (bfd_byte *) src -> e_shoff);
161 dst -> e_flags = bfd_h_get_32 (abfd, (bfd_byte *) src -> e_flags);
162 dst -> e_ehsize = bfd_h_get_16 (abfd, (bfd_byte *) src -> e_ehsize);
163 dst -> e_phentsize = bfd_h_get_16 (abfd, (bfd_byte *) src -> e_phentsize);
164 dst -> e_phnum = bfd_h_get_16 (abfd, (bfd_byte *) src -> e_phnum);
165 dst -> e_shentsize = bfd_h_get_16 (abfd, (bfd_byte *) src -> e_shentsize);
166 dst -> e_shnum = bfd_h_get_16 (abfd, (bfd_byte *) src -> e_shnum);
167 dst -> e_shstrndx = bfd_h_get_16 (abfd, (bfd_byte *) src -> e_shstrndx);
168 }
169
170
171 /* Translate an ELF section header table entry in external format into an
172 ELF section header table entry in internal format. */
173
174 static void
175 DEFUN(elf_swap_shdr_in,(abfd, src, dst),
176 bfd *abfd AND
177 Elf_External_Shdr *src AND
178 Elf_Internal_Shdr *dst)
179 {
180 dst -> sh_name = bfd_h_get_32 (abfd, (bfd_byte *) src -> sh_name);
181 dst -> sh_type = bfd_h_get_32 (abfd, (bfd_byte *) src -> sh_type);
182 dst -> sh_flags = bfd_h_get_32 (abfd, (bfd_byte *) src -> sh_flags);
183 dst -> sh_addr = bfd_h_get_32 (abfd, (bfd_byte *) src -> sh_addr);
184 dst -> sh_offset = bfd_h_get_32 (abfd, (bfd_byte *) src -> sh_offset);
185 dst -> sh_size = bfd_h_get_32 (abfd, (bfd_byte *) src -> sh_size);
186 dst -> sh_link = bfd_h_get_32 (abfd, (bfd_byte *) src -> sh_link);
187 dst -> sh_info = bfd_h_get_32 (abfd, (bfd_byte *) src -> sh_info);
188 dst -> sh_addralign = bfd_h_get_32 (abfd, (bfd_byte *) src -> sh_addralign);
189 dst -> sh_entsize = bfd_h_get_32 (abfd, (bfd_byte *) src -> sh_entsize);
190 }
191
192
193 /* Translate an ELF program header table entry in external format into an
194 ELF program header table entry in internal format. */
195
196 static void
197 DEFUN(elf_swap_phdr_in,(abfd, src, dst),
198 bfd *abfd AND
199 Elf_External_Phdr *src AND
200 Elf_Internal_Phdr *dst)
201 {
202 dst -> p_type = bfd_h_get_32 (abfd, (bfd_byte *) src -> p_type);
203 dst -> p_offset = bfd_h_get_32 (abfd, (bfd_byte *) src -> p_offset);
204 dst -> p_vaddr = bfd_h_get_32 (abfd, (bfd_byte *) src -> p_vaddr);
205 dst -> p_paddr = bfd_h_get_32 (abfd, (bfd_byte *) src -> p_paddr);
206 dst -> p_filesz = bfd_h_get_32 (abfd, (bfd_byte *) src -> p_filesz);
207 dst -> p_memsz = bfd_h_get_32 (abfd, (bfd_byte *) src -> p_memsz);
208 dst -> p_flags = bfd_h_get_32 (abfd, (bfd_byte *) src -> p_flags);
209 dst -> p_align = bfd_h_get_32 (abfd, (bfd_byte *) src -> p_align);
210 }
211
212
213 /* Create a new bfd section from an ELF section header. */
214
215 static boolean
216 DEFUN(bfd_section_from_shdr, (abfd, hdr, shstrtab),
217 bfd *abfd AND
218 Elf_Internal_Shdr *hdr AND
219 char *shstrtab)
220 {
221 asection *newsect;
222 char *name;
223
224 name = hdr -> sh_name ? shstrtab + hdr -> sh_name : "unnamed";
225 newsect = bfd_make_section (abfd, name);
226 newsect -> vma = hdr -> sh_addr;
227 newsect -> _raw_size = hdr -> sh_size;
228 if (!(hdr -> sh_type == SHT_NOBITS))
229 {
230 newsect -> filepos = hdr -> sh_offset;
231 newsect -> flags |= SEC_HAS_CONTENTS;
232 }
233 if (hdr -> sh_flags & SHF_ALLOC)
234 {
235 newsect -> flags |= SEC_ALLOC;
236 if (hdr -> sh_type != SHT_NOBITS)
237 {
238 newsect -> flags |= SEC_LOAD;
239 }
240 }
241 if (!(hdr -> sh_flags & SHF_WRITE))
242 {
243 newsect -> flags |= SEC_READONLY;
244 }
245 if (hdr -> sh_flags & SHF_EXECINSTR)
246 {
247 newsect -> flags |= SEC_CODE; /* FIXME: may only contain SOME code */
248 }
249 else
250 {
251 newsect -> flags |= SEC_DATA;
252 }
253 if (hdr -> sh_type == SHT_SYMTAB)
254 {
255 abfd -> flags |= HAS_SYMS;
256 }
257
258 return (true);
259 }
260
261 /* Create a new bfd section from an ELF program header.
262
263 Since program segments have no names, we generate a synthetic name
264 of the form segment<NUM>, where NUM is generally the index in the
265 program header table. For segments that are split (see below) we
266 generate the names segment<NUM>a and segment<NUM>b.
267
268 Note that some program segments may have a file size that is different than
269 (less than) the memory size. All this means is that at execution the
270 system must allocate the amount of memory specified by the memory size,
271 but only initialize it with the first "file size" bytes read from the
272 file. This would occur for example, with program segments consisting
273 of combined data+bss.
274
275 To handle the above situation, this routine generates TWO bfd sections
276 for the single program segment. The first has the length specified by
277 the file size of the segment, and the second has the length specified
278 by the difference between the two sizes. In effect, the segment is split
279 into it's initialized and uninitialized parts.
280
281 */
282
283 static boolean
284 DEFUN(bfd_section_from_phdr, (abfd, hdr, index),
285 bfd *abfd AND
286 Elf_Internal_Phdr *hdr AND
287 int index)
288 {
289 asection *newsect;
290 char *name;
291 char namebuf[64];
292 int split;
293
294 split = ((hdr -> p_memsz > 0) &&
295 (hdr -> p_filesz > 0) &&
296 (hdr -> p_memsz > hdr -> p_filesz));
297 sprintf (namebuf, split ? "segment%da" : "segment%d", index);
298 name = bfd_alloc (abfd, strlen (namebuf) + 1);
299 (void) strcpy (name, namebuf);
300 newsect = bfd_make_section (abfd, name);
301 newsect -> vma = hdr -> p_vaddr;
302 newsect -> _raw_size = hdr -> p_filesz;
303 newsect -> filepos = hdr -> p_offset;
304 newsect -> flags |= SEC_HAS_CONTENTS;
305 if (hdr -> p_type == PT_LOAD)
306 {
307 newsect -> flags |= SEC_ALLOC;
308 newsect -> flags |= SEC_LOAD;
309 if (hdr -> p_flags & PF_X)
310 {
311 /* FIXME: all we known is that it has execute PERMISSION,
312 may be data. */
313 newsect -> flags |= SEC_CODE;
314 }
315 }
316 if (!(hdr -> p_flags & PF_W))
317 {
318 newsect -> flags |= SEC_READONLY;
319 }
320
321 if (split)
322 {
323 sprintf (namebuf, "segment%db", index);
324 name = bfd_alloc (abfd, strlen (namebuf) + 1);
325 (void) strcpy (name, namebuf);
326 newsect = bfd_make_section (abfd, name);
327 newsect -> vma = hdr -> p_vaddr + hdr -> p_filesz;
328 newsect -> _raw_size = hdr -> p_memsz - hdr -> p_filesz;
329 if (hdr -> p_type == PT_LOAD)
330 {
331 newsect -> flags |= SEC_ALLOC;
332 if (hdr -> p_flags & PF_X)
333 {
334 newsect -> flags |= SEC_CODE;
335 }
336 }
337 if (!(hdr -> p_flags & PF_W))
338 {
339 newsect -> flags |= SEC_READONLY;
340 }
341 }
342
343 return (true);
344 }
345
346 #ifdef HAVE_PROCFS
347
348 static void
349 DEFUN(bfd_prstatus,(abfd, descdata, descsz, filepos),
350 bfd *abfd AND
351 char *descdata AND
352 int descsz AND
353 long filepos)
354 {
355 asection *newsect;
356
357 if (descsz == sizeof (prstatus_t))
358 {
359 newsect = bfd_make_section (abfd, ".reg");
360 newsect -> size = sizeof (gregset_t);
361 newsect -> filepos = filepos + (long) (((prstatus_t *)0) -> pr_reg);
362 newsect -> flags = SEC_ALLOC | SEC_HAS_CONTENTS;
363 newsect -> alignment_power = 2;
364 if ((core_prstatus (abfd) = bfd_alloc (abfd, descsz)) != NULL)
365 {
366 memcpy (core_prstatus (abfd), descdata, descsz);
367 }
368 }
369 }
370
371 /* Stash a copy of the prpsinfo structure away for future use. */
372
373 static void
374 DEFUN(bfd_prpsinfo,(abfd, descdata, descsz, filepos),
375 bfd *abfd AND
376 char *descdata AND
377 int descsz AND
378 long filepos)
379 {
380 asection *newsect;
381
382 if (descsz == sizeof (prpsinfo_t))
383 {
384 if ((core_prpsinfo (abfd) = bfd_alloc (abfd, descsz)) != NULL)
385 {
386 bcopy (descdata, core_prpsinfo (abfd), descsz);
387 }
388 }
389 }
390
391 static void
392 DEFUN(bfd_fpregset,(abfd, descdata, descsz, filepos),
393 bfd *abfd AND
394 char *descdata AND
395 int descsz AND
396 long filepos)
397 {
398 asection *newsect;
399
400 if (descsz == sizeof (fpregset_t))
401 {
402 newsect = bfd_make_section (abfd, ".reg2");
403 newsect -> size = sizeof (fpregset_t);
404 newsect -> filepos = filepos;
405 newsect -> flags = SEC_ALLOC | SEC_HAS_CONTENTS;
406 newsect -> alignment_power = 2;
407 }
408 }
409
410 #endif /* HAVE_PROCFS */
411
412 /* Return a pointer to the args (including the command name) that were
413 seen by the program that generated the core dump. Note that for
414 some reason, a spurious space is tacked onto the end of the args
415 in some (at least one anyway) implementations, so strip it off if
416 it exists. */
417
418 char *
419 DEFUN(elf_core_file_failing_command, (abfd),
420 bfd *abfd)
421 {
422 #ifdef HAVE_PROCFS
423 if (core_prpsinfo (abfd))
424 {
425 prpsinfo_t *p = core_prpsinfo (abfd);
426 char *scan = p -> pr_psargs;
427 while (*scan++) {;}
428 scan -= 2;
429 if ((scan > p -> pr_psargs) && (*scan == ' '))
430 {
431 *scan = '\000';
432 }
433 return (p -> pr_psargs);
434 }
435 #endif
436 return (NULL);
437 }
438
439 /* Return the number of the signal that caused the core dump. Presumably,
440 since we have a core file, we got a signal of some kind, so don't bother
441 checking the other process status fields, just return the signal number.
442 */
443
444 static int
445 DEFUN(elf_core_file_failing_signal, (abfd),
446 bfd *abfd)
447 {
448 #ifdef HAVE_PROCFS
449 if (core_prstatus (abfd))
450 {
451 return (((prstatus_t *)(core_prstatus (abfd))) -> pr_cursig);
452 }
453 #endif
454 return (-1);
455 }
456
457 /* Check to see if the core file could reasonably be expected to have
458 come for the current executable file. Note that by default we return
459 true unless we find something that indicates that there might be a
460 problem.
461 */
462
463 static boolean
464 DEFUN(elf_core_file_matches_executable_p, (core_bfd, exec_bfd),
465 bfd *core_bfd AND
466 bfd *exec_bfd)
467 {
468 #ifdef HAVE_PROCFS
469 char *corename;
470 char *execname;
471 #endif
472
473 /* First, xvecs must match since both are ELF files for the same target. */
474
475 if (core_bfd->xvec != exec_bfd->xvec)
476 {
477 bfd_error = system_call_error;
478 return (false);
479 }
480
481 #ifdef HAVE_PROCFS
482
483 /* If no prpsinfo, just return true. Otherwise, grab the last component
484 of the exec'd pathname from the prpsinfo. */
485
486 if (core_prpsinfo (core_bfd))
487 {
488 corename = (((struct prpsinfo *) core_prpsinfo (core_bfd)) -> pr_fname);
489 }
490 else
491 {
492 return (true);
493 }
494
495 /* Find the last component of the executable pathname. */
496
497 if ((execname = strrchr (exec_bfd -> filename, '/')) != NULL)
498 {
499 execname++;
500 }
501 else
502 {
503 execname = (char *) exec_bfd -> filename;
504 }
505
506 /* See if they match */
507
508 return (strcmp (execname, corename) ? false : true);
509
510 #else
511
512 return (true);
513
514 #endif /* HAVE_PROCFS */
515 }
516
517 /* ELF core files contain a segment of type PT_NOTE, that holds much of
518 the information that would normally be available from the /proc interface
519 for the process, at the time the process dumped core. Currently this
520 includes copies of the prstatus, prpsinfo, and fpregset structures.
521
522 Since these structures are potentially machine dependent in size and
523 ordering, bfd provides two levels of support for them. The first level,
524 available on all machines since it does not require that the host
525 have /proc support or the relevant include files, is to create a bfd
526 section for each of the prstatus, prpsinfo, and fpregset structures,
527 without any interpretation of their contents. With just this support,
528 the bfd client will have to interpret the structures itself. Even with
529 /proc support, it might want these full structures for it's own reasons.
530
531 In the second level of support, where HAVE_PROCFS is defined, bfd will
532 pick apart the structures to gather some additional information that
533 clients may want, such as the general register set, the name of the
534 exec'ed file and its arguments, the signal (if any) that caused the
535 core dump, etc.
536
537 */
538
539 static boolean
540 DEFUN(elf_corefile_note, (abfd, hdr),
541 bfd *abfd AND
542 Elf_Internal_Phdr *hdr)
543 {
544 Elf_External_Note *x_note_p; /* Elf note, external form */
545 Elf_Internal_Note i_note; /* Elf note, internal form */
546 char *buf = NULL; /* Entire note segment contents */
547 char *namedata; /* Name portion of the note */
548 char *descdata; /* Descriptor portion of the note */
549 char *sectname; /* Name to use for new section */
550 long filepos; /* File offset to descriptor data */
551 asection *newsect;
552
553 if (hdr -> p_filesz > 0
554 && (buf = (char *)malloc(hdr -> p_filesz)) != NULL
555 && bfd_seek (abfd, hdr -> p_offset, SEEK_SET) != -1L
556 && bfd_read ((PTR) buf, hdr -> p_filesz, 1, abfd) == hdr -> p_filesz)
557 {
558 x_note_p = (Elf_External_Note *) buf;
559 while ((char *) x_note_p < (buf + hdr -> p_filesz))
560 {
561 i_note.namesz = bfd_h_get_32 (abfd, (bfd_byte *) x_note_p -> namesz);
562 i_note.descsz = bfd_h_get_32 (abfd, (bfd_byte *) x_note_p -> descsz);
563 i_note.type = bfd_h_get_32 (abfd, (bfd_byte *) x_note_p -> type);
564 namedata = x_note_p -> name;
565 descdata = namedata + BFD_ALIGN (i_note.namesz, 4);
566 filepos = hdr -> p_offset + (descdata - buf);
567 switch (i_note.type) {
568 case NT_PRSTATUS:
569 /* process descdata as prstatus info */
570 bfd_prstatus (abfd, descdata, i_note.descsz, filepos);
571 sectname = ".prstatus";
572 break;
573 case NT_FPREGSET:
574 /* process descdata as fpregset info */
575 bfd_fpregset (abfd, descdata, i_note.descsz, filepos);
576 sectname = ".fpregset";
577 break;
578 case NT_PRPSINFO:
579 /* process descdata as prpsinfo */
580 bfd_prpsinfo (abfd, descdata, i_note.descsz, filepos);
581 sectname = ".prpsinfo";
582 break;
583 default:
584 /* Unknown descriptor, just ignore it. */
585 sectname = NULL;
586 break;
587 }
588 if (sectname != NULL)
589 {
590 newsect = bfd_make_section (abfd, sectname);
591 newsect -> _raw_size = i_note.descsz;
592 newsect -> filepos = filepos;
593 newsect -> flags = SEC_ALLOC | SEC_HAS_CONTENTS;
594 newsect -> alignment_power = 2;
595 }
596 x_note_p = (Elf_External_Note *)
597 (descdata + BFD_ALIGN (i_note.descsz, 4));
598 }
599 }
600 if (buf != NULL)
601 {
602 free (buf);
603 }
604 return true;
605
606 }
607
608
609 /* Read a specified number of bytes at a specified offset in an ELF
610 file, into a newly allocated buffer, and return a pointer to the
611 buffer. */
612
613 static char *
614 DEFUN(elf_read, (abfd, offset, size),
615 bfd *abfd AND
616 long offset AND
617 int size)
618 {
619 char *buf;
620
621 if ((buf = bfd_alloc (abfd, size)) == NULL)
622 {
623 bfd_error = no_memory;
624 return (NULL);
625 }
626 if (bfd_seek (abfd, offset, SEEK_SET) == -1)
627 {
628 bfd_error = system_call_error;
629 return (NULL);
630 }
631 if (bfd_read ((PTR) buf, size, 1, abfd) != size)
632 {
633 bfd_error = system_call_error;
634 return (NULL);
635 }
636 return (buf);
637 }
638
639 /* Begin processing a given object.
640
641 First we validate the file by reading in the ELF header and checking
642 the magic number.
643
644 */
645
646 static bfd_target *
647 DEFUN (elf_object_p, (abfd), bfd *abfd)
648 {
649 Elf_External_Ehdr x_ehdr; /* Elf file header, external form */
650 Elf_Internal_Ehdr i_ehdr; /* Elf file header, internal form */
651 Elf_External_Shdr *x_shdr; /* Section header table, external form */
652 Elf_Internal_Shdr *i_shdr; /* Section header table, internal form */
653 int shindex;
654 char *shstrtab; /* Internal copy of section header stringtab */
655 int shstrtabsize; /* Size of section header string table */
656 Elf_Off offset; /* Temp place to stash file offsets */
657
658 /* Read in the ELF header in external format. */
659
660 if (bfd_read ((PTR) &x_ehdr, sizeof (x_ehdr), 1, abfd) != sizeof (x_ehdr))
661 {
662 bfd_error = system_call_error;
663 return (NULL);
664 }
665
666 /* Now check to see if we have a valid ELF file, and one that BFD can
667 make use of. The magic number must match, the address size ('class')
668 and byte-swapping must match our XVEC entry, and it must have a
669 section header table (FIXME: See comments re sections at top of this
670 file). */
671
672 if (x_ehdr.e_ident[EI_MAG0] != ELFMAG0 ||
673 x_ehdr.e_ident[EI_MAG1] != ELFMAG1 ||
674 x_ehdr.e_ident[EI_MAG2] != ELFMAG2 ||
675 x_ehdr.e_ident[EI_MAG3] != ELFMAG3)
676 {
677 wrong:
678 bfd_error = wrong_format;
679 return (NULL);
680 }
681
682 /* FIXME, Check EI_VERSION here ! */
683
684 switch (x_ehdr.e_ident[EI_CLASS]) {
685 case ELFCLASSNONE: /* address size not specified */
686 goto wrong; /* No support if can't tell address size */
687 case ELFCLASS32: /* 32-bit addresses */
688 break;
689 case ELFCLASS64: /* 64-bit addresses */
690 goto wrong; /* FIXME: 64 bits not yet supported */
691 default:
692 goto wrong; /* No support if unknown address class */
693 }
694
695 /* Switch xvec to match the specified byte order. */
696 switch (x_ehdr.e_ident[EI_DATA]) {
697 case ELFDATA2MSB: /* Big-endian */
698 abfd->xvec = &elf_big_vec;
699 break;
700 case ELFDATA2LSB: /* Little-endian */
701 abfd->xvec = &elf_little_vec;
702 break;
703 case ELFDATANONE: /* No data encoding specified */
704 default: /* Unknown data encoding specified */
705 goto wrong;
706 }
707
708 /* Allocate an instance of the elf_obj_tdata structure and hook it up to
709 the tdata pointer in the bfd. */
710
711 if ((abfd -> tdata.elf_obj_data =
712 (elf_obj_tdata*) bfd_zalloc (abfd, sizeof (elf_obj_tdata)))
713 == NULL)
714 {
715 bfd_error = no_memory;
716 return (NULL);
717 }
718
719 /* Now that we know the byte order, swap in the rest of the header */
720 elf_swap_ehdr_in (abfd, &x_ehdr, &i_ehdr);
721
722 /* If there is no section header table, we're hosed. */
723 if (i_ehdr.e_shoff == 0)
724 goto wrong;
725
726 if (i_ehdr.e_type == ET_EXEC || i_ehdr.e_type == ET_DYN)
727 {
728 abfd -> flags |= EXEC_P;
729 }
730
731 /* Allocate space for copies of the section header table in external
732 and internal form, seek to the section header table in the file,
733 read it in, and convert it to internal form. As a simple sanity
734 check, verify that the what BFD thinks is the size of each section
735 header table entry actually matches the size recorded in the file. */
736
737 if (i_ehdr.e_shentsize != sizeof (*x_shdr))
738 goto wrong;
739 if ((x_shdr = (Elf_External_Shdr *)
740 bfd_alloc (abfd, sizeof (*x_shdr) * i_ehdr.e_shnum)) == NULL)
741 {
742 bfd_error = no_memory;
743 return (NULL);
744 }
745 if ((i_shdr = (Elf_Internal_Shdr *)
746 bfd_alloc (abfd, sizeof (*i_shdr) * i_ehdr.e_shnum)) == NULL)
747 {
748 bfd_error = no_memory;
749 return (NULL);
750 }
751 if (bfd_seek (abfd, i_ehdr.e_shoff, SEEK_SET) == -1)
752 {
753 bfd_error = system_call_error;
754 return (NULL);
755 }
756 for (shindex = 0; shindex < i_ehdr.e_shnum; shindex++)
757 {
758 if (bfd_read ((PTR) (x_shdr + shindex), sizeof (*x_shdr), 1, abfd)
759 != sizeof (*x_shdr))
760 {
761 bfd_error = system_call_error;
762 return (NULL);
763 }
764 elf_swap_shdr_in (abfd, x_shdr + shindex, i_shdr + shindex);
765 }
766
767 /* Read in the string table containing the names of the sections. We
768 will need the base pointer to this table later. */
769
770 shstrtabsize = i_shdr[i_ehdr.e_shstrndx].sh_size;
771 offset = i_shdr[i_ehdr.e_shstrndx].sh_offset;
772 if ((shstrtab = elf_read (abfd, offset, shstrtabsize)) == NULL)
773 {
774 return (NULL);
775 }
776
777 /* Once all of the section headers have been read and converted, we
778 can start processing them. Note that the first section header is
779 a dummy placeholder entry, so we ignore it.
780
781 We also watch for the symbol table section and remember the file
782 offset and section size for both the symbol table section and the
783 associated string table section. */
784
785 for (shindex = 1; shindex < i_ehdr.e_shnum; shindex++)
786 {
787 Elf_Internal_Shdr *hdr = i_shdr + shindex;
788 bfd_section_from_shdr (abfd, hdr, shstrtab);
789 if (hdr -> sh_type == SHT_SYMTAB)
790 {
791 elf_symtab_filepos(abfd) = hdr -> sh_offset;
792 elf_symtab_filesz(abfd) = hdr -> sh_size;
793 elf_strtab_filepos(abfd) = (i_shdr + hdr -> sh_link) -> sh_offset;
794 elf_strtab_filesz(abfd) = (i_shdr + hdr -> sh_link) -> sh_size;
795 }
796 }
797
798 /* Remember the entry point specified in the ELF file header. */
799
800 bfd_get_start_address (abfd) = i_ehdr.e_entry;
801
802 return (abfd->xvec);
803 }
804
805 /* Core files are simply standard ELF formatted files that partition
806 the file using the execution view of the file (program header table)
807 rather than the linking view. In fact, there is no section header
808 table in a core file.
809
810 The process status information (including the contents of the general
811 register set) and the floating point register set are stored in a
812 segment of type PT_NOTE. We handcraft a couple of extra bfd sections
813 that allow standard bfd access to the general registers (.reg) and the
814 floating point registers (.reg2).
815
816 */
817
818 static bfd_target *
819 DEFUN (elf_core_file_p, (abfd), bfd *abfd)
820 {
821 Elf_External_Ehdr x_ehdr; /* Elf file header, external form */
822 Elf_Internal_Ehdr i_ehdr; /* Elf file header, internal form */
823 Elf_External_Phdr *x_phdr; /* Program header table, external form */
824 Elf_Internal_Phdr *i_phdr; /* Program header table, internal form */
825 int phindex;
826
827 /* Read in the ELF header in external format. */
828
829 if (bfd_read ((PTR) &x_ehdr, sizeof (x_ehdr), 1, abfd) != sizeof (x_ehdr))
830 {
831 bfd_error = system_call_error;
832 return (NULL);
833 }
834
835 /* Now check to see if we have a valid ELF file, and one that BFD can
836 make use of. The magic number must match, the address size ('class')
837 and byte-swapping must match our XVEC entry, and it must have a
838 program header table (FIXME: See comments re segments at top of this
839 file). */
840
841 if (x_ehdr.e_ident[EI_MAG0] != ELFMAG0 ||
842 x_ehdr.e_ident[EI_MAG1] != ELFMAG1 ||
843 x_ehdr.e_ident[EI_MAG2] != ELFMAG2 ||
844 x_ehdr.e_ident[EI_MAG3] != ELFMAG3)
845 {
846 wrong:
847 bfd_error = wrong_format;
848 return (NULL);
849 }
850
851 /* FIXME, Check EI_VERSION here ! */
852
853 switch (x_ehdr.e_ident[EI_CLASS]) {
854 case ELFCLASSNONE: /* address size not specified */
855 goto wrong; /* No support if can't tell address size */
856 case ELFCLASS32: /* 32-bit addresses */
857 break;
858 case ELFCLASS64: /* 64-bit addresses */
859 goto wrong; /* FIXME: 64 bits not yet supported */
860 default:
861 goto wrong; /* No support if unknown address class */
862 }
863
864 /* Switch xvec to match the specified byte order. */
865 switch (x_ehdr.e_ident[EI_DATA]) {
866 case ELFDATA2MSB: /* Big-endian */
867 abfd->xvec = &elf_big_vec;
868 break;
869 case ELFDATA2LSB: /* Little-endian */
870 abfd->xvec = &elf_little_vec;
871 break;
872 case ELFDATANONE: /* No data encoding specified */
873 default: /* Unknown data encoding specified */
874 goto wrong;
875 }
876
877 /* Now that we know the byte order, swap in the rest of the header */
878 elf_swap_ehdr_in (abfd, &x_ehdr, &i_ehdr);
879
880 /* If there is no program header, or the type is not a core file, then
881 we are hosed. */
882 if (i_ehdr.e_phoff == 0 || i_ehdr.e_type != ET_CORE)
883 goto wrong;
884
885 /* Allocate an instance of the elf_core_tdata structure and hook it up to
886 the tdata pointer in the bfd. */
887
888 if ((abfd -> tdata.elf_core_data =
889 (elf_core_tdata *) bfd_zalloc (abfd, sizeof (elf_core_tdata)))
890 == NULL)
891 {
892 bfd_error = no_memory;
893 return (NULL);
894 }
895
896 /* Allocate space for copies of the program header table in external
897 and internal form, seek to the program header table in the file,
898 read it in, and convert it to internal form. As a simple sanity
899 check, verify that the what BFD thinks is the size of each program
900 header table entry actually matches the size recorded in the file. */
901
902 if (i_ehdr.e_phentsize != sizeof (*x_phdr))
903 goto wrong;
904 if ((x_phdr = (Elf_External_Phdr *)
905 bfd_alloc (abfd, sizeof (*x_phdr) * i_ehdr.e_phnum)) == NULL)
906 {
907 bfd_error = no_memory;
908 return (NULL);
909 }
910 if ((i_phdr = (Elf_Internal_Phdr *)
911 bfd_alloc (abfd, sizeof (*i_phdr) * i_ehdr.e_phnum)) == NULL)
912 {
913 bfd_error = no_memory;
914 return (NULL);
915 }
916 if (bfd_seek (abfd, i_ehdr.e_phoff, SEEK_SET) == -1)
917 {
918 bfd_error = system_call_error;
919 return (NULL);
920 }
921 for (phindex = 0; phindex < i_ehdr.e_phnum; phindex++)
922 {
923 if (bfd_read ((PTR) (x_phdr + phindex), sizeof (*x_phdr), 1, abfd)
924 != sizeof (*x_phdr))
925 {
926 bfd_error = system_call_error;
927 return (NULL);
928 }
929 elf_swap_phdr_in (abfd, x_phdr + phindex, i_phdr + phindex);
930 }
931
932 /* Once all of the program headers have been read and converted, we
933 can start processing them. */
934
935 for (phindex = 0; phindex < i_ehdr.e_phnum; phindex++)
936 {
937 bfd_section_from_phdr (abfd, i_phdr + phindex, phindex);
938 if ((i_phdr + phindex) -> p_type == PT_NOTE)
939 {
940 elf_corefile_note (abfd, i_phdr + phindex);
941 }
942 }
943
944 /* Remember the entry point specified in the ELF file header. */
945
946 bfd_get_start_address (abfd) = i_ehdr.e_entry;
947
948 return (abfd->xvec);
949 }
950
951 static boolean
952 DEFUN (elf_mkobject, (abfd), bfd *abfd)
953 {
954 fprintf (stderr, "elf_mkobject unimplemented\n");
955 fflush (stderr);
956 abort ();
957 return (false);
958 }
959
960 static boolean
961 DEFUN (elf_write_object_contents, (abfd), bfd *abfd)
962 {
963 fprintf (stderr, "elf_write_object_contents unimplemented\n");
964 fflush (stderr);
965 abort ();
966 return (false);
967 }
968
969 /* Given an index of a section, retrieve a pointer to it. Note
970 that for our purposes, sections are indexed by {1, 2, ...} with
971 0 being an illegal index. */
972
973 static struct sec *
974 DEFUN (section_from_bfd_index, (abfd, index),
975 bfd *abfd AND
976 int index)
977 {
978 if (index > 0)
979 {
980 struct sec *answer = abfd -> sections;
981 while (--index > 0)
982 {
983 answer = answer -> next;
984 }
985 return (answer);
986 }
987 return (NULL);
988 }
989
990 static boolean
991 DEFUN (elf_slurp_symbol_table, (abfd), bfd *abfd)
992 {
993 int symcount; /* Number of external ELF symbols */
994 char *strtab; /* Buffer for raw ELF string table section */
995 asymbol *sym; /* Pointer to current bfd symbol */
996 asymbol *symbase; /* Buffer for generated bfd symbols */
997 asymbol **vec; /* Pointer to current bfd symbol pointer */
998 Elf_Internal_Sym i_sym;
999 Elf_External_Sym x_sym;
1000
1001 if (bfd_get_outsymbols (abfd) != NULL)
1002 {
1003 return (true);
1004 }
1005
1006 /* Slurp in the string table. We will keep it around permanently, as
1007 long as the bfd is in use, since we will end up setting up pointers
1008 into it for the names of all the symbols. */
1009
1010 strtab = elf_read (abfd, elf_strtab_filepos(abfd), elf_strtab_filesz(abfd));
1011 if (strtab == NULL)
1012 {
1013 return (false);
1014 }
1015
1016 /* Read each raw ELF symbol, converting from external ELF form to
1017 internal ELF form, and then using the information to create a
1018 canonical bfd symbol table entry.
1019
1020 Note that be allocate the initial bfd canonical symbol buffer
1021 based on a one-to-one mapping of the ELF symbols to canonical
1022 symbols. However, it is likely that not all the ELF symbols will
1023 be used, so there will be some space leftover at the end. Once
1024 we know how many symbols we actual generate, we realloc the buffer
1025 to the correct size and then build the pointer vector. */
1026
1027 if (bfd_seek (abfd, elf_symtab_filepos (abfd), SEEK_SET) == -1)
1028 {
1029 bfd_error = system_call_error;
1030 return (false);
1031 }
1032
1033 symcount = elf_symtab_filesz(abfd) / sizeof (Elf_External_Sym);
1034 sym = symbase = (asymbol *) bfd_zalloc (abfd, symcount * sizeof (asymbol));
1035
1036 while (symcount-- > 0)
1037 {
1038 if (bfd_read ((PTR) &x_sym, sizeof (x_sym), 1, abfd) != sizeof (x_sym))
1039 {
1040 bfd_error = system_call_error;
1041 return (false);
1042 }
1043 elf_swap_symbol_in (abfd, &x_sym, &i_sym);
1044 if (i_sym.st_name > 0)
1045 {
1046 sym -> the_bfd = abfd;
1047 sym -> name = strtab + i_sym.st_name;
1048 sym -> value = i_sym.st_value;
1049 if (i_sym.st_shndx > 0 && i_sym.st_shndx < SHN_LORESERV)
1050 {
1051 /* Note: This code depends upon there being an ordered
1052 one-for-one mapping of ELF sections to bfd sections. */
1053 sym -> section = section_from_bfd_index (abfd, i_sym.st_shndx);
1054 }
1055 else if (i_sym.st_shndx == SHN_ABS)
1056 {
1057 /* sym -> flags |= BSF_ABSOLUTE; OBSOLETE */
1058 }
1059 else if (i_sym.st_shndx == SHN_COMMON)
1060 {
1061 sym -> section = &bfd_com_section;
1062 }
1063 switch (ELF_ST_BIND (i_sym.st_info))
1064 {
1065 case STB_LOCAL:
1066 sym -> flags |= BSF_LOCAL;
1067 break;
1068 case STB_GLOBAL:
1069 sym -> flags |= (BSF_GLOBAL | BSF_EXPORT);
1070 break;
1071 case STB_WEAK:
1072 sym -> flags |= BSF_WEAK;
1073 break;
1074 }
1075 sym++;
1076 }
1077 }
1078
1079 bfd_get_symcount(abfd) = symcount = sym - symbase;
1080 sym = symbase = (asymbol *)
1081 bfd_realloc (abfd, symbase, symcount * sizeof (asymbol));
1082 bfd_get_outsymbols(abfd) = vec = (asymbol **)
1083 bfd_alloc (abfd, symcount * sizeof (asymbol *));
1084
1085 while (symcount-- > 0)
1086 {
1087 *vec++ = sym++;
1088 }
1089
1090 return (true);
1091 }
1092
1093 /* Return the number of bytes required to hold the symtab vector.
1094
1095 Note that we base it on the count plus 1, since we will null terminate
1096 the vector allocated based on this size. */
1097
1098 static unsigned int
1099 DEFUN (elf_get_symtab_upper_bound, (abfd), bfd *abfd)
1100 {
1101 unsigned int symtab_size = 0;
1102
1103 if (elf_slurp_symbol_table (abfd))
1104 {
1105 symtab_size = (bfd_get_symcount (abfd) + 1) * (sizeof (asymbol));
1106 }
1107 return (symtab_size);
1108 }
1109
1110 static unsigned int
1111 elf_get_reloc_upper_bound (abfd, asect)
1112 bfd *abfd;
1113 sec_ptr asect;
1114 {
1115 fprintf (stderr, "elf_get_reloc_upper_bound unimplemented\n");
1116 fflush (stderr);
1117 abort ();
1118 return (0);
1119 }
1120
1121 static unsigned int
1122 elf_canonicalize_reloc (abfd, section, relptr, symbols)
1123 bfd *abfd;
1124 sec_ptr section;
1125 arelent **relptr;
1126 asymbol **symbols;
1127 {
1128 fprintf (stderr, "elf_canonicalize_reloc unimplemented\n");
1129 fflush (stderr);
1130 abort ();
1131 return (0);
1132 }
1133
1134 static unsigned int
1135 DEFUN (elf_get_symtab, (abfd, alocation),
1136 bfd *abfd AND
1137 asymbol **alocation)
1138 {
1139 unsigned int symcount;
1140 asymbol **vec;
1141
1142 if (!elf_slurp_symbol_table (abfd))
1143 {
1144 return (0);
1145 }
1146 else
1147 {
1148 symcount = bfd_get_symcount (abfd);
1149 vec = bfd_get_outsymbols (abfd);
1150 while (symcount-- > 0)
1151 {
1152 *alocation++ = *vec++;
1153 }
1154 *alocation++ = NULL;
1155 return (bfd_get_symcount (abfd));
1156 }
1157 }
1158
1159 static asymbol *
1160 elf_make_empty_symbol(abfd)
1161 bfd *abfd;
1162 {
1163 fprintf (stderr, "elf_make_empty_symbol unimplemented\n");
1164 fflush (stderr);
1165 abort ();
1166 return (NULL);
1167 }
1168
1169 static void
1170 DEFUN (elf_print_symbol,(ignore_abfd, filep, symbol, how),
1171 bfd *ignore_abfd AND
1172 PTR filep AND
1173 asymbol *symbol AND
1174 bfd_print_symbol_type how)
1175 {
1176 fprintf (stderr, "elf_print_symbol unimplemented\n");
1177 fflush (stderr);
1178 abort ();
1179 }
1180
1181 static alent *
1182 DEFUN (elf_get_lineno,(ignore_abfd, symbol),
1183 bfd *ignore_abfd AND
1184 asymbol *symbol)
1185 {
1186 fprintf (stderr, "elf_get_lineno unimplemented\n");
1187 fflush (stderr);
1188 abort ();
1189 return (NULL);
1190 }
1191
1192 static boolean
1193 DEFUN (elf_set_arch_mach,(abfd, arch, machine),
1194 bfd *abfd AND
1195 enum bfd_architecture arch AND
1196 unsigned long machine)
1197 {
1198 fprintf (stderr, "elf_set_arch_mach unimplemented\n");
1199 fflush (stderr);
1200 /* Allow any architecture to be supported by the elf backend */
1201 return bfd_default_set_arch_mach(abfd, arch, machine);
1202 }
1203
1204 static boolean
1205 DEFUN (elf_find_nearest_line,(abfd,
1206 section,
1207 symbols,
1208 offset,
1209 filename_ptr,
1210 functionname_ptr,
1211 line_ptr),
1212 bfd *abfd AND
1213 asection *section AND
1214 asymbol **symbols AND
1215 bfd_vma offset AND
1216 CONST char **filename_ptr AND
1217 CONST char **functionname_ptr AND
1218 unsigned int *line_ptr)
1219 {
1220 fprintf (stderr, "elf_find_nearest_line unimplemented\n");
1221 fflush (stderr);
1222 abort ();
1223 return (false);
1224 }
1225
1226 static int
1227 DEFUN (elf_sizeof_headers, (abfd, reloc),
1228 bfd *abfd AND
1229 boolean reloc)
1230 {
1231 fprintf (stderr, "elf_sizeof_headers unimplemented\n");
1232 fflush (stderr);
1233 abort ();
1234 return (0);
1235 }
1236 \f
1237 /* This structure contains everything that BFD knows about a target.
1238 It includes things like its byte order, name, what routines to call
1239 to do various operations, etc. Every BFD points to a target structure
1240 with its "xvec" member.
1241
1242 There are two such structures here: one for big-endian machines and
1243 one for little-endian machines. */
1244
1245 /* Archives are generic or unimplemented. */
1246 #define elf_slurp_armap bfd_false
1247 #define elf_slurp_extended_name_table _bfd_slurp_extended_name_table
1248 #define elf_truncate_arname bfd_dont_truncate_arname
1249 #define elf_openr_next_archived_file bfd_generic_openr_next_archived_file
1250 #define elf_generic_stat_arch_elt bfd_generic_stat_arch_elt
1251 #define elf_write_armap (PROTO (boolean, (*), \
1252 (bfd *arch, unsigned int elength, struct orl *map, unsigned int orl_count, \
1253 int stridx))) bfd_false
1254
1255 /* Ordinary section reading and writing */
1256 #define elf_new_section_hook _bfd_dummy_new_section_hook
1257 #define elf_get_section_contents bfd_generic_get_section_contents
1258 #define elf_set_section_contents bfd_generic_set_section_contents
1259 #define elf_close_and_cleanup bfd_generic_close_and_cleanup
1260
1261 #define elf_bfd_debug_info_start bfd_void
1262 #define elf_bfd_debug_info_end bfd_void
1263 #define elf_bfd_debug_info_accumulate (PROTO(void,(*),(bfd*, struct sec *))) bfd_void
1264 #define elf_bfd_get_relocated_section_contents \
1265 bfd_generic_get_relocated_section_contents
1266
1267 bfd_target elf_big_vec =
1268 {
1269 /* name: identify kind of target */
1270 "elf-big",
1271
1272 /* flavour: general indication about file */
1273 bfd_target_elf_flavour,
1274
1275 /* byteorder_big_p: data is big endian */
1276 true,
1277
1278 /* header_byteorder_big_p: header is also big endian */
1279 true,
1280
1281 /* object_flags: mask of all file flags */
1282 (HAS_RELOC | EXEC_P | HAS_LINENO | HAS_DEBUG | HAS_SYMS | HAS_LOCALS |
1283 DYNAMIC | WP_TEXT),
1284
1285 /* section_flags: mask of all section flags */
1286 (SEC_HAS_CONTENTS | SEC_ALLOC | SEC_LOAD | SEC_RELOC | SEC_READONLY |
1287 SEC_DATA),
1288
1289 /* ar_pad_char: pad character for filenames within an archive header
1290 FIXME: this really has nothing to do with ELF, this is a characteristic
1291 of the archiver and/or os and should be independently tunable */
1292 '/',
1293
1294 /* ar_max_namelen: maximum number of characters in an archive header
1295 FIXME: this really has nothing to do with ELF, this is a characteristic
1296 of the archiver and should be independently tunable. This value is
1297 a WAG (wild a** guess) */
1298 15,
1299
1300 /* align_power_min: minimum alignment restriction for any section
1301 FIXME: this value may be target machine dependent */
1302 3,
1303
1304 /* Routines to byte-swap various sized integers from the data sections */
1305 _do_getb64, _do_putb64, _do_getb32, _do_putb32, _do_getb16, _do_putb16,
1306
1307 /* Routines to byte-swap various sized integers from the file headers */
1308 _do_getb64, _do_putb64, _do_getb32, _do_putb32, _do_getb16, _do_putb16,
1309
1310 /* bfd_check_format: check the format of a file being read */
1311 { _bfd_dummy_target, /* unknown format */
1312 elf_object_p, /* assembler/linker output (object file) */
1313 bfd_generic_archive_p, /* an archive */
1314 elf_core_file_p /* a core file */
1315 },
1316
1317 /* bfd_set_format: set the format of a file being written */
1318 { bfd_false,
1319 elf_mkobject,
1320 _bfd_generic_mkarchive,
1321 bfd_false
1322 },
1323
1324 /* bfd_write_contents: write cached information into a file being written */
1325 { bfd_false,
1326 elf_write_object_contents,
1327 _bfd_write_archive_contents,
1328 bfd_false
1329 },
1330
1331 /* Initialize a jump table with the standard macro. All names start
1332 with "elf" */
1333 JUMP_TABLE(elf),
1334
1335 /* SWAP_TABLE */
1336 NULL, NULL, NULL
1337 };
1338
1339 bfd_target elf_little_vec =
1340 {
1341 /* name: identify kind of target */
1342 "elf-little",
1343
1344 /* flavour: general indication about file */
1345 bfd_target_elf_flavour,
1346
1347 /* byteorder_big_p: data is big endian */
1348 false, /* Nope -- this one's little endian */
1349
1350 /* header_byteorder_big_p: header is also big endian */
1351 false, /* Nope -- this one's little endian */
1352
1353 /* object_flags: mask of all file flags */
1354 (HAS_RELOC | EXEC_P | HAS_LINENO | HAS_DEBUG | HAS_SYMS | HAS_LOCALS |
1355 DYNAMIC | WP_TEXT),
1356
1357 /* section_flags: mask of all section flags */
1358 (SEC_HAS_CONTENTS | SEC_ALLOC | SEC_LOAD | SEC_RELOC | SEC_READONLY |
1359 SEC_DATA),
1360
1361 /* ar_pad_char: pad character for filenames within an archive header
1362 FIXME: this really has nothing to do with ELF, this is a characteristic
1363 of the archiver and/or os and should be independently tunable */
1364 '/',
1365
1366 /* ar_max_namelen: maximum number of characters in an archive header
1367 FIXME: this really has nothing to do with ELF, this is a characteristic
1368 of the archiver and should be independently tunable. This value is
1369 a WAG (wild a** guess) */
1370 15,
1371
1372 /* align_power_min: minimum alignment restriction for any section
1373 FIXME: this value may be target machine dependent */
1374 3,
1375
1376 /* Routines to byte-swap various sized integers from the data sections */
1377 _do_getl64, _do_putl64, _do_getl32, _do_putl32, _do_getl16, _do_putl16,
1378
1379 /* Routines to byte-swap various sized integers from the file headers */
1380 _do_getl64, _do_putl64, _do_getl32, _do_putl32, _do_getl16, _do_putl16,
1381
1382 /* bfd_check_format: check the format of a file being read */
1383 { _bfd_dummy_target, /* unknown format */
1384 elf_object_p, /* assembler/linker output (object file) */
1385 bfd_generic_archive_p, /* an archive */
1386 elf_core_file_p /* a core file */
1387 },
1388
1389 /* bfd_set_format: set the format of a file being written */
1390 { bfd_false,
1391 elf_mkobject,
1392 _bfd_generic_mkarchive,
1393 bfd_false
1394 },
1395
1396 /* bfd_write_contents: write cached information into a file being written */
1397 { bfd_false,
1398 elf_write_object_contents,
1399 _bfd_write_archive_contents,
1400 bfd_false
1401 },
1402
1403 /* Initialize a jump table with the standard macro. All names start
1404 with "elf" */
1405 JUMP_TABLE(elf),
1406
1407 /* SWAP_TABLE */
1408 NULL, NULL, NULL
1409 };
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