elflink.c revision 1.13.12.2 1 /* ELF linking support for BFD.
2 Copyright (C) 1995-2018 Free Software Foundation, Inc.
3
4 This file is part of BFD, the Binary File Descriptor library.
5
6 This program is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 3 of the License, or
9 (at your option) any later version.
10
11 This program is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
15
16 You should have received a copy of the GNU General Public License
17 along with this program; if not, write to the Free Software
18 Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
19 MA 02110-1301, USA. */
20
21 #include "sysdep.h"
22 #include "bfd.h"
23 #include "bfd_stdint.h"
24 #include "bfdlink.h"
25 #include "libbfd.h"
26 #define ARCH_SIZE 0
27 #include "elf-bfd.h"
28 #include "safe-ctype.h"
29 #include "libiberty.h"
30 #include "objalloc.h"
31 #if BFD_SUPPORTS_PLUGINS
32 #include "plugin-api.h"
33 #include "plugin.h"
34 #endif
35
36 /* This struct is used to pass information to routines called via
37 elf_link_hash_traverse which must return failure. */
38
39 struct elf_info_failed
40 {
41 struct bfd_link_info *info;
42 bfd_boolean failed;
43 };
44
45 /* This structure is used to pass information to
46 _bfd_elf_link_find_version_dependencies. */
47
48 struct elf_find_verdep_info
49 {
50 /* General link information. */
51 struct bfd_link_info *info;
52 /* The number of dependencies. */
53 unsigned int vers;
54 /* Whether we had a failure. */
55 bfd_boolean failed;
56 };
57
58 static bfd_boolean _bfd_elf_fix_symbol_flags
59 (struct elf_link_hash_entry *, struct elf_info_failed *);
60
61 asection *
62 _bfd_elf_section_for_symbol (struct elf_reloc_cookie *cookie,
63 unsigned long r_symndx,
64 bfd_boolean discard)
65 {
66 if (r_symndx >= cookie->locsymcount
67 || ELF_ST_BIND (cookie->locsyms[r_symndx].st_info) != STB_LOCAL)
68 {
69 struct elf_link_hash_entry *h;
70
71 h = cookie->sym_hashes[r_symndx - cookie->extsymoff];
72
73 while (h->root.type == bfd_link_hash_indirect
74 || h->root.type == bfd_link_hash_warning)
75 h = (struct elf_link_hash_entry *) h->root.u.i.link;
76
77 if ((h->root.type == bfd_link_hash_defined
78 || h->root.type == bfd_link_hash_defweak)
79 && discarded_section (h->root.u.def.section))
80 return h->root.u.def.section;
81 else
82 return NULL;
83 }
84 else
85 {
86 /* It's not a relocation against a global symbol,
87 but it could be a relocation against a local
88 symbol for a discarded section. */
89 asection *isec;
90 Elf_Internal_Sym *isym;
91
92 /* Need to: get the symbol; get the section. */
93 isym = &cookie->locsyms[r_symndx];
94 isec = bfd_section_from_elf_index (cookie->abfd, isym->st_shndx);
95 if (isec != NULL
96 && discard ? discarded_section (isec) : 1)
97 return isec;
98 }
99 return NULL;
100 }
101
102 /* Define a symbol in a dynamic linkage section. */
103
104 struct elf_link_hash_entry *
105 _bfd_elf_define_linkage_sym (bfd *abfd,
106 struct bfd_link_info *info,
107 asection *sec,
108 const char *name)
109 {
110 struct elf_link_hash_entry *h;
111 struct bfd_link_hash_entry *bh;
112 const struct elf_backend_data *bed;
113
114 h = elf_link_hash_lookup (elf_hash_table (info), name, FALSE, FALSE, FALSE);
115 if (h != NULL)
116 {
117 /* Zap symbol defined in an as-needed lib that wasn't linked.
118 This is a symptom of a larger problem: Absolute symbols
119 defined in shared libraries can't be overridden, because we
120 lose the link to the bfd which is via the symbol section. */
121 h->root.type = bfd_link_hash_new;
122 bh = &h->root;
123 }
124 else
125 bh = NULL;
126
127 bed = get_elf_backend_data (abfd);
128 if (!_bfd_generic_link_add_one_symbol (info, abfd, name, BSF_GLOBAL,
129 sec, 0, NULL, FALSE, bed->collect,
130 &bh))
131 return NULL;
132 h = (struct elf_link_hash_entry *) bh;
133 BFD_ASSERT (h != NULL);
134 h->def_regular = 1;
135 h->non_elf = 0;
136 h->root.linker_def = 1;
137 h->type = STT_OBJECT;
138 if (ELF_ST_VISIBILITY (h->other) != STV_INTERNAL)
139 h->other = (h->other & ~ELF_ST_VISIBILITY (-1)) | STV_HIDDEN;
140
141 (*bed->elf_backend_hide_symbol) (info, h, TRUE);
142 return h;
143 }
144
145 bfd_boolean
146 _bfd_elf_create_got_section (bfd *abfd, struct bfd_link_info *info)
147 {
148 flagword flags;
149 asection *s;
150 struct elf_link_hash_entry *h;
151 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
152 struct elf_link_hash_table *htab = elf_hash_table (info);
153
154 /* This function may be called more than once. */
155 if (htab->sgot != NULL)
156 return TRUE;
157
158 flags = bed->dynamic_sec_flags;
159
160 s = bfd_make_section_anyway_with_flags (abfd,
161 (bed->rela_plts_and_copies_p
162 ? ".rela.got" : ".rel.got"),
163 (bed->dynamic_sec_flags
164 | SEC_READONLY));
165 if (s == NULL
166 || ! bfd_set_section_alignment (abfd, s, bed->s->log_file_align))
167 return FALSE;
168 htab->srelgot = s;
169
170 s = bfd_make_section_anyway_with_flags (abfd, ".got", flags);
171 if (s == NULL
172 || !bfd_set_section_alignment (abfd, s, bed->s->log_file_align))
173 return FALSE;
174 htab->sgot = s;
175
176 if (bed->want_got_plt)
177 {
178 s = bfd_make_section_anyway_with_flags (abfd, ".got.plt", flags);
179 if (s == NULL
180 || !bfd_set_section_alignment (abfd, s,
181 bed->s->log_file_align))
182 return FALSE;
183 htab->sgotplt = s;
184 }
185
186 /* The first bit of the global offset table is the header. */
187 s->size += bed->got_header_size;
188
189 if (bed->want_got_sym)
190 {
191 /* Define the symbol _GLOBAL_OFFSET_TABLE_ at the start of the .got
192 (or .got.plt) section. We don't do this in the linker script
193 because we don't want to define the symbol if we are not creating
194 a global offset table. */
195 h = _bfd_elf_define_linkage_sym (abfd, info, s,
196 "_GLOBAL_OFFSET_TABLE_");
197 elf_hash_table (info)->hgot = h;
198 if (h == NULL)
199 return FALSE;
200 }
201
202 return TRUE;
203 }
204
205 /* Create a strtab to hold the dynamic symbol names. */
207 static bfd_boolean
208 _bfd_elf_link_create_dynstrtab (bfd *abfd, struct bfd_link_info *info)
209 {
210 struct elf_link_hash_table *hash_table;
211
212 hash_table = elf_hash_table (info);
213 if (hash_table->dynobj == NULL)
214 {
215 /* We may not set dynobj, an input file holding linker created
216 dynamic sections to abfd, which may be a dynamic object with
217 its own dynamic sections. We need to find a normal input file
218 to hold linker created sections if possible. */
219 if ((abfd->flags & (DYNAMIC | BFD_PLUGIN)) != 0)
220 {
221 bfd *ibfd;
222 asection *s;
223 for (ibfd = info->input_bfds; ibfd; ibfd = ibfd->link.next)
224 if ((ibfd->flags
225 & (DYNAMIC | BFD_LINKER_CREATED | BFD_PLUGIN)) == 0
226 && bfd_get_flavour (ibfd) == bfd_target_elf_flavour
227 && !((s = ibfd->sections) != NULL
228 && s->sec_info_type == SEC_INFO_TYPE_JUST_SYMS))
229 {
230 abfd = ibfd;
231 break;
232 }
233 }
234 hash_table->dynobj = abfd;
235 }
236
237 if (hash_table->dynstr == NULL)
238 {
239 hash_table->dynstr = _bfd_elf_strtab_init ();
240 if (hash_table->dynstr == NULL)
241 return FALSE;
242 }
243 return TRUE;
244 }
245
246 /* Create some sections which will be filled in with dynamic linking
247 information. ABFD is an input file which requires dynamic sections
248 to be created. The dynamic sections take up virtual memory space
249 when the final executable is run, so we need to create them before
250 addresses are assigned to the output sections. We work out the
251 actual contents and size of these sections later. */
252
253 bfd_boolean
254 _bfd_elf_link_create_dynamic_sections (bfd *abfd, struct bfd_link_info *info)
255 {
256 flagword flags;
257 asection *s;
258 const struct elf_backend_data *bed;
259 struct elf_link_hash_entry *h;
260
261 if (! is_elf_hash_table (info->hash))
262 return FALSE;
263
264 if (elf_hash_table (info)->dynamic_sections_created)
265 return TRUE;
266
267 if (!_bfd_elf_link_create_dynstrtab (abfd, info))
268 return FALSE;
269
270 abfd = elf_hash_table (info)->dynobj;
271 bed = get_elf_backend_data (abfd);
272
273 flags = bed->dynamic_sec_flags;
274
275 /* A dynamically linked executable has a .interp section, but a
276 shared library does not. */
277 if (bfd_link_executable (info) && !info->nointerp)
278 {
279 s = bfd_make_section_anyway_with_flags (abfd, ".interp",
280 flags | SEC_READONLY);
281 if (s == NULL)
282 return FALSE;
283 }
284
285 /* Create sections to hold version informations. These are removed
286 if they are not needed. */
287 s = bfd_make_section_anyway_with_flags (abfd, ".gnu.version_d",
288 flags | SEC_READONLY);
289 if (s == NULL
290 || ! bfd_set_section_alignment (abfd, s, bed->s->log_file_align))
291 return FALSE;
292
293 s = bfd_make_section_anyway_with_flags (abfd, ".gnu.version",
294 flags | SEC_READONLY);
295 if (s == NULL
296 || ! bfd_set_section_alignment (abfd, s, 1))
297 return FALSE;
298
299 s = bfd_make_section_anyway_with_flags (abfd, ".gnu.version_r",
300 flags | SEC_READONLY);
301 if (s == NULL
302 || ! bfd_set_section_alignment (abfd, s, bed->s->log_file_align))
303 return FALSE;
304
305 s = bfd_make_section_anyway_with_flags (abfd, ".dynsym",
306 flags | SEC_READONLY);
307 if (s == NULL
308 || ! bfd_set_section_alignment (abfd, s, bed->s->log_file_align))
309 return FALSE;
310 elf_hash_table (info)->dynsym = s;
311
312 s = bfd_make_section_anyway_with_flags (abfd, ".dynstr",
313 flags | SEC_READONLY);
314 if (s == NULL)
315 return FALSE;
316
317 s = bfd_make_section_anyway_with_flags (abfd, ".dynamic", flags);
318 if (s == NULL
319 || ! bfd_set_section_alignment (abfd, s, bed->s->log_file_align))
320 return FALSE;
321
322 /* The special symbol _DYNAMIC is always set to the start of the
323 .dynamic section. We could set _DYNAMIC in a linker script, but we
324 only want to define it if we are, in fact, creating a .dynamic
325 section. We don't want to define it if there is no .dynamic
326 section, since on some ELF platforms the start up code examines it
327 to decide how to initialize the process. */
328 h = _bfd_elf_define_linkage_sym (abfd, info, s, "_DYNAMIC");
329 elf_hash_table (info)->hdynamic = h;
330 if (h == NULL)
331 return FALSE;
332
333 if (info->emit_hash)
334 {
335 s = bfd_make_section_anyway_with_flags (abfd, ".hash",
336 flags | SEC_READONLY);
337 if (s == NULL
338 || ! bfd_set_section_alignment (abfd, s, bed->s->log_file_align))
339 return FALSE;
340 elf_section_data (s)->this_hdr.sh_entsize = bed->s->sizeof_hash_entry;
341 }
342
343 if (info->emit_gnu_hash)
344 {
345 s = bfd_make_section_anyway_with_flags (abfd, ".gnu.hash",
346 flags | SEC_READONLY);
347 if (s == NULL
348 || ! bfd_set_section_alignment (abfd, s, bed->s->log_file_align))
349 return FALSE;
350 /* For 64-bit ELF, .gnu.hash is a non-uniform entity size section:
351 4 32-bit words followed by variable count of 64-bit words, then
352 variable count of 32-bit words. */
353 if (bed->s->arch_size == 64)
354 elf_section_data (s)->this_hdr.sh_entsize = 0;
355 else
356 elf_section_data (s)->this_hdr.sh_entsize = 4;
357 }
358
359 /* Let the backend create the rest of the sections. This lets the
360 backend set the right flags. The backend will normally create
361 the .got and .plt sections. */
362 if (bed->elf_backend_create_dynamic_sections == NULL
363 || ! (*bed->elf_backend_create_dynamic_sections) (abfd, info))
364 return FALSE;
365
366 elf_hash_table (info)->dynamic_sections_created = TRUE;
367
368 return TRUE;
369 }
370
371 /* Create dynamic sections when linking against a dynamic object. */
372
373 bfd_boolean
374 _bfd_elf_create_dynamic_sections (bfd *abfd, struct bfd_link_info *info)
375 {
376 flagword flags, pltflags;
377 struct elf_link_hash_entry *h;
378 asection *s;
379 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
380 struct elf_link_hash_table *htab = elf_hash_table (info);
381
382 /* We need to create .plt, .rel[a].plt, .got, .got.plt, .dynbss, and
383 .rel[a].bss sections. */
384 flags = bed->dynamic_sec_flags;
385
386 pltflags = flags;
387 if (bed->plt_not_loaded)
388 /* We do not clear SEC_ALLOC here because we still want the OS to
389 allocate space for the section; it's just that there's nothing
390 to read in from the object file. */
391 pltflags &= ~ (SEC_CODE | SEC_LOAD | SEC_HAS_CONTENTS);
392 else
393 pltflags |= SEC_ALLOC | SEC_CODE | SEC_LOAD;
394 if (bed->plt_readonly)
395 pltflags |= SEC_READONLY;
396
397 s = bfd_make_section_anyway_with_flags (abfd, ".plt", pltflags);
398 if (s == NULL
399 || ! bfd_set_section_alignment (abfd, s, bed->plt_alignment))
400 return FALSE;
401 htab->splt = s;
402
403 /* Define the symbol _PROCEDURE_LINKAGE_TABLE_ at the start of the
404 .plt section. */
405 if (bed->want_plt_sym)
406 {
407 h = _bfd_elf_define_linkage_sym (abfd, info, s,
408 "_PROCEDURE_LINKAGE_TABLE_");
409 elf_hash_table (info)->hplt = h;
410 if (h == NULL)
411 return FALSE;
412 }
413
414 s = bfd_make_section_anyway_with_flags (abfd,
415 (bed->rela_plts_and_copies_p
416 ? ".rela.plt" : ".rel.plt"),
417 flags | SEC_READONLY);
418 if (s == NULL
419 || ! bfd_set_section_alignment (abfd, s, bed->s->log_file_align))
420 return FALSE;
421 htab->srelplt = s;
422
423 if (! _bfd_elf_create_got_section (abfd, info))
424 return FALSE;
425
426 if (bed->want_dynbss)
427 {
428 /* The .dynbss section is a place to put symbols which are defined
429 by dynamic objects, are referenced by regular objects, and are
430 not functions. We must allocate space for them in the process
431 image and use a R_*_COPY reloc to tell the dynamic linker to
432 initialize them at run time. The linker script puts the .dynbss
433 section into the .bss section of the final image. */
434 s = bfd_make_section_anyway_with_flags (abfd, ".dynbss",
435 SEC_ALLOC | SEC_LINKER_CREATED);
436 if (s == NULL)
437 return FALSE;
438 htab->sdynbss = s;
439
440 if (bed->want_dynrelro)
441 {
442 /* Similarly, but for symbols that were originally in read-only
443 sections. This section doesn't really need to have contents,
444 but make it like other .data.rel.ro sections. */
445 s = bfd_make_section_anyway_with_flags (abfd, ".data.rel.ro",
446 flags);
447 if (s == NULL)
448 return FALSE;
449 htab->sdynrelro = s;
450 }
451
452 /* The .rel[a].bss section holds copy relocs. This section is not
453 normally needed. We need to create it here, though, so that the
454 linker will map it to an output section. We can't just create it
455 only if we need it, because we will not know whether we need it
456 until we have seen all the input files, and the first time the
457 main linker code calls BFD after examining all the input files
458 (size_dynamic_sections) the input sections have already been
459 mapped to the output sections. If the section turns out not to
460 be needed, we can discard it later. We will never need this
461 section when generating a shared object, since they do not use
462 copy relocs. */
463 if (bfd_link_executable (info))
464 {
465 s = bfd_make_section_anyway_with_flags (abfd,
466 (bed->rela_plts_and_copies_p
467 ? ".rela.bss" : ".rel.bss"),
468 flags | SEC_READONLY);
469 if (s == NULL
470 || ! bfd_set_section_alignment (abfd, s, bed->s->log_file_align))
471 return FALSE;
472 htab->srelbss = s;
473
474 if (bed->want_dynrelro)
475 {
476 s = (bfd_make_section_anyway_with_flags
477 (abfd, (bed->rela_plts_and_copies_p
478 ? ".rela.data.rel.ro" : ".rel.data.rel.ro"),
479 flags | SEC_READONLY));
480 if (s == NULL
481 || ! bfd_set_section_alignment (abfd, s,
482 bed->s->log_file_align))
483 return FALSE;
484 htab->sreldynrelro = s;
485 }
486 }
487 }
488
489 return TRUE;
490 }
491
492 /* Record a new dynamic symbol. We record the dynamic symbols as we
494 read the input files, since we need to have a list of all of them
495 before we can determine the final sizes of the output sections.
496 Note that we may actually call this function even though we are not
497 going to output any dynamic symbols; in some cases we know that a
498 symbol should be in the dynamic symbol table, but only if there is
499 one. */
500
501 bfd_boolean
502 bfd_elf_link_record_dynamic_symbol (struct bfd_link_info *info,
503 struct elf_link_hash_entry *h)
504 {
505 if (h->dynindx == -1)
506 {
507 struct elf_strtab_hash *dynstr;
508 char *p;
509 const char *name;
510 size_t indx;
511
512 /* XXX: The ABI draft says the linker must turn hidden and
513 internal symbols into STB_LOCAL symbols when producing the
514 DSO. However, if ld.so honors st_other in the dynamic table,
515 this would not be necessary. */
516 switch (ELF_ST_VISIBILITY (h->other))
517 {
518 case STV_INTERNAL:
519 case STV_HIDDEN:
520 if (h->root.type != bfd_link_hash_undefined
521 && h->root.type != bfd_link_hash_undefweak)
522 {
523 h->forced_local = 1;
524 if (!elf_hash_table (info)->is_relocatable_executable)
525 return TRUE;
526 }
527
528 default:
529 break;
530 }
531
532 h->dynindx = elf_hash_table (info)->dynsymcount;
533 ++elf_hash_table (info)->dynsymcount;
534
535 dynstr = elf_hash_table (info)->dynstr;
536 if (dynstr == NULL)
537 {
538 /* Create a strtab to hold the dynamic symbol names. */
539 elf_hash_table (info)->dynstr = dynstr = _bfd_elf_strtab_init ();
540 if (dynstr == NULL)
541 return FALSE;
542 }
543
544 /* We don't put any version information in the dynamic string
545 table. */
546 name = h->root.root.string;
547 p = strchr (name, ELF_VER_CHR);
548 if (p != NULL)
549 /* We know that the p points into writable memory. In fact,
550 there are only a few symbols that have read-only names, being
551 those like _GLOBAL_OFFSET_TABLE_ that are created specially
552 by the backends. Most symbols will have names pointing into
553 an ELF string table read from a file, or to objalloc memory. */
554 *p = 0;
555
556 indx = _bfd_elf_strtab_add (dynstr, name, p != NULL);
557
558 if (p != NULL)
559 *p = ELF_VER_CHR;
560
561 if (indx == (size_t) -1)
562 return FALSE;
563 h->dynstr_index = indx;
564 }
565
566 return TRUE;
567 }
568
569 /* Mark a symbol dynamic. */
571
572 static void
573 bfd_elf_link_mark_dynamic_symbol (struct bfd_link_info *info,
574 struct elf_link_hash_entry *h,
575 Elf_Internal_Sym *sym)
576 {
577 struct bfd_elf_dynamic_list *d = info->dynamic_list;
578
579 /* It may be called more than once on the same H. */
580 if(h->dynamic || bfd_link_relocatable (info))
581 return;
582
583 if ((info->dynamic_data
584 && (h->type == STT_OBJECT
585 || h->type == STT_COMMON
586 || (sym != NULL
587 && (ELF_ST_TYPE (sym->st_info) == STT_OBJECT
588 || ELF_ST_TYPE (sym->st_info) == STT_COMMON))))
589 || (d != NULL
590 && h->non_elf
591 && (*d->match) (&d->head, NULL, h->root.root.string)))
592 h->dynamic = 1;
593 }
594
595 /* Record an assignment to a symbol made by a linker script. We need
596 this in case some dynamic object refers to this symbol. */
597
598 bfd_boolean
599 bfd_elf_record_link_assignment (bfd *output_bfd,
600 struct bfd_link_info *info,
601 const char *name,
602 bfd_boolean provide,
603 bfd_boolean hidden)
604 {
605 struct elf_link_hash_entry *h, *hv;
606 struct elf_link_hash_table *htab;
607 const struct elf_backend_data *bed;
608
609 if (!is_elf_hash_table (info->hash))
610 return TRUE;
611
612 htab = elf_hash_table (info);
613 h = elf_link_hash_lookup (htab, name, !provide, TRUE, FALSE);
614 if (h == NULL)
615 return provide;
616
617 if (h->root.type == bfd_link_hash_warning)
618 h = (struct elf_link_hash_entry *) h->root.u.i.link;
619
620 if (h->versioned == unknown)
621 {
622 /* Set versioned if symbol version is unknown. */
623 char *version = strrchr (name, ELF_VER_CHR);
624 if (version)
625 {
626 if (version > name && version[-1] != ELF_VER_CHR)
627 h->versioned = versioned_hidden;
628 else
629 h->versioned = versioned;
630 }
631 }
632
633 /* Symbols defined in a linker script but not referenced anywhere
634 else will have non_elf set. */
635 if (h->non_elf)
636 {
637 bfd_elf_link_mark_dynamic_symbol (info, h, NULL);
638 h->non_elf = 0;
639 }
640
641 switch (h->root.type)
642 {
643 case bfd_link_hash_defined:
644 case bfd_link_hash_defweak:
645 case bfd_link_hash_common:
646 break;
647 case bfd_link_hash_undefweak:
648 case bfd_link_hash_undefined:
649 /* Since we're defining the symbol, don't let it seem to have not
650 been defined. record_dynamic_symbol and size_dynamic_sections
651 may depend on this. */
652 h->root.type = bfd_link_hash_new;
653 if (h->root.u.undef.next != NULL || htab->root.undefs_tail == &h->root)
654 bfd_link_repair_undef_list (&htab->root);
655 break;
656 case bfd_link_hash_new:
657 break;
658 case bfd_link_hash_indirect:
659 /* We had a versioned symbol in a dynamic library. We make the
660 the versioned symbol point to this one. */
661 bed = get_elf_backend_data (output_bfd);
662 hv = h;
663 while (hv->root.type == bfd_link_hash_indirect
664 || hv->root.type == bfd_link_hash_warning)
665 hv = (struct elf_link_hash_entry *) hv->root.u.i.link;
666 /* We don't need to update h->root.u since linker will set them
667 later. */
668 h->root.type = bfd_link_hash_undefined;
669 hv->root.type = bfd_link_hash_indirect;
670 hv->root.u.i.link = (struct bfd_link_hash_entry *) h;
671 (*bed->elf_backend_copy_indirect_symbol) (info, h, hv);
672 break;
673 default:
674 BFD_FAIL ();
675 return FALSE;
676 }
677
678 /* If this symbol is being provided by the linker script, and it is
679 currently defined by a dynamic object, but not by a regular
680 object, then mark it as undefined so that the generic linker will
681 force the correct value. */
682 if (provide
683 && h->def_dynamic
684 && !h->def_regular)
685 h->root.type = bfd_link_hash_undefined;
686
687 /* If this symbol is not being provided by the linker script, and it is
688 currently defined by a dynamic object, but not by a regular object,
689 then clear out any version information because the symbol will not be
690 associated with the dynamic object any more. */
691 if (!provide
692 && h->def_dynamic
693 && !h->def_regular)
694 h->verinfo.verdef = NULL;
695
696 /* Make sure this symbol is not garbage collected. */
697 h->mark = 1;
698
699 h->def_regular = 1;
700
701 if (hidden)
702 {
703 bed = get_elf_backend_data (output_bfd);
704 if (ELF_ST_VISIBILITY (h->other) != STV_INTERNAL)
705 h->other = (h->other & ~ELF_ST_VISIBILITY (-1)) | STV_HIDDEN;
706 (*bed->elf_backend_hide_symbol) (info, h, TRUE);
707 }
708
709 /* STV_HIDDEN and STV_INTERNAL symbols must be STB_LOCAL in shared objects
710 and executables. */
711 if (!bfd_link_relocatable (info)
712 && h->dynindx != -1
713 && (ELF_ST_VISIBILITY (h->other) == STV_HIDDEN
714 || ELF_ST_VISIBILITY (h->other) == STV_INTERNAL))
715 h->forced_local = 1;
716
717 if ((h->def_dynamic
718 || h->ref_dynamic
719 || bfd_link_dll (info)
720 || elf_hash_table (info)->is_relocatable_executable)
721 && h->dynindx == -1)
722 {
723 if (! bfd_elf_link_record_dynamic_symbol (info, h))
724 return FALSE;
725
726 /* If this is a weak defined symbol, and we know a corresponding
727 real symbol from the same dynamic object, make sure the real
728 symbol is also made into a dynamic symbol. */
729 if (h->is_weakalias)
730 {
731 struct elf_link_hash_entry *def = weakdef (h);
732
733 if (def->dynindx == -1
734 && !bfd_elf_link_record_dynamic_symbol (info, def))
735 return FALSE;
736 }
737 }
738
739 return TRUE;
740 }
741
742 /* Record a new local dynamic symbol. Returns 0 on failure, 1 on
743 success, and 2 on a failure caused by attempting to record a symbol
744 in a discarded section, eg. a discarded link-once section symbol. */
745
746 int
747 bfd_elf_link_record_local_dynamic_symbol (struct bfd_link_info *info,
748 bfd *input_bfd,
749 long input_indx)
750 {
751 bfd_size_type amt;
752 struct elf_link_local_dynamic_entry *entry;
753 struct elf_link_hash_table *eht;
754 struct elf_strtab_hash *dynstr;
755 size_t dynstr_index;
756 char *name;
757 Elf_External_Sym_Shndx eshndx;
758 char esym[sizeof (Elf64_External_Sym)];
759
760 if (! is_elf_hash_table (info->hash))
761 return 0;
762
763 /* See if the entry exists already. */
764 for (entry = elf_hash_table (info)->dynlocal; entry ; entry = entry->next)
765 if (entry->input_bfd == input_bfd && entry->input_indx == input_indx)
766 return 1;
767
768 amt = sizeof (*entry);
769 entry = (struct elf_link_local_dynamic_entry *) bfd_alloc (input_bfd, amt);
770 if (entry == NULL)
771 return 0;
772
773 /* Go find the symbol, so that we can find it's name. */
774 if (!bfd_elf_get_elf_syms (input_bfd, &elf_tdata (input_bfd)->symtab_hdr,
775 1, input_indx, &entry->isym, esym, &eshndx))
776 {
777 bfd_release (input_bfd, entry);
778 return 0;
779 }
780
781 if (entry->isym.st_shndx != SHN_UNDEF
782 && entry->isym.st_shndx < SHN_LORESERVE)
783 {
784 asection *s;
785
786 s = bfd_section_from_elf_index (input_bfd, entry->isym.st_shndx);
787 if (s == NULL || bfd_is_abs_section (s->output_section))
788 {
789 /* We can still bfd_release here as nothing has done another
790 bfd_alloc. We can't do this later in this function. */
791 bfd_release (input_bfd, entry);
792 return 2;
793 }
794 }
795
796 name = (bfd_elf_string_from_elf_section
797 (input_bfd, elf_tdata (input_bfd)->symtab_hdr.sh_link,
798 entry->isym.st_name));
799
800 dynstr = elf_hash_table (info)->dynstr;
801 if (dynstr == NULL)
802 {
803 /* Create a strtab to hold the dynamic symbol names. */
804 elf_hash_table (info)->dynstr = dynstr = _bfd_elf_strtab_init ();
805 if (dynstr == NULL)
806 return 0;
807 }
808
809 dynstr_index = _bfd_elf_strtab_add (dynstr, name, FALSE);
810 if (dynstr_index == (size_t) -1)
811 return 0;
812 entry->isym.st_name = dynstr_index;
813
814 eht = elf_hash_table (info);
815
816 entry->next = eht->dynlocal;
817 eht->dynlocal = entry;
818 entry->input_bfd = input_bfd;
819 entry->input_indx = input_indx;
820 eht->dynsymcount++;
821
822 /* Whatever binding the symbol had before, it's now local. */
823 entry->isym.st_info
824 = ELF_ST_INFO (STB_LOCAL, ELF_ST_TYPE (entry->isym.st_info));
825
826 /* The dynindx will be set at the end of size_dynamic_sections. */
827
828 return 1;
829 }
830
831 /* Return the dynindex of a local dynamic symbol. */
832
833 long
834 _bfd_elf_link_lookup_local_dynindx (struct bfd_link_info *info,
835 bfd *input_bfd,
836 long input_indx)
837 {
838 struct elf_link_local_dynamic_entry *e;
839
840 for (e = elf_hash_table (info)->dynlocal; e ; e = e->next)
841 if (e->input_bfd == input_bfd && e->input_indx == input_indx)
842 return e->dynindx;
843 return -1;
844 }
845
846 /* This function is used to renumber the dynamic symbols, if some of
847 them are removed because they are marked as local. This is called
848 via elf_link_hash_traverse. */
849
850 static bfd_boolean
851 elf_link_renumber_hash_table_dynsyms (struct elf_link_hash_entry *h,
852 void *data)
853 {
854 size_t *count = (size_t *) data;
855
856 if (h->forced_local)
857 return TRUE;
858
859 if (h->dynindx != -1)
860 h->dynindx = ++(*count);
861
862 return TRUE;
863 }
864
865
866 /* Like elf_link_renumber_hash_table_dynsyms, but just number symbols with
867 STB_LOCAL binding. */
868
869 static bfd_boolean
870 elf_link_renumber_local_hash_table_dynsyms (struct elf_link_hash_entry *h,
871 void *data)
872 {
873 size_t *count = (size_t *) data;
874
875 if (!h->forced_local)
876 return TRUE;
877
878 if (h->dynindx != -1)
879 h->dynindx = ++(*count);
880
881 return TRUE;
882 }
883
884 /* Return true if the dynamic symbol for a given section should be
885 omitted when creating a shared library. */
886 bfd_boolean
887 _bfd_elf_link_omit_section_dynsym (bfd *output_bfd ATTRIBUTE_UNUSED,
888 struct bfd_link_info *info,
889 asection *p)
890 {
891 struct elf_link_hash_table *htab;
892 asection *ip;
893
894 switch (elf_section_data (p)->this_hdr.sh_type)
895 {
896 case SHT_PROGBITS:
897 case SHT_NOBITS:
898 /* If sh_type is yet undecided, assume it could be
899 SHT_PROGBITS/SHT_NOBITS. */
900 case SHT_NULL:
901 htab = elf_hash_table (info);
902 if (p == htab->tls_sec)
903 return FALSE;
904
905 if (htab->text_index_section != NULL)
906 return p != htab->text_index_section && p != htab->data_index_section;
907
908 return (htab->dynobj != NULL
909 && (ip = bfd_get_linker_section (htab->dynobj, p->name)) != NULL
910 && ip->output_section == p);
911
912 /* There shouldn't be section relative relocations
913 against any other section. */
914 default:
915 return TRUE;
916 }
917 }
918
919 /* Assign dynsym indices. In a shared library we generate a section
920 symbol for each output section, which come first. Next come symbols
921 which have been forced to local binding. Then all of the back-end
922 allocated local dynamic syms, followed by the rest of the global
923 symbols. If SECTION_SYM_COUNT is NULL, section dynindx is not set.
924 (This prevents the early call before elf_backend_init_index_section
925 and strip_excluded_output_sections setting dynindx for sections
926 that are stripped.) */
927
928 static unsigned long
929 _bfd_elf_link_renumber_dynsyms (bfd *output_bfd,
930 struct bfd_link_info *info,
931 unsigned long *section_sym_count)
932 {
933 unsigned long dynsymcount = 0;
934 bfd_boolean do_sec = section_sym_count != NULL;
935
936 if (bfd_link_pic (info)
937 || elf_hash_table (info)->is_relocatable_executable)
938 {
939 const struct elf_backend_data *bed = get_elf_backend_data (output_bfd);
940 asection *p;
941 for (p = output_bfd->sections; p ; p = p->next)
942 if ((p->flags & SEC_EXCLUDE) == 0
943 && (p->flags & SEC_ALLOC) != 0
944 && !(*bed->elf_backend_omit_section_dynsym) (output_bfd, info, p))
945 {
946 ++dynsymcount;
947 if (do_sec)
948 elf_section_data (p)->dynindx = dynsymcount;
949 }
950 else if (do_sec)
951 elf_section_data (p)->dynindx = 0;
952 }
953 if (do_sec)
954 *section_sym_count = dynsymcount;
955
956 elf_link_hash_traverse (elf_hash_table (info),
957 elf_link_renumber_local_hash_table_dynsyms,
958 &dynsymcount);
959
960 if (elf_hash_table (info)->dynlocal)
961 {
962 struct elf_link_local_dynamic_entry *p;
963 for (p = elf_hash_table (info)->dynlocal; p ; p = p->next)
964 p->dynindx = ++dynsymcount;
965 }
966 elf_hash_table (info)->local_dynsymcount = dynsymcount;
967
968 elf_link_hash_traverse (elf_hash_table (info),
969 elf_link_renumber_hash_table_dynsyms,
970 &dynsymcount);
971
972 /* There is an unused NULL entry at the head of the table which we
973 must account for in our count even if the table is empty since it
974 is intended for the mandatory DT_SYMTAB tag (.dynsym section) in
975 .dynamic section. */
976 dynsymcount++;
977
978 elf_hash_table (info)->dynsymcount = dynsymcount;
979 return dynsymcount;
980 }
981
982 /* Merge st_other field. */
983
984 static void
985 elf_merge_st_other (bfd *abfd, struct elf_link_hash_entry *h,
986 const Elf_Internal_Sym *isym, asection *sec,
987 bfd_boolean definition, bfd_boolean dynamic)
988 {
989 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
990
991 /* If st_other has a processor-specific meaning, specific
992 code might be needed here. */
993 if (bed->elf_backend_merge_symbol_attribute)
994 (*bed->elf_backend_merge_symbol_attribute) (h, isym, definition,
995 dynamic);
996
997 if (!dynamic)
998 {
999 unsigned symvis = ELF_ST_VISIBILITY (isym->st_other);
1000 unsigned hvis = ELF_ST_VISIBILITY (h->other);
1001
1002 /* Keep the most constraining visibility. Leave the remainder
1003 of the st_other field to elf_backend_merge_symbol_attribute. */
1004 if (symvis - 1 < hvis - 1)
1005 h->other = symvis | (h->other & ~ELF_ST_VISIBILITY (-1));
1006 }
1007 else if (definition
1008 && ELF_ST_VISIBILITY (isym->st_other) != STV_DEFAULT
1009 && (sec->flags & SEC_READONLY) == 0)
1010 h->protected_def = 1;
1011 }
1012
1013 /* This function is called when we want to merge a new symbol with an
1014 existing symbol. It handles the various cases which arise when we
1015 find a definition in a dynamic object, or when there is already a
1016 definition in a dynamic object. The new symbol is described by
1017 NAME, SYM, PSEC, and PVALUE. We set SYM_HASH to the hash table
1018 entry. We set POLDBFD to the old symbol's BFD. We set POLD_WEAK
1019 if the old symbol was weak. We set POLD_ALIGNMENT to the alignment
1020 of an old common symbol. We set OVERRIDE if the old symbol is
1021 overriding a new definition. We set TYPE_CHANGE_OK if it is OK for
1022 the type to change. We set SIZE_CHANGE_OK if it is OK for the size
1023 to change. By OK to change, we mean that we shouldn't warn if the
1024 type or size does change. */
1025
1026 static bfd_boolean
1027 _bfd_elf_merge_symbol (bfd *abfd,
1028 struct bfd_link_info *info,
1029 const char *name,
1030 Elf_Internal_Sym *sym,
1031 asection **psec,
1032 bfd_vma *pvalue,
1033 struct elf_link_hash_entry **sym_hash,
1034 bfd **poldbfd,
1035 bfd_boolean *pold_weak,
1036 unsigned int *pold_alignment,
1037 bfd_boolean *skip,
1038 bfd_boolean *override,
1039 bfd_boolean *type_change_ok,
1040 bfd_boolean *size_change_ok,
1041 bfd_boolean *matched)
1042 {
1043 asection *sec, *oldsec;
1044 struct elf_link_hash_entry *h;
1045 struct elf_link_hash_entry *hi;
1046 struct elf_link_hash_entry *flip;
1047 int bind;
1048 bfd *oldbfd;
1049 bfd_boolean newdyn, olddyn, olddef, newdef, newdyncommon, olddyncommon;
1050 bfd_boolean newweak, oldweak, newfunc, oldfunc;
1051 const struct elf_backend_data *bed;
1052 char *new_version;
1053 bfd_boolean default_sym = *matched;
1054
1055 *skip = FALSE;
1056 *override = FALSE;
1057
1058 sec = *psec;
1059 bind = ELF_ST_BIND (sym->st_info);
1060
1061 if (! bfd_is_und_section (sec))
1062 h = elf_link_hash_lookup (elf_hash_table (info), name, TRUE, FALSE, FALSE);
1063 else
1064 h = ((struct elf_link_hash_entry *)
1065 bfd_wrapped_link_hash_lookup (abfd, info, name, TRUE, FALSE, FALSE));
1066 if (h == NULL)
1067 return FALSE;
1068 *sym_hash = h;
1069
1070 bed = get_elf_backend_data (abfd);
1071
1072 /* NEW_VERSION is the symbol version of the new symbol. */
1073 if (h->versioned != unversioned)
1074 {
1075 /* Symbol version is unknown or versioned. */
1076 new_version = strrchr (name, ELF_VER_CHR);
1077 if (new_version)
1078 {
1079 if (h->versioned == unknown)
1080 {
1081 if (new_version > name && new_version[-1] != ELF_VER_CHR)
1082 h->versioned = versioned_hidden;
1083 else
1084 h->versioned = versioned;
1085 }
1086 new_version += 1;
1087 if (new_version[0] == '\0')
1088 new_version = NULL;
1089 }
1090 else
1091 h->versioned = unversioned;
1092 }
1093 else
1094 new_version = NULL;
1095
1096 /* For merging, we only care about real symbols. But we need to make
1097 sure that indirect symbol dynamic flags are updated. */
1098 hi = h;
1099 while (h->root.type == bfd_link_hash_indirect
1100 || h->root.type == bfd_link_hash_warning)
1101 h = (struct elf_link_hash_entry *) h->root.u.i.link;
1102
1103 if (!*matched)
1104 {
1105 if (hi == h || h->root.type == bfd_link_hash_new)
1106 *matched = TRUE;
1107 else
1108 {
1109 /* OLD_HIDDEN is true if the existing symbol is only visible
1110 to the symbol with the same symbol version. NEW_HIDDEN is
1111 true if the new symbol is only visible to the symbol with
1112 the same symbol version. */
1113 bfd_boolean old_hidden = h->versioned == versioned_hidden;
1114 bfd_boolean new_hidden = hi->versioned == versioned_hidden;
1115 if (!old_hidden && !new_hidden)
1116 /* The new symbol matches the existing symbol if both
1117 aren't hidden. */
1118 *matched = TRUE;
1119 else
1120 {
1121 /* OLD_VERSION is the symbol version of the existing
1122 symbol. */
1123 char *old_version;
1124
1125 if (h->versioned >= versioned)
1126 old_version = strrchr (h->root.root.string,
1127 ELF_VER_CHR) + 1;
1128 else
1129 old_version = NULL;
1130
1131 /* The new symbol matches the existing symbol if they
1132 have the same symbol version. */
1133 *matched = (old_version == new_version
1134 || (old_version != NULL
1135 && new_version != NULL
1136 && strcmp (old_version, new_version) == 0));
1137 }
1138 }
1139 }
1140
1141 /* OLDBFD and OLDSEC are a BFD and an ASECTION associated with the
1142 existing symbol. */
1143
1144 oldbfd = NULL;
1145 oldsec = NULL;
1146 switch (h->root.type)
1147 {
1148 default:
1149 break;
1150
1151 case bfd_link_hash_undefined:
1152 case bfd_link_hash_undefweak:
1153 oldbfd = h->root.u.undef.abfd;
1154 break;
1155
1156 case bfd_link_hash_defined:
1157 case bfd_link_hash_defweak:
1158 oldbfd = h->root.u.def.section->owner;
1159 oldsec = h->root.u.def.section;
1160 break;
1161
1162 case bfd_link_hash_common:
1163 oldbfd = h->root.u.c.p->section->owner;
1164 oldsec = h->root.u.c.p->section;
1165 if (pold_alignment)
1166 *pold_alignment = h->root.u.c.p->alignment_power;
1167 break;
1168 }
1169 if (poldbfd && *poldbfd == NULL)
1170 *poldbfd = oldbfd;
1171
1172 /* Differentiate strong and weak symbols. */
1173 newweak = bind == STB_WEAK;
1174 oldweak = (h->root.type == bfd_link_hash_defweak
1175 || h->root.type == bfd_link_hash_undefweak);
1176 if (pold_weak)
1177 *pold_weak = oldweak;
1178
1179 /* We have to check it for every instance since the first few may be
1180 references and not all compilers emit symbol type for undefined
1181 symbols. */
1182 bfd_elf_link_mark_dynamic_symbol (info, h, sym);
1183
1184 /* NEWDYN and OLDDYN indicate whether the new or old symbol,
1185 respectively, is from a dynamic object. */
1186
1187 newdyn = (abfd->flags & DYNAMIC) != 0;
1188
1189 /* ref_dynamic_nonweak and dynamic_def flags track actual undefined
1190 syms and defined syms in dynamic libraries respectively.
1191 ref_dynamic on the other hand can be set for a symbol defined in
1192 a dynamic library, and def_dynamic may not be set; When the
1193 definition in a dynamic lib is overridden by a definition in the
1194 executable use of the symbol in the dynamic lib becomes a
1195 reference to the executable symbol. */
1196 if (newdyn)
1197 {
1198 if (bfd_is_und_section (sec))
1199 {
1200 if (bind != STB_WEAK)
1201 {
1202 h->ref_dynamic_nonweak = 1;
1203 hi->ref_dynamic_nonweak = 1;
1204 }
1205 }
1206 else
1207 {
1208 /* Update the existing symbol only if they match. */
1209 if (*matched)
1210 h->dynamic_def = 1;
1211 hi->dynamic_def = 1;
1212 }
1213 }
1214
1215 /* If we just created the symbol, mark it as being an ELF symbol.
1216 Other than that, there is nothing to do--there is no merge issue
1217 with a newly defined symbol--so we just return. */
1218
1219 if (h->root.type == bfd_link_hash_new)
1220 {
1221 h->non_elf = 0;
1222 return TRUE;
1223 }
1224
1225 /* In cases involving weak versioned symbols, we may wind up trying
1226 to merge a symbol with itself. Catch that here, to avoid the
1227 confusion that results if we try to override a symbol with
1228 itself. The additional tests catch cases like
1229 _GLOBAL_OFFSET_TABLE_, which are regular symbols defined in a
1230 dynamic object, which we do want to handle here. */
1231 if (abfd == oldbfd
1232 && (newweak || oldweak)
1233 && ((abfd->flags & DYNAMIC) == 0
1234 || !h->def_regular))
1235 return TRUE;
1236
1237 olddyn = FALSE;
1238 if (oldbfd != NULL)
1239 olddyn = (oldbfd->flags & DYNAMIC) != 0;
1240 else if (oldsec != NULL)
1241 {
1242 /* This handles the special SHN_MIPS_{TEXT,DATA} section
1243 indices used by MIPS ELF. */
1244 olddyn = (oldsec->symbol->flags & BSF_DYNAMIC) != 0;
1245 }
1246
1247 /* Handle a case where plugin_notice won't be called and thus won't
1248 set the non_ir_ref flags on the first pass over symbols. */
1249 if (oldbfd != NULL
1250 && (oldbfd->flags & BFD_PLUGIN) != (abfd->flags & BFD_PLUGIN)
1251 && newdyn != olddyn)
1252 {
1253 h->root.non_ir_ref_dynamic = TRUE;
1254 hi->root.non_ir_ref_dynamic = TRUE;
1255 }
1256
1257 /* NEWDEF and OLDDEF indicate whether the new or old symbol,
1258 respectively, appear to be a definition rather than reference. */
1259
1260 newdef = !bfd_is_und_section (sec) && !bfd_is_com_section (sec);
1261
1262 olddef = (h->root.type != bfd_link_hash_undefined
1263 && h->root.type != bfd_link_hash_undefweak
1264 && h->root.type != bfd_link_hash_common);
1265
1266 /* NEWFUNC and OLDFUNC indicate whether the new or old symbol,
1267 respectively, appear to be a function. */
1268
1269 newfunc = (ELF_ST_TYPE (sym->st_info) != STT_NOTYPE
1270 && bed->is_function_type (ELF_ST_TYPE (sym->st_info)));
1271
1272 oldfunc = (h->type != STT_NOTYPE
1273 && bed->is_function_type (h->type));
1274
1275 if (!(newfunc && oldfunc)
1276 && ELF_ST_TYPE (sym->st_info) != h->type
1277 && ELF_ST_TYPE (sym->st_info) != STT_NOTYPE
1278 && h->type != STT_NOTYPE
1279 && (newdef || bfd_is_com_section (sec))
1280 && (olddef || h->root.type == bfd_link_hash_common))
1281 {
1282 /* If creating a default indirect symbol ("foo" or "foo@") from
1283 a dynamic versioned definition ("foo@@") skip doing so if
1284 there is an existing regular definition with a different
1285 type. We don't want, for example, a "time" variable in the
1286 executable overriding a "time" function in a shared library. */
1287 if (newdyn
1288 && !olddyn)
1289 {
1290 *skip = TRUE;
1291 return TRUE;
1292 }
1293
1294 /* When adding a symbol from a regular object file after we have
1295 created indirect symbols, undo the indirection and any
1296 dynamic state. */
1297 if (hi != h
1298 && !newdyn
1299 && olddyn)
1300 {
1301 h = hi;
1302 (*bed->elf_backend_hide_symbol) (info, h, TRUE);
1303 h->forced_local = 0;
1304 h->ref_dynamic = 0;
1305 h->def_dynamic = 0;
1306 h->dynamic_def = 0;
1307 if (h->root.u.undef.next || info->hash->undefs_tail == &h->root)
1308 {
1309 h->root.type = bfd_link_hash_undefined;
1310 h->root.u.undef.abfd = abfd;
1311 }
1312 else
1313 {
1314 h->root.type = bfd_link_hash_new;
1315 h->root.u.undef.abfd = NULL;
1316 }
1317 return TRUE;
1318 }
1319 }
1320
1321 /* Check TLS symbols. We don't check undefined symbols introduced
1322 by "ld -u" which have no type (and oldbfd NULL), and we don't
1323 check symbols from plugins because they also have no type. */
1324 if (oldbfd != NULL
1325 && (oldbfd->flags & BFD_PLUGIN) == 0
1326 && (abfd->flags & BFD_PLUGIN) == 0
1327 && ELF_ST_TYPE (sym->st_info) != h->type
1328 && (ELF_ST_TYPE (sym->st_info) == STT_TLS || h->type == STT_TLS))
1329 {
1330 bfd *ntbfd, *tbfd;
1331 bfd_boolean ntdef, tdef;
1332 asection *ntsec, *tsec;
1333
1334 if (h->type == STT_TLS)
1335 {
1336 ntbfd = abfd;
1337 ntsec = sec;
1338 ntdef = newdef;
1339 tbfd = oldbfd;
1340 tsec = oldsec;
1341 tdef = olddef;
1342 }
1343 else
1344 {
1345 ntbfd = oldbfd;
1346 ntsec = oldsec;
1347 ntdef = olddef;
1348 tbfd = abfd;
1349 tsec = sec;
1350 tdef = newdef;
1351 }
1352
1353 if (tdef && ntdef)
1354 _bfd_error_handler
1355 /* xgettext:c-format */
1356 (_("%s: TLS definition in %B section %A "
1357 "mismatches non-TLS definition in %B section %A"),
1358 h->root.root.string, tbfd, tsec, ntbfd, ntsec);
1359 else if (!tdef && !ntdef)
1360 _bfd_error_handler
1361 /* xgettext:c-format */
1362 (_("%s: TLS reference in %B "
1363 "mismatches non-TLS reference in %B"),
1364 h->root.root.string, tbfd, ntbfd);
1365 else if (tdef)
1366 _bfd_error_handler
1367 /* xgettext:c-format */
1368 (_("%s: TLS definition in %B section %A "
1369 "mismatches non-TLS reference in %B"),
1370 h->root.root.string, tbfd, tsec, ntbfd);
1371 else
1372 _bfd_error_handler
1373 /* xgettext:c-format */
1374 (_("%s: TLS reference in %B "
1375 "mismatches non-TLS definition in %B section %A"),
1376 h->root.root.string, tbfd, ntbfd, ntsec);
1377
1378 bfd_set_error (bfd_error_bad_value);
1379 return FALSE;
1380 }
1381
1382 /* If the old symbol has non-default visibility, we ignore the new
1383 definition from a dynamic object. */
1384 if (newdyn
1385 && ELF_ST_VISIBILITY (h->other) != STV_DEFAULT
1386 && !bfd_is_und_section (sec))
1387 {
1388 *skip = TRUE;
1389 /* Make sure this symbol is dynamic. */
1390 h->ref_dynamic = 1;
1391 hi->ref_dynamic = 1;
1392 /* A protected symbol has external availability. Make sure it is
1393 recorded as dynamic.
1394
1395 FIXME: Should we check type and size for protected symbol? */
1396 if (ELF_ST_VISIBILITY (h->other) == STV_PROTECTED)
1397 return bfd_elf_link_record_dynamic_symbol (info, h);
1398 else
1399 return TRUE;
1400 }
1401 else if (!newdyn
1402 && ELF_ST_VISIBILITY (sym->st_other) != STV_DEFAULT
1403 && h->def_dynamic)
1404 {
1405 /* If the new symbol with non-default visibility comes from a
1406 relocatable file and the old definition comes from a dynamic
1407 object, we remove the old definition. */
1408 if (hi->root.type == bfd_link_hash_indirect)
1409 {
1410 /* Handle the case where the old dynamic definition is
1411 default versioned. We need to copy the symbol info from
1412 the symbol with default version to the normal one if it
1413 was referenced before. */
1414 if (h->ref_regular)
1415 {
1416 hi->root.type = h->root.type;
1417 h->root.type = bfd_link_hash_indirect;
1418 (*bed->elf_backend_copy_indirect_symbol) (info, hi, h);
1419
1420 h->root.u.i.link = (struct bfd_link_hash_entry *) hi;
1421 if (ELF_ST_VISIBILITY (sym->st_other) != STV_PROTECTED)
1422 {
1423 /* If the new symbol is hidden or internal, completely undo
1424 any dynamic link state. */
1425 (*bed->elf_backend_hide_symbol) (info, h, TRUE);
1426 h->forced_local = 0;
1427 h->ref_dynamic = 0;
1428 }
1429 else
1430 h->ref_dynamic = 1;
1431
1432 h->def_dynamic = 0;
1433 /* FIXME: Should we check type and size for protected symbol? */
1434 h->size = 0;
1435 h->type = 0;
1436
1437 h = hi;
1438 }
1439 else
1440 h = hi;
1441 }
1442
1443 /* If the old symbol was undefined before, then it will still be
1444 on the undefs list. If the new symbol is undefined or
1445 common, we can't make it bfd_link_hash_new here, because new
1446 undefined or common symbols will be added to the undefs list
1447 by _bfd_generic_link_add_one_symbol. Symbols may not be
1448 added twice to the undefs list. Also, if the new symbol is
1449 undefweak then we don't want to lose the strong undef. */
1450 if (h->root.u.undef.next || info->hash->undefs_tail == &h->root)
1451 {
1452 h->root.type = bfd_link_hash_undefined;
1453 h->root.u.undef.abfd = abfd;
1454 }
1455 else
1456 {
1457 h->root.type = bfd_link_hash_new;
1458 h->root.u.undef.abfd = NULL;
1459 }
1460
1461 if (ELF_ST_VISIBILITY (sym->st_other) != STV_PROTECTED)
1462 {
1463 /* If the new symbol is hidden or internal, completely undo
1464 any dynamic link state. */
1465 (*bed->elf_backend_hide_symbol) (info, h, TRUE);
1466 h->forced_local = 0;
1467 h->ref_dynamic = 0;
1468 }
1469 else
1470 h->ref_dynamic = 1;
1471 h->def_dynamic = 0;
1472 /* FIXME: Should we check type and size for protected symbol? */
1473 h->size = 0;
1474 h->type = 0;
1475 return TRUE;
1476 }
1477
1478 /* If a new weak symbol definition comes from a regular file and the
1479 old symbol comes from a dynamic library, we treat the new one as
1480 strong. Similarly, an old weak symbol definition from a regular
1481 file is treated as strong when the new symbol comes from a dynamic
1482 library. Further, an old weak symbol from a dynamic library is
1483 treated as strong if the new symbol is from a dynamic library.
1484 This reflects the way glibc's ld.so works.
1485
1486 Also allow a weak symbol to override a linker script symbol
1487 defined by an early pass over the script. This is done so the
1488 linker knows the symbol is defined in an object file, for the
1489 DEFINED script function.
1490
1491 Do this before setting *type_change_ok or *size_change_ok so that
1492 we warn properly when dynamic library symbols are overridden. */
1493
1494 if (newdef && !newdyn && (olddyn || h->root.ldscript_def))
1495 newweak = FALSE;
1496 if (olddef && newdyn)
1497 oldweak = FALSE;
1498
1499 /* Allow changes between different types of function symbol. */
1500 if (newfunc && oldfunc)
1501 *type_change_ok = TRUE;
1502
1503 /* It's OK to change the type if either the existing symbol or the
1504 new symbol is weak. A type change is also OK if the old symbol
1505 is undefined and the new symbol is defined. */
1506
1507 if (oldweak
1508 || newweak
1509 || (newdef
1510 && h->root.type == bfd_link_hash_undefined))
1511 *type_change_ok = TRUE;
1512
1513 /* It's OK to change the size if either the existing symbol or the
1514 new symbol is weak, or if the old symbol is undefined. */
1515
1516 if (*type_change_ok
1517 || h->root.type == bfd_link_hash_undefined)
1518 *size_change_ok = TRUE;
1519
1520 /* NEWDYNCOMMON and OLDDYNCOMMON indicate whether the new or old
1521 symbol, respectively, appears to be a common symbol in a dynamic
1522 object. If a symbol appears in an uninitialized section, and is
1523 not weak, and is not a function, then it may be a common symbol
1524 which was resolved when the dynamic object was created. We want
1525 to treat such symbols specially, because they raise special
1526 considerations when setting the symbol size: if the symbol
1527 appears as a common symbol in a regular object, and the size in
1528 the regular object is larger, we must make sure that we use the
1529 larger size. This problematic case can always be avoided in C,
1530 but it must be handled correctly when using Fortran shared
1531 libraries.
1532
1533 Note that if NEWDYNCOMMON is set, NEWDEF will be set, and
1534 likewise for OLDDYNCOMMON and OLDDEF.
1535
1536 Note that this test is just a heuristic, and that it is quite
1537 possible to have an uninitialized symbol in a shared object which
1538 is really a definition, rather than a common symbol. This could
1539 lead to some minor confusion when the symbol really is a common
1540 symbol in some regular object. However, I think it will be
1541 harmless. */
1542
1543 if (newdyn
1544 && newdef
1545 && !newweak
1546 && (sec->flags & SEC_ALLOC) != 0
1547 && (sec->flags & SEC_LOAD) == 0
1548 && sym->st_size > 0
1549 && !newfunc)
1550 newdyncommon = TRUE;
1551 else
1552 newdyncommon = FALSE;
1553
1554 if (olddyn
1555 && olddef
1556 && h->root.type == bfd_link_hash_defined
1557 && h->def_dynamic
1558 && (h->root.u.def.section->flags & SEC_ALLOC) != 0
1559 && (h->root.u.def.section->flags & SEC_LOAD) == 0
1560 && h->size > 0
1561 && !oldfunc)
1562 olddyncommon = TRUE;
1563 else
1564 olddyncommon = FALSE;
1565
1566 /* We now know everything about the old and new symbols. We ask the
1567 backend to check if we can merge them. */
1568 if (bed->merge_symbol != NULL)
1569 {
1570 if (!bed->merge_symbol (h, sym, psec, newdef, olddef, oldbfd, oldsec))
1571 return FALSE;
1572 sec = *psec;
1573 }
1574
1575 /* There are multiple definitions of a normal symbol. Skip the
1576 default symbol as well as definition from an IR object. */
1577 if (olddef && !olddyn && !oldweak && newdef && !newdyn && !newweak
1578 && !default_sym && h->def_regular
1579 && !(oldbfd != NULL
1580 && (oldbfd->flags & BFD_PLUGIN) != 0
1581 && (abfd->flags & BFD_PLUGIN) == 0))
1582 {
1583 /* Handle a multiple definition. */
1584 (*info->callbacks->multiple_definition) (info, &h->root,
1585 abfd, sec, *pvalue);
1586 *skip = TRUE;
1587 return TRUE;
1588 }
1589
1590 /* If both the old and the new symbols look like common symbols in a
1591 dynamic object, set the size of the symbol to the larger of the
1592 two. */
1593
1594 if (olddyncommon
1595 && newdyncommon
1596 && sym->st_size != h->size)
1597 {
1598 /* Since we think we have two common symbols, issue a multiple
1599 common warning if desired. Note that we only warn if the
1600 size is different. If the size is the same, we simply let
1601 the old symbol override the new one as normally happens with
1602 symbols defined in dynamic objects. */
1603
1604 (*info->callbacks->multiple_common) (info, &h->root, abfd,
1605 bfd_link_hash_common, sym->st_size);
1606 if (sym->st_size > h->size)
1607 h->size = sym->st_size;
1608
1609 *size_change_ok = TRUE;
1610 }
1611
1612 /* If we are looking at a dynamic object, and we have found a
1613 definition, we need to see if the symbol was already defined by
1614 some other object. If so, we want to use the existing
1615 definition, and we do not want to report a multiple symbol
1616 definition error; we do this by clobbering *PSEC to be
1617 bfd_und_section_ptr.
1618
1619 We treat a common symbol as a definition if the symbol in the
1620 shared library is a function, since common symbols always
1621 represent variables; this can cause confusion in principle, but
1622 any such confusion would seem to indicate an erroneous program or
1623 shared library. We also permit a common symbol in a regular
1624 object to override a weak symbol in a shared object. */
1625
1626 if (newdyn
1627 && newdef
1628 && (olddef
1629 || (h->root.type == bfd_link_hash_common
1630 && (newweak || newfunc))))
1631 {
1632 *override = TRUE;
1633 newdef = FALSE;
1634 newdyncommon = FALSE;
1635
1636 *psec = sec = bfd_und_section_ptr;
1637 *size_change_ok = TRUE;
1638
1639 /* If we get here when the old symbol is a common symbol, then
1640 we are explicitly letting it override a weak symbol or
1641 function in a dynamic object, and we don't want to warn about
1642 a type change. If the old symbol is a defined symbol, a type
1643 change warning may still be appropriate. */
1644
1645 if (h->root.type == bfd_link_hash_common)
1646 *type_change_ok = TRUE;
1647 }
1648
1649 /* Handle the special case of an old common symbol merging with a
1650 new symbol which looks like a common symbol in a shared object.
1651 We change *PSEC and *PVALUE to make the new symbol look like a
1652 common symbol, and let _bfd_generic_link_add_one_symbol do the
1653 right thing. */
1654
1655 if (newdyncommon
1656 && h->root.type == bfd_link_hash_common)
1657 {
1658 *override = TRUE;
1659 newdef = FALSE;
1660 newdyncommon = FALSE;
1661 *pvalue = sym->st_size;
1662 *psec = sec = bed->common_section (oldsec);
1663 *size_change_ok = TRUE;
1664 }
1665
1666 /* Skip weak definitions of symbols that are already defined. */
1667 if (newdef && olddef && newweak)
1668 {
1669 /* Don't skip new non-IR weak syms. */
1670 if (!(oldbfd != NULL
1671 && (oldbfd->flags & BFD_PLUGIN) != 0
1672 && (abfd->flags & BFD_PLUGIN) == 0))
1673 {
1674 newdef = FALSE;
1675 *skip = TRUE;
1676 }
1677
1678 /* Merge st_other. If the symbol already has a dynamic index,
1679 but visibility says it should not be visible, turn it into a
1680 local symbol. */
1681 elf_merge_st_other (abfd, h, sym, sec, newdef, newdyn);
1682 if (h->dynindx != -1)
1683 switch (ELF_ST_VISIBILITY (h->other))
1684 {
1685 case STV_INTERNAL:
1686 case STV_HIDDEN:
1687 (*bed->elf_backend_hide_symbol) (info, h, TRUE);
1688 break;
1689 }
1690 }
1691
1692 /* If the old symbol is from a dynamic object, and the new symbol is
1693 a definition which is not from a dynamic object, then the new
1694 symbol overrides the old symbol. Symbols from regular files
1695 always take precedence over symbols from dynamic objects, even if
1696 they are defined after the dynamic object in the link.
1697
1698 As above, we again permit a common symbol in a regular object to
1699 override a definition in a shared object if the shared object
1700 symbol is a function or is weak. */
1701
1702 flip = NULL;
1703 if (!newdyn
1704 && (newdef
1705 || (bfd_is_com_section (sec)
1706 && (oldweak || oldfunc)))
1707 && olddyn
1708 && olddef
1709 && h->def_dynamic)
1710 {
1711 /* Change the hash table entry to undefined, and let
1712 _bfd_generic_link_add_one_symbol do the right thing with the
1713 new definition. */
1714
1715 h->root.type = bfd_link_hash_undefined;
1716 h->root.u.undef.abfd = h->root.u.def.section->owner;
1717 *size_change_ok = TRUE;
1718
1719 olddef = FALSE;
1720 olddyncommon = FALSE;
1721
1722 /* We again permit a type change when a common symbol may be
1723 overriding a function. */
1724
1725 if (bfd_is_com_section (sec))
1726 {
1727 if (oldfunc)
1728 {
1729 /* If a common symbol overrides a function, make sure
1730 that it isn't defined dynamically nor has type
1731 function. */
1732 h->def_dynamic = 0;
1733 h->type = STT_NOTYPE;
1734 }
1735 *type_change_ok = TRUE;
1736 }
1737
1738 if (hi->root.type == bfd_link_hash_indirect)
1739 flip = hi;
1740 else
1741 /* This union may have been set to be non-NULL when this symbol
1742 was seen in a dynamic object. We must force the union to be
1743 NULL, so that it is correct for a regular symbol. */
1744 h->verinfo.vertree = NULL;
1745 }
1746
1747 /* Handle the special case of a new common symbol merging with an
1748 old symbol that looks like it might be a common symbol defined in
1749 a shared object. Note that we have already handled the case in
1750 which a new common symbol should simply override the definition
1751 in the shared library. */
1752
1753 if (! newdyn
1754 && bfd_is_com_section (sec)
1755 && olddyncommon)
1756 {
1757 /* It would be best if we could set the hash table entry to a
1758 common symbol, but we don't know what to use for the section
1759 or the alignment. */
1760 (*info->callbacks->multiple_common) (info, &h->root, abfd,
1761 bfd_link_hash_common, sym->st_size);
1762
1763 /* If the presumed common symbol in the dynamic object is
1764 larger, pretend that the new symbol has its size. */
1765
1766 if (h->size > *pvalue)
1767 *pvalue = h->size;
1768
1769 /* We need to remember the alignment required by the symbol
1770 in the dynamic object. */
1771 BFD_ASSERT (pold_alignment);
1772 *pold_alignment = h->root.u.def.section->alignment_power;
1773
1774 olddef = FALSE;
1775 olddyncommon = FALSE;
1776
1777 h->root.type = bfd_link_hash_undefined;
1778 h->root.u.undef.abfd = h->root.u.def.section->owner;
1779
1780 *size_change_ok = TRUE;
1781 *type_change_ok = TRUE;
1782
1783 if (hi->root.type == bfd_link_hash_indirect)
1784 flip = hi;
1785 else
1786 h->verinfo.vertree = NULL;
1787 }
1788
1789 if (flip != NULL)
1790 {
1791 /* Handle the case where we had a versioned symbol in a dynamic
1792 library and now find a definition in a normal object. In this
1793 case, we make the versioned symbol point to the normal one. */
1794 flip->root.type = h->root.type;
1795 flip->root.u.undef.abfd = h->root.u.undef.abfd;
1796 h->root.type = bfd_link_hash_indirect;
1797 h->root.u.i.link = (struct bfd_link_hash_entry *) flip;
1798 (*bed->elf_backend_copy_indirect_symbol) (info, flip, h);
1799 if (h->def_dynamic)
1800 {
1801 h->def_dynamic = 0;
1802 flip->ref_dynamic = 1;
1803 }
1804 }
1805
1806 return TRUE;
1807 }
1808
1809 /* This function is called to create an indirect symbol from the
1810 default for the symbol with the default version if needed. The
1811 symbol is described by H, NAME, SYM, SEC, and VALUE. We
1812 set DYNSYM if the new indirect symbol is dynamic. */
1813
1814 static bfd_boolean
1815 _bfd_elf_add_default_symbol (bfd *abfd,
1816 struct bfd_link_info *info,
1817 struct elf_link_hash_entry *h,
1818 const char *name,
1819 Elf_Internal_Sym *sym,
1820 asection *sec,
1821 bfd_vma value,
1822 bfd **poldbfd,
1823 bfd_boolean *dynsym)
1824 {
1825 bfd_boolean type_change_ok;
1826 bfd_boolean size_change_ok;
1827 bfd_boolean skip;
1828 char *shortname;
1829 struct elf_link_hash_entry *hi;
1830 struct bfd_link_hash_entry *bh;
1831 const struct elf_backend_data *bed;
1832 bfd_boolean collect;
1833 bfd_boolean dynamic;
1834 bfd_boolean override;
1835 char *p;
1836 size_t len, shortlen;
1837 asection *tmp_sec;
1838 bfd_boolean matched;
1839
1840 if (h->versioned == unversioned || h->versioned == versioned_hidden)
1841 return TRUE;
1842
1843 /* If this symbol has a version, and it is the default version, we
1844 create an indirect symbol from the default name to the fully
1845 decorated name. This will cause external references which do not
1846 specify a version to be bound to this version of the symbol. */
1847 p = strchr (name, ELF_VER_CHR);
1848 if (h->versioned == unknown)
1849 {
1850 if (p == NULL)
1851 {
1852 h->versioned = unversioned;
1853 return TRUE;
1854 }
1855 else
1856 {
1857 if (p[1] != ELF_VER_CHR)
1858 {
1859 h->versioned = versioned_hidden;
1860 return TRUE;
1861 }
1862 else
1863 h->versioned = versioned;
1864 }
1865 }
1866 else
1867 {
1868 /* PR ld/19073: We may see an unversioned definition after the
1869 default version. */
1870 if (p == NULL)
1871 return TRUE;
1872 }
1873
1874 bed = get_elf_backend_data (abfd);
1875 collect = bed->collect;
1876 dynamic = (abfd->flags & DYNAMIC) != 0;
1877
1878 shortlen = p - name;
1879 shortname = (char *) bfd_hash_allocate (&info->hash->table, shortlen + 1);
1880 if (shortname == NULL)
1881 return FALSE;
1882 memcpy (shortname, name, shortlen);
1883 shortname[shortlen] = '\0';
1884
1885 /* We are going to create a new symbol. Merge it with any existing
1886 symbol with this name. For the purposes of the merge, act as
1887 though we were defining the symbol we just defined, although we
1888 actually going to define an indirect symbol. */
1889 type_change_ok = FALSE;
1890 size_change_ok = FALSE;
1891 matched = TRUE;
1892 tmp_sec = sec;
1893 if (!_bfd_elf_merge_symbol (abfd, info, shortname, sym, &tmp_sec, &value,
1894 &hi, poldbfd, NULL, NULL, &skip, &override,
1895 &type_change_ok, &size_change_ok, &matched))
1896 return FALSE;
1897
1898 if (skip)
1899 goto nondefault;
1900
1901 if (hi->def_regular)
1902 {
1903 /* If the undecorated symbol will have a version added by a
1904 script different to H, then don't indirect to/from the
1905 undecorated symbol. This isn't ideal because we may not yet
1906 have seen symbol versions, if given by a script on the
1907 command line rather than via --version-script. */
1908 if (hi->verinfo.vertree == NULL && info->version_info != NULL)
1909 {
1910 bfd_boolean hide;
1911
1912 hi->verinfo.vertree
1913 = bfd_find_version_for_sym (info->version_info,
1914 hi->root.root.string, &hide);
1915 if (hi->verinfo.vertree != NULL && hide)
1916 {
1917 (*bed->elf_backend_hide_symbol) (info, hi, TRUE);
1918 goto nondefault;
1919 }
1920 }
1921 if (hi->verinfo.vertree != NULL
1922 && strcmp (p + 1 + (p[1] == '@'), hi->verinfo.vertree->name) != 0)
1923 goto nondefault;
1924 }
1925
1926 if (! override)
1927 {
1928 /* Add the default symbol if not performing a relocatable link. */
1929 if (! bfd_link_relocatable (info))
1930 {
1931 bh = &hi->root;
1932 if (! (_bfd_generic_link_add_one_symbol
1933 (info, abfd, shortname, BSF_INDIRECT,
1934 bfd_ind_section_ptr,
1935 0, name, FALSE, collect, &bh)))
1936 return FALSE;
1937 hi = (struct elf_link_hash_entry *) bh;
1938 }
1939 }
1940 else
1941 {
1942 /* In this case the symbol named SHORTNAME is overriding the
1943 indirect symbol we want to add. We were planning on making
1944 SHORTNAME an indirect symbol referring to NAME. SHORTNAME
1945 is the name without a version. NAME is the fully versioned
1946 name, and it is the default version.
1947
1948 Overriding means that we already saw a definition for the
1949 symbol SHORTNAME in a regular object, and it is overriding
1950 the symbol defined in the dynamic object.
1951
1952 When this happens, we actually want to change NAME, the
1953 symbol we just added, to refer to SHORTNAME. This will cause
1954 references to NAME in the shared object to become references
1955 to SHORTNAME in the regular object. This is what we expect
1956 when we override a function in a shared object: that the
1957 references in the shared object will be mapped to the
1958 definition in the regular object. */
1959
1960 while (hi->root.type == bfd_link_hash_indirect
1961 || hi->root.type == bfd_link_hash_warning)
1962 hi = (struct elf_link_hash_entry *) hi->root.u.i.link;
1963
1964 h->root.type = bfd_link_hash_indirect;
1965 h->root.u.i.link = (struct bfd_link_hash_entry *) hi;
1966 if (h->def_dynamic)
1967 {
1968 h->def_dynamic = 0;
1969 hi->ref_dynamic = 1;
1970 if (hi->ref_regular
1971 || hi->def_regular)
1972 {
1973 if (! bfd_elf_link_record_dynamic_symbol (info, hi))
1974 return FALSE;
1975 }
1976 }
1977
1978 /* Now set HI to H, so that the following code will set the
1979 other fields correctly. */
1980 hi = h;
1981 }
1982
1983 /* Check if HI is a warning symbol. */
1984 if (hi->root.type == bfd_link_hash_warning)
1985 hi = (struct elf_link_hash_entry *) hi->root.u.i.link;
1986
1987 /* If there is a duplicate definition somewhere, then HI may not
1988 point to an indirect symbol. We will have reported an error to
1989 the user in that case. */
1990
1991 if (hi->root.type == bfd_link_hash_indirect)
1992 {
1993 struct elf_link_hash_entry *ht;
1994
1995 ht = (struct elf_link_hash_entry *) hi->root.u.i.link;
1996 (*bed->elf_backend_copy_indirect_symbol) (info, ht, hi);
1997
1998 /* A reference to the SHORTNAME symbol from a dynamic library
1999 will be satisfied by the versioned symbol at runtime. In
2000 effect, we have a reference to the versioned symbol. */
2001 ht->ref_dynamic_nonweak |= hi->ref_dynamic_nonweak;
2002 hi->dynamic_def |= ht->dynamic_def;
2003
2004 /* See if the new flags lead us to realize that the symbol must
2005 be dynamic. */
2006 if (! *dynsym)
2007 {
2008 if (! dynamic)
2009 {
2010 if (! bfd_link_executable (info)
2011 || hi->def_dynamic
2012 || hi->ref_dynamic)
2013 *dynsym = TRUE;
2014 }
2015 else
2016 {
2017 if (hi->ref_regular)
2018 *dynsym = TRUE;
2019 }
2020 }
2021 }
2022
2023 /* We also need to define an indirection from the nondefault version
2024 of the symbol. */
2025
2026 nondefault:
2027 len = strlen (name);
2028 shortname = (char *) bfd_hash_allocate (&info->hash->table, len);
2029 if (shortname == NULL)
2030 return FALSE;
2031 memcpy (shortname, name, shortlen);
2032 memcpy (shortname + shortlen, p + 1, len - shortlen);
2033
2034 /* Once again, merge with any existing symbol. */
2035 type_change_ok = FALSE;
2036 size_change_ok = FALSE;
2037 tmp_sec = sec;
2038 if (!_bfd_elf_merge_symbol (abfd, info, shortname, sym, &tmp_sec, &value,
2039 &hi, poldbfd, NULL, NULL, &skip, &override,
2040 &type_change_ok, &size_change_ok, &matched))
2041 return FALSE;
2042
2043 if (skip)
2044 return TRUE;
2045
2046 if (override)
2047 {
2048 /* Here SHORTNAME is a versioned name, so we don't expect to see
2049 the type of override we do in the case above unless it is
2050 overridden by a versioned definition. */
2051 if (hi->root.type != bfd_link_hash_defined
2052 && hi->root.type != bfd_link_hash_defweak)
2053 _bfd_error_handler
2054 /* xgettext:c-format */
2055 (_("%B: unexpected redefinition of indirect versioned symbol `%s'"),
2056 abfd, shortname);
2057 }
2058 else
2059 {
2060 bh = &hi->root;
2061 if (! (_bfd_generic_link_add_one_symbol
2062 (info, abfd, shortname, BSF_INDIRECT,
2063 bfd_ind_section_ptr, 0, name, FALSE, collect, &bh)))
2064 return FALSE;
2065 hi = (struct elf_link_hash_entry *) bh;
2066
2067 /* If there is a duplicate definition somewhere, then HI may not
2068 point to an indirect symbol. We will have reported an error
2069 to the user in that case. */
2070
2071 if (hi->root.type == bfd_link_hash_indirect)
2072 {
2073 (*bed->elf_backend_copy_indirect_symbol) (info, h, hi);
2074 h->ref_dynamic_nonweak |= hi->ref_dynamic_nonweak;
2075 hi->dynamic_def |= h->dynamic_def;
2076
2077 /* See if the new flags lead us to realize that the symbol
2078 must be dynamic. */
2079 if (! *dynsym)
2080 {
2081 if (! dynamic)
2082 {
2083 if (! bfd_link_executable (info)
2084 || hi->ref_dynamic)
2085 *dynsym = TRUE;
2086 }
2087 else
2088 {
2089 if (hi->ref_regular)
2090 *dynsym = TRUE;
2091 }
2092 }
2093 }
2094 }
2095
2096 return TRUE;
2097 }
2098
2099 /* This routine is used to export all defined symbols into the dynamic
2101 symbol table. It is called via elf_link_hash_traverse. */
2102
2103 static bfd_boolean
2104 _bfd_elf_export_symbol (struct elf_link_hash_entry *h, void *data)
2105 {
2106 struct elf_info_failed *eif = (struct elf_info_failed *) data;
2107
2108 /* Ignore indirect symbols. These are added by the versioning code. */
2109 if (h->root.type == bfd_link_hash_indirect)
2110 return TRUE;
2111
2112 /* Ignore this if we won't export it. */
2113 if (!eif->info->export_dynamic && !h->dynamic)
2114 return TRUE;
2115
2116 if (h->dynindx == -1
2117 && (h->def_regular || h->ref_regular)
2118 && ! bfd_hide_sym_by_version (eif->info->version_info,
2119 h->root.root.string))
2120 {
2121 if (! bfd_elf_link_record_dynamic_symbol (eif->info, h))
2122 {
2123 eif->failed = TRUE;
2124 return FALSE;
2125 }
2126 }
2127
2128 return TRUE;
2129 }
2130
2131 /* Look through the symbols which are defined in other shared
2133 libraries and referenced here. Update the list of version
2134 dependencies. This will be put into the .gnu.version_r section.
2135 This function is called via elf_link_hash_traverse. */
2136
2137 static bfd_boolean
2138 _bfd_elf_link_find_version_dependencies (struct elf_link_hash_entry *h,
2139 void *data)
2140 {
2141 struct elf_find_verdep_info *rinfo = (struct elf_find_verdep_info *) data;
2142 Elf_Internal_Verneed *t;
2143 Elf_Internal_Vernaux *a;
2144 bfd_size_type amt;
2145
2146 /* We only care about symbols defined in shared objects with version
2147 information. */
2148 if (!h->def_dynamic
2149 || h->def_regular
2150 || h->dynindx == -1
2151 || h->verinfo.verdef == NULL
2152 || (elf_dyn_lib_class (h->verinfo.verdef->vd_bfd)
2153 & (DYN_AS_NEEDED | DYN_DT_NEEDED | DYN_NO_NEEDED)))
2154 return TRUE;
2155
2156 /* See if we already know about this version. */
2157 for (t = elf_tdata (rinfo->info->output_bfd)->verref;
2158 t != NULL;
2159 t = t->vn_nextref)
2160 {
2161 if (t->vn_bfd != h->verinfo.verdef->vd_bfd)
2162 continue;
2163
2164 for (a = t->vn_auxptr; a != NULL; a = a->vna_nextptr)
2165 if (a->vna_nodename == h->verinfo.verdef->vd_nodename)
2166 return TRUE;
2167
2168 break;
2169 }
2170
2171 /* This is a new version. Add it to tree we are building. */
2172
2173 if (t == NULL)
2174 {
2175 amt = sizeof *t;
2176 t = (Elf_Internal_Verneed *) bfd_zalloc (rinfo->info->output_bfd, amt);
2177 if (t == NULL)
2178 {
2179 rinfo->failed = TRUE;
2180 return FALSE;
2181 }
2182
2183 t->vn_bfd = h->verinfo.verdef->vd_bfd;
2184 t->vn_nextref = elf_tdata (rinfo->info->output_bfd)->verref;
2185 elf_tdata (rinfo->info->output_bfd)->verref = t;
2186 }
2187
2188 amt = sizeof *a;
2189 a = (Elf_Internal_Vernaux *) bfd_zalloc (rinfo->info->output_bfd, amt);
2190 if (a == NULL)
2191 {
2192 rinfo->failed = TRUE;
2193 return FALSE;
2194 }
2195
2196 /* Note that we are copying a string pointer here, and testing it
2197 above. If bfd_elf_string_from_elf_section is ever changed to
2198 discard the string data when low in memory, this will have to be
2199 fixed. */
2200 a->vna_nodename = h->verinfo.verdef->vd_nodename;
2201
2202 a->vna_flags = h->verinfo.verdef->vd_flags;
2203 a->vna_nextptr = t->vn_auxptr;
2204
2205 h->verinfo.verdef->vd_exp_refno = rinfo->vers;
2206 ++rinfo->vers;
2207
2208 a->vna_other = h->verinfo.verdef->vd_exp_refno + 1;
2209
2210 t->vn_auxptr = a;
2211
2212 return TRUE;
2213 }
2214
2215 /* Figure out appropriate versions for all the symbols. We may not
2216 have the version number script until we have read all of the input
2217 files, so until that point we don't know which symbols should be
2218 local. This function is called via elf_link_hash_traverse. */
2219
2220 static bfd_boolean
2221 _bfd_elf_link_assign_sym_version (struct elf_link_hash_entry *h, void *data)
2222 {
2223 struct elf_info_failed *sinfo;
2224 struct bfd_link_info *info;
2225 const struct elf_backend_data *bed;
2226 struct elf_info_failed eif;
2227 char *p;
2228
2229 sinfo = (struct elf_info_failed *) data;
2230 info = sinfo->info;
2231
2232 /* Fix the symbol flags. */
2233 eif.failed = FALSE;
2234 eif.info = info;
2235 if (! _bfd_elf_fix_symbol_flags (h, &eif))
2236 {
2237 if (eif.failed)
2238 sinfo->failed = TRUE;
2239 return FALSE;
2240 }
2241
2242 /* We only need version numbers for symbols defined in regular
2243 objects. */
2244 if (!h->def_regular)
2245 return TRUE;
2246
2247 bed = get_elf_backend_data (info->output_bfd);
2248 p = strchr (h->root.root.string, ELF_VER_CHR);
2249 if (p != NULL && h->verinfo.vertree == NULL)
2250 {
2251 struct bfd_elf_version_tree *t;
2252
2253 ++p;
2254 if (*p == ELF_VER_CHR)
2255 ++p;
2256
2257 /* If there is no version string, we can just return out. */
2258 if (*p == '\0')
2259 return TRUE;
2260
2261 /* Look for the version. If we find it, it is no longer weak. */
2262 for (t = sinfo->info->version_info; t != NULL; t = t->next)
2263 {
2264 if (strcmp (t->name, p) == 0)
2265 {
2266 size_t len;
2267 char *alc;
2268 struct bfd_elf_version_expr *d;
2269
2270 len = p - h->root.root.string;
2271 alc = (char *) bfd_malloc (len);
2272 if (alc == NULL)
2273 {
2274 sinfo->failed = TRUE;
2275 return FALSE;
2276 }
2277 memcpy (alc, h->root.root.string, len - 1);
2278 alc[len - 1] = '\0';
2279 if (alc[len - 2] == ELF_VER_CHR)
2280 alc[len - 2] = '\0';
2281
2282 h->verinfo.vertree = t;
2283 t->used = TRUE;
2284 d = NULL;
2285
2286 if (t->globals.list != NULL)
2287 d = (*t->match) (&t->globals, NULL, alc);
2288
2289 /* See if there is anything to force this symbol to
2290 local scope. */
2291 if (d == NULL && t->locals.list != NULL)
2292 {
2293 d = (*t->match) (&t->locals, NULL, alc);
2294 if (d != NULL
2295 && h->dynindx != -1
2296 && ! info->export_dynamic)
2297 (*bed->elf_backend_hide_symbol) (info, h, TRUE);
2298 }
2299
2300 free (alc);
2301 break;
2302 }
2303 }
2304
2305 /* If we are building an application, we need to create a
2306 version node for this version. */
2307 if (t == NULL && bfd_link_executable (info))
2308 {
2309 struct bfd_elf_version_tree **pp;
2310 int version_index;
2311
2312 /* If we aren't going to export this symbol, we don't need
2313 to worry about it. */
2314 if (h->dynindx == -1)
2315 return TRUE;
2316
2317 t = (struct bfd_elf_version_tree *) bfd_zalloc (info->output_bfd,
2318 sizeof *t);
2319 if (t == NULL)
2320 {
2321 sinfo->failed = TRUE;
2322 return FALSE;
2323 }
2324
2325 t->name = p;
2326 t->name_indx = (unsigned int) -1;
2327 t->used = TRUE;
2328
2329 version_index = 1;
2330 /* Don't count anonymous version tag. */
2331 if (sinfo->info->version_info != NULL
2332 && sinfo->info->version_info->vernum == 0)
2333 version_index = 0;
2334 for (pp = &sinfo->info->version_info;
2335 *pp != NULL;
2336 pp = &(*pp)->next)
2337 ++version_index;
2338 t->vernum = version_index;
2339
2340 *pp = t;
2341
2342 h->verinfo.vertree = t;
2343 }
2344 else if (t == NULL)
2345 {
2346 /* We could not find the version for a symbol when
2347 generating a shared archive. Return an error. */
2348 _bfd_error_handler
2349 /* xgettext:c-format */
2350 (_("%B: version node not found for symbol %s"),
2351 info->output_bfd, h->root.root.string);
2352 bfd_set_error (bfd_error_bad_value);
2353 sinfo->failed = TRUE;
2354 return FALSE;
2355 }
2356 }
2357
2358 /* If we don't have a version for this symbol, see if we can find
2359 something. */
2360 if (h->verinfo.vertree == NULL && sinfo->info->version_info != NULL)
2361 {
2362 bfd_boolean hide;
2363
2364 h->verinfo.vertree
2365 = bfd_find_version_for_sym (sinfo->info->version_info,
2366 h->root.root.string, &hide);
2367 if (h->verinfo.vertree != NULL && hide)
2368 (*bed->elf_backend_hide_symbol) (info, h, TRUE);
2369 }
2370
2371 return TRUE;
2372 }
2373
2374 /* Read and swap the relocs from the section indicated by SHDR. This
2376 may be either a REL or a RELA section. The relocations are
2377 translated into RELA relocations and stored in INTERNAL_RELOCS,
2378 which should have already been allocated to contain enough space.
2379 The EXTERNAL_RELOCS are a buffer where the external form of the
2380 relocations should be stored.
2381
2382 Returns FALSE if something goes wrong. */
2383
2384 static bfd_boolean
2385 elf_link_read_relocs_from_section (bfd *abfd,
2386 asection *sec,
2387 Elf_Internal_Shdr *shdr,
2388 void *external_relocs,
2389 Elf_Internal_Rela *internal_relocs)
2390 {
2391 const struct elf_backend_data *bed;
2392 void (*swap_in) (bfd *, const bfd_byte *, Elf_Internal_Rela *);
2393 const bfd_byte *erela;
2394 const bfd_byte *erelaend;
2395 Elf_Internal_Rela *irela;
2396 Elf_Internal_Shdr *symtab_hdr;
2397 size_t nsyms;
2398
2399 /* Position ourselves at the start of the section. */
2400 if (bfd_seek (abfd, shdr->sh_offset, SEEK_SET) != 0)
2401 return FALSE;
2402
2403 /* Read the relocations. */
2404 if (bfd_bread (external_relocs, shdr->sh_size, abfd) != shdr->sh_size)
2405 return FALSE;
2406
2407 symtab_hdr = &elf_tdata (abfd)->symtab_hdr;
2408 nsyms = NUM_SHDR_ENTRIES (symtab_hdr);
2409
2410 bed = get_elf_backend_data (abfd);
2411
2412 /* Convert the external relocations to the internal format. */
2413 if (shdr->sh_entsize == bed->s->sizeof_rel)
2414 swap_in = bed->s->swap_reloc_in;
2415 else if (shdr->sh_entsize == bed->s->sizeof_rela)
2416 swap_in = bed->s->swap_reloca_in;
2417 else
2418 {
2419 bfd_set_error (bfd_error_wrong_format);
2420 return FALSE;
2421 }
2422
2423 erela = (const bfd_byte *) external_relocs;
2424 erelaend = erela + shdr->sh_size;
2425 irela = internal_relocs;
2426 while (erela < erelaend)
2427 {
2428 bfd_vma r_symndx;
2429
2430 (*swap_in) (abfd, erela, irela);
2431 r_symndx = ELF32_R_SYM (irela->r_info);
2432 if (bed->s->arch_size == 64)
2433 r_symndx >>= 24;
2434 if (nsyms > 0)
2435 {
2436 if ((size_t) r_symndx >= nsyms)
2437 {
2438 _bfd_error_handler
2439 /* xgettext:c-format */
2440 (_("%B: bad reloc symbol index (%#Lx >= %#lx)"
2441 " for offset %#Lx in section `%A'"),
2442 abfd, r_symndx, (unsigned long) nsyms,
2443 irela->r_offset, sec);
2444 bfd_set_error (bfd_error_bad_value);
2445 return FALSE;
2446 }
2447 }
2448 else if (r_symndx != STN_UNDEF)
2449 {
2450 _bfd_error_handler
2451 /* xgettext:c-format */
2452 (_("%B: non-zero symbol index (%#Lx)"
2453 " for offset %#Lx in section `%A'"
2454 " when the object file has no symbol table"),
2455 abfd, r_symndx,
2456 irela->r_offset, sec);
2457 bfd_set_error (bfd_error_bad_value);
2458 return FALSE;
2459 }
2460 irela += bed->s->int_rels_per_ext_rel;
2461 erela += shdr->sh_entsize;
2462 }
2463
2464 return TRUE;
2465 }
2466
2467 /* Read and swap the relocs for a section O. They may have been
2468 cached. If the EXTERNAL_RELOCS and INTERNAL_RELOCS arguments are
2469 not NULL, they are used as buffers to read into. They are known to
2470 be large enough. If the INTERNAL_RELOCS relocs argument is NULL,
2471 the return value is allocated using either malloc or bfd_alloc,
2472 according to the KEEP_MEMORY argument. If O has two relocation
2473 sections (both REL and RELA relocations), then the REL_HDR
2474 relocations will appear first in INTERNAL_RELOCS, followed by the
2475 RELA_HDR relocations. */
2476
2477 Elf_Internal_Rela *
2478 _bfd_elf_link_read_relocs (bfd *abfd,
2479 asection *o,
2480 void *external_relocs,
2481 Elf_Internal_Rela *internal_relocs,
2482 bfd_boolean keep_memory)
2483 {
2484 void *alloc1 = NULL;
2485 Elf_Internal_Rela *alloc2 = NULL;
2486 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
2487 struct bfd_elf_section_data *esdo = elf_section_data (o);
2488 Elf_Internal_Rela *internal_rela_relocs;
2489
2490 if (esdo->relocs != NULL)
2491 return esdo->relocs;
2492
2493 if (o->reloc_count == 0)
2494 return NULL;
2495
2496 if (internal_relocs == NULL)
2497 {
2498 bfd_size_type size;
2499
2500 size = (bfd_size_type) o->reloc_count * sizeof (Elf_Internal_Rela);
2501 if (keep_memory)
2502 internal_relocs = alloc2 = (Elf_Internal_Rela *) bfd_alloc (abfd, size);
2503 else
2504 internal_relocs = alloc2 = (Elf_Internal_Rela *) bfd_malloc (size);
2505 if (internal_relocs == NULL)
2506 goto error_return;
2507 }
2508
2509 if (external_relocs == NULL)
2510 {
2511 bfd_size_type size = 0;
2512
2513 if (esdo->rel.hdr)
2514 size += esdo->rel.hdr->sh_size;
2515 if (esdo->rela.hdr)
2516 size += esdo->rela.hdr->sh_size;
2517
2518 alloc1 = bfd_malloc (size);
2519 if (alloc1 == NULL)
2520 goto error_return;
2521 external_relocs = alloc1;
2522 }
2523
2524 internal_rela_relocs = internal_relocs;
2525 if (esdo->rel.hdr)
2526 {
2527 if (!elf_link_read_relocs_from_section (abfd, o, esdo->rel.hdr,
2528 external_relocs,
2529 internal_relocs))
2530 goto error_return;
2531 external_relocs = (((bfd_byte *) external_relocs)
2532 + esdo->rel.hdr->sh_size);
2533 internal_rela_relocs += (NUM_SHDR_ENTRIES (esdo->rel.hdr)
2534 * bed->s->int_rels_per_ext_rel);
2535 }
2536
2537 if (esdo->rela.hdr
2538 && (!elf_link_read_relocs_from_section (abfd, o, esdo->rela.hdr,
2539 external_relocs,
2540 internal_rela_relocs)))
2541 goto error_return;
2542
2543 /* Cache the results for next time, if we can. */
2544 if (keep_memory)
2545 esdo->relocs = internal_relocs;
2546
2547 if (alloc1 != NULL)
2548 free (alloc1);
2549
2550 /* Don't free alloc2, since if it was allocated we are passing it
2551 back (under the name of internal_relocs). */
2552
2553 return internal_relocs;
2554
2555 error_return:
2556 if (alloc1 != NULL)
2557 free (alloc1);
2558 if (alloc2 != NULL)
2559 {
2560 if (keep_memory)
2561 bfd_release (abfd, alloc2);
2562 else
2563 free (alloc2);
2564 }
2565 return NULL;
2566 }
2567
2568 /* Compute the size of, and allocate space for, REL_HDR which is the
2569 section header for a section containing relocations for O. */
2570
2571 static bfd_boolean
2572 _bfd_elf_link_size_reloc_section (bfd *abfd,
2573 struct bfd_elf_section_reloc_data *reldata)
2574 {
2575 Elf_Internal_Shdr *rel_hdr = reldata->hdr;
2576
2577 /* That allows us to calculate the size of the section. */
2578 rel_hdr->sh_size = rel_hdr->sh_entsize * reldata->count;
2579
2580 /* The contents field must last into write_object_contents, so we
2581 allocate it with bfd_alloc rather than malloc. Also since we
2582 cannot be sure that the contents will actually be filled in,
2583 we zero the allocated space. */
2584 rel_hdr->contents = (unsigned char *) bfd_zalloc (abfd, rel_hdr->sh_size);
2585 if (rel_hdr->contents == NULL && rel_hdr->sh_size != 0)
2586 return FALSE;
2587
2588 if (reldata->hashes == NULL && reldata->count)
2589 {
2590 struct elf_link_hash_entry **p;
2591
2592 p = ((struct elf_link_hash_entry **)
2593 bfd_zmalloc (reldata->count * sizeof (*p)));
2594 if (p == NULL)
2595 return FALSE;
2596
2597 reldata->hashes = p;
2598 }
2599
2600 return TRUE;
2601 }
2602
2603 /* Copy the relocations indicated by the INTERNAL_RELOCS (which
2604 originated from the section given by INPUT_REL_HDR) to the
2605 OUTPUT_BFD. */
2606
2607 bfd_boolean
2608 _bfd_elf_link_output_relocs (bfd *output_bfd,
2609 asection *input_section,
2610 Elf_Internal_Shdr *input_rel_hdr,
2611 Elf_Internal_Rela *internal_relocs,
2612 struct elf_link_hash_entry **rel_hash
2613 ATTRIBUTE_UNUSED)
2614 {
2615 Elf_Internal_Rela *irela;
2616 Elf_Internal_Rela *irelaend;
2617 bfd_byte *erel;
2618 struct bfd_elf_section_reloc_data *output_reldata;
2619 asection *output_section;
2620 const struct elf_backend_data *bed;
2621 void (*swap_out) (bfd *, const Elf_Internal_Rela *, bfd_byte *);
2622 struct bfd_elf_section_data *esdo;
2623
2624 output_section = input_section->output_section;
2625
2626 bed = get_elf_backend_data (output_bfd);
2627 esdo = elf_section_data (output_section);
2628 if (esdo->rel.hdr && esdo->rel.hdr->sh_entsize == input_rel_hdr->sh_entsize)
2629 {
2630 output_reldata = &esdo->rel;
2631 swap_out = bed->s->swap_reloc_out;
2632 }
2633 else if (esdo->rela.hdr
2634 && esdo->rela.hdr->sh_entsize == input_rel_hdr->sh_entsize)
2635 {
2636 output_reldata = &esdo->rela;
2637 swap_out = bed->s->swap_reloca_out;
2638 }
2639 else
2640 {
2641 _bfd_error_handler
2642 /* xgettext:c-format */
2643 (_("%B: relocation size mismatch in %B section %A"),
2644 output_bfd, input_section->owner, input_section);
2645 bfd_set_error (bfd_error_wrong_format);
2646 return FALSE;
2647 }
2648
2649 erel = output_reldata->hdr->contents;
2650 erel += output_reldata->count * input_rel_hdr->sh_entsize;
2651 irela = internal_relocs;
2652 irelaend = irela + (NUM_SHDR_ENTRIES (input_rel_hdr)
2653 * bed->s->int_rels_per_ext_rel);
2654 while (irela < irelaend)
2655 {
2656 (*swap_out) (output_bfd, irela, erel);
2657 irela += bed->s->int_rels_per_ext_rel;
2658 erel += input_rel_hdr->sh_entsize;
2659 }
2660
2661 /* Bump the counter, so that we know where to add the next set of
2662 relocations. */
2663 output_reldata->count += NUM_SHDR_ENTRIES (input_rel_hdr);
2664
2665 return TRUE;
2666 }
2667
2668 /* Make weak undefined symbols in PIE dynamic. */
2670
2671 bfd_boolean
2672 _bfd_elf_link_hash_fixup_symbol (struct bfd_link_info *info,
2673 struct elf_link_hash_entry *h)
2674 {
2675 if (bfd_link_pie (info)
2676 && h->dynindx == -1
2677 && h->root.type == bfd_link_hash_undefweak)
2678 return bfd_elf_link_record_dynamic_symbol (info, h);
2679
2680 return TRUE;
2681 }
2682
2683 /* Fix up the flags for a symbol. This handles various cases which
2684 can only be fixed after all the input files are seen. This is
2685 currently called by both adjust_dynamic_symbol and
2686 assign_sym_version, which is unnecessary but perhaps more robust in
2687 the face of future changes. */
2688
2689 static bfd_boolean
2690 _bfd_elf_fix_symbol_flags (struct elf_link_hash_entry *h,
2691 struct elf_info_failed *eif)
2692 {
2693 const struct elf_backend_data *bed;
2694
2695 /* If this symbol was mentioned in a non-ELF file, try to set
2696 DEF_REGULAR and REF_REGULAR correctly. This is the only way to
2697 permit a non-ELF file to correctly refer to a symbol defined in
2698 an ELF dynamic object. */
2699 if (h->non_elf)
2700 {
2701 while (h->root.type == bfd_link_hash_indirect)
2702 h = (struct elf_link_hash_entry *) h->root.u.i.link;
2703
2704 if (h->root.type != bfd_link_hash_defined
2705 && h->root.type != bfd_link_hash_defweak)
2706 {
2707 h->ref_regular = 1;
2708 h->ref_regular_nonweak = 1;
2709 }
2710 else
2711 {
2712 if (h->root.u.def.section->owner != NULL
2713 && (bfd_get_flavour (h->root.u.def.section->owner)
2714 == bfd_target_elf_flavour))
2715 {
2716 h->ref_regular = 1;
2717 h->ref_regular_nonweak = 1;
2718 }
2719 else
2720 h->def_regular = 1;
2721 }
2722
2723 if (h->dynindx == -1
2724 && (h->def_dynamic
2725 || h->ref_dynamic))
2726 {
2727 if (! bfd_elf_link_record_dynamic_symbol (eif->info, h))
2728 {
2729 eif->failed = TRUE;
2730 return FALSE;
2731 }
2732 }
2733 }
2734 else
2735 {
2736 /* Unfortunately, NON_ELF is only correct if the symbol
2737 was first seen in a non-ELF file. Fortunately, if the symbol
2738 was first seen in an ELF file, we're probably OK unless the
2739 symbol was defined in a non-ELF file. Catch that case here.
2740 FIXME: We're still in trouble if the symbol was first seen in
2741 a dynamic object, and then later in a non-ELF regular object. */
2742 if ((h->root.type == bfd_link_hash_defined
2743 || h->root.type == bfd_link_hash_defweak)
2744 && !h->def_regular
2745 && (h->root.u.def.section->owner != NULL
2746 ? (bfd_get_flavour (h->root.u.def.section->owner)
2747 != bfd_target_elf_flavour)
2748 : (bfd_is_abs_section (h->root.u.def.section)
2749 && !h->def_dynamic)))
2750 h->def_regular = 1;
2751 }
2752
2753 /* Backend specific symbol fixup. */
2754 bed = get_elf_backend_data (elf_hash_table (eif->info)->dynobj);
2755 if (bed->elf_backend_fixup_symbol
2756 && !(*bed->elf_backend_fixup_symbol) (eif->info, h))
2757 return FALSE;
2758
2759 /* If this is a final link, and the symbol was defined as a common
2760 symbol in a regular object file, and there was no definition in
2761 any dynamic object, then the linker will have allocated space for
2762 the symbol in a common section but the DEF_REGULAR
2763 flag will not have been set. */
2764 if (h->root.type == bfd_link_hash_defined
2765 && !h->def_regular
2766 && h->ref_regular
2767 && !h->def_dynamic
2768 && (h->root.u.def.section->owner->flags & (DYNAMIC | BFD_PLUGIN)) == 0)
2769 h->def_regular = 1;
2770
2771 /* If a weak undefined symbol has non-default visibility, we also
2772 hide it from the dynamic linker. */
2773 if (ELF_ST_VISIBILITY (h->other) != STV_DEFAULT
2774 && h->root.type == bfd_link_hash_undefweak)
2775 (*bed->elf_backend_hide_symbol) (eif->info, h, TRUE);
2776
2777 /* A hidden versioned symbol in executable should be forced local if
2778 it is is locally defined, not referenced by shared library and not
2779 exported. */
2780 else if (bfd_link_executable (eif->info)
2781 && h->versioned == versioned_hidden
2782 && !eif->info->export_dynamic
2783 && !h->dynamic
2784 && !h->ref_dynamic
2785 && h->def_regular)
2786 (*bed->elf_backend_hide_symbol) (eif->info, h, TRUE);
2787
2788 /* If -Bsymbolic was used (which means to bind references to global
2789 symbols to the definition within the shared object), and this
2790 symbol was defined in a regular object, then it actually doesn't
2791 need a PLT entry. Likewise, if the symbol has non-default
2792 visibility. If the symbol has hidden or internal visibility, we
2793 will force it local. */
2794 else if (h->needs_plt
2795 && bfd_link_pic (eif->info)
2796 && is_elf_hash_table (eif->info->hash)
2797 && (SYMBOLIC_BIND (eif->info, h)
2798 || ELF_ST_VISIBILITY (h->other) != STV_DEFAULT)
2799 && h->def_regular)
2800 {
2801 bfd_boolean force_local;
2802
2803 force_local = (ELF_ST_VISIBILITY (h->other) == STV_INTERNAL
2804 || ELF_ST_VISIBILITY (h->other) == STV_HIDDEN);
2805 (*bed->elf_backend_hide_symbol) (eif->info, h, force_local);
2806 }
2807
2808 /* If this is a weak defined symbol in a dynamic object, and we know
2809 the real definition in the dynamic object, copy interesting flags
2810 over to the real definition. */
2811 if (h->is_weakalias)
2812 {
2813 struct elf_link_hash_entry *def = weakdef (h);
2814
2815 /* If the real definition is defined by a regular object file,
2816 don't do anything special. See the longer description in
2817 _bfd_elf_adjust_dynamic_symbol, below. */
2818 if (def->def_regular)
2819 {
2820 h = def;
2821 while ((h = h->u.alias) != def)
2822 h->is_weakalias = 0;
2823 }
2824 else
2825 {
2826 while (h->root.type == bfd_link_hash_indirect)
2827 h = (struct elf_link_hash_entry *) h->root.u.i.link;
2828 BFD_ASSERT (h->root.type == bfd_link_hash_defined
2829 || h->root.type == bfd_link_hash_defweak);
2830 BFD_ASSERT (def->def_dynamic);
2831 BFD_ASSERT (def->root.type == bfd_link_hash_defined);
2832 (*bed->elf_backend_copy_indirect_symbol) (eif->info, def, h);
2833 }
2834 }
2835
2836 return TRUE;
2837 }
2838
2839 /* Make the backend pick a good value for a dynamic symbol. This is
2840 called via elf_link_hash_traverse, and also calls itself
2841 recursively. */
2842
2843 static bfd_boolean
2844 _bfd_elf_adjust_dynamic_symbol (struct elf_link_hash_entry *h, void *data)
2845 {
2846 struct elf_info_failed *eif = (struct elf_info_failed *) data;
2847 struct elf_link_hash_table *htab;
2848 const struct elf_backend_data *bed;
2849
2850 if (! is_elf_hash_table (eif->info->hash))
2851 return FALSE;
2852
2853 /* Ignore indirect symbols. These are added by the versioning code. */
2854 if (h->root.type == bfd_link_hash_indirect)
2855 return TRUE;
2856
2857 /* Fix the symbol flags. */
2858 if (! _bfd_elf_fix_symbol_flags (h, eif))
2859 return FALSE;
2860
2861 htab = elf_hash_table (eif->info);
2862 bed = get_elf_backend_data (htab->dynobj);
2863
2864 if (h->root.type == bfd_link_hash_undefweak)
2865 {
2866 if (eif->info->dynamic_undefined_weak == 0)
2867 (*bed->elf_backend_hide_symbol) (eif->info, h, TRUE);
2868 else if (eif->info->dynamic_undefined_weak > 0
2869 && h->ref_regular
2870 && ELF_ST_VISIBILITY (h->other) == STV_DEFAULT
2871 && !bfd_hide_sym_by_version (eif->info->version_info,
2872 h->root.root.string))
2873 {
2874 if (!bfd_elf_link_record_dynamic_symbol (eif->info, h))
2875 {
2876 eif->failed = TRUE;
2877 return FALSE;
2878 }
2879 }
2880 }
2881
2882 /* If this symbol does not require a PLT entry, and it is not
2883 defined by a dynamic object, or is not referenced by a regular
2884 object, ignore it. We do have to handle a weak defined symbol,
2885 even if no regular object refers to it, if we decided to add it
2886 to the dynamic symbol table. FIXME: Do we normally need to worry
2887 about symbols which are defined by one dynamic object and
2888 referenced by another one? */
2889 if (!h->needs_plt
2890 && h->type != STT_GNU_IFUNC
2891 && (h->def_regular
2892 || !h->def_dynamic
2893 || (!h->ref_regular
2894 && (!h->is_weakalias || weakdef (h)->dynindx == -1))))
2895 {
2896 h->plt = elf_hash_table (eif->info)->init_plt_offset;
2897 return TRUE;
2898 }
2899
2900 /* If we've already adjusted this symbol, don't do it again. This
2901 can happen via a recursive call. */
2902 if (h->dynamic_adjusted)
2903 return TRUE;
2904
2905 /* Don't look at this symbol again. Note that we must set this
2906 after checking the above conditions, because we may look at a
2907 symbol once, decide not to do anything, and then get called
2908 recursively later after REF_REGULAR is set below. */
2909 h->dynamic_adjusted = 1;
2910
2911 /* If this is a weak definition, and we know a real definition, and
2912 the real symbol is not itself defined by a regular object file,
2913 then get a good value for the real definition. We handle the
2914 real symbol first, for the convenience of the backend routine.
2915
2916 Note that there is a confusing case here. If the real definition
2917 is defined by a regular object file, we don't get the real symbol
2918 from the dynamic object, but we do get the weak symbol. If the
2919 processor backend uses a COPY reloc, then if some routine in the
2920 dynamic object changes the real symbol, we will not see that
2921 change in the corresponding weak symbol. This is the way other
2922 ELF linkers work as well, and seems to be a result of the shared
2923 library model.
2924
2925 I will clarify this issue. Most SVR4 shared libraries define the
2926 variable _timezone and define timezone as a weak synonym. The
2927 tzset call changes _timezone. If you write
2928 extern int timezone;
2929 int _timezone = 5;
2930 int main () { tzset (); printf ("%d %d\n", timezone, _timezone); }
2931 you might expect that, since timezone is a synonym for _timezone,
2932 the same number will print both times. However, if the processor
2933 backend uses a COPY reloc, then actually timezone will be copied
2934 into your process image, and, since you define _timezone
2935 yourself, _timezone will not. Thus timezone and _timezone will
2936 wind up at different memory locations. The tzset call will set
2937 _timezone, leaving timezone unchanged. */
2938
2939 if (h->is_weakalias)
2940 {
2941 struct elf_link_hash_entry *def = weakdef (h);
2942
2943 /* If we get to this point, there is an implicit reference to
2944 the alias by a regular object file via the weak symbol H. */
2945 def->ref_regular = 1;
2946
2947 /* Ensure that the backend adjust_dynamic_symbol function sees
2948 the strong alias before H by recursively calling ourselves. */
2949 if (!_bfd_elf_adjust_dynamic_symbol (def, eif))
2950 return FALSE;
2951 }
2952
2953 /* If a symbol has no type and no size and does not require a PLT
2954 entry, then we are probably about to do the wrong thing here: we
2955 are probably going to create a COPY reloc for an empty object.
2956 This case can arise when a shared object is built with assembly
2957 code, and the assembly code fails to set the symbol type. */
2958 if (h->size == 0
2959 && h->type == STT_NOTYPE
2960 && !h->needs_plt)
2961 _bfd_error_handler
2962 (_("warning: type and size of dynamic symbol `%s' are not defined"),
2963 h->root.root.string);
2964
2965 if (! (*bed->elf_backend_adjust_dynamic_symbol) (eif->info, h))
2966 {
2967 eif->failed = TRUE;
2968 return FALSE;
2969 }
2970
2971 return TRUE;
2972 }
2973
2974 /* Adjust the dynamic symbol, H, for copy in the dynamic bss section,
2975 DYNBSS. */
2976
2977 bfd_boolean
2978 _bfd_elf_adjust_dynamic_copy (struct bfd_link_info *info,
2979 struct elf_link_hash_entry *h,
2980 asection *dynbss)
2981 {
2982 unsigned int power_of_two;
2983 bfd_vma mask;
2984 asection *sec = h->root.u.def.section;
2985
2986 /* The section alignment of the definition is the maximum alignment
2987 requirement of symbols defined in the section. Since we don't
2988 know the symbol alignment requirement, we start with the
2989 maximum alignment and check low bits of the symbol address
2990 for the minimum alignment. */
2991 power_of_two = bfd_get_section_alignment (sec->owner, sec);
2992 mask = ((bfd_vma) 1 << power_of_two) - 1;
2993 while ((h->root.u.def.value & mask) != 0)
2994 {
2995 mask >>= 1;
2996 --power_of_two;
2997 }
2998
2999 if (power_of_two > bfd_get_section_alignment (dynbss->owner,
3000 dynbss))
3001 {
3002 /* Adjust the section alignment if needed. */
3003 if (! bfd_set_section_alignment (dynbss->owner, dynbss,
3004 power_of_two))
3005 return FALSE;
3006 }
3007
3008 /* We make sure that the symbol will be aligned properly. */
3009 dynbss->size = BFD_ALIGN (dynbss->size, mask + 1);
3010
3011 /* Define the symbol as being at this point in DYNBSS. */
3012 h->root.u.def.section = dynbss;
3013 h->root.u.def.value = dynbss->size;
3014
3015 /* Increment the size of DYNBSS to make room for the symbol. */
3016 dynbss->size += h->size;
3017
3018 /* No error if extern_protected_data is true. */
3019 if (h->protected_def
3020 && (!info->extern_protected_data
3021 || (info->extern_protected_data < 0
3022 && !get_elf_backend_data (dynbss->owner)->extern_protected_data)))
3023 info->callbacks->einfo
3024 (_("%P: copy reloc against protected `%T' is dangerous\n"),
3025 h->root.root.string);
3026
3027 return TRUE;
3028 }
3029
3030 /* Adjust all external symbols pointing into SEC_MERGE sections
3031 to reflect the object merging within the sections. */
3032
3033 static bfd_boolean
3034 _bfd_elf_link_sec_merge_syms (struct elf_link_hash_entry *h, void *data)
3035 {
3036 asection *sec;
3037
3038 if ((h->root.type == bfd_link_hash_defined
3039 || h->root.type == bfd_link_hash_defweak)
3040 && ((sec = h->root.u.def.section)->flags & SEC_MERGE)
3041 && sec->sec_info_type == SEC_INFO_TYPE_MERGE)
3042 {
3043 bfd *output_bfd = (bfd *) data;
3044
3045 h->root.u.def.value =
3046 _bfd_merged_section_offset (output_bfd,
3047 &h->root.u.def.section,
3048 elf_section_data (sec)->sec_info,
3049 h->root.u.def.value);
3050 }
3051
3052 return TRUE;
3053 }
3054
3055 /* Returns false if the symbol referred to by H should be considered
3056 to resolve local to the current module, and true if it should be
3057 considered to bind dynamically. */
3058
3059 bfd_boolean
3060 _bfd_elf_dynamic_symbol_p (struct elf_link_hash_entry *h,
3061 struct bfd_link_info *info,
3062 bfd_boolean not_local_protected)
3063 {
3064 bfd_boolean binding_stays_local_p;
3065 const struct elf_backend_data *bed;
3066 struct elf_link_hash_table *hash_table;
3067
3068 if (h == NULL)
3069 return FALSE;
3070
3071 while (h->root.type == bfd_link_hash_indirect
3072 || h->root.type == bfd_link_hash_warning)
3073 h = (struct elf_link_hash_entry *) h->root.u.i.link;
3074
3075 /* If it was forced local, then clearly it's not dynamic. */
3076 if (h->dynindx == -1)
3077 return FALSE;
3078 if (h->forced_local)
3079 return FALSE;
3080
3081 /* Identify the cases where name binding rules say that a
3082 visible symbol resolves locally. */
3083 binding_stays_local_p = (bfd_link_executable (info)
3084 || SYMBOLIC_BIND (info, h));
3085
3086 switch (ELF_ST_VISIBILITY (h->other))
3087 {
3088 case STV_INTERNAL:
3089 case STV_HIDDEN:
3090 return FALSE;
3091
3092 case STV_PROTECTED:
3093 hash_table = elf_hash_table (info);
3094 if (!is_elf_hash_table (hash_table))
3095 return FALSE;
3096
3097 bed = get_elf_backend_data (hash_table->dynobj);
3098
3099 /* Proper resolution for function pointer equality may require
3100 that these symbols perhaps be resolved dynamically, even though
3101 we should be resolving them to the current module. */
3102 if (!not_local_protected || !bed->is_function_type (h->type))
3103 binding_stays_local_p = TRUE;
3104 break;
3105
3106 default:
3107 break;
3108 }
3109
3110 /* If it isn't defined locally, then clearly it's dynamic. */
3111 if (!h->def_regular && !ELF_COMMON_DEF_P (h))
3112 return TRUE;
3113
3114 /* Otherwise, the symbol is dynamic if binding rules don't tell
3115 us that it remains local. */
3116 return !binding_stays_local_p;
3117 }
3118
3119 /* Return true if the symbol referred to by H should be considered
3120 to resolve local to the current module, and false otherwise. Differs
3121 from (the inverse of) _bfd_elf_dynamic_symbol_p in the treatment of
3122 undefined symbols. The two functions are virtually identical except
3123 for the place where dynindx == -1 is tested. If that test is true,
3124 _bfd_elf_dynamic_symbol_p will say the symbol is local, while
3125 _bfd_elf_symbol_refs_local_p will say the symbol is local only for
3126 defined symbols.
3127 It might seem that _bfd_elf_dynamic_symbol_p could be rewritten as
3128 !_bfd_elf_symbol_refs_local_p, except that targets differ in their
3129 treatment of undefined weak symbols. For those that do not make
3130 undefined weak symbols dynamic, both functions may return false. */
3131
3132 bfd_boolean
3133 _bfd_elf_symbol_refs_local_p (struct elf_link_hash_entry *h,
3134 struct bfd_link_info *info,
3135 bfd_boolean local_protected)
3136 {
3137 const struct elf_backend_data *bed;
3138 struct elf_link_hash_table *hash_table;
3139
3140 /* If it's a local sym, of course we resolve locally. */
3141 if (h == NULL)
3142 return TRUE;
3143
3144 /* STV_HIDDEN or STV_INTERNAL ones must be local. */
3145 if (ELF_ST_VISIBILITY (h->other) == STV_HIDDEN
3146 || ELF_ST_VISIBILITY (h->other) == STV_INTERNAL)
3147 return TRUE;
3148
3149 /* Forced local symbols resolve locally. */
3150 if (h->forced_local)
3151 return TRUE;
3152
3153 /* Common symbols that become definitions don't get the DEF_REGULAR
3154 flag set, so test it first, and don't bail out. */
3155 if (ELF_COMMON_DEF_P (h))
3156 /* Do nothing. */;
3157 /* If we don't have a definition in a regular file, then we can't
3158 resolve locally. The sym is either undefined or dynamic. */
3159 else if (!h->def_regular)
3160 return FALSE;
3161
3162 /* Non-dynamic symbols resolve locally. */
3163 if (h->dynindx == -1)
3164 return TRUE;
3165
3166 /* At this point, we know the symbol is defined and dynamic. In an
3167 executable it must resolve locally, likewise when building symbolic
3168 shared libraries. */
3169 if (bfd_link_executable (info) || SYMBOLIC_BIND (info, h))
3170 return TRUE;
3171
3172 /* Now deal with defined dynamic symbols in shared libraries. Ones
3173 with default visibility might not resolve locally. */
3174 if (ELF_ST_VISIBILITY (h->other) == STV_DEFAULT)
3175 return FALSE;
3176
3177 hash_table = elf_hash_table (info);
3178 if (!is_elf_hash_table (hash_table))
3179 return TRUE;
3180
3181 bed = get_elf_backend_data (hash_table->dynobj);
3182
3183 /* If extern_protected_data is false, STV_PROTECTED non-function
3184 symbols are local. */
3185 if ((!info->extern_protected_data
3186 || (info->extern_protected_data < 0
3187 && !bed->extern_protected_data))
3188 && !bed->is_function_type (h->type))
3189 return TRUE;
3190
3191 /* Function pointer equality tests may require that STV_PROTECTED
3192 symbols be treated as dynamic symbols. If the address of a
3193 function not defined in an executable is set to that function's
3194 plt entry in the executable, then the address of the function in
3195 a shared library must also be the plt entry in the executable. */
3196 return local_protected;
3197 }
3198
3199 /* Caches some TLS segment info, and ensures that the TLS segment vma is
3200 aligned. Returns the first TLS output section. */
3201
3202 struct bfd_section *
3203 _bfd_elf_tls_setup (bfd *obfd, struct bfd_link_info *info)
3204 {
3205 struct bfd_section *sec, *tls;
3206 unsigned int align = 0;
3207
3208 for (sec = obfd->sections; sec != NULL; sec = sec->next)
3209 if ((sec->flags & SEC_THREAD_LOCAL) != 0)
3210 break;
3211 tls = sec;
3212
3213 for (; sec != NULL && (sec->flags & SEC_THREAD_LOCAL) != 0; sec = sec->next)
3214 if (sec->alignment_power > align)
3215 align = sec->alignment_power;
3216
3217 elf_hash_table (info)->tls_sec = tls;
3218
3219 /* Ensure the alignment of the first section is the largest alignment,
3220 so that the tls segment starts aligned. */
3221 if (tls != NULL)
3222 tls->alignment_power = align;
3223
3224 return tls;
3225 }
3226
3227 /* Return TRUE iff this is a non-common, definition of a non-function symbol. */
3228 static bfd_boolean
3229 is_global_data_symbol_definition (bfd *abfd ATTRIBUTE_UNUSED,
3230 Elf_Internal_Sym *sym)
3231 {
3232 const struct elf_backend_data *bed;
3233
3234 /* Local symbols do not count, but target specific ones might. */
3235 if (ELF_ST_BIND (sym->st_info) != STB_GLOBAL
3236 && ELF_ST_BIND (sym->st_info) < STB_LOOS)
3237 return FALSE;
3238
3239 bed = get_elf_backend_data (abfd);
3240 /* Function symbols do not count. */
3241 if (bed->is_function_type (ELF_ST_TYPE (sym->st_info)))
3242 return FALSE;
3243
3244 /* If the section is undefined, then so is the symbol. */
3245 if (sym->st_shndx == SHN_UNDEF)
3246 return FALSE;
3247
3248 /* If the symbol is defined in the common section, then
3249 it is a common definition and so does not count. */
3250 if (bed->common_definition (sym))
3251 return FALSE;
3252
3253 /* If the symbol is in a target specific section then we
3254 must rely upon the backend to tell us what it is. */
3255 if (sym->st_shndx >= SHN_LORESERVE && sym->st_shndx < SHN_ABS)
3256 /* FIXME - this function is not coded yet:
3257
3258 return _bfd_is_global_symbol_definition (abfd, sym);
3259
3260 Instead for now assume that the definition is not global,
3261 Even if this is wrong, at least the linker will behave
3262 in the same way that it used to do. */
3263 return FALSE;
3264
3265 return TRUE;
3266 }
3267
3268 /* Search the symbol table of the archive element of the archive ABFD
3269 whose archive map contains a mention of SYMDEF, and determine if
3270 the symbol is defined in this element. */
3271 static bfd_boolean
3272 elf_link_is_defined_archive_symbol (bfd * abfd, carsym * symdef)
3273 {
3274 Elf_Internal_Shdr * hdr;
3275 size_t symcount;
3276 size_t extsymcount;
3277 size_t extsymoff;
3278 Elf_Internal_Sym *isymbuf;
3279 Elf_Internal_Sym *isym;
3280 Elf_Internal_Sym *isymend;
3281 bfd_boolean result;
3282
3283 abfd = _bfd_get_elt_at_filepos (abfd, symdef->file_offset);
3284 if (abfd == NULL)
3285 return FALSE;
3286
3287 if (! bfd_check_format (abfd, bfd_object))
3288 return FALSE;
3289
3290 /* Select the appropriate symbol table. If we don't know if the
3291 object file is an IR object, give linker LTO plugin a chance to
3292 get the correct symbol table. */
3293 if (abfd->plugin_format == bfd_plugin_yes
3294 #if BFD_SUPPORTS_PLUGINS
3295 || (abfd->plugin_format == bfd_plugin_unknown
3296 && bfd_link_plugin_object_p (abfd))
3297 #endif
3298 )
3299 {
3300 /* Use the IR symbol table if the object has been claimed by
3301 plugin. */
3302 abfd = abfd->plugin_dummy_bfd;
3303 hdr = &elf_tdata (abfd)->symtab_hdr;
3304 }
3305 else if ((abfd->flags & DYNAMIC) == 0 || elf_dynsymtab (abfd) == 0)
3306 hdr = &elf_tdata (abfd)->symtab_hdr;
3307 else
3308 hdr = &elf_tdata (abfd)->dynsymtab_hdr;
3309
3310 symcount = hdr->sh_size / get_elf_backend_data (abfd)->s->sizeof_sym;
3311
3312 /* The sh_info field of the symtab header tells us where the
3313 external symbols start. We don't care about the local symbols. */
3314 if (elf_bad_symtab (abfd))
3315 {
3316 extsymcount = symcount;
3317 extsymoff = 0;
3318 }
3319 else
3320 {
3321 extsymcount = symcount - hdr->sh_info;
3322 extsymoff = hdr->sh_info;
3323 }
3324
3325 if (extsymcount == 0)
3326 return FALSE;
3327
3328 /* Read in the symbol table. */
3329 isymbuf = bfd_elf_get_elf_syms (abfd, hdr, extsymcount, extsymoff,
3330 NULL, NULL, NULL);
3331 if (isymbuf == NULL)
3332 return FALSE;
3333
3334 /* Scan the symbol table looking for SYMDEF. */
3335 result = FALSE;
3336 for (isym = isymbuf, isymend = isymbuf + extsymcount; isym < isymend; isym++)
3337 {
3338 const char *name;
3339
3340 name = bfd_elf_string_from_elf_section (abfd, hdr->sh_link,
3341 isym->st_name);
3342 if (name == NULL)
3343 break;
3344
3345 if (strcmp (name, symdef->name) == 0)
3346 {
3347 result = is_global_data_symbol_definition (abfd, isym);
3348 break;
3349 }
3350 }
3351
3352 free (isymbuf);
3353
3354 return result;
3355 }
3356
3357 /* Add an entry to the .dynamic table. */
3359
3360 bfd_boolean
3361 _bfd_elf_add_dynamic_entry (struct bfd_link_info *info,
3362 bfd_vma tag,
3363 bfd_vma val)
3364 {
3365 struct elf_link_hash_table *hash_table;
3366 const struct elf_backend_data *bed;
3367 asection *s;
3368 bfd_size_type newsize;
3369 bfd_byte *newcontents;
3370 Elf_Internal_Dyn dyn;
3371
3372 hash_table = elf_hash_table (info);
3373 if (! is_elf_hash_table (hash_table))
3374 return FALSE;
3375
3376 bed = get_elf_backend_data (hash_table->dynobj);
3377 s = bfd_get_linker_section (hash_table->dynobj, ".dynamic");
3378 BFD_ASSERT (s != NULL);
3379
3380 newsize = s->size + bed->s->sizeof_dyn;
3381 newcontents = (bfd_byte *) bfd_realloc (s->contents, newsize);
3382 if (newcontents == NULL)
3383 return FALSE;
3384
3385 dyn.d_tag = tag;
3386 dyn.d_un.d_val = val;
3387 bed->s->swap_dyn_out (hash_table->dynobj, &dyn, newcontents + s->size);
3388
3389 s->size = newsize;
3390 s->contents = newcontents;
3391
3392 return TRUE;
3393 }
3394
3395 /* Add a DT_NEEDED entry for this dynamic object if DO_IT is true,
3396 otherwise just check whether one already exists. Returns -1 on error,
3397 1 if a DT_NEEDED tag already exists, and 0 on success. */
3398
3399 static int
3400 elf_add_dt_needed_tag (bfd *abfd,
3401 struct bfd_link_info *info,
3402 const char *soname,
3403 bfd_boolean do_it)
3404 {
3405 struct elf_link_hash_table *hash_table;
3406 size_t strindex;
3407
3408 if (!_bfd_elf_link_create_dynstrtab (abfd, info))
3409 return -1;
3410
3411 hash_table = elf_hash_table (info);
3412 strindex = _bfd_elf_strtab_add (hash_table->dynstr, soname, FALSE);
3413 if (strindex == (size_t) -1)
3414 return -1;
3415
3416 if (_bfd_elf_strtab_refcount (hash_table->dynstr, strindex) != 1)
3417 {
3418 asection *sdyn;
3419 const struct elf_backend_data *bed;
3420 bfd_byte *extdyn;
3421
3422 bed = get_elf_backend_data (hash_table->dynobj);
3423 sdyn = bfd_get_linker_section (hash_table->dynobj, ".dynamic");
3424 if (sdyn != NULL)
3425 for (extdyn = sdyn->contents;
3426 extdyn < sdyn->contents + sdyn->size;
3427 extdyn += bed->s->sizeof_dyn)
3428 {
3429 Elf_Internal_Dyn dyn;
3430
3431 bed->s->swap_dyn_in (hash_table->dynobj, extdyn, &dyn);
3432 if (dyn.d_tag == DT_NEEDED
3433 && dyn.d_un.d_val == strindex)
3434 {
3435 _bfd_elf_strtab_delref (hash_table->dynstr, strindex);
3436 return 1;
3437 }
3438 }
3439 }
3440
3441 if (do_it)
3442 {
3443 if (!_bfd_elf_link_create_dynamic_sections (hash_table->dynobj, info))
3444 return -1;
3445
3446 if (!_bfd_elf_add_dynamic_entry (info, DT_NEEDED, strindex))
3447 return -1;
3448 }
3449 else
3450 /* We were just checking for existence of the tag. */
3451 _bfd_elf_strtab_delref (hash_table->dynstr, strindex);
3452
3453 return 0;
3454 }
3455
3456 /* Return true if SONAME is on the needed list between NEEDED and STOP
3457 (or the end of list if STOP is NULL), and needed by a library that
3458 will be loaded. */
3459
3460 static bfd_boolean
3461 on_needed_list (const char *soname,
3462 struct bfd_link_needed_list *needed,
3463 struct bfd_link_needed_list *stop)
3464 {
3465 struct bfd_link_needed_list *look;
3466 for (look = needed; look != stop; look = look->next)
3467 if (strcmp (soname, look->name) == 0
3468 && ((elf_dyn_lib_class (look->by) & DYN_AS_NEEDED) == 0
3469 /* If needed by a library that itself is not directly
3470 needed, recursively check whether that library is
3471 indirectly needed. Since we add DT_NEEDED entries to
3472 the end of the list, library dependencies appear after
3473 the library. Therefore search prior to the current
3474 LOOK, preventing possible infinite recursion. */
3475 || on_needed_list (elf_dt_name (look->by), needed, look)))
3476 return TRUE;
3477
3478 return FALSE;
3479 }
3480
3481 /* Sort symbol by value, section, and size. */
3482 static int
3483 elf_sort_symbol (const void *arg1, const void *arg2)
3484 {
3485 const struct elf_link_hash_entry *h1;
3486 const struct elf_link_hash_entry *h2;
3487 bfd_signed_vma vdiff;
3488
3489 h1 = *(const struct elf_link_hash_entry **) arg1;
3490 h2 = *(const struct elf_link_hash_entry **) arg2;
3491 vdiff = h1->root.u.def.value - h2->root.u.def.value;
3492 if (vdiff != 0)
3493 return vdiff > 0 ? 1 : -1;
3494 else
3495 {
3496 int sdiff = h1->root.u.def.section->id - h2->root.u.def.section->id;
3497 if (sdiff != 0)
3498 return sdiff > 0 ? 1 : -1;
3499 }
3500 vdiff = h1->size - h2->size;
3501 return vdiff == 0 ? 0 : vdiff > 0 ? 1 : -1;
3502 }
3503
3504 /* This function is used to adjust offsets into .dynstr for
3505 dynamic symbols. This is called via elf_link_hash_traverse. */
3506
3507 static bfd_boolean
3508 elf_adjust_dynstr_offsets (struct elf_link_hash_entry *h, void *data)
3509 {
3510 struct elf_strtab_hash *dynstr = (struct elf_strtab_hash *) data;
3511
3512 if (h->dynindx != -1)
3513 h->dynstr_index = _bfd_elf_strtab_offset (dynstr, h->dynstr_index);
3514 return TRUE;
3515 }
3516
3517 /* Assign string offsets in .dynstr, update all structures referencing
3518 them. */
3519
3520 static bfd_boolean
3521 elf_finalize_dynstr (bfd *output_bfd, struct bfd_link_info *info)
3522 {
3523 struct elf_link_hash_table *hash_table = elf_hash_table (info);
3524 struct elf_link_local_dynamic_entry *entry;
3525 struct elf_strtab_hash *dynstr = hash_table->dynstr;
3526 bfd *dynobj = hash_table->dynobj;
3527 asection *sdyn;
3528 bfd_size_type size;
3529 const struct elf_backend_data *bed;
3530 bfd_byte *extdyn;
3531
3532 _bfd_elf_strtab_finalize (dynstr);
3533 size = _bfd_elf_strtab_size (dynstr);
3534
3535 bed = get_elf_backend_data (dynobj);
3536 sdyn = bfd_get_linker_section (dynobj, ".dynamic");
3537 BFD_ASSERT (sdyn != NULL);
3538
3539 /* Update all .dynamic entries referencing .dynstr strings. */
3540 for (extdyn = sdyn->contents;
3541 extdyn < sdyn->contents + sdyn->size;
3542 extdyn += bed->s->sizeof_dyn)
3543 {
3544 Elf_Internal_Dyn dyn;
3545
3546 bed->s->swap_dyn_in (dynobj, extdyn, &dyn);
3547 switch (dyn.d_tag)
3548 {
3549 case DT_STRSZ:
3550 dyn.d_un.d_val = size;
3551 break;
3552 case DT_NEEDED:
3553 case DT_SONAME:
3554 case DT_RPATH:
3555 case DT_RUNPATH:
3556 case DT_FILTER:
3557 case DT_AUXILIARY:
3558 case DT_AUDIT:
3559 case DT_DEPAUDIT:
3560 dyn.d_un.d_val = _bfd_elf_strtab_offset (dynstr, dyn.d_un.d_val);
3561 break;
3562 default:
3563 continue;
3564 }
3565 bed->s->swap_dyn_out (dynobj, &dyn, extdyn);
3566 }
3567
3568 /* Now update local dynamic symbols. */
3569 for (entry = hash_table->dynlocal; entry ; entry = entry->next)
3570 entry->isym.st_name = _bfd_elf_strtab_offset (dynstr,
3571 entry->isym.st_name);
3572
3573 /* And the rest of dynamic symbols. */
3574 elf_link_hash_traverse (hash_table, elf_adjust_dynstr_offsets, dynstr);
3575
3576 /* Adjust version definitions. */
3577 if (elf_tdata (output_bfd)->cverdefs)
3578 {
3579 asection *s;
3580 bfd_byte *p;
3581 size_t i;
3582 Elf_Internal_Verdef def;
3583 Elf_Internal_Verdaux defaux;
3584
3585 s = bfd_get_linker_section (dynobj, ".gnu.version_d");
3586 p = s->contents;
3587 do
3588 {
3589 _bfd_elf_swap_verdef_in (output_bfd, (Elf_External_Verdef *) p,
3590 &def);
3591 p += sizeof (Elf_External_Verdef);
3592 if (def.vd_aux != sizeof (Elf_External_Verdef))
3593 continue;
3594 for (i = 0; i < def.vd_cnt; ++i)
3595 {
3596 _bfd_elf_swap_verdaux_in (output_bfd,
3597 (Elf_External_Verdaux *) p, &defaux);
3598 defaux.vda_name = _bfd_elf_strtab_offset (dynstr,
3599 defaux.vda_name);
3600 _bfd_elf_swap_verdaux_out (output_bfd,
3601 &defaux, (Elf_External_Verdaux *) p);
3602 p += sizeof (Elf_External_Verdaux);
3603 }
3604 }
3605 while (def.vd_next);
3606 }
3607
3608 /* Adjust version references. */
3609 if (elf_tdata (output_bfd)->verref)
3610 {
3611 asection *s;
3612 bfd_byte *p;
3613 size_t i;
3614 Elf_Internal_Verneed need;
3615 Elf_Internal_Vernaux needaux;
3616
3617 s = bfd_get_linker_section (dynobj, ".gnu.version_r");
3618 p = s->contents;
3619 do
3620 {
3621 _bfd_elf_swap_verneed_in (output_bfd, (Elf_External_Verneed *) p,
3622 &need);
3623 need.vn_file = _bfd_elf_strtab_offset (dynstr, need.vn_file);
3624 _bfd_elf_swap_verneed_out (output_bfd, &need,
3625 (Elf_External_Verneed *) p);
3626 p += sizeof (Elf_External_Verneed);
3627 for (i = 0; i < need.vn_cnt; ++i)
3628 {
3629 _bfd_elf_swap_vernaux_in (output_bfd,
3630 (Elf_External_Vernaux *) p, &needaux);
3631 needaux.vna_name = _bfd_elf_strtab_offset (dynstr,
3632 needaux.vna_name);
3633 _bfd_elf_swap_vernaux_out (output_bfd,
3634 &needaux,
3635 (Elf_External_Vernaux *) p);
3636 p += sizeof (Elf_External_Vernaux);
3637 }
3638 }
3639 while (need.vn_next);
3640 }
3641
3642 return TRUE;
3643 }
3644
3645 /* Return TRUE iff relocations for INPUT are compatible with OUTPUT.
3647 The default is to only match when the INPUT and OUTPUT are exactly
3648 the same target. */
3649
3650 bfd_boolean
3651 _bfd_elf_default_relocs_compatible (const bfd_target *input,
3652 const bfd_target *output)
3653 {
3654 return input == output;
3655 }
3656
3657 /* Return TRUE iff relocations for INPUT are compatible with OUTPUT.
3658 This version is used when different targets for the same architecture
3659 are virtually identical. */
3660
3661 bfd_boolean
3662 _bfd_elf_relocs_compatible (const bfd_target *input,
3663 const bfd_target *output)
3664 {
3665 const struct elf_backend_data *obed, *ibed;
3666
3667 if (input == output)
3668 return TRUE;
3669
3670 ibed = xvec_get_elf_backend_data (input);
3671 obed = xvec_get_elf_backend_data (output);
3672
3673 if (ibed->arch != obed->arch)
3674 return FALSE;
3675
3676 /* If both backends are using this function, deem them compatible. */
3677 return ibed->relocs_compatible == obed->relocs_compatible;
3678 }
3679
3680 /* Make a special call to the linker "notice" function to tell it that
3681 we are about to handle an as-needed lib, or have finished
3682 processing the lib. */
3683
3684 bfd_boolean
3685 _bfd_elf_notice_as_needed (bfd *ibfd,
3686 struct bfd_link_info *info,
3687 enum notice_asneeded_action act)
3688 {
3689 return (*info->callbacks->notice) (info, NULL, NULL, ibfd, NULL, act, 0);
3690 }
3691
3692 /* Check relocations an ELF object file. */
3693
3694 bfd_boolean
3695 _bfd_elf_link_check_relocs (bfd *abfd, struct bfd_link_info *info)
3696 {
3697 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
3698 struct elf_link_hash_table *htab = elf_hash_table (info);
3699
3700 /* If this object is the same format as the output object, and it is
3701 not a shared library, then let the backend look through the
3702 relocs.
3703
3704 This is required to build global offset table entries and to
3705 arrange for dynamic relocs. It is not required for the
3706 particular common case of linking non PIC code, even when linking
3707 against shared libraries, but unfortunately there is no way of
3708 knowing whether an object file has been compiled PIC or not.
3709 Looking through the relocs is not particularly time consuming.
3710 The problem is that we must either (1) keep the relocs in memory,
3711 which causes the linker to require additional runtime memory or
3712 (2) read the relocs twice from the input file, which wastes time.
3713 This would be a good case for using mmap.
3714
3715 I have no idea how to handle linking PIC code into a file of a
3716 different format. It probably can't be done. */
3717 if ((abfd->flags & DYNAMIC) == 0
3718 && is_elf_hash_table (htab)
3719 && bed->check_relocs != NULL
3720 && elf_object_id (abfd) == elf_hash_table_id (htab)
3721 && (*bed->relocs_compatible) (abfd->xvec, info->output_bfd->xvec))
3722 {
3723 asection *o;
3724
3725 for (o = abfd->sections; o != NULL; o = o->next)
3726 {
3727 Elf_Internal_Rela *internal_relocs;
3728 bfd_boolean ok;
3729
3730 /* Don't check relocations in excluded sections. */
3731 if ((o->flags & SEC_RELOC) == 0
3732 || (o->flags & SEC_EXCLUDE) != 0
3733 || o->reloc_count == 0
3734 || ((info->strip == strip_all || info->strip == strip_debugger)
3735 && (o->flags & SEC_DEBUGGING) != 0)
3736 || bfd_is_abs_section (o->output_section))
3737 continue;
3738
3739 internal_relocs = _bfd_elf_link_read_relocs (abfd, o, NULL, NULL,
3740 info->keep_memory);
3741 if (internal_relocs == NULL)
3742 return FALSE;
3743
3744 ok = (*bed->check_relocs) (abfd, info, o, internal_relocs);
3745
3746 if (elf_section_data (o)->relocs != internal_relocs)
3747 free (internal_relocs);
3748
3749 if (! ok)
3750 return FALSE;
3751 }
3752 }
3753
3754 return TRUE;
3755 }
3756
3757 /* Add symbols from an ELF object file to the linker hash table. */
3758
3759 static bfd_boolean
3760 elf_link_add_object_symbols (bfd *abfd, struct bfd_link_info *info)
3761 {
3762 Elf_Internal_Ehdr *ehdr;
3763 Elf_Internal_Shdr *hdr;
3764 size_t symcount;
3765 size_t extsymcount;
3766 size_t extsymoff;
3767 struct elf_link_hash_entry **sym_hash;
3768 bfd_boolean dynamic;
3769 Elf_External_Versym *extversym = NULL;
3770 Elf_External_Versym *ever;
3771 struct elf_link_hash_entry *weaks;
3772 struct elf_link_hash_entry **nondeflt_vers = NULL;
3773 size_t nondeflt_vers_cnt = 0;
3774 Elf_Internal_Sym *isymbuf = NULL;
3775 Elf_Internal_Sym *isym;
3776 Elf_Internal_Sym *isymend;
3777 const struct elf_backend_data *bed;
3778 bfd_boolean add_needed;
3779 struct elf_link_hash_table *htab;
3780 bfd_size_type amt;
3781 void *alloc_mark = NULL;
3782 struct bfd_hash_entry **old_table = NULL;
3783 unsigned int old_size = 0;
3784 unsigned int old_count = 0;
3785 void *old_tab = NULL;
3786 void *old_ent;
3787 struct bfd_link_hash_entry *old_undefs = NULL;
3788 struct bfd_link_hash_entry *old_undefs_tail = NULL;
3789 void *old_strtab = NULL;
3790 size_t tabsize = 0;
3791 asection *s;
3792 bfd_boolean just_syms;
3793
3794 htab = elf_hash_table (info);
3795 bed = get_elf_backend_data (abfd);
3796
3797 if ((abfd->flags & DYNAMIC) == 0)
3798 dynamic = FALSE;
3799 else
3800 {
3801 dynamic = TRUE;
3802
3803 /* You can't use -r against a dynamic object. Also, there's no
3804 hope of using a dynamic object which does not exactly match
3805 the format of the output file. */
3806 if (bfd_link_relocatable (info)
3807 || !is_elf_hash_table (htab)
3808 || info->output_bfd->xvec != abfd->xvec)
3809 {
3810 if (bfd_link_relocatable (info))
3811 bfd_set_error (bfd_error_invalid_operation);
3812 else
3813 bfd_set_error (bfd_error_wrong_format);
3814 goto error_return;
3815 }
3816 }
3817
3818 ehdr = elf_elfheader (abfd);
3819 if (info->warn_alternate_em
3820 && bed->elf_machine_code != ehdr->e_machine
3821 && ((bed->elf_machine_alt1 != 0
3822 && ehdr->e_machine == bed->elf_machine_alt1)
3823 || (bed->elf_machine_alt2 != 0
3824 && ehdr->e_machine == bed->elf_machine_alt2)))
3825 info->callbacks->einfo
3826 /* xgettext:c-format */
3827 (_("%P: alternate ELF machine code found (%d) in %B, expecting %d\n"),
3828 ehdr->e_machine, abfd, bed->elf_machine_code);
3829
3830 /* As a GNU extension, any input sections which are named
3831 .gnu.warning.SYMBOL are treated as warning symbols for the given
3832 symbol. This differs from .gnu.warning sections, which generate
3833 warnings when they are included in an output file. */
3834 /* PR 12761: Also generate this warning when building shared libraries. */
3835 for (s = abfd->sections; s != NULL; s = s->next)
3836 {
3837 const char *name;
3838
3839 name = bfd_get_section_name (abfd, s);
3840 if (CONST_STRNEQ (name, ".gnu.warning."))
3841 {
3842 char *msg;
3843 bfd_size_type sz;
3844
3845 name += sizeof ".gnu.warning." - 1;
3846
3847 /* If this is a shared object, then look up the symbol
3848 in the hash table. If it is there, and it is already
3849 been defined, then we will not be using the entry
3850 from this shared object, so we don't need to warn.
3851 FIXME: If we see the definition in a regular object
3852 later on, we will warn, but we shouldn't. The only
3853 fix is to keep track of what warnings we are supposed
3854 to emit, and then handle them all at the end of the
3855 link. */
3856 if (dynamic)
3857 {
3858 struct elf_link_hash_entry *h;
3859
3860 h = elf_link_hash_lookup (htab, name, FALSE, FALSE, TRUE);
3861
3862 /* FIXME: What about bfd_link_hash_common? */
3863 if (h != NULL
3864 && (h->root.type == bfd_link_hash_defined
3865 || h->root.type == bfd_link_hash_defweak))
3866 continue;
3867 }
3868
3869 sz = s->size;
3870 msg = (char *) bfd_alloc (abfd, sz + 1);
3871 if (msg == NULL)
3872 goto error_return;
3873
3874 if (! bfd_get_section_contents (abfd, s, msg, 0, sz))
3875 goto error_return;
3876
3877 msg[sz] = '\0';
3878
3879 if (! (_bfd_generic_link_add_one_symbol
3880 (info, abfd, name, BSF_WARNING, s, 0, msg,
3881 FALSE, bed->collect, NULL)))
3882 goto error_return;
3883
3884 if (bfd_link_executable (info))
3885 {
3886 /* Clobber the section size so that the warning does
3887 not get copied into the output file. */
3888 s->size = 0;
3889
3890 /* Also set SEC_EXCLUDE, so that symbols defined in
3891 the warning section don't get copied to the output. */
3892 s->flags |= SEC_EXCLUDE;
3893 }
3894 }
3895 }
3896
3897 just_syms = ((s = abfd->sections) != NULL
3898 && s->sec_info_type == SEC_INFO_TYPE_JUST_SYMS);
3899
3900 add_needed = TRUE;
3901 if (! dynamic)
3902 {
3903 /* If we are creating a shared library, create all the dynamic
3904 sections immediately. We need to attach them to something,
3905 so we attach them to this BFD, provided it is the right
3906 format and is not from ld --just-symbols. Always create the
3907 dynamic sections for -E/--dynamic-list. FIXME: If there
3908 are no input BFD's of the same format as the output, we can't
3909 make a shared library. */
3910 if (!just_syms
3911 && (bfd_link_pic (info)
3912 || (!bfd_link_relocatable (info)
3913 && info->nointerp
3914 && (info->export_dynamic || info->dynamic)))
3915 && is_elf_hash_table (htab)
3916 && info->output_bfd->xvec == abfd->xvec
3917 && !htab->dynamic_sections_created)
3918 {
3919 if (! _bfd_elf_link_create_dynamic_sections (abfd, info))
3920 goto error_return;
3921 }
3922 }
3923 else if (!is_elf_hash_table (htab))
3924 goto error_return;
3925 else
3926 {
3927 const char *soname = NULL;
3928 char *audit = NULL;
3929 struct bfd_link_needed_list *rpath = NULL, *runpath = NULL;
3930 const Elf_Internal_Phdr *phdr;
3931 int ret;
3932
3933 /* ld --just-symbols and dynamic objects don't mix very well.
3934 ld shouldn't allow it. */
3935 if (just_syms)
3936 abort ();
3937
3938 /* If this dynamic lib was specified on the command line with
3939 --as-needed in effect, then we don't want to add a DT_NEEDED
3940 tag unless the lib is actually used. Similary for libs brought
3941 in by another lib's DT_NEEDED. When --no-add-needed is used
3942 on a dynamic lib, we don't want to add a DT_NEEDED entry for
3943 any dynamic library in DT_NEEDED tags in the dynamic lib at
3944 all. */
3945 add_needed = (elf_dyn_lib_class (abfd)
3946 & (DYN_AS_NEEDED | DYN_DT_NEEDED
3947 | DYN_NO_NEEDED)) == 0;
3948
3949 s = bfd_get_section_by_name (abfd, ".dynamic");
3950 if (s != NULL)
3951 {
3952 bfd_byte *dynbuf;
3953 bfd_byte *extdyn;
3954 unsigned int elfsec;
3955 unsigned long shlink;
3956
3957 if (!bfd_malloc_and_get_section (abfd, s, &dynbuf))
3958 {
3959 error_free_dyn:
3960 free (dynbuf);
3961 goto error_return;
3962 }
3963
3964 elfsec = _bfd_elf_section_from_bfd_section (abfd, s);
3965 if (elfsec == SHN_BAD)
3966 goto error_free_dyn;
3967 shlink = elf_elfsections (abfd)[elfsec]->sh_link;
3968
3969 for (extdyn = dynbuf;
3970 extdyn < dynbuf + s->size;
3971 extdyn += bed->s->sizeof_dyn)
3972 {
3973 Elf_Internal_Dyn dyn;
3974
3975 bed->s->swap_dyn_in (abfd, extdyn, &dyn);
3976 if (dyn.d_tag == DT_SONAME)
3977 {
3978 unsigned int tagv = dyn.d_un.d_val;
3979 soname = bfd_elf_string_from_elf_section (abfd, shlink, tagv);
3980 if (soname == NULL)
3981 goto error_free_dyn;
3982 }
3983 if (dyn.d_tag == DT_NEEDED)
3984 {
3985 struct bfd_link_needed_list *n, **pn;
3986 char *fnm, *anm;
3987 unsigned int tagv = dyn.d_un.d_val;
3988
3989 amt = sizeof (struct bfd_link_needed_list);
3990 n = (struct bfd_link_needed_list *) bfd_alloc (abfd, amt);
3991 fnm = bfd_elf_string_from_elf_section (abfd, shlink, tagv);
3992 if (n == NULL || fnm == NULL)
3993 goto error_free_dyn;
3994 amt = strlen (fnm) + 1;
3995 anm = (char *) bfd_alloc (abfd, amt);
3996 if (anm == NULL)
3997 goto error_free_dyn;
3998 memcpy (anm, fnm, amt);
3999 n->name = anm;
4000 n->by = abfd;
4001 n->next = NULL;
4002 for (pn = &htab->needed; *pn != NULL; pn = &(*pn)->next)
4003 ;
4004 *pn = n;
4005 }
4006 if (dyn.d_tag == DT_RUNPATH)
4007 {
4008 struct bfd_link_needed_list *n, **pn;
4009 char *fnm, *anm;
4010 unsigned int tagv = dyn.d_un.d_val;
4011
4012 amt = sizeof (struct bfd_link_needed_list);
4013 n = (struct bfd_link_needed_list *) bfd_alloc (abfd, amt);
4014 fnm = bfd_elf_string_from_elf_section (abfd, shlink, tagv);
4015 if (n == NULL || fnm == NULL)
4016 goto error_free_dyn;
4017 amt = strlen (fnm) + 1;
4018 anm = (char *) bfd_alloc (abfd, amt);
4019 if (anm == NULL)
4020 goto error_free_dyn;
4021 memcpy (anm, fnm, amt);
4022 n->name = anm;
4023 n->by = abfd;
4024 n->next = NULL;
4025 for (pn = & runpath;
4026 *pn != NULL;
4027 pn = &(*pn)->next)
4028 ;
4029 *pn = n;
4030 }
4031 /* Ignore DT_RPATH if we have seen DT_RUNPATH. */
4032 if (!runpath && dyn.d_tag == DT_RPATH)
4033 {
4034 struct bfd_link_needed_list *n, **pn;
4035 char *fnm, *anm;
4036 unsigned int tagv = dyn.d_un.d_val;
4037
4038 amt = sizeof (struct bfd_link_needed_list);
4039 n = (struct bfd_link_needed_list *) bfd_alloc (abfd, amt);
4040 fnm = bfd_elf_string_from_elf_section (abfd, shlink, tagv);
4041 if (n == NULL || fnm == NULL)
4042 goto error_free_dyn;
4043 amt = strlen (fnm) + 1;
4044 anm = (char *) bfd_alloc (abfd, amt);
4045 if (anm == NULL)
4046 goto error_free_dyn;
4047 memcpy (anm, fnm, amt);
4048 n->name = anm;
4049 n->by = abfd;
4050 n->next = NULL;
4051 for (pn = & rpath;
4052 *pn != NULL;
4053 pn = &(*pn)->next)
4054 ;
4055 *pn = n;
4056 }
4057 if (dyn.d_tag == DT_AUDIT)
4058 {
4059 unsigned int tagv = dyn.d_un.d_val;
4060 audit = bfd_elf_string_from_elf_section (abfd, shlink, tagv);
4061 }
4062 }
4063
4064 free (dynbuf);
4065 }
4066
4067 /* DT_RUNPATH overrides DT_RPATH. Do _NOT_ bfd_release, as that
4068 frees all more recently bfd_alloc'd blocks as well. */
4069 if (runpath)
4070 rpath = runpath;
4071
4072 if (rpath)
4073 {
4074 struct bfd_link_needed_list **pn;
4075 for (pn = &htab->runpath; *pn != NULL; pn = &(*pn)->next)
4076 ;
4077 *pn = rpath;
4078 }
4079
4080 /* If we have a PT_GNU_RELRO program header, mark as read-only
4081 all sections contained fully therein. This makes relro
4082 shared library sections appear as they will at run-time. */
4083 phdr = elf_tdata (abfd)->phdr + elf_elfheader (abfd)->e_phnum;
4084 while (--phdr >= elf_tdata (abfd)->phdr)
4085 if (phdr->p_type == PT_GNU_RELRO)
4086 {
4087 for (s = abfd->sections; s != NULL; s = s->next)
4088 if ((s->flags & SEC_ALLOC) != 0
4089 && s->vma >= phdr->p_vaddr
4090 && s->vma + s->size <= phdr->p_vaddr + phdr->p_memsz)
4091 s->flags |= SEC_READONLY;
4092 break;
4093 }
4094
4095 /* We do not want to include any of the sections in a dynamic
4096 object in the output file. We hack by simply clobbering the
4097 list of sections in the BFD. This could be handled more
4098 cleanly by, say, a new section flag; the existing
4099 SEC_NEVER_LOAD flag is not the one we want, because that one
4100 still implies that the section takes up space in the output
4101 file. */
4102 bfd_section_list_clear (abfd);
4103
4104 /* Find the name to use in a DT_NEEDED entry that refers to this
4105 object. If the object has a DT_SONAME entry, we use it.
4106 Otherwise, if the generic linker stuck something in
4107 elf_dt_name, we use that. Otherwise, we just use the file
4108 name. */
4109 if (soname == NULL || *soname == '\0')
4110 {
4111 soname = elf_dt_name (abfd);
4112 if (soname == NULL || *soname == '\0')
4113 soname = bfd_get_filename (abfd);
4114 }
4115
4116 /* Save the SONAME because sometimes the linker emulation code
4117 will need to know it. */
4118 elf_dt_name (abfd) = soname;
4119
4120 ret = elf_add_dt_needed_tag (abfd, info, soname, add_needed);
4121 if (ret < 0)
4122 goto error_return;
4123
4124 /* If we have already included this dynamic object in the
4125 link, just ignore it. There is no reason to include a
4126 particular dynamic object more than once. */
4127 if (ret > 0)
4128 return TRUE;
4129
4130 /* Save the DT_AUDIT entry for the linker emulation code. */
4131 elf_dt_audit (abfd) = audit;
4132 }
4133
4134 /* If this is a dynamic object, we always link against the .dynsym
4135 symbol table, not the .symtab symbol table. The dynamic linker
4136 will only see the .dynsym symbol table, so there is no reason to
4137 look at .symtab for a dynamic object. */
4138
4139 if (! dynamic || elf_dynsymtab (abfd) == 0)
4140 hdr = &elf_tdata (abfd)->symtab_hdr;
4141 else
4142 hdr = &elf_tdata (abfd)->dynsymtab_hdr;
4143
4144 symcount = hdr->sh_size / bed->s->sizeof_sym;
4145
4146 /* The sh_info field of the symtab header tells us where the
4147 external symbols start. We don't care about the local symbols at
4148 this point. */
4149 if (elf_bad_symtab (abfd))
4150 {
4151 extsymcount = symcount;
4152 extsymoff = 0;
4153 }
4154 else
4155 {
4156 extsymcount = symcount - hdr->sh_info;
4157 extsymoff = hdr->sh_info;
4158 }
4159
4160 sym_hash = elf_sym_hashes (abfd);
4161 if (extsymcount != 0)
4162 {
4163 isymbuf = bfd_elf_get_elf_syms (abfd, hdr, extsymcount, extsymoff,
4164 NULL, NULL, NULL);
4165 if (isymbuf == NULL)
4166 goto error_return;
4167
4168 if (sym_hash == NULL)
4169 {
4170 /* We store a pointer to the hash table entry for each
4171 external symbol. */
4172 amt = extsymcount;
4173 amt *= sizeof (struct elf_link_hash_entry *);
4174 sym_hash = (struct elf_link_hash_entry **) bfd_zalloc (abfd, amt);
4175 if (sym_hash == NULL)
4176 goto error_free_sym;
4177 elf_sym_hashes (abfd) = sym_hash;
4178 }
4179 }
4180
4181 if (dynamic)
4182 {
4183 /* Read in any version definitions. */
4184 if (!_bfd_elf_slurp_version_tables (abfd,
4185 info->default_imported_symver))
4186 goto error_free_sym;
4187
4188 /* Read in the symbol versions, but don't bother to convert them
4189 to internal format. */
4190 if (elf_dynversym (abfd) != 0)
4191 {
4192 Elf_Internal_Shdr *versymhdr;
4193
4194 versymhdr = &elf_tdata (abfd)->dynversym_hdr;
4195 extversym = (Elf_External_Versym *) bfd_malloc (versymhdr->sh_size);
4196 if (extversym == NULL)
4197 goto error_free_sym;
4198 amt = versymhdr->sh_size;
4199 if (bfd_seek (abfd, versymhdr->sh_offset, SEEK_SET) != 0
4200 || bfd_bread (extversym, amt, abfd) != amt)
4201 goto error_free_vers;
4202 }
4203 }
4204
4205 /* If we are loading an as-needed shared lib, save the symbol table
4206 state before we start adding symbols. If the lib turns out
4207 to be unneeded, restore the state. */
4208 if ((elf_dyn_lib_class (abfd) & DYN_AS_NEEDED) != 0)
4209 {
4210 unsigned int i;
4211 size_t entsize;
4212
4213 for (entsize = 0, i = 0; i < htab->root.table.size; i++)
4214 {
4215 struct bfd_hash_entry *p;
4216 struct elf_link_hash_entry *h;
4217
4218 for (p = htab->root.table.table[i]; p != NULL; p = p->next)
4219 {
4220 h = (struct elf_link_hash_entry *) p;
4221 entsize += htab->root.table.entsize;
4222 if (h->root.type == bfd_link_hash_warning)
4223 entsize += htab->root.table.entsize;
4224 }
4225 }
4226
4227 tabsize = htab->root.table.size * sizeof (struct bfd_hash_entry *);
4228 old_tab = bfd_malloc (tabsize + entsize);
4229 if (old_tab == NULL)
4230 goto error_free_vers;
4231
4232 /* Remember the current objalloc pointer, so that all mem for
4233 symbols added can later be reclaimed. */
4234 alloc_mark = bfd_hash_allocate (&htab->root.table, 1);
4235 if (alloc_mark == NULL)
4236 goto error_free_vers;
4237
4238 /* Make a special call to the linker "notice" function to
4239 tell it that we are about to handle an as-needed lib. */
4240 if (!(*bed->notice_as_needed) (abfd, info, notice_as_needed))
4241 goto error_free_vers;
4242
4243 /* Clone the symbol table. Remember some pointers into the
4244 symbol table, and dynamic symbol count. */
4245 old_ent = (char *) old_tab + tabsize;
4246 memcpy (old_tab, htab->root.table.table, tabsize);
4247 old_undefs = htab->root.undefs;
4248 old_undefs_tail = htab->root.undefs_tail;
4249 old_table = htab->root.table.table;
4250 old_size = htab->root.table.size;
4251 old_count = htab->root.table.count;
4252 old_strtab = _bfd_elf_strtab_save (htab->dynstr);
4253 if (old_strtab == NULL)
4254 goto error_free_vers;
4255
4256 for (i = 0; i < htab->root.table.size; i++)
4257 {
4258 struct bfd_hash_entry *p;
4259 struct elf_link_hash_entry *h;
4260
4261 for (p = htab->root.table.table[i]; p != NULL; p = p->next)
4262 {
4263 memcpy (old_ent, p, htab->root.table.entsize);
4264 old_ent = (char *) old_ent + htab->root.table.entsize;
4265 h = (struct elf_link_hash_entry *) p;
4266 if (h->root.type == bfd_link_hash_warning)
4267 {
4268 memcpy (old_ent, h->root.u.i.link, htab->root.table.entsize);
4269 old_ent = (char *) old_ent + htab->root.table.entsize;
4270 }
4271 }
4272 }
4273 }
4274
4275 weaks = NULL;
4276 ever = extversym != NULL ? extversym + extsymoff : NULL;
4277 for (isym = isymbuf, isymend = isymbuf + extsymcount;
4278 isym < isymend;
4279 isym++, sym_hash++, ever = (ever != NULL ? ever + 1 : NULL))
4280 {
4281 int bind;
4282 bfd_vma value;
4283 asection *sec, *new_sec;
4284 flagword flags;
4285 const char *name;
4286 struct elf_link_hash_entry *h;
4287 struct elf_link_hash_entry *hi;
4288 bfd_boolean definition;
4289 bfd_boolean size_change_ok;
4290 bfd_boolean type_change_ok;
4291 bfd_boolean new_weak;
4292 bfd_boolean old_weak;
4293 bfd_boolean override;
4294 bfd_boolean common;
4295 bfd_boolean discarded;
4296 unsigned int old_alignment;
4297 bfd *old_bfd;
4298 bfd_boolean matched;
4299
4300 override = FALSE;
4301
4302 flags = BSF_NO_FLAGS;
4303 sec = NULL;
4304 value = isym->st_value;
4305 common = bed->common_definition (isym);
4306 if (common && info->inhibit_common_definition)
4307 {
4308 /* Treat common symbol as undefined for --no-define-common. */
4309 isym->st_shndx = SHN_UNDEF;
4310 common = FALSE;
4311 }
4312 discarded = FALSE;
4313
4314 bind = ELF_ST_BIND (isym->st_info);
4315 switch (bind)
4316 {
4317 case STB_LOCAL:
4318 /* This should be impossible, since ELF requires that all
4319 global symbols follow all local symbols, and that sh_info
4320 point to the first global symbol. Unfortunately, Irix 5
4321 screws this up. */
4322 continue;
4323
4324 case STB_GLOBAL:
4325 if (isym->st_shndx != SHN_UNDEF && !common)
4326 flags = BSF_GLOBAL;
4327 break;
4328
4329 case STB_WEAK:
4330 flags = BSF_WEAK;
4331 break;
4332
4333 case STB_GNU_UNIQUE:
4334 flags = BSF_GNU_UNIQUE;
4335 break;
4336
4337 default:
4338 /* Leave it up to the processor backend. */
4339 break;
4340 }
4341
4342 if (isym->st_shndx == SHN_UNDEF)
4343 sec = bfd_und_section_ptr;
4344 else if (isym->st_shndx == SHN_ABS)
4345 sec = bfd_abs_section_ptr;
4346 else if (isym->st_shndx == SHN_COMMON)
4347 {
4348 sec = bfd_com_section_ptr;
4349 /* What ELF calls the size we call the value. What ELF
4350 calls the value we call the alignment. */
4351 value = isym->st_size;
4352 }
4353 else
4354 {
4355 sec = bfd_section_from_elf_index (abfd, isym->st_shndx);
4356 if (sec == NULL)
4357 sec = bfd_abs_section_ptr;
4358 else if (discarded_section (sec))
4359 {
4360 /* Symbols from discarded section are undefined. We keep
4361 its visibility. */
4362 sec = bfd_und_section_ptr;
4363 discarded = TRUE;
4364 isym->st_shndx = SHN_UNDEF;
4365 }
4366 else if ((abfd->flags & (EXEC_P | DYNAMIC)) != 0)
4367 value -= sec->vma;
4368 }
4369
4370 name = bfd_elf_string_from_elf_section (abfd, hdr->sh_link,
4371 isym->st_name);
4372 if (name == NULL)
4373 goto error_free_vers;
4374
4375 if (isym->st_shndx == SHN_COMMON
4376 && (abfd->flags & BFD_PLUGIN) != 0)
4377 {
4378 asection *xc = bfd_get_section_by_name (abfd, "COMMON");
4379
4380 if (xc == NULL)
4381 {
4382 flagword sflags = (SEC_ALLOC | SEC_IS_COMMON | SEC_KEEP
4383 | SEC_EXCLUDE);
4384 xc = bfd_make_section_with_flags (abfd, "COMMON", sflags);
4385 if (xc == NULL)
4386 goto error_free_vers;
4387 }
4388 sec = xc;
4389 }
4390 else if (isym->st_shndx == SHN_COMMON
4391 && ELF_ST_TYPE (isym->st_info) == STT_TLS
4392 && !bfd_link_relocatable (info))
4393 {
4394 asection *tcomm = bfd_get_section_by_name (abfd, ".tcommon");
4395
4396 if (tcomm == NULL)
4397 {
4398 flagword sflags = (SEC_ALLOC | SEC_THREAD_LOCAL | SEC_IS_COMMON
4399 | SEC_LINKER_CREATED);
4400 tcomm = bfd_make_section_with_flags (abfd, ".tcommon", sflags);
4401 if (tcomm == NULL)
4402 goto error_free_vers;
4403 }
4404 sec = tcomm;
4405 }
4406 else if (bed->elf_add_symbol_hook)
4407 {
4408 if (! (*bed->elf_add_symbol_hook) (abfd, info, isym, &name, &flags,
4409 &sec, &value))
4410 goto error_free_vers;
4411
4412 /* The hook function sets the name to NULL if this symbol
4413 should be skipped for some reason. */
4414 if (name == NULL)
4415 continue;
4416 }
4417
4418 /* Sanity check that all possibilities were handled. */
4419 if (sec == NULL)
4420 {
4421 bfd_set_error (bfd_error_bad_value);
4422 goto error_free_vers;
4423 }
4424
4425 /* Silently discard TLS symbols from --just-syms. There's
4426 no way to combine a static TLS block with a new TLS block
4427 for this executable. */
4428 if (ELF_ST_TYPE (isym->st_info) == STT_TLS
4429 && sec->sec_info_type == SEC_INFO_TYPE_JUST_SYMS)
4430 continue;
4431
4432 if (bfd_is_und_section (sec)
4433 || bfd_is_com_section (sec))
4434 definition = FALSE;
4435 else
4436 definition = TRUE;
4437
4438 size_change_ok = FALSE;
4439 type_change_ok = bed->type_change_ok;
4440 old_weak = FALSE;
4441 matched = FALSE;
4442 old_alignment = 0;
4443 old_bfd = NULL;
4444 new_sec = sec;
4445
4446 if (is_elf_hash_table (htab))
4447 {
4448 Elf_Internal_Versym iver;
4449 unsigned int vernum = 0;
4450 bfd_boolean skip;
4451
4452 if (ever == NULL)
4453 {
4454 if (info->default_imported_symver)
4455 /* Use the default symbol version created earlier. */
4456 iver.vs_vers = elf_tdata (abfd)->cverdefs;
4457 else
4458 iver.vs_vers = 0;
4459 }
4460 else
4461 _bfd_elf_swap_versym_in (abfd, ever, &iver);
4462
4463 vernum = iver.vs_vers & VERSYM_VERSION;
4464
4465 /* If this is a hidden symbol, or if it is not version
4466 1, we append the version name to the symbol name.
4467 However, we do not modify a non-hidden absolute symbol
4468 if it is not a function, because it might be the version
4469 symbol itself. FIXME: What if it isn't? */
4470 if ((iver.vs_vers & VERSYM_HIDDEN) != 0
4471 || (vernum > 1
4472 && (!bfd_is_abs_section (sec)
4473 || bed->is_function_type (ELF_ST_TYPE (isym->st_info)))))
4474 {
4475 const char *verstr;
4476 size_t namelen, verlen, newlen;
4477 char *newname, *p;
4478
4479 if (isym->st_shndx != SHN_UNDEF)
4480 {
4481 if (vernum > elf_tdata (abfd)->cverdefs)
4482 verstr = NULL;
4483 else if (vernum > 1)
4484 verstr =
4485 elf_tdata (abfd)->verdef[vernum - 1].vd_nodename;
4486 else
4487 verstr = "";
4488
4489 if (verstr == NULL)
4490 {
4491 _bfd_error_handler
4492 /* xgettext:c-format */
4493 (_("%B: %s: invalid version %u (max %d)"),
4494 abfd, name, vernum,
4495 elf_tdata (abfd)->cverdefs);
4496 bfd_set_error (bfd_error_bad_value);
4497 goto error_free_vers;
4498 }
4499 }
4500 else
4501 {
4502 /* We cannot simply test for the number of
4503 entries in the VERNEED section since the
4504 numbers for the needed versions do not start
4505 at 0. */
4506 Elf_Internal_Verneed *t;
4507
4508 verstr = NULL;
4509 for (t = elf_tdata (abfd)->verref;
4510 t != NULL;
4511 t = t->vn_nextref)
4512 {
4513 Elf_Internal_Vernaux *a;
4514
4515 for (a = t->vn_auxptr; a != NULL; a = a->vna_nextptr)
4516 {
4517 if (a->vna_other == vernum)
4518 {
4519 verstr = a->vna_nodename;
4520 break;
4521 }
4522 }
4523 if (a != NULL)
4524 break;
4525 }
4526 if (verstr == NULL)
4527 {
4528 _bfd_error_handler
4529 /* xgettext:c-format */
4530 (_("%B: %s: invalid needed version %d"),
4531 abfd, name, vernum);
4532 bfd_set_error (bfd_error_bad_value);
4533 goto error_free_vers;
4534 }
4535 }
4536
4537 namelen = strlen (name);
4538 verlen = strlen (verstr);
4539 newlen = namelen + verlen + 2;
4540 if ((iver.vs_vers & VERSYM_HIDDEN) == 0
4541 && isym->st_shndx != SHN_UNDEF)
4542 ++newlen;
4543
4544 newname = (char *) bfd_hash_allocate (&htab->root.table, newlen);
4545 if (newname == NULL)
4546 goto error_free_vers;
4547 memcpy (newname, name, namelen);
4548 p = newname + namelen;
4549 *p++ = ELF_VER_CHR;
4550 /* If this is a defined non-hidden version symbol,
4551 we add another @ to the name. This indicates the
4552 default version of the symbol. */
4553 if ((iver.vs_vers & VERSYM_HIDDEN) == 0
4554 && isym->st_shndx != SHN_UNDEF)
4555 *p++ = ELF_VER_CHR;
4556 memcpy (p, verstr, verlen + 1);
4557
4558 name = newname;
4559 }
4560
4561 /* If this symbol has default visibility and the user has
4562 requested we not re-export it, then mark it as hidden. */
4563 if (!bfd_is_und_section (sec)
4564 && !dynamic
4565 && abfd->no_export
4566 && ELF_ST_VISIBILITY (isym->st_other) != STV_INTERNAL)
4567 isym->st_other = (STV_HIDDEN
4568 | (isym->st_other & ~ELF_ST_VISIBILITY (-1)));
4569
4570 if (!_bfd_elf_merge_symbol (abfd, info, name, isym, &sec, &value,
4571 sym_hash, &old_bfd, &old_weak,
4572 &old_alignment, &skip, &override,
4573 &type_change_ok, &size_change_ok,
4574 &matched))
4575 goto error_free_vers;
4576
4577 if (skip)
4578 continue;
4579
4580 /* Override a definition only if the new symbol matches the
4581 existing one. */
4582 if (override && matched)
4583 definition = FALSE;
4584
4585 h = *sym_hash;
4586 while (h->root.type == bfd_link_hash_indirect
4587 || h->root.type == bfd_link_hash_warning)
4588 h = (struct elf_link_hash_entry *) h->root.u.i.link;
4589
4590 if (elf_tdata (abfd)->verdef != NULL
4591 && vernum > 1
4592 && definition)
4593 h->verinfo.verdef = &elf_tdata (abfd)->verdef[vernum - 1];
4594 }
4595
4596 if (! (_bfd_generic_link_add_one_symbol
4597 (info, abfd, name, flags, sec, value, NULL, FALSE, bed->collect,
4598 (struct bfd_link_hash_entry **) sym_hash)))
4599 goto error_free_vers;
4600
4601 if ((flags & BSF_GNU_UNIQUE)
4602 && (abfd->flags & DYNAMIC) == 0
4603 && bfd_get_flavour (info->output_bfd) == bfd_target_elf_flavour)
4604 elf_tdata (info->output_bfd)->has_gnu_symbols |= elf_gnu_symbol_unique;
4605
4606 h = *sym_hash;
4607 /* We need to make sure that indirect symbol dynamic flags are
4608 updated. */
4609 hi = h;
4610 while (h->root.type == bfd_link_hash_indirect
4611 || h->root.type == bfd_link_hash_warning)
4612 h = (struct elf_link_hash_entry *) h->root.u.i.link;
4613
4614 /* Setting the index to -3 tells elf_link_output_extsym that
4615 this symbol is defined in a discarded section. */
4616 if (discarded)
4617 h->indx = -3;
4618
4619 *sym_hash = h;
4620
4621 new_weak = (flags & BSF_WEAK) != 0;
4622 if (dynamic
4623 && definition
4624 && new_weak
4625 && !bed->is_function_type (ELF_ST_TYPE (isym->st_info))
4626 && is_elf_hash_table (htab)
4627 && h->u.alias == NULL)
4628 {
4629 /* Keep a list of all weak defined non function symbols from
4630 a dynamic object, using the alias field. Later in this
4631 function we will set the alias field to the correct
4632 value. We only put non-function symbols from dynamic
4633 objects on this list, because that happens to be the only
4634 time we need to know the normal symbol corresponding to a
4635 weak symbol, and the information is time consuming to
4636 figure out. If the alias field is not already NULL,
4637 then this symbol was already defined by some previous
4638 dynamic object, and we will be using that previous
4639 definition anyhow. */
4640
4641 h->u.alias = weaks;
4642 weaks = h;
4643 }
4644
4645 /* Set the alignment of a common symbol. */
4646 if ((common || bfd_is_com_section (sec))
4647 && h->root.type == bfd_link_hash_common)
4648 {
4649 unsigned int align;
4650
4651 if (common)
4652 align = bfd_log2 (isym->st_value);
4653 else
4654 {
4655 /* The new symbol is a common symbol in a shared object.
4656 We need to get the alignment from the section. */
4657 align = new_sec->alignment_power;
4658 }
4659 if (align > old_alignment)
4660 h->root.u.c.p->alignment_power = align;
4661 else
4662 h->root.u.c.p->alignment_power = old_alignment;
4663 }
4664
4665 if (is_elf_hash_table (htab))
4666 {
4667 /* Set a flag in the hash table entry indicating the type of
4668 reference or definition we just found. A dynamic symbol
4669 is one which is referenced or defined by both a regular
4670 object and a shared object. */
4671 bfd_boolean dynsym = FALSE;
4672
4673 /* Plugin symbols aren't normal. Don't set def_regular or
4674 ref_regular for them, or make them dynamic. */
4675 if ((abfd->flags & BFD_PLUGIN) != 0)
4676 ;
4677 else if (! dynamic)
4678 {
4679 if (! definition)
4680 {
4681 h->ref_regular = 1;
4682 if (bind != STB_WEAK)
4683 h->ref_regular_nonweak = 1;
4684 }
4685 else
4686 {
4687 h->def_regular = 1;
4688 if (h->def_dynamic)
4689 {
4690 h->def_dynamic = 0;
4691 h->ref_dynamic = 1;
4692 }
4693 }
4694
4695 /* If the indirect symbol has been forced local, don't
4696 make the real symbol dynamic. */
4697 if ((h == hi || !hi->forced_local)
4698 && (bfd_link_dll (info)
4699 || h->def_dynamic
4700 || h->ref_dynamic))
4701 dynsym = TRUE;
4702 }
4703 else
4704 {
4705 if (! definition)
4706 {
4707 h->ref_dynamic = 1;
4708 hi->ref_dynamic = 1;
4709 }
4710 else
4711 {
4712 h->def_dynamic = 1;
4713 hi->def_dynamic = 1;
4714 }
4715
4716 /* If the indirect symbol has been forced local, don't
4717 make the real symbol dynamic. */
4718 if ((h == hi || !hi->forced_local)
4719 && (h->def_regular
4720 || h->ref_regular
4721 || (h->is_weakalias
4722 && weakdef (h)->dynindx != -1)))
4723 dynsym = TRUE;
4724 }
4725
4726 /* Check to see if we need to add an indirect symbol for
4727 the default name. */
4728 if (definition
4729 || (!override && h->root.type == bfd_link_hash_common))
4730 if (!_bfd_elf_add_default_symbol (abfd, info, h, name, isym,
4731 sec, value, &old_bfd, &dynsym))
4732 goto error_free_vers;
4733
4734 /* Check the alignment when a common symbol is involved. This
4735 can change when a common symbol is overridden by a normal
4736 definition or a common symbol is ignored due to the old
4737 normal definition. We need to make sure the maximum
4738 alignment is maintained. */
4739 if ((old_alignment || common)
4740 && h->root.type != bfd_link_hash_common)
4741 {
4742 unsigned int common_align;
4743 unsigned int normal_align;
4744 unsigned int symbol_align;
4745 bfd *normal_bfd;
4746 bfd *common_bfd;
4747
4748 BFD_ASSERT (h->root.type == bfd_link_hash_defined
4749 || h->root.type == bfd_link_hash_defweak);
4750
4751 symbol_align = ffs (h->root.u.def.value) - 1;
4752 if (h->root.u.def.section->owner != NULL
4753 && (h->root.u.def.section->owner->flags
4754 & (DYNAMIC | BFD_PLUGIN)) == 0)
4755 {
4756 normal_align = h->root.u.def.section->alignment_power;
4757 if (normal_align > symbol_align)
4758 normal_align = symbol_align;
4759 }
4760 else
4761 normal_align = symbol_align;
4762
4763 if (old_alignment)
4764 {
4765 common_align = old_alignment;
4766 common_bfd = old_bfd;
4767 normal_bfd = abfd;
4768 }
4769 else
4770 {
4771 common_align = bfd_log2 (isym->st_value);
4772 common_bfd = abfd;
4773 normal_bfd = old_bfd;
4774 }
4775
4776 if (normal_align < common_align)
4777 {
4778 /* PR binutils/2735 */
4779 if (normal_bfd == NULL)
4780 _bfd_error_handler
4781 /* xgettext:c-format */
4782 (_("Warning: alignment %u of common symbol `%s' in %B is"
4783 " greater than the alignment (%u) of its section %A"),
4784 1 << common_align, name, common_bfd,
4785 1 << normal_align, h->root.u.def.section);
4786 else
4787 _bfd_error_handler
4788 /* xgettext:c-format */
4789 (_("Warning: alignment %u of symbol `%s' in %B"
4790 " is smaller than %u in %B"),
4791 1 << normal_align, name, normal_bfd,
4792 1 << common_align, common_bfd);
4793 }
4794 }
4795
4796 /* Remember the symbol size if it isn't undefined. */
4797 if (isym->st_size != 0
4798 && isym->st_shndx != SHN_UNDEF
4799 && (definition || h->size == 0))
4800 {
4801 if (h->size != 0
4802 && h->size != isym->st_size
4803 && ! size_change_ok)
4804 _bfd_error_handler
4805 /* xgettext:c-format */
4806 (_("Warning: size of symbol `%s' changed"
4807 " from %Lu in %B to %Lu in %B"),
4808 name, h->size, old_bfd, isym->st_size, abfd);
4809
4810 h->size = isym->st_size;
4811 }
4812
4813 /* If this is a common symbol, then we always want H->SIZE
4814 to be the size of the common symbol. The code just above
4815 won't fix the size if a common symbol becomes larger. We
4816 don't warn about a size change here, because that is
4817 covered by --warn-common. Allow changes between different
4818 function types. */
4819 if (h->root.type == bfd_link_hash_common)
4820 h->size = h->root.u.c.size;
4821
4822 if (ELF_ST_TYPE (isym->st_info) != STT_NOTYPE
4823 && ((definition && !new_weak)
4824 || (old_weak && h->root.type == bfd_link_hash_common)
4825 || h->type == STT_NOTYPE))
4826 {
4827 unsigned int type = ELF_ST_TYPE (isym->st_info);
4828
4829 /* Turn an IFUNC symbol from a DSO into a normal FUNC
4830 symbol. */
4831 if (type == STT_GNU_IFUNC
4832 && (abfd->flags & DYNAMIC) != 0)
4833 type = STT_FUNC;
4834
4835 if (h->type != type)
4836 {
4837 if (h->type != STT_NOTYPE && ! type_change_ok)
4838 /* xgettext:c-format */
4839 _bfd_error_handler
4840 (_("Warning: type of symbol `%s' changed"
4841 " from %d to %d in %B"),
4842 name, h->type, type, abfd);
4843
4844 h->type = type;
4845 }
4846 }
4847
4848 /* Merge st_other field. */
4849 elf_merge_st_other (abfd, h, isym, sec, definition, dynamic);
4850
4851 /* We don't want to make debug symbol dynamic. */
4852 if (definition
4853 && (sec->flags & SEC_DEBUGGING)
4854 && !bfd_link_relocatable (info))
4855 dynsym = FALSE;
4856
4857 /* Nor should we make plugin symbols dynamic. */
4858 if ((abfd->flags & BFD_PLUGIN) != 0)
4859 dynsym = FALSE;
4860
4861 if (definition)
4862 {
4863 h->target_internal = isym->st_target_internal;
4864 h->unique_global = (flags & BSF_GNU_UNIQUE) != 0;
4865 }
4866
4867 if (definition && !dynamic)
4868 {
4869 char *p = strchr (name, ELF_VER_CHR);
4870 if (p != NULL && p[1] != ELF_VER_CHR)
4871 {
4872 /* Queue non-default versions so that .symver x, x@FOO
4873 aliases can be checked. */
4874 if (!nondeflt_vers)
4875 {
4876 amt = ((isymend - isym + 1)
4877 * sizeof (struct elf_link_hash_entry *));
4878 nondeflt_vers
4879 = (struct elf_link_hash_entry **) bfd_malloc (amt);
4880 if (!nondeflt_vers)
4881 goto error_free_vers;
4882 }
4883 nondeflt_vers[nondeflt_vers_cnt++] = h;
4884 }
4885 }
4886
4887 if (dynsym && h->dynindx == -1)
4888 {
4889 if (! bfd_elf_link_record_dynamic_symbol (info, h))
4890 goto error_free_vers;
4891 if (h->is_weakalias
4892 && weakdef (h)->dynindx == -1)
4893 {
4894 if (!bfd_elf_link_record_dynamic_symbol (info, weakdef (h)))
4895 goto error_free_vers;
4896 }
4897 }
4898 else if (h->dynindx != -1)
4899 /* If the symbol already has a dynamic index, but
4900 visibility says it should not be visible, turn it into
4901 a local symbol. */
4902 switch (ELF_ST_VISIBILITY (h->other))
4903 {
4904 case STV_INTERNAL:
4905 case STV_HIDDEN:
4906 (*bed->elf_backend_hide_symbol) (info, h, TRUE);
4907 dynsym = FALSE;
4908 break;
4909 }
4910
4911 /* Don't add DT_NEEDED for references from the dummy bfd nor
4912 for unmatched symbol. */
4913 if (!add_needed
4914 && matched
4915 && definition
4916 && ((dynsym
4917 && h->ref_regular_nonweak
4918 && (old_bfd == NULL
4919 || (old_bfd->flags & BFD_PLUGIN) == 0))
4920 || (h->ref_dynamic_nonweak
4921 && (elf_dyn_lib_class (abfd) & DYN_AS_NEEDED) != 0
4922 && !on_needed_list (elf_dt_name (abfd),
4923 htab->needed, NULL))))
4924 {
4925 int ret;
4926 const char *soname = elf_dt_name (abfd);
4927
4928 info->callbacks->minfo ("%!", soname, old_bfd,
4929 h->root.root.string);
4930
4931 /* A symbol from a library loaded via DT_NEEDED of some
4932 other library is referenced by a regular object.
4933 Add a DT_NEEDED entry for it. Issue an error if
4934 --no-add-needed is used and the reference was not
4935 a weak one. */
4936 if (old_bfd != NULL
4937 && (elf_dyn_lib_class (abfd) & DYN_NO_NEEDED) != 0)
4938 {
4939 _bfd_error_handler
4940 /* xgettext:c-format */
4941 (_("%B: undefined reference to symbol '%s'"),
4942 old_bfd, name);
4943 bfd_set_error (bfd_error_missing_dso);
4944 goto error_free_vers;
4945 }
4946
4947 elf_dyn_lib_class (abfd) = (enum dynamic_lib_link_class)
4948 (elf_dyn_lib_class (abfd) & ~DYN_AS_NEEDED);
4949
4950 add_needed = TRUE;
4951 ret = elf_add_dt_needed_tag (abfd, info, soname, add_needed);
4952 if (ret < 0)
4953 goto error_free_vers;
4954
4955 BFD_ASSERT (ret == 0);
4956 }
4957 }
4958 }
4959
4960 if (info->lto_plugin_active
4961 && !bfd_link_relocatable (info)
4962 && (abfd->flags & BFD_PLUGIN) == 0
4963 && !just_syms
4964 && extsymcount)
4965 {
4966 int r_sym_shift;
4967
4968 if (bed->s->arch_size == 32)
4969 r_sym_shift = 8;
4970 else
4971 r_sym_shift = 32;
4972
4973 /* If linker plugin is enabled, set non_ir_ref_regular on symbols
4974 referenced in regular objects so that linker plugin will get
4975 the correct symbol resolution. */
4976
4977 sym_hash = elf_sym_hashes (abfd);
4978 for (s = abfd->sections; s != NULL; s = s->next)
4979 {
4980 Elf_Internal_Rela *internal_relocs;
4981 Elf_Internal_Rela *rel, *relend;
4982
4983 /* Don't check relocations in excluded sections. */
4984 if ((s->flags & SEC_RELOC) == 0
4985 || s->reloc_count == 0
4986 || (s->flags & SEC_EXCLUDE) != 0
4987 || ((info->strip == strip_all
4988 || info->strip == strip_debugger)
4989 && (s->flags & SEC_DEBUGGING) != 0))
4990 continue;
4991
4992 internal_relocs = _bfd_elf_link_read_relocs (abfd, s, NULL,
4993 NULL,
4994 info->keep_memory);
4995 if (internal_relocs == NULL)
4996 goto error_free_vers;
4997
4998 rel = internal_relocs;
4999 relend = rel + s->reloc_count;
5000 for ( ; rel < relend; rel++)
5001 {
5002 unsigned long r_symndx = rel->r_info >> r_sym_shift;
5003 struct elf_link_hash_entry *h;
5004
5005 /* Skip local symbols. */
5006 if (r_symndx < extsymoff)
5007 continue;
5008
5009 h = sym_hash[r_symndx - extsymoff];
5010 if (h != NULL)
5011 h->root.non_ir_ref_regular = 1;
5012 }
5013
5014 if (elf_section_data (s)->relocs != internal_relocs)
5015 free (internal_relocs);
5016 }
5017 }
5018
5019 if (extversym != NULL)
5020 {
5021 free (extversym);
5022 extversym = NULL;
5023 }
5024
5025 if (isymbuf != NULL)
5026 {
5027 free (isymbuf);
5028 isymbuf = NULL;
5029 }
5030
5031 if ((elf_dyn_lib_class (abfd) & DYN_AS_NEEDED) != 0)
5032 {
5033 unsigned int i;
5034
5035 /* Restore the symbol table. */
5036 old_ent = (char *) old_tab + tabsize;
5037 memset (elf_sym_hashes (abfd), 0,
5038 extsymcount * sizeof (struct elf_link_hash_entry *));
5039 htab->root.table.table = old_table;
5040 htab->root.table.size = old_size;
5041 htab->root.table.count = old_count;
5042 memcpy (htab->root.table.table, old_tab, tabsize);
5043 htab->root.undefs = old_undefs;
5044 htab->root.undefs_tail = old_undefs_tail;
5045 _bfd_elf_strtab_restore (htab->dynstr, old_strtab);
5046 free (old_strtab);
5047 old_strtab = NULL;
5048 for (i = 0; i < htab->root.table.size; i++)
5049 {
5050 struct bfd_hash_entry *p;
5051 struct elf_link_hash_entry *h;
5052 bfd_size_type size;
5053 unsigned int alignment_power;
5054 unsigned int non_ir_ref_dynamic;
5055
5056 for (p = htab->root.table.table[i]; p != NULL; p = p->next)
5057 {
5058 h = (struct elf_link_hash_entry *) p;
5059 if (h->root.type == bfd_link_hash_warning)
5060 h = (struct elf_link_hash_entry *) h->root.u.i.link;
5061
5062 /* Preserve the maximum alignment and size for common
5063 symbols even if this dynamic lib isn't on DT_NEEDED
5064 since it can still be loaded at run time by another
5065 dynamic lib. */
5066 if (h->root.type == bfd_link_hash_common)
5067 {
5068 size = h->root.u.c.size;
5069 alignment_power = h->root.u.c.p->alignment_power;
5070 }
5071 else
5072 {
5073 size = 0;
5074 alignment_power = 0;
5075 }
5076 /* Preserve non_ir_ref_dynamic so that this symbol
5077 will be exported when the dynamic lib becomes needed
5078 in the second pass. */
5079 non_ir_ref_dynamic = h->root.non_ir_ref_dynamic;
5080 memcpy (p, old_ent, htab->root.table.entsize);
5081 old_ent = (char *) old_ent + htab->root.table.entsize;
5082 h = (struct elf_link_hash_entry *) p;
5083 if (h->root.type == bfd_link_hash_warning)
5084 {
5085 memcpy (h->root.u.i.link, old_ent, htab->root.table.entsize);
5086 old_ent = (char *) old_ent + htab->root.table.entsize;
5087 h = (struct elf_link_hash_entry *) h->root.u.i.link;
5088 }
5089 if (h->root.type == bfd_link_hash_common)
5090 {
5091 if (size > h->root.u.c.size)
5092 h->root.u.c.size = size;
5093 if (alignment_power > h->root.u.c.p->alignment_power)
5094 h->root.u.c.p->alignment_power = alignment_power;
5095 }
5096 h->root.non_ir_ref_dynamic = non_ir_ref_dynamic;
5097 }
5098 }
5099
5100 /* Make a special call to the linker "notice" function to
5101 tell it that symbols added for crefs may need to be removed. */
5102 if (!(*bed->notice_as_needed) (abfd, info, notice_not_needed))
5103 goto error_free_vers;
5104
5105 free (old_tab);
5106 objalloc_free_block ((struct objalloc *) htab->root.table.memory,
5107 alloc_mark);
5108 if (nondeflt_vers != NULL)
5109 free (nondeflt_vers);
5110 return TRUE;
5111 }
5112
5113 if (old_tab != NULL)
5114 {
5115 if (!(*bed->notice_as_needed) (abfd, info, notice_needed))
5116 goto error_free_vers;
5117 free (old_tab);
5118 old_tab = NULL;
5119 }
5120
5121 /* Now that all the symbols from this input file are created, if
5122 not performing a relocatable link, handle .symver foo, foo@BAR
5123 such that any relocs against foo become foo@BAR. */
5124 if (!bfd_link_relocatable (info) && nondeflt_vers != NULL)
5125 {
5126 size_t cnt, symidx;
5127
5128 for (cnt = 0; cnt < nondeflt_vers_cnt; ++cnt)
5129 {
5130 struct elf_link_hash_entry *h = nondeflt_vers[cnt], *hi;
5131 char *shortname, *p;
5132
5133 p = strchr (h->root.root.string, ELF_VER_CHR);
5134 if (p == NULL
5135 || (h->root.type != bfd_link_hash_defined
5136 && h->root.type != bfd_link_hash_defweak))
5137 continue;
5138
5139 amt = p - h->root.root.string;
5140 shortname = (char *) bfd_malloc (amt + 1);
5141 if (!shortname)
5142 goto error_free_vers;
5143 memcpy (shortname, h->root.root.string, amt);
5144 shortname[amt] = '\0';
5145
5146 hi = (struct elf_link_hash_entry *)
5147 bfd_link_hash_lookup (&htab->root, shortname,
5148 FALSE, FALSE, FALSE);
5149 if (hi != NULL
5150 && hi->root.type == h->root.type
5151 && hi->root.u.def.value == h->root.u.def.value
5152 && hi->root.u.def.section == h->root.u.def.section)
5153 {
5154 (*bed->elf_backend_hide_symbol) (info, hi, TRUE);
5155 hi->root.type = bfd_link_hash_indirect;
5156 hi->root.u.i.link = (struct bfd_link_hash_entry *) h;
5157 (*bed->elf_backend_copy_indirect_symbol) (info, h, hi);
5158 sym_hash = elf_sym_hashes (abfd);
5159 if (sym_hash)
5160 for (symidx = 0; symidx < extsymcount; ++symidx)
5161 if (sym_hash[symidx] == hi)
5162 {
5163 sym_hash[symidx] = h;
5164 break;
5165 }
5166 }
5167 free (shortname);
5168 }
5169 free (nondeflt_vers);
5170 nondeflt_vers = NULL;
5171 }
5172
5173 /* Now set the alias field correctly for all the weak defined
5174 symbols we found. The only way to do this is to search all the
5175 symbols. Since we only need the information for non functions in
5176 dynamic objects, that's the only time we actually put anything on
5177 the list WEAKS. We need this information so that if a regular
5178 object refers to a symbol defined weakly in a dynamic object, the
5179 real symbol in the dynamic object is also put in the dynamic
5180 symbols; we also must arrange for both symbols to point to the
5181 same memory location. We could handle the general case of symbol
5182 aliasing, but a general symbol alias can only be generated in
5183 assembler code, handling it correctly would be very time
5184 consuming, and other ELF linkers don't handle general aliasing
5185 either. */
5186 if (weaks != NULL)
5187 {
5188 struct elf_link_hash_entry **hpp;
5189 struct elf_link_hash_entry **hppend;
5190 struct elf_link_hash_entry **sorted_sym_hash;
5191 struct elf_link_hash_entry *h;
5192 size_t sym_count;
5193
5194 /* Since we have to search the whole symbol list for each weak
5195 defined symbol, search time for N weak defined symbols will be
5196 O(N^2). Binary search will cut it down to O(NlogN). */
5197 amt = extsymcount;
5198 amt *= sizeof (struct elf_link_hash_entry *);
5199 sorted_sym_hash = (struct elf_link_hash_entry **) bfd_malloc (amt);
5200 if (sorted_sym_hash == NULL)
5201 goto error_return;
5202 sym_hash = sorted_sym_hash;
5203 hpp = elf_sym_hashes (abfd);
5204 hppend = hpp + extsymcount;
5205 sym_count = 0;
5206 for (; hpp < hppend; hpp++)
5207 {
5208 h = *hpp;
5209 if (h != NULL
5210 && h->root.type == bfd_link_hash_defined
5211 && !bed->is_function_type (h->type))
5212 {
5213 *sym_hash = h;
5214 sym_hash++;
5215 sym_count++;
5216 }
5217 }
5218
5219 qsort (sorted_sym_hash, sym_count,
5220 sizeof (struct elf_link_hash_entry *),
5221 elf_sort_symbol);
5222
5223 while (weaks != NULL)
5224 {
5225 struct elf_link_hash_entry *hlook;
5226 asection *slook;
5227 bfd_vma vlook;
5228 size_t i, j, idx = 0;
5229
5230 hlook = weaks;
5231 weaks = hlook->u.alias;
5232 hlook->u.alias = NULL;
5233
5234 if (hlook->root.type != bfd_link_hash_defined
5235 && hlook->root.type != bfd_link_hash_defweak)
5236 continue;
5237
5238 slook = hlook->root.u.def.section;
5239 vlook = hlook->root.u.def.value;
5240
5241 i = 0;
5242 j = sym_count;
5243 while (i != j)
5244 {
5245 bfd_signed_vma vdiff;
5246 idx = (i + j) / 2;
5247 h = sorted_sym_hash[idx];
5248 vdiff = vlook - h->root.u.def.value;
5249 if (vdiff < 0)
5250 j = idx;
5251 else if (vdiff > 0)
5252 i = idx + 1;
5253 else
5254 {
5255 int sdiff = slook->id - h->root.u.def.section->id;
5256 if (sdiff < 0)
5257 j = idx;
5258 else if (sdiff > 0)
5259 i = idx + 1;
5260 else
5261 break;
5262 }
5263 }
5264
5265 /* We didn't find a value/section match. */
5266 if (i == j)
5267 continue;
5268
5269 /* With multiple aliases, or when the weak symbol is already
5270 strongly defined, we have multiple matching symbols and
5271 the binary search above may land on any of them. Step
5272 one past the matching symbol(s). */
5273 while (++idx != j)
5274 {
5275 h = sorted_sym_hash[idx];
5276 if (h->root.u.def.section != slook
5277 || h->root.u.def.value != vlook)
5278 break;
5279 }
5280
5281 /* Now look back over the aliases. Since we sorted by size
5282 as well as value and section, we'll choose the one with
5283 the largest size. */
5284 while (idx-- != i)
5285 {
5286 h = sorted_sym_hash[idx];
5287
5288 /* Stop if value or section doesn't match. */
5289 if (h->root.u.def.section != slook
5290 || h->root.u.def.value != vlook)
5291 break;
5292 else if (h != hlook)
5293 {
5294 struct elf_link_hash_entry *t;
5295
5296 hlook->u.alias = h;
5297 hlook->is_weakalias = 1;
5298 t = h;
5299 if (t->u.alias != NULL)
5300 while (t->u.alias != h)
5301 t = t->u.alias;
5302 t->u.alias = hlook;
5303
5304 /* If the weak definition is in the list of dynamic
5305 symbols, make sure the real definition is put
5306 there as well. */
5307 if (hlook->dynindx != -1 && h->dynindx == -1)
5308 {
5309 if (! bfd_elf_link_record_dynamic_symbol (info, h))
5310 {
5311 err_free_sym_hash:
5312 free (sorted_sym_hash);
5313 goto error_return;
5314 }
5315 }
5316
5317 /* If the real definition is in the list of dynamic
5318 symbols, make sure the weak definition is put
5319 there as well. If we don't do this, then the
5320 dynamic loader might not merge the entries for the
5321 real definition and the weak definition. */
5322 if (h->dynindx != -1 && hlook->dynindx == -1)
5323 {
5324 if (! bfd_elf_link_record_dynamic_symbol (info, hlook))
5325 goto err_free_sym_hash;
5326 }
5327 break;
5328 }
5329 }
5330 }
5331
5332 free (sorted_sym_hash);
5333 }
5334
5335 if (bed->check_directives
5336 && !(*bed->check_directives) (abfd, info))
5337 return FALSE;
5338
5339 /* If this is a non-traditional link, try to optimize the handling
5340 of the .stab/.stabstr sections. */
5341 if (! dynamic
5342 && ! info->traditional_format
5343 && is_elf_hash_table (htab)
5344 && (info->strip != strip_all && info->strip != strip_debugger))
5345 {
5346 asection *stabstr;
5347
5348 stabstr = bfd_get_section_by_name (abfd, ".stabstr");
5349 if (stabstr != NULL)
5350 {
5351 bfd_size_type string_offset = 0;
5352 asection *stab;
5353
5354 for (stab = abfd->sections; stab; stab = stab->next)
5355 if (CONST_STRNEQ (stab->name, ".stab")
5356 && (!stab->name[5] ||
5357 (stab->name[5] == '.' && ISDIGIT (stab->name[6])))
5358 && (stab->flags & SEC_MERGE) == 0
5359 && !bfd_is_abs_section (stab->output_section))
5360 {
5361 struct bfd_elf_section_data *secdata;
5362
5363 secdata = elf_section_data (stab);
5364 if (! _bfd_link_section_stabs (abfd, &htab->stab_info, stab,
5365 stabstr, &secdata->sec_info,
5366 &string_offset))
5367 goto error_return;
5368 if (secdata->sec_info)
5369 stab->sec_info_type = SEC_INFO_TYPE_STABS;
5370 }
5371 }
5372 }
5373
5374 if (is_elf_hash_table (htab) && add_needed)
5375 {
5376 /* Add this bfd to the loaded list. */
5377 struct elf_link_loaded_list *n;
5378
5379 n = (struct elf_link_loaded_list *) bfd_alloc (abfd, sizeof (*n));
5380 if (n == NULL)
5381 goto error_return;
5382 n->abfd = abfd;
5383 n->next = htab->loaded;
5384 htab->loaded = n;
5385 }
5386
5387 return TRUE;
5388
5389 error_free_vers:
5390 if (old_tab != NULL)
5391 free (old_tab);
5392 if (old_strtab != NULL)
5393 free (old_strtab);
5394 if (nondeflt_vers != NULL)
5395 free (nondeflt_vers);
5396 if (extversym != NULL)
5397 free (extversym);
5398 error_free_sym:
5399 if (isymbuf != NULL)
5400 free (isymbuf);
5401 error_return:
5402 return FALSE;
5403 }
5404
5405 /* Return the linker hash table entry of a symbol that might be
5406 satisfied by an archive symbol. Return -1 on error. */
5407
5408 struct elf_link_hash_entry *
5409 _bfd_elf_archive_symbol_lookup (bfd *abfd,
5410 struct bfd_link_info *info,
5411 const char *name)
5412 {
5413 struct elf_link_hash_entry *h;
5414 char *p, *copy;
5415 size_t len, first;
5416
5417 h = elf_link_hash_lookup (elf_hash_table (info), name, FALSE, FALSE, TRUE);
5418 if (h != NULL)
5419 return h;
5420
5421 /* If this is a default version (the name contains @@), look up the
5422 symbol again with only one `@' as well as without the version.
5423 The effect is that references to the symbol with and without the
5424 version will be matched by the default symbol in the archive. */
5425
5426 p = strchr (name, ELF_VER_CHR);
5427 if (p == NULL || p[1] != ELF_VER_CHR)
5428 return h;
5429
5430 /* First check with only one `@'. */
5431 len = strlen (name);
5432 copy = (char *) bfd_alloc (abfd, len);
5433 if (copy == NULL)
5434 return (struct elf_link_hash_entry *) 0 - 1;
5435
5436 first = p - name + 1;
5437 memcpy (copy, name, first);
5438 memcpy (copy + first, name + first + 1, len - first);
5439
5440 h = elf_link_hash_lookup (elf_hash_table (info), copy, FALSE, FALSE, TRUE);
5441 if (h == NULL)
5442 {
5443 /* We also need to check references to the symbol without the
5444 version. */
5445 copy[first - 1] = '\0';
5446 h = elf_link_hash_lookup (elf_hash_table (info), copy,
5447 FALSE, FALSE, TRUE);
5448 }
5449
5450 bfd_release (abfd, copy);
5451 return h;
5452 }
5453
5454 /* Add symbols from an ELF archive file to the linker hash table. We
5455 don't use _bfd_generic_link_add_archive_symbols because we need to
5456 handle versioned symbols.
5457
5458 Fortunately, ELF archive handling is simpler than that done by
5459 _bfd_generic_link_add_archive_symbols, which has to allow for a.out
5460 oddities. In ELF, if we find a symbol in the archive map, and the
5461 symbol is currently undefined, we know that we must pull in that
5462 object file.
5463
5464 Unfortunately, we do have to make multiple passes over the symbol
5465 table until nothing further is resolved. */
5466
5467 static bfd_boolean
5468 elf_link_add_archive_symbols (bfd *abfd, struct bfd_link_info *info)
5469 {
5470 symindex c;
5471 unsigned char *included = NULL;
5472 carsym *symdefs;
5473 bfd_boolean loop;
5474 bfd_size_type amt;
5475 const struct elf_backend_data *bed;
5476 struct elf_link_hash_entry * (*archive_symbol_lookup)
5477 (bfd *, struct bfd_link_info *, const char *);
5478
5479 if (! bfd_has_map (abfd))
5480 {
5481 /* An empty archive is a special case. */
5482 if (bfd_openr_next_archived_file (abfd, NULL) == NULL)
5483 return TRUE;
5484 bfd_set_error (bfd_error_no_armap);
5485 return FALSE;
5486 }
5487
5488 /* Keep track of all symbols we know to be already defined, and all
5489 files we know to be already included. This is to speed up the
5490 second and subsequent passes. */
5491 c = bfd_ardata (abfd)->symdef_count;
5492 if (c == 0)
5493 return TRUE;
5494 amt = c;
5495 amt *= sizeof (*included);
5496 included = (unsigned char *) bfd_zmalloc (amt);
5497 if (included == NULL)
5498 return FALSE;
5499
5500 symdefs = bfd_ardata (abfd)->symdefs;
5501 bed = get_elf_backend_data (abfd);
5502 archive_symbol_lookup = bed->elf_backend_archive_symbol_lookup;
5503
5504 do
5505 {
5506 file_ptr last;
5507 symindex i;
5508 carsym *symdef;
5509 carsym *symdefend;
5510
5511 loop = FALSE;
5512 last = -1;
5513
5514 symdef = symdefs;
5515 symdefend = symdef + c;
5516 for (i = 0; symdef < symdefend; symdef++, i++)
5517 {
5518 struct elf_link_hash_entry *h;
5519 bfd *element;
5520 struct bfd_link_hash_entry *undefs_tail;
5521 symindex mark;
5522
5523 if (included[i])
5524 continue;
5525 if (symdef->file_offset == last)
5526 {
5527 included[i] = TRUE;
5528 continue;
5529 }
5530
5531 h = archive_symbol_lookup (abfd, info, symdef->name);
5532 if (h == (struct elf_link_hash_entry *) 0 - 1)
5533 goto error_return;
5534
5535 if (h == NULL)
5536 continue;
5537
5538 if (h->root.type == bfd_link_hash_common)
5539 {
5540 /* We currently have a common symbol. The archive map contains
5541 a reference to this symbol, so we may want to include it. We
5542 only want to include it however, if this archive element
5543 contains a definition of the symbol, not just another common
5544 declaration of it.
5545
5546 Unfortunately some archivers (including GNU ar) will put
5547 declarations of common symbols into their archive maps, as
5548 well as real definitions, so we cannot just go by the archive
5549 map alone. Instead we must read in the element's symbol
5550 table and check that to see what kind of symbol definition
5551 this is. */
5552 if (! elf_link_is_defined_archive_symbol (abfd, symdef))
5553 continue;
5554 }
5555 else if (h->root.type != bfd_link_hash_undefined)
5556 {
5557 if (h->root.type != bfd_link_hash_undefweak)
5558 /* Symbol must be defined. Don't check it again. */
5559 included[i] = TRUE;
5560 continue;
5561 }
5562
5563 /* We need to include this archive member. */
5564 element = _bfd_get_elt_at_filepos (abfd, symdef->file_offset);
5565 if (element == NULL)
5566 goto error_return;
5567
5568 if (! bfd_check_format (element, bfd_object))
5569 goto error_return;
5570
5571 undefs_tail = info->hash->undefs_tail;
5572
5573 if (!(*info->callbacks
5574 ->add_archive_element) (info, element, symdef->name, &element))
5575 continue;
5576 if (!bfd_link_add_symbols (element, info))
5577 goto error_return;
5578
5579 /* If there are any new undefined symbols, we need to make
5580 another pass through the archive in order to see whether
5581 they can be defined. FIXME: This isn't perfect, because
5582 common symbols wind up on undefs_tail and because an
5583 undefined symbol which is defined later on in this pass
5584 does not require another pass. This isn't a bug, but it
5585 does make the code less efficient than it could be. */
5586 if (undefs_tail != info->hash->undefs_tail)
5587 loop = TRUE;
5588
5589 /* Look backward to mark all symbols from this object file
5590 which we have already seen in this pass. */
5591 mark = i;
5592 do
5593 {
5594 included[mark] = TRUE;
5595 if (mark == 0)
5596 break;
5597 --mark;
5598 }
5599 while (symdefs[mark].file_offset == symdef->file_offset);
5600
5601 /* We mark subsequent symbols from this object file as we go
5602 on through the loop. */
5603 last = symdef->file_offset;
5604 }
5605 }
5606 while (loop);
5607
5608 free (included);
5609
5610 return TRUE;
5611
5612 error_return:
5613 if (included != NULL)
5614 free (included);
5615 return FALSE;
5616 }
5617
5618 /* Given an ELF BFD, add symbols to the global hash table as
5619 appropriate. */
5620
5621 bfd_boolean
5622 bfd_elf_link_add_symbols (bfd *abfd, struct bfd_link_info *info)
5623 {
5624 switch (bfd_get_format (abfd))
5625 {
5626 case bfd_object:
5627 return elf_link_add_object_symbols (abfd, info);
5628 case bfd_archive:
5629 return elf_link_add_archive_symbols (abfd, info);
5630 default:
5631 bfd_set_error (bfd_error_wrong_format);
5632 return FALSE;
5633 }
5634 }
5635
5636 struct hash_codes_info
5638 {
5639 unsigned long *hashcodes;
5640 bfd_boolean error;
5641 };
5642
5643 /* This function will be called though elf_link_hash_traverse to store
5644 all hash value of the exported symbols in an array. */
5645
5646 static bfd_boolean
5647 elf_collect_hash_codes (struct elf_link_hash_entry *h, void *data)
5648 {
5649 struct hash_codes_info *inf = (struct hash_codes_info *) data;
5650 const char *name;
5651 unsigned long ha;
5652 char *alc = NULL;
5653
5654 /* Ignore indirect symbols. These are added by the versioning code. */
5655 if (h->dynindx == -1)
5656 return TRUE;
5657
5658 name = h->root.root.string;
5659 if (h->versioned >= versioned)
5660 {
5661 char *p = strchr (name, ELF_VER_CHR);
5662 if (p != NULL)
5663 {
5664 alc = (char *) bfd_malloc (p - name + 1);
5665 if (alc == NULL)
5666 {
5667 inf->error = TRUE;
5668 return FALSE;
5669 }
5670 memcpy (alc, name, p - name);
5671 alc[p - name] = '\0';
5672 name = alc;
5673 }
5674 }
5675
5676 /* Compute the hash value. */
5677 ha = bfd_elf_hash (name);
5678
5679 /* Store the found hash value in the array given as the argument. */
5680 *(inf->hashcodes)++ = ha;
5681
5682 /* And store it in the struct so that we can put it in the hash table
5683 later. */
5684 h->u.elf_hash_value = ha;
5685
5686 if (alc != NULL)
5687 free (alc);
5688
5689 return TRUE;
5690 }
5691
5692 struct collect_gnu_hash_codes
5693 {
5694 bfd *output_bfd;
5695 const struct elf_backend_data *bed;
5696 unsigned long int nsyms;
5697 unsigned long int maskbits;
5698 unsigned long int *hashcodes;
5699 unsigned long int *hashval;
5700 unsigned long int *indx;
5701 unsigned long int *counts;
5702 bfd_vma *bitmask;
5703 bfd_byte *contents;
5704 long int min_dynindx;
5705 unsigned long int bucketcount;
5706 unsigned long int symindx;
5707 long int local_indx;
5708 long int shift1, shift2;
5709 unsigned long int mask;
5710 bfd_boolean error;
5711 };
5712
5713 /* This function will be called though elf_link_hash_traverse to store
5714 all hash value of the exported symbols in an array. */
5715
5716 static bfd_boolean
5717 elf_collect_gnu_hash_codes (struct elf_link_hash_entry *h, void *data)
5718 {
5719 struct collect_gnu_hash_codes *s = (struct collect_gnu_hash_codes *) data;
5720 const char *name;
5721 unsigned long ha;
5722 char *alc = NULL;
5723
5724 /* Ignore indirect symbols. These are added by the versioning code. */
5725 if (h->dynindx == -1)
5726 return TRUE;
5727
5728 /* Ignore also local symbols and undefined symbols. */
5729 if (! (*s->bed->elf_hash_symbol) (h))
5730 return TRUE;
5731
5732 name = h->root.root.string;
5733 if (h->versioned >= versioned)
5734 {
5735 char *p = strchr (name, ELF_VER_CHR);
5736 if (p != NULL)
5737 {
5738 alc = (char *) bfd_malloc (p - name + 1);
5739 if (alc == NULL)
5740 {
5741 s->error = TRUE;
5742 return FALSE;
5743 }
5744 memcpy (alc, name, p - name);
5745 alc[p - name] = '\0';
5746 name = alc;
5747 }
5748 }
5749
5750 /* Compute the hash value. */
5751 ha = bfd_elf_gnu_hash (name);
5752
5753 /* Store the found hash value in the array for compute_bucket_count,
5754 and also for .dynsym reordering purposes. */
5755 s->hashcodes[s->nsyms] = ha;
5756 s->hashval[h->dynindx] = ha;
5757 ++s->nsyms;
5758 if (s->min_dynindx < 0 || s->min_dynindx > h->dynindx)
5759 s->min_dynindx = h->dynindx;
5760
5761 if (alc != NULL)
5762 free (alc);
5763
5764 return TRUE;
5765 }
5766
5767 /* This function will be called though elf_link_hash_traverse to do
5768 final dynaminc symbol renumbering. */
5769
5770 static bfd_boolean
5771 elf_renumber_gnu_hash_syms (struct elf_link_hash_entry *h, void *data)
5772 {
5773 struct collect_gnu_hash_codes *s = (struct collect_gnu_hash_codes *) data;
5774 unsigned long int bucket;
5775 unsigned long int val;
5776
5777 /* Ignore indirect symbols. */
5778 if (h->dynindx == -1)
5779 return TRUE;
5780
5781 /* Ignore also local symbols and undefined symbols. */
5782 if (! (*s->bed->elf_hash_symbol) (h))
5783 {
5784 if (h->dynindx >= s->min_dynindx)
5785 h->dynindx = s->local_indx++;
5786 return TRUE;
5787 }
5788
5789 bucket = s->hashval[h->dynindx] % s->bucketcount;
5790 val = (s->hashval[h->dynindx] >> s->shift1)
5791 & ((s->maskbits >> s->shift1) - 1);
5792 s->bitmask[val] |= ((bfd_vma) 1) << (s->hashval[h->dynindx] & s->mask);
5793 s->bitmask[val]
5794 |= ((bfd_vma) 1) << ((s->hashval[h->dynindx] >> s->shift2) & s->mask);
5795 val = s->hashval[h->dynindx] & ~(unsigned long int) 1;
5796 if (s->counts[bucket] == 1)
5797 /* Last element terminates the chain. */
5798 val |= 1;
5799 bfd_put_32 (s->output_bfd, val,
5800 s->contents + (s->indx[bucket] - s->symindx) * 4);
5801 --s->counts[bucket];
5802 h->dynindx = s->indx[bucket]++;
5803 return TRUE;
5804 }
5805
5806 /* Return TRUE if symbol should be hashed in the `.gnu.hash' section. */
5807
5808 bfd_boolean
5809 _bfd_elf_hash_symbol (struct elf_link_hash_entry *h)
5810 {
5811 return !(h->forced_local
5812 || h->root.type == bfd_link_hash_undefined
5813 || h->root.type == bfd_link_hash_undefweak
5814 || ((h->root.type == bfd_link_hash_defined
5815 || h->root.type == bfd_link_hash_defweak)
5816 && h->root.u.def.section->output_section == NULL));
5817 }
5818
5819 /* Array used to determine the number of hash table buckets to use
5820 based on the number of symbols there are. If there are fewer than
5821 3 symbols we use 1 bucket, fewer than 17 symbols we use 3 buckets,
5822 fewer than 37 we use 17 buckets, and so forth. We never use more
5823 than 32771 buckets. */
5824
5825 static const size_t elf_buckets[] =
5826 {
5827 1, 3, 17, 37, 67, 97, 131, 197, 263, 521, 1031, 2053, 4099, 8209,
5828 16411, 32771, 0
5829 };
5830
5831 /* Compute bucket count for hashing table. We do not use a static set
5832 of possible tables sizes anymore. Instead we determine for all
5833 possible reasonable sizes of the table the outcome (i.e., the
5834 number of collisions etc) and choose the best solution. The
5835 weighting functions are not too simple to allow the table to grow
5836 without bounds. Instead one of the weighting factors is the size.
5837 Therefore the result is always a good payoff between few collisions
5838 (= short chain lengths) and table size. */
5839 static size_t
5840 compute_bucket_count (struct bfd_link_info *info ATTRIBUTE_UNUSED,
5841 unsigned long int *hashcodes ATTRIBUTE_UNUSED,
5842 unsigned long int nsyms,
5843 int gnu_hash)
5844 {
5845 size_t best_size = 0;
5846 unsigned long int i;
5847
5848 /* We have a problem here. The following code to optimize the table
5849 size requires an integer type with more the 32 bits. If
5850 BFD_HOST_U_64_BIT is set we know about such a type. */
5851 #ifdef BFD_HOST_U_64_BIT
5852 if (info->optimize)
5853 {
5854 size_t minsize;
5855 size_t maxsize;
5856 BFD_HOST_U_64_BIT best_chlen = ~((BFD_HOST_U_64_BIT) 0);
5857 bfd *dynobj = elf_hash_table (info)->dynobj;
5858 size_t dynsymcount = elf_hash_table (info)->dynsymcount;
5859 const struct elf_backend_data *bed = get_elf_backend_data (dynobj);
5860 unsigned long int *counts;
5861 bfd_size_type amt;
5862 unsigned int no_improvement_count = 0;
5863
5864 /* Possible optimization parameters: if we have NSYMS symbols we say
5865 that the hashing table must at least have NSYMS/4 and at most
5866 2*NSYMS buckets. */
5867 minsize = nsyms / 4;
5868 if (minsize == 0)
5869 minsize = 1;
5870 best_size = maxsize = nsyms * 2;
5871 if (gnu_hash)
5872 {
5873 if (minsize < 2)
5874 minsize = 2;
5875 if ((best_size & 31) == 0)
5876 ++best_size;
5877 }
5878
5879 /* Create array where we count the collisions in. We must use bfd_malloc
5880 since the size could be large. */
5881 amt = maxsize;
5882 amt *= sizeof (unsigned long int);
5883 counts = (unsigned long int *) bfd_malloc (amt);
5884 if (counts == NULL)
5885 return 0;
5886
5887 /* Compute the "optimal" size for the hash table. The criteria is a
5888 minimal chain length. The minor criteria is (of course) the size
5889 of the table. */
5890 for (i = minsize; i < maxsize; ++i)
5891 {
5892 /* Walk through the array of hashcodes and count the collisions. */
5893 BFD_HOST_U_64_BIT max;
5894 unsigned long int j;
5895 unsigned long int fact;
5896
5897 if (gnu_hash && (i & 31) == 0)
5898 continue;
5899
5900 memset (counts, '\0', i * sizeof (unsigned long int));
5901
5902 /* Determine how often each hash bucket is used. */
5903 for (j = 0; j < nsyms; ++j)
5904 ++counts[hashcodes[j] % i];
5905
5906 /* For the weight function we need some information about the
5907 pagesize on the target. This is information need not be 100%
5908 accurate. Since this information is not available (so far) we
5909 define it here to a reasonable default value. If it is crucial
5910 to have a better value some day simply define this value. */
5911 # ifndef BFD_TARGET_PAGESIZE
5912 # define BFD_TARGET_PAGESIZE (4096)
5913 # endif
5914
5915 /* We in any case need 2 + DYNSYMCOUNT entries for the size values
5916 and the chains. */
5917 max = (2 + dynsymcount) * bed->s->sizeof_hash_entry;
5918
5919 # if 1
5920 /* Variant 1: optimize for short chains. We add the squares
5921 of all the chain lengths (which favors many small chain
5922 over a few long chains). */
5923 for (j = 0; j < i; ++j)
5924 max += counts[j] * counts[j];
5925
5926 /* This adds penalties for the overall size of the table. */
5927 fact = i / (BFD_TARGET_PAGESIZE / bed->s->sizeof_hash_entry) + 1;
5928 max *= fact * fact;
5929 # else
5930 /* Variant 2: Optimize a lot more for small table. Here we
5931 also add squares of the size but we also add penalties for
5932 empty slots (the +1 term). */
5933 for (j = 0; j < i; ++j)
5934 max += (1 + counts[j]) * (1 + counts[j]);
5935
5936 /* The overall size of the table is considered, but not as
5937 strong as in variant 1, where it is squared. */
5938 fact = i / (BFD_TARGET_PAGESIZE / bed->s->sizeof_hash_entry) + 1;
5939 max *= fact;
5940 # endif
5941
5942 /* Compare with current best results. */
5943 if (max < best_chlen)
5944 {
5945 best_chlen = max;
5946 best_size = i;
5947 no_improvement_count = 0;
5948 }
5949 /* PR 11843: Avoid futile long searches for the best bucket size
5950 when there are a large number of symbols. */
5951 else if (++no_improvement_count == 100)
5952 break;
5953 }
5954
5955 free (counts);
5956 }
5957 else
5958 #endif /* defined (BFD_HOST_U_64_BIT) */
5959 {
5960 /* This is the fallback solution if no 64bit type is available or if we
5961 are not supposed to spend much time on optimizations. We select the
5962 bucket count using a fixed set of numbers. */
5963 for (i = 0; elf_buckets[i] != 0; i++)
5964 {
5965 best_size = elf_buckets[i];
5966 if (nsyms < elf_buckets[i + 1])
5967 break;
5968 }
5969 if (gnu_hash && best_size < 2)
5970 best_size = 2;
5971 }
5972
5973 return best_size;
5974 }
5975
5976 /* Size any SHT_GROUP section for ld -r. */
5977
5978 bfd_boolean
5979 _bfd_elf_size_group_sections (struct bfd_link_info *info)
5980 {
5981 bfd *ibfd;
5982 asection *s;
5983
5984 for (ibfd = info->input_bfds; ibfd != NULL; ibfd = ibfd->link.next)
5985 if (bfd_get_flavour (ibfd) == bfd_target_elf_flavour
5986 && (s = ibfd->sections) != NULL
5987 && s->sec_info_type != SEC_INFO_TYPE_JUST_SYMS
5988 && !_bfd_elf_fixup_group_sections (ibfd, bfd_abs_section_ptr))
5989 return FALSE;
5990 return TRUE;
5991 }
5992
5993 /* Set a default stack segment size. The value in INFO wins. If it
5994 is unset, LEGACY_SYMBOL's value is used, and if that symbol is
5995 undefined it is initialized. */
5996
5997 bfd_boolean
5998 bfd_elf_stack_segment_size (bfd *output_bfd,
5999 struct bfd_link_info *info,
6000 const char *legacy_symbol,
6001 bfd_vma default_size)
6002 {
6003 struct elf_link_hash_entry *h = NULL;
6004
6005 /* Look for legacy symbol. */
6006 if (legacy_symbol)
6007 h = elf_link_hash_lookup (elf_hash_table (info), legacy_symbol,
6008 FALSE, FALSE, FALSE);
6009 if (h && (h->root.type == bfd_link_hash_defined
6010 || h->root.type == bfd_link_hash_defweak)
6011 && h->def_regular
6012 && (h->type == STT_NOTYPE || h->type == STT_OBJECT))
6013 {
6014 /* The symbol has no type if specified on the command line. */
6015 h->type = STT_OBJECT;
6016 if (info->stacksize)
6017 /* xgettext:c-format */
6018 _bfd_error_handler (_("%B: stack size specified and %s set"),
6019 output_bfd, legacy_symbol);
6020 else if (h->root.u.def.section != bfd_abs_section_ptr)
6021 /* xgettext:c-format */
6022 _bfd_error_handler (_("%B: %s not absolute"),
6023 output_bfd, legacy_symbol);
6024 else
6025 info->stacksize = h->root.u.def.value;
6026 }
6027
6028 if (!info->stacksize)
6029 /* If the user didn't set a size, or explicitly inhibit the
6030 size, set it now. */
6031 info->stacksize = default_size;
6032
6033 /* Provide the legacy symbol, if it is referenced. */
6034 if (h && (h->root.type == bfd_link_hash_undefined
6035 || h->root.type == bfd_link_hash_undefweak))
6036 {
6037 struct bfd_link_hash_entry *bh = NULL;
6038
6039 if (!(_bfd_generic_link_add_one_symbol
6040 (info, output_bfd, legacy_symbol,
6041 BSF_GLOBAL, bfd_abs_section_ptr,
6042 info->stacksize >= 0 ? info->stacksize : 0,
6043 NULL, FALSE, get_elf_backend_data (output_bfd)->collect, &bh)))
6044 return FALSE;
6045
6046 h = (struct elf_link_hash_entry *) bh;
6047 h->def_regular = 1;
6048 h->type = STT_OBJECT;
6049 }
6050
6051 return TRUE;
6052 }
6053
6054 /* Sweep symbols in swept sections. Called via elf_link_hash_traverse. */
6055
6056 struct elf_gc_sweep_symbol_info
6057 {
6058 struct bfd_link_info *info;
6059 void (*hide_symbol) (struct bfd_link_info *, struct elf_link_hash_entry *,
6060 bfd_boolean);
6061 };
6062
6063 static bfd_boolean
6064 elf_gc_sweep_symbol (struct elf_link_hash_entry *h, void *data)
6065 {
6066 if (!h->mark
6067 && (((h->root.type == bfd_link_hash_defined
6068 || h->root.type == bfd_link_hash_defweak)
6069 && !((h->def_regular || ELF_COMMON_DEF_P (h))
6070 && h->root.u.def.section->gc_mark))
6071 || h->root.type == bfd_link_hash_undefined
6072 || h->root.type == bfd_link_hash_undefweak))
6073 {
6074 struct elf_gc_sweep_symbol_info *inf;
6075
6076 inf = (struct elf_gc_sweep_symbol_info *) data;
6077 (*inf->hide_symbol) (inf->info, h, TRUE);
6078 h->def_regular = 0;
6079 h->ref_regular = 0;
6080 h->ref_regular_nonweak = 0;
6081 }
6082
6083 return TRUE;
6084 }
6085
6086 /* Set up the sizes and contents of the ELF dynamic sections. This is
6087 called by the ELF linker emulation before_allocation routine. We
6088 must set the sizes of the sections before the linker sets the
6089 addresses of the various sections. */
6090
6091 bfd_boolean
6092 bfd_elf_size_dynamic_sections (bfd *output_bfd,
6093 const char *soname,
6094 const char *rpath,
6095 const char *filter_shlib,
6096 const char *audit,
6097 const char *depaudit,
6098 const char * const *auxiliary_filters,
6099 struct bfd_link_info *info,
6100 asection **sinterpptr)
6101 {
6102 bfd *dynobj;
6103 const struct elf_backend_data *bed;
6104
6105 *sinterpptr = NULL;
6106
6107 if (!is_elf_hash_table (info->hash))
6108 return TRUE;
6109
6110 dynobj = elf_hash_table (info)->dynobj;
6111
6112 if (dynobj != NULL && elf_hash_table (info)->dynamic_sections_created)
6113 {
6114 struct bfd_elf_version_tree *verdefs;
6115 struct elf_info_failed asvinfo;
6116 struct bfd_elf_version_tree *t;
6117 struct bfd_elf_version_expr *d;
6118 asection *s;
6119 size_t soname_indx;
6120
6121 /* If we are supposed to export all symbols into the dynamic symbol
6122 table (this is not the normal case), then do so. */
6123 if (info->export_dynamic
6124 || (bfd_link_executable (info) && info->dynamic))
6125 {
6126 struct elf_info_failed eif;
6127
6128 eif.info = info;
6129 eif.failed = FALSE;
6130 elf_link_hash_traverse (elf_hash_table (info),
6131 _bfd_elf_export_symbol,
6132 &eif);
6133 if (eif.failed)
6134 return FALSE;
6135 }
6136
6137 if (soname != NULL)
6138 {
6139 soname_indx = _bfd_elf_strtab_add (elf_hash_table (info)->dynstr,
6140 soname, TRUE);
6141 if (soname_indx == (size_t) -1
6142 || !_bfd_elf_add_dynamic_entry (info, DT_SONAME, soname_indx))
6143 return FALSE;
6144 }
6145 else
6146 soname_indx = (size_t) -1;
6147
6148 /* Make all global versions with definition. */
6149 for (t = info->version_info; t != NULL; t = t->next)
6150 for (d = t->globals.list; d != NULL; d = d->next)
6151 if (!d->symver && d->literal)
6152 {
6153 const char *verstr, *name;
6154 size_t namelen, verlen, newlen;
6155 char *newname, *p, leading_char;
6156 struct elf_link_hash_entry *newh;
6157
6158 leading_char = bfd_get_symbol_leading_char (output_bfd);
6159 name = d->pattern;
6160 namelen = strlen (name) + (leading_char != '\0');
6161 verstr = t->name;
6162 verlen = strlen (verstr);
6163 newlen = namelen + verlen + 3;
6164
6165 newname = (char *) bfd_malloc (newlen);
6166 if (newname == NULL)
6167 return FALSE;
6168 newname[0] = leading_char;
6169 memcpy (newname + (leading_char != '\0'), name, namelen);
6170
6171 /* Check the hidden versioned definition. */
6172 p = newname + namelen;
6173 *p++ = ELF_VER_CHR;
6174 memcpy (p, verstr, verlen + 1);
6175 newh = elf_link_hash_lookup (elf_hash_table (info),
6176 newname, FALSE, FALSE,
6177 FALSE);
6178 if (newh == NULL
6179 || (newh->root.type != bfd_link_hash_defined
6180 && newh->root.type != bfd_link_hash_defweak))
6181 {
6182 /* Check the default versioned definition. */
6183 *p++ = ELF_VER_CHR;
6184 memcpy (p, verstr, verlen + 1);
6185 newh = elf_link_hash_lookup (elf_hash_table (info),
6186 newname, FALSE, FALSE,
6187 FALSE);
6188 }
6189 free (newname);
6190
6191 /* Mark this version if there is a definition and it is
6192 not defined in a shared object. */
6193 if (newh != NULL
6194 && !newh->def_dynamic
6195 && (newh->root.type == bfd_link_hash_defined
6196 || newh->root.type == bfd_link_hash_defweak))
6197 d->symver = 1;
6198 }
6199
6200 /* Attach all the symbols to their version information. */
6201 asvinfo.info = info;
6202 asvinfo.failed = FALSE;
6203
6204 elf_link_hash_traverse (elf_hash_table (info),
6205 _bfd_elf_link_assign_sym_version,
6206 &asvinfo);
6207 if (asvinfo.failed)
6208 return FALSE;
6209
6210 if (!info->allow_undefined_version)
6211 {
6212 /* Check if all global versions have a definition. */
6213 bfd_boolean all_defined = TRUE;
6214 for (t = info->version_info; t != NULL; t = t->next)
6215 for (d = t->globals.list; d != NULL; d = d->next)
6216 if (d->literal && !d->symver && !d->script)
6217 {
6218 _bfd_error_handler
6219 (_("%s: undefined version: %s"),
6220 d->pattern, t->name);
6221 all_defined = FALSE;
6222 }
6223
6224 if (!all_defined)
6225 {
6226 bfd_set_error (bfd_error_bad_value);
6227 return FALSE;
6228 }
6229 }
6230
6231 /* Set up the version definition section. */
6232 s = bfd_get_linker_section (dynobj, ".gnu.version_d");
6233 BFD_ASSERT (s != NULL);
6234
6235 /* We may have created additional version definitions if we are
6236 just linking a regular application. */
6237 verdefs = info->version_info;
6238
6239 /* Skip anonymous version tag. */
6240 if (verdefs != NULL && verdefs->vernum == 0)
6241 verdefs = verdefs->next;
6242
6243 if (verdefs == NULL && !info->create_default_symver)
6244 s->flags |= SEC_EXCLUDE;
6245 else
6246 {
6247 unsigned int cdefs;
6248 bfd_size_type size;
6249 bfd_byte *p;
6250 Elf_Internal_Verdef def;
6251 Elf_Internal_Verdaux defaux;
6252 struct bfd_link_hash_entry *bh;
6253 struct elf_link_hash_entry *h;
6254 const char *name;
6255
6256 cdefs = 0;
6257 size = 0;
6258
6259 /* Make space for the base version. */
6260 size += sizeof (Elf_External_Verdef);
6261 size += sizeof (Elf_External_Verdaux);
6262 ++cdefs;
6263
6264 /* Make space for the default version. */
6265 if (info->create_default_symver)
6266 {
6267 size += sizeof (Elf_External_Verdef);
6268 ++cdefs;
6269 }
6270
6271 for (t = verdefs; t != NULL; t = t->next)
6272 {
6273 struct bfd_elf_version_deps *n;
6274
6275 /* Don't emit base version twice. */
6276 if (t->vernum == 0)
6277 continue;
6278
6279 size += sizeof (Elf_External_Verdef);
6280 size += sizeof (Elf_External_Verdaux);
6281 ++cdefs;
6282
6283 for (n = t->deps; n != NULL; n = n->next)
6284 size += sizeof (Elf_External_Verdaux);
6285 }
6286
6287 s->size = size;
6288 s->contents = (unsigned char *) bfd_alloc (output_bfd, s->size);
6289 if (s->contents == NULL && s->size != 0)
6290 return FALSE;
6291
6292 /* Fill in the version definition section. */
6293
6294 p = s->contents;
6295
6296 def.vd_version = VER_DEF_CURRENT;
6297 def.vd_flags = VER_FLG_BASE;
6298 def.vd_ndx = 1;
6299 def.vd_cnt = 1;
6300 if (info->create_default_symver)
6301 {
6302 def.vd_aux = 2 * sizeof (Elf_External_Verdef);
6303 def.vd_next = sizeof (Elf_External_Verdef);
6304 }
6305 else
6306 {
6307 def.vd_aux = sizeof (Elf_External_Verdef);
6308 def.vd_next = (sizeof (Elf_External_Verdef)
6309 + sizeof (Elf_External_Verdaux));
6310 }
6311
6312 if (soname_indx != (size_t) -1)
6313 {
6314 _bfd_elf_strtab_addref (elf_hash_table (info)->dynstr,
6315 soname_indx);
6316 def.vd_hash = bfd_elf_hash (soname);
6317 defaux.vda_name = soname_indx;
6318 name = soname;
6319 }
6320 else
6321 {
6322 size_t indx;
6323
6324 name = lbasename (output_bfd->filename);
6325 def.vd_hash = bfd_elf_hash (name);
6326 indx = _bfd_elf_strtab_add (elf_hash_table (info)->dynstr,
6327 name, FALSE);
6328 if (indx == (size_t) -1)
6329 return FALSE;
6330 defaux.vda_name = indx;
6331 }
6332 defaux.vda_next = 0;
6333
6334 _bfd_elf_swap_verdef_out (output_bfd, &def,
6335 (Elf_External_Verdef *) p);
6336 p += sizeof (Elf_External_Verdef);
6337 if (info->create_default_symver)
6338 {
6339 /* Add a symbol representing this version. */
6340 bh = NULL;
6341 if (! (_bfd_generic_link_add_one_symbol
6342 (info, dynobj, name, BSF_GLOBAL, bfd_abs_section_ptr,
6343 0, NULL, FALSE,
6344 get_elf_backend_data (dynobj)->collect, &bh)))
6345 return FALSE;
6346 h = (struct elf_link_hash_entry *) bh;
6347 h->non_elf = 0;
6348 h->def_regular = 1;
6349 h->type = STT_OBJECT;
6350 h->verinfo.vertree = NULL;
6351
6352 if (! bfd_elf_link_record_dynamic_symbol (info, h))
6353 return FALSE;
6354
6355 /* Create a duplicate of the base version with the same
6356 aux block, but different flags. */
6357 def.vd_flags = 0;
6358 def.vd_ndx = 2;
6359 def.vd_aux = sizeof (Elf_External_Verdef);
6360 if (verdefs)
6361 def.vd_next = (sizeof (Elf_External_Verdef)
6362 + sizeof (Elf_External_Verdaux));
6363 else
6364 def.vd_next = 0;
6365 _bfd_elf_swap_verdef_out (output_bfd, &def,
6366 (Elf_External_Verdef *) p);
6367 p += sizeof (Elf_External_Verdef);
6368 }
6369 _bfd_elf_swap_verdaux_out (output_bfd, &defaux,
6370 (Elf_External_Verdaux *) p);
6371 p += sizeof (Elf_External_Verdaux);
6372
6373 for (t = verdefs; t != NULL; t = t->next)
6374 {
6375 unsigned int cdeps;
6376 struct bfd_elf_version_deps *n;
6377
6378 /* Don't emit the base version twice. */
6379 if (t->vernum == 0)
6380 continue;
6381
6382 cdeps = 0;
6383 for (n = t->deps; n != NULL; n = n->next)
6384 ++cdeps;
6385
6386 /* Add a symbol representing this version. */
6387 bh = NULL;
6388 if (! (_bfd_generic_link_add_one_symbol
6389 (info, dynobj, t->name, BSF_GLOBAL, bfd_abs_section_ptr,
6390 0, NULL, FALSE,
6391 get_elf_backend_data (dynobj)->collect, &bh)))
6392 return FALSE;
6393 h = (struct elf_link_hash_entry *) bh;
6394 h->non_elf = 0;
6395 h->def_regular = 1;
6396 h->type = STT_OBJECT;
6397 h->verinfo.vertree = t;
6398
6399 if (! bfd_elf_link_record_dynamic_symbol (info, h))
6400 return FALSE;
6401
6402 def.vd_version = VER_DEF_CURRENT;
6403 def.vd_flags = 0;
6404 if (t->globals.list == NULL
6405 && t->locals.list == NULL
6406 && ! t->used)
6407 def.vd_flags |= VER_FLG_WEAK;
6408 def.vd_ndx = t->vernum + (info->create_default_symver ? 2 : 1);
6409 def.vd_cnt = cdeps + 1;
6410 def.vd_hash = bfd_elf_hash (t->name);
6411 def.vd_aux = sizeof (Elf_External_Verdef);
6412 def.vd_next = 0;
6413
6414 /* If a basever node is next, it *must* be the last node in
6415 the chain, otherwise Verdef construction breaks. */
6416 if (t->next != NULL && t->next->vernum == 0)
6417 BFD_ASSERT (t->next->next == NULL);
6418
6419 if (t->next != NULL && t->next->vernum != 0)
6420 def.vd_next = (sizeof (Elf_External_Verdef)
6421 + (cdeps + 1) * sizeof (Elf_External_Verdaux));
6422
6423 _bfd_elf_swap_verdef_out (output_bfd, &def,
6424 (Elf_External_Verdef *) p);
6425 p += sizeof (Elf_External_Verdef);
6426
6427 defaux.vda_name = h->dynstr_index;
6428 _bfd_elf_strtab_addref (elf_hash_table (info)->dynstr,
6429 h->dynstr_index);
6430 defaux.vda_next = 0;
6431 if (t->deps != NULL)
6432 defaux.vda_next = sizeof (Elf_External_Verdaux);
6433 t->name_indx = defaux.vda_name;
6434
6435 _bfd_elf_swap_verdaux_out (output_bfd, &defaux,
6436 (Elf_External_Verdaux *) p);
6437 p += sizeof (Elf_External_Verdaux);
6438
6439 for (n = t->deps; n != NULL; n = n->next)
6440 {
6441 if (n->version_needed == NULL)
6442 {
6443 /* This can happen if there was an error in the
6444 version script. */
6445 defaux.vda_name = 0;
6446 }
6447 else
6448 {
6449 defaux.vda_name = n->version_needed->name_indx;
6450 _bfd_elf_strtab_addref (elf_hash_table (info)->dynstr,
6451 defaux.vda_name);
6452 }
6453 if (n->next == NULL)
6454 defaux.vda_next = 0;
6455 else
6456 defaux.vda_next = sizeof (Elf_External_Verdaux);
6457
6458 _bfd_elf_swap_verdaux_out (output_bfd, &defaux,
6459 (Elf_External_Verdaux *) p);
6460 p += sizeof (Elf_External_Verdaux);
6461 }
6462 }
6463
6464 elf_tdata (output_bfd)->cverdefs = cdefs;
6465 }
6466 }
6467
6468 bed = get_elf_backend_data (output_bfd);
6469
6470 if (info->gc_sections && bed->can_gc_sections)
6471 {
6472 struct elf_gc_sweep_symbol_info sweep_info;
6473
6474 /* Remove the symbols that were in the swept sections from the
6475 dynamic symbol table. */
6476 sweep_info.info = info;
6477 sweep_info.hide_symbol = bed->elf_backend_hide_symbol;
6478 elf_link_hash_traverse (elf_hash_table (info), elf_gc_sweep_symbol,
6479 &sweep_info);
6480 }
6481
6482 if (dynobj != NULL && elf_hash_table (info)->dynamic_sections_created)
6483 {
6484 asection *s;
6485 struct elf_find_verdep_info sinfo;
6486
6487 /* Work out the size of the version reference section. */
6488
6489 s = bfd_get_linker_section (dynobj, ".gnu.version_r");
6490 BFD_ASSERT (s != NULL);
6491
6492 sinfo.info = info;
6493 sinfo.vers = elf_tdata (output_bfd)->cverdefs;
6494 if (sinfo.vers == 0)
6495 sinfo.vers = 1;
6496 sinfo.failed = FALSE;
6497
6498 elf_link_hash_traverse (elf_hash_table (info),
6499 _bfd_elf_link_find_version_dependencies,
6500 &sinfo);
6501 if (sinfo.failed)
6502 return FALSE;
6503
6504 if (elf_tdata (output_bfd)->verref == NULL)
6505 s->flags |= SEC_EXCLUDE;
6506 else
6507 {
6508 Elf_Internal_Verneed *vn;
6509 unsigned int size;
6510 unsigned int crefs;
6511 bfd_byte *p;
6512
6513 /* Build the version dependency section. */
6514 size = 0;
6515 crefs = 0;
6516 for (vn = elf_tdata (output_bfd)->verref;
6517 vn != NULL;
6518 vn = vn->vn_nextref)
6519 {
6520 Elf_Internal_Vernaux *a;
6521
6522 size += sizeof (Elf_External_Verneed);
6523 ++crefs;
6524 for (a = vn->vn_auxptr; a != NULL; a = a->vna_nextptr)
6525 size += sizeof (Elf_External_Vernaux);
6526 }
6527
6528 s->size = size;
6529 s->contents = (unsigned char *) bfd_alloc (output_bfd, s->size);
6530 if (s->contents == NULL)
6531 return FALSE;
6532
6533 p = s->contents;
6534 for (vn = elf_tdata (output_bfd)->verref;
6535 vn != NULL;
6536 vn = vn->vn_nextref)
6537 {
6538 unsigned int caux;
6539 Elf_Internal_Vernaux *a;
6540 size_t indx;
6541
6542 caux = 0;
6543 for (a = vn->vn_auxptr; a != NULL; a = a->vna_nextptr)
6544 ++caux;
6545
6546 vn->vn_version = VER_NEED_CURRENT;
6547 vn->vn_cnt = caux;
6548 indx = _bfd_elf_strtab_add (elf_hash_table (info)->dynstr,
6549 elf_dt_name (vn->vn_bfd) != NULL
6550 ? elf_dt_name (vn->vn_bfd)
6551 : lbasename (vn->vn_bfd->filename),
6552 FALSE);
6553 if (indx == (size_t) -1)
6554 return FALSE;
6555 vn->vn_file = indx;
6556 vn->vn_aux = sizeof (Elf_External_Verneed);
6557 if (vn->vn_nextref == NULL)
6558 vn->vn_next = 0;
6559 else
6560 vn->vn_next = (sizeof (Elf_External_Verneed)
6561 + caux * sizeof (Elf_External_Vernaux));
6562
6563 _bfd_elf_swap_verneed_out (output_bfd, vn,
6564 (Elf_External_Verneed *) p);
6565 p += sizeof (Elf_External_Verneed);
6566
6567 for (a = vn->vn_auxptr; a != NULL; a = a->vna_nextptr)
6568 {
6569 a->vna_hash = bfd_elf_hash (a->vna_nodename);
6570 indx = _bfd_elf_strtab_add (elf_hash_table (info)->dynstr,
6571 a->vna_nodename, FALSE);
6572 if (indx == (size_t) -1)
6573 return FALSE;
6574 a->vna_name = indx;
6575 if (a->vna_nextptr == NULL)
6576 a->vna_next = 0;
6577 else
6578 a->vna_next = sizeof (Elf_External_Vernaux);
6579
6580 _bfd_elf_swap_vernaux_out (output_bfd, a,
6581 (Elf_External_Vernaux *) p);
6582 p += sizeof (Elf_External_Vernaux);
6583 }
6584 }
6585
6586 elf_tdata (output_bfd)->cverrefs = crefs;
6587 }
6588 }
6589
6590 /* Any syms created from now on start with -1 in
6591 got.refcount/offset and plt.refcount/offset. */
6592 elf_hash_table (info)->init_got_refcount
6593 = elf_hash_table (info)->init_got_offset;
6594 elf_hash_table (info)->init_plt_refcount
6595 = elf_hash_table (info)->init_plt_offset;
6596
6597 if (bfd_link_relocatable (info)
6598 && !_bfd_elf_size_group_sections (info))
6599 return FALSE;
6600
6601 /* The backend may have to create some sections regardless of whether
6602 we're dynamic or not. */
6603 if (bed->elf_backend_always_size_sections
6604 && ! (*bed->elf_backend_always_size_sections) (output_bfd, info))
6605 return FALSE;
6606
6607 /* Determine any GNU_STACK segment requirements, after the backend
6608 has had a chance to set a default segment size. */
6609 if (info->execstack)
6610 elf_stack_flags (output_bfd) = PF_R | PF_W | PF_X;
6611 else if (info->noexecstack)
6612 elf_stack_flags (output_bfd) = PF_R | PF_W;
6613 else
6614 {
6615 bfd *inputobj;
6616 asection *notesec = NULL;
6617 int exec = 0;
6618
6619 for (inputobj = info->input_bfds;
6620 inputobj;
6621 inputobj = inputobj->link.next)
6622 {
6623 asection *s;
6624
6625 if (inputobj->flags
6626 & (DYNAMIC | EXEC_P | BFD_PLUGIN | BFD_LINKER_CREATED))
6627 continue;
6628 s = inputobj->sections;
6629 if (s == NULL || s->sec_info_type == SEC_INFO_TYPE_JUST_SYMS)
6630 continue;
6631
6632 s = bfd_get_section_by_name (inputobj, ".note.GNU-stack");
6633 if (s)
6634 {
6635 if (s->flags & SEC_CODE)
6636 exec = PF_X;
6637 notesec = s;
6638 }
6639 else if (bed->default_execstack)
6640 exec = PF_X;
6641 }
6642 if (notesec || info->stacksize > 0)
6643 elf_stack_flags (output_bfd) = PF_R | PF_W | exec;
6644 if (notesec && exec && bfd_link_relocatable (info)
6645 && notesec->output_section != bfd_abs_section_ptr)
6646 notesec->output_section->flags |= SEC_CODE;
6647 }
6648
6649 if (dynobj != NULL && elf_hash_table (info)->dynamic_sections_created)
6650 {
6651 struct elf_info_failed eif;
6652 struct elf_link_hash_entry *h;
6653 asection *dynstr;
6654 asection *s;
6655
6656 *sinterpptr = bfd_get_linker_section (dynobj, ".interp");
6657 BFD_ASSERT (*sinterpptr != NULL || !bfd_link_executable (info) || info->nointerp);
6658
6659 if (info->symbolic)
6660 {
6661 if (!_bfd_elf_add_dynamic_entry (info, DT_SYMBOLIC, 0))
6662 return FALSE;
6663 info->flags |= DF_SYMBOLIC;
6664 }
6665
6666 if (rpath != NULL)
6667 {
6668 size_t indx;
6669 bfd_vma tag;
6670
6671 indx = _bfd_elf_strtab_add (elf_hash_table (info)->dynstr, rpath,
6672 TRUE);
6673 if (indx == (size_t) -1)
6674 return FALSE;
6675
6676 tag = info->new_dtags ? DT_RUNPATH : DT_RPATH;
6677 if (!_bfd_elf_add_dynamic_entry (info, tag, indx))
6678 return FALSE;
6679 }
6680
6681 if (filter_shlib != NULL)
6682 {
6683 size_t indx;
6684
6685 indx = _bfd_elf_strtab_add (elf_hash_table (info)->dynstr,
6686 filter_shlib, TRUE);
6687 if (indx == (size_t) -1
6688 || !_bfd_elf_add_dynamic_entry (info, DT_FILTER, indx))
6689 return FALSE;
6690 }
6691
6692 if (auxiliary_filters != NULL)
6693 {
6694 const char * const *p;
6695
6696 for (p = auxiliary_filters; *p != NULL; p++)
6697 {
6698 size_t indx;
6699
6700 indx = _bfd_elf_strtab_add (elf_hash_table (info)->dynstr,
6701 *p, TRUE);
6702 if (indx == (size_t) -1
6703 || !_bfd_elf_add_dynamic_entry (info, DT_AUXILIARY, indx))
6704 return FALSE;
6705 }
6706 }
6707
6708 if (audit != NULL)
6709 {
6710 size_t indx;
6711
6712 indx = _bfd_elf_strtab_add (elf_hash_table (info)->dynstr, audit,
6713 TRUE);
6714 if (indx == (size_t) -1
6715 || !_bfd_elf_add_dynamic_entry (info, DT_AUDIT, indx))
6716 return FALSE;
6717 }
6718
6719 if (depaudit != NULL)
6720 {
6721 size_t indx;
6722
6723 indx = _bfd_elf_strtab_add (elf_hash_table (info)->dynstr, depaudit,
6724 TRUE);
6725 if (indx == (size_t) -1
6726 || !_bfd_elf_add_dynamic_entry (info, DT_DEPAUDIT, indx))
6727 return FALSE;
6728 }
6729
6730 eif.info = info;
6731 eif.failed = FALSE;
6732
6733 /* Find all symbols which were defined in a dynamic object and make
6734 the backend pick a reasonable value for them. */
6735 elf_link_hash_traverse (elf_hash_table (info),
6736 _bfd_elf_adjust_dynamic_symbol,
6737 &eif);
6738 if (eif.failed)
6739 return FALSE;
6740
6741 /* Add some entries to the .dynamic section. We fill in some of the
6742 values later, in bfd_elf_final_link, but we must add the entries
6743 now so that we know the final size of the .dynamic section. */
6744
6745 /* If there are initialization and/or finalization functions to
6746 call then add the corresponding DT_INIT/DT_FINI entries. */
6747 h = (info->init_function
6748 ? elf_link_hash_lookup (elf_hash_table (info),
6749 info->init_function, FALSE,
6750 FALSE, FALSE)
6751 : NULL);
6752 if (h != NULL
6753 && (h->ref_regular
6754 || h->def_regular))
6755 {
6756 if (!_bfd_elf_add_dynamic_entry (info, DT_INIT, 0))
6757 return FALSE;
6758 }
6759 h = (info->fini_function
6760 ? elf_link_hash_lookup (elf_hash_table (info),
6761 info->fini_function, FALSE,
6762 FALSE, FALSE)
6763 : NULL);
6764 if (h != NULL
6765 && (h->ref_regular
6766 || h->def_regular))
6767 {
6768 if (!_bfd_elf_add_dynamic_entry (info, DT_FINI, 0))
6769 return FALSE;
6770 }
6771
6772 s = bfd_get_section_by_name (output_bfd, ".preinit_array");
6773 if (s != NULL && s->linker_has_input)
6774 {
6775 /* DT_PREINIT_ARRAY is not allowed in shared library. */
6776 if (! bfd_link_executable (info))
6777 {
6778 bfd *sub;
6779 asection *o;
6780
6781 for (sub = info->input_bfds; sub != NULL; sub = sub->link.next)
6782 if (bfd_get_flavour (sub) == bfd_target_elf_flavour
6783 && (o = sub->sections) != NULL
6784 && o->sec_info_type != SEC_INFO_TYPE_JUST_SYMS)
6785 for (o = sub->sections; o != NULL; o = o->next)
6786 if (elf_section_data (o)->this_hdr.sh_type
6787 == SHT_PREINIT_ARRAY)
6788 {
6789 _bfd_error_handler
6790 (_("%B: .preinit_array section is not allowed in DSO"),
6791 sub);
6792 break;
6793 }
6794
6795 bfd_set_error (bfd_error_nonrepresentable_section);
6796 return FALSE;
6797 }
6798
6799 if (!_bfd_elf_add_dynamic_entry (info, DT_PREINIT_ARRAY, 0)
6800 || !_bfd_elf_add_dynamic_entry (info, DT_PREINIT_ARRAYSZ, 0))
6801 return FALSE;
6802 }
6803 s = bfd_get_section_by_name (output_bfd, ".init_array");
6804 if (s != NULL && s->linker_has_input)
6805 {
6806 if (!_bfd_elf_add_dynamic_entry (info, DT_INIT_ARRAY, 0)
6807 || !_bfd_elf_add_dynamic_entry (info, DT_INIT_ARRAYSZ, 0))
6808 return FALSE;
6809 }
6810 s = bfd_get_section_by_name (output_bfd, ".fini_array");
6811 if (s != NULL && s->linker_has_input)
6812 {
6813 if (!_bfd_elf_add_dynamic_entry (info, DT_FINI_ARRAY, 0)
6814 || !_bfd_elf_add_dynamic_entry (info, DT_FINI_ARRAYSZ, 0))
6815 return FALSE;
6816 }
6817
6818 dynstr = bfd_get_linker_section (dynobj, ".dynstr");
6819 /* If .dynstr is excluded from the link, we don't want any of
6820 these tags. Strictly, we should be checking each section
6821 individually; This quick check covers for the case where
6822 someone does a /DISCARD/ : { *(*) }. */
6823 if (dynstr != NULL && dynstr->output_section != bfd_abs_section_ptr)
6824 {
6825 bfd_size_type strsize;
6826
6827 strsize = _bfd_elf_strtab_size (elf_hash_table (info)->dynstr);
6828 if ((info->emit_hash
6829 && !_bfd_elf_add_dynamic_entry (info, DT_HASH, 0))
6830 || (info->emit_gnu_hash
6831 && !_bfd_elf_add_dynamic_entry (info, DT_GNU_HASH, 0))
6832 || !_bfd_elf_add_dynamic_entry (info, DT_STRTAB, 0)
6833 || !_bfd_elf_add_dynamic_entry (info, DT_SYMTAB, 0)
6834 || !_bfd_elf_add_dynamic_entry (info, DT_STRSZ, strsize)
6835 || !_bfd_elf_add_dynamic_entry (info, DT_SYMENT,
6836 bed->s->sizeof_sym))
6837 return FALSE;
6838 }
6839 }
6840
6841 if (! _bfd_elf_maybe_strip_eh_frame_hdr (info))
6842 return FALSE;
6843
6844 /* The backend must work out the sizes of all the other dynamic
6845 sections. */
6846 if (dynobj != NULL
6847 && bed->elf_backend_size_dynamic_sections != NULL
6848 && ! (*bed->elf_backend_size_dynamic_sections) (output_bfd, info))
6849 return FALSE;
6850
6851 if (dynobj != NULL && elf_hash_table (info)->dynamic_sections_created)
6852 {
6853 if (elf_tdata (output_bfd)->cverdefs)
6854 {
6855 unsigned int crefs = elf_tdata (output_bfd)->cverdefs;
6856
6857 if (!_bfd_elf_add_dynamic_entry (info, DT_VERDEF, 0)
6858 || !_bfd_elf_add_dynamic_entry (info, DT_VERDEFNUM, crefs))
6859 return FALSE;
6860 }
6861
6862 if ((info->new_dtags && info->flags) || (info->flags & DF_STATIC_TLS))
6863 {
6864 if (!_bfd_elf_add_dynamic_entry (info, DT_FLAGS, info->flags))
6865 return FALSE;
6866 }
6867 else if (info->flags & DF_BIND_NOW)
6868 {
6869 if (!_bfd_elf_add_dynamic_entry (info, DT_BIND_NOW, 0))
6870 return FALSE;
6871 }
6872
6873 if (info->flags_1)
6874 {
6875 if (bfd_link_executable (info))
6876 info->flags_1 &= ~ (DF_1_INITFIRST
6877 | DF_1_NODELETE
6878 | DF_1_NOOPEN);
6879 if (!_bfd_elf_add_dynamic_entry (info, DT_FLAGS_1, info->flags_1))
6880 return FALSE;
6881 }
6882
6883 if (elf_tdata (output_bfd)->cverrefs)
6884 {
6885 unsigned int crefs = elf_tdata (output_bfd)->cverrefs;
6886
6887 if (!_bfd_elf_add_dynamic_entry (info, DT_VERNEED, 0)
6888 || !_bfd_elf_add_dynamic_entry (info, DT_VERNEEDNUM, crefs))
6889 return FALSE;
6890 }
6891
6892 if ((elf_tdata (output_bfd)->cverrefs == 0
6893 && elf_tdata (output_bfd)->cverdefs == 0)
6894 || _bfd_elf_link_renumber_dynsyms (output_bfd, info, NULL) <= 1)
6895 {
6896 asection *s;
6897
6898 s = bfd_get_linker_section (dynobj, ".gnu.version");
6899 s->flags |= SEC_EXCLUDE;
6900 }
6901 }
6902 return TRUE;
6903 }
6904
6905 /* Find the first non-excluded output section. We'll use its
6906 section symbol for some emitted relocs. */
6907 void
6908 _bfd_elf_init_1_index_section (bfd *output_bfd, struct bfd_link_info *info)
6909 {
6910 asection *s;
6911
6912 for (s = output_bfd->sections; s != NULL; s = s->next)
6913 if ((s->flags & (SEC_EXCLUDE | SEC_ALLOC)) == SEC_ALLOC
6914 && !_bfd_elf_link_omit_section_dynsym (output_bfd, info, s))
6915 {
6916 elf_hash_table (info)->text_index_section = s;
6917 break;
6918 }
6919 }
6920
6921 /* Find two non-excluded output sections, one for code, one for data.
6922 We'll use their section symbols for some emitted relocs. */
6923 void
6924 _bfd_elf_init_2_index_sections (bfd *output_bfd, struct bfd_link_info *info)
6925 {
6926 asection *s;
6927
6928 /* Data first, since setting text_index_section changes
6929 _bfd_elf_link_omit_section_dynsym. */
6930 for (s = output_bfd->sections; s != NULL; s = s->next)
6931 if (((s->flags & (SEC_EXCLUDE | SEC_ALLOC | SEC_READONLY)) == SEC_ALLOC)
6932 && !_bfd_elf_link_omit_section_dynsym (output_bfd, info, s))
6933 {
6934 elf_hash_table (info)->data_index_section = s;
6935 break;
6936 }
6937
6938 for (s = output_bfd->sections; s != NULL; s = s->next)
6939 if (((s->flags & (SEC_EXCLUDE | SEC_ALLOC | SEC_READONLY))
6940 == (SEC_ALLOC | SEC_READONLY))
6941 && !_bfd_elf_link_omit_section_dynsym (output_bfd, info, s))
6942 {
6943 elf_hash_table (info)->text_index_section = s;
6944 break;
6945 }
6946
6947 if (elf_hash_table (info)->text_index_section == NULL)
6948 elf_hash_table (info)->text_index_section
6949 = elf_hash_table (info)->data_index_section;
6950 }
6951
6952 bfd_boolean
6953 bfd_elf_size_dynsym_hash_dynstr (bfd *output_bfd, struct bfd_link_info *info)
6954 {
6955 const struct elf_backend_data *bed;
6956 unsigned long section_sym_count;
6957 bfd_size_type dynsymcount = 0;
6958
6959 if (!is_elf_hash_table (info->hash))
6960 return TRUE;
6961
6962 bed = get_elf_backend_data (output_bfd);
6963 (*bed->elf_backend_init_index_section) (output_bfd, info);
6964
6965 /* Assign dynsym indices. In a shared library we generate a section
6966 symbol for each output section, which come first. Next come all
6967 of the back-end allocated local dynamic syms, followed by the rest
6968 of the global symbols.
6969
6970 This is usually not needed for static binaries, however backends
6971 can request to always do it, e.g. the MIPS backend uses dynamic
6972 symbol counts to lay out GOT, which will be produced in the
6973 presence of GOT relocations even in static binaries (holding fixed
6974 data in that case, to satisfy those relocations). */
6975
6976 if (elf_hash_table (info)->dynamic_sections_created
6977 || bed->always_renumber_dynsyms)
6978 dynsymcount = _bfd_elf_link_renumber_dynsyms (output_bfd, info,
6979 §ion_sym_count);
6980
6981 if (elf_hash_table (info)->dynamic_sections_created)
6982 {
6983 bfd *dynobj;
6984 asection *s;
6985 unsigned int dtagcount;
6986
6987 dynobj = elf_hash_table (info)->dynobj;
6988
6989 /* Work out the size of the symbol version section. */
6990 s = bfd_get_linker_section (dynobj, ".gnu.version");
6991 BFD_ASSERT (s != NULL);
6992 if ((s->flags & SEC_EXCLUDE) == 0)
6993 {
6994 s->size = dynsymcount * sizeof (Elf_External_Versym);
6995 s->contents = (unsigned char *) bfd_zalloc (output_bfd, s->size);
6996 if (s->contents == NULL)
6997 return FALSE;
6998
6999 if (!_bfd_elf_add_dynamic_entry (info, DT_VERSYM, 0))
7000 return FALSE;
7001 }
7002
7003 /* Set the size of the .dynsym and .hash sections. We counted
7004 the number of dynamic symbols in elf_link_add_object_symbols.
7005 We will build the contents of .dynsym and .hash when we build
7006 the final symbol table, because until then we do not know the
7007 correct value to give the symbols. We built the .dynstr
7008 section as we went along in elf_link_add_object_symbols. */
7009 s = elf_hash_table (info)->dynsym;
7010 BFD_ASSERT (s != NULL);
7011 s->size = dynsymcount * bed->s->sizeof_sym;
7012
7013 s->contents = (unsigned char *) bfd_alloc (output_bfd, s->size);
7014 if (s->contents == NULL)
7015 return FALSE;
7016
7017 /* The first entry in .dynsym is a dummy symbol. Clear all the
7018 section syms, in case we don't output them all. */
7019 ++section_sym_count;
7020 memset (s->contents, 0, section_sym_count * bed->s->sizeof_sym);
7021
7022 elf_hash_table (info)->bucketcount = 0;
7023
7024 /* Compute the size of the hashing table. As a side effect this
7025 computes the hash values for all the names we export. */
7026 if (info->emit_hash)
7027 {
7028 unsigned long int *hashcodes;
7029 struct hash_codes_info hashinf;
7030 bfd_size_type amt;
7031 unsigned long int nsyms;
7032 size_t bucketcount;
7033 size_t hash_entry_size;
7034
7035 /* Compute the hash values for all exported symbols. At the same
7036 time store the values in an array so that we could use them for
7037 optimizations. */
7038 amt = dynsymcount * sizeof (unsigned long int);
7039 hashcodes = (unsigned long int *) bfd_malloc (amt);
7040 if (hashcodes == NULL)
7041 return FALSE;
7042 hashinf.hashcodes = hashcodes;
7043 hashinf.error = FALSE;
7044
7045 /* Put all hash values in HASHCODES. */
7046 elf_link_hash_traverse (elf_hash_table (info),
7047 elf_collect_hash_codes, &hashinf);
7048 if (hashinf.error)
7049 {
7050 free (hashcodes);
7051 return FALSE;
7052 }
7053
7054 nsyms = hashinf.hashcodes - hashcodes;
7055 bucketcount
7056 = compute_bucket_count (info, hashcodes, nsyms, 0);
7057 free (hashcodes);
7058
7059 if (bucketcount == 0 && nsyms > 0)
7060 return FALSE;
7061
7062 elf_hash_table (info)->bucketcount = bucketcount;
7063
7064 s = bfd_get_linker_section (dynobj, ".hash");
7065 BFD_ASSERT (s != NULL);
7066 hash_entry_size = elf_section_data (s)->this_hdr.sh_entsize;
7067 s->size = ((2 + bucketcount + dynsymcount) * hash_entry_size);
7068 s->contents = (unsigned char *) bfd_zalloc (output_bfd, s->size);
7069 if (s->contents == NULL)
7070 return FALSE;
7071
7072 bfd_put (8 * hash_entry_size, output_bfd, bucketcount, s->contents);
7073 bfd_put (8 * hash_entry_size, output_bfd, dynsymcount,
7074 s->contents + hash_entry_size);
7075 }
7076
7077 if (info->emit_gnu_hash)
7078 {
7079 size_t i, cnt;
7080 unsigned char *contents;
7081 struct collect_gnu_hash_codes cinfo;
7082 bfd_size_type amt;
7083 size_t bucketcount;
7084
7085 memset (&cinfo, 0, sizeof (cinfo));
7086
7087 /* Compute the hash values for all exported symbols. At the same
7088 time store the values in an array so that we could use them for
7089 optimizations. */
7090 amt = dynsymcount * 2 * sizeof (unsigned long int);
7091 cinfo.hashcodes = (long unsigned int *) bfd_malloc (amt);
7092 if (cinfo.hashcodes == NULL)
7093 return FALSE;
7094
7095 cinfo.hashval = cinfo.hashcodes + dynsymcount;
7096 cinfo.min_dynindx = -1;
7097 cinfo.output_bfd = output_bfd;
7098 cinfo.bed = bed;
7099
7100 /* Put all hash values in HASHCODES. */
7101 elf_link_hash_traverse (elf_hash_table (info),
7102 elf_collect_gnu_hash_codes, &cinfo);
7103 if (cinfo.error)
7104 {
7105 free (cinfo.hashcodes);
7106 return FALSE;
7107 }
7108
7109 bucketcount
7110 = compute_bucket_count (info, cinfo.hashcodes, cinfo.nsyms, 1);
7111
7112 if (bucketcount == 0)
7113 {
7114 free (cinfo.hashcodes);
7115 return FALSE;
7116 }
7117
7118 s = bfd_get_linker_section (dynobj, ".gnu.hash");
7119 BFD_ASSERT (s != NULL);
7120
7121 if (cinfo.nsyms == 0)
7122 {
7123 /* Empty .gnu.hash section is special. */
7124 BFD_ASSERT (cinfo.min_dynindx == -1);
7125 free (cinfo.hashcodes);
7126 s->size = 5 * 4 + bed->s->arch_size / 8;
7127 contents = (unsigned char *) bfd_zalloc (output_bfd, s->size);
7128 if (contents == NULL)
7129 return FALSE;
7130 s->contents = contents;
7131 /* 1 empty bucket. */
7132 bfd_put_32 (output_bfd, 1, contents);
7133 /* SYMIDX above the special symbol 0. */
7134 bfd_put_32 (output_bfd, 1, contents + 4);
7135 /* Just one word for bitmask. */
7136 bfd_put_32 (output_bfd, 1, contents + 8);
7137 /* Only hash fn bloom filter. */
7138 bfd_put_32 (output_bfd, 0, contents + 12);
7139 /* No hashes are valid - empty bitmask. */
7140 bfd_put (bed->s->arch_size, output_bfd, 0, contents + 16);
7141 /* No hashes in the only bucket. */
7142 bfd_put_32 (output_bfd, 0,
7143 contents + 16 + bed->s->arch_size / 8);
7144 }
7145 else
7146 {
7147 unsigned long int maskwords, maskbitslog2, x;
7148 BFD_ASSERT (cinfo.min_dynindx != -1);
7149
7150 x = cinfo.nsyms;
7151 maskbitslog2 = 1;
7152 while ((x >>= 1) != 0)
7153 ++maskbitslog2;
7154 if (maskbitslog2 < 3)
7155 maskbitslog2 = 5;
7156 else if ((1 << (maskbitslog2 - 2)) & cinfo.nsyms)
7157 maskbitslog2 = maskbitslog2 + 3;
7158 else
7159 maskbitslog2 = maskbitslog2 + 2;
7160 if (bed->s->arch_size == 64)
7161 {
7162 if (maskbitslog2 == 5)
7163 maskbitslog2 = 6;
7164 cinfo.shift1 = 6;
7165 }
7166 else
7167 cinfo.shift1 = 5;
7168 cinfo.mask = (1 << cinfo.shift1) - 1;
7169 cinfo.shift2 = maskbitslog2;
7170 cinfo.maskbits = 1 << maskbitslog2;
7171 maskwords = 1 << (maskbitslog2 - cinfo.shift1);
7172 amt = bucketcount * sizeof (unsigned long int) * 2;
7173 amt += maskwords * sizeof (bfd_vma);
7174 cinfo.bitmask = (bfd_vma *) bfd_malloc (amt);
7175 if (cinfo.bitmask == NULL)
7176 {
7177 free (cinfo.hashcodes);
7178 return FALSE;
7179 }
7180
7181 cinfo.counts = (long unsigned int *) (cinfo.bitmask + maskwords);
7182 cinfo.indx = cinfo.counts + bucketcount;
7183 cinfo.symindx = dynsymcount - cinfo.nsyms;
7184 memset (cinfo.bitmask, 0, maskwords * sizeof (bfd_vma));
7185
7186 /* Determine how often each hash bucket is used. */
7187 memset (cinfo.counts, 0, bucketcount * sizeof (cinfo.counts[0]));
7188 for (i = 0; i < cinfo.nsyms; ++i)
7189 ++cinfo.counts[cinfo.hashcodes[i] % bucketcount];
7190
7191 for (i = 0, cnt = cinfo.symindx; i < bucketcount; ++i)
7192 if (cinfo.counts[i] != 0)
7193 {
7194 cinfo.indx[i] = cnt;
7195 cnt += cinfo.counts[i];
7196 }
7197 BFD_ASSERT (cnt == dynsymcount);
7198 cinfo.bucketcount = bucketcount;
7199 cinfo.local_indx = cinfo.min_dynindx;
7200
7201 s->size = (4 + bucketcount + cinfo.nsyms) * 4;
7202 s->size += cinfo.maskbits / 8;
7203 contents = (unsigned char *) bfd_zalloc (output_bfd, s->size);
7204 if (contents == NULL)
7205 {
7206 free (cinfo.bitmask);
7207 free (cinfo.hashcodes);
7208 return FALSE;
7209 }
7210
7211 s->contents = contents;
7212 bfd_put_32 (output_bfd, bucketcount, contents);
7213 bfd_put_32 (output_bfd, cinfo.symindx, contents + 4);
7214 bfd_put_32 (output_bfd, maskwords, contents + 8);
7215 bfd_put_32 (output_bfd, cinfo.shift2, contents + 12);
7216 contents += 16 + cinfo.maskbits / 8;
7217
7218 for (i = 0; i < bucketcount; ++i)
7219 {
7220 if (cinfo.counts[i] == 0)
7221 bfd_put_32 (output_bfd, 0, contents);
7222 else
7223 bfd_put_32 (output_bfd, cinfo.indx[i], contents);
7224 contents += 4;
7225 }
7226
7227 cinfo.contents = contents;
7228
7229 /* Renumber dynamic symbols, populate .gnu.hash section. */
7230 elf_link_hash_traverse (elf_hash_table (info),
7231 elf_renumber_gnu_hash_syms, &cinfo);
7232
7233 contents = s->contents + 16;
7234 for (i = 0; i < maskwords; ++i)
7235 {
7236 bfd_put (bed->s->arch_size, output_bfd, cinfo.bitmask[i],
7237 contents);
7238 contents += bed->s->arch_size / 8;
7239 }
7240
7241 free (cinfo.bitmask);
7242 free (cinfo.hashcodes);
7243 }
7244 }
7245
7246 s = bfd_get_linker_section (dynobj, ".dynstr");
7247 BFD_ASSERT (s != NULL);
7248
7249 elf_finalize_dynstr (output_bfd, info);
7250
7251 s->size = _bfd_elf_strtab_size (elf_hash_table (info)->dynstr);
7252
7253 for (dtagcount = 0; dtagcount <= info->spare_dynamic_tags; ++dtagcount)
7254 if (!_bfd_elf_add_dynamic_entry (info, DT_NULL, 0))
7255 return FALSE;
7256 }
7257
7258 return TRUE;
7259 }
7260
7261 /* Make sure sec_info_type is cleared if sec_info is cleared too. */
7263
7264 static void
7265 merge_sections_remove_hook (bfd *abfd ATTRIBUTE_UNUSED,
7266 asection *sec)
7267 {
7268 BFD_ASSERT (sec->sec_info_type == SEC_INFO_TYPE_MERGE);
7269 sec->sec_info_type = SEC_INFO_TYPE_NONE;
7270 }
7271
7272 /* Finish SHF_MERGE section merging. */
7273
7274 bfd_boolean
7275 _bfd_elf_merge_sections (bfd *obfd, struct bfd_link_info *info)
7276 {
7277 bfd *ibfd;
7278 asection *sec;
7279
7280 if (!is_elf_hash_table (info->hash))
7281 return FALSE;
7282
7283 for (ibfd = info->input_bfds; ibfd != NULL; ibfd = ibfd->link.next)
7284 if ((ibfd->flags & DYNAMIC) == 0
7285 && bfd_get_flavour (ibfd) == bfd_target_elf_flavour
7286 && (elf_elfheader (ibfd)->e_ident[EI_CLASS]
7287 == get_elf_backend_data (obfd)->s->elfclass))
7288 for (sec = ibfd->sections; sec != NULL; sec = sec->next)
7289 if ((sec->flags & SEC_MERGE) != 0
7290 && !bfd_is_abs_section (sec->output_section))
7291 {
7292 struct bfd_elf_section_data *secdata;
7293
7294 secdata = elf_section_data (sec);
7295 if (! _bfd_add_merge_section (obfd,
7296 &elf_hash_table (info)->merge_info,
7297 sec, &secdata->sec_info))
7298 return FALSE;
7299 else if (secdata->sec_info)
7300 sec->sec_info_type = SEC_INFO_TYPE_MERGE;
7301 }
7302
7303 if (elf_hash_table (info)->merge_info != NULL)
7304 _bfd_merge_sections (obfd, info, elf_hash_table (info)->merge_info,
7305 merge_sections_remove_hook);
7306 return TRUE;
7307 }
7308
7309 /* Create an entry in an ELF linker hash table. */
7310
7311 struct bfd_hash_entry *
7312 _bfd_elf_link_hash_newfunc (struct bfd_hash_entry *entry,
7313 struct bfd_hash_table *table,
7314 const char *string)
7315 {
7316 /* Allocate the structure if it has not already been allocated by a
7317 subclass. */
7318 if (entry == NULL)
7319 {
7320 entry = (struct bfd_hash_entry *)
7321 bfd_hash_allocate (table, sizeof (struct elf_link_hash_entry));
7322 if (entry == NULL)
7323 return entry;
7324 }
7325
7326 /* Call the allocation method of the superclass. */
7327 entry = _bfd_link_hash_newfunc (entry, table, string);
7328 if (entry != NULL)
7329 {
7330 struct elf_link_hash_entry *ret = (struct elf_link_hash_entry *) entry;
7331 struct elf_link_hash_table *htab = (struct elf_link_hash_table *) table;
7332
7333 /* Set local fields. */
7334 ret->indx = -1;
7335 ret->dynindx = -1;
7336 ret->got = htab->init_got_refcount;
7337 ret->plt = htab->init_plt_refcount;
7338 memset (&ret->size, 0, (sizeof (struct elf_link_hash_entry)
7339 - offsetof (struct elf_link_hash_entry, size)));
7340 /* Assume that we have been called by a non-ELF symbol reader.
7341 This flag is then reset by the code which reads an ELF input
7342 file. This ensures that a symbol created by a non-ELF symbol
7343 reader will have the flag set correctly. */
7344 ret->non_elf = 1;
7345 }
7346
7347 return entry;
7348 }
7349
7350 /* Copy data from an indirect symbol to its direct symbol, hiding the
7351 old indirect symbol. Also used for copying flags to a weakdef. */
7352
7353 void
7354 _bfd_elf_link_hash_copy_indirect (struct bfd_link_info *info,
7355 struct elf_link_hash_entry *dir,
7356 struct elf_link_hash_entry *ind)
7357 {
7358 struct elf_link_hash_table *htab;
7359
7360 /* Copy down any references that we may have already seen to the
7361 symbol which just became indirect. */
7362
7363 if (dir->versioned != versioned_hidden)
7364 dir->ref_dynamic |= ind->ref_dynamic;
7365 dir->ref_regular |= ind->ref_regular;
7366 dir->ref_regular_nonweak |= ind->ref_regular_nonweak;
7367 dir->non_got_ref |= ind->non_got_ref;
7368 dir->needs_plt |= ind->needs_plt;
7369 dir->pointer_equality_needed |= ind->pointer_equality_needed;
7370
7371 if (ind->root.type != bfd_link_hash_indirect)
7372 return;
7373
7374 /* Copy over the global and procedure linkage table refcount entries.
7375 These may have been already set up by a check_relocs routine. */
7376 htab = elf_hash_table (info);
7377 if (ind->got.refcount > htab->init_got_refcount.refcount)
7378 {
7379 if (dir->got.refcount < 0)
7380 dir->got.refcount = 0;
7381 dir->got.refcount += ind->got.refcount;
7382 ind->got.refcount = htab->init_got_refcount.refcount;
7383 }
7384
7385 if (ind->plt.refcount > htab->init_plt_refcount.refcount)
7386 {
7387 if (dir->plt.refcount < 0)
7388 dir->plt.refcount = 0;
7389 dir->plt.refcount += ind->plt.refcount;
7390 ind->plt.refcount = htab->init_plt_refcount.refcount;
7391 }
7392
7393 if (ind->dynindx != -1)
7394 {
7395 if (dir->dynindx != -1)
7396 _bfd_elf_strtab_delref (htab->dynstr, dir->dynstr_index);
7397 dir->dynindx = ind->dynindx;
7398 dir->dynstr_index = ind->dynstr_index;
7399 ind->dynindx = -1;
7400 ind->dynstr_index = 0;
7401 }
7402 }
7403
7404 void
7405 _bfd_elf_link_hash_hide_symbol (struct bfd_link_info *info,
7406 struct elf_link_hash_entry *h,
7407 bfd_boolean force_local)
7408 {
7409 /* STT_GNU_IFUNC symbol must go through PLT. */
7410 if (h->type != STT_GNU_IFUNC)
7411 {
7412 h->plt = elf_hash_table (info)->init_plt_offset;
7413 h->needs_plt = 0;
7414 }
7415 if (force_local)
7416 {
7417 h->forced_local = 1;
7418 if (h->dynindx != -1)
7419 {
7420 _bfd_elf_strtab_delref (elf_hash_table (info)->dynstr,
7421 h->dynstr_index);
7422 h->dynindx = -1;
7423 h->dynstr_index = 0;
7424 }
7425 }
7426 }
7427
7428 /* Initialize an ELF linker hash table. *TABLE has been zeroed by our
7429 caller. */
7430
7431 bfd_boolean
7432 _bfd_elf_link_hash_table_init
7433 (struct elf_link_hash_table *table,
7434 bfd *abfd,
7435 struct bfd_hash_entry *(*newfunc) (struct bfd_hash_entry *,
7436 struct bfd_hash_table *,
7437 const char *),
7438 unsigned int entsize,
7439 enum elf_target_id target_id)
7440 {
7441 bfd_boolean ret;
7442 int can_refcount = get_elf_backend_data (abfd)->can_refcount;
7443
7444 table->init_got_refcount.refcount = can_refcount - 1;
7445 table->init_plt_refcount.refcount = can_refcount - 1;
7446 table->init_got_offset.offset = -(bfd_vma) 1;
7447 table->init_plt_offset.offset = -(bfd_vma) 1;
7448 /* The first dynamic symbol is a dummy. */
7449 table->dynsymcount = 1;
7450
7451 ret = _bfd_link_hash_table_init (&table->root, abfd, newfunc, entsize);
7452
7453 table->root.type = bfd_link_elf_hash_table;
7454 table->hash_table_id = target_id;
7455
7456 return ret;
7457 }
7458
7459 /* Create an ELF linker hash table. */
7460
7461 struct bfd_link_hash_table *
7462 _bfd_elf_link_hash_table_create (bfd *abfd)
7463 {
7464 struct elf_link_hash_table *ret;
7465 bfd_size_type amt = sizeof (struct elf_link_hash_table);
7466
7467 ret = (struct elf_link_hash_table *) bfd_zmalloc (amt);
7468 if (ret == NULL)
7469 return NULL;
7470
7471 if (! _bfd_elf_link_hash_table_init (ret, abfd, _bfd_elf_link_hash_newfunc,
7472 sizeof (struct elf_link_hash_entry),
7473 GENERIC_ELF_DATA))
7474 {
7475 free (ret);
7476 return NULL;
7477 }
7478 ret->root.hash_table_free = _bfd_elf_link_hash_table_free;
7479
7480 return &ret->root;
7481 }
7482
7483 /* Destroy an ELF linker hash table. */
7484
7485 void
7486 _bfd_elf_link_hash_table_free (bfd *obfd)
7487 {
7488 struct elf_link_hash_table *htab;
7489
7490 htab = (struct elf_link_hash_table *) obfd->link.hash;
7491 if (htab->dynstr != NULL)
7492 _bfd_elf_strtab_free (htab->dynstr);
7493 _bfd_merge_sections_free (htab->merge_info);
7494 _bfd_generic_link_hash_table_free (obfd);
7495 }
7496
7497 /* This is a hook for the ELF emulation code in the generic linker to
7498 tell the backend linker what file name to use for the DT_NEEDED
7499 entry for a dynamic object. */
7500
7501 void
7502 bfd_elf_set_dt_needed_name (bfd *abfd, const char *name)
7503 {
7504 if (bfd_get_flavour (abfd) == bfd_target_elf_flavour
7505 && bfd_get_format (abfd) == bfd_object)
7506 elf_dt_name (abfd) = name;
7507 }
7508
7509 int
7510 bfd_elf_get_dyn_lib_class (bfd *abfd)
7511 {
7512 int lib_class;
7513 if (bfd_get_flavour (abfd) == bfd_target_elf_flavour
7514 && bfd_get_format (abfd) == bfd_object)
7515 lib_class = elf_dyn_lib_class (abfd);
7516 else
7517 lib_class = 0;
7518 return lib_class;
7519 }
7520
7521 void
7522 bfd_elf_set_dyn_lib_class (bfd *abfd, enum dynamic_lib_link_class lib_class)
7523 {
7524 if (bfd_get_flavour (abfd) == bfd_target_elf_flavour
7525 && bfd_get_format (abfd) == bfd_object)
7526 elf_dyn_lib_class (abfd) = lib_class;
7527 }
7528
7529 /* Get the list of DT_NEEDED entries for a link. This is a hook for
7530 the linker ELF emulation code. */
7531
7532 struct bfd_link_needed_list *
7533 bfd_elf_get_needed_list (bfd *abfd ATTRIBUTE_UNUSED,
7534 struct bfd_link_info *info)
7535 {
7536 if (! is_elf_hash_table (info->hash))
7537 return NULL;
7538 return elf_hash_table (info)->needed;
7539 }
7540
7541 /* Get the list of DT_RPATH/DT_RUNPATH entries for a link. This is a
7542 hook for the linker ELF emulation code. */
7543
7544 struct bfd_link_needed_list *
7545 bfd_elf_get_runpath_list (bfd *abfd ATTRIBUTE_UNUSED,
7546 struct bfd_link_info *info)
7547 {
7548 if (! is_elf_hash_table (info->hash))
7549 return NULL;
7550 return elf_hash_table (info)->runpath;
7551 }
7552
7553 /* Get the name actually used for a dynamic object for a link. This
7554 is the SONAME entry if there is one. Otherwise, it is the string
7555 passed to bfd_elf_set_dt_needed_name, or it is the filename. */
7556
7557 const char *
7558 bfd_elf_get_dt_soname (bfd *abfd)
7559 {
7560 if (bfd_get_flavour (abfd) == bfd_target_elf_flavour
7561 && bfd_get_format (abfd) == bfd_object)
7562 return elf_dt_name (abfd);
7563 return NULL;
7564 }
7565
7566 /* Get the list of DT_NEEDED entries from a BFD. This is a hook for
7567 the ELF linker emulation code. */
7568
7569 bfd_boolean
7570 bfd_elf_get_bfd_needed_list (bfd *abfd,
7571 struct bfd_link_needed_list **pneeded)
7572 {
7573 asection *s;
7574 bfd_byte *dynbuf = NULL;
7575 unsigned int elfsec;
7576 unsigned long shlink;
7577 bfd_byte *extdyn, *extdynend;
7578 size_t extdynsize;
7579 void (*swap_dyn_in) (bfd *, const void *, Elf_Internal_Dyn *);
7580
7581 *pneeded = NULL;
7582
7583 if (bfd_get_flavour (abfd) != bfd_target_elf_flavour
7584 || bfd_get_format (abfd) != bfd_object)
7585 return TRUE;
7586
7587 s = bfd_get_section_by_name (abfd, ".dynamic");
7588 if (s == NULL || s->size == 0)
7589 return TRUE;
7590
7591 if (!bfd_malloc_and_get_section (abfd, s, &dynbuf))
7592 goto error_return;
7593
7594 elfsec = _bfd_elf_section_from_bfd_section (abfd, s);
7595 if (elfsec == SHN_BAD)
7596 goto error_return;
7597
7598 shlink = elf_elfsections (abfd)[elfsec]->sh_link;
7599
7600 extdynsize = get_elf_backend_data (abfd)->s->sizeof_dyn;
7601 swap_dyn_in = get_elf_backend_data (abfd)->s->swap_dyn_in;
7602
7603 extdyn = dynbuf;
7604 extdynend = extdyn + s->size;
7605 for (; extdyn < extdynend; extdyn += extdynsize)
7606 {
7607 Elf_Internal_Dyn dyn;
7608
7609 (*swap_dyn_in) (abfd, extdyn, &dyn);
7610
7611 if (dyn.d_tag == DT_NULL)
7612 break;
7613
7614 if (dyn.d_tag == DT_NEEDED)
7615 {
7616 const char *string;
7617 struct bfd_link_needed_list *l;
7618 unsigned int tagv = dyn.d_un.d_val;
7619 bfd_size_type amt;
7620
7621 string = bfd_elf_string_from_elf_section (abfd, shlink, tagv);
7622 if (string == NULL)
7623 goto error_return;
7624
7625 amt = sizeof *l;
7626 l = (struct bfd_link_needed_list *) bfd_alloc (abfd, amt);
7627 if (l == NULL)
7628 goto error_return;
7629
7630 l->by = abfd;
7631 l->name = string;
7632 l->next = *pneeded;
7633 *pneeded = l;
7634 }
7635 }
7636
7637 free (dynbuf);
7638
7639 return TRUE;
7640
7641 error_return:
7642 if (dynbuf != NULL)
7643 free (dynbuf);
7644 return FALSE;
7645 }
7646
7647 struct elf_symbuf_symbol
7648 {
7649 unsigned long st_name; /* Symbol name, index in string tbl */
7650 unsigned char st_info; /* Type and binding attributes */
7651 unsigned char st_other; /* Visibilty, and target specific */
7652 };
7653
7654 struct elf_symbuf_head
7655 {
7656 struct elf_symbuf_symbol *ssym;
7657 size_t count;
7658 unsigned int st_shndx;
7659 };
7660
7661 struct elf_symbol
7662 {
7663 union
7664 {
7665 Elf_Internal_Sym *isym;
7666 struct elf_symbuf_symbol *ssym;
7667 } u;
7668 const char *name;
7669 };
7670
7671 /* Sort references to symbols by ascending section number. */
7672
7673 static int
7674 elf_sort_elf_symbol (const void *arg1, const void *arg2)
7675 {
7676 const Elf_Internal_Sym *s1 = *(const Elf_Internal_Sym **) arg1;
7677 const Elf_Internal_Sym *s2 = *(const Elf_Internal_Sym **) arg2;
7678
7679 return s1->st_shndx - s2->st_shndx;
7680 }
7681
7682 static int
7683 elf_sym_name_compare (const void *arg1, const void *arg2)
7684 {
7685 const struct elf_symbol *s1 = (const struct elf_symbol *) arg1;
7686 const struct elf_symbol *s2 = (const struct elf_symbol *) arg2;
7687 return strcmp (s1->name, s2->name);
7688 }
7689
7690 static struct elf_symbuf_head *
7691 elf_create_symbuf (size_t symcount, Elf_Internal_Sym *isymbuf)
7692 {
7693 Elf_Internal_Sym **ind, **indbufend, **indbuf;
7694 struct elf_symbuf_symbol *ssym;
7695 struct elf_symbuf_head *ssymbuf, *ssymhead;
7696 size_t i, shndx_count, total_size;
7697
7698 indbuf = (Elf_Internal_Sym **) bfd_malloc2 (symcount, sizeof (*indbuf));
7699 if (indbuf == NULL)
7700 return NULL;
7701
7702 for (ind = indbuf, i = 0; i < symcount; i++)
7703 if (isymbuf[i].st_shndx != SHN_UNDEF)
7704 *ind++ = &isymbuf[i];
7705 indbufend = ind;
7706
7707 qsort (indbuf, indbufend - indbuf, sizeof (Elf_Internal_Sym *),
7708 elf_sort_elf_symbol);
7709
7710 shndx_count = 0;
7711 if (indbufend > indbuf)
7712 for (ind = indbuf, shndx_count++; ind < indbufend - 1; ind++)
7713 if (ind[0]->st_shndx != ind[1]->st_shndx)
7714 shndx_count++;
7715
7716 total_size = ((shndx_count + 1) * sizeof (*ssymbuf)
7717 + (indbufend - indbuf) * sizeof (*ssym));
7718 ssymbuf = (struct elf_symbuf_head *) bfd_malloc (total_size);
7719 if (ssymbuf == NULL)
7720 {
7721 free (indbuf);
7722 return NULL;
7723 }
7724
7725 ssym = (struct elf_symbuf_symbol *) (ssymbuf + shndx_count + 1);
7726 ssymbuf->ssym = NULL;
7727 ssymbuf->count = shndx_count;
7728 ssymbuf->st_shndx = 0;
7729 for (ssymhead = ssymbuf, ind = indbuf; ind < indbufend; ssym++, ind++)
7730 {
7731 if (ind == indbuf || ssymhead->st_shndx != (*ind)->st_shndx)
7732 {
7733 ssymhead++;
7734 ssymhead->ssym = ssym;
7735 ssymhead->count = 0;
7736 ssymhead->st_shndx = (*ind)->st_shndx;
7737 }
7738 ssym->st_name = (*ind)->st_name;
7739 ssym->st_info = (*ind)->st_info;
7740 ssym->st_other = (*ind)->st_other;
7741 ssymhead->count++;
7742 }
7743 BFD_ASSERT ((size_t) (ssymhead - ssymbuf) == shndx_count
7744 && (((bfd_hostptr_t) ssym - (bfd_hostptr_t) ssymbuf)
7745 == total_size));
7746
7747 free (indbuf);
7748 return ssymbuf;
7749 }
7750
7751 /* Check if 2 sections define the same set of local and global
7752 symbols. */
7753
7754 static bfd_boolean
7755 bfd_elf_match_symbols_in_sections (asection *sec1, asection *sec2,
7756 struct bfd_link_info *info)
7757 {
7758 bfd *bfd1, *bfd2;
7759 const struct elf_backend_data *bed1, *bed2;
7760 Elf_Internal_Shdr *hdr1, *hdr2;
7761 size_t symcount1, symcount2;
7762 Elf_Internal_Sym *isymbuf1, *isymbuf2;
7763 struct elf_symbuf_head *ssymbuf1, *ssymbuf2;
7764 Elf_Internal_Sym *isym, *isymend;
7765 struct elf_symbol *symtable1 = NULL, *symtable2 = NULL;
7766 size_t count1, count2, i;
7767 unsigned int shndx1, shndx2;
7768 bfd_boolean result;
7769
7770 bfd1 = sec1->owner;
7771 bfd2 = sec2->owner;
7772
7773 /* Both sections have to be in ELF. */
7774 if (bfd_get_flavour (bfd1) != bfd_target_elf_flavour
7775 || bfd_get_flavour (bfd2) != bfd_target_elf_flavour)
7776 return FALSE;
7777
7778 if (elf_section_type (sec1) != elf_section_type (sec2))
7779 return FALSE;
7780
7781 shndx1 = _bfd_elf_section_from_bfd_section (bfd1, sec1);
7782 shndx2 = _bfd_elf_section_from_bfd_section (bfd2, sec2);
7783 if (shndx1 == SHN_BAD || shndx2 == SHN_BAD)
7784 return FALSE;
7785
7786 bed1 = get_elf_backend_data (bfd1);
7787 bed2 = get_elf_backend_data (bfd2);
7788 hdr1 = &elf_tdata (bfd1)->symtab_hdr;
7789 symcount1 = hdr1->sh_size / bed1->s->sizeof_sym;
7790 hdr2 = &elf_tdata (bfd2)->symtab_hdr;
7791 symcount2 = hdr2->sh_size / bed2->s->sizeof_sym;
7792
7793 if (symcount1 == 0 || symcount2 == 0)
7794 return FALSE;
7795
7796 result = FALSE;
7797 isymbuf1 = NULL;
7798 isymbuf2 = NULL;
7799 ssymbuf1 = (struct elf_symbuf_head *) elf_tdata (bfd1)->symbuf;
7800 ssymbuf2 = (struct elf_symbuf_head *) elf_tdata (bfd2)->symbuf;
7801
7802 if (ssymbuf1 == NULL)
7803 {
7804 isymbuf1 = bfd_elf_get_elf_syms (bfd1, hdr1, symcount1, 0,
7805 NULL, NULL, NULL);
7806 if (isymbuf1 == NULL)
7807 goto done;
7808
7809 if (!info->reduce_memory_overheads)
7810 elf_tdata (bfd1)->symbuf = ssymbuf1
7811 = elf_create_symbuf (symcount1, isymbuf1);
7812 }
7813
7814 if (ssymbuf1 == NULL || ssymbuf2 == NULL)
7815 {
7816 isymbuf2 = bfd_elf_get_elf_syms (bfd2, hdr2, symcount2, 0,
7817 NULL, NULL, NULL);
7818 if (isymbuf2 == NULL)
7819 goto done;
7820
7821 if (ssymbuf1 != NULL && !info->reduce_memory_overheads)
7822 elf_tdata (bfd2)->symbuf = ssymbuf2
7823 = elf_create_symbuf (symcount2, isymbuf2);
7824 }
7825
7826 if (ssymbuf1 != NULL && ssymbuf2 != NULL)
7827 {
7828 /* Optimized faster version. */
7829 size_t lo, hi, mid;
7830 struct elf_symbol *symp;
7831 struct elf_symbuf_symbol *ssym, *ssymend;
7832
7833 lo = 0;
7834 hi = ssymbuf1->count;
7835 ssymbuf1++;
7836 count1 = 0;
7837 while (lo < hi)
7838 {
7839 mid = (lo + hi) / 2;
7840 if (shndx1 < ssymbuf1[mid].st_shndx)
7841 hi = mid;
7842 else if (shndx1 > ssymbuf1[mid].st_shndx)
7843 lo = mid + 1;
7844 else
7845 {
7846 count1 = ssymbuf1[mid].count;
7847 ssymbuf1 += mid;
7848 break;
7849 }
7850 }
7851
7852 lo = 0;
7853 hi = ssymbuf2->count;
7854 ssymbuf2++;
7855 count2 = 0;
7856 while (lo < hi)
7857 {
7858 mid = (lo + hi) / 2;
7859 if (shndx2 < ssymbuf2[mid].st_shndx)
7860 hi = mid;
7861 else if (shndx2 > ssymbuf2[mid].st_shndx)
7862 lo = mid + 1;
7863 else
7864 {
7865 count2 = ssymbuf2[mid].count;
7866 ssymbuf2 += mid;
7867 break;
7868 }
7869 }
7870
7871 if (count1 == 0 || count2 == 0 || count1 != count2)
7872 goto done;
7873
7874 symtable1
7875 = (struct elf_symbol *) bfd_malloc (count1 * sizeof (*symtable1));
7876 symtable2
7877 = (struct elf_symbol *) bfd_malloc (count2 * sizeof (*symtable2));
7878 if (symtable1 == NULL || symtable2 == NULL)
7879 goto done;
7880
7881 symp = symtable1;
7882 for (ssym = ssymbuf1->ssym, ssymend = ssym + count1;
7883 ssym < ssymend; ssym++, symp++)
7884 {
7885 symp->u.ssym = ssym;
7886 symp->name = bfd_elf_string_from_elf_section (bfd1,
7887 hdr1->sh_link,
7888 ssym->st_name);
7889 }
7890
7891 symp = symtable2;
7892 for (ssym = ssymbuf2->ssym, ssymend = ssym + count2;
7893 ssym < ssymend; ssym++, symp++)
7894 {
7895 symp->u.ssym = ssym;
7896 symp->name = bfd_elf_string_from_elf_section (bfd2,
7897 hdr2->sh_link,
7898 ssym->st_name);
7899 }
7900
7901 /* Sort symbol by name. */
7902 qsort (symtable1, count1, sizeof (struct elf_symbol),
7903 elf_sym_name_compare);
7904 qsort (symtable2, count1, sizeof (struct elf_symbol),
7905 elf_sym_name_compare);
7906
7907 for (i = 0; i < count1; i++)
7908 /* Two symbols must have the same binding, type and name. */
7909 if (symtable1 [i].u.ssym->st_info != symtable2 [i].u.ssym->st_info
7910 || symtable1 [i].u.ssym->st_other != symtable2 [i].u.ssym->st_other
7911 || strcmp (symtable1 [i].name, symtable2 [i].name) != 0)
7912 goto done;
7913
7914 result = TRUE;
7915 goto done;
7916 }
7917
7918 symtable1 = (struct elf_symbol *)
7919 bfd_malloc (symcount1 * sizeof (struct elf_symbol));
7920 symtable2 = (struct elf_symbol *)
7921 bfd_malloc (symcount2 * sizeof (struct elf_symbol));
7922 if (symtable1 == NULL || symtable2 == NULL)
7923 goto done;
7924
7925 /* Count definitions in the section. */
7926 count1 = 0;
7927 for (isym = isymbuf1, isymend = isym + symcount1; isym < isymend; isym++)
7928 if (isym->st_shndx == shndx1)
7929 symtable1[count1++].u.isym = isym;
7930
7931 count2 = 0;
7932 for (isym = isymbuf2, isymend = isym + symcount2; isym < isymend; isym++)
7933 if (isym->st_shndx == shndx2)
7934 symtable2[count2++].u.isym = isym;
7935
7936 if (count1 == 0 || count2 == 0 || count1 != count2)
7937 goto done;
7938
7939 for (i = 0; i < count1; i++)
7940 symtable1[i].name
7941 = bfd_elf_string_from_elf_section (bfd1, hdr1->sh_link,
7942 symtable1[i].u.isym->st_name);
7943
7944 for (i = 0; i < count2; i++)
7945 symtable2[i].name
7946 = bfd_elf_string_from_elf_section (bfd2, hdr2->sh_link,
7947 symtable2[i].u.isym->st_name);
7948
7949 /* Sort symbol by name. */
7950 qsort (symtable1, count1, sizeof (struct elf_symbol),
7951 elf_sym_name_compare);
7952 qsort (symtable2, count1, sizeof (struct elf_symbol),
7953 elf_sym_name_compare);
7954
7955 for (i = 0; i < count1; i++)
7956 /* Two symbols must have the same binding, type and name. */
7957 if (symtable1 [i].u.isym->st_info != symtable2 [i].u.isym->st_info
7958 || symtable1 [i].u.isym->st_other != symtable2 [i].u.isym->st_other
7959 || strcmp (symtable1 [i].name, symtable2 [i].name) != 0)
7960 goto done;
7961
7962 result = TRUE;
7963
7964 done:
7965 if (symtable1)
7966 free (symtable1);
7967 if (symtable2)
7968 free (symtable2);
7969 if (isymbuf1)
7970 free (isymbuf1);
7971 if (isymbuf2)
7972 free (isymbuf2);
7973
7974 return result;
7975 }
7976
7977 /* Return TRUE if 2 section types are compatible. */
7978
7979 bfd_boolean
7980 _bfd_elf_match_sections_by_type (bfd *abfd, const asection *asec,
7981 bfd *bbfd, const asection *bsec)
7982 {
7983 if (asec == NULL
7984 || bsec == NULL
7985 || abfd->xvec->flavour != bfd_target_elf_flavour
7986 || bbfd->xvec->flavour != bfd_target_elf_flavour)
7987 return TRUE;
7988
7989 return elf_section_type (asec) == elf_section_type (bsec);
7990 }
7991
7992 /* Final phase of ELF linker. */
7994
7995 /* A structure we use to avoid passing large numbers of arguments. */
7996
7997 struct elf_final_link_info
7998 {
7999 /* General link information. */
8000 struct bfd_link_info *info;
8001 /* Output BFD. */
8002 bfd *output_bfd;
8003 /* Symbol string table. */
8004 struct elf_strtab_hash *symstrtab;
8005 /* .hash section. */
8006 asection *hash_sec;
8007 /* symbol version section (.gnu.version). */
8008 asection *symver_sec;
8009 /* Buffer large enough to hold contents of any section. */
8010 bfd_byte *contents;
8011 /* Buffer large enough to hold external relocs of any section. */
8012 void *external_relocs;
8013 /* Buffer large enough to hold internal relocs of any section. */
8014 Elf_Internal_Rela *internal_relocs;
8015 /* Buffer large enough to hold external local symbols of any input
8016 BFD. */
8017 bfd_byte *external_syms;
8018 /* And a buffer for symbol section indices. */
8019 Elf_External_Sym_Shndx *locsym_shndx;
8020 /* Buffer large enough to hold internal local symbols of any input
8021 BFD. */
8022 Elf_Internal_Sym *internal_syms;
8023 /* Array large enough to hold a symbol index for each local symbol
8024 of any input BFD. */
8025 long *indices;
8026 /* Array large enough to hold a section pointer for each local
8027 symbol of any input BFD. */
8028 asection **sections;
8029 /* Buffer for SHT_SYMTAB_SHNDX section. */
8030 Elf_External_Sym_Shndx *symshndxbuf;
8031 /* Number of STT_FILE syms seen. */
8032 size_t filesym_count;
8033 };
8034
8035 /* This struct is used to pass information to elf_link_output_extsym. */
8036
8037 struct elf_outext_info
8038 {
8039 bfd_boolean failed;
8040 bfd_boolean localsyms;
8041 bfd_boolean file_sym_done;
8042 struct elf_final_link_info *flinfo;
8043 };
8044
8045
8046 /* Support for evaluating a complex relocation.
8047
8048 Complex relocations are generalized, self-describing relocations. The
8049 implementation of them consists of two parts: complex symbols, and the
8050 relocations themselves.
8051
8052 The relocations are use a reserved elf-wide relocation type code (R_RELC
8053 external / BFD_RELOC_RELC internal) and an encoding of relocation field
8054 information (start bit, end bit, word width, etc) into the addend. This
8055 information is extracted from CGEN-generated operand tables within gas.
8056
8057 Complex symbols are mangled symbols (BSF_RELC external / STT_RELC
8058 internal) representing prefix-notation expressions, including but not
8059 limited to those sorts of expressions normally encoded as addends in the
8060 addend field. The symbol mangling format is:
8061
8062 <node> := <literal>
8063 | <unary-operator> ':' <node>
8064 | <binary-operator> ':' <node> ':' <node>
8065 ;
8066
8067 <literal> := 's' <digits=N> ':' <N character symbol name>
8068 | 'S' <digits=N> ':' <N character section name>
8069 | '#' <hexdigits>
8070 ;
8071
8072 <binary-operator> := as in C
8073 <unary-operator> := as in C, plus "0-" for unambiguous negation. */
8074
8075 static void
8076 set_symbol_value (bfd *bfd_with_globals,
8077 Elf_Internal_Sym *isymbuf,
8078 size_t locsymcount,
8079 size_t symidx,
8080 bfd_vma val)
8081 {
8082 struct elf_link_hash_entry **sym_hashes;
8083 struct elf_link_hash_entry *h;
8084 size_t extsymoff = locsymcount;
8085
8086 if (symidx < locsymcount)
8087 {
8088 Elf_Internal_Sym *sym;
8089
8090 sym = isymbuf + symidx;
8091 if (ELF_ST_BIND (sym->st_info) == STB_LOCAL)
8092 {
8093 /* It is a local symbol: move it to the
8094 "absolute" section and give it a value. */
8095 sym->st_shndx = SHN_ABS;
8096 sym->st_value = val;
8097 return;
8098 }
8099 BFD_ASSERT (elf_bad_symtab (bfd_with_globals));
8100 extsymoff = 0;
8101 }
8102
8103 /* It is a global symbol: set its link type
8104 to "defined" and give it a value. */
8105
8106 sym_hashes = elf_sym_hashes (bfd_with_globals);
8107 h = sym_hashes [symidx - extsymoff];
8108 while (h->root.type == bfd_link_hash_indirect
8109 || h->root.type == bfd_link_hash_warning)
8110 h = (struct elf_link_hash_entry *) h->root.u.i.link;
8111 h->root.type = bfd_link_hash_defined;
8112 h->root.u.def.value = val;
8113 h->root.u.def.section = bfd_abs_section_ptr;
8114 }
8115
8116 static bfd_boolean
8117 resolve_symbol (const char *name,
8118 bfd *input_bfd,
8119 struct elf_final_link_info *flinfo,
8120 bfd_vma *result,
8121 Elf_Internal_Sym *isymbuf,
8122 size_t locsymcount)
8123 {
8124 Elf_Internal_Sym *sym;
8125 struct bfd_link_hash_entry *global_entry;
8126 const char *candidate = NULL;
8127 Elf_Internal_Shdr *symtab_hdr;
8128 size_t i;
8129
8130 symtab_hdr = & elf_tdata (input_bfd)->symtab_hdr;
8131
8132 for (i = 0; i < locsymcount; ++ i)
8133 {
8134 sym = isymbuf + i;
8135
8136 if (ELF_ST_BIND (sym->st_info) != STB_LOCAL)
8137 continue;
8138
8139 candidate = bfd_elf_string_from_elf_section (input_bfd,
8140 symtab_hdr->sh_link,
8141 sym->st_name);
8142 #ifdef DEBUG
8143 printf ("Comparing string: '%s' vs. '%s' = 0x%lx\n",
8144 name, candidate, (unsigned long) sym->st_value);
8145 #endif
8146 if (candidate && strcmp (candidate, name) == 0)
8147 {
8148 asection *sec = flinfo->sections [i];
8149
8150 *result = _bfd_elf_rel_local_sym (input_bfd, sym, &sec, 0);
8151 *result += sec->output_offset + sec->output_section->vma;
8152 #ifdef DEBUG
8153 printf ("Found symbol with value %8.8lx\n",
8154 (unsigned long) *result);
8155 #endif
8156 return TRUE;
8157 }
8158 }
8159
8160 /* Hmm, haven't found it yet. perhaps it is a global. */
8161 global_entry = bfd_link_hash_lookup (flinfo->info->hash, name,
8162 FALSE, FALSE, TRUE);
8163 if (!global_entry)
8164 return FALSE;
8165
8166 if (global_entry->type == bfd_link_hash_defined
8167 || global_entry->type == bfd_link_hash_defweak)
8168 {
8169 *result = (global_entry->u.def.value
8170 + global_entry->u.def.section->output_section->vma
8171 + global_entry->u.def.section->output_offset);
8172 #ifdef DEBUG
8173 printf ("Found GLOBAL symbol '%s' with value %8.8lx\n",
8174 global_entry->root.string, (unsigned long) *result);
8175 #endif
8176 return TRUE;
8177 }
8178
8179 return FALSE;
8180 }
8181
8182 /* Looks up NAME in SECTIONS. If found sets RESULT to NAME's address (in
8183 bytes) and returns TRUE, otherwise returns FALSE. Accepts pseudo-section
8184 names like "foo.end" which is the end address of section "foo". */
8185
8186 static bfd_boolean
8187 resolve_section (const char *name,
8188 asection *sections,
8189 bfd_vma *result,
8190 bfd * abfd)
8191 {
8192 asection *curr;
8193 unsigned int len;
8194
8195 for (curr = sections; curr; curr = curr->next)
8196 if (strcmp (curr->name, name) == 0)
8197 {
8198 *result = curr->vma;
8199 return TRUE;
8200 }
8201
8202 /* Hmm. still haven't found it. try pseudo-section names. */
8203 /* FIXME: This could be coded more efficiently... */
8204 for (curr = sections; curr; curr = curr->next)
8205 {
8206 len = strlen (curr->name);
8207 if (len > strlen (name))
8208 continue;
8209
8210 if (strncmp (curr->name, name, len) == 0)
8211 {
8212 if (strncmp (".end", name + len, 4) == 0)
8213 {
8214 *result = curr->vma + curr->size / bfd_octets_per_byte (abfd);
8215 return TRUE;
8216 }
8217
8218 /* Insert more pseudo-section names here, if you like. */
8219 }
8220 }
8221
8222 return FALSE;
8223 }
8224
8225 static void
8226 undefined_reference (const char *reftype, const char *name)
8227 {
8228 /* xgettext:c-format */
8229 _bfd_error_handler (_("undefined %s reference in complex symbol: %s"),
8230 reftype, name);
8231 }
8232
8233 static bfd_boolean
8234 eval_symbol (bfd_vma *result,
8235 const char **symp,
8236 bfd *input_bfd,
8237 struct elf_final_link_info *flinfo,
8238 bfd_vma dot,
8239 Elf_Internal_Sym *isymbuf,
8240 size_t locsymcount,
8241 int signed_p)
8242 {
8243 size_t len;
8244 size_t symlen;
8245 bfd_vma a;
8246 bfd_vma b;
8247 char symbuf[4096];
8248 const char *sym = *symp;
8249 const char *symend;
8250 bfd_boolean symbol_is_section = FALSE;
8251
8252 len = strlen (sym);
8253 symend = sym + len;
8254
8255 if (len < 1 || len > sizeof (symbuf))
8256 {
8257 bfd_set_error (bfd_error_invalid_operation);
8258 return FALSE;
8259 }
8260
8261 switch (* sym)
8262 {
8263 case '.':
8264 *result = dot;
8265 *symp = sym + 1;
8266 return TRUE;
8267
8268 case '#':
8269 ++sym;
8270 *result = strtoul (sym, (char **) symp, 16);
8271 return TRUE;
8272
8273 case 'S':
8274 symbol_is_section = TRUE;
8275 /* Fall through. */
8276 case 's':
8277 ++sym;
8278 symlen = strtol (sym, (char **) symp, 10);
8279 sym = *symp + 1; /* Skip the trailing ':'. */
8280
8281 if (symend < sym || symlen + 1 > sizeof (symbuf))
8282 {
8283 bfd_set_error (bfd_error_invalid_operation);
8284 return FALSE;
8285 }
8286
8287 memcpy (symbuf, sym, symlen);
8288 symbuf[symlen] = '\0';
8289 *symp = sym + symlen;
8290
8291 /* Is it always possible, with complex symbols, that gas "mis-guessed"
8292 the symbol as a section, or vice-versa. so we're pretty liberal in our
8293 interpretation here; section means "try section first", not "must be a
8294 section", and likewise with symbol. */
8295
8296 if (symbol_is_section)
8297 {
8298 if (!resolve_section (symbuf, flinfo->output_bfd->sections, result, input_bfd)
8299 && !resolve_symbol (symbuf, input_bfd, flinfo, result,
8300 isymbuf, locsymcount))
8301 {
8302 undefined_reference ("section", symbuf);
8303 return FALSE;
8304 }
8305 }
8306 else
8307 {
8308 if (!resolve_symbol (symbuf, input_bfd, flinfo, result,
8309 isymbuf, locsymcount)
8310 && !resolve_section (symbuf, flinfo->output_bfd->sections,
8311 result, input_bfd))
8312 {
8313 undefined_reference ("symbol", symbuf);
8314 return FALSE;
8315 }
8316 }
8317
8318 return TRUE;
8319
8320 /* All that remains are operators. */
8321
8322 #define UNARY_OP(op) \
8323 if (strncmp (sym, #op, strlen (#op)) == 0) \
8324 { \
8325 sym += strlen (#op); \
8326 if (*sym == ':') \
8327 ++sym; \
8328 *symp = sym; \
8329 if (!eval_symbol (&a, symp, input_bfd, flinfo, dot, \
8330 isymbuf, locsymcount, signed_p)) \
8331 return FALSE; \
8332 if (signed_p) \
8333 *result = op ((bfd_signed_vma) a); \
8334 else \
8335 *result = op a; \
8336 return TRUE; \
8337 }
8338
8339 #define BINARY_OP(op) \
8340 if (strncmp (sym, #op, strlen (#op)) == 0) \
8341 { \
8342 sym += strlen (#op); \
8343 if (*sym == ':') \
8344 ++sym; \
8345 *symp = sym; \
8346 if (!eval_symbol (&a, symp, input_bfd, flinfo, dot, \
8347 isymbuf, locsymcount, signed_p)) \
8348 return FALSE; \
8349 ++*symp; \
8350 if (!eval_symbol (&b, symp, input_bfd, flinfo, dot, \
8351 isymbuf, locsymcount, signed_p)) \
8352 return FALSE; \
8353 if (signed_p) \
8354 *result = ((bfd_signed_vma) a) op ((bfd_signed_vma) b); \
8355 else \
8356 *result = a op b; \
8357 return TRUE; \
8358 }
8359
8360 default:
8361 UNARY_OP (0-);
8362 BINARY_OP (<<);
8363 BINARY_OP (>>);
8364 BINARY_OP (==);
8365 BINARY_OP (!=);
8366 BINARY_OP (<=);
8367 BINARY_OP (>=);
8368 BINARY_OP (&&);
8369 BINARY_OP (||);
8370 UNARY_OP (~);
8371 UNARY_OP (!);
8372 BINARY_OP (*);
8373 BINARY_OP (/);
8374 BINARY_OP (%);
8375 BINARY_OP (^);
8376 BINARY_OP (|);
8377 BINARY_OP (&);
8378 BINARY_OP (+);
8379 BINARY_OP (-);
8380 BINARY_OP (<);
8381 BINARY_OP (>);
8382 #undef UNARY_OP
8383 #undef BINARY_OP
8384 _bfd_error_handler (_("unknown operator '%c' in complex symbol"), * sym);
8385 bfd_set_error (bfd_error_invalid_operation);
8386 return FALSE;
8387 }
8388 }
8389
8390 static void
8391 put_value (bfd_vma size,
8392 unsigned long chunksz,
8393 bfd *input_bfd,
8394 bfd_vma x,
8395 bfd_byte *location)
8396 {
8397 location += (size - chunksz);
8398
8399 for (; size; size -= chunksz, location -= chunksz)
8400 {
8401 switch (chunksz)
8402 {
8403 case 1:
8404 bfd_put_8 (input_bfd, x, location);
8405 x >>= 8;
8406 break;
8407 case 2:
8408 bfd_put_16 (input_bfd, x, location);
8409 x >>= 16;
8410 break;
8411 case 4:
8412 bfd_put_32 (input_bfd, x, location);
8413 /* Computed this way because x >>= 32 is undefined if x is a 32-bit value. */
8414 x >>= 16;
8415 x >>= 16;
8416 break;
8417 #ifdef BFD64
8418 case 8:
8419 bfd_put_64 (input_bfd, x, location);
8420 /* Computed this way because x >>= 64 is undefined if x is a 64-bit value. */
8421 x >>= 32;
8422 x >>= 32;
8423 break;
8424 #endif
8425 default:
8426 abort ();
8427 break;
8428 }
8429 }
8430 }
8431
8432 static bfd_vma
8433 get_value (bfd_vma size,
8434 unsigned long chunksz,
8435 bfd *input_bfd,
8436 bfd_byte *location)
8437 {
8438 int shift;
8439 bfd_vma x = 0;
8440
8441 /* Sanity checks. */
8442 BFD_ASSERT (chunksz <= sizeof (x)
8443 && size >= chunksz
8444 && chunksz != 0
8445 && (size % chunksz) == 0
8446 && input_bfd != NULL
8447 && location != NULL);
8448
8449 if (chunksz == sizeof (x))
8450 {
8451 BFD_ASSERT (size == chunksz);
8452
8453 /* Make sure that we do not perform an undefined shift operation.
8454 We know that size == chunksz so there will only be one iteration
8455 of the loop below. */
8456 shift = 0;
8457 }
8458 else
8459 shift = 8 * chunksz;
8460
8461 for (; size; size -= chunksz, location += chunksz)
8462 {
8463 switch (chunksz)
8464 {
8465 case 1:
8466 x = (x << shift) | bfd_get_8 (input_bfd, location);
8467 break;
8468 case 2:
8469 x = (x << shift) | bfd_get_16 (input_bfd, location);
8470 break;
8471 case 4:
8472 x = (x << shift) | bfd_get_32 (input_bfd, location);
8473 break;
8474 #ifdef BFD64
8475 case 8:
8476 x = (x << shift) | bfd_get_64 (input_bfd, location);
8477 break;
8478 #endif
8479 default:
8480 abort ();
8481 }
8482 }
8483 return x;
8484 }
8485
8486 static void
8487 decode_complex_addend (unsigned long *start, /* in bits */
8488 unsigned long *oplen, /* in bits */
8489 unsigned long *len, /* in bits */
8490 unsigned long *wordsz, /* in bytes */
8491 unsigned long *chunksz, /* in bytes */
8492 unsigned long *lsb0_p,
8493 unsigned long *signed_p,
8494 unsigned long *trunc_p,
8495 unsigned long encoded)
8496 {
8497 * start = encoded & 0x3F;
8498 * len = (encoded >> 6) & 0x3F;
8499 * oplen = (encoded >> 12) & 0x3F;
8500 * wordsz = (encoded >> 18) & 0xF;
8501 * chunksz = (encoded >> 22) & 0xF;
8502 * lsb0_p = (encoded >> 27) & 1;
8503 * signed_p = (encoded >> 28) & 1;
8504 * trunc_p = (encoded >> 29) & 1;
8505 }
8506
8507 bfd_reloc_status_type
8508 bfd_elf_perform_complex_relocation (bfd *input_bfd,
8509 asection *input_section ATTRIBUTE_UNUSED,
8510 bfd_byte *contents,
8511 Elf_Internal_Rela *rel,
8512 bfd_vma relocation)
8513 {
8514 bfd_vma shift, x, mask;
8515 unsigned long start, oplen, len, wordsz, chunksz, lsb0_p, signed_p, trunc_p;
8516 bfd_reloc_status_type r;
8517
8518 /* Perform this reloc, since it is complex.
8519 (this is not to say that it necessarily refers to a complex
8520 symbol; merely that it is a self-describing CGEN based reloc.
8521 i.e. the addend has the complete reloc information (bit start, end,
8522 word size, etc) encoded within it.). */
8523
8524 decode_complex_addend (&start, &oplen, &len, &wordsz,
8525 &chunksz, &lsb0_p, &signed_p,
8526 &trunc_p, rel->r_addend);
8527
8528 mask = (((1L << (len - 1)) - 1) << 1) | 1;
8529
8530 if (lsb0_p)
8531 shift = (start + 1) - len;
8532 else
8533 shift = (8 * wordsz) - (start + len);
8534
8535 x = get_value (wordsz, chunksz, input_bfd,
8536 contents + rel->r_offset * bfd_octets_per_byte (input_bfd));
8537
8538 #ifdef DEBUG
8539 printf ("Doing complex reloc: "
8540 "lsb0? %ld, signed? %ld, trunc? %ld, wordsz %ld, "
8541 "chunksz %ld, start %ld, len %ld, oplen %ld\n"
8542 " dest: %8.8lx, mask: %8.8lx, reloc: %8.8lx\n",
8543 lsb0_p, signed_p, trunc_p, wordsz, chunksz, start, len,
8544 oplen, (unsigned long) x, (unsigned long) mask,
8545 (unsigned long) relocation);
8546 #endif
8547
8548 r = bfd_reloc_ok;
8549 if (! trunc_p)
8550 /* Now do an overflow check. */
8551 r = bfd_check_overflow ((signed_p
8552 ? complain_overflow_signed
8553 : complain_overflow_unsigned),
8554 len, 0, (8 * wordsz),
8555 relocation);
8556
8557 /* Do the deed. */
8558 x = (x & ~(mask << shift)) | ((relocation & mask) << shift);
8559
8560 #ifdef DEBUG
8561 printf (" relocation: %8.8lx\n"
8562 " shifted mask: %8.8lx\n"
8563 " shifted/masked reloc: %8.8lx\n"
8564 " result: %8.8lx\n",
8565 (unsigned long) relocation, (unsigned long) (mask << shift),
8566 (unsigned long) ((relocation & mask) << shift), (unsigned long) x);
8567 #endif
8568 put_value (wordsz, chunksz, input_bfd, x,
8569 contents + rel->r_offset * bfd_octets_per_byte (input_bfd));
8570 return r;
8571 }
8572
8573 /* Functions to read r_offset from external (target order) reloc
8574 entry. Faster than bfd_getl32 et al, because we let the compiler
8575 know the value is aligned. */
8576
8577 static bfd_vma
8578 ext32l_r_offset (const void *p)
8579 {
8580 union aligned32
8581 {
8582 uint32_t v;
8583 unsigned char c[4];
8584 };
8585 const union aligned32 *a
8586 = (const union aligned32 *) &((const Elf32_External_Rel *) p)->r_offset;
8587
8588 uint32_t aval = ( (uint32_t) a->c[0]
8589 | (uint32_t) a->c[1] << 8
8590 | (uint32_t) a->c[2] << 16
8591 | (uint32_t) a->c[3] << 24);
8592 return aval;
8593 }
8594
8595 static bfd_vma
8596 ext32b_r_offset (const void *p)
8597 {
8598 union aligned32
8599 {
8600 uint32_t v;
8601 unsigned char c[4];
8602 };
8603 const union aligned32 *a
8604 = (const union aligned32 *) &((const Elf32_External_Rel *) p)->r_offset;
8605
8606 uint32_t aval = ( (uint32_t) a->c[0] << 24
8607 | (uint32_t) a->c[1] << 16
8608 | (uint32_t) a->c[2] << 8
8609 | (uint32_t) a->c[3]);
8610 return aval;
8611 }
8612
8613 #ifdef BFD_HOST_64_BIT
8614 static bfd_vma
8615 ext64l_r_offset (const void *p)
8616 {
8617 union aligned64
8618 {
8619 uint64_t v;
8620 unsigned char c[8];
8621 };
8622 const union aligned64 *a
8623 = (const union aligned64 *) &((const Elf64_External_Rel *) p)->r_offset;
8624
8625 uint64_t aval = ( (uint64_t) a->c[0]
8626 | (uint64_t) a->c[1] << 8
8627 | (uint64_t) a->c[2] << 16
8628 | (uint64_t) a->c[3] << 24
8629 | (uint64_t) a->c[4] << 32
8630 | (uint64_t) a->c[5] << 40
8631 | (uint64_t) a->c[6] << 48
8632 | (uint64_t) a->c[7] << 56);
8633 return aval;
8634 }
8635
8636 static bfd_vma
8637 ext64b_r_offset (const void *p)
8638 {
8639 union aligned64
8640 {
8641 uint64_t v;
8642 unsigned char c[8];
8643 };
8644 const union aligned64 *a
8645 = (const union aligned64 *) &((const Elf64_External_Rel *) p)->r_offset;
8646
8647 uint64_t aval = ( (uint64_t) a->c[0] << 56
8648 | (uint64_t) a->c[1] << 48
8649 | (uint64_t) a->c[2] << 40
8650 | (uint64_t) a->c[3] << 32
8651 | (uint64_t) a->c[4] << 24
8652 | (uint64_t) a->c[5] << 16
8653 | (uint64_t) a->c[6] << 8
8654 | (uint64_t) a->c[7]);
8655 return aval;
8656 }
8657 #endif
8658
8659 /* When performing a relocatable link, the input relocations are
8660 preserved. But, if they reference global symbols, the indices
8661 referenced must be updated. Update all the relocations found in
8662 RELDATA. */
8663
8664 static bfd_boolean
8665 elf_link_adjust_relocs (bfd *abfd,
8666 asection *sec,
8667 struct bfd_elf_section_reloc_data *reldata,
8668 bfd_boolean sort,
8669 struct bfd_link_info *info)
8670 {
8671 unsigned int i;
8672 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
8673 bfd_byte *erela;
8674 void (*swap_in) (bfd *, const bfd_byte *, Elf_Internal_Rela *);
8675 void (*swap_out) (bfd *, const Elf_Internal_Rela *, bfd_byte *);
8676 bfd_vma r_type_mask;
8677 int r_sym_shift;
8678 unsigned int count = reldata->count;
8679 struct elf_link_hash_entry **rel_hash = reldata->hashes;
8680
8681 if (reldata->hdr->sh_entsize == bed->s->sizeof_rel)
8682 {
8683 swap_in = bed->s->swap_reloc_in;
8684 swap_out = bed->s->swap_reloc_out;
8685 }
8686 else if (reldata->hdr->sh_entsize == bed->s->sizeof_rela)
8687 {
8688 swap_in = bed->s->swap_reloca_in;
8689 swap_out = bed->s->swap_reloca_out;
8690 }
8691 else
8692 abort ();
8693
8694 if (bed->s->int_rels_per_ext_rel > MAX_INT_RELS_PER_EXT_REL)
8695 abort ();
8696
8697 if (bed->s->arch_size == 32)
8698 {
8699 r_type_mask = 0xff;
8700 r_sym_shift = 8;
8701 }
8702 else
8703 {
8704 r_type_mask = 0xffffffff;
8705 r_sym_shift = 32;
8706 }
8707
8708 erela = reldata->hdr->contents;
8709 for (i = 0; i < count; i++, rel_hash++, erela += reldata->hdr->sh_entsize)
8710 {
8711 Elf_Internal_Rela irela[MAX_INT_RELS_PER_EXT_REL];
8712 unsigned int j;
8713
8714 if (*rel_hash == NULL)
8715 continue;
8716
8717 if ((*rel_hash)->indx == -2
8718 && info->gc_sections
8719 && ! info->gc_keep_exported)
8720 {
8721 /* PR 21524: Let the user know if a symbol was removed by garbage collection. */
8722 _bfd_error_handler (_("%B:%A: error: relocation references symbol %s which was removed by garbage collection."),
8723 abfd, sec,
8724 (*rel_hash)->root.root.string);
8725 _bfd_error_handler (_("%B:%A: error: try relinking with --gc-keep-exported enabled."),
8726 abfd, sec);
8727 bfd_set_error (bfd_error_invalid_operation);
8728 return FALSE;
8729 }
8730 BFD_ASSERT ((*rel_hash)->indx >= 0);
8731
8732 (*swap_in) (abfd, erela, irela);
8733 for (j = 0; j < bed->s->int_rels_per_ext_rel; j++)
8734 irela[j].r_info = ((bfd_vma) (*rel_hash)->indx << r_sym_shift
8735 | (irela[j].r_info & r_type_mask));
8736 (*swap_out) (abfd, irela, erela);
8737 }
8738
8739 if (bed->elf_backend_update_relocs)
8740 (*bed->elf_backend_update_relocs) (sec, reldata);
8741
8742 if (sort && count != 0)
8743 {
8744 bfd_vma (*ext_r_off) (const void *);
8745 bfd_vma r_off;
8746 size_t elt_size;
8747 bfd_byte *base, *end, *p, *loc;
8748 bfd_byte *buf = NULL;
8749
8750 if (bed->s->arch_size == 32)
8751 {
8752 if (abfd->xvec->header_byteorder == BFD_ENDIAN_LITTLE)
8753 ext_r_off = ext32l_r_offset;
8754 else if (abfd->xvec->header_byteorder == BFD_ENDIAN_BIG)
8755 ext_r_off = ext32b_r_offset;
8756 else
8757 abort ();
8758 }
8759 else
8760 {
8761 #ifdef BFD_HOST_64_BIT
8762 if (abfd->xvec->header_byteorder == BFD_ENDIAN_LITTLE)
8763 ext_r_off = ext64l_r_offset;
8764 else if (abfd->xvec->header_byteorder == BFD_ENDIAN_BIG)
8765 ext_r_off = ext64b_r_offset;
8766 else
8767 #endif
8768 abort ();
8769 }
8770
8771 /* Must use a stable sort here. A modified insertion sort,
8772 since the relocs are mostly sorted already. */
8773 elt_size = reldata->hdr->sh_entsize;
8774 base = reldata->hdr->contents;
8775 end = base + count * elt_size;
8776 if (elt_size > sizeof (Elf64_External_Rela))
8777 abort ();
8778
8779 /* Ensure the first element is lowest. This acts as a sentinel,
8780 speeding the main loop below. */
8781 r_off = (*ext_r_off) (base);
8782 for (p = loc = base; (p += elt_size) < end; )
8783 {
8784 bfd_vma r_off2 = (*ext_r_off) (p);
8785 if (r_off > r_off2)
8786 {
8787 r_off = r_off2;
8788 loc = p;
8789 }
8790 }
8791 if (loc != base)
8792 {
8793 /* Don't just swap *base and *loc as that changes the order
8794 of the original base[0] and base[1] if they happen to
8795 have the same r_offset. */
8796 bfd_byte onebuf[sizeof (Elf64_External_Rela)];
8797 memcpy (onebuf, loc, elt_size);
8798 memmove (base + elt_size, base, loc - base);
8799 memcpy (base, onebuf, elt_size);
8800 }
8801
8802 for (p = base + elt_size; (p += elt_size) < end; )
8803 {
8804 /* base to p is sorted, *p is next to insert. */
8805 r_off = (*ext_r_off) (p);
8806 /* Search the sorted region for location to insert. */
8807 loc = p - elt_size;
8808 while (r_off < (*ext_r_off) (loc))
8809 loc -= elt_size;
8810 loc += elt_size;
8811 if (loc != p)
8812 {
8813 /* Chances are there is a run of relocs to insert here,
8814 from one of more input files. Files are not always
8815 linked in order due to the way elf_link_input_bfd is
8816 called. See pr17666. */
8817 size_t sortlen = p - loc;
8818 bfd_vma r_off2 = (*ext_r_off) (loc);
8819 size_t runlen = elt_size;
8820 size_t buf_size = 96 * 1024;
8821 while (p + runlen < end
8822 && (sortlen <= buf_size
8823 || runlen + elt_size <= buf_size)
8824 && r_off2 > (*ext_r_off) (p + runlen))
8825 runlen += elt_size;
8826 if (buf == NULL)
8827 {
8828 buf = bfd_malloc (buf_size);
8829 if (buf == NULL)
8830 return FALSE;
8831 }
8832 if (runlen < sortlen)
8833 {
8834 memcpy (buf, p, runlen);
8835 memmove (loc + runlen, loc, sortlen);
8836 memcpy (loc, buf, runlen);
8837 }
8838 else
8839 {
8840 memcpy (buf, loc, sortlen);
8841 memmove (loc, p, runlen);
8842 memcpy (loc + runlen, buf, sortlen);
8843 }
8844 p += runlen - elt_size;
8845 }
8846 }
8847 /* Hashes are no longer valid. */
8848 free (reldata->hashes);
8849 reldata->hashes = NULL;
8850 free (buf);
8851 }
8852 return TRUE;
8853 }
8854
8855 struct elf_link_sort_rela
8856 {
8857 union {
8858 bfd_vma offset;
8859 bfd_vma sym_mask;
8860 } u;
8861 enum elf_reloc_type_class type;
8862 /* We use this as an array of size int_rels_per_ext_rel. */
8863 Elf_Internal_Rela rela[1];
8864 };
8865
8866 static int
8867 elf_link_sort_cmp1 (const void *A, const void *B)
8868 {
8869 const struct elf_link_sort_rela *a = (const struct elf_link_sort_rela *) A;
8870 const struct elf_link_sort_rela *b = (const struct elf_link_sort_rela *) B;
8871 int relativea, relativeb;
8872
8873 relativea = a->type == reloc_class_relative;
8874 relativeb = b->type == reloc_class_relative;
8875
8876 if (relativea < relativeb)
8877 return 1;
8878 if (relativea > relativeb)
8879 return -1;
8880 if ((a->rela->r_info & a->u.sym_mask) < (b->rela->r_info & b->u.sym_mask))
8881 return -1;
8882 if ((a->rela->r_info & a->u.sym_mask) > (b->rela->r_info & b->u.sym_mask))
8883 return 1;
8884 if (a->rela->r_offset < b->rela->r_offset)
8885 return -1;
8886 if (a->rela->r_offset > b->rela->r_offset)
8887 return 1;
8888 return 0;
8889 }
8890
8891 static int
8892 elf_link_sort_cmp2 (const void *A, const void *B)
8893 {
8894 const struct elf_link_sort_rela *a = (const struct elf_link_sort_rela *) A;
8895 const struct elf_link_sort_rela *b = (const struct elf_link_sort_rela *) B;
8896
8897 if (a->type < b->type)
8898 return -1;
8899 if (a->type > b->type)
8900 return 1;
8901 if (a->u.offset < b->u.offset)
8902 return -1;
8903 if (a->u.offset > b->u.offset)
8904 return 1;
8905 if (a->rela->r_offset < b->rela->r_offset)
8906 return -1;
8907 if (a->rela->r_offset > b->rela->r_offset)
8908 return 1;
8909 return 0;
8910 }
8911
8912 static size_t
8913 elf_link_sort_relocs (bfd *abfd, struct bfd_link_info *info, asection **psec)
8914 {
8915 asection *dynamic_relocs;
8916 asection *rela_dyn;
8917 asection *rel_dyn;
8918 bfd_size_type count, size;
8919 size_t i, ret, sort_elt, ext_size;
8920 bfd_byte *sort, *s_non_relative, *p;
8921 struct elf_link_sort_rela *sq;
8922 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
8923 int i2e = bed->s->int_rels_per_ext_rel;
8924 unsigned int opb = bfd_octets_per_byte (abfd);
8925 void (*swap_in) (bfd *, const bfd_byte *, Elf_Internal_Rela *);
8926 void (*swap_out) (bfd *, const Elf_Internal_Rela *, bfd_byte *);
8927 struct bfd_link_order *lo;
8928 bfd_vma r_sym_mask;
8929 bfd_boolean use_rela;
8930
8931 /* Find a dynamic reloc section. */
8932 rela_dyn = bfd_get_section_by_name (abfd, ".rela.dyn");
8933 rel_dyn = bfd_get_section_by_name (abfd, ".rel.dyn");
8934 if (rela_dyn != NULL && rela_dyn->size > 0
8935 && rel_dyn != NULL && rel_dyn->size > 0)
8936 {
8937 bfd_boolean use_rela_initialised = FALSE;
8938
8939 /* This is just here to stop gcc from complaining.
8940 Its initialization checking code is not perfect. */
8941 use_rela = TRUE;
8942
8943 /* Both sections are present. Examine the sizes
8944 of the indirect sections to help us choose. */
8945 for (lo = rela_dyn->map_head.link_order; lo != NULL; lo = lo->next)
8946 if (lo->type == bfd_indirect_link_order)
8947 {
8948 asection *o = lo->u.indirect.section;
8949
8950 if ((o->size % bed->s->sizeof_rela) == 0)
8951 {
8952 if ((o->size % bed->s->sizeof_rel) == 0)
8953 /* Section size is divisible by both rel and rela sizes.
8954 It is of no help to us. */
8955 ;
8956 else
8957 {
8958 /* Section size is only divisible by rela. */
8959 if (use_rela_initialised && !use_rela)
8960 {
8961 _bfd_error_handler (_("%B: Unable to sort relocs - "
8962 "they are in more than one size"),
8963 abfd);
8964 bfd_set_error (bfd_error_invalid_operation);
8965 return 0;
8966 }
8967 else
8968 {
8969 use_rela = TRUE;
8970 use_rela_initialised = TRUE;
8971 }
8972 }
8973 }
8974 else if ((o->size % bed->s->sizeof_rel) == 0)
8975 {
8976 /* Section size is only divisible by rel. */
8977 if (use_rela_initialised && use_rela)
8978 {
8979 _bfd_error_handler (_("%B: Unable to sort relocs - "
8980 "they are in more than one size"),
8981 abfd);
8982 bfd_set_error (bfd_error_invalid_operation);
8983 return 0;
8984 }
8985 else
8986 {
8987 use_rela = FALSE;
8988 use_rela_initialised = TRUE;
8989 }
8990 }
8991 else
8992 {
8993 /* The section size is not divisible by either -
8994 something is wrong. */
8995 _bfd_error_handler (_("%B: Unable to sort relocs - "
8996 "they are of an unknown size"), abfd);
8997 bfd_set_error (bfd_error_invalid_operation);
8998 return 0;
8999 }
9000 }
9001
9002 for (lo = rel_dyn->map_head.link_order; lo != NULL; lo = lo->next)
9003 if (lo->type == bfd_indirect_link_order)
9004 {
9005 asection *o = lo->u.indirect.section;
9006
9007 if ((o->size % bed->s->sizeof_rela) == 0)
9008 {
9009 if ((o->size % bed->s->sizeof_rel) == 0)
9010 /* Section size is divisible by both rel and rela sizes.
9011 It is of no help to us. */
9012 ;
9013 else
9014 {
9015 /* Section size is only divisible by rela. */
9016 if (use_rela_initialised && !use_rela)
9017 {
9018 _bfd_error_handler (_("%B: Unable to sort relocs - "
9019 "they are in more than one size"),
9020 abfd);
9021 bfd_set_error (bfd_error_invalid_operation);
9022 return 0;
9023 }
9024 else
9025 {
9026 use_rela = TRUE;
9027 use_rela_initialised = TRUE;
9028 }
9029 }
9030 }
9031 else if ((o->size % bed->s->sizeof_rel) == 0)
9032 {
9033 /* Section size is only divisible by rel. */
9034 if (use_rela_initialised && use_rela)
9035 {
9036 _bfd_error_handler (_("%B: Unable to sort relocs - "
9037 "they are in more than one size"),
9038 abfd);
9039 bfd_set_error (bfd_error_invalid_operation);
9040 return 0;
9041 }
9042 else
9043 {
9044 use_rela = FALSE;
9045 use_rela_initialised = TRUE;
9046 }
9047 }
9048 else
9049 {
9050 /* The section size is not divisible by either -
9051 something is wrong. */
9052 _bfd_error_handler (_("%B: Unable to sort relocs - "
9053 "they are of an unknown size"), abfd);
9054 bfd_set_error (bfd_error_invalid_operation);
9055 return 0;
9056 }
9057 }
9058
9059 if (! use_rela_initialised)
9060 /* Make a guess. */
9061 use_rela = TRUE;
9062 }
9063 else if (rela_dyn != NULL && rela_dyn->size > 0)
9064 use_rela = TRUE;
9065 else if (rel_dyn != NULL && rel_dyn->size > 0)
9066 use_rela = FALSE;
9067 else
9068 return 0;
9069
9070 if (use_rela)
9071 {
9072 dynamic_relocs = rela_dyn;
9073 ext_size = bed->s->sizeof_rela;
9074 swap_in = bed->s->swap_reloca_in;
9075 swap_out = bed->s->swap_reloca_out;
9076 }
9077 else
9078 {
9079 dynamic_relocs = rel_dyn;
9080 ext_size = bed->s->sizeof_rel;
9081 swap_in = bed->s->swap_reloc_in;
9082 swap_out = bed->s->swap_reloc_out;
9083 }
9084
9085 size = 0;
9086 for (lo = dynamic_relocs->map_head.link_order; lo != NULL; lo = lo->next)
9087 if (lo->type == bfd_indirect_link_order)
9088 size += lo->u.indirect.section->size;
9089
9090 if (size != dynamic_relocs->size)
9091 return 0;
9092
9093 sort_elt = (sizeof (struct elf_link_sort_rela)
9094 + (i2e - 1) * sizeof (Elf_Internal_Rela));
9095
9096 count = dynamic_relocs->size / ext_size;
9097 if (count == 0)
9098 return 0;
9099 sort = (bfd_byte *) bfd_zmalloc (sort_elt * count);
9100
9101 if (sort == NULL)
9102 {
9103 (*info->callbacks->warning)
9104 (info, _("Not enough memory to sort relocations"), 0, abfd, 0, 0);
9105 return 0;
9106 }
9107
9108 if (bed->s->arch_size == 32)
9109 r_sym_mask = ~(bfd_vma) 0xff;
9110 else
9111 r_sym_mask = ~(bfd_vma) 0xffffffff;
9112
9113 for (lo = dynamic_relocs->map_head.link_order; lo != NULL; lo = lo->next)
9114 if (lo->type == bfd_indirect_link_order)
9115 {
9116 bfd_byte *erel, *erelend;
9117 asection *o = lo->u.indirect.section;
9118
9119 if (o->contents == NULL && o->size != 0)
9120 {
9121 /* This is a reloc section that is being handled as a normal
9122 section. See bfd_section_from_shdr. We can't combine
9123 relocs in this case. */
9124 free (sort);
9125 return 0;
9126 }
9127 erel = o->contents;
9128 erelend = o->contents + o->size;
9129 p = sort + o->output_offset * opb / ext_size * sort_elt;
9130
9131 while (erel < erelend)
9132 {
9133 struct elf_link_sort_rela *s = (struct elf_link_sort_rela *) p;
9134
9135 (*swap_in) (abfd, erel, s->rela);
9136 s->type = (*bed->elf_backend_reloc_type_class) (info, o, s->rela);
9137 s->u.sym_mask = r_sym_mask;
9138 p += sort_elt;
9139 erel += ext_size;
9140 }
9141 }
9142
9143 qsort (sort, count, sort_elt, elf_link_sort_cmp1);
9144
9145 for (i = 0, p = sort; i < count; i++, p += sort_elt)
9146 {
9147 struct elf_link_sort_rela *s = (struct elf_link_sort_rela *) p;
9148 if (s->type != reloc_class_relative)
9149 break;
9150 }
9151 ret = i;
9152 s_non_relative = p;
9153
9154 sq = (struct elf_link_sort_rela *) s_non_relative;
9155 for (; i < count; i++, p += sort_elt)
9156 {
9157 struct elf_link_sort_rela *sp = (struct elf_link_sort_rela *) p;
9158 if (((sp->rela->r_info ^ sq->rela->r_info) & r_sym_mask) != 0)
9159 sq = sp;
9160 sp->u.offset = sq->rela->r_offset;
9161 }
9162
9163 qsort (s_non_relative, count - ret, sort_elt, elf_link_sort_cmp2);
9164
9165 struct elf_link_hash_table *htab = elf_hash_table (info);
9166 if (htab->srelplt && htab->srelplt->output_section == dynamic_relocs)
9167 {
9168 /* We have plt relocs in .rela.dyn. */
9169 sq = (struct elf_link_sort_rela *) sort;
9170 for (i = 0; i < count; i++)
9171 if (sq[count - i - 1].type != reloc_class_plt)
9172 break;
9173 if (i != 0 && htab->srelplt->size == i * ext_size)
9174 {
9175 struct bfd_link_order **plo;
9176 /* Put srelplt link_order last. This is so the output_offset
9177 set in the next loop is correct for DT_JMPREL. */
9178 for (plo = &dynamic_relocs->map_head.link_order; *plo != NULL; )
9179 if ((*plo)->type == bfd_indirect_link_order
9180 && (*plo)->u.indirect.section == htab->srelplt)
9181 {
9182 lo = *plo;
9183 *plo = lo->next;
9184 }
9185 else
9186 plo = &(*plo)->next;
9187 *plo = lo;
9188 lo->next = NULL;
9189 dynamic_relocs->map_tail.link_order = lo;
9190 }
9191 }
9192
9193 p = sort;
9194 for (lo = dynamic_relocs->map_head.link_order; lo != NULL; lo = lo->next)
9195 if (lo->type == bfd_indirect_link_order)
9196 {
9197 bfd_byte *erel, *erelend;
9198 asection *o = lo->u.indirect.section;
9199
9200 erel = o->contents;
9201 erelend = o->contents + o->size;
9202 o->output_offset = (p - sort) / sort_elt * ext_size / opb;
9203 while (erel < erelend)
9204 {
9205 struct elf_link_sort_rela *s = (struct elf_link_sort_rela *) p;
9206 (*swap_out) (abfd, s->rela, erel);
9207 p += sort_elt;
9208 erel += ext_size;
9209 }
9210 }
9211
9212 free (sort);
9213 *psec = dynamic_relocs;
9214 return ret;
9215 }
9216
9217 /* Add a symbol to the output symbol string table. */
9218
9219 static int
9220 elf_link_output_symstrtab (struct elf_final_link_info *flinfo,
9221 const char *name,
9222 Elf_Internal_Sym *elfsym,
9223 asection *input_sec,
9224 struct elf_link_hash_entry *h)
9225 {
9226 int (*output_symbol_hook)
9227 (struct bfd_link_info *, const char *, Elf_Internal_Sym *, asection *,
9228 struct elf_link_hash_entry *);
9229 struct elf_link_hash_table *hash_table;
9230 const struct elf_backend_data *bed;
9231 bfd_size_type strtabsize;
9232
9233 BFD_ASSERT (elf_onesymtab (flinfo->output_bfd));
9234
9235 bed = get_elf_backend_data (flinfo->output_bfd);
9236 output_symbol_hook = bed->elf_backend_link_output_symbol_hook;
9237 if (output_symbol_hook != NULL)
9238 {
9239 int ret = (*output_symbol_hook) (flinfo->info, name, elfsym, input_sec, h);
9240 if (ret != 1)
9241 return ret;
9242 }
9243
9244 if (name == NULL
9245 || *name == '\0'
9246 || (input_sec->flags & SEC_EXCLUDE))
9247 elfsym->st_name = (unsigned long) -1;
9248 else
9249 {
9250 /* Call _bfd_elf_strtab_offset after _bfd_elf_strtab_finalize
9251 to get the final offset for st_name. */
9252 elfsym->st_name
9253 = (unsigned long) _bfd_elf_strtab_add (flinfo->symstrtab,
9254 name, FALSE);
9255 if (elfsym->st_name == (unsigned long) -1)
9256 return 0;
9257 }
9258
9259 hash_table = elf_hash_table (flinfo->info);
9260 strtabsize = hash_table->strtabsize;
9261 if (strtabsize <= hash_table->strtabcount)
9262 {
9263 strtabsize += strtabsize;
9264 hash_table->strtabsize = strtabsize;
9265 strtabsize *= sizeof (*hash_table->strtab);
9266 hash_table->strtab
9267 = (struct elf_sym_strtab *) bfd_realloc (hash_table->strtab,
9268 strtabsize);
9269 if (hash_table->strtab == NULL)
9270 return 0;
9271 }
9272 hash_table->strtab[hash_table->strtabcount].sym = *elfsym;
9273 hash_table->strtab[hash_table->strtabcount].dest_index
9274 = hash_table->strtabcount;
9275 hash_table->strtab[hash_table->strtabcount].destshndx_index
9276 = flinfo->symshndxbuf ? bfd_get_symcount (flinfo->output_bfd) : 0;
9277
9278 bfd_get_symcount (flinfo->output_bfd) += 1;
9279 hash_table->strtabcount += 1;
9280
9281 return 1;
9282 }
9283
9284 /* Swap symbols out to the symbol table and flush the output symbols to
9285 the file. */
9286
9287 static bfd_boolean
9288 elf_link_swap_symbols_out (struct elf_final_link_info *flinfo)
9289 {
9290 struct elf_link_hash_table *hash_table = elf_hash_table (flinfo->info);
9291 bfd_size_type amt;
9292 size_t i;
9293 const struct elf_backend_data *bed;
9294 bfd_byte *symbuf;
9295 Elf_Internal_Shdr *hdr;
9296 file_ptr pos;
9297 bfd_boolean ret;
9298
9299 if (!hash_table->strtabcount)
9300 return TRUE;
9301
9302 BFD_ASSERT (elf_onesymtab (flinfo->output_bfd));
9303
9304 bed = get_elf_backend_data (flinfo->output_bfd);
9305
9306 amt = bed->s->sizeof_sym * hash_table->strtabcount;
9307 symbuf = (bfd_byte *) bfd_malloc (amt);
9308 if (symbuf == NULL)
9309 return FALSE;
9310
9311 if (flinfo->symshndxbuf)
9312 {
9313 amt = sizeof (Elf_External_Sym_Shndx);
9314 amt *= bfd_get_symcount (flinfo->output_bfd);
9315 flinfo->symshndxbuf = (Elf_External_Sym_Shndx *) bfd_zmalloc (amt);
9316 if (flinfo->symshndxbuf == NULL)
9317 {
9318 free (symbuf);
9319 return FALSE;
9320 }
9321 }
9322
9323 for (i = 0; i < hash_table->strtabcount; i++)
9324 {
9325 struct elf_sym_strtab *elfsym = &hash_table->strtab[i];
9326 if (elfsym->sym.st_name == (unsigned long) -1)
9327 elfsym->sym.st_name = 0;
9328 else
9329 elfsym->sym.st_name
9330 = (unsigned long) _bfd_elf_strtab_offset (flinfo->symstrtab,
9331 elfsym->sym.st_name);
9332 bed->s->swap_symbol_out (flinfo->output_bfd, &elfsym->sym,
9333 ((bfd_byte *) symbuf
9334 + (elfsym->dest_index
9335 * bed->s->sizeof_sym)),
9336 (flinfo->symshndxbuf
9337 + elfsym->destshndx_index));
9338 }
9339
9340 hdr = &elf_tdata (flinfo->output_bfd)->symtab_hdr;
9341 pos = hdr->sh_offset + hdr->sh_size;
9342 amt = hash_table->strtabcount * bed->s->sizeof_sym;
9343 if (bfd_seek (flinfo->output_bfd, pos, SEEK_SET) == 0
9344 && bfd_bwrite (symbuf, amt, flinfo->output_bfd) == amt)
9345 {
9346 hdr->sh_size += amt;
9347 ret = TRUE;
9348 }
9349 else
9350 ret = FALSE;
9351
9352 free (symbuf);
9353
9354 free (hash_table->strtab);
9355 hash_table->strtab = NULL;
9356
9357 return ret;
9358 }
9359
9360 /* Return TRUE if the dynamic symbol SYM in ABFD is supported. */
9361
9362 static bfd_boolean
9363 check_dynsym (bfd *abfd, Elf_Internal_Sym *sym)
9364 {
9365 if (sym->st_shndx >= (SHN_LORESERVE & 0xffff)
9366 && sym->st_shndx < SHN_LORESERVE)
9367 {
9368 /* The gABI doesn't support dynamic symbols in output sections
9369 beyond 64k. */
9370 _bfd_error_handler
9371 /* xgettext:c-format */
9372 (_("%B: Too many sections: %d (>= %d)"),
9373 abfd, bfd_count_sections (abfd), SHN_LORESERVE & 0xffff);
9374 bfd_set_error (bfd_error_nonrepresentable_section);
9375 return FALSE;
9376 }
9377 return TRUE;
9378 }
9379
9380 /* For DSOs loaded in via a DT_NEEDED entry, emulate ld.so in
9381 allowing an unsatisfied unversioned symbol in the DSO to match a
9382 versioned symbol that would normally require an explicit version.
9383 We also handle the case that a DSO references a hidden symbol
9384 which may be satisfied by a versioned symbol in another DSO. */
9385
9386 static bfd_boolean
9387 elf_link_check_versioned_symbol (struct bfd_link_info *info,
9388 const struct elf_backend_data *bed,
9389 struct elf_link_hash_entry *h)
9390 {
9391 bfd *abfd;
9392 struct elf_link_loaded_list *loaded;
9393
9394 if (!is_elf_hash_table (info->hash))
9395 return FALSE;
9396
9397 /* Check indirect symbol. */
9398 while (h->root.type == bfd_link_hash_indirect)
9399 h = (struct elf_link_hash_entry *) h->root.u.i.link;
9400
9401 switch (h->root.type)
9402 {
9403 default:
9404 abfd = NULL;
9405 break;
9406
9407 case bfd_link_hash_undefined:
9408 case bfd_link_hash_undefweak:
9409 abfd = h->root.u.undef.abfd;
9410 if (abfd == NULL
9411 || (abfd->flags & DYNAMIC) == 0
9412 || (elf_dyn_lib_class (abfd) & DYN_DT_NEEDED) == 0)
9413 return FALSE;
9414 break;
9415
9416 case bfd_link_hash_defined:
9417 case bfd_link_hash_defweak:
9418 abfd = h->root.u.def.section->owner;
9419 break;
9420
9421 case bfd_link_hash_common:
9422 abfd = h->root.u.c.p->section->owner;
9423 break;
9424 }
9425 BFD_ASSERT (abfd != NULL);
9426
9427 for (loaded = elf_hash_table (info)->loaded;
9428 loaded != NULL;
9429 loaded = loaded->next)
9430 {
9431 bfd *input;
9432 Elf_Internal_Shdr *hdr;
9433 size_t symcount;
9434 size_t extsymcount;
9435 size_t extsymoff;
9436 Elf_Internal_Shdr *versymhdr;
9437 Elf_Internal_Sym *isym;
9438 Elf_Internal_Sym *isymend;
9439 Elf_Internal_Sym *isymbuf;
9440 Elf_External_Versym *ever;
9441 Elf_External_Versym *extversym;
9442
9443 input = loaded->abfd;
9444
9445 /* We check each DSO for a possible hidden versioned definition. */
9446 if (input == abfd
9447 || (input->flags & DYNAMIC) == 0
9448 || elf_dynversym (input) == 0)
9449 continue;
9450
9451 hdr = &elf_tdata (input)->dynsymtab_hdr;
9452
9453 symcount = hdr->sh_size / bed->s->sizeof_sym;
9454 if (elf_bad_symtab (input))
9455 {
9456 extsymcount = symcount;
9457 extsymoff = 0;
9458 }
9459 else
9460 {
9461 extsymcount = symcount - hdr->sh_info;
9462 extsymoff = hdr->sh_info;
9463 }
9464
9465 if (extsymcount == 0)
9466 continue;
9467
9468 isymbuf = bfd_elf_get_elf_syms (input, hdr, extsymcount, extsymoff,
9469 NULL, NULL, NULL);
9470 if (isymbuf == NULL)
9471 return FALSE;
9472
9473 /* Read in any version definitions. */
9474 versymhdr = &elf_tdata (input)->dynversym_hdr;
9475 extversym = (Elf_External_Versym *) bfd_malloc (versymhdr->sh_size);
9476 if (extversym == NULL)
9477 goto error_ret;
9478
9479 if (bfd_seek (input, versymhdr->sh_offset, SEEK_SET) != 0
9480 || (bfd_bread (extversym, versymhdr->sh_size, input)
9481 != versymhdr->sh_size))
9482 {
9483 free (extversym);
9484 error_ret:
9485 free (isymbuf);
9486 return FALSE;
9487 }
9488
9489 ever = extversym + extsymoff;
9490 isymend = isymbuf + extsymcount;
9491 for (isym = isymbuf; isym < isymend; isym++, ever++)
9492 {
9493 const char *name;
9494 Elf_Internal_Versym iver;
9495 unsigned short version_index;
9496
9497 if (ELF_ST_BIND (isym->st_info) == STB_LOCAL
9498 || isym->st_shndx == SHN_UNDEF)
9499 continue;
9500
9501 name = bfd_elf_string_from_elf_section (input,
9502 hdr->sh_link,
9503 isym->st_name);
9504 if (strcmp (name, h->root.root.string) != 0)
9505 continue;
9506
9507 _bfd_elf_swap_versym_in (input, ever, &iver);
9508
9509 if ((iver.vs_vers & VERSYM_HIDDEN) == 0
9510 && !(h->def_regular
9511 && h->forced_local))
9512 {
9513 /* If we have a non-hidden versioned sym, then it should
9514 have provided a definition for the undefined sym unless
9515 it is defined in a non-shared object and forced local.
9516 */
9517 abort ();
9518 }
9519
9520 version_index = iver.vs_vers & VERSYM_VERSION;
9521 if (version_index == 1 || version_index == 2)
9522 {
9523 /* This is the base or first version. We can use it. */
9524 free (extversym);
9525 free (isymbuf);
9526 return TRUE;
9527 }
9528 }
9529
9530 free (extversym);
9531 free (isymbuf);
9532 }
9533
9534 return FALSE;
9535 }
9536
9537 /* Convert ELF common symbol TYPE. */
9538
9539 static int
9540 elf_link_convert_common_type (struct bfd_link_info *info, int type)
9541 {
9542 /* Commom symbol can only appear in relocatable link. */
9543 if (!bfd_link_relocatable (info))
9544 abort ();
9545 switch (info->elf_stt_common)
9546 {
9547 case unchanged:
9548 break;
9549 case elf_stt_common:
9550 type = STT_COMMON;
9551 break;
9552 case no_elf_stt_common:
9553 type = STT_OBJECT;
9554 break;
9555 }
9556 return type;
9557 }
9558
9559 /* Add an external symbol to the symbol table. This is called from
9560 the hash table traversal routine. When generating a shared object,
9561 we go through the symbol table twice. The first time we output
9562 anything that might have been forced to local scope in a version
9563 script. The second time we output the symbols that are still
9564 global symbols. */
9565
9566 static bfd_boolean
9567 elf_link_output_extsym (struct bfd_hash_entry *bh, void *data)
9568 {
9569 struct elf_link_hash_entry *h = (struct elf_link_hash_entry *) bh;
9570 struct elf_outext_info *eoinfo = (struct elf_outext_info *) data;
9571 struct elf_final_link_info *flinfo = eoinfo->flinfo;
9572 bfd_boolean strip;
9573 Elf_Internal_Sym sym;
9574 asection *input_sec;
9575 const struct elf_backend_data *bed;
9576 long indx;
9577 int ret;
9578 unsigned int type;
9579
9580 if (h->root.type == bfd_link_hash_warning)
9581 {
9582 h = (struct elf_link_hash_entry *) h->root.u.i.link;
9583 if (h->root.type == bfd_link_hash_new)
9584 return TRUE;
9585 }
9586
9587 /* Decide whether to output this symbol in this pass. */
9588 if (eoinfo->localsyms)
9589 {
9590 if (!h->forced_local)
9591 return TRUE;
9592 }
9593 else
9594 {
9595 if (h->forced_local)
9596 return TRUE;
9597 }
9598
9599 bed = get_elf_backend_data (flinfo->output_bfd);
9600
9601 if (h->root.type == bfd_link_hash_undefined)
9602 {
9603 /* If we have an undefined symbol reference here then it must have
9604 come from a shared library that is being linked in. (Undefined
9605 references in regular files have already been handled unless
9606 they are in unreferenced sections which are removed by garbage
9607 collection). */
9608 bfd_boolean ignore_undef = FALSE;
9609
9610 /* Some symbols may be special in that the fact that they're
9611 undefined can be safely ignored - let backend determine that. */
9612 if (bed->elf_backend_ignore_undef_symbol)
9613 ignore_undef = bed->elf_backend_ignore_undef_symbol (h);
9614
9615 /* If we are reporting errors for this situation then do so now. */
9616 if (!ignore_undef
9617 && h->ref_dynamic
9618 && (!h->ref_regular || flinfo->info->gc_sections)
9619 && !elf_link_check_versioned_symbol (flinfo->info, bed, h)
9620 && flinfo->info->unresolved_syms_in_shared_libs != RM_IGNORE)
9621 (*flinfo->info->callbacks->undefined_symbol)
9622 (flinfo->info, h->root.root.string,
9623 h->ref_regular ? NULL : h->root.u.undef.abfd,
9624 NULL, 0,
9625 flinfo->info->unresolved_syms_in_shared_libs == RM_GENERATE_ERROR);
9626
9627 /* Strip a global symbol defined in a discarded section. */
9628 if (h->indx == -3)
9629 return TRUE;
9630 }
9631
9632 /* We should also warn if a forced local symbol is referenced from
9633 shared libraries. */
9634 if (bfd_link_executable (flinfo->info)
9635 && h->forced_local
9636 && h->ref_dynamic
9637 && h->def_regular
9638 && !h->dynamic_def
9639 && h->ref_dynamic_nonweak
9640 && !elf_link_check_versioned_symbol (flinfo->info, bed, h))
9641 {
9642 bfd *def_bfd;
9643 const char *msg;
9644 struct elf_link_hash_entry *hi = h;
9645
9646 /* Check indirect symbol. */
9647 while (hi->root.type == bfd_link_hash_indirect)
9648 hi = (struct elf_link_hash_entry *) hi->root.u.i.link;
9649
9650 if (ELF_ST_VISIBILITY (h->other) == STV_INTERNAL)
9651 /* xgettext:c-format */
9652 msg = _("%B: internal symbol `%s' in %B is referenced by DSO");
9653 else if (ELF_ST_VISIBILITY (h->other) == STV_HIDDEN)
9654 /* xgettext:c-format */
9655 msg = _("%B: hidden symbol `%s' in %B is referenced by DSO");
9656 else
9657 /* xgettext:c-format */
9658 msg = _("%B: local symbol `%s' in %B is referenced by DSO");
9659 def_bfd = flinfo->output_bfd;
9660 if (hi->root.u.def.section != bfd_abs_section_ptr)
9661 def_bfd = hi->root.u.def.section->owner;
9662 _bfd_error_handler (msg, flinfo->output_bfd,
9663 h->root.root.string, def_bfd);
9664 bfd_set_error (bfd_error_bad_value);
9665 eoinfo->failed = TRUE;
9666 return FALSE;
9667 }
9668
9669 /* We don't want to output symbols that have never been mentioned by
9670 a regular file, or that we have been told to strip. However, if
9671 h->indx is set to -2, the symbol is used by a reloc and we must
9672 output it. */
9673 strip = FALSE;
9674 if (h->indx == -2)
9675 ;
9676 else if ((h->def_dynamic
9677 || h->ref_dynamic
9678 || h->root.type == bfd_link_hash_new)
9679 && !h->def_regular
9680 && !h->ref_regular)
9681 strip = TRUE;
9682 else if (flinfo->info->strip == strip_all)
9683 strip = TRUE;
9684 else if (flinfo->info->strip == strip_some
9685 && bfd_hash_lookup (flinfo->info->keep_hash,
9686 h->root.root.string, FALSE, FALSE) == NULL)
9687 strip = TRUE;
9688 else if ((h->root.type == bfd_link_hash_defined
9689 || h->root.type == bfd_link_hash_defweak)
9690 && ((flinfo->info->strip_discarded
9691 && discarded_section (h->root.u.def.section))
9692 || ((h->root.u.def.section->flags & SEC_LINKER_CREATED) == 0
9693 && h->root.u.def.section->owner != NULL
9694 && (h->root.u.def.section->owner->flags & BFD_PLUGIN) != 0)))
9695 strip = TRUE;
9696 else if ((h->root.type == bfd_link_hash_undefined
9697 || h->root.type == bfd_link_hash_undefweak)
9698 && h->root.u.undef.abfd != NULL
9699 && (h->root.u.undef.abfd->flags & BFD_PLUGIN) != 0)
9700 strip = TRUE;
9701
9702 type = h->type;
9703
9704 /* If we're stripping it, and it's not a dynamic symbol, there's
9705 nothing else to do. However, if it is a forced local symbol or
9706 an ifunc symbol we need to give the backend finish_dynamic_symbol
9707 function a chance to make it dynamic. */
9708 if (strip
9709 && h->dynindx == -1
9710 && type != STT_GNU_IFUNC
9711 && !h->forced_local)
9712 return TRUE;
9713
9714 sym.st_value = 0;
9715 sym.st_size = h->size;
9716 sym.st_other = h->other;
9717 switch (h->root.type)
9718 {
9719 default:
9720 case bfd_link_hash_new:
9721 case bfd_link_hash_warning:
9722 abort ();
9723 return FALSE;
9724
9725 case bfd_link_hash_undefined:
9726 case bfd_link_hash_undefweak:
9727 input_sec = bfd_und_section_ptr;
9728 sym.st_shndx = SHN_UNDEF;
9729 break;
9730
9731 case bfd_link_hash_defined:
9732 case bfd_link_hash_defweak:
9733 {
9734 input_sec = h->root.u.def.section;
9735 if (input_sec->output_section != NULL)
9736 {
9737 sym.st_shndx =
9738 _bfd_elf_section_from_bfd_section (flinfo->output_bfd,
9739 input_sec->output_section);
9740 if (sym.st_shndx == SHN_BAD)
9741 {
9742 _bfd_error_handler
9743 /* xgettext:c-format */
9744 (_("%B: could not find output section %A for input section %A"),
9745 flinfo->output_bfd, input_sec->output_section, input_sec);
9746 bfd_set_error (bfd_error_nonrepresentable_section);
9747 eoinfo->failed = TRUE;
9748 return FALSE;
9749 }
9750
9751 /* ELF symbols in relocatable files are section relative,
9752 but in nonrelocatable files they are virtual
9753 addresses. */
9754 sym.st_value = h->root.u.def.value + input_sec->output_offset;
9755 if (!bfd_link_relocatable (flinfo->info))
9756 {
9757 sym.st_value += input_sec->output_section->vma;
9758 if (h->type == STT_TLS)
9759 {
9760 asection *tls_sec = elf_hash_table (flinfo->info)->tls_sec;
9761 if (tls_sec != NULL)
9762 sym.st_value -= tls_sec->vma;
9763 }
9764 }
9765 }
9766 else
9767 {
9768 BFD_ASSERT (input_sec->owner == NULL
9769 || (input_sec->owner->flags & DYNAMIC) != 0);
9770 sym.st_shndx = SHN_UNDEF;
9771 input_sec = bfd_und_section_ptr;
9772 }
9773 }
9774 break;
9775
9776 case bfd_link_hash_common:
9777 input_sec = h->root.u.c.p->section;
9778 sym.st_shndx = bed->common_section_index (input_sec);
9779 sym.st_value = 1 << h->root.u.c.p->alignment_power;
9780 break;
9781
9782 case bfd_link_hash_indirect:
9783 /* These symbols are created by symbol versioning. They point
9784 to the decorated version of the name. For example, if the
9785 symbol foo@@GNU_1.2 is the default, which should be used when
9786 foo is used with no version, then we add an indirect symbol
9787 foo which points to foo@@GNU_1.2. We ignore these symbols,
9788 since the indirected symbol is already in the hash table. */
9789 return TRUE;
9790 }
9791
9792 if (type == STT_COMMON || type == STT_OBJECT)
9793 switch (h->root.type)
9794 {
9795 case bfd_link_hash_common:
9796 type = elf_link_convert_common_type (flinfo->info, type);
9797 break;
9798 case bfd_link_hash_defined:
9799 case bfd_link_hash_defweak:
9800 if (bed->common_definition (&sym))
9801 type = elf_link_convert_common_type (flinfo->info, type);
9802 else
9803 type = STT_OBJECT;
9804 break;
9805 case bfd_link_hash_undefined:
9806 case bfd_link_hash_undefweak:
9807 break;
9808 default:
9809 abort ();
9810 }
9811
9812 if (h->forced_local)
9813 {
9814 sym.st_info = ELF_ST_INFO (STB_LOCAL, type);
9815 /* Turn off visibility on local symbol. */
9816 sym.st_other &= ~ELF_ST_VISIBILITY (-1);
9817 }
9818 /* Set STB_GNU_UNIQUE only if symbol is defined in regular object. */
9819 else if (h->unique_global && h->def_regular)
9820 sym.st_info = ELF_ST_INFO (STB_GNU_UNIQUE, type);
9821 else if (h->root.type == bfd_link_hash_undefweak
9822 || h->root.type == bfd_link_hash_defweak)
9823 sym.st_info = ELF_ST_INFO (STB_WEAK, type);
9824 else
9825 sym.st_info = ELF_ST_INFO (STB_GLOBAL, type);
9826 sym.st_target_internal = h->target_internal;
9827
9828 /* Give the processor backend a chance to tweak the symbol value,
9829 and also to finish up anything that needs to be done for this
9830 symbol. FIXME: Not calling elf_backend_finish_dynamic_symbol for
9831 forced local syms when non-shared is due to a historical quirk.
9832 STT_GNU_IFUNC symbol must go through PLT. */
9833 if ((h->type == STT_GNU_IFUNC
9834 && h->def_regular
9835 && !bfd_link_relocatable (flinfo->info))
9836 || ((h->dynindx != -1
9837 || h->forced_local)
9838 && ((bfd_link_pic (flinfo->info)
9839 && (ELF_ST_VISIBILITY (h->other) == STV_DEFAULT
9840 || h->root.type != bfd_link_hash_undefweak))
9841 || !h->forced_local)
9842 && elf_hash_table (flinfo->info)->dynamic_sections_created))
9843 {
9844 if (! ((*bed->elf_backend_finish_dynamic_symbol)
9845 (flinfo->output_bfd, flinfo->info, h, &sym)))
9846 {
9847 eoinfo->failed = TRUE;
9848 return FALSE;
9849 }
9850 }
9851
9852 /* If we are marking the symbol as undefined, and there are no
9853 non-weak references to this symbol from a regular object, then
9854 mark the symbol as weak undefined; if there are non-weak
9855 references, mark the symbol as strong. We can't do this earlier,
9856 because it might not be marked as undefined until the
9857 finish_dynamic_symbol routine gets through with it. */
9858 if (sym.st_shndx == SHN_UNDEF
9859 && h->ref_regular
9860 && (ELF_ST_BIND (sym.st_info) == STB_GLOBAL
9861 || ELF_ST_BIND (sym.st_info) == STB_WEAK))
9862 {
9863 int bindtype;
9864 type = ELF_ST_TYPE (sym.st_info);
9865
9866 /* Turn an undefined IFUNC symbol into a normal FUNC symbol. */
9867 if (type == STT_GNU_IFUNC)
9868 type = STT_FUNC;
9869
9870 if (h->ref_regular_nonweak)
9871 bindtype = STB_GLOBAL;
9872 else
9873 bindtype = STB_WEAK;
9874 sym.st_info = ELF_ST_INFO (bindtype, type);
9875 }
9876
9877 /* If this is a symbol defined in a dynamic library, don't use the
9878 symbol size from the dynamic library. Relinking an executable
9879 against a new library may introduce gratuitous changes in the
9880 executable's symbols if we keep the size. */
9881 if (sym.st_shndx == SHN_UNDEF
9882 && !h->def_regular
9883 && h->def_dynamic)
9884 sym.st_size = 0;
9885
9886 /* If a non-weak symbol with non-default visibility is not defined
9887 locally, it is a fatal error. */
9888 if (!bfd_link_relocatable (flinfo->info)
9889 && ELF_ST_VISIBILITY (sym.st_other) != STV_DEFAULT
9890 && ELF_ST_BIND (sym.st_info) != STB_WEAK
9891 && h->root.type == bfd_link_hash_undefined
9892 && !h->def_regular)
9893 {
9894 const char *msg;
9895
9896 if (ELF_ST_VISIBILITY (sym.st_other) == STV_PROTECTED)
9897 /* xgettext:c-format */
9898 msg = _("%B: protected symbol `%s' isn't defined");
9899 else if (ELF_ST_VISIBILITY (sym.st_other) == STV_INTERNAL)
9900 /* xgettext:c-format */
9901 msg = _("%B: internal symbol `%s' isn't defined");
9902 else
9903 /* xgettext:c-format */
9904 msg = _("%B: hidden symbol `%s' isn't defined");
9905 _bfd_error_handler (msg, flinfo->output_bfd, h->root.root.string);
9906 bfd_set_error (bfd_error_bad_value);
9907 eoinfo->failed = TRUE;
9908 return FALSE;
9909 }
9910
9911 /* If this symbol should be put in the .dynsym section, then put it
9912 there now. We already know the symbol index. We also fill in
9913 the entry in the .hash section. */
9914 if (elf_hash_table (flinfo->info)->dynsym != NULL
9915 && h->dynindx != -1
9916 && elf_hash_table (flinfo->info)->dynamic_sections_created)
9917 {
9918 bfd_byte *esym;
9919
9920 /* Since there is no version information in the dynamic string,
9921 if there is no version info in symbol version section, we will
9922 have a run-time problem if not linking executable, referenced
9923 by shared library, or not bound locally. */
9924 if (h->verinfo.verdef == NULL
9925 && (!bfd_link_executable (flinfo->info)
9926 || h->ref_dynamic
9927 || !h->def_regular))
9928 {
9929 char *p = strrchr (h->root.root.string, ELF_VER_CHR);
9930
9931 if (p && p [1] != '\0')
9932 {
9933 _bfd_error_handler
9934 /* xgettext:c-format */
9935 (_("%B: No symbol version section for versioned symbol `%s'"),
9936 flinfo->output_bfd, h->root.root.string);
9937 eoinfo->failed = TRUE;
9938 return FALSE;
9939 }
9940 }
9941
9942 sym.st_name = h->dynstr_index;
9943 esym = (elf_hash_table (flinfo->info)->dynsym->contents
9944 + h->dynindx * bed->s->sizeof_sym);
9945 if (!check_dynsym (flinfo->output_bfd, &sym))
9946 {
9947 eoinfo->failed = TRUE;
9948 return FALSE;
9949 }
9950 bed->s->swap_symbol_out (flinfo->output_bfd, &sym, esym, 0);
9951
9952 if (flinfo->hash_sec != NULL)
9953 {
9954 size_t hash_entry_size;
9955 bfd_byte *bucketpos;
9956 bfd_vma chain;
9957 size_t bucketcount;
9958 size_t bucket;
9959
9960 bucketcount = elf_hash_table (flinfo->info)->bucketcount;
9961 bucket = h->u.elf_hash_value % bucketcount;
9962
9963 hash_entry_size
9964 = elf_section_data (flinfo->hash_sec)->this_hdr.sh_entsize;
9965 bucketpos = ((bfd_byte *) flinfo->hash_sec->contents
9966 + (bucket + 2) * hash_entry_size);
9967 chain = bfd_get (8 * hash_entry_size, flinfo->output_bfd, bucketpos);
9968 bfd_put (8 * hash_entry_size, flinfo->output_bfd, h->dynindx,
9969 bucketpos);
9970 bfd_put (8 * hash_entry_size, flinfo->output_bfd, chain,
9971 ((bfd_byte *) flinfo->hash_sec->contents
9972 + (bucketcount + 2 + h->dynindx) * hash_entry_size));
9973 }
9974
9975 if (flinfo->symver_sec != NULL && flinfo->symver_sec->contents != NULL)
9976 {
9977 Elf_Internal_Versym iversym;
9978 Elf_External_Versym *eversym;
9979
9980 if (!h->def_regular)
9981 {
9982 if (h->verinfo.verdef == NULL
9983 || (elf_dyn_lib_class (h->verinfo.verdef->vd_bfd)
9984 & (DYN_AS_NEEDED | DYN_DT_NEEDED | DYN_NO_NEEDED)))
9985 iversym.vs_vers = 0;
9986 else
9987 iversym.vs_vers = h->verinfo.verdef->vd_exp_refno + 1;
9988 }
9989 else
9990 {
9991 if (h->verinfo.vertree == NULL)
9992 iversym.vs_vers = 1;
9993 else
9994 iversym.vs_vers = h->verinfo.vertree->vernum + 1;
9995 if (flinfo->info->create_default_symver)
9996 iversym.vs_vers++;
9997 }
9998
9999 /* Turn on VERSYM_HIDDEN only if the hidden versioned symbol is
10000 defined locally. */
10001 if (h->versioned == versioned_hidden && h->def_regular)
10002 iversym.vs_vers |= VERSYM_HIDDEN;
10003
10004 eversym = (Elf_External_Versym *) flinfo->symver_sec->contents;
10005 eversym += h->dynindx;
10006 _bfd_elf_swap_versym_out (flinfo->output_bfd, &iversym, eversym);
10007 }
10008 }
10009
10010 /* If the symbol is undefined, and we didn't output it to .dynsym,
10011 strip it from .symtab too. Obviously we can't do this for
10012 relocatable output or when needed for --emit-relocs. */
10013 else if (input_sec == bfd_und_section_ptr
10014 && h->indx != -2
10015 /* PR 22319 Do not strip global undefined symbols marked as being needed. */
10016 && (h->mark != 1 || ELF_ST_BIND (sym.st_info) != STB_GLOBAL)
10017 && !bfd_link_relocatable (flinfo->info))
10018 return TRUE;
10019
10020 /* Also strip others that we couldn't earlier due to dynamic symbol
10021 processing. */
10022 if (strip)
10023 return TRUE;
10024 if ((input_sec->flags & SEC_EXCLUDE) != 0)
10025 return TRUE;
10026
10027 /* Output a FILE symbol so that following locals are not associated
10028 with the wrong input file. We need one for forced local symbols
10029 if we've seen more than one FILE symbol or when we have exactly
10030 one FILE symbol but global symbols are present in a file other
10031 than the one with the FILE symbol. We also need one if linker
10032 defined symbols are present. In practice these conditions are
10033 always met, so just emit the FILE symbol unconditionally. */
10034 if (eoinfo->localsyms
10035 && !eoinfo->file_sym_done
10036 && eoinfo->flinfo->filesym_count != 0)
10037 {
10038 Elf_Internal_Sym fsym;
10039
10040 memset (&fsym, 0, sizeof (fsym));
10041 fsym.st_info = ELF_ST_INFO (STB_LOCAL, STT_FILE);
10042 fsym.st_shndx = SHN_ABS;
10043 if (!elf_link_output_symstrtab (eoinfo->flinfo, NULL, &fsym,
10044 bfd_und_section_ptr, NULL))
10045 return FALSE;
10046
10047 eoinfo->file_sym_done = TRUE;
10048 }
10049
10050 indx = bfd_get_symcount (flinfo->output_bfd);
10051 ret = elf_link_output_symstrtab (flinfo, h->root.root.string, &sym,
10052 input_sec, h);
10053 if (ret == 0)
10054 {
10055 eoinfo->failed = TRUE;
10056 return FALSE;
10057 }
10058 else if (ret == 1)
10059 h->indx = indx;
10060 else if (h->indx == -2)
10061 abort();
10062
10063 return TRUE;
10064 }
10065
10066 /* Return TRUE if special handling is done for relocs in SEC against
10067 symbols defined in discarded sections. */
10068
10069 static bfd_boolean
10070 elf_section_ignore_discarded_relocs (asection *sec)
10071 {
10072 const struct elf_backend_data *bed;
10073
10074 switch (sec->sec_info_type)
10075 {
10076 case SEC_INFO_TYPE_STABS:
10077 case SEC_INFO_TYPE_EH_FRAME:
10078 case SEC_INFO_TYPE_EH_FRAME_ENTRY:
10079 return TRUE;
10080 default:
10081 break;
10082 }
10083
10084 bed = get_elf_backend_data (sec->owner);
10085 if (bed->elf_backend_ignore_discarded_relocs != NULL
10086 && (*bed->elf_backend_ignore_discarded_relocs) (sec))
10087 return TRUE;
10088
10089 return FALSE;
10090 }
10091
10092 /* Return a mask saying how ld should treat relocations in SEC against
10093 symbols defined in discarded sections. If this function returns
10094 COMPLAIN set, ld will issue a warning message. If this function
10095 returns PRETEND set, and the discarded section was link-once and the
10096 same size as the kept link-once section, ld will pretend that the
10097 symbol was actually defined in the kept section. Otherwise ld will
10098 zero the reloc (at least that is the intent, but some cooperation by
10099 the target dependent code is needed, particularly for REL targets). */
10100
10101 unsigned int
10102 _bfd_elf_default_action_discarded (asection *sec)
10103 {
10104 if (sec->flags & SEC_DEBUGGING)
10105 return PRETEND;
10106
10107 if (strcmp (".eh_frame", sec->name) == 0)
10108 return 0;
10109
10110 if (strcmp (".gcc_except_table", sec->name) == 0)
10111 return 0;
10112
10113 return COMPLAIN | PRETEND;
10114 }
10115
10116 /* Find a match between a section and a member of a section group. */
10117
10118 static asection *
10119 match_group_member (asection *sec, asection *group,
10120 struct bfd_link_info *info)
10121 {
10122 asection *first = elf_next_in_group (group);
10123 asection *s = first;
10124
10125 while (s != NULL)
10126 {
10127 if (bfd_elf_match_symbols_in_sections (s, sec, info))
10128 return s;
10129
10130 s = elf_next_in_group (s);
10131 if (s == first)
10132 break;
10133 }
10134
10135 return NULL;
10136 }
10137
10138 /* Check if the kept section of a discarded section SEC can be used
10139 to replace it. Return the replacement if it is OK. Otherwise return
10140 NULL. */
10141
10142 asection *
10143 _bfd_elf_check_kept_section (asection *sec, struct bfd_link_info *info)
10144 {
10145 asection *kept;
10146
10147 kept = sec->kept_section;
10148 if (kept != NULL)
10149 {
10150 if ((kept->flags & SEC_GROUP) != 0)
10151 kept = match_group_member (sec, kept, info);
10152 if (kept != NULL
10153 && ((sec->rawsize != 0 ? sec->rawsize : sec->size)
10154 != (kept->rawsize != 0 ? kept->rawsize : kept->size)))
10155 kept = NULL;
10156 sec->kept_section = kept;
10157 }
10158 return kept;
10159 }
10160
10161 /* Link an input file into the linker output file. This function
10162 handles all the sections and relocations of the input file at once.
10163 This is so that we only have to read the local symbols once, and
10164 don't have to keep them in memory. */
10165
10166 static bfd_boolean
10167 elf_link_input_bfd (struct elf_final_link_info *flinfo, bfd *input_bfd)
10168 {
10169 int (*relocate_section)
10170 (bfd *, struct bfd_link_info *, bfd *, asection *, bfd_byte *,
10171 Elf_Internal_Rela *, Elf_Internal_Sym *, asection **);
10172 bfd *output_bfd;
10173 Elf_Internal_Shdr *symtab_hdr;
10174 size_t locsymcount;
10175 size_t extsymoff;
10176 Elf_Internal_Sym *isymbuf;
10177 Elf_Internal_Sym *isym;
10178 Elf_Internal_Sym *isymend;
10179 long *pindex;
10180 asection **ppsection;
10181 asection *o;
10182 const struct elf_backend_data *bed;
10183 struct elf_link_hash_entry **sym_hashes;
10184 bfd_size_type address_size;
10185 bfd_vma r_type_mask;
10186 int r_sym_shift;
10187 bfd_boolean have_file_sym = FALSE;
10188
10189 output_bfd = flinfo->output_bfd;
10190 bed = get_elf_backend_data (output_bfd);
10191 relocate_section = bed->elf_backend_relocate_section;
10192
10193 /* If this is a dynamic object, we don't want to do anything here:
10194 we don't want the local symbols, and we don't want the section
10195 contents. */
10196 if ((input_bfd->flags & DYNAMIC) != 0)
10197 return TRUE;
10198
10199 symtab_hdr = &elf_tdata (input_bfd)->symtab_hdr;
10200 if (elf_bad_symtab (input_bfd))
10201 {
10202 locsymcount = symtab_hdr->sh_size / bed->s->sizeof_sym;
10203 extsymoff = 0;
10204 }
10205 else
10206 {
10207 locsymcount = symtab_hdr->sh_info;
10208 extsymoff = symtab_hdr->sh_info;
10209 }
10210
10211 /* Read the local symbols. */
10212 isymbuf = (Elf_Internal_Sym *) symtab_hdr->contents;
10213 if (isymbuf == NULL && locsymcount != 0)
10214 {
10215 isymbuf = bfd_elf_get_elf_syms (input_bfd, symtab_hdr, locsymcount, 0,
10216 flinfo->internal_syms,
10217 flinfo->external_syms,
10218 flinfo->locsym_shndx);
10219 if (isymbuf == NULL)
10220 return FALSE;
10221 }
10222
10223 /* Find local symbol sections and adjust values of symbols in
10224 SEC_MERGE sections. Write out those local symbols we know are
10225 going into the output file. */
10226 isymend = isymbuf + locsymcount;
10227 for (isym = isymbuf, pindex = flinfo->indices, ppsection = flinfo->sections;
10228 isym < isymend;
10229 isym++, pindex++, ppsection++)
10230 {
10231 asection *isec;
10232 const char *name;
10233 Elf_Internal_Sym osym;
10234 long indx;
10235 int ret;
10236
10237 *pindex = -1;
10238
10239 if (elf_bad_symtab (input_bfd))
10240 {
10241 if (ELF_ST_BIND (isym->st_info) != STB_LOCAL)
10242 {
10243 *ppsection = NULL;
10244 continue;
10245 }
10246 }
10247
10248 if (isym->st_shndx == SHN_UNDEF)
10249 isec = bfd_und_section_ptr;
10250 else if (isym->st_shndx == SHN_ABS)
10251 isec = bfd_abs_section_ptr;
10252 else if (isym->st_shndx == SHN_COMMON)
10253 isec = bfd_com_section_ptr;
10254 else
10255 {
10256 isec = bfd_section_from_elf_index (input_bfd, isym->st_shndx);
10257 if (isec == NULL)
10258 {
10259 /* Don't attempt to output symbols with st_shnx in the
10260 reserved range other than SHN_ABS and SHN_COMMON. */
10261 *ppsection = NULL;
10262 continue;
10263 }
10264 else if (isec->sec_info_type == SEC_INFO_TYPE_MERGE
10265 && ELF_ST_TYPE (isym->st_info) != STT_SECTION)
10266 isym->st_value =
10267 _bfd_merged_section_offset (output_bfd, &isec,
10268 elf_section_data (isec)->sec_info,
10269 isym->st_value);
10270 }
10271
10272 *ppsection = isec;
10273
10274 /* Don't output the first, undefined, symbol. In fact, don't
10275 output any undefined local symbol. */
10276 if (isec == bfd_und_section_ptr)
10277 continue;
10278
10279 if (ELF_ST_TYPE (isym->st_info) == STT_SECTION)
10280 {
10281 /* We never output section symbols. Instead, we use the
10282 section symbol of the corresponding section in the output
10283 file. */
10284 continue;
10285 }
10286
10287 /* If we are stripping all symbols, we don't want to output this
10288 one. */
10289 if (flinfo->info->strip == strip_all)
10290 continue;
10291
10292 /* If we are discarding all local symbols, we don't want to
10293 output this one. If we are generating a relocatable output
10294 file, then some of the local symbols may be required by
10295 relocs; we output them below as we discover that they are
10296 needed. */
10297 if (flinfo->info->discard == discard_all)
10298 continue;
10299
10300 /* If this symbol is defined in a section which we are
10301 discarding, we don't need to keep it. */
10302 if (isym->st_shndx != SHN_UNDEF
10303 && isym->st_shndx < SHN_LORESERVE
10304 && bfd_section_removed_from_list (output_bfd,
10305 isec->output_section))
10306 continue;
10307
10308 /* Get the name of the symbol. */
10309 name = bfd_elf_string_from_elf_section (input_bfd, symtab_hdr->sh_link,
10310 isym->st_name);
10311 if (name == NULL)
10312 return FALSE;
10313
10314 /* See if we are discarding symbols with this name. */
10315 if ((flinfo->info->strip == strip_some
10316 && (bfd_hash_lookup (flinfo->info->keep_hash, name, FALSE, FALSE)
10317 == NULL))
10318 || (((flinfo->info->discard == discard_sec_merge
10319 && (isec->flags & SEC_MERGE)
10320 && !bfd_link_relocatable (flinfo->info))
10321 || flinfo->info->discard == discard_l)
10322 && bfd_is_local_label_name (input_bfd, name)))
10323 continue;
10324
10325 if (ELF_ST_TYPE (isym->st_info) == STT_FILE)
10326 {
10327 if (input_bfd->lto_output)
10328 /* -flto puts a temp file name here. This means builds
10329 are not reproducible. Discard the symbol. */
10330 continue;
10331 have_file_sym = TRUE;
10332 flinfo->filesym_count += 1;
10333 }
10334 if (!have_file_sym)
10335 {
10336 /* In the absence of debug info, bfd_find_nearest_line uses
10337 FILE symbols to determine the source file for local
10338 function symbols. Provide a FILE symbol here if input
10339 files lack such, so that their symbols won't be
10340 associated with a previous input file. It's not the
10341 source file, but the best we can do. */
10342 have_file_sym = TRUE;
10343 flinfo->filesym_count += 1;
10344 memset (&osym, 0, sizeof (osym));
10345 osym.st_info = ELF_ST_INFO (STB_LOCAL, STT_FILE);
10346 osym.st_shndx = SHN_ABS;
10347 if (!elf_link_output_symstrtab (flinfo,
10348 (input_bfd->lto_output ? NULL
10349 : input_bfd->filename),
10350 &osym, bfd_abs_section_ptr,
10351 NULL))
10352 return FALSE;
10353 }
10354
10355 osym = *isym;
10356
10357 /* Adjust the section index for the output file. */
10358 osym.st_shndx = _bfd_elf_section_from_bfd_section (output_bfd,
10359 isec->output_section);
10360 if (osym.st_shndx == SHN_BAD)
10361 return FALSE;
10362
10363 /* ELF symbols in relocatable files are section relative, but
10364 in executable files they are virtual addresses. Note that
10365 this code assumes that all ELF sections have an associated
10366 BFD section with a reasonable value for output_offset; below
10367 we assume that they also have a reasonable value for
10368 output_section. Any special sections must be set up to meet
10369 these requirements. */
10370 osym.st_value += isec->output_offset;
10371 if (!bfd_link_relocatable (flinfo->info))
10372 {
10373 osym.st_value += isec->output_section->vma;
10374 if (ELF_ST_TYPE (osym.st_info) == STT_TLS)
10375 {
10376 /* STT_TLS symbols are relative to PT_TLS segment base. */
10377 BFD_ASSERT (elf_hash_table (flinfo->info)->tls_sec != NULL);
10378 osym.st_value -= elf_hash_table (flinfo->info)->tls_sec->vma;
10379 }
10380 }
10381
10382 indx = bfd_get_symcount (output_bfd);
10383 ret = elf_link_output_symstrtab (flinfo, name, &osym, isec, NULL);
10384 if (ret == 0)
10385 return FALSE;
10386 else if (ret == 1)
10387 *pindex = indx;
10388 }
10389
10390 if (bed->s->arch_size == 32)
10391 {
10392 r_type_mask = 0xff;
10393 r_sym_shift = 8;
10394 address_size = 4;
10395 }
10396 else
10397 {
10398 r_type_mask = 0xffffffff;
10399 r_sym_shift = 32;
10400 address_size = 8;
10401 }
10402
10403 /* Relocate the contents of each section. */
10404 sym_hashes = elf_sym_hashes (input_bfd);
10405 for (o = input_bfd->sections; o != NULL; o = o->next)
10406 {
10407 bfd_byte *contents;
10408
10409 if (! o->linker_mark)
10410 {
10411 /* This section was omitted from the link. */
10412 continue;
10413 }
10414
10415 if (!flinfo->info->resolve_section_groups
10416 && (o->flags & (SEC_LINKER_CREATED | SEC_GROUP)) == SEC_GROUP)
10417 {
10418 /* Deal with the group signature symbol. */
10419 struct bfd_elf_section_data *sec_data = elf_section_data (o);
10420 unsigned long symndx = sec_data->this_hdr.sh_info;
10421 asection *osec = o->output_section;
10422
10423 BFD_ASSERT (bfd_link_relocatable (flinfo->info));
10424 if (symndx >= locsymcount
10425 || (elf_bad_symtab (input_bfd)
10426 && flinfo->sections[symndx] == NULL))
10427 {
10428 struct elf_link_hash_entry *h = sym_hashes[symndx - extsymoff];
10429 while (h->root.type == bfd_link_hash_indirect
10430 || h->root.type == bfd_link_hash_warning)
10431 h = (struct elf_link_hash_entry *) h->root.u.i.link;
10432 /* Arrange for symbol to be output. */
10433 h->indx = -2;
10434 elf_section_data (osec)->this_hdr.sh_info = -2;
10435 }
10436 else if (ELF_ST_TYPE (isymbuf[symndx].st_info) == STT_SECTION)
10437 {
10438 /* We'll use the output section target_index. */
10439 asection *sec = flinfo->sections[symndx]->output_section;
10440 elf_section_data (osec)->this_hdr.sh_info = sec->target_index;
10441 }
10442 else
10443 {
10444 if (flinfo->indices[symndx] == -1)
10445 {
10446 /* Otherwise output the local symbol now. */
10447 Elf_Internal_Sym sym = isymbuf[symndx];
10448 asection *sec = flinfo->sections[symndx]->output_section;
10449 const char *name;
10450 long indx;
10451 int ret;
10452
10453 name = bfd_elf_string_from_elf_section (input_bfd,
10454 symtab_hdr->sh_link,
10455 sym.st_name);
10456 if (name == NULL)
10457 return FALSE;
10458
10459 sym.st_shndx = _bfd_elf_section_from_bfd_section (output_bfd,
10460 sec);
10461 if (sym.st_shndx == SHN_BAD)
10462 return FALSE;
10463
10464 sym.st_value += o->output_offset;
10465
10466 indx = bfd_get_symcount (output_bfd);
10467 ret = elf_link_output_symstrtab (flinfo, name, &sym, o,
10468 NULL);
10469 if (ret == 0)
10470 return FALSE;
10471 else if (ret == 1)
10472 flinfo->indices[symndx] = indx;
10473 else
10474 abort ();
10475 }
10476 elf_section_data (osec)->this_hdr.sh_info
10477 = flinfo->indices[symndx];
10478 }
10479 }
10480
10481 if ((o->flags & SEC_HAS_CONTENTS) == 0
10482 || (o->size == 0 && (o->flags & SEC_RELOC) == 0))
10483 continue;
10484
10485 if ((o->flags & SEC_LINKER_CREATED) != 0)
10486 {
10487 /* Section was created by _bfd_elf_link_create_dynamic_sections
10488 or somesuch. */
10489 continue;
10490 }
10491
10492 /* Get the contents of the section. They have been cached by a
10493 relaxation routine. Note that o is a section in an input
10494 file, so the contents field will not have been set by any of
10495 the routines which work on output files. */
10496 if (elf_section_data (o)->this_hdr.contents != NULL)
10497 {
10498 contents = elf_section_data (o)->this_hdr.contents;
10499 if (bed->caches_rawsize
10500 && o->rawsize != 0
10501 && o->rawsize < o->size)
10502 {
10503 memcpy (flinfo->contents, contents, o->rawsize);
10504 contents = flinfo->contents;
10505 }
10506 }
10507 else
10508 {
10509 contents = flinfo->contents;
10510 if (! bfd_get_full_section_contents (input_bfd, o, &contents))
10511 return FALSE;
10512 }
10513
10514 if ((o->flags & SEC_RELOC) != 0)
10515 {
10516 Elf_Internal_Rela *internal_relocs;
10517 Elf_Internal_Rela *rel, *relend;
10518 int action_discarded;
10519 int ret;
10520
10521 /* Get the swapped relocs. */
10522 internal_relocs
10523 = _bfd_elf_link_read_relocs (input_bfd, o, flinfo->external_relocs,
10524 flinfo->internal_relocs, FALSE);
10525 if (internal_relocs == NULL
10526 && o->reloc_count > 0)
10527 return FALSE;
10528
10529 /* We need to reverse-copy input .ctors/.dtors sections if
10530 they are placed in .init_array/.finit_array for output. */
10531 if (o->size > address_size
10532 && ((strncmp (o->name, ".ctors", 6) == 0
10533 && strcmp (o->output_section->name,
10534 ".init_array") == 0)
10535 || (strncmp (o->name, ".dtors", 6) == 0
10536 && strcmp (o->output_section->name,
10537 ".fini_array") == 0))
10538 && (o->name[6] == 0 || o->name[6] == '.'))
10539 {
10540 if (o->size * bed->s->int_rels_per_ext_rel
10541 != o->reloc_count * address_size)
10542 {
10543 _bfd_error_handler
10544 /* xgettext:c-format */
10545 (_("error: %B: size of section %A is not "
10546 "multiple of address size"),
10547 input_bfd, o);
10548 bfd_set_error (bfd_error_bad_value);
10549 return FALSE;
10550 }
10551 o->flags |= SEC_ELF_REVERSE_COPY;
10552 }
10553
10554 action_discarded = -1;
10555 if (!elf_section_ignore_discarded_relocs (o))
10556 action_discarded = (*bed->action_discarded) (o);
10557
10558 /* Run through the relocs evaluating complex reloc symbols and
10559 looking for relocs against symbols from discarded sections
10560 or section symbols from removed link-once sections.
10561 Complain about relocs against discarded sections. Zero
10562 relocs against removed link-once sections. */
10563
10564 rel = internal_relocs;
10565 relend = rel + o->reloc_count;
10566 for ( ; rel < relend; rel++)
10567 {
10568 unsigned long r_symndx = rel->r_info >> r_sym_shift;
10569 unsigned int s_type;
10570 asection **ps, *sec;
10571 struct elf_link_hash_entry *h = NULL;
10572 const char *sym_name;
10573
10574 if (r_symndx == STN_UNDEF)
10575 continue;
10576
10577 if (r_symndx >= locsymcount
10578 || (elf_bad_symtab (input_bfd)
10579 && flinfo->sections[r_symndx] == NULL))
10580 {
10581 h = sym_hashes[r_symndx - extsymoff];
10582
10583 /* Badly formatted input files can contain relocs that
10584 reference non-existant symbols. Check here so that
10585 we do not seg fault. */
10586 if (h == NULL)
10587 {
10588 _bfd_error_handler
10589 /* xgettext:c-format */
10590 (_("error: %B contains a reloc (%#Lx) for section %A "
10591 "that references a non-existent global symbol"),
10592 input_bfd, rel->r_info, o);
10593 bfd_set_error (bfd_error_bad_value);
10594 return FALSE;
10595 }
10596
10597 while (h->root.type == bfd_link_hash_indirect
10598 || h->root.type == bfd_link_hash_warning)
10599 h = (struct elf_link_hash_entry *) h->root.u.i.link;
10600
10601 s_type = h->type;
10602
10603 /* If a plugin symbol is referenced from a non-IR file,
10604 mark the symbol as undefined. Note that the
10605 linker may attach linker created dynamic sections
10606 to the plugin bfd. Symbols defined in linker
10607 created sections are not plugin symbols. */
10608 if ((h->root.non_ir_ref_regular
10609 || h->root.non_ir_ref_dynamic)
10610 && (h->root.type == bfd_link_hash_defined
10611 || h->root.type == bfd_link_hash_defweak)
10612 && (h->root.u.def.section->flags
10613 & SEC_LINKER_CREATED) == 0
10614 && h->root.u.def.section->owner != NULL
10615 && (h->root.u.def.section->owner->flags
10616 & BFD_PLUGIN) != 0)
10617 {
10618 h->root.type = bfd_link_hash_undefined;
10619 h->root.u.undef.abfd = h->root.u.def.section->owner;
10620 }
10621
10622 ps = NULL;
10623 if (h->root.type == bfd_link_hash_defined
10624 || h->root.type == bfd_link_hash_defweak)
10625 ps = &h->root.u.def.section;
10626
10627 sym_name = h->root.root.string;
10628 }
10629 else
10630 {
10631 Elf_Internal_Sym *sym = isymbuf + r_symndx;
10632
10633 s_type = ELF_ST_TYPE (sym->st_info);
10634 ps = &flinfo->sections[r_symndx];
10635 sym_name = bfd_elf_sym_name (input_bfd, symtab_hdr,
10636 sym, *ps);
10637 }
10638
10639 if ((s_type == STT_RELC || s_type == STT_SRELC)
10640 && !bfd_link_relocatable (flinfo->info))
10641 {
10642 bfd_vma val;
10643 bfd_vma dot = (rel->r_offset
10644 + o->output_offset + o->output_section->vma);
10645 #ifdef DEBUG
10646 printf ("Encountered a complex symbol!");
10647 printf (" (input_bfd %s, section %s, reloc %ld\n",
10648 input_bfd->filename, o->name,
10649 (long) (rel - internal_relocs));
10650 printf (" symbol: idx %8.8lx, name %s\n",
10651 r_symndx, sym_name);
10652 printf (" reloc : info %8.8lx, addr %8.8lx\n",
10653 (unsigned long) rel->r_info,
10654 (unsigned long) rel->r_offset);
10655 #endif
10656 if (!eval_symbol (&val, &sym_name, input_bfd, flinfo, dot,
10657 isymbuf, locsymcount, s_type == STT_SRELC))
10658 return FALSE;
10659
10660 /* Symbol evaluated OK. Update to absolute value. */
10661 set_symbol_value (input_bfd, isymbuf, locsymcount,
10662 r_symndx, val);
10663 continue;
10664 }
10665
10666 if (action_discarded != -1 && ps != NULL)
10667 {
10668 /* Complain if the definition comes from a
10669 discarded section. */
10670 if ((sec = *ps) != NULL && discarded_section (sec))
10671 {
10672 BFD_ASSERT (r_symndx != STN_UNDEF);
10673 if (action_discarded & COMPLAIN)
10674 (*flinfo->info->callbacks->einfo)
10675 /* xgettext:c-format */
10676 (_("%X`%s' referenced in section `%A' of %B: "
10677 "defined in discarded section `%A' of %B\n"),
10678 sym_name, o, input_bfd, sec, sec->owner);
10679
10680 /* Try to do the best we can to support buggy old
10681 versions of gcc. Pretend that the symbol is
10682 really defined in the kept linkonce section.
10683 FIXME: This is quite broken. Modifying the
10684 symbol here means we will be changing all later
10685 uses of the symbol, not just in this section. */
10686 if (action_discarded & PRETEND)
10687 {
10688 asection *kept;
10689
10690 kept = _bfd_elf_check_kept_section (sec,
10691 flinfo->info);
10692 if (kept != NULL)
10693 {
10694 *ps = kept;
10695 continue;
10696 }
10697 }
10698 }
10699 }
10700 }
10701
10702 /* Relocate the section by invoking a back end routine.
10703
10704 The back end routine is responsible for adjusting the
10705 section contents as necessary, and (if using Rela relocs
10706 and generating a relocatable output file) adjusting the
10707 reloc addend as necessary.
10708
10709 The back end routine does not have to worry about setting
10710 the reloc address or the reloc symbol index.
10711
10712 The back end routine is given a pointer to the swapped in
10713 internal symbols, and can access the hash table entries
10714 for the external symbols via elf_sym_hashes (input_bfd).
10715
10716 When generating relocatable output, the back end routine
10717 must handle STB_LOCAL/STT_SECTION symbols specially. The
10718 output symbol is going to be a section symbol
10719 corresponding to the output section, which will require
10720 the addend to be adjusted. */
10721
10722 ret = (*relocate_section) (output_bfd, flinfo->info,
10723 input_bfd, o, contents,
10724 internal_relocs,
10725 isymbuf,
10726 flinfo->sections);
10727 if (!ret)
10728 return FALSE;
10729
10730 if (ret == 2
10731 || bfd_link_relocatable (flinfo->info)
10732 || flinfo->info->emitrelocations)
10733 {
10734 Elf_Internal_Rela *irela;
10735 Elf_Internal_Rela *irelaend, *irelamid;
10736 bfd_vma last_offset;
10737 struct elf_link_hash_entry **rel_hash;
10738 struct elf_link_hash_entry **rel_hash_list, **rela_hash_list;
10739 Elf_Internal_Shdr *input_rel_hdr, *input_rela_hdr;
10740 unsigned int next_erel;
10741 bfd_boolean rela_normal;
10742 struct bfd_elf_section_data *esdi, *esdo;
10743
10744 esdi = elf_section_data (o);
10745 esdo = elf_section_data (o->output_section);
10746 rela_normal = FALSE;
10747
10748 /* Adjust the reloc addresses and symbol indices. */
10749
10750 irela = internal_relocs;
10751 irelaend = irela + o->reloc_count;
10752 rel_hash = esdo->rel.hashes + esdo->rel.count;
10753 /* We start processing the REL relocs, if any. When we reach
10754 IRELAMID in the loop, we switch to the RELA relocs. */
10755 irelamid = irela;
10756 if (esdi->rel.hdr != NULL)
10757 irelamid += (NUM_SHDR_ENTRIES (esdi->rel.hdr)
10758 * bed->s->int_rels_per_ext_rel);
10759 rel_hash_list = rel_hash;
10760 rela_hash_list = NULL;
10761 last_offset = o->output_offset;
10762 if (!bfd_link_relocatable (flinfo->info))
10763 last_offset += o->output_section->vma;
10764 for (next_erel = 0; irela < irelaend; irela++, next_erel++)
10765 {
10766 unsigned long r_symndx;
10767 asection *sec;
10768 Elf_Internal_Sym sym;
10769
10770 if (next_erel == bed->s->int_rels_per_ext_rel)
10771 {
10772 rel_hash++;
10773 next_erel = 0;
10774 }
10775
10776 if (irela == irelamid)
10777 {
10778 rel_hash = esdo->rela.hashes + esdo->rela.count;
10779 rela_hash_list = rel_hash;
10780 rela_normal = bed->rela_normal;
10781 }
10782
10783 irela->r_offset = _bfd_elf_section_offset (output_bfd,
10784 flinfo->info, o,
10785 irela->r_offset);
10786 if (irela->r_offset >= (bfd_vma) -2)
10787 {
10788 /* This is a reloc for a deleted entry or somesuch.
10789 Turn it into an R_*_NONE reloc, at the same
10790 offset as the last reloc. elf_eh_frame.c and
10791 bfd_elf_discard_info rely on reloc offsets
10792 being ordered. */
10793 irela->r_offset = last_offset;
10794 irela->r_info = 0;
10795 irela->r_addend = 0;
10796 continue;
10797 }
10798
10799 irela->r_offset += o->output_offset;
10800
10801 /* Relocs in an executable have to be virtual addresses. */
10802 if (!bfd_link_relocatable (flinfo->info))
10803 irela->r_offset += o->output_section->vma;
10804
10805 last_offset = irela->r_offset;
10806
10807 r_symndx = irela->r_info >> r_sym_shift;
10808 if (r_symndx == STN_UNDEF)
10809 continue;
10810
10811 if (r_symndx >= locsymcount
10812 || (elf_bad_symtab (input_bfd)
10813 && flinfo->sections[r_symndx] == NULL))
10814 {
10815 struct elf_link_hash_entry *rh;
10816 unsigned long indx;
10817
10818 /* This is a reloc against a global symbol. We
10819 have not yet output all the local symbols, so
10820 we do not know the symbol index of any global
10821 symbol. We set the rel_hash entry for this
10822 reloc to point to the global hash table entry
10823 for this symbol. The symbol index is then
10824 set at the end of bfd_elf_final_link. */
10825 indx = r_symndx - extsymoff;
10826 rh = elf_sym_hashes (input_bfd)[indx];
10827 while (rh->root.type == bfd_link_hash_indirect
10828 || rh->root.type == bfd_link_hash_warning)
10829 rh = (struct elf_link_hash_entry *) rh->root.u.i.link;
10830
10831 /* Setting the index to -2 tells
10832 elf_link_output_extsym that this symbol is
10833 used by a reloc. */
10834 BFD_ASSERT (rh->indx < 0);
10835 rh->indx = -2;
10836 *rel_hash = rh;
10837
10838 continue;
10839 }
10840
10841 /* This is a reloc against a local symbol. */
10842
10843 *rel_hash = NULL;
10844 sym = isymbuf[r_symndx];
10845 sec = flinfo->sections[r_symndx];
10846 if (ELF_ST_TYPE (sym.st_info) == STT_SECTION)
10847 {
10848 /* I suppose the backend ought to fill in the
10849 section of any STT_SECTION symbol against a
10850 processor specific section. */
10851 r_symndx = STN_UNDEF;
10852 if (bfd_is_abs_section (sec))
10853 ;
10854 else if (sec == NULL || sec->owner == NULL)
10855 {
10856 bfd_set_error (bfd_error_bad_value);
10857 return FALSE;
10858 }
10859 else
10860 {
10861 asection *osec = sec->output_section;
10862
10863 /* If we have discarded a section, the output
10864 section will be the absolute section. In
10865 case of discarded SEC_MERGE sections, use
10866 the kept section. relocate_section should
10867 have already handled discarded linkonce
10868 sections. */
10869 if (bfd_is_abs_section (osec)
10870 && sec->kept_section != NULL
10871 && sec->kept_section->output_section != NULL)
10872 {
10873 osec = sec->kept_section->output_section;
10874 irela->r_addend -= osec->vma;
10875 }
10876
10877 if (!bfd_is_abs_section (osec))
10878 {
10879 r_symndx = osec->target_index;
10880 if (r_symndx == STN_UNDEF)
10881 {
10882 irela->r_addend += osec->vma;
10883 osec = _bfd_nearby_section (output_bfd, osec,
10884 osec->vma);
10885 irela->r_addend -= osec->vma;
10886 r_symndx = osec->target_index;
10887 }
10888 }
10889 }
10890
10891 /* Adjust the addend according to where the
10892 section winds up in the output section. */
10893 if (rela_normal)
10894 irela->r_addend += sec->output_offset;
10895 }
10896 else
10897 {
10898 if (flinfo->indices[r_symndx] == -1)
10899 {
10900 unsigned long shlink;
10901 const char *name;
10902 asection *osec;
10903 long indx;
10904
10905 if (flinfo->info->strip == strip_all)
10906 {
10907 /* You can't do ld -r -s. */
10908 bfd_set_error (bfd_error_invalid_operation);
10909 return FALSE;
10910 }
10911
10912 /* This symbol was skipped earlier, but
10913 since it is needed by a reloc, we
10914 must output it now. */
10915 shlink = symtab_hdr->sh_link;
10916 name = (bfd_elf_string_from_elf_section
10917 (input_bfd, shlink, sym.st_name));
10918 if (name == NULL)
10919 return FALSE;
10920
10921 osec = sec->output_section;
10922 sym.st_shndx =
10923 _bfd_elf_section_from_bfd_section (output_bfd,
10924 osec);
10925 if (sym.st_shndx == SHN_BAD)
10926 return FALSE;
10927
10928 sym.st_value += sec->output_offset;
10929 if (!bfd_link_relocatable (flinfo->info))
10930 {
10931 sym.st_value += osec->vma;
10932 if (ELF_ST_TYPE (sym.st_info) == STT_TLS)
10933 {
10934 /* STT_TLS symbols are relative to PT_TLS
10935 segment base. */
10936 BFD_ASSERT (elf_hash_table (flinfo->info)
10937 ->tls_sec != NULL);
10938 sym.st_value -= (elf_hash_table (flinfo->info)
10939 ->tls_sec->vma);
10940 }
10941 }
10942
10943 indx = bfd_get_symcount (output_bfd);
10944 ret = elf_link_output_symstrtab (flinfo, name,
10945 &sym, sec,
10946 NULL);
10947 if (ret == 0)
10948 return FALSE;
10949 else if (ret == 1)
10950 flinfo->indices[r_symndx] = indx;
10951 else
10952 abort ();
10953 }
10954
10955 r_symndx = flinfo->indices[r_symndx];
10956 }
10957
10958 irela->r_info = ((bfd_vma) r_symndx << r_sym_shift
10959 | (irela->r_info & r_type_mask));
10960 }
10961
10962 /* Swap out the relocs. */
10963 input_rel_hdr = esdi->rel.hdr;
10964 if (input_rel_hdr && input_rel_hdr->sh_size != 0)
10965 {
10966 if (!bed->elf_backend_emit_relocs (output_bfd, o,
10967 input_rel_hdr,
10968 internal_relocs,
10969 rel_hash_list))
10970 return FALSE;
10971 internal_relocs += (NUM_SHDR_ENTRIES (input_rel_hdr)
10972 * bed->s->int_rels_per_ext_rel);
10973 rel_hash_list += NUM_SHDR_ENTRIES (input_rel_hdr);
10974 }
10975
10976 input_rela_hdr = esdi->rela.hdr;
10977 if (input_rela_hdr && input_rela_hdr->sh_size != 0)
10978 {
10979 if (!bed->elf_backend_emit_relocs (output_bfd, o,
10980 input_rela_hdr,
10981 internal_relocs,
10982 rela_hash_list))
10983 return FALSE;
10984 }
10985 }
10986 }
10987
10988 /* Write out the modified section contents. */
10989 if (bed->elf_backend_write_section
10990 && (*bed->elf_backend_write_section) (output_bfd, flinfo->info, o,
10991 contents))
10992 {
10993 /* Section written out. */
10994 }
10995 else switch (o->sec_info_type)
10996 {
10997 case SEC_INFO_TYPE_STABS:
10998 if (! (_bfd_write_section_stabs
10999 (output_bfd,
11000 &elf_hash_table (flinfo->info)->stab_info,
11001 o, &elf_section_data (o)->sec_info, contents)))
11002 return FALSE;
11003 break;
11004 case SEC_INFO_TYPE_MERGE:
11005 if (! _bfd_write_merged_section (output_bfd, o,
11006 elf_section_data (o)->sec_info))
11007 return FALSE;
11008 break;
11009 case SEC_INFO_TYPE_EH_FRAME:
11010 {
11011 if (! _bfd_elf_write_section_eh_frame (output_bfd, flinfo->info,
11012 o, contents))
11013 return FALSE;
11014 }
11015 break;
11016 case SEC_INFO_TYPE_EH_FRAME_ENTRY:
11017 {
11018 if (! _bfd_elf_write_section_eh_frame_entry (output_bfd,
11019 flinfo->info,
11020 o, contents))
11021 return FALSE;
11022 }
11023 break;
11024 default:
11025 {
11026 if (! (o->flags & SEC_EXCLUDE))
11027 {
11028 file_ptr offset = (file_ptr) o->output_offset;
11029 bfd_size_type todo = o->size;
11030
11031 offset *= bfd_octets_per_byte (output_bfd);
11032
11033 if ((o->flags & SEC_ELF_REVERSE_COPY))
11034 {
11035 /* Reverse-copy input section to output. */
11036 do
11037 {
11038 todo -= address_size;
11039 if (! bfd_set_section_contents (output_bfd,
11040 o->output_section,
11041 contents + todo,
11042 offset,
11043 address_size))
11044 return FALSE;
11045 if (todo == 0)
11046 break;
11047 offset += address_size;
11048 }
11049 while (1);
11050 }
11051 else if (! bfd_set_section_contents (output_bfd,
11052 o->output_section,
11053 contents,
11054 offset, todo))
11055 return FALSE;
11056 }
11057 }
11058 break;
11059 }
11060 }
11061
11062 return TRUE;
11063 }
11064
11065 /* Generate a reloc when linking an ELF file. This is a reloc
11066 requested by the linker, and does not come from any input file. This
11067 is used to build constructor and destructor tables when linking
11068 with -Ur. */
11069
11070 static bfd_boolean
11071 elf_reloc_link_order (bfd *output_bfd,
11072 struct bfd_link_info *info,
11073 asection *output_section,
11074 struct bfd_link_order *link_order)
11075 {
11076 reloc_howto_type *howto;
11077 long indx;
11078 bfd_vma offset;
11079 bfd_vma addend;
11080 struct bfd_elf_section_reloc_data *reldata;
11081 struct elf_link_hash_entry **rel_hash_ptr;
11082 Elf_Internal_Shdr *rel_hdr;
11083 const struct elf_backend_data *bed = get_elf_backend_data (output_bfd);
11084 Elf_Internal_Rela irel[MAX_INT_RELS_PER_EXT_REL];
11085 bfd_byte *erel;
11086 unsigned int i;
11087 struct bfd_elf_section_data *esdo = elf_section_data (output_section);
11088
11089 howto = bfd_reloc_type_lookup (output_bfd, link_order->u.reloc.p->reloc);
11090 if (howto == NULL)
11091 {
11092 bfd_set_error (bfd_error_bad_value);
11093 return FALSE;
11094 }
11095
11096 addend = link_order->u.reloc.p->addend;
11097
11098 if (esdo->rel.hdr)
11099 reldata = &esdo->rel;
11100 else if (esdo->rela.hdr)
11101 reldata = &esdo->rela;
11102 else
11103 {
11104 reldata = NULL;
11105 BFD_ASSERT (0);
11106 }
11107
11108 /* Figure out the symbol index. */
11109 rel_hash_ptr = reldata->hashes + reldata->count;
11110 if (link_order->type == bfd_section_reloc_link_order)
11111 {
11112 indx = link_order->u.reloc.p->u.section->target_index;
11113 BFD_ASSERT (indx != 0);
11114 *rel_hash_ptr = NULL;
11115 }
11116 else
11117 {
11118 struct elf_link_hash_entry *h;
11119
11120 /* Treat a reloc against a defined symbol as though it were
11121 actually against the section. */
11122 h = ((struct elf_link_hash_entry *)
11123 bfd_wrapped_link_hash_lookup (output_bfd, info,
11124 link_order->u.reloc.p->u.name,
11125 FALSE, FALSE, TRUE));
11126 if (h != NULL
11127 && (h->root.type == bfd_link_hash_defined
11128 || h->root.type == bfd_link_hash_defweak))
11129 {
11130 asection *section;
11131
11132 section = h->root.u.def.section;
11133 indx = section->output_section->target_index;
11134 *rel_hash_ptr = NULL;
11135 /* It seems that we ought to add the symbol value to the
11136 addend here, but in practice it has already been added
11137 because it was passed to constructor_callback. */
11138 addend += section->output_section->vma + section->output_offset;
11139 }
11140 else if (h != NULL)
11141 {
11142 /* Setting the index to -2 tells elf_link_output_extsym that
11143 this symbol is used by a reloc. */
11144 h->indx = -2;
11145 *rel_hash_ptr = h;
11146 indx = 0;
11147 }
11148 else
11149 {
11150 (*info->callbacks->unattached_reloc)
11151 (info, link_order->u.reloc.p->u.name, NULL, NULL, 0);
11152 indx = 0;
11153 }
11154 }
11155
11156 /* If this is an inplace reloc, we must write the addend into the
11157 object file. */
11158 if (howto->partial_inplace && addend != 0)
11159 {
11160 bfd_size_type size;
11161 bfd_reloc_status_type rstat;
11162 bfd_byte *buf;
11163 bfd_boolean ok;
11164 const char *sym_name;
11165
11166 size = (bfd_size_type) bfd_get_reloc_size (howto);
11167 buf = (bfd_byte *) bfd_zmalloc (size);
11168 if (buf == NULL && size != 0)
11169 return FALSE;
11170 rstat = _bfd_relocate_contents (howto, output_bfd, addend, buf);
11171 switch (rstat)
11172 {
11173 case bfd_reloc_ok:
11174 break;
11175
11176 default:
11177 case bfd_reloc_outofrange:
11178 abort ();
11179
11180 case bfd_reloc_overflow:
11181 if (link_order->type == bfd_section_reloc_link_order)
11182 sym_name = bfd_section_name (output_bfd,
11183 link_order->u.reloc.p->u.section);
11184 else
11185 sym_name = link_order->u.reloc.p->u.name;
11186 (*info->callbacks->reloc_overflow) (info, NULL, sym_name,
11187 howto->name, addend, NULL, NULL,
11188 (bfd_vma) 0);
11189 break;
11190 }
11191
11192 ok = bfd_set_section_contents (output_bfd, output_section, buf,
11193 link_order->offset
11194 * bfd_octets_per_byte (output_bfd),
11195 size);
11196 free (buf);
11197 if (! ok)
11198 return FALSE;
11199 }
11200
11201 /* The address of a reloc is relative to the section in a
11202 relocatable file, and is a virtual address in an executable
11203 file. */
11204 offset = link_order->offset;
11205 if (! bfd_link_relocatable (info))
11206 offset += output_section->vma;
11207
11208 for (i = 0; i < bed->s->int_rels_per_ext_rel; i++)
11209 {
11210 irel[i].r_offset = offset;
11211 irel[i].r_info = 0;
11212 irel[i].r_addend = 0;
11213 }
11214 if (bed->s->arch_size == 32)
11215 irel[0].r_info = ELF32_R_INFO (indx, howto->type);
11216 else
11217 #ifdef BFD64
11218 {
11219 bfd_uint64_t indx64 = indx;
11220 irel[0].r_info = ELF64_R_INFO (indx64, howto->type);
11221 }
11222 #else
11223 BFD_FAIL();
11224 #endif
11225
11226 rel_hdr = reldata->hdr;
11227 erel = rel_hdr->contents;
11228 if (rel_hdr->sh_type == SHT_REL)
11229 {
11230 erel += reldata->count * bed->s->sizeof_rel;
11231 (*bed->s->swap_reloc_out) (output_bfd, irel, erel);
11232 }
11233 else
11234 {
11235 irel[0].r_addend = addend;
11236 erel += reldata->count * bed->s->sizeof_rela;
11237 (*bed->s->swap_reloca_out) (output_bfd, irel, erel);
11238 }
11239
11240 ++reldata->count;
11241
11242 return TRUE;
11243 }
11244
11245
11246 /* Get the output vma of the section pointed to by the sh_link field. */
11247
11248 static bfd_vma
11249 elf_get_linked_section_vma (struct bfd_link_order *p)
11250 {
11251 Elf_Internal_Shdr **elf_shdrp;
11252 asection *s;
11253 int elfsec;
11254
11255 s = p->u.indirect.section;
11256 elf_shdrp = elf_elfsections (s->owner);
11257 elfsec = _bfd_elf_section_from_bfd_section (s->owner, s);
11258 elfsec = elf_shdrp[elfsec]->sh_link;
11259 /* PR 290:
11260 The Intel C compiler generates SHT_IA_64_UNWIND with
11261 SHF_LINK_ORDER. But it doesn't set the sh_link or
11262 sh_info fields. Hence we could get the situation
11263 where elfsec is 0. */
11264 if (elfsec == 0)
11265 {
11266 const struct elf_backend_data *bed
11267 = get_elf_backend_data (s->owner);
11268 if (bed->link_order_error_handler)
11269 bed->link_order_error_handler
11270 /* xgettext:c-format */
11271 (_("%B: warning: sh_link not set for section `%A'"), s->owner, s);
11272 return 0;
11273 }
11274 else
11275 {
11276 s = elf_shdrp[elfsec]->bfd_section;
11277 return s->output_section->vma + s->output_offset;
11278 }
11279 }
11280
11281
11282 /* Compare two sections based on the locations of the sections they are
11283 linked to. Used by elf_fixup_link_order. */
11284
11285 static int
11286 compare_link_order (const void * a, const void * b)
11287 {
11288 bfd_vma apos;
11289 bfd_vma bpos;
11290
11291 apos = elf_get_linked_section_vma (*(struct bfd_link_order **)a);
11292 bpos = elf_get_linked_section_vma (*(struct bfd_link_order **)b);
11293 if (apos < bpos)
11294 return -1;
11295 return apos > bpos;
11296 }
11297
11298
11299 /* Looks for sections with SHF_LINK_ORDER set. Rearranges them into the same
11300 order as their linked sections. Returns false if this could not be done
11301 because an output section includes both ordered and unordered
11302 sections. Ideally we'd do this in the linker proper. */
11303
11304 static bfd_boolean
11305 elf_fixup_link_order (bfd *abfd, asection *o)
11306 {
11307 int seen_linkorder;
11308 int seen_other;
11309 int n;
11310 struct bfd_link_order *p;
11311 bfd *sub;
11312 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
11313 unsigned elfsec;
11314 struct bfd_link_order **sections;
11315 asection *s, *other_sec, *linkorder_sec;
11316 bfd_vma offset;
11317
11318 other_sec = NULL;
11319 linkorder_sec = NULL;
11320 seen_other = 0;
11321 seen_linkorder = 0;
11322 for (p = o->map_head.link_order; p != NULL; p = p->next)
11323 {
11324 if (p->type == bfd_indirect_link_order)
11325 {
11326 s = p->u.indirect.section;
11327 sub = s->owner;
11328 if (bfd_get_flavour (sub) == bfd_target_elf_flavour
11329 && elf_elfheader (sub)->e_ident[EI_CLASS] == bed->s->elfclass
11330 && (elfsec = _bfd_elf_section_from_bfd_section (sub, s))
11331 && elfsec < elf_numsections (sub)
11332 && elf_elfsections (sub)[elfsec]->sh_flags & SHF_LINK_ORDER
11333 && elf_elfsections (sub)[elfsec]->sh_link < elf_numsections (sub))
11334 {
11335 seen_linkorder++;
11336 linkorder_sec = s;
11337 }
11338 else
11339 {
11340 seen_other++;
11341 other_sec = s;
11342 }
11343 }
11344 else
11345 seen_other++;
11346
11347 if (seen_other && seen_linkorder)
11348 {
11349 if (other_sec && linkorder_sec)
11350 _bfd_error_handler
11351 /* xgettext:c-format */
11352 (_("%A has both ordered [`%A' in %B] "
11353 "and unordered [`%A' in %B] sections"),
11354 o, linkorder_sec, linkorder_sec->owner,
11355 other_sec, other_sec->owner);
11356 else
11357 _bfd_error_handler
11358 (_("%A has both ordered and unordered sections"), o);
11359 bfd_set_error (bfd_error_bad_value);
11360 return FALSE;
11361 }
11362 }
11363
11364 if (!seen_linkorder)
11365 return TRUE;
11366
11367 sections = (struct bfd_link_order **)
11368 bfd_malloc (seen_linkorder * sizeof (struct bfd_link_order *));
11369 if (sections == NULL)
11370 return FALSE;
11371 seen_linkorder = 0;
11372
11373 for (p = o->map_head.link_order; p != NULL; p = p->next)
11374 {
11375 sections[seen_linkorder++] = p;
11376 }
11377 /* Sort the input sections in the order of their linked section. */
11378 qsort (sections, seen_linkorder, sizeof (struct bfd_link_order *),
11379 compare_link_order);
11380
11381 /* Change the offsets of the sections. */
11382 offset = 0;
11383 for (n = 0; n < seen_linkorder; n++)
11384 {
11385 s = sections[n]->u.indirect.section;
11386 offset &= ~(bfd_vma) 0 << s->alignment_power;
11387 s->output_offset = offset / bfd_octets_per_byte (abfd);
11388 sections[n]->offset = offset;
11389 offset += sections[n]->size;
11390 }
11391
11392 free (sections);
11393 return TRUE;
11394 }
11395
11396 /* Generate an import library in INFO->implib_bfd from symbols in ABFD.
11397 Returns TRUE upon success, FALSE otherwise. */
11398
11399 static bfd_boolean
11400 elf_output_implib (bfd *abfd, struct bfd_link_info *info)
11401 {
11402 bfd_boolean ret = FALSE;
11403 bfd *implib_bfd;
11404 const struct elf_backend_data *bed;
11405 flagword flags;
11406 enum bfd_architecture arch;
11407 unsigned int mach;
11408 asymbol **sympp = NULL;
11409 long symsize;
11410 long symcount;
11411 long src_count;
11412 elf_symbol_type *osymbuf;
11413
11414 implib_bfd = info->out_implib_bfd;
11415 bed = get_elf_backend_data (abfd);
11416
11417 if (!bfd_set_format (implib_bfd, bfd_object))
11418 return FALSE;
11419
11420 /* Use flag from executable but make it a relocatable object. */
11421 flags = bfd_get_file_flags (abfd);
11422 flags &= ~HAS_RELOC;
11423 if (!bfd_set_start_address (implib_bfd, 0)
11424 || !bfd_set_file_flags (implib_bfd, flags & ~EXEC_P))
11425 return FALSE;
11426
11427 /* Copy architecture of output file to import library file. */
11428 arch = bfd_get_arch (abfd);
11429 mach = bfd_get_mach (abfd);
11430 if (!bfd_set_arch_mach (implib_bfd, arch, mach)
11431 && (abfd->target_defaulted
11432 || bfd_get_arch (abfd) != bfd_get_arch (implib_bfd)))
11433 return FALSE;
11434
11435 /* Get symbol table size. */
11436 symsize = bfd_get_symtab_upper_bound (abfd);
11437 if (symsize < 0)
11438 return FALSE;
11439
11440 /* Read in the symbol table. */
11441 sympp = (asymbol **) xmalloc (symsize);
11442 symcount = bfd_canonicalize_symtab (abfd, sympp);
11443 if (symcount < 0)
11444 goto free_sym_buf;
11445
11446 /* Allow the BFD backend to copy any private header data it
11447 understands from the output BFD to the import library BFD. */
11448 if (! bfd_copy_private_header_data (abfd, implib_bfd))
11449 goto free_sym_buf;
11450
11451 /* Filter symbols to appear in the import library. */
11452 if (bed->elf_backend_filter_implib_symbols)
11453 symcount = bed->elf_backend_filter_implib_symbols (abfd, info, sympp,
11454 symcount);
11455 else
11456 symcount = _bfd_elf_filter_global_symbols (abfd, info, sympp, symcount);
11457 if (symcount == 0)
11458 {
11459 bfd_set_error (bfd_error_no_symbols);
11460 _bfd_error_handler (_("%B: no symbol found for import library"),
11461 implib_bfd);
11462 goto free_sym_buf;
11463 }
11464
11465
11466 /* Make symbols absolute. */
11467 osymbuf = (elf_symbol_type *) bfd_alloc2 (implib_bfd, symcount,
11468 sizeof (*osymbuf));
11469 for (src_count = 0; src_count < symcount; src_count++)
11470 {
11471 memcpy (&osymbuf[src_count], (elf_symbol_type *) sympp[src_count],
11472 sizeof (*osymbuf));
11473 osymbuf[src_count].symbol.section = bfd_abs_section_ptr;
11474 osymbuf[src_count].internal_elf_sym.st_shndx = SHN_ABS;
11475 osymbuf[src_count].symbol.value += sympp[src_count]->section->vma;
11476 osymbuf[src_count].internal_elf_sym.st_value =
11477 osymbuf[src_count].symbol.value;
11478 sympp[src_count] = &osymbuf[src_count].symbol;
11479 }
11480
11481 bfd_set_symtab (implib_bfd, sympp, symcount);
11482
11483 /* Allow the BFD backend to copy any private data it understands
11484 from the output BFD to the import library BFD. This is done last
11485 to permit the routine to look at the filtered symbol table. */
11486 if (! bfd_copy_private_bfd_data (abfd, implib_bfd))
11487 goto free_sym_buf;
11488
11489 if (!bfd_close (implib_bfd))
11490 goto free_sym_buf;
11491
11492 ret = TRUE;
11493
11494 free_sym_buf:
11495 free (sympp);
11496 return ret;
11497 }
11498
11499 static void
11500 elf_final_link_free (bfd *obfd, struct elf_final_link_info *flinfo)
11501 {
11502 asection *o;
11503
11504 if (flinfo->symstrtab != NULL)
11505 _bfd_elf_strtab_free (flinfo->symstrtab);
11506 if (flinfo->contents != NULL)
11507 free (flinfo->contents);
11508 if (flinfo->external_relocs != NULL)
11509 free (flinfo->external_relocs);
11510 if (flinfo->internal_relocs != NULL)
11511 free (flinfo->internal_relocs);
11512 if (flinfo->external_syms != NULL)
11513 free (flinfo->external_syms);
11514 if (flinfo->locsym_shndx != NULL)
11515 free (flinfo->locsym_shndx);
11516 if (flinfo->internal_syms != NULL)
11517 free (flinfo->internal_syms);
11518 if (flinfo->indices != NULL)
11519 free (flinfo->indices);
11520 if (flinfo->sections != NULL)
11521 free (flinfo->sections);
11522 if (flinfo->symshndxbuf != NULL)
11523 free (flinfo->symshndxbuf);
11524 for (o = obfd->sections; o != NULL; o = o->next)
11525 {
11526 struct bfd_elf_section_data *esdo = elf_section_data (o);
11527 if ((o->flags & SEC_RELOC) != 0 && esdo->rel.hashes != NULL)
11528 free (esdo->rel.hashes);
11529 if ((o->flags & SEC_RELOC) != 0 && esdo->rela.hashes != NULL)
11530 free (esdo->rela.hashes);
11531 }
11532 }
11533
11534 /* Do the final step of an ELF link. */
11535
11536 bfd_boolean
11537 bfd_elf_final_link (bfd *abfd, struct bfd_link_info *info)
11538 {
11539 bfd_boolean dynamic;
11540 bfd_boolean emit_relocs;
11541 bfd *dynobj;
11542 struct elf_final_link_info flinfo;
11543 asection *o;
11544 struct bfd_link_order *p;
11545 bfd *sub;
11546 bfd_size_type max_contents_size;
11547 bfd_size_type max_external_reloc_size;
11548 bfd_size_type max_internal_reloc_count;
11549 bfd_size_type max_sym_count;
11550 bfd_size_type max_sym_shndx_count;
11551 Elf_Internal_Sym elfsym;
11552 unsigned int i;
11553 Elf_Internal_Shdr *symtab_hdr;
11554 Elf_Internal_Shdr *symtab_shndx_hdr;
11555 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
11556 struct elf_outext_info eoinfo;
11557 bfd_boolean merged;
11558 size_t relativecount = 0;
11559 asection *reldyn = 0;
11560 bfd_size_type amt;
11561 asection *attr_section = NULL;
11562 bfd_vma attr_size = 0;
11563 const char *std_attrs_section;
11564 struct elf_link_hash_table *htab = elf_hash_table (info);
11565
11566 if (!is_elf_hash_table (htab))
11567 return FALSE;
11568
11569 if (bfd_link_pic (info))
11570 abfd->flags |= DYNAMIC;
11571
11572 dynamic = htab->dynamic_sections_created;
11573 dynobj = htab->dynobj;
11574
11575 emit_relocs = (bfd_link_relocatable (info)
11576 || info->emitrelocations);
11577
11578 flinfo.info = info;
11579 flinfo.output_bfd = abfd;
11580 flinfo.symstrtab = _bfd_elf_strtab_init ();
11581 if (flinfo.symstrtab == NULL)
11582 return FALSE;
11583
11584 if (! dynamic)
11585 {
11586 flinfo.hash_sec = NULL;
11587 flinfo.symver_sec = NULL;
11588 }
11589 else
11590 {
11591 flinfo.hash_sec = bfd_get_linker_section (dynobj, ".hash");
11592 /* Note that dynsym_sec can be NULL (on VMS). */
11593 flinfo.symver_sec = bfd_get_linker_section (dynobj, ".gnu.version");
11594 /* Note that it is OK if symver_sec is NULL. */
11595 }
11596
11597 flinfo.contents = NULL;
11598 flinfo.external_relocs = NULL;
11599 flinfo.internal_relocs = NULL;
11600 flinfo.external_syms = NULL;
11601 flinfo.locsym_shndx = NULL;
11602 flinfo.internal_syms = NULL;
11603 flinfo.indices = NULL;
11604 flinfo.sections = NULL;
11605 flinfo.symshndxbuf = NULL;
11606 flinfo.filesym_count = 0;
11607
11608 /* The object attributes have been merged. Remove the input
11609 sections from the link, and set the contents of the output
11610 secton. */
11611 std_attrs_section = get_elf_backend_data (abfd)->obj_attrs_section;
11612 for (o = abfd->sections; o != NULL; o = o->next)
11613 {
11614 if ((std_attrs_section && strcmp (o->name, std_attrs_section) == 0)
11615 || strcmp (o->name, ".gnu.attributes") == 0)
11616 {
11617 for (p = o->map_head.link_order; p != NULL; p = p->next)
11618 {
11619 asection *input_section;
11620
11621 if (p->type != bfd_indirect_link_order)
11622 continue;
11623 input_section = p->u.indirect.section;
11624 /* Hack: reset the SEC_HAS_CONTENTS flag so that
11625 elf_link_input_bfd ignores this section. */
11626 input_section->flags &= ~SEC_HAS_CONTENTS;
11627 }
11628
11629 attr_size = bfd_elf_obj_attr_size (abfd);
11630 if (attr_size)
11631 {
11632 bfd_set_section_size (abfd, o, attr_size);
11633 attr_section = o;
11634 /* Skip this section later on. */
11635 o->map_head.link_order = NULL;
11636 }
11637 else
11638 o->flags |= SEC_EXCLUDE;
11639 }
11640 }
11641
11642 /* Count up the number of relocations we will output for each output
11643 section, so that we know the sizes of the reloc sections. We
11644 also figure out some maximum sizes. */
11645 max_contents_size = 0;
11646 max_external_reloc_size = 0;
11647 max_internal_reloc_count = 0;
11648 max_sym_count = 0;
11649 max_sym_shndx_count = 0;
11650 merged = FALSE;
11651 for (o = abfd->sections; o != NULL; o = o->next)
11652 {
11653 struct bfd_elf_section_data *esdo = elf_section_data (o);
11654 o->reloc_count = 0;
11655
11656 for (p = o->map_head.link_order; p != NULL; p = p->next)
11657 {
11658 unsigned int reloc_count = 0;
11659 unsigned int additional_reloc_count = 0;
11660 struct bfd_elf_section_data *esdi = NULL;
11661
11662 if (p->type == bfd_section_reloc_link_order
11663 || p->type == bfd_symbol_reloc_link_order)
11664 reloc_count = 1;
11665 else if (p->type == bfd_indirect_link_order)
11666 {
11667 asection *sec;
11668
11669 sec = p->u.indirect.section;
11670
11671 /* Mark all sections which are to be included in the
11672 link. This will normally be every section. We need
11673 to do this so that we can identify any sections which
11674 the linker has decided to not include. */
11675 sec->linker_mark = TRUE;
11676
11677 if (sec->flags & SEC_MERGE)
11678 merged = TRUE;
11679
11680 if (sec->rawsize > max_contents_size)
11681 max_contents_size = sec->rawsize;
11682 if (sec->size > max_contents_size)
11683 max_contents_size = sec->size;
11684
11685 if (bfd_get_flavour (sec->owner) == bfd_target_elf_flavour
11686 && (sec->owner->flags & DYNAMIC) == 0)
11687 {
11688 size_t sym_count;
11689
11690 /* We are interested in just local symbols, not all
11691 symbols. */
11692 if (elf_bad_symtab (sec->owner))
11693 sym_count = (elf_tdata (sec->owner)->symtab_hdr.sh_size
11694 / bed->s->sizeof_sym);
11695 else
11696 sym_count = elf_tdata (sec->owner)->symtab_hdr.sh_info;
11697
11698 if (sym_count > max_sym_count)
11699 max_sym_count = sym_count;
11700
11701 if (sym_count > max_sym_shndx_count
11702 && elf_symtab_shndx_list (sec->owner) != NULL)
11703 max_sym_shndx_count = sym_count;
11704
11705 if (esdo->this_hdr.sh_type == SHT_REL
11706 || esdo->this_hdr.sh_type == SHT_RELA)
11707 /* Some backends use reloc_count in relocation sections
11708 to count particular types of relocs. Of course,
11709 reloc sections themselves can't have relocations. */
11710 ;
11711 else if (emit_relocs)
11712 {
11713 reloc_count = sec->reloc_count;
11714 if (bed->elf_backend_count_additional_relocs)
11715 {
11716 int c;
11717 c = (*bed->elf_backend_count_additional_relocs) (sec);
11718 additional_reloc_count += c;
11719 }
11720 }
11721 else if (bed->elf_backend_count_relocs)
11722 reloc_count = (*bed->elf_backend_count_relocs) (info, sec);
11723
11724 esdi = elf_section_data (sec);
11725
11726 if ((sec->flags & SEC_RELOC) != 0)
11727 {
11728 size_t ext_size = 0;
11729
11730 if (esdi->rel.hdr != NULL)
11731 ext_size = esdi->rel.hdr->sh_size;
11732 if (esdi->rela.hdr != NULL)
11733 ext_size += esdi->rela.hdr->sh_size;
11734
11735 if (ext_size > max_external_reloc_size)
11736 max_external_reloc_size = ext_size;
11737 if (sec->reloc_count > max_internal_reloc_count)
11738 max_internal_reloc_count = sec->reloc_count;
11739 }
11740 }
11741 }
11742
11743 if (reloc_count == 0)
11744 continue;
11745
11746 reloc_count += additional_reloc_count;
11747 o->reloc_count += reloc_count;
11748
11749 if (p->type == bfd_indirect_link_order && emit_relocs)
11750 {
11751 if (esdi->rel.hdr)
11752 {
11753 esdo->rel.count += NUM_SHDR_ENTRIES (esdi->rel.hdr);
11754 esdo->rel.count += additional_reloc_count;
11755 }
11756 if (esdi->rela.hdr)
11757 {
11758 esdo->rela.count += NUM_SHDR_ENTRIES (esdi->rela.hdr);
11759 esdo->rela.count += additional_reloc_count;
11760 }
11761 }
11762 else
11763 {
11764 if (o->use_rela_p)
11765 esdo->rela.count += reloc_count;
11766 else
11767 esdo->rel.count += reloc_count;
11768 }
11769 }
11770
11771 if (o->reloc_count > 0)
11772 o->flags |= SEC_RELOC;
11773 else
11774 {
11775 /* Explicitly clear the SEC_RELOC flag. The linker tends to
11776 set it (this is probably a bug) and if it is set
11777 assign_section_numbers will create a reloc section. */
11778 o->flags &=~ SEC_RELOC;
11779 }
11780
11781 /* If the SEC_ALLOC flag is not set, force the section VMA to
11782 zero. This is done in elf_fake_sections as well, but forcing
11783 the VMA to 0 here will ensure that relocs against these
11784 sections are handled correctly. */
11785 if ((o->flags & SEC_ALLOC) == 0
11786 && ! o->user_set_vma)
11787 o->vma = 0;
11788 }
11789
11790 if (! bfd_link_relocatable (info) && merged)
11791 elf_link_hash_traverse (htab, _bfd_elf_link_sec_merge_syms, abfd);
11792
11793 /* Figure out the file positions for everything but the symbol table
11794 and the relocs. We set symcount to force assign_section_numbers
11795 to create a symbol table. */
11796 bfd_get_symcount (abfd) = info->strip != strip_all || emit_relocs;
11797 BFD_ASSERT (! abfd->output_has_begun);
11798 if (! _bfd_elf_compute_section_file_positions (abfd, info))
11799 goto error_return;
11800
11801 /* Set sizes, and assign file positions for reloc sections. */
11802 for (o = abfd->sections; o != NULL; o = o->next)
11803 {
11804 struct bfd_elf_section_data *esdo = elf_section_data (o);
11805 if ((o->flags & SEC_RELOC) != 0)
11806 {
11807 if (esdo->rel.hdr
11808 && !(_bfd_elf_link_size_reloc_section (abfd, &esdo->rel)))
11809 goto error_return;
11810
11811 if (esdo->rela.hdr
11812 && !(_bfd_elf_link_size_reloc_section (abfd, &esdo->rela)))
11813 goto error_return;
11814 }
11815
11816 /* Now, reset REL_COUNT and REL_COUNT2 so that we can use them
11817 to count upwards while actually outputting the relocations. */
11818 esdo->rel.count = 0;
11819 esdo->rela.count = 0;
11820
11821 if (esdo->this_hdr.sh_offset == (file_ptr) -1)
11822 {
11823 /* Cache the section contents so that they can be compressed
11824 later. Use bfd_malloc since it will be freed by
11825 bfd_compress_section_contents. */
11826 unsigned char *contents = esdo->this_hdr.contents;
11827 if ((o->flags & SEC_ELF_COMPRESS) == 0 || contents != NULL)
11828 abort ();
11829 contents
11830 = (unsigned char *) bfd_malloc (esdo->this_hdr.sh_size);
11831 if (contents == NULL)
11832 goto error_return;
11833 esdo->this_hdr.contents = contents;
11834 }
11835 }
11836
11837 /* We have now assigned file positions for all the sections except
11838 .symtab, .strtab, and non-loaded reloc sections. We start the
11839 .symtab section at the current file position, and write directly
11840 to it. We build the .strtab section in memory. */
11841 bfd_get_symcount (abfd) = 0;
11842 symtab_hdr = &elf_tdata (abfd)->symtab_hdr;
11843 /* sh_name is set in prep_headers. */
11844 symtab_hdr->sh_type = SHT_SYMTAB;
11845 /* sh_flags, sh_addr and sh_size all start off zero. */
11846 symtab_hdr->sh_entsize = bed->s->sizeof_sym;
11847 /* sh_link is set in assign_section_numbers. */
11848 /* sh_info is set below. */
11849 /* sh_offset is set just below. */
11850 symtab_hdr->sh_addralign = (bfd_vma) 1 << bed->s->log_file_align;
11851
11852 if (max_sym_count < 20)
11853 max_sym_count = 20;
11854 htab->strtabsize = max_sym_count;
11855 amt = max_sym_count * sizeof (struct elf_sym_strtab);
11856 htab->strtab = (struct elf_sym_strtab *) bfd_malloc (amt);
11857 if (htab->strtab == NULL)
11858 goto error_return;
11859 /* The real buffer will be allocated in elf_link_swap_symbols_out. */
11860 flinfo.symshndxbuf
11861 = (elf_numsections (abfd) > (SHN_LORESERVE & 0xFFFF)
11862 ? (Elf_External_Sym_Shndx *) -1 : NULL);
11863
11864 if (info->strip != strip_all || emit_relocs)
11865 {
11866 file_ptr off = elf_next_file_pos (abfd);
11867
11868 _bfd_elf_assign_file_position_for_section (symtab_hdr, off, TRUE);
11869
11870 /* Note that at this point elf_next_file_pos (abfd) is
11871 incorrect. We do not yet know the size of the .symtab section.
11872 We correct next_file_pos below, after we do know the size. */
11873
11874 /* Start writing out the symbol table. The first symbol is always a
11875 dummy symbol. */
11876 elfsym.st_value = 0;
11877 elfsym.st_size = 0;
11878 elfsym.st_info = 0;
11879 elfsym.st_other = 0;
11880 elfsym.st_shndx = SHN_UNDEF;
11881 elfsym.st_target_internal = 0;
11882 if (elf_link_output_symstrtab (&flinfo, NULL, &elfsym,
11883 bfd_und_section_ptr, NULL) != 1)
11884 goto error_return;
11885
11886 /* Output a symbol for each section. We output these even if we are
11887 discarding local symbols, since they are used for relocs. These
11888 symbols have no names. We store the index of each one in the
11889 index field of the section, so that we can find it again when
11890 outputting relocs. */
11891
11892 elfsym.st_size = 0;
11893 elfsym.st_info = ELF_ST_INFO (STB_LOCAL, STT_SECTION);
11894 elfsym.st_other = 0;
11895 elfsym.st_value = 0;
11896 elfsym.st_target_internal = 0;
11897 for (i = 1; i < elf_numsections (abfd); i++)
11898 {
11899 o = bfd_section_from_elf_index (abfd, i);
11900 if (o != NULL)
11901 {
11902 o->target_index = bfd_get_symcount (abfd);
11903 elfsym.st_shndx = i;
11904 if (!bfd_link_relocatable (info))
11905 elfsym.st_value = o->vma;
11906 if (elf_link_output_symstrtab (&flinfo, NULL, &elfsym, o,
11907 NULL) != 1)
11908 goto error_return;
11909 }
11910 }
11911 }
11912
11913 /* Allocate some memory to hold information read in from the input
11914 files. */
11915 if (max_contents_size != 0)
11916 {
11917 flinfo.contents = (bfd_byte *) bfd_malloc (max_contents_size);
11918 if (flinfo.contents == NULL)
11919 goto error_return;
11920 }
11921
11922 if (max_external_reloc_size != 0)
11923 {
11924 flinfo.external_relocs = bfd_malloc (max_external_reloc_size);
11925 if (flinfo.external_relocs == NULL)
11926 goto error_return;
11927 }
11928
11929 if (max_internal_reloc_count != 0)
11930 {
11931 amt = max_internal_reloc_count * sizeof (Elf_Internal_Rela);
11932 flinfo.internal_relocs = (Elf_Internal_Rela *) bfd_malloc (amt);
11933 if (flinfo.internal_relocs == NULL)
11934 goto error_return;
11935 }
11936
11937 if (max_sym_count != 0)
11938 {
11939 amt = max_sym_count * bed->s->sizeof_sym;
11940 flinfo.external_syms = (bfd_byte *) bfd_malloc (amt);
11941 if (flinfo.external_syms == NULL)
11942 goto error_return;
11943
11944 amt = max_sym_count * sizeof (Elf_Internal_Sym);
11945 flinfo.internal_syms = (Elf_Internal_Sym *) bfd_malloc (amt);
11946 if (flinfo.internal_syms == NULL)
11947 goto error_return;
11948
11949 amt = max_sym_count * sizeof (long);
11950 flinfo.indices = (long int *) bfd_malloc (amt);
11951 if (flinfo.indices == NULL)
11952 goto error_return;
11953
11954 amt = max_sym_count * sizeof (asection *);
11955 flinfo.sections = (asection **) bfd_malloc (amt);
11956 if (flinfo.sections == NULL)
11957 goto error_return;
11958 }
11959
11960 if (max_sym_shndx_count != 0)
11961 {
11962 amt = max_sym_shndx_count * sizeof (Elf_External_Sym_Shndx);
11963 flinfo.locsym_shndx = (Elf_External_Sym_Shndx *) bfd_malloc (amt);
11964 if (flinfo.locsym_shndx == NULL)
11965 goto error_return;
11966 }
11967
11968 if (htab->tls_sec)
11969 {
11970 bfd_vma base, end = 0;
11971 asection *sec;
11972
11973 for (sec = htab->tls_sec;
11974 sec && (sec->flags & SEC_THREAD_LOCAL);
11975 sec = sec->next)
11976 {
11977 bfd_size_type size = sec->size;
11978
11979 if (size == 0
11980 && (sec->flags & SEC_HAS_CONTENTS) == 0)
11981 {
11982 struct bfd_link_order *ord = sec->map_tail.link_order;
11983
11984 if (ord != NULL)
11985 size = ord->offset + ord->size;
11986 }
11987 end = sec->vma + size;
11988 }
11989 base = htab->tls_sec->vma;
11990 /* Only align end of TLS section if static TLS doesn't have special
11991 alignment requirements. */
11992 if (bed->static_tls_alignment == 1)
11993 end = align_power (end, htab->tls_sec->alignment_power);
11994 htab->tls_size = end - base;
11995 }
11996
11997 /* Reorder SHF_LINK_ORDER sections. */
11998 for (o = abfd->sections; o != NULL; o = o->next)
11999 {
12000 if (!elf_fixup_link_order (abfd, o))
12001 return FALSE;
12002 }
12003
12004 if (!_bfd_elf_fixup_eh_frame_hdr (info))
12005 return FALSE;
12006
12007 /* Since ELF permits relocations to be against local symbols, we
12008 must have the local symbols available when we do the relocations.
12009 Since we would rather only read the local symbols once, and we
12010 would rather not keep them in memory, we handle all the
12011 relocations for a single input file at the same time.
12012
12013 Unfortunately, there is no way to know the total number of local
12014 symbols until we have seen all of them, and the local symbol
12015 indices precede the global symbol indices. This means that when
12016 we are generating relocatable output, and we see a reloc against
12017 a global symbol, we can not know the symbol index until we have
12018 finished examining all the local symbols to see which ones we are
12019 going to output. To deal with this, we keep the relocations in
12020 memory, and don't output them until the end of the link. This is
12021 an unfortunate waste of memory, but I don't see a good way around
12022 it. Fortunately, it only happens when performing a relocatable
12023 link, which is not the common case. FIXME: If keep_memory is set
12024 we could write the relocs out and then read them again; I don't
12025 know how bad the memory loss will be. */
12026
12027 for (sub = info->input_bfds; sub != NULL; sub = sub->link.next)
12028 sub->output_has_begun = FALSE;
12029 for (o = abfd->sections; o != NULL; o = o->next)
12030 {
12031 for (p = o->map_head.link_order; p != NULL; p = p->next)
12032 {
12033 if (p->type == bfd_indirect_link_order
12034 && (bfd_get_flavour ((sub = p->u.indirect.section->owner))
12035 == bfd_target_elf_flavour)
12036 && elf_elfheader (sub)->e_ident[EI_CLASS] == bed->s->elfclass)
12037 {
12038 if (! sub->output_has_begun)
12039 {
12040 if (! elf_link_input_bfd (&flinfo, sub))
12041 goto error_return;
12042 sub->output_has_begun = TRUE;
12043 }
12044 }
12045 else if (p->type == bfd_section_reloc_link_order
12046 || p->type == bfd_symbol_reloc_link_order)
12047 {
12048 if (! elf_reloc_link_order (abfd, info, o, p))
12049 goto error_return;
12050 }
12051 else
12052 {
12053 if (! _bfd_default_link_order (abfd, info, o, p))
12054 {
12055 if (p->type == bfd_indirect_link_order
12056 && (bfd_get_flavour (sub)
12057 == bfd_target_elf_flavour)
12058 && (elf_elfheader (sub)->e_ident[EI_CLASS]
12059 != bed->s->elfclass))
12060 {
12061 const char *iclass, *oclass;
12062
12063 switch (bed->s->elfclass)
12064 {
12065 case ELFCLASS64: oclass = "ELFCLASS64"; break;
12066 case ELFCLASS32: oclass = "ELFCLASS32"; break;
12067 case ELFCLASSNONE: oclass = "ELFCLASSNONE"; break;
12068 default: abort ();
12069 }
12070
12071 switch (elf_elfheader (sub)->e_ident[EI_CLASS])
12072 {
12073 case ELFCLASS64: iclass = "ELFCLASS64"; break;
12074 case ELFCLASS32: iclass = "ELFCLASS32"; break;
12075 case ELFCLASSNONE: iclass = "ELFCLASSNONE"; break;
12076 default: abort ();
12077 }
12078
12079 bfd_set_error (bfd_error_wrong_format);
12080 _bfd_error_handler
12081 /* xgettext:c-format */
12082 (_("%B: file class %s incompatible with %s"),
12083 sub, iclass, oclass);
12084 }
12085
12086 goto error_return;
12087 }
12088 }
12089 }
12090 }
12091
12092 /* Free symbol buffer if needed. */
12093 if (!info->reduce_memory_overheads)
12094 {
12095 for (sub = info->input_bfds; sub != NULL; sub = sub->link.next)
12096 if (bfd_get_flavour (sub) == bfd_target_elf_flavour
12097 && elf_tdata (sub)->symbuf)
12098 {
12099 free (elf_tdata (sub)->symbuf);
12100 elf_tdata (sub)->symbuf = NULL;
12101 }
12102 }
12103
12104 /* Output any global symbols that got converted to local in a
12105 version script or due to symbol visibility. We do this in a
12106 separate step since ELF requires all local symbols to appear
12107 prior to any global symbols. FIXME: We should only do this if
12108 some global symbols were, in fact, converted to become local.
12109 FIXME: Will this work correctly with the Irix 5 linker? */
12110 eoinfo.failed = FALSE;
12111 eoinfo.flinfo = &flinfo;
12112 eoinfo.localsyms = TRUE;
12113 eoinfo.file_sym_done = FALSE;
12114 bfd_hash_traverse (&info->hash->table, elf_link_output_extsym, &eoinfo);
12115 if (eoinfo.failed)
12116 return FALSE;
12117
12118 /* If backend needs to output some local symbols not present in the hash
12119 table, do it now. */
12120 if (bed->elf_backend_output_arch_local_syms
12121 && (info->strip != strip_all || emit_relocs))
12122 {
12123 typedef int (*out_sym_func)
12124 (void *, const char *, Elf_Internal_Sym *, asection *,
12125 struct elf_link_hash_entry *);
12126
12127 if (! ((*bed->elf_backend_output_arch_local_syms)
12128 (abfd, info, &flinfo,
12129 (out_sym_func) elf_link_output_symstrtab)))
12130 return FALSE;
12131 }
12132
12133 /* That wrote out all the local symbols. Finish up the symbol table
12134 with the global symbols. Even if we want to strip everything we
12135 can, we still need to deal with those global symbols that got
12136 converted to local in a version script. */
12137
12138 /* The sh_info field records the index of the first non local symbol. */
12139 symtab_hdr->sh_info = bfd_get_symcount (abfd);
12140
12141 if (dynamic
12142 && htab->dynsym != NULL
12143 && htab->dynsym->output_section != bfd_abs_section_ptr)
12144 {
12145 Elf_Internal_Sym sym;
12146 bfd_byte *dynsym = htab->dynsym->contents;
12147
12148 o = htab->dynsym->output_section;
12149 elf_section_data (o)->this_hdr.sh_info = htab->local_dynsymcount + 1;
12150
12151 /* Write out the section symbols for the output sections. */
12152 if (bfd_link_pic (info)
12153 || htab->is_relocatable_executable)
12154 {
12155 asection *s;
12156
12157 sym.st_size = 0;
12158 sym.st_name = 0;
12159 sym.st_info = ELF_ST_INFO (STB_LOCAL, STT_SECTION);
12160 sym.st_other = 0;
12161 sym.st_target_internal = 0;
12162
12163 for (s = abfd->sections; s != NULL; s = s->next)
12164 {
12165 int indx;
12166 bfd_byte *dest;
12167 long dynindx;
12168
12169 dynindx = elf_section_data (s)->dynindx;
12170 if (dynindx <= 0)
12171 continue;
12172 indx = elf_section_data (s)->this_idx;
12173 BFD_ASSERT (indx > 0);
12174 sym.st_shndx = indx;
12175 if (! check_dynsym (abfd, &sym))
12176 return FALSE;
12177 sym.st_value = s->vma;
12178 dest = dynsym + dynindx * bed->s->sizeof_sym;
12179 bed->s->swap_symbol_out (abfd, &sym, dest, 0);
12180 }
12181 }
12182
12183 /* Write out the local dynsyms. */
12184 if (htab->dynlocal)
12185 {
12186 struct elf_link_local_dynamic_entry *e;
12187 for (e = htab->dynlocal; e ; e = e->next)
12188 {
12189 asection *s;
12190 bfd_byte *dest;
12191
12192 /* Copy the internal symbol and turn off visibility.
12193 Note that we saved a word of storage and overwrote
12194 the original st_name with the dynstr_index. */
12195 sym = e->isym;
12196 sym.st_other &= ~ELF_ST_VISIBILITY (-1);
12197
12198 s = bfd_section_from_elf_index (e->input_bfd,
12199 e->isym.st_shndx);
12200 if (s != NULL)
12201 {
12202 sym.st_shndx =
12203 elf_section_data (s->output_section)->this_idx;
12204 if (! check_dynsym (abfd, &sym))
12205 return FALSE;
12206 sym.st_value = (s->output_section->vma
12207 + s->output_offset
12208 + e->isym.st_value);
12209 }
12210
12211 dest = dynsym + e->dynindx * bed->s->sizeof_sym;
12212 bed->s->swap_symbol_out (abfd, &sym, dest, 0);
12213 }
12214 }
12215 }
12216
12217 /* We get the global symbols from the hash table. */
12218 eoinfo.failed = FALSE;
12219 eoinfo.localsyms = FALSE;
12220 eoinfo.flinfo = &flinfo;
12221 bfd_hash_traverse (&info->hash->table, elf_link_output_extsym, &eoinfo);
12222 if (eoinfo.failed)
12223 return FALSE;
12224
12225 /* If backend needs to output some symbols not present in the hash
12226 table, do it now. */
12227 if (bed->elf_backend_output_arch_syms
12228 && (info->strip != strip_all || emit_relocs))
12229 {
12230 typedef int (*out_sym_func)
12231 (void *, const char *, Elf_Internal_Sym *, asection *,
12232 struct elf_link_hash_entry *);
12233
12234 if (! ((*bed->elf_backend_output_arch_syms)
12235 (abfd, info, &flinfo,
12236 (out_sym_func) elf_link_output_symstrtab)))
12237 return FALSE;
12238 }
12239
12240 /* Finalize the .strtab section. */
12241 _bfd_elf_strtab_finalize (flinfo.symstrtab);
12242
12243 /* Swap out the .strtab section. */
12244 if (!elf_link_swap_symbols_out (&flinfo))
12245 return FALSE;
12246
12247 /* Now we know the size of the symtab section. */
12248 if (bfd_get_symcount (abfd) > 0)
12249 {
12250 /* Finish up and write out the symbol string table (.strtab)
12251 section. */
12252 Elf_Internal_Shdr *symstrtab_hdr = NULL;
12253 file_ptr off = symtab_hdr->sh_offset + symtab_hdr->sh_size;
12254
12255 if (elf_symtab_shndx_list (abfd))
12256 {
12257 symtab_shndx_hdr = & elf_symtab_shndx_list (abfd)->hdr;
12258
12259 if (symtab_shndx_hdr != NULL && symtab_shndx_hdr->sh_name != 0)
12260 {
12261 symtab_shndx_hdr->sh_type = SHT_SYMTAB_SHNDX;
12262 symtab_shndx_hdr->sh_entsize = sizeof (Elf_External_Sym_Shndx);
12263 symtab_shndx_hdr->sh_addralign = sizeof (Elf_External_Sym_Shndx);
12264 amt = bfd_get_symcount (abfd) * sizeof (Elf_External_Sym_Shndx);
12265 symtab_shndx_hdr->sh_size = amt;
12266
12267 off = _bfd_elf_assign_file_position_for_section (symtab_shndx_hdr,
12268 off, TRUE);
12269
12270 if (bfd_seek (abfd, symtab_shndx_hdr->sh_offset, SEEK_SET) != 0
12271 || (bfd_bwrite (flinfo.symshndxbuf, amt, abfd) != amt))
12272 return FALSE;
12273 }
12274 }
12275
12276 symstrtab_hdr = &elf_tdata (abfd)->strtab_hdr;
12277 /* sh_name was set in prep_headers. */
12278 symstrtab_hdr->sh_type = SHT_STRTAB;
12279 symstrtab_hdr->sh_flags = bed->elf_strtab_flags;
12280 symstrtab_hdr->sh_addr = 0;
12281 symstrtab_hdr->sh_size = _bfd_elf_strtab_size (flinfo.symstrtab);
12282 symstrtab_hdr->sh_entsize = 0;
12283 symstrtab_hdr->sh_link = 0;
12284 symstrtab_hdr->sh_info = 0;
12285 /* sh_offset is set just below. */
12286 symstrtab_hdr->sh_addralign = 1;
12287
12288 off = _bfd_elf_assign_file_position_for_section (symstrtab_hdr,
12289 off, TRUE);
12290 elf_next_file_pos (abfd) = off;
12291
12292 if (bfd_seek (abfd, symstrtab_hdr->sh_offset, SEEK_SET) != 0
12293 || ! _bfd_elf_strtab_emit (abfd, flinfo.symstrtab))
12294 return FALSE;
12295 }
12296
12297 if (info->out_implib_bfd && !elf_output_implib (abfd, info))
12298 {
12299 _bfd_error_handler (_("%B: failed to generate import library"),
12300 info->out_implib_bfd);
12301 return FALSE;
12302 }
12303
12304 /* Adjust the relocs to have the correct symbol indices. */
12305 for (o = abfd->sections; o != NULL; o = o->next)
12306 {
12307 struct bfd_elf_section_data *esdo = elf_section_data (o);
12308 bfd_boolean sort;
12309
12310 if ((o->flags & SEC_RELOC) == 0)
12311 continue;
12312
12313 sort = bed->sort_relocs_p == NULL || (*bed->sort_relocs_p) (o);
12314 if (esdo->rel.hdr != NULL
12315 && !elf_link_adjust_relocs (abfd, o, &esdo->rel, sort, info))
12316 return FALSE;
12317 if (esdo->rela.hdr != NULL
12318 && !elf_link_adjust_relocs (abfd, o, &esdo->rela, sort, info))
12319 return FALSE;
12320
12321 /* Set the reloc_count field to 0 to prevent write_relocs from
12322 trying to swap the relocs out itself. */
12323 o->reloc_count = 0;
12324 }
12325
12326 if (dynamic && info->combreloc && dynobj != NULL)
12327 relativecount = elf_link_sort_relocs (abfd, info, &reldyn);
12328
12329 /* If we are linking against a dynamic object, or generating a
12330 shared library, finish up the dynamic linking information. */
12331 if (dynamic)
12332 {
12333 bfd_byte *dyncon, *dynconend;
12334
12335 /* Fix up .dynamic entries. */
12336 o = bfd_get_linker_section (dynobj, ".dynamic");
12337 BFD_ASSERT (o != NULL);
12338
12339 dyncon = o->contents;
12340 dynconend = o->contents + o->size;
12341 for (; dyncon < dynconend; dyncon += bed->s->sizeof_dyn)
12342 {
12343 Elf_Internal_Dyn dyn;
12344 const char *name;
12345 unsigned int type;
12346 bfd_size_type sh_size;
12347 bfd_vma sh_addr;
12348
12349 bed->s->swap_dyn_in (dynobj, dyncon, &dyn);
12350
12351 switch (dyn.d_tag)
12352 {
12353 default:
12354 continue;
12355 case DT_NULL:
12356 if (relativecount > 0 && dyncon + bed->s->sizeof_dyn < dynconend)
12357 {
12358 switch (elf_section_data (reldyn)->this_hdr.sh_type)
12359 {
12360 case SHT_REL: dyn.d_tag = DT_RELCOUNT; break;
12361 case SHT_RELA: dyn.d_tag = DT_RELACOUNT; break;
12362 default: continue;
12363 }
12364 dyn.d_un.d_val = relativecount;
12365 relativecount = 0;
12366 break;
12367 }
12368 continue;
12369
12370 case DT_INIT:
12371 name = info->init_function;
12372 goto get_sym;
12373 case DT_FINI:
12374 name = info->fini_function;
12375 get_sym:
12376 {
12377 struct elf_link_hash_entry *h;
12378
12379 h = elf_link_hash_lookup (htab, name, FALSE, FALSE, TRUE);
12380 if (h != NULL
12381 && (h->root.type == bfd_link_hash_defined
12382 || h->root.type == bfd_link_hash_defweak))
12383 {
12384 dyn.d_un.d_ptr = h->root.u.def.value;
12385 o = h->root.u.def.section;
12386 if (o->output_section != NULL)
12387 dyn.d_un.d_ptr += (o->output_section->vma
12388 + o->output_offset);
12389 else
12390 {
12391 /* The symbol is imported from another shared
12392 library and does not apply to this one. */
12393 dyn.d_un.d_ptr = 0;
12394 }
12395 break;
12396 }
12397 }
12398 continue;
12399
12400 case DT_PREINIT_ARRAYSZ:
12401 name = ".preinit_array";
12402 goto get_out_size;
12403 case DT_INIT_ARRAYSZ:
12404 name = ".init_array";
12405 goto get_out_size;
12406 case DT_FINI_ARRAYSZ:
12407 name = ".fini_array";
12408 get_out_size:
12409 o = bfd_get_section_by_name (abfd, name);
12410 if (o == NULL)
12411 {
12412 _bfd_error_handler
12413 (_("could not find section %s"), name);
12414 goto error_return;
12415 }
12416 if (o->size == 0)
12417 _bfd_error_handler
12418 (_("warning: %s section has zero size"), name);
12419 dyn.d_un.d_val = o->size;
12420 break;
12421
12422 case DT_PREINIT_ARRAY:
12423 name = ".preinit_array";
12424 goto get_out_vma;
12425 case DT_INIT_ARRAY:
12426 name = ".init_array";
12427 goto get_out_vma;
12428 case DT_FINI_ARRAY:
12429 name = ".fini_array";
12430 get_out_vma:
12431 o = bfd_get_section_by_name (abfd, name);
12432 goto do_vma;
12433
12434 case DT_HASH:
12435 name = ".hash";
12436 goto get_vma;
12437 case DT_GNU_HASH:
12438 name = ".gnu.hash";
12439 goto get_vma;
12440 case DT_STRTAB:
12441 name = ".dynstr";
12442 goto get_vma;
12443 case DT_SYMTAB:
12444 name = ".dynsym";
12445 goto get_vma;
12446 case DT_VERDEF:
12447 name = ".gnu.version_d";
12448 goto get_vma;
12449 case DT_VERNEED:
12450 name = ".gnu.version_r";
12451 goto get_vma;
12452 case DT_VERSYM:
12453 name = ".gnu.version";
12454 get_vma:
12455 o = bfd_get_linker_section (dynobj, name);
12456 do_vma:
12457 if (o == NULL || bfd_is_abs_section (o->output_section))
12458 {
12459 _bfd_error_handler
12460 (_("could not find section %s"), name);
12461 goto error_return;
12462 }
12463 if (elf_section_data (o->output_section)->this_hdr.sh_type == SHT_NOTE)
12464 {
12465 _bfd_error_handler
12466 (_("warning: section '%s' is being made into a note"), name);
12467 bfd_set_error (bfd_error_nonrepresentable_section);
12468 goto error_return;
12469 }
12470 dyn.d_un.d_ptr = o->output_section->vma + o->output_offset;
12471 break;
12472
12473 case DT_REL:
12474 case DT_RELA:
12475 case DT_RELSZ:
12476 case DT_RELASZ:
12477 if (dyn.d_tag == DT_REL || dyn.d_tag == DT_RELSZ)
12478 type = SHT_REL;
12479 else
12480 type = SHT_RELA;
12481 sh_size = 0;
12482 sh_addr = 0;
12483 for (i = 1; i < elf_numsections (abfd); i++)
12484 {
12485 Elf_Internal_Shdr *hdr;
12486
12487 hdr = elf_elfsections (abfd)[i];
12488 if (hdr->sh_type == type
12489 && (hdr->sh_flags & SHF_ALLOC) != 0)
12490 {
12491 sh_size += hdr->sh_size;
12492 if (sh_addr == 0
12493 || sh_addr > hdr->sh_addr)
12494 sh_addr = hdr->sh_addr;
12495 }
12496 }
12497
12498 if (bed->dtrel_excludes_plt && htab->srelplt != NULL)
12499 {
12500 /* Don't count procedure linkage table relocs in the
12501 overall reloc count. */
12502 sh_size -= htab->srelplt->size;
12503 if (sh_size == 0)
12504 /* If the size is zero, make the address zero too.
12505 This is to avoid a glibc bug. If the backend
12506 emits DT_RELA/DT_RELASZ even when DT_RELASZ is
12507 zero, then we'll put DT_RELA at the end of
12508 DT_JMPREL. glibc will interpret the end of
12509 DT_RELA matching the end of DT_JMPREL as the
12510 case where DT_RELA includes DT_JMPREL, and for
12511 LD_BIND_NOW will decide that processing DT_RELA
12512 will process the PLT relocs too. Net result:
12513 No PLT relocs applied. */
12514 sh_addr = 0;
12515
12516 /* If .rela.plt is the first .rela section, exclude
12517 it from DT_RELA. */
12518 else if (sh_addr == (htab->srelplt->output_section->vma
12519 + htab->srelplt->output_offset))
12520 sh_addr += htab->srelplt->size;
12521 }
12522
12523 if (dyn.d_tag == DT_RELSZ || dyn.d_tag == DT_RELASZ)
12524 dyn.d_un.d_val = sh_size;
12525 else
12526 dyn.d_un.d_ptr = sh_addr;
12527 break;
12528 }
12529 bed->s->swap_dyn_out (dynobj, &dyn, dyncon);
12530 }
12531 }
12532
12533 /* If we have created any dynamic sections, then output them. */
12534 if (dynobj != NULL)
12535 {
12536 if (! (*bed->elf_backend_finish_dynamic_sections) (abfd, info))
12537 goto error_return;
12538
12539 /* Check for DT_TEXTREL (late, in case the backend removes it). */
12540 if (((info->warn_shared_textrel && bfd_link_pic (info))
12541 || info->error_textrel)
12542 && (o = bfd_get_linker_section (dynobj, ".dynamic")) != NULL)
12543 {
12544 bfd_byte *dyncon, *dynconend;
12545
12546 dyncon = o->contents;
12547 dynconend = o->contents + o->size;
12548 for (; dyncon < dynconend; dyncon += bed->s->sizeof_dyn)
12549 {
12550 Elf_Internal_Dyn dyn;
12551
12552 bed->s->swap_dyn_in (dynobj, dyncon, &dyn);
12553
12554 if (dyn.d_tag == DT_TEXTREL)
12555 {
12556 if (info->error_textrel)
12557 info->callbacks->einfo
12558 (_("%P%X: read-only segment has dynamic relocations.\n"));
12559 else
12560 info->callbacks->einfo
12561 (_("%P: warning: creating a DT_TEXTREL in a shared object.\n"));
12562 break;
12563 }
12564 }
12565 }
12566
12567 for (o = dynobj->sections; o != NULL; o = o->next)
12568 {
12569 if ((o->flags & SEC_HAS_CONTENTS) == 0
12570 || o->size == 0
12571 || o->output_section == bfd_abs_section_ptr)
12572 continue;
12573 if ((o->flags & SEC_LINKER_CREATED) == 0)
12574 {
12575 /* At this point, we are only interested in sections
12576 created by _bfd_elf_link_create_dynamic_sections. */
12577 continue;
12578 }
12579 if (htab->stab_info.stabstr == o)
12580 continue;
12581 if (htab->eh_info.hdr_sec == o)
12582 continue;
12583 if (strcmp (o->name, ".dynstr") != 0)
12584 {
12585 if (! bfd_set_section_contents (abfd, o->output_section,
12586 o->contents,
12587 (file_ptr) o->output_offset
12588 * bfd_octets_per_byte (abfd),
12589 o->size))
12590 goto error_return;
12591 }
12592 else
12593 {
12594 /* The contents of the .dynstr section are actually in a
12595 stringtab. */
12596 file_ptr off;
12597
12598 off = elf_section_data (o->output_section)->this_hdr.sh_offset;
12599 if (bfd_seek (abfd, off, SEEK_SET) != 0
12600 || !_bfd_elf_strtab_emit (abfd, htab->dynstr))
12601 goto error_return;
12602 }
12603 }
12604 }
12605
12606 if (!info->resolve_section_groups)
12607 {
12608 bfd_boolean failed = FALSE;
12609
12610 BFD_ASSERT (bfd_link_relocatable (info));
12611 bfd_map_over_sections (abfd, bfd_elf_set_group_contents, &failed);
12612 if (failed)
12613 goto error_return;
12614 }
12615
12616 /* If we have optimized stabs strings, output them. */
12617 if (htab->stab_info.stabstr != NULL)
12618 {
12619 if (!_bfd_write_stab_strings (abfd, &htab->stab_info))
12620 goto error_return;
12621 }
12622
12623 if (! _bfd_elf_write_section_eh_frame_hdr (abfd, info))
12624 goto error_return;
12625
12626 elf_final_link_free (abfd, &flinfo);
12627
12628 elf_linker (abfd) = TRUE;
12629
12630 if (attr_section)
12631 {
12632 bfd_byte *contents = (bfd_byte *) bfd_malloc (attr_size);
12633 if (contents == NULL)
12634 return FALSE; /* Bail out and fail. */
12635 bfd_elf_set_obj_attr_contents (abfd, contents, attr_size);
12636 bfd_set_section_contents (abfd, attr_section, contents, 0, attr_size);
12637 free (contents);
12638 }
12639
12640 return TRUE;
12641
12642 error_return:
12643 elf_final_link_free (abfd, &flinfo);
12644 return FALSE;
12645 }
12646
12647 /* Initialize COOKIE for input bfd ABFD. */
12649
12650 static bfd_boolean
12651 init_reloc_cookie (struct elf_reloc_cookie *cookie,
12652 struct bfd_link_info *info, bfd *abfd)
12653 {
12654 Elf_Internal_Shdr *symtab_hdr;
12655 const struct elf_backend_data *bed;
12656
12657 bed = get_elf_backend_data (abfd);
12658 symtab_hdr = &elf_tdata (abfd)->symtab_hdr;
12659
12660 cookie->abfd = abfd;
12661 cookie->sym_hashes = elf_sym_hashes (abfd);
12662 cookie->bad_symtab = elf_bad_symtab (abfd);
12663 if (cookie->bad_symtab)
12664 {
12665 cookie->locsymcount = symtab_hdr->sh_size / bed->s->sizeof_sym;
12666 cookie->extsymoff = 0;
12667 }
12668 else
12669 {
12670 cookie->locsymcount = symtab_hdr->sh_info;
12671 cookie->extsymoff = symtab_hdr->sh_info;
12672 }
12673
12674 if (bed->s->arch_size == 32)
12675 cookie->r_sym_shift = 8;
12676 else
12677 cookie->r_sym_shift = 32;
12678
12679 cookie->locsyms = (Elf_Internal_Sym *) symtab_hdr->contents;
12680 if (cookie->locsyms == NULL && cookie->locsymcount != 0)
12681 {
12682 cookie->locsyms = bfd_elf_get_elf_syms (abfd, symtab_hdr,
12683 cookie->locsymcount, 0,
12684 NULL, NULL, NULL);
12685 if (cookie->locsyms == NULL)
12686 {
12687 info->callbacks->einfo (_("%P%X: can not read symbols: %E\n"));
12688 return FALSE;
12689 }
12690 if (info->keep_memory)
12691 symtab_hdr->contents = (bfd_byte *) cookie->locsyms;
12692 }
12693 return TRUE;
12694 }
12695
12696 /* Free the memory allocated by init_reloc_cookie, if appropriate. */
12697
12698 static void
12699 fini_reloc_cookie (struct elf_reloc_cookie *cookie, bfd *abfd)
12700 {
12701 Elf_Internal_Shdr *symtab_hdr;
12702
12703 symtab_hdr = &elf_tdata (abfd)->symtab_hdr;
12704 if (cookie->locsyms != NULL
12705 && symtab_hdr->contents != (unsigned char *) cookie->locsyms)
12706 free (cookie->locsyms);
12707 }
12708
12709 /* Initialize the relocation information in COOKIE for input section SEC
12710 of input bfd ABFD. */
12711
12712 static bfd_boolean
12713 init_reloc_cookie_rels (struct elf_reloc_cookie *cookie,
12714 struct bfd_link_info *info, bfd *abfd,
12715 asection *sec)
12716 {
12717 if (sec->reloc_count == 0)
12718 {
12719 cookie->rels = NULL;
12720 cookie->relend = NULL;
12721 }
12722 else
12723 {
12724 cookie->rels = _bfd_elf_link_read_relocs (abfd, sec, NULL, NULL,
12725 info->keep_memory);
12726 if (cookie->rels == NULL)
12727 return FALSE;
12728 cookie->rel = cookie->rels;
12729 cookie->relend = cookie->rels + sec->reloc_count;
12730 }
12731 cookie->rel = cookie->rels;
12732 return TRUE;
12733 }
12734
12735 /* Free the memory allocated by init_reloc_cookie_rels,
12736 if appropriate. */
12737
12738 static void
12739 fini_reloc_cookie_rels (struct elf_reloc_cookie *cookie,
12740 asection *sec)
12741 {
12742 if (cookie->rels && elf_section_data (sec)->relocs != cookie->rels)
12743 free (cookie->rels);
12744 }
12745
12746 /* Initialize the whole of COOKIE for input section SEC. */
12747
12748 static bfd_boolean
12749 init_reloc_cookie_for_section (struct elf_reloc_cookie *cookie,
12750 struct bfd_link_info *info,
12751 asection *sec)
12752 {
12753 if (!init_reloc_cookie (cookie, info, sec->owner))
12754 goto error1;
12755 if (!init_reloc_cookie_rels (cookie, info, sec->owner, sec))
12756 goto error2;
12757 return TRUE;
12758
12759 error2:
12760 fini_reloc_cookie (cookie, sec->owner);
12761 error1:
12762 return FALSE;
12763 }
12764
12765 /* Free the memory allocated by init_reloc_cookie_for_section,
12766 if appropriate. */
12767
12768 static void
12769 fini_reloc_cookie_for_section (struct elf_reloc_cookie *cookie,
12770 asection *sec)
12771 {
12772 fini_reloc_cookie_rels (cookie, sec);
12773 fini_reloc_cookie (cookie, sec->owner);
12774 }
12775
12776 /* Garbage collect unused sections. */
12778
12779 /* Default gc_mark_hook. */
12780
12781 asection *
12782 _bfd_elf_gc_mark_hook (asection *sec,
12783 struct bfd_link_info *info ATTRIBUTE_UNUSED,
12784 Elf_Internal_Rela *rel ATTRIBUTE_UNUSED,
12785 struct elf_link_hash_entry *h,
12786 Elf_Internal_Sym *sym)
12787 {
12788 if (h != NULL)
12789 {
12790 switch (h->root.type)
12791 {
12792 case bfd_link_hash_defined:
12793 case bfd_link_hash_defweak:
12794 return h->root.u.def.section;
12795
12796 case bfd_link_hash_common:
12797 return h->root.u.c.p->section;
12798
12799 default:
12800 break;
12801 }
12802 }
12803 else
12804 return bfd_section_from_elf_index (sec->owner, sym->st_shndx);
12805
12806 return NULL;
12807 }
12808
12809 /* Return the global debug definition section. */
12810
12811 static asection *
12812 elf_gc_mark_debug_section (asection *sec ATTRIBUTE_UNUSED,
12813 struct bfd_link_info *info ATTRIBUTE_UNUSED,
12814 Elf_Internal_Rela *rel ATTRIBUTE_UNUSED,
12815 struct elf_link_hash_entry *h,
12816 Elf_Internal_Sym *sym ATTRIBUTE_UNUSED)
12817 {
12818 if (h != NULL
12819 && (h->root.type == bfd_link_hash_defined
12820 || h->root.type == bfd_link_hash_defweak)
12821 && (h->root.u.def.section->flags & SEC_DEBUGGING) != 0)
12822 return h->root.u.def.section;
12823
12824 return NULL;
12825 }
12826
12827 /* COOKIE->rel describes a relocation against section SEC, which is
12828 a section we've decided to keep. Return the section that contains
12829 the relocation symbol, or NULL if no section contains it. */
12830
12831 asection *
12832 _bfd_elf_gc_mark_rsec (struct bfd_link_info *info, asection *sec,
12833 elf_gc_mark_hook_fn gc_mark_hook,
12834 struct elf_reloc_cookie *cookie,
12835 bfd_boolean *start_stop)
12836 {
12837 unsigned long r_symndx;
12838 struct elf_link_hash_entry *h;
12839
12840 r_symndx = cookie->rel->r_info >> cookie->r_sym_shift;
12841 if (r_symndx == STN_UNDEF)
12842 return NULL;
12843
12844 if (r_symndx >= cookie->locsymcount
12845 || ELF_ST_BIND (cookie->locsyms[r_symndx].st_info) != STB_LOCAL)
12846 {
12847 h = cookie->sym_hashes[r_symndx - cookie->extsymoff];
12848 if (h == NULL)
12849 {
12850 info->callbacks->einfo (_("%F%P: corrupt input: %B\n"),
12851 sec->owner);
12852 return NULL;
12853 }
12854 while (h->root.type == bfd_link_hash_indirect
12855 || h->root.type == bfd_link_hash_warning)
12856 h = (struct elf_link_hash_entry *) h->root.u.i.link;
12857 h->mark = 1;
12858 /* If this symbol is weak and there is a non-weak definition, we
12859 keep the non-weak definition because many backends put
12860 dynamic reloc info on the non-weak definition for code
12861 handling copy relocs. */
12862 if (h->is_weakalias)
12863 weakdef (h)->mark = 1;
12864
12865 if (start_stop != NULL)
12866 {
12867 /* To work around a glibc bug, mark XXX input sections
12868 when there is a reference to __start_XXX or __stop_XXX
12869 symbols. */
12870 if (h->start_stop)
12871 {
12872 asection *s = h->u2.start_stop_section;
12873 *start_stop = !s->gc_mark;
12874 return s;
12875 }
12876 }
12877
12878 return (*gc_mark_hook) (sec, info, cookie->rel, h, NULL);
12879 }
12880
12881 return (*gc_mark_hook) (sec, info, cookie->rel, NULL,
12882 &cookie->locsyms[r_symndx]);
12883 }
12884
12885 /* COOKIE->rel describes a relocation against section SEC, which is
12886 a section we've decided to keep. Mark the section that contains
12887 the relocation symbol. */
12888
12889 bfd_boolean
12890 _bfd_elf_gc_mark_reloc (struct bfd_link_info *info,
12891 asection *sec,
12892 elf_gc_mark_hook_fn gc_mark_hook,
12893 struct elf_reloc_cookie *cookie)
12894 {
12895 asection *rsec;
12896 bfd_boolean start_stop = FALSE;
12897
12898 rsec = _bfd_elf_gc_mark_rsec (info, sec, gc_mark_hook, cookie, &start_stop);
12899 while (rsec != NULL)
12900 {
12901 if (!rsec->gc_mark)
12902 {
12903 if (bfd_get_flavour (rsec->owner) != bfd_target_elf_flavour
12904 || (rsec->owner->flags & DYNAMIC) != 0)
12905 rsec->gc_mark = 1;
12906 else if (!_bfd_elf_gc_mark (info, rsec, gc_mark_hook))
12907 return FALSE;
12908 }
12909 if (!start_stop)
12910 break;
12911 rsec = bfd_get_next_section_by_name (rsec->owner, rsec);
12912 }
12913 return TRUE;
12914 }
12915
12916 /* The mark phase of garbage collection. For a given section, mark
12917 it and any sections in this section's group, and all the sections
12918 which define symbols to which it refers. */
12919
12920 bfd_boolean
12921 _bfd_elf_gc_mark (struct bfd_link_info *info,
12922 asection *sec,
12923 elf_gc_mark_hook_fn gc_mark_hook)
12924 {
12925 bfd_boolean ret;
12926 asection *group_sec, *eh_frame;
12927
12928 sec->gc_mark = 1;
12929
12930 /* Mark all the sections in the group. */
12931 group_sec = elf_section_data (sec)->next_in_group;
12932 if (group_sec && !group_sec->gc_mark)
12933 if (!_bfd_elf_gc_mark (info, group_sec, gc_mark_hook))
12934 return FALSE;
12935
12936 /* Look through the section relocs. */
12937 ret = TRUE;
12938 eh_frame = elf_eh_frame_section (sec->owner);
12939 if ((sec->flags & SEC_RELOC) != 0
12940 && sec->reloc_count > 0
12941 && sec != eh_frame)
12942 {
12943 struct elf_reloc_cookie cookie;
12944
12945 if (!init_reloc_cookie_for_section (&cookie, info, sec))
12946 ret = FALSE;
12947 else
12948 {
12949 for (; cookie.rel < cookie.relend; cookie.rel++)
12950 if (!_bfd_elf_gc_mark_reloc (info, sec, gc_mark_hook, &cookie))
12951 {
12952 ret = FALSE;
12953 break;
12954 }
12955 fini_reloc_cookie_for_section (&cookie, sec);
12956 }
12957 }
12958
12959 if (ret && eh_frame && elf_fde_list (sec))
12960 {
12961 struct elf_reloc_cookie cookie;
12962
12963 if (!init_reloc_cookie_for_section (&cookie, info, eh_frame))
12964 ret = FALSE;
12965 else
12966 {
12967 if (!_bfd_elf_gc_mark_fdes (info, sec, eh_frame,
12968 gc_mark_hook, &cookie))
12969 ret = FALSE;
12970 fini_reloc_cookie_for_section (&cookie, eh_frame);
12971 }
12972 }
12973
12974 eh_frame = elf_section_eh_frame_entry (sec);
12975 if (ret && eh_frame && !eh_frame->gc_mark)
12976 if (!_bfd_elf_gc_mark (info, eh_frame, gc_mark_hook))
12977 ret = FALSE;
12978
12979 return ret;
12980 }
12981
12982 /* Scan and mark sections in a special or debug section group. */
12983
12984 static void
12985 _bfd_elf_gc_mark_debug_special_section_group (asection *grp)
12986 {
12987 /* Point to first section of section group. */
12988 asection *ssec;
12989 /* Used to iterate the section group. */
12990 asection *msec;
12991
12992 bfd_boolean is_special_grp = TRUE;
12993 bfd_boolean is_debug_grp = TRUE;
12994
12995 /* First scan to see if group contains any section other than debug
12996 and special section. */
12997 ssec = msec = elf_next_in_group (grp);
12998 do
12999 {
13000 if ((msec->flags & SEC_DEBUGGING) == 0)
13001 is_debug_grp = FALSE;
13002
13003 if ((msec->flags & (SEC_ALLOC | SEC_LOAD | SEC_RELOC)) != 0)
13004 is_special_grp = FALSE;
13005
13006 msec = elf_next_in_group (msec);
13007 }
13008 while (msec != ssec);
13009
13010 /* If this is a pure debug section group or pure special section group,
13011 keep all sections in this group. */
13012 if (is_debug_grp || is_special_grp)
13013 {
13014 do
13015 {
13016 msec->gc_mark = 1;
13017 msec = elf_next_in_group (msec);
13018 }
13019 while (msec != ssec);
13020 }
13021 }
13022
13023 /* Keep debug and special sections. */
13024
13025 bfd_boolean
13026 _bfd_elf_gc_mark_extra_sections (struct bfd_link_info *info,
13027 elf_gc_mark_hook_fn mark_hook ATTRIBUTE_UNUSED)
13028 {
13029 bfd *ibfd;
13030
13031 for (ibfd = info->input_bfds; ibfd != NULL; ibfd = ibfd->link.next)
13032 {
13033 asection *isec;
13034 bfd_boolean some_kept;
13035 bfd_boolean debug_frag_seen;
13036 bfd_boolean has_kept_debug_info;
13037
13038 if (bfd_get_flavour (ibfd) != bfd_target_elf_flavour)
13039 continue;
13040 isec = ibfd->sections;
13041 if (isec == NULL || isec->sec_info_type == SEC_INFO_TYPE_JUST_SYMS)
13042 continue;
13043
13044 /* Ensure all linker created sections are kept,
13045 see if any other section is already marked,
13046 and note if we have any fragmented debug sections. */
13047 debug_frag_seen = some_kept = has_kept_debug_info = FALSE;
13048 for (isec = ibfd->sections; isec != NULL; isec = isec->next)
13049 {
13050 if ((isec->flags & SEC_LINKER_CREATED) != 0)
13051 isec->gc_mark = 1;
13052 else if (isec->gc_mark
13053 && (isec->flags & SEC_ALLOC) != 0
13054 && elf_section_type (isec) != SHT_NOTE)
13055 some_kept = TRUE;
13056
13057 if (!debug_frag_seen
13058 && (isec->flags & SEC_DEBUGGING)
13059 && CONST_STRNEQ (isec->name, ".debug_line."))
13060 debug_frag_seen = TRUE;
13061 }
13062
13063 /* If no non-note alloc section in this file will be kept, then
13064 we can toss out the debug and special sections. */
13065 if (!some_kept)
13066 continue;
13067
13068 /* Keep debug and special sections like .comment when they are
13069 not part of a group. Also keep section groups that contain
13070 just debug sections or special sections. */
13071 for (isec = ibfd->sections; isec != NULL; isec = isec->next)
13072 {
13073 if ((isec->flags & SEC_GROUP) != 0)
13074 _bfd_elf_gc_mark_debug_special_section_group (isec);
13075 else if (((isec->flags & SEC_DEBUGGING) != 0
13076 || (isec->flags & (SEC_ALLOC | SEC_LOAD | SEC_RELOC)) == 0)
13077 && elf_next_in_group (isec) == NULL)
13078 isec->gc_mark = 1;
13079 if (isec->gc_mark && (isec->flags & SEC_DEBUGGING) != 0)
13080 has_kept_debug_info = TRUE;
13081 }
13082
13083 /* Look for CODE sections which are going to be discarded,
13084 and find and discard any fragmented debug sections which
13085 are associated with that code section. */
13086 if (debug_frag_seen)
13087 for (isec = ibfd->sections; isec != NULL; isec = isec->next)
13088 if ((isec->flags & SEC_CODE) != 0
13089 && isec->gc_mark == 0)
13090 {
13091 unsigned int ilen;
13092 asection *dsec;
13093
13094 ilen = strlen (isec->name);
13095
13096 /* Association is determined by the name of the debug
13097 section containing the name of the code section as
13098 a suffix. For example .debug_line.text.foo is a
13099 debug section associated with .text.foo. */
13100 for (dsec = ibfd->sections; dsec != NULL; dsec = dsec->next)
13101 {
13102 unsigned int dlen;
13103
13104 if (dsec->gc_mark == 0
13105 || (dsec->flags & SEC_DEBUGGING) == 0)
13106 continue;
13107
13108 dlen = strlen (dsec->name);
13109
13110 if (dlen > ilen
13111 && strncmp (dsec->name + (dlen - ilen),
13112 isec->name, ilen) == 0)
13113 dsec->gc_mark = 0;
13114 }
13115 }
13116
13117 /* Mark debug sections referenced by kept debug sections. */
13118 if (has_kept_debug_info)
13119 for (isec = ibfd->sections; isec != NULL; isec = isec->next)
13120 if (isec->gc_mark
13121 && (isec->flags & SEC_DEBUGGING) != 0)
13122 if (!_bfd_elf_gc_mark (info, isec,
13123 elf_gc_mark_debug_section))
13124 return FALSE;
13125 }
13126 return TRUE;
13127 }
13128
13129 static bfd_boolean
13130 elf_gc_sweep (bfd *abfd, struct bfd_link_info *info)
13131 {
13132 bfd *sub;
13133 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
13134
13135 for (sub = info->input_bfds; sub != NULL; sub = sub->link.next)
13136 {
13137 asection *o;
13138
13139 if (bfd_get_flavour (sub) != bfd_target_elf_flavour
13140 || elf_object_id (sub) != elf_hash_table_id (elf_hash_table (info))
13141 || !(*bed->relocs_compatible) (sub->xvec, abfd->xvec))
13142 continue;
13143 o = sub->sections;
13144 if (o == NULL || o->sec_info_type == SEC_INFO_TYPE_JUST_SYMS)
13145 continue;
13146
13147 for (o = sub->sections; o != NULL; o = o->next)
13148 {
13149 /* When any section in a section group is kept, we keep all
13150 sections in the section group. If the first member of
13151 the section group is excluded, we will also exclude the
13152 group section. */
13153 if (o->flags & SEC_GROUP)
13154 {
13155 asection *first = elf_next_in_group (o);
13156 o->gc_mark = first->gc_mark;
13157 }
13158
13159 if (o->gc_mark)
13160 continue;
13161
13162 /* Skip sweeping sections already excluded. */
13163 if (o->flags & SEC_EXCLUDE)
13164 continue;
13165
13166 /* Since this is early in the link process, it is simple
13167 to remove a section from the output. */
13168 o->flags |= SEC_EXCLUDE;
13169
13170 if (info->print_gc_sections && o->size != 0)
13171 /* xgettext:c-format */
13172 _bfd_error_handler (_("Removing unused section '%A' in file '%B'"),
13173 o, sub);
13174 }
13175 }
13176
13177 return TRUE;
13178 }
13179
13180 /* Propagate collected vtable information. This is called through
13181 elf_link_hash_traverse. */
13182
13183 static bfd_boolean
13184 elf_gc_propagate_vtable_entries_used (struct elf_link_hash_entry *h, void *okp)
13185 {
13186 /* Those that are not vtables. */
13187 if (h->start_stop
13188 || h->u2.vtable == NULL
13189 || h->u2.vtable->parent == NULL)
13190 return TRUE;
13191
13192 /* Those vtables that do not have parents, we cannot merge. */
13193 if (h->u2.vtable->parent == (struct elf_link_hash_entry *) -1)
13194 return TRUE;
13195
13196 /* If we've already been done, exit. */
13197 if (h->u2.vtable->used && h->u2.vtable->used[-1])
13198 return TRUE;
13199
13200 /* Make sure the parent's table is up to date. */
13201 elf_gc_propagate_vtable_entries_used (h->u2.vtable->parent, okp);
13202
13203 if (h->u2.vtable->used == NULL)
13204 {
13205 /* None of this table's entries were referenced. Re-use the
13206 parent's table. */
13207 h->u2.vtable->used = h->u2.vtable->parent->u2.vtable->used;
13208 h->u2.vtable->size = h->u2.vtable->parent->u2.vtable->size;
13209 }
13210 else
13211 {
13212 size_t n;
13213 bfd_boolean *cu, *pu;
13214
13215 /* Or the parent's entries into ours. */
13216 cu = h->u2.vtable->used;
13217 cu[-1] = TRUE;
13218 pu = h->u2.vtable->parent->u2.vtable->used;
13219 if (pu != NULL)
13220 {
13221 const struct elf_backend_data *bed;
13222 unsigned int log_file_align;
13223
13224 bed = get_elf_backend_data (h->root.u.def.section->owner);
13225 log_file_align = bed->s->log_file_align;
13226 n = h->u2.vtable->parent->u2.vtable->size >> log_file_align;
13227 while (n--)
13228 {
13229 if (*pu)
13230 *cu = TRUE;
13231 pu++;
13232 cu++;
13233 }
13234 }
13235 }
13236
13237 return TRUE;
13238 }
13239
13240 static bfd_boolean
13241 elf_gc_smash_unused_vtentry_relocs (struct elf_link_hash_entry *h, void *okp)
13242 {
13243 asection *sec;
13244 bfd_vma hstart, hend;
13245 Elf_Internal_Rela *relstart, *relend, *rel;
13246 const struct elf_backend_data *bed;
13247 unsigned int log_file_align;
13248
13249 /* Take care of both those symbols that do not describe vtables as
13250 well as those that are not loaded. */
13251 if (h->start_stop
13252 || h->u2.vtable == NULL
13253 || h->u2.vtable->parent == NULL)
13254 return TRUE;
13255
13256 BFD_ASSERT (h->root.type == bfd_link_hash_defined
13257 || h->root.type == bfd_link_hash_defweak);
13258
13259 sec = h->root.u.def.section;
13260 hstart = h->root.u.def.value;
13261 hend = hstart + h->size;
13262
13263 relstart = _bfd_elf_link_read_relocs (sec->owner, sec, NULL, NULL, TRUE);
13264 if (!relstart)
13265 return *(bfd_boolean *) okp = FALSE;
13266 bed = get_elf_backend_data (sec->owner);
13267 log_file_align = bed->s->log_file_align;
13268
13269 relend = relstart + sec->reloc_count;
13270
13271 for (rel = relstart; rel < relend; ++rel)
13272 if (rel->r_offset >= hstart && rel->r_offset < hend)
13273 {
13274 /* If the entry is in use, do nothing. */
13275 if (h->u2.vtable->used
13276 && (rel->r_offset - hstart) < h->u2.vtable->size)
13277 {
13278 bfd_vma entry = (rel->r_offset - hstart) >> log_file_align;
13279 if (h->u2.vtable->used[entry])
13280 continue;
13281 }
13282 /* Otherwise, kill it. */
13283 rel->r_offset = rel->r_info = rel->r_addend = 0;
13284 }
13285
13286 return TRUE;
13287 }
13288
13289 /* Mark sections containing dynamically referenced symbols. When
13290 building shared libraries, we must assume that any visible symbol is
13291 referenced. */
13292
13293 bfd_boolean
13294 bfd_elf_gc_mark_dynamic_ref_symbol (struct elf_link_hash_entry *h, void *inf)
13295 {
13296 struct bfd_link_info *info = (struct bfd_link_info *) inf;
13297 struct bfd_elf_dynamic_list *d = info->dynamic_list;
13298
13299 if ((h->root.type == bfd_link_hash_defined
13300 || h->root.type == bfd_link_hash_defweak)
13301 && ((h->ref_dynamic && !h->forced_local)
13302 || ((h->def_regular || ELF_COMMON_DEF_P (h))
13303 && ELF_ST_VISIBILITY (h->other) != STV_INTERNAL
13304 && ELF_ST_VISIBILITY (h->other) != STV_HIDDEN
13305 && (!bfd_link_executable (info)
13306 || info->gc_keep_exported
13307 || info->export_dynamic
13308 || (h->dynamic
13309 && d != NULL
13310 && (*d->match) (&d->head, NULL, h->root.root.string)))
13311 && (h->versioned >= versioned
13312 || !bfd_hide_sym_by_version (info->version_info,
13313 h->root.root.string)))))
13314 h->root.u.def.section->flags |= SEC_KEEP;
13315
13316 return TRUE;
13317 }
13318
13319 /* Keep all sections containing symbols undefined on the command-line,
13320 and the section containing the entry symbol. */
13321
13322 void
13323 _bfd_elf_gc_keep (struct bfd_link_info *info)
13324 {
13325 struct bfd_sym_chain *sym;
13326
13327 for (sym = info->gc_sym_list; sym != NULL; sym = sym->next)
13328 {
13329 struct elf_link_hash_entry *h;
13330
13331 h = elf_link_hash_lookup (elf_hash_table (info), sym->name,
13332 FALSE, FALSE, FALSE);
13333
13334 if (h != NULL
13335 && (h->root.type == bfd_link_hash_defined
13336 || h->root.type == bfd_link_hash_defweak)
13337 && !bfd_is_abs_section (h->root.u.def.section)
13338 && !bfd_is_und_section (h->root.u.def.section))
13339 h->root.u.def.section->flags |= SEC_KEEP;
13340 }
13341 }
13342
13343 bfd_boolean
13344 bfd_elf_parse_eh_frame_entries (bfd *abfd ATTRIBUTE_UNUSED,
13345 struct bfd_link_info *info)
13346 {
13347 bfd *ibfd = info->input_bfds;
13348
13349 for (ibfd = info->input_bfds; ibfd != NULL; ibfd = ibfd->link.next)
13350 {
13351 asection *sec;
13352 struct elf_reloc_cookie cookie;
13353
13354 if (bfd_get_flavour (ibfd) != bfd_target_elf_flavour)
13355 continue;
13356 sec = ibfd->sections;
13357 if (sec == NULL || sec->sec_info_type == SEC_INFO_TYPE_JUST_SYMS)
13358 continue;
13359
13360 if (!init_reloc_cookie (&cookie, info, ibfd))
13361 return FALSE;
13362
13363 for (sec = ibfd->sections; sec; sec = sec->next)
13364 {
13365 if (CONST_STRNEQ (bfd_section_name (ibfd, sec), ".eh_frame_entry")
13366 && init_reloc_cookie_rels (&cookie, info, ibfd, sec))
13367 {
13368 _bfd_elf_parse_eh_frame_entry (info, sec, &cookie);
13369 fini_reloc_cookie_rels (&cookie, sec);
13370 }
13371 }
13372 }
13373 return TRUE;
13374 }
13375
13376 /* Do mark and sweep of unused sections. */
13377
13378 bfd_boolean
13379 bfd_elf_gc_sections (bfd *abfd, struct bfd_link_info *info)
13380 {
13381 bfd_boolean ok = TRUE;
13382 bfd *sub;
13383 elf_gc_mark_hook_fn gc_mark_hook;
13384 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
13385 struct elf_link_hash_table *htab;
13386
13387 if (!bed->can_gc_sections
13388 || !is_elf_hash_table (info->hash))
13389 {
13390 _bfd_error_handler(_("Warning: gc-sections option ignored"));
13391 return TRUE;
13392 }
13393
13394 bed->gc_keep (info);
13395 htab = elf_hash_table (info);
13396
13397 /* Try to parse each bfd's .eh_frame section. Point elf_eh_frame_section
13398 at the .eh_frame section if we can mark the FDEs individually. */
13399 for (sub = info->input_bfds;
13400 info->eh_frame_hdr_type != COMPACT_EH_HDR && sub != NULL;
13401 sub = sub->link.next)
13402 {
13403 asection *sec;
13404 struct elf_reloc_cookie cookie;
13405
13406 sec = sub->sections;
13407 if (sec == NULL || sec->sec_info_type == SEC_INFO_TYPE_JUST_SYMS)
13408 continue;
13409 sec = bfd_get_section_by_name (sub, ".eh_frame");
13410 while (sec && init_reloc_cookie_for_section (&cookie, info, sec))
13411 {
13412 _bfd_elf_parse_eh_frame (sub, info, sec, &cookie);
13413 if (elf_section_data (sec)->sec_info
13414 && (sec->flags & SEC_LINKER_CREATED) == 0)
13415 elf_eh_frame_section (sub) = sec;
13416 fini_reloc_cookie_for_section (&cookie, sec);
13417 sec = bfd_get_next_section_by_name (NULL, sec);
13418 }
13419 }
13420
13421 /* Apply transitive closure to the vtable entry usage info. */
13422 elf_link_hash_traverse (htab, elf_gc_propagate_vtable_entries_used, &ok);
13423 if (!ok)
13424 return FALSE;
13425
13426 /* Kill the vtable relocations that were not used. */
13427 elf_link_hash_traverse (htab, elf_gc_smash_unused_vtentry_relocs, &ok);
13428 if (!ok)
13429 return FALSE;
13430
13431 /* Mark dynamically referenced symbols. */
13432 if (htab->dynamic_sections_created || info->gc_keep_exported)
13433 elf_link_hash_traverse (htab, bed->gc_mark_dynamic_ref, info);
13434
13435 /* Grovel through relocs to find out who stays ... */
13436 gc_mark_hook = bed->gc_mark_hook;
13437 for (sub = info->input_bfds; sub != NULL; sub = sub->link.next)
13438 {
13439 asection *o;
13440
13441 if (bfd_get_flavour (sub) != bfd_target_elf_flavour
13442 || elf_object_id (sub) != elf_hash_table_id (htab)
13443 || !(*bed->relocs_compatible) (sub->xvec, abfd->xvec))
13444 continue;
13445
13446 o = sub->sections;
13447 if (o == NULL || o->sec_info_type == SEC_INFO_TYPE_JUST_SYMS)
13448 continue;
13449
13450 /* Start at sections marked with SEC_KEEP (ref _bfd_elf_gc_keep).
13451 Also treat note sections as a root, if the section is not part
13452 of a group. We must keep all PREINIT_ARRAY, INIT_ARRAY as
13453 well as FINI_ARRAY sections for ld -r. */
13454 for (o = sub->sections; o != NULL; o = o->next)
13455 if (!o->gc_mark
13456 && (o->flags & SEC_EXCLUDE) == 0
13457 && ((o->flags & SEC_KEEP) != 0
13458 || (bfd_link_relocatable (info)
13459 && ((elf_section_data (o)->this_hdr.sh_type
13460 == SHT_PREINIT_ARRAY)
13461 || (elf_section_data (o)->this_hdr.sh_type
13462 == SHT_INIT_ARRAY)
13463 || (elf_section_data (o)->this_hdr.sh_type
13464 == SHT_FINI_ARRAY)))
13465 || (elf_section_data (o)->this_hdr.sh_type == SHT_NOTE
13466 && elf_next_in_group (o) == NULL )))
13467 {
13468 if (!_bfd_elf_gc_mark (info, o, gc_mark_hook))
13469 return FALSE;
13470 }
13471 }
13472
13473 /* Allow the backend to mark additional target specific sections. */
13474 bed->gc_mark_extra_sections (info, gc_mark_hook);
13475
13476 /* ... and mark SEC_EXCLUDE for those that go. */
13477 return elf_gc_sweep (abfd, info);
13478 }
13479
13480 /* Called from check_relocs to record the existence of a VTINHERIT reloc. */
13482
13483 bfd_boolean
13484 bfd_elf_gc_record_vtinherit (bfd *abfd,
13485 asection *sec,
13486 struct elf_link_hash_entry *h,
13487 bfd_vma offset)
13488 {
13489 struct elf_link_hash_entry **sym_hashes, **sym_hashes_end;
13490 struct elf_link_hash_entry **search, *child;
13491 size_t extsymcount;
13492 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
13493
13494 /* The sh_info field of the symtab header tells us where the
13495 external symbols start. We don't care about the local symbols at
13496 this point. */
13497 extsymcount = elf_tdata (abfd)->symtab_hdr.sh_size / bed->s->sizeof_sym;
13498 if (!elf_bad_symtab (abfd))
13499 extsymcount -= elf_tdata (abfd)->symtab_hdr.sh_info;
13500
13501 sym_hashes = elf_sym_hashes (abfd);
13502 sym_hashes_end = sym_hashes + extsymcount;
13503
13504 /* Hunt down the child symbol, which is in this section at the same
13505 offset as the relocation. */
13506 for (search = sym_hashes; search != sym_hashes_end; ++search)
13507 {
13508 if ((child = *search) != NULL
13509 && (child->root.type == bfd_link_hash_defined
13510 || child->root.type == bfd_link_hash_defweak)
13511 && child->root.u.def.section == sec
13512 && child->root.u.def.value == offset)
13513 goto win;
13514 }
13515
13516 /* xgettext:c-format */
13517 _bfd_error_handler (_("%B: %A+%#Lx: No symbol found for INHERIT"),
13518 abfd, sec, offset);
13519 bfd_set_error (bfd_error_invalid_operation);
13520 return FALSE;
13521
13522 win:
13523 if (!child->u2.vtable)
13524 {
13525 child->u2.vtable = ((struct elf_link_virtual_table_entry *)
13526 bfd_zalloc (abfd, sizeof (*child->u2.vtable)));
13527 if (!child->u2.vtable)
13528 return FALSE;
13529 }
13530 if (!h)
13531 {
13532 /* This *should* only be the absolute section. It could potentially
13533 be that someone has defined a non-global vtable though, which
13534 would be bad. It isn't worth paging in the local symbols to be
13535 sure though; that case should simply be handled by the assembler. */
13536
13537 child->u2.vtable->parent = (struct elf_link_hash_entry *) -1;
13538 }
13539 else
13540 child->u2.vtable->parent = h;
13541
13542 return TRUE;
13543 }
13544
13545 /* Called from check_relocs to record the existence of a VTENTRY reloc. */
13546
13547 bfd_boolean
13548 bfd_elf_gc_record_vtentry (bfd *abfd ATTRIBUTE_UNUSED,
13549 asection *sec ATTRIBUTE_UNUSED,
13550 struct elf_link_hash_entry *h,
13551 bfd_vma addend)
13552 {
13553 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
13554 unsigned int log_file_align = bed->s->log_file_align;
13555
13556 if (!h->u2.vtable)
13557 {
13558 h->u2.vtable = ((struct elf_link_virtual_table_entry *)
13559 bfd_zalloc (abfd, sizeof (*h->u2.vtable)));
13560 if (!h->u2.vtable)
13561 return FALSE;
13562 }
13563
13564 if (addend >= h->u2.vtable->size)
13565 {
13566 size_t size, bytes, file_align;
13567 bfd_boolean *ptr = h->u2.vtable->used;
13568
13569 /* While the symbol is undefined, we have to be prepared to handle
13570 a zero size. */
13571 file_align = 1 << log_file_align;
13572 if (h->root.type == bfd_link_hash_undefined)
13573 size = addend + file_align;
13574 else
13575 {
13576 size = h->size;
13577 if (addend >= size)
13578 {
13579 /* Oops! We've got a reference past the defined end of
13580 the table. This is probably a bug -- shall we warn? */
13581 size = addend + file_align;
13582 }
13583 }
13584 size = (size + file_align - 1) & -file_align;
13585
13586 /* Allocate one extra entry for use as a "done" flag for the
13587 consolidation pass. */
13588 bytes = ((size >> log_file_align) + 1) * sizeof (bfd_boolean);
13589
13590 if (ptr)
13591 {
13592 ptr = (bfd_boolean *) bfd_realloc (ptr - 1, bytes);
13593
13594 if (ptr != NULL)
13595 {
13596 size_t oldbytes;
13597
13598 oldbytes = (((h->u2.vtable->size >> log_file_align) + 1)
13599 * sizeof (bfd_boolean));
13600 memset (((char *) ptr) + oldbytes, 0, bytes - oldbytes);
13601 }
13602 }
13603 else
13604 ptr = (bfd_boolean *) bfd_zmalloc (bytes);
13605
13606 if (ptr == NULL)
13607 return FALSE;
13608
13609 /* And arrange for that done flag to be at index -1. */
13610 h->u2.vtable->used = ptr + 1;
13611 h->u2.vtable->size = size;
13612 }
13613
13614 h->u2.vtable->used[addend >> log_file_align] = TRUE;
13615
13616 return TRUE;
13617 }
13618
13619 /* Map an ELF section header flag to its corresponding string. */
13620 typedef struct
13621 {
13622 char *flag_name;
13623 flagword flag_value;
13624 } elf_flags_to_name_table;
13625
13626 static elf_flags_to_name_table elf_flags_to_names [] =
13627 {
13628 { "SHF_WRITE", SHF_WRITE },
13629 { "SHF_ALLOC", SHF_ALLOC },
13630 { "SHF_EXECINSTR", SHF_EXECINSTR },
13631 { "SHF_MERGE", SHF_MERGE },
13632 { "SHF_STRINGS", SHF_STRINGS },
13633 { "SHF_INFO_LINK", SHF_INFO_LINK},
13634 { "SHF_LINK_ORDER", SHF_LINK_ORDER},
13635 { "SHF_OS_NONCONFORMING", SHF_OS_NONCONFORMING},
13636 { "SHF_GROUP", SHF_GROUP },
13637 { "SHF_TLS", SHF_TLS },
13638 { "SHF_MASKOS", SHF_MASKOS },
13639 { "SHF_EXCLUDE", SHF_EXCLUDE },
13640 };
13641
13642 /* Returns TRUE if the section is to be included, otherwise FALSE. */
13643 bfd_boolean
13644 bfd_elf_lookup_section_flags (struct bfd_link_info *info,
13645 struct flag_info *flaginfo,
13646 asection *section)
13647 {
13648 const bfd_vma sh_flags = elf_section_flags (section);
13649
13650 if (!flaginfo->flags_initialized)
13651 {
13652 bfd *obfd = info->output_bfd;
13653 const struct elf_backend_data *bed = get_elf_backend_data (obfd);
13654 struct flag_info_list *tf = flaginfo->flag_list;
13655 int with_hex = 0;
13656 int without_hex = 0;
13657
13658 for (tf = flaginfo->flag_list; tf != NULL; tf = tf->next)
13659 {
13660 unsigned i;
13661 flagword (*lookup) (char *);
13662
13663 lookup = bed->elf_backend_lookup_section_flags_hook;
13664 if (lookup != NULL)
13665 {
13666 flagword hexval = (*lookup) ((char *) tf->name);
13667
13668 if (hexval != 0)
13669 {
13670 if (tf->with == with_flags)
13671 with_hex |= hexval;
13672 else if (tf->with == without_flags)
13673 without_hex |= hexval;
13674 tf->valid = TRUE;
13675 continue;
13676 }
13677 }
13678 for (i = 0; i < ARRAY_SIZE (elf_flags_to_names); ++i)
13679 {
13680 if (strcmp (tf->name, elf_flags_to_names[i].flag_name) == 0)
13681 {
13682 if (tf->with == with_flags)
13683 with_hex |= elf_flags_to_names[i].flag_value;
13684 else if (tf->with == without_flags)
13685 without_hex |= elf_flags_to_names[i].flag_value;
13686 tf->valid = TRUE;
13687 break;
13688 }
13689 }
13690 if (!tf->valid)
13691 {
13692 info->callbacks->einfo
13693 (_("Unrecognized INPUT_SECTION_FLAG %s\n"), tf->name);
13694 return FALSE;
13695 }
13696 }
13697 flaginfo->flags_initialized = TRUE;
13698 flaginfo->only_with_flags |= with_hex;
13699 flaginfo->not_with_flags |= without_hex;
13700 }
13701
13702 if ((flaginfo->only_with_flags & sh_flags) != flaginfo->only_with_flags)
13703 return FALSE;
13704
13705 if ((flaginfo->not_with_flags & sh_flags) != 0)
13706 return FALSE;
13707
13708 return TRUE;
13709 }
13710
13711 struct alloc_got_off_arg {
13712 bfd_vma gotoff;
13713 struct bfd_link_info *info;
13714 };
13715
13716 /* We need a special top-level link routine to convert got reference counts
13717 to real got offsets. */
13718
13719 static bfd_boolean
13720 elf_gc_allocate_got_offsets (struct elf_link_hash_entry *h, void *arg)
13721 {
13722 struct alloc_got_off_arg *gofarg = (struct alloc_got_off_arg *) arg;
13723 bfd *obfd = gofarg->info->output_bfd;
13724 const struct elf_backend_data *bed = get_elf_backend_data (obfd);
13725
13726 if (h->got.refcount > 0)
13727 {
13728 h->got.offset = gofarg->gotoff;
13729 gofarg->gotoff += bed->got_elt_size (obfd, gofarg->info, h, NULL, 0);
13730 }
13731 else
13732 h->got.offset = (bfd_vma) -1;
13733
13734 return TRUE;
13735 }
13736
13737 /* And an accompanying bit to work out final got entry offsets once
13738 we're done. Should be called from final_link. */
13739
13740 bfd_boolean
13741 bfd_elf_gc_common_finalize_got_offsets (bfd *abfd,
13742 struct bfd_link_info *info)
13743 {
13744 bfd *i;
13745 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
13746 bfd_vma gotoff;
13747 struct alloc_got_off_arg gofarg;
13748
13749 BFD_ASSERT (abfd == info->output_bfd);
13750
13751 if (! is_elf_hash_table (info->hash))
13752 return FALSE;
13753
13754 /* The GOT offset is relative to the .got section, but the GOT header is
13755 put into the .got.plt section, if the backend uses it. */
13756 if (bed->want_got_plt)
13757 gotoff = 0;
13758 else
13759 gotoff = bed->got_header_size;
13760
13761 /* Do the local .got entries first. */
13762 for (i = info->input_bfds; i; i = i->link.next)
13763 {
13764 bfd_signed_vma *local_got;
13765 size_t j, locsymcount;
13766 Elf_Internal_Shdr *symtab_hdr;
13767
13768 if (bfd_get_flavour (i) != bfd_target_elf_flavour)
13769 continue;
13770
13771 local_got = elf_local_got_refcounts (i);
13772 if (!local_got)
13773 continue;
13774
13775 symtab_hdr = &elf_tdata (i)->symtab_hdr;
13776 if (elf_bad_symtab (i))
13777 locsymcount = symtab_hdr->sh_size / bed->s->sizeof_sym;
13778 else
13779 locsymcount = symtab_hdr->sh_info;
13780
13781 for (j = 0; j < locsymcount; ++j)
13782 {
13783 if (local_got[j] > 0)
13784 {
13785 local_got[j] = gotoff;
13786 gotoff += bed->got_elt_size (abfd, info, NULL, i, j);
13787 }
13788 else
13789 local_got[j] = (bfd_vma) -1;
13790 }
13791 }
13792
13793 /* Then the global .got entries. .plt refcounts are handled by
13794 adjust_dynamic_symbol */
13795 gofarg.gotoff = gotoff;
13796 gofarg.info = info;
13797 elf_link_hash_traverse (elf_hash_table (info),
13798 elf_gc_allocate_got_offsets,
13799 &gofarg);
13800 return TRUE;
13801 }
13802
13803 /* Many folk need no more in the way of final link than this, once
13804 got entry reference counting is enabled. */
13805
13806 bfd_boolean
13807 bfd_elf_gc_common_final_link (bfd *abfd, struct bfd_link_info *info)
13808 {
13809 if (!bfd_elf_gc_common_finalize_got_offsets (abfd, info))
13810 return FALSE;
13811
13812 /* Invoke the regular ELF backend linker to do all the work. */
13813 return bfd_elf_final_link (abfd, info);
13814 }
13815
13816 bfd_boolean
13817 bfd_elf_reloc_symbol_deleted_p (bfd_vma offset, void *cookie)
13818 {
13819 struct elf_reloc_cookie *rcookie = (struct elf_reloc_cookie *) cookie;
13820
13821 if (rcookie->bad_symtab)
13822 rcookie->rel = rcookie->rels;
13823
13824 for (; rcookie->rel < rcookie->relend; rcookie->rel++)
13825 {
13826 unsigned long r_symndx;
13827
13828 if (! rcookie->bad_symtab)
13829 if (rcookie->rel->r_offset > offset)
13830 return FALSE;
13831 if (rcookie->rel->r_offset != offset)
13832 continue;
13833
13834 r_symndx = rcookie->rel->r_info >> rcookie->r_sym_shift;
13835 if (r_symndx == STN_UNDEF)
13836 return TRUE;
13837
13838 if (r_symndx >= rcookie->locsymcount
13839 || ELF_ST_BIND (rcookie->locsyms[r_symndx].st_info) != STB_LOCAL)
13840 {
13841 struct elf_link_hash_entry *h;
13842
13843 h = rcookie->sym_hashes[r_symndx - rcookie->extsymoff];
13844
13845 while (h->root.type == bfd_link_hash_indirect
13846 || h->root.type == bfd_link_hash_warning)
13847 h = (struct elf_link_hash_entry *) h->root.u.i.link;
13848
13849 if ((h->root.type == bfd_link_hash_defined
13850 || h->root.type == bfd_link_hash_defweak)
13851 && (h->root.u.def.section->owner != rcookie->abfd
13852 || h->root.u.def.section->kept_section != NULL
13853 || discarded_section (h->root.u.def.section)))
13854 return TRUE;
13855 }
13856 else
13857 {
13858 /* It's not a relocation against a global symbol,
13859 but it could be a relocation against a local
13860 symbol for a discarded section. */
13861 asection *isec;
13862 Elf_Internal_Sym *isym;
13863
13864 /* Need to: get the symbol; get the section. */
13865 isym = &rcookie->locsyms[r_symndx];
13866 isec = bfd_section_from_elf_index (rcookie->abfd, isym->st_shndx);
13867 if (isec != NULL
13868 && (isec->kept_section != NULL
13869 || discarded_section (isec)))
13870 return TRUE;
13871 }
13872 return FALSE;
13873 }
13874 return FALSE;
13875 }
13876
13877 /* Discard unneeded references to discarded sections.
13878 Returns -1 on error, 1 if any section's size was changed, 0 if
13879 nothing changed. This function assumes that the relocations are in
13880 sorted order, which is true for all known assemblers. */
13881
13882 int
13883 bfd_elf_discard_info (bfd *output_bfd, struct bfd_link_info *info)
13884 {
13885 struct elf_reloc_cookie cookie;
13886 asection *o;
13887 bfd *abfd;
13888 int changed = 0;
13889
13890 if (info->traditional_format
13891 || !is_elf_hash_table (info->hash))
13892 return 0;
13893
13894 o = bfd_get_section_by_name (output_bfd, ".stab");
13895 if (o != NULL)
13896 {
13897 asection *i;
13898
13899 for (i = o->map_head.s; i != NULL; i = i->map_head.s)
13900 {
13901 if (i->size == 0
13902 || i->reloc_count == 0
13903 || i->sec_info_type != SEC_INFO_TYPE_STABS)
13904 continue;
13905
13906 abfd = i->owner;
13907 if (bfd_get_flavour (abfd) != bfd_target_elf_flavour)
13908 continue;
13909
13910 if (!init_reloc_cookie_for_section (&cookie, info, i))
13911 return -1;
13912
13913 if (_bfd_discard_section_stabs (abfd, i,
13914 elf_section_data (i)->sec_info,
13915 bfd_elf_reloc_symbol_deleted_p,
13916 &cookie))
13917 changed = 1;
13918
13919 fini_reloc_cookie_for_section (&cookie, i);
13920 }
13921 }
13922
13923 o = NULL;
13924 if (info->eh_frame_hdr_type != COMPACT_EH_HDR)
13925 o = bfd_get_section_by_name (output_bfd, ".eh_frame");
13926 if (o != NULL)
13927 {
13928 asection *i;
13929 int eh_changed = 0;
13930 unsigned int eh_alignment;
13931
13932 for (i = o->map_head.s; i != NULL; i = i->map_head.s)
13933 {
13934 if (i->size == 0)
13935 continue;
13936
13937 abfd = i->owner;
13938 if (bfd_get_flavour (abfd) != bfd_target_elf_flavour)
13939 continue;
13940
13941 if (!init_reloc_cookie_for_section (&cookie, info, i))
13942 return -1;
13943
13944 _bfd_elf_parse_eh_frame (abfd, info, i, &cookie);
13945 if (_bfd_elf_discard_section_eh_frame (abfd, info, i,
13946 bfd_elf_reloc_symbol_deleted_p,
13947 &cookie))
13948 {
13949 eh_changed = 1;
13950 if (i->size != i->rawsize)
13951 changed = 1;
13952 }
13953
13954 fini_reloc_cookie_for_section (&cookie, i);
13955 }
13956
13957 eh_alignment = 1 << o->alignment_power;
13958 /* Skip over zero terminator, and prevent empty sections from
13959 adding alignment padding at the end. */
13960 for (i = o->map_tail.s; i != NULL; i = i->map_tail.s)
13961 if (i->size == 0)
13962 i->flags |= SEC_EXCLUDE;
13963 else if (i->size > 4)
13964 break;
13965 /* The last non-empty eh_frame section doesn't need padding. */
13966 if (i != NULL)
13967 i = i->map_tail.s;
13968 /* Any prior sections must pad the last FDE out to the output
13969 section alignment. Otherwise we might have zero padding
13970 between sections, which would be seen as a terminator. */
13971 for (; i != NULL; i = i->map_tail.s)
13972 if (i->size == 4)
13973 /* All but the last zero terminator should have been removed. */
13974 BFD_FAIL ();
13975 else
13976 {
13977 bfd_size_type size
13978 = (i->size + eh_alignment - 1) & -eh_alignment;
13979 if (i->size != size)
13980 {
13981 i->size = size;
13982 changed = 1;
13983 eh_changed = 1;
13984 }
13985 }
13986 if (eh_changed)
13987 elf_link_hash_traverse (elf_hash_table (info),
13988 _bfd_elf_adjust_eh_frame_global_symbol, NULL);
13989 }
13990
13991 for (abfd = info->input_bfds; abfd != NULL; abfd = abfd->link.next)
13992 {
13993 const struct elf_backend_data *bed;
13994 asection *s;
13995
13996 if (bfd_get_flavour (abfd) != bfd_target_elf_flavour)
13997 continue;
13998 s = abfd->sections;
13999 if (s == NULL || s->sec_info_type == SEC_INFO_TYPE_JUST_SYMS)
14000 continue;
14001
14002 bed = get_elf_backend_data (abfd);
14003
14004 if (bed->elf_backend_discard_info != NULL)
14005 {
14006 if (!init_reloc_cookie (&cookie, info, abfd))
14007 return -1;
14008
14009 if ((*bed->elf_backend_discard_info) (abfd, &cookie, info))
14010 changed = 1;
14011
14012 fini_reloc_cookie (&cookie, abfd);
14013 }
14014 }
14015
14016 if (info->eh_frame_hdr_type == COMPACT_EH_HDR)
14017 _bfd_elf_end_eh_frame_parsing (info);
14018
14019 if (info->eh_frame_hdr_type
14020 && !bfd_link_relocatable (info)
14021 && _bfd_elf_discard_section_eh_frame_hdr (output_bfd, info))
14022 changed = 1;
14023
14024 return changed;
14025 }
14026
14027 bfd_boolean
14028 _bfd_elf_section_already_linked (bfd *abfd,
14029 asection *sec,
14030 struct bfd_link_info *info)
14031 {
14032 flagword flags;
14033 const char *name, *key;
14034 struct bfd_section_already_linked *l;
14035 struct bfd_section_already_linked_hash_entry *already_linked_list;
14036
14037 if (sec->output_section == bfd_abs_section_ptr)
14038 return FALSE;
14039
14040 flags = sec->flags;
14041
14042 /* Return if it isn't a linkonce section. A comdat group section
14043 also has SEC_LINK_ONCE set. */
14044 if ((flags & SEC_LINK_ONCE) == 0)
14045 return FALSE;
14046
14047 /* Don't put group member sections on our list of already linked
14048 sections. They are handled as a group via their group section. */
14049 if (elf_sec_group (sec) != NULL)
14050 return FALSE;
14051
14052 /* For a SHT_GROUP section, use the group signature as the key. */
14053 name = sec->name;
14054 if ((flags & SEC_GROUP) != 0
14055 && elf_next_in_group (sec) != NULL
14056 && elf_group_name (elf_next_in_group (sec)) != NULL)
14057 key = elf_group_name (elf_next_in_group (sec));
14058 else
14059 {
14060 /* Otherwise we should have a .gnu.linkonce.<type>.<key> section. */
14061 if (CONST_STRNEQ (name, ".gnu.linkonce.")
14062 && (key = strchr (name + sizeof (".gnu.linkonce.") - 1, '.')) != NULL)
14063 key++;
14064 else
14065 /* Must be a user linkonce section that doesn't follow gcc's
14066 naming convention. In this case we won't be matching
14067 single member groups. */
14068 key = name;
14069 }
14070
14071 already_linked_list = bfd_section_already_linked_table_lookup (key);
14072
14073 for (l = already_linked_list->entry; l != NULL; l = l->next)
14074 {
14075 /* We may have 2 different types of sections on the list: group
14076 sections with a signature of <key> (<key> is some string),
14077 and linkonce sections named .gnu.linkonce.<type>.<key>.
14078 Match like sections. LTO plugin sections are an exception.
14079 They are always named .gnu.linkonce.t.<key> and match either
14080 type of section. */
14081 if (((flags & SEC_GROUP) == (l->sec->flags & SEC_GROUP)
14082 && ((flags & SEC_GROUP) != 0
14083 || strcmp (name, l->sec->name) == 0))
14084 || (l->sec->owner->flags & BFD_PLUGIN) != 0)
14085 {
14086 /* The section has already been linked. See if we should
14087 issue a warning. */
14088 if (!_bfd_handle_already_linked (sec, l, info))
14089 return FALSE;
14090
14091 if (flags & SEC_GROUP)
14092 {
14093 asection *first = elf_next_in_group (sec);
14094 asection *s = first;
14095
14096 while (s != NULL)
14097 {
14098 s->output_section = bfd_abs_section_ptr;
14099 /* Record which group discards it. */
14100 s->kept_section = l->sec;
14101 s = elf_next_in_group (s);
14102 /* These lists are circular. */
14103 if (s == first)
14104 break;
14105 }
14106 }
14107
14108 return TRUE;
14109 }
14110 }
14111
14112 /* A single member comdat group section may be discarded by a
14113 linkonce section and vice versa. */
14114 if ((flags & SEC_GROUP) != 0)
14115 {
14116 asection *first = elf_next_in_group (sec);
14117
14118 if (first != NULL && elf_next_in_group (first) == first)
14119 /* Check this single member group against linkonce sections. */
14120 for (l = already_linked_list->entry; l != NULL; l = l->next)
14121 if ((l->sec->flags & SEC_GROUP) == 0
14122 && bfd_elf_match_symbols_in_sections (l->sec, first, info))
14123 {
14124 first->output_section = bfd_abs_section_ptr;
14125 first->kept_section = l->sec;
14126 sec->output_section = bfd_abs_section_ptr;
14127 break;
14128 }
14129 }
14130 else
14131 /* Check this linkonce section against single member groups. */
14132 for (l = already_linked_list->entry; l != NULL; l = l->next)
14133 if (l->sec->flags & SEC_GROUP)
14134 {
14135 asection *first = elf_next_in_group (l->sec);
14136
14137 if (first != NULL
14138 && elf_next_in_group (first) == first
14139 && bfd_elf_match_symbols_in_sections (first, sec, info))
14140 {
14141 sec->output_section = bfd_abs_section_ptr;
14142 sec->kept_section = first;
14143 break;
14144 }
14145 }
14146
14147 /* Do not complain on unresolved relocations in `.gnu.linkonce.r.F'
14148 referencing its discarded `.gnu.linkonce.t.F' counterpart - g++-3.4
14149 specific as g++-4.x is using COMDAT groups (without the `.gnu.linkonce'
14150 prefix) instead. `.gnu.linkonce.r.*' were the `.rodata' part of its
14151 matching `.gnu.linkonce.t.*'. If `.gnu.linkonce.r.F' is not discarded
14152 but its `.gnu.linkonce.t.F' is discarded means we chose one-only
14153 `.gnu.linkonce.t.F' section from a different bfd not requiring any
14154 `.gnu.linkonce.r.F'. Thus `.gnu.linkonce.r.F' should be discarded.
14155 The reverse order cannot happen as there is never a bfd with only the
14156 `.gnu.linkonce.r.F' section. The order of sections in a bfd does not
14157 matter as here were are looking only for cross-bfd sections. */
14158
14159 if ((flags & SEC_GROUP) == 0 && CONST_STRNEQ (name, ".gnu.linkonce.r."))
14160 for (l = already_linked_list->entry; l != NULL; l = l->next)
14161 if ((l->sec->flags & SEC_GROUP) == 0
14162 && CONST_STRNEQ (l->sec->name, ".gnu.linkonce.t."))
14163 {
14164 if (abfd != l->sec->owner)
14165 sec->output_section = bfd_abs_section_ptr;
14166 break;
14167 }
14168
14169 /* This is the first section with this name. Record it. */
14170 if (!bfd_section_already_linked_table_insert (already_linked_list, sec))
14171 info->callbacks->einfo (_("%F%P: already_linked_table: %E\n"));
14172 return sec->output_section == bfd_abs_section_ptr;
14173 }
14174
14175 bfd_boolean
14176 _bfd_elf_common_definition (Elf_Internal_Sym *sym)
14177 {
14178 return sym->st_shndx == SHN_COMMON;
14179 }
14180
14181 unsigned int
14182 _bfd_elf_common_section_index (asection *sec ATTRIBUTE_UNUSED)
14183 {
14184 return SHN_COMMON;
14185 }
14186
14187 asection *
14188 _bfd_elf_common_section (asection *sec ATTRIBUTE_UNUSED)
14189 {
14190 return bfd_com_section_ptr;
14191 }
14192
14193 bfd_vma
14194 _bfd_elf_default_got_elt_size (bfd *abfd,
14195 struct bfd_link_info *info ATTRIBUTE_UNUSED,
14196 struct elf_link_hash_entry *h ATTRIBUTE_UNUSED,
14197 bfd *ibfd ATTRIBUTE_UNUSED,
14198 unsigned long symndx ATTRIBUTE_UNUSED)
14199 {
14200 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
14201 return bed->s->arch_size / 8;
14202 }
14203
14204 /* Routines to support the creation of dynamic relocs. */
14205
14206 /* Returns the name of the dynamic reloc section associated with SEC. */
14207
14208 static const char *
14209 get_dynamic_reloc_section_name (bfd * abfd,
14210 asection * sec,
14211 bfd_boolean is_rela)
14212 {
14213 char *name;
14214 const char *old_name = bfd_get_section_name (NULL, sec);
14215 const char *prefix = is_rela ? ".rela" : ".rel";
14216
14217 if (old_name == NULL)
14218 return NULL;
14219
14220 name = bfd_alloc (abfd, strlen (prefix) + strlen (old_name) + 1);
14221 sprintf (name, "%s%s", prefix, old_name);
14222
14223 return name;
14224 }
14225
14226 /* Returns the dynamic reloc section associated with SEC.
14227 If necessary compute the name of the dynamic reloc section based
14228 on SEC's name (looked up in ABFD's string table) and the setting
14229 of IS_RELA. */
14230
14231 asection *
14232 _bfd_elf_get_dynamic_reloc_section (bfd * abfd,
14233 asection * sec,
14234 bfd_boolean is_rela)
14235 {
14236 asection * reloc_sec = elf_section_data (sec)->sreloc;
14237
14238 if (reloc_sec == NULL)
14239 {
14240 const char * name = get_dynamic_reloc_section_name (abfd, sec, is_rela);
14241
14242 if (name != NULL)
14243 {
14244 reloc_sec = bfd_get_linker_section (abfd, name);
14245
14246 if (reloc_sec != NULL)
14247 elf_section_data (sec)->sreloc = reloc_sec;
14248 }
14249 }
14250
14251 return reloc_sec;
14252 }
14253
14254 /* Returns the dynamic reloc section associated with SEC. If the
14255 section does not exist it is created and attached to the DYNOBJ
14256 bfd and stored in the SRELOC field of SEC's elf_section_data
14257 structure.
14258
14259 ALIGNMENT is the alignment for the newly created section and
14260 IS_RELA defines whether the name should be .rela.<SEC's name>
14261 or .rel.<SEC's name>. The section name is looked up in the
14262 string table associated with ABFD. */
14263
14264 asection *
14265 _bfd_elf_make_dynamic_reloc_section (asection *sec,
14266 bfd *dynobj,
14267 unsigned int alignment,
14268 bfd *abfd,
14269 bfd_boolean is_rela)
14270 {
14271 asection * reloc_sec = elf_section_data (sec)->sreloc;
14272
14273 if (reloc_sec == NULL)
14274 {
14275 const char * name = get_dynamic_reloc_section_name (abfd, sec, is_rela);
14276
14277 if (name == NULL)
14278 return NULL;
14279
14280 reloc_sec = bfd_get_linker_section (dynobj, name);
14281
14282 if (reloc_sec == NULL)
14283 {
14284 flagword flags = (SEC_HAS_CONTENTS | SEC_READONLY
14285 | SEC_IN_MEMORY | SEC_LINKER_CREATED);
14286 if ((sec->flags & SEC_ALLOC) != 0)
14287 flags |= SEC_ALLOC | SEC_LOAD;
14288
14289 reloc_sec = bfd_make_section_anyway_with_flags (dynobj, name, flags);
14290 if (reloc_sec != NULL)
14291 {
14292 /* _bfd_elf_get_sec_type_attr chooses a section type by
14293 name. Override as it may be wrong, eg. for a user
14294 section named "auto" we'll get ".relauto" which is
14295 seen to be a .rela section. */
14296 elf_section_type (reloc_sec) = is_rela ? SHT_RELA : SHT_REL;
14297 if (! bfd_set_section_alignment (dynobj, reloc_sec, alignment))
14298 reloc_sec = NULL;
14299 }
14300 }
14301
14302 elf_section_data (sec)->sreloc = reloc_sec;
14303 }
14304
14305 return reloc_sec;
14306 }
14307
14308 /* Copy the ELF symbol type and other attributes for a linker script
14309 assignment from HSRC to HDEST. Generally this should be treated as
14310 if we found a strong non-dynamic definition for HDEST (except that
14311 ld ignores multiple definition errors). */
14312 void
14313 _bfd_elf_copy_link_hash_symbol_type (bfd *abfd,
14314 struct bfd_link_hash_entry *hdest,
14315 struct bfd_link_hash_entry *hsrc)
14316 {
14317 struct elf_link_hash_entry *ehdest = (struct elf_link_hash_entry *) hdest;
14318 struct elf_link_hash_entry *ehsrc = (struct elf_link_hash_entry *) hsrc;
14319 Elf_Internal_Sym isym;
14320
14321 ehdest->type = ehsrc->type;
14322 ehdest->target_internal = ehsrc->target_internal;
14323
14324 isym.st_other = ehsrc->other;
14325 elf_merge_st_other (abfd, ehdest, &isym, NULL, TRUE, FALSE);
14326 }
14327
14328 /* Append a RELA relocation REL to section S in BFD. */
14329
14330 void
14331 elf_append_rela (bfd *abfd, asection *s, Elf_Internal_Rela *rel)
14332 {
14333 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
14334 bfd_byte *loc = s->contents + (s->reloc_count++ * bed->s->sizeof_rela);
14335 BFD_ASSERT (loc + bed->s->sizeof_rela <= s->contents + s->size);
14336 bed->s->swap_reloca_out (abfd, rel, loc);
14337 }
14338
14339 /* Append a REL relocation REL to section S in BFD. */
14340
14341 void
14342 elf_append_rel (bfd *abfd, asection *s, Elf_Internal_Rela *rel)
14343 {
14344 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
14345 bfd_byte *loc = s->contents + (s->reloc_count++ * bed->s->sizeof_rel);
14346 BFD_ASSERT (loc + bed->s->sizeof_rel <= s->contents + s->size);
14347 bed->s->swap_reloc_out (abfd, rel, loc);
14348 }
14349
14350 /* Define __start, __stop, .startof. or .sizeof. symbol. */
14351
14352 struct bfd_link_hash_entry *
14353 bfd_elf_define_start_stop (struct bfd_link_info *info,
14354 const char *symbol, asection *sec)
14355 {
14356 struct elf_link_hash_entry *h;
14357
14358 h = elf_link_hash_lookup (elf_hash_table (info), symbol,
14359 FALSE, FALSE, TRUE);
14360 if (h != NULL
14361 && (h->root.type == bfd_link_hash_undefined
14362 || h->root.type == bfd_link_hash_undefweak
14363 || (h->ref_regular && !h->def_regular)))
14364 {
14365 h->root.type = bfd_link_hash_defined;
14366 h->root.u.def.section = sec;
14367 h->root.u.def.value = 0;
14368 h->def_regular = 1;
14369 h->def_dynamic = 0;
14370 h->start_stop = 1;
14371 h->u2.start_stop_section = sec;
14372 if (symbol[0] == '.')
14373 {
14374 /* .startof. and .sizeof. symbols are local. */
14375 const struct elf_backend_data *bed;
14376 bed = get_elf_backend_data (info->output_bfd);
14377 (*bed->elf_backend_hide_symbol) (info, h, TRUE);
14378 }
14379 else if (ELF_ST_VISIBILITY (h->other) == STV_DEFAULT)
14380 h->other = (h->other & ~ELF_ST_VISIBILITY (-1)) | STV_PROTECTED;
14381 return &h->root;
14382 }
14383 return NULL;
14384 }
14385