1 /* linker.c -- BFD linker routines
2 Copyright (C) 1993-2023 Free Software Foundation, Inc.
3 Written by Steve Chamberlain and Ian Lance Taylor, Cygnus Support
5 This file is part of BFD, the Binary File Descriptor library.
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3 of the License, or
10 (at your option) any later version.
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
17 You should have received a copy of the GNU General Public License
18 along with this program; if not, write to the Free Software
19 Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
20 MA 02110-1301, USA. */
33 The linker uses three special entry points in the BFD target
34 vector. It is not necessary to write special routines for
35 these entry points when creating a new BFD back end, since
36 generic versions are provided. However, writing them can
37 speed up linking and make it use significantly less runtime
40 The first routine creates a hash table used by the other
41 routines. The second routine adds the symbols from an object
42 file to the hash table. The third routine takes all the
43 object files and links them together to create the output
44 file. These routines are designed so that the linker proper
45 does not need to know anything about the symbols in the object
46 files that it is linking. The linker merely arranges the
47 sections as directed by the linker script and lets BFD handle
48 the details of symbols and relocs.
50 The second routine and third routines are passed a pointer to
51 a <<struct bfd_link_info>> structure (defined in
52 <<bfdlink.h>>) which holds information relevant to the link,
53 including the linker hash table (which was created by the
54 first routine) and a set of callback functions to the linker
57 The generic linker routines are in <<linker.c>>, and use the
58 header file <<genlink.h>>. As of this writing, the only back
59 ends which have implemented versions of these routines are
60 a.out (in <<aoutx.h>>) and ECOFF (in <<ecoff.c>>). The a.out
61 routines are used as examples throughout this section.
64 @* Creating a Linker Hash Table::
65 @* Adding Symbols to the Hash Table::
66 @* Performing the Final Link::
70 Creating a Linker Hash Table, Adding Symbols to the Hash Table, Linker Functions, Linker Functions
72 Creating a linker hash table
74 @cindex _bfd_link_hash_table_create in target vector
75 @cindex target vector (_bfd_link_hash_table_create)
76 The linker routines must create a hash table, which must be
77 derived from <<struct bfd_link_hash_table>> described in
78 <<bfdlink.c>>. @xref{Hash Tables}, for information on how to
79 create a derived hash table. This entry point is called using
80 the target vector of the linker output file.
82 The <<_bfd_link_hash_table_create>> entry point must allocate
83 and initialize an instance of the desired hash table. If the
84 back end does not require any additional information to be
85 stored with the entries in the hash table, the entry point may
86 simply create a <<struct bfd_link_hash_table>>. Most likely,
87 however, some additional information will be needed.
89 For example, with each entry in the hash table the a.out
90 linker keeps the index the symbol has in the final output file
91 (this index number is used so that when doing a relocatable
92 link the symbol index used in the output file can be quickly
93 filled in when copying over a reloc). The a.out linker code
94 defines the required structures and functions for a hash table
95 derived from <<struct bfd_link_hash_table>>. The a.out linker
96 hash table is created by the function
97 <<NAME(aout,link_hash_table_create)>>; it simply allocates
98 space for the hash table, initializes it, and returns a
101 When writing the linker routines for a new back end, you will
102 generally not know exactly which fields will be required until
103 you have finished. You should simply create a new hash table
104 which defines no additional fields, and then simply add fields
105 as they become necessary.
108 Adding Symbols to the Hash Table, Performing the Final Link, Creating a Linker Hash Table, Linker Functions
110 Adding symbols to the hash table
112 @cindex _bfd_link_add_symbols in target vector
113 @cindex target vector (_bfd_link_add_symbols)
114 The linker proper will call the <<_bfd_link_add_symbols>>
115 entry point for each object file or archive which is to be
116 linked (typically these are the files named on the command
117 line, but some may also come from the linker script). The
118 entry point is responsible for examining the file. For an
119 object file, BFD must add any relevant symbol information to
120 the hash table. For an archive, BFD must determine which
121 elements of the archive should be used and adding them to the
124 The a.out version of this entry point is
125 <<NAME(aout,link_add_symbols)>>.
128 @* Differing file formats::
129 @* Adding symbols from an object file::
130 @* Adding symbols from an archive::
134 Differing file formats, Adding symbols from an object file, Adding Symbols to the Hash Table, Adding Symbols to the Hash Table
136 Differing file formats
138 Normally all the files involved in a link will be of the same
139 format, but it is also possible to link together different
140 format object files, and the back end must support that. The
141 <<_bfd_link_add_symbols>> entry point is called via the target
142 vector of the file to be added. This has an important
143 consequence: the function may not assume that the hash table
144 is the type created by the corresponding
145 <<_bfd_link_hash_table_create>> vector. All the
146 <<_bfd_link_add_symbols>> function can assume about the hash
147 table is that it is derived from <<struct
148 bfd_link_hash_table>>.
150 Sometimes the <<_bfd_link_add_symbols>> function must store
151 some information in the hash table entry to be used by the
152 <<_bfd_final_link>> function. In such a case the output bfd
153 xvec must be checked to make sure that the hash table was
154 created by an object file of the same format.
156 The <<_bfd_final_link>> routine must be prepared to handle a
157 hash entry without any extra information added by the
158 <<_bfd_link_add_symbols>> function. A hash entry without
159 extra information will also occur when the linker script
160 directs the linker to create a symbol. Note that, regardless
161 of how a hash table entry is added, all the fields will be
162 initialized to some sort of null value by the hash table entry
163 initialization function.
165 See <<ecoff_link_add_externals>> for an example of how to
166 check the output bfd before saving information (in this
167 case, the ECOFF external symbol debugging information) in a
171 Adding symbols from an object file, Adding symbols from an archive, Differing file formats, Adding Symbols to the Hash Table
173 Adding symbols from an object file
175 When the <<_bfd_link_add_symbols>> routine is passed an object
176 file, it must add all externally visible symbols in that
177 object file to the hash table. The actual work of adding the
178 symbol to the hash table is normally handled by the function
179 <<_bfd_generic_link_add_one_symbol>>. The
180 <<_bfd_link_add_symbols>> routine is responsible for reading
181 all the symbols from the object file and passing the correct
182 information to <<_bfd_generic_link_add_one_symbol>>.
184 The <<_bfd_link_add_symbols>> routine should not use
185 <<bfd_canonicalize_symtab>> to read the symbols. The point of
186 providing this routine is to avoid the overhead of converting
187 the symbols into generic <<asymbol>> structures.
189 @findex _bfd_generic_link_add_one_symbol
190 <<_bfd_generic_link_add_one_symbol>> handles the details of
191 combining common symbols, warning about multiple definitions,
192 and so forth. It takes arguments which describe the symbol to
193 add, notably symbol flags, a section, and an offset. The
194 symbol flags include such things as <<BSF_WEAK>> or
195 <<BSF_INDIRECT>>. The section is a section in the object
196 file, or something like <<bfd_und_section_ptr>> for an undefined
197 symbol or <<bfd_com_section_ptr>> for a common symbol.
199 If the <<_bfd_final_link>> routine is also going to need to
200 read the symbol information, the <<_bfd_link_add_symbols>>
201 routine should save it somewhere attached to the object file
202 BFD. However, the information should only be saved if the
203 <<keep_memory>> field of the <<info>> argument is TRUE, so
204 that the <<-no-keep-memory>> linker switch is effective.
206 The a.out function which adds symbols from an object file is
207 <<aout_link_add_object_symbols>>, and most of the interesting
208 work is in <<aout_link_add_symbols>>. The latter saves
209 pointers to the hash tables entries created by
210 <<_bfd_generic_link_add_one_symbol>> indexed by symbol number,
211 so that the <<_bfd_final_link>> routine does not have to call
212 the hash table lookup routine to locate the entry.
215 Adding symbols from an archive, , Adding symbols from an object file, Adding Symbols to the Hash Table
217 Adding symbols from an archive
219 When the <<_bfd_link_add_symbols>> routine is passed an
220 archive, it must look through the symbols defined by the
221 archive and decide which elements of the archive should be
222 included in the link. For each such element it must call the
223 <<add_archive_element>> linker callback, and it must add the
224 symbols from the object file to the linker hash table. (The
225 callback may in fact indicate that a replacement BFD should be
226 used, in which case the symbols from that BFD should be added
227 to the linker hash table instead.)
229 @findex _bfd_generic_link_add_archive_symbols
230 In most cases the work of looking through the symbols in the
231 archive should be done by the
232 <<_bfd_generic_link_add_archive_symbols>> function.
233 <<_bfd_generic_link_add_archive_symbols>> is passed a function
234 to call to make the final decision about adding an archive
235 element to the link and to do the actual work of adding the
236 symbols to the linker hash table. If the element is to
237 be included, the <<add_archive_element>> linker callback
238 routine must be called with the element as an argument, and
239 the element's symbols must be added to the linker hash table
240 just as though the element had itself been passed to the
241 <<_bfd_link_add_symbols>> function.
243 When the a.out <<_bfd_link_add_symbols>> function receives an
244 archive, it calls <<_bfd_generic_link_add_archive_symbols>>
245 passing <<aout_link_check_archive_element>> as the function
246 argument. <<aout_link_check_archive_element>> calls
247 <<aout_link_check_ar_symbols>>. If the latter decides to add
248 the element (an element is only added if it provides a real,
249 non-common, definition for a previously undefined or common
250 symbol) it calls the <<add_archive_element>> callback and then
251 <<aout_link_check_archive_element>> calls
252 <<aout_link_add_symbols>> to actually add the symbols to the
253 linker hash table - possibly those of a substitute BFD, if the
254 <<add_archive_element>> callback avails itself of that option.
256 The ECOFF back end is unusual in that it does not normally
257 call <<_bfd_generic_link_add_archive_symbols>>, because ECOFF
258 archives already contain a hash table of symbols. The ECOFF
259 back end searches the archive itself to avoid the overhead of
260 creating a new hash table.
263 Performing the Final Link, , Adding Symbols to the Hash Table, Linker Functions
265 Performing the final link
267 @cindex _bfd_link_final_link in target vector
268 @cindex target vector (_bfd_final_link)
269 When all the input files have been processed, the linker calls
270 the <<_bfd_final_link>> entry point of the output BFD. This
271 routine is responsible for producing the final output file,
272 which has several aspects. It must relocate the contents of
273 the input sections and copy the data into the output sections.
274 It must build an output symbol table including any local
275 symbols from the input files and the global symbols from the
276 hash table. When producing relocatable output, it must
277 modify the input relocs and write them into the output file.
278 There may also be object format dependent work to be done.
280 The linker will also call the <<write_object_contents>> entry
281 point when the BFD is closed. The two entry points must work
282 together in order to produce the correct output file.
284 The details of how this works are inevitably dependent upon
285 the specific object file format. The a.out
286 <<_bfd_final_link>> routine is <<NAME(aout,final_link)>>.
289 @* Information provided by the linker::
290 @* Relocating the section contents::
291 @* Writing the symbol table::
295 Information provided by the linker, Relocating the section contents, Performing the Final Link, Performing the Final Link
297 Information provided by the linker
299 Before the linker calls the <<_bfd_final_link>> entry point,
300 it sets up some data structures for the function to use.
302 The <<input_bfds>> field of the <<bfd_link_info>> structure
303 will point to a list of all the input files included in the
304 link. These files are linked through the <<link.next>> field
305 of the <<bfd>> structure.
307 Each section in the output file will have a list of
308 <<link_order>> structures attached to the <<map_head.link_order>>
309 field (the <<link_order>> structure is defined in
310 <<bfdlink.h>>). These structures describe how to create the
311 contents of the output section in terms of the contents of
312 various input sections, fill constants, and, eventually, other
313 types of information. They also describe relocs that must be
314 created by the BFD backend, but do not correspond to any input
315 file; this is used to support -Ur, which builds constructors
316 while generating a relocatable object file.
319 Relocating the section contents, Writing the symbol table, Information provided by the linker, Performing the Final Link
321 Relocating the section contents
323 The <<_bfd_final_link>> function should look through the
324 <<link_order>> structures attached to each section of the
325 output file. Each <<link_order>> structure should either be
326 handled specially, or it should be passed to the function
327 <<_bfd_default_link_order>> which will do the right thing
328 (<<_bfd_default_link_order>> is defined in <<linker.c>>).
330 For efficiency, a <<link_order>> of type
331 <<bfd_indirect_link_order>> whose associated section belongs
332 to a BFD of the same format as the output BFD must be handled
333 specially. This type of <<link_order>> describes part of an
334 output section in terms of a section belonging to one of the
335 input files. The <<_bfd_final_link>> function should read the
336 contents of the section and any associated relocs, apply the
337 relocs to the section contents, and write out the modified
338 section contents. If performing a relocatable link, the
339 relocs themselves must also be modified and written out.
341 @findex _bfd_relocate_contents
342 @findex _bfd_final_link_relocate
343 The functions <<_bfd_relocate_contents>> and
344 <<_bfd_final_link_relocate>> provide some general support for
345 performing the actual relocations, notably overflow checking.
346 Their arguments include information about the symbol the
347 relocation is against and a <<reloc_howto_type>> argument
348 which describes the relocation to perform. These functions
349 are defined in <<reloc.c>>.
351 The a.out function which handles reading, relocating, and
352 writing section contents is <<aout_link_input_section>>. The
353 actual relocation is done in <<aout_link_input_section_std>>
354 and <<aout_link_input_section_ext>>.
357 Writing the symbol table, , Relocating the section contents, Performing the Final Link
359 Writing the symbol table
361 The <<_bfd_final_link>> function must gather all the symbols
362 in the input files and write them out. It must also write out
363 all the symbols in the global hash table. This must be
364 controlled by the <<strip>> and <<discard>> fields of the
365 <<bfd_link_info>> structure.
367 The local symbols of the input files will not have been
368 entered into the linker hash table. The <<_bfd_final_link>>
369 routine must consider each input file and include the symbols
370 in the output file. It may be convenient to do this when
371 looking through the <<link_order>> structures, or it may be
372 done by stepping through the <<input_bfds>> list.
374 The <<_bfd_final_link>> routine must also traverse the global
375 hash table to gather all the externally visible symbols. It
376 is possible that most of the externally visible symbols may be
377 written out when considering the symbols of each input file,
378 but it is still necessary to traverse the hash table since the
379 linker script may have defined some symbols that are not in
380 any of the input files.
382 The <<strip>> field of the <<bfd_link_info>> structure
383 controls which symbols are written out. The possible values
384 are listed in <<bfdlink.h>>. If the value is <<strip_some>>,
385 then the <<keep_hash>> field of the <<bfd_link_info>>
386 structure is a hash table of symbols to keep; each symbol
387 should be looked up in this hash table, and only symbols which
388 are present should be included in the output file.
390 If the <<strip>> field of the <<bfd_link_info>> structure
391 permits local symbols to be written out, the <<discard>> field
392 is used to further controls which local symbols are included
393 in the output file. If the value is <<discard_l>>, then all
394 local symbols which begin with a certain prefix are discarded;
395 this is controlled by the <<bfd_is_local_label_name>> entry point.
397 The a.out backend handles symbols by calling
398 <<aout_link_write_symbols>> on each input BFD and then
399 traversing the global hash table with the function
400 <<aout_link_write_other_symbol>>. It builds a string table
401 while writing out the symbols, which is written to the output
402 file at the end of <<NAME(aout,final_link)>>.
405 static bool generic_link_add_object_symbols
406 (bfd
*, struct bfd_link_info
*);
407 static bool generic_link_check_archive_element
408 (bfd
*, struct bfd_link_info
*, struct bfd_link_hash_entry
*, const char *,
410 static bool generic_link_add_symbol_list
411 (bfd
*, struct bfd_link_info
*, bfd_size_type count
, asymbol
**);
412 static bool generic_add_output_symbol
413 (bfd
*, size_t *psymalloc
, asymbol
*);
414 static bool default_data_link_order
415 (bfd
*, struct bfd_link_info
*, asection
*, struct bfd_link_order
*);
416 static bool default_indirect_link_order
417 (bfd
*, struct bfd_link_info
*, asection
*, struct bfd_link_order
*,
420 /* The link hash table structure is defined in bfdlink.h. It provides
421 a base hash table which the backend specific hash tables are built
424 /* Routine to create an entry in the link hash table. */
426 struct bfd_hash_entry
*
427 _bfd_link_hash_newfunc (struct bfd_hash_entry
*entry
,
428 struct bfd_hash_table
*table
,
431 /* Allocate the structure if it has not already been allocated by a
435 entry
= (struct bfd_hash_entry
*)
436 bfd_hash_allocate (table
, sizeof (struct bfd_link_hash_entry
));
441 /* Call the allocation method of the superclass. */
442 entry
= bfd_hash_newfunc (entry
, table
, string
);
445 struct bfd_link_hash_entry
*h
= (struct bfd_link_hash_entry
*) entry
;
447 /* Initialize the local fields. */
448 memset ((char *) &h
->root
+ sizeof (h
->root
), 0,
449 sizeof (*h
) - sizeof (h
->root
));
455 /* Initialize a link hash table. The BFD argument is the one
456 responsible for creating this table. */
459 _bfd_link_hash_table_init
460 (struct bfd_link_hash_table
*table
,
461 bfd
*abfd ATTRIBUTE_UNUSED
,
462 struct bfd_hash_entry
*(*newfunc
) (struct bfd_hash_entry
*,
463 struct bfd_hash_table
*,
465 unsigned int entsize
)
469 BFD_ASSERT (!abfd
->is_linker_output
&& !abfd
->link
.hash
);
470 table
->undefs
= NULL
;
471 table
->undefs_tail
= NULL
;
472 table
->type
= bfd_link_generic_hash_table
;
474 ret
= bfd_hash_table_init (&table
->table
, newfunc
, entsize
);
477 /* Arrange for destruction of this hash table on closing ABFD. */
478 table
->hash_table_free
= _bfd_generic_link_hash_table_free
;
479 abfd
->link
.hash
= table
;
480 abfd
->is_linker_output
= true;
485 /* Look up a symbol in a link hash table. If follow is TRUE, we
486 follow bfd_link_hash_indirect and bfd_link_hash_warning links to
489 .{* Return TRUE if the symbol described by a linker hash entry H
490 . is going to be absolute. Linker-script defined symbols can be
491 . converted from absolute to section-relative ones late in the
492 . link. Use this macro to correctly determine whether the symbol
493 . will actually end up absolute in output. *}
494 .#define bfd_is_abs_symbol(H) \
495 . (((H)->type == bfd_link_hash_defined \
496 . || (H)->type == bfd_link_hash_defweak) \
497 . && bfd_is_abs_section ((H)->u.def.section) \
498 . && !(H)->rel_from_abs)
502 struct bfd_link_hash_entry
*
503 bfd_link_hash_lookup (struct bfd_link_hash_table
*table
,
509 struct bfd_link_hash_entry
*ret
;
511 if (table
== NULL
|| string
== NULL
)
514 ret
= ((struct bfd_link_hash_entry
*)
515 bfd_hash_lookup (&table
->table
, string
, create
, copy
));
517 if (follow
&& ret
!= NULL
)
519 while (ret
->type
== bfd_link_hash_indirect
520 || ret
->type
== bfd_link_hash_warning
)
527 /* Look up a symbol in the main linker hash table if the symbol might
528 be wrapped. This should only be used for references to an
529 undefined symbol, not for definitions of a symbol. */
531 struct bfd_link_hash_entry
*
532 bfd_wrapped_link_hash_lookup (bfd
*abfd
,
533 struct bfd_link_info
*info
,
541 if (info
->wrap_hash
!= NULL
)
548 && (*l
== bfd_get_symbol_leading_char (abfd
)
549 || *l
== info
->wrap_char
))
556 #define WRAP "__wrap_"
558 if (bfd_hash_lookup (info
->wrap_hash
, l
, false, false) != NULL
)
561 struct bfd_link_hash_entry
*h
;
563 /* This symbol is being wrapped. We want to replace all
564 references to SYM with references to __wrap_SYM. */
566 amt
= strlen (l
) + sizeof WRAP
+ 1;
567 n
= (char *) bfd_malloc (amt
);
575 h
= bfd_link_hash_lookup (info
->hash
, n
, create
, true, follow
);
581 #define REAL "__real_"
584 && startswith (l
, REAL
)
585 && bfd_hash_lookup (info
->wrap_hash
, l
+ sizeof REAL
- 1,
586 false, false) != NULL
)
589 struct bfd_link_hash_entry
*h
;
591 /* This is a reference to __real_SYM, where SYM is being
592 wrapped. We want to replace all references to __real_SYM
593 with references to SYM. */
595 amt
= strlen (l
+ sizeof REAL
- 1) + 2;
596 n
= (char *) bfd_malloc (amt
);
602 strcat (n
, l
+ sizeof REAL
- 1);
603 h
= bfd_link_hash_lookup (info
->hash
, n
, create
, true, follow
);
613 return bfd_link_hash_lookup (info
->hash
, string
, create
, copy
, follow
);
616 /* If H is a wrapped symbol, ie. the symbol name starts with "__wrap_"
617 and the remainder is found in wrap_hash, return the real symbol. */
619 struct bfd_link_hash_entry
*
620 unwrap_hash_lookup (struct bfd_link_info
*info
,
622 struct bfd_link_hash_entry
*h
)
624 const char *l
= h
->root
.string
;
627 && (*l
== bfd_get_symbol_leading_char (input_bfd
)
628 || *l
== info
->wrap_char
))
631 if (startswith (l
, WRAP
))
633 l
+= sizeof WRAP
- 1;
635 if (bfd_hash_lookup (info
->wrap_hash
, l
, false, false) != NULL
)
638 if (l
- (sizeof WRAP
- 1) != h
->root
.string
)
642 *(char *) l
= *h
->root
.string
;
644 h
= bfd_link_hash_lookup (info
->hash
, l
, false, false, false);
653 /* Traverse a generic link hash table. Differs from bfd_hash_traverse
654 in the treatment of warning symbols. When warning symbols are
655 created they replace the real symbol, so you don't get to see the
656 real symbol in a bfd_hash_traverse. This traversal calls func with
660 bfd_link_hash_traverse
661 (struct bfd_link_hash_table
*htab
,
662 bool (*func
) (struct bfd_link_hash_entry
*, void *),
667 htab
->table
.frozen
= 1;
668 for (i
= 0; i
< htab
->table
.size
; i
++)
670 struct bfd_link_hash_entry
*p
;
672 p
= (struct bfd_link_hash_entry
*) htab
->table
.table
[i
];
673 for (; p
!= NULL
; p
= (struct bfd_link_hash_entry
*) p
->root
.next
)
674 if (!(*func
) (p
->type
== bfd_link_hash_warning
? p
->u
.i
.link
: p
, info
))
678 htab
->table
.frozen
= 0;
681 /* Add a symbol to the linker hash table undefs list. */
684 bfd_link_add_undef (struct bfd_link_hash_table
*table
,
685 struct bfd_link_hash_entry
*h
)
687 BFD_ASSERT (h
->u
.undef
.next
== NULL
);
688 if (table
->undefs_tail
!= NULL
)
689 table
->undefs_tail
->u
.undef
.next
= h
;
690 if (table
->undefs
== NULL
)
692 table
->undefs_tail
= h
;
695 /* The undefs list was designed so that in normal use we don't need to
696 remove entries. However, if symbols on the list are changed from
697 bfd_link_hash_undefined to either bfd_link_hash_undefweak or
698 bfd_link_hash_new for some reason, then they must be removed from the
699 list. Failure to do so might result in the linker attempting to add
700 the symbol to the list again at a later stage. */
703 bfd_link_repair_undef_list (struct bfd_link_hash_table
*table
)
705 struct bfd_link_hash_entry
**pun
;
707 pun
= &table
->undefs
;
710 struct bfd_link_hash_entry
*h
= *pun
;
712 if (h
->type
== bfd_link_hash_new
713 || h
->type
== bfd_link_hash_undefweak
)
715 *pun
= h
->u
.undef
.next
;
716 h
->u
.undef
.next
= NULL
;
717 if (h
== table
->undefs_tail
)
719 if (pun
== &table
->undefs
)
720 table
->undefs_tail
= NULL
;
722 /* pun points at an u.undef.next field. Go back to
723 the start of the link_hash_entry. */
724 table
->undefs_tail
= (struct bfd_link_hash_entry
*)
725 ((char *) pun
- ((char *) &h
->u
.undef
.next
- (char *) h
));
730 pun
= &h
->u
.undef
.next
;
734 /* Routine to create an entry in a generic link hash table. */
736 struct bfd_hash_entry
*
737 _bfd_generic_link_hash_newfunc (struct bfd_hash_entry
*entry
,
738 struct bfd_hash_table
*table
,
741 /* Allocate the structure if it has not already been allocated by a
745 entry
= (struct bfd_hash_entry
*)
746 bfd_hash_allocate (table
, sizeof (struct generic_link_hash_entry
));
751 /* Call the allocation method of the superclass. */
752 entry
= _bfd_link_hash_newfunc (entry
, table
, string
);
755 struct generic_link_hash_entry
*ret
;
757 /* Set local fields. */
758 ret
= (struct generic_link_hash_entry
*) entry
;
759 ret
->written
= false;
766 /* Create a generic link hash table. */
768 struct bfd_link_hash_table
*
769 _bfd_generic_link_hash_table_create (bfd
*abfd
)
771 struct generic_link_hash_table
*ret
;
772 size_t amt
= sizeof (struct generic_link_hash_table
);
774 ret
= (struct generic_link_hash_table
*) bfd_malloc (amt
);
777 if (! _bfd_link_hash_table_init (&ret
->root
, abfd
,
778 _bfd_generic_link_hash_newfunc
,
779 sizeof (struct generic_link_hash_entry
)))
788 _bfd_generic_link_hash_table_free (bfd
*obfd
)
790 struct generic_link_hash_table
*ret
;
792 BFD_ASSERT (obfd
->is_linker_output
&& obfd
->link
.hash
);
793 ret
= (struct generic_link_hash_table
*) obfd
->link
.hash
;
794 bfd_hash_table_free (&ret
->root
.table
);
796 obfd
->link
.hash
= NULL
;
797 obfd
->is_linker_output
= false;
800 /* Grab the symbols for an object file when doing a generic link. We
801 store the symbols in the outsymbols field. We need to keep them
802 around for the entire link to ensure that we only read them once.
803 If we read them multiple times, we might wind up with relocs and
804 the hash table pointing to different instances of the symbol
808 bfd_generic_link_read_symbols (bfd
*abfd
)
810 if (bfd_get_outsymbols (abfd
) == NULL
)
815 symsize
= bfd_get_symtab_upper_bound (abfd
);
818 abfd
->outsymbols
= bfd_alloc (abfd
, symsize
);
819 if (bfd_get_outsymbols (abfd
) == NULL
&& symsize
!= 0)
821 symcount
= bfd_canonicalize_symtab (abfd
, bfd_get_outsymbols (abfd
));
824 abfd
->symcount
= symcount
;
830 /* Indicate that we are only retrieving symbol values from this
831 section. We want the symbols to act as though the values in the
832 file are absolute. */
835 _bfd_generic_link_just_syms (asection
*sec
,
836 struct bfd_link_info
*info ATTRIBUTE_UNUSED
)
838 sec
->sec_info_type
= SEC_INFO_TYPE_JUST_SYMS
;
839 sec
->output_section
= bfd_abs_section_ptr
;
840 sec
->output_offset
= sec
->vma
;
843 /* Copy the symbol type and other attributes for a linker script
844 assignment from HSRC to HDEST.
845 The default implementation does nothing. */
847 _bfd_generic_copy_link_hash_symbol_type (bfd
*abfd ATTRIBUTE_UNUSED
,
848 struct bfd_link_hash_entry
*hdest ATTRIBUTE_UNUSED
,
849 struct bfd_link_hash_entry
*hsrc ATTRIBUTE_UNUSED
)
853 /* Generic function to add symbols from an object file to the
854 global hash table. */
857 _bfd_generic_link_add_symbols (bfd
*abfd
, struct bfd_link_info
*info
)
861 switch (bfd_get_format (abfd
))
864 ret
= generic_link_add_object_symbols (abfd
, info
);
867 ret
= (_bfd_generic_link_add_archive_symbols
868 (abfd
, info
, generic_link_check_archive_element
));
871 bfd_set_error (bfd_error_wrong_format
);
878 /* Add symbols from an object file to the global hash table. */
881 generic_link_add_object_symbols (bfd
*abfd
,
882 struct bfd_link_info
*info
)
884 bfd_size_type symcount
;
885 struct bfd_symbol
**outsyms
;
887 if (!bfd_generic_link_read_symbols (abfd
))
889 symcount
= _bfd_generic_link_get_symcount (abfd
);
890 outsyms
= _bfd_generic_link_get_symbols (abfd
);
891 return generic_link_add_symbol_list (abfd
, info
, symcount
, outsyms
);
894 /* Generic function to add symbols from an archive file to the global
895 hash file. This function presumes that the archive symbol table
896 has already been read in (this is normally done by the
897 bfd_check_format entry point). It looks through the archive symbol
898 table for symbols that are undefined or common in the linker global
899 symbol hash table. When one is found, the CHECKFN argument is used
900 to see if an object file should be included. This allows targets
901 to customize common symbol behaviour. CHECKFN should set *PNEEDED
902 to TRUE if the object file should be included, and must also call
903 the bfd_link_info add_archive_element callback function and handle
904 adding the symbols to the global hash table. CHECKFN must notice
905 if the callback indicates a substitute BFD, and arrange to add
906 those symbols instead if it does so. CHECKFN should only return
907 FALSE if some sort of error occurs. */
910 _bfd_generic_link_add_archive_symbols
912 struct bfd_link_info
*info
,
913 bool (*checkfn
) (bfd
*, struct bfd_link_info
*,
914 struct bfd_link_hash_entry
*, const char *, bool *))
918 unsigned char *included
;
920 if (! bfd_has_map (abfd
))
922 /* An empty archive is a special case. */
923 if (bfd_openr_next_archived_file (abfd
, NULL
) == NULL
)
925 bfd_set_error (bfd_error_no_armap
);
929 amt
= bfd_ardata (abfd
)->symdef_count
;
932 amt
*= sizeof (*included
);
933 included
= (unsigned char *) bfd_zmalloc (amt
);
934 if (included
== NULL
)
943 file_ptr last_ar_offset
= -1;
948 arsyms
= bfd_ardata (abfd
)->symdefs
;
949 arsym_end
= arsyms
+ bfd_ardata (abfd
)->symdef_count
;
950 for (arsym
= arsyms
, indx
= 0; arsym
< arsym_end
; arsym
++, indx
++)
952 struct bfd_link_hash_entry
*h
;
953 struct bfd_link_hash_entry
*undefs_tail
;
957 if (needed
&& arsym
->file_offset
== last_ar_offset
)
963 if (arsym
->name
== NULL
)
966 h
= bfd_link_hash_lookup (info
->hash
, arsym
->name
,
970 && info
->pei386_auto_import
971 && startswith (arsym
->name
, "__imp_"))
972 h
= bfd_link_hash_lookup (info
->hash
, arsym
->name
+ 6,
977 if (h
->type
!= bfd_link_hash_undefined
978 && h
->type
!= bfd_link_hash_common
)
980 if (h
->type
!= bfd_link_hash_undefweak
)
981 /* Symbol must be defined. Don't check it again. */
986 if (last_ar_offset
!= arsym
->file_offset
)
988 last_ar_offset
= arsym
->file_offset
;
989 element
= _bfd_get_elt_at_filepos (abfd
, last_ar_offset
,
992 || !bfd_check_format (element
, bfd_object
))
996 undefs_tail
= info
->hash
->undefs_tail
;
998 /* CHECKFN will see if this element should be included, and
999 go ahead and include it if appropriate. */
1000 if (! (*checkfn
) (element
, info
, h
, arsym
->name
, &needed
))
1007 /* Look backward to mark all symbols from this object file
1008 which we have already seen in this pass. */
1017 while (arsyms
[mark
].file_offset
== last_ar_offset
);
1019 if (undefs_tail
!= info
->hash
->undefs_tail
)
1033 /* See if we should include an archive element. */
1036 generic_link_check_archive_element (bfd
*abfd
,
1037 struct bfd_link_info
*info
,
1038 struct bfd_link_hash_entry
*h
,
1039 const char *name ATTRIBUTE_UNUSED
,
1042 asymbol
**pp
, **ppend
;
1046 if (!bfd_generic_link_read_symbols (abfd
))
1049 pp
= _bfd_generic_link_get_symbols (abfd
);
1050 ppend
= pp
+ _bfd_generic_link_get_symcount (abfd
);
1051 for (; pp
< ppend
; pp
++)
1057 /* We are only interested in globally visible symbols. */
1058 if (! bfd_is_com_section (p
->section
)
1059 && (p
->flags
& (BSF_GLOBAL
| BSF_INDIRECT
| BSF_WEAK
)) == 0)
1062 /* We are only interested if we know something about this
1063 symbol, and it is undefined or common. An undefined weak
1064 symbol (type bfd_link_hash_undefweak) is not considered to be
1065 a reference when pulling files out of an archive. See the
1066 SVR4 ABI, p. 4-27. */
1067 h
= bfd_link_hash_lookup (info
->hash
, bfd_asymbol_name (p
), false,
1070 || (h
->type
!= bfd_link_hash_undefined
1071 && h
->type
!= bfd_link_hash_common
))
1074 /* P is a symbol we are looking for. */
1076 if (! bfd_is_com_section (p
->section
)
1077 || (h
->type
== bfd_link_hash_undefined
1078 && h
->u
.undef
.abfd
== NULL
))
1080 /* P is not a common symbol, or an undefined reference was
1081 created from outside BFD such as from a linker -u option.
1082 This object file defines the symbol, so pull it in. */
1084 if (!(*info
->callbacks
1085 ->add_archive_element
) (info
, abfd
, bfd_asymbol_name (p
),
1088 /* Potentially, the add_archive_element hook may have set a
1089 substitute BFD for us. */
1090 return bfd_link_add_symbols (abfd
, info
);
1093 /* P is a common symbol. */
1095 if (h
->type
== bfd_link_hash_undefined
)
1101 /* Turn the symbol into a common symbol but do not link in
1102 the object file. This is how a.out works. Object
1103 formats that require different semantics must implement
1104 this function differently. This symbol is already on the
1105 undefs list. We add the section to a common section
1106 attached to symbfd to ensure that it is in a BFD which
1107 will be linked in. */
1108 symbfd
= h
->u
.undef
.abfd
;
1109 h
->type
= bfd_link_hash_common
;
1110 h
->u
.c
.p
= (struct bfd_link_hash_common_entry
*)
1111 bfd_hash_allocate (&info
->hash
->table
,
1112 sizeof (struct bfd_link_hash_common_entry
));
1113 if (h
->u
.c
.p
== NULL
)
1116 size
= bfd_asymbol_value (p
);
1119 power
= bfd_log2 (size
);
1122 h
->u
.c
.p
->alignment_power
= power
;
1124 if (p
->section
== bfd_com_section_ptr
)
1125 h
->u
.c
.p
->section
= bfd_make_section_old_way (symbfd
, "COMMON");
1127 h
->u
.c
.p
->section
= bfd_make_section_old_way (symbfd
,
1129 h
->u
.c
.p
->section
->flags
|= SEC_ALLOC
;
1133 /* Adjust the size of the common symbol if necessary. This
1134 is how a.out works. Object formats that require
1135 different semantics must implement this function
1137 if (bfd_asymbol_value (p
) > h
->u
.c
.size
)
1138 h
->u
.c
.size
= bfd_asymbol_value (p
);
1142 /* This archive element is not needed. */
1146 /* Add the symbols from an object file to the global hash table. ABFD
1147 is the object file. INFO is the linker information. SYMBOL_COUNT
1148 is the number of symbols. SYMBOLS is the list of symbols. */
1151 generic_link_add_symbol_list (bfd
*abfd
,
1152 struct bfd_link_info
*info
,
1153 bfd_size_type symbol_count
,
1156 asymbol
**pp
, **ppend
;
1159 ppend
= symbols
+ symbol_count
;
1160 for (; pp
< ppend
; pp
++)
1166 if ((p
->flags
& (BSF_INDIRECT
1171 || bfd_is_und_section (bfd_asymbol_section (p
))
1172 || bfd_is_com_section (bfd_asymbol_section (p
))
1173 || bfd_is_ind_section (bfd_asymbol_section (p
)))
1177 struct generic_link_hash_entry
*h
;
1178 struct bfd_link_hash_entry
*bh
;
1180 string
= name
= bfd_asymbol_name (p
);
1181 if (((p
->flags
& BSF_INDIRECT
) != 0
1182 || bfd_is_ind_section (p
->section
))
1186 string
= bfd_asymbol_name (*pp
);
1188 else if ((p
->flags
& BSF_WARNING
) != 0
1191 /* The name of P is actually the warning string, and the
1192 next symbol is the one to warn about. */
1194 name
= bfd_asymbol_name (*pp
);
1198 if (! (_bfd_generic_link_add_one_symbol
1199 (info
, abfd
, name
, p
->flags
, bfd_asymbol_section (p
),
1200 p
->value
, string
, false, false, &bh
)))
1202 h
= (struct generic_link_hash_entry
*) bh
;
1204 /* If this is a constructor symbol, and the linker didn't do
1205 anything with it, then we want to just pass the symbol
1206 through to the output file. This will happen when
1208 if ((p
->flags
& BSF_CONSTRUCTOR
) != 0
1209 && (h
== NULL
|| h
->root
.type
== bfd_link_hash_new
))
1215 /* Save the BFD symbol so that we don't lose any backend
1216 specific information that may be attached to it. We only
1217 want this one if it gives more information than the
1218 existing one; we don't want to replace a defined symbol
1219 with an undefined one. This routine may be called with a
1220 hash table other than the generic hash table, so we only
1221 do this if we are certain that the hash table is a
1223 if (info
->output_bfd
->xvec
== abfd
->xvec
)
1226 || (! bfd_is_und_section (bfd_asymbol_section (p
))
1227 && (! bfd_is_com_section (bfd_asymbol_section (p
))
1228 || bfd_is_und_section (bfd_asymbol_section (h
->sym
)))))
1231 /* BSF_OLD_COMMON is a hack to support COFF reloc
1232 reading, and it should go away when the COFF
1233 linker is switched to the new version. */
1234 if (bfd_is_com_section (bfd_asymbol_section (p
)))
1235 p
->flags
|= BSF_OLD_COMMON
;
1239 /* Store a back pointer from the symbol to the hash
1240 table entry for the benefit of relaxation code until
1241 it gets rewritten to not use asymbol structures.
1242 Setting this is also used to check whether these
1243 symbols were set up by the generic linker. */
1251 /* We use a state table to deal with adding symbols from an object
1252 file. The first index into the state table describes the symbol
1253 from the object file. The second index into the state table is the
1254 type of the symbol in the hash table. */
1256 /* The symbol from the object file is turned into one of these row
1261 UNDEF_ROW
, /* Undefined. */
1262 UNDEFW_ROW
, /* Weak undefined. */
1263 DEF_ROW
, /* Defined. */
1264 DEFW_ROW
, /* Weak defined. */
1265 COMMON_ROW
, /* Common. */
1266 INDR_ROW
, /* Indirect. */
1267 WARN_ROW
, /* Warning. */
1268 SET_ROW
/* Member of set. */
1271 /* apparently needed for Hitachi 3050R(HI-UX/WE2)? */
1274 /* The actions to take in the state table. */
1279 UND
, /* Mark symbol undefined. */
1280 WEAK
, /* Mark symbol weak undefined. */
1281 DEF
, /* Mark symbol defined. */
1282 DEFW
, /* Mark symbol weak defined. */
1283 COM
, /* Mark symbol common. */
1284 REF
, /* Mark defined symbol referenced. */
1285 CREF
, /* Possibly warn about common reference to defined symbol. */
1286 CDEF
, /* Define existing common symbol. */
1287 NOACT
, /* No action. */
1288 BIG
, /* Mark symbol common using largest size. */
1289 MDEF
, /* Multiple definition error. */
1290 MIND
, /* Multiple indirect symbols. */
1291 IND
, /* Make indirect symbol. */
1292 CIND
, /* Make indirect symbol from existing common symbol. */
1293 SET
, /* Add value to set. */
1294 MWARN
, /* Make warning symbol. */
1295 WARN
, /* Warn if referenced, else MWARN. */
1296 CYCLE
, /* Repeat with symbol pointed to. */
1297 REFC
, /* Mark indirect symbol referenced and then CYCLE. */
1298 WARNC
/* Issue warning and then CYCLE. */
1301 /* The state table itself. The first index is a link_row and the
1302 second index is a bfd_link_hash_type. */
1304 static const enum link_action link_action
[8][8] =
1306 /* current\prev new undef undefw def defw com indr warn */
1307 /* UNDEF_ROW */ {UND
, NOACT
, UND
, REF
, REF
, NOACT
, REFC
, WARNC
},
1308 /* UNDEFW_ROW */ {WEAK
, NOACT
, NOACT
, REF
, REF
, NOACT
, REFC
, WARNC
},
1309 /* DEF_ROW */ {DEF
, DEF
, DEF
, MDEF
, DEF
, CDEF
, MIND
, CYCLE
},
1310 /* DEFW_ROW */ {DEFW
, DEFW
, DEFW
, NOACT
, NOACT
, NOACT
, NOACT
, CYCLE
},
1311 /* COMMON_ROW */ {COM
, COM
, COM
, CREF
, COM
, BIG
, REFC
, WARNC
},
1312 /* INDR_ROW */ {IND
, IND
, IND
, MDEF
, IND
, CIND
, MIND
, CYCLE
},
1313 /* WARN_ROW */ {MWARN
, WARN
, WARN
, WARN
, WARN
, WARN
, WARN
, NOACT
},
1314 /* SET_ROW */ {SET
, SET
, SET
, SET
, SET
, SET
, CYCLE
, CYCLE
}
1317 /* Most of the entries in the LINK_ACTION table are straightforward,
1318 but a few are somewhat subtle.
1320 A reference to an indirect symbol (UNDEF_ROW/indr or
1321 UNDEFW_ROW/indr) is counted as a reference both to the indirect
1322 symbol and to the symbol the indirect symbol points to.
1324 A reference to a warning symbol (UNDEF_ROW/warn or UNDEFW_ROW/warn)
1325 causes the warning to be issued.
1327 A common definition of an indirect symbol (COMMON_ROW/indr) is
1328 treated as a multiple definition error. Likewise for an indirect
1329 definition of a common symbol (INDR_ROW/com).
1331 An indirect definition of a warning (INDR_ROW/warn) does not cause
1332 the warning to be issued.
1334 If a warning is created for an indirect symbol (WARN_ROW/indr) no
1335 warning is created for the symbol the indirect symbol points to.
1337 Adding an entry to a set does not count as a reference to a set,
1338 and no warning is issued (SET_ROW/warn). */
1340 /* Return the BFD in which a hash entry has been defined, if known. */
1343 hash_entry_bfd (struct bfd_link_hash_entry
*h
)
1345 while (h
->type
== bfd_link_hash_warning
)
1351 case bfd_link_hash_undefined
:
1352 case bfd_link_hash_undefweak
:
1353 return h
->u
.undef
.abfd
;
1354 case bfd_link_hash_defined
:
1355 case bfd_link_hash_defweak
:
1356 return h
->u
.def
.section
->owner
;
1357 case bfd_link_hash_common
:
1358 return h
->u
.c
.p
->section
->owner
;
1363 /* Add a symbol to the global hash table.
1364 ABFD is the BFD the symbol comes from.
1365 NAME is the name of the symbol.
1366 FLAGS is the BSF_* bits associated with the symbol.
1367 SECTION is the section in which the symbol is defined; this may be
1368 bfd_und_section_ptr or bfd_com_section_ptr.
1369 VALUE is the value of the symbol, relative to the section.
1370 STRING is used for either an indirect symbol, in which case it is
1371 the name of the symbol to indirect to, or a warning symbol, in
1372 which case it is the warning string.
1373 COPY is TRUE if NAME or STRING must be copied into locally
1374 allocated memory if they need to be saved.
1375 COLLECT is TRUE if we should automatically collect gcc constructor
1376 or destructor names as collect2 does.
1377 HASHP, if not NULL, is a place to store the created hash table
1378 entry; if *HASHP is not NULL, the caller has already looked up
1379 the hash table entry, and stored it in *HASHP. */
1382 _bfd_generic_link_add_one_symbol (struct bfd_link_info
*info
,
1391 struct bfd_link_hash_entry
**hashp
)
1394 struct bfd_link_hash_entry
*h
;
1395 struct bfd_link_hash_entry
*inh
= NULL
;
1398 BFD_ASSERT (section
!= NULL
);
1400 if (bfd_is_ind_section (section
)
1401 || (flags
& BSF_INDIRECT
) != 0)
1404 /* Create the indirect symbol here. This is for the benefit of
1405 the plugin "notice" function.
1406 STRING is the name of the symbol we want to indirect to. */
1407 inh
= bfd_wrapped_link_hash_lookup (abfd
, info
, string
, true,
1412 else if ((flags
& BSF_WARNING
) != 0)
1414 else if ((flags
& BSF_CONSTRUCTOR
) != 0)
1416 else if (bfd_is_und_section (section
))
1418 if ((flags
& BSF_WEAK
) != 0)
1423 else if ((flags
& BSF_WEAK
) != 0)
1425 else if (bfd_is_com_section (section
))
1428 if (!bfd_link_relocatable (info
)
1432 && strcmp (name
+ (name
[2] == '_'), "__gnu_lto_slim") == 0)
1434 (_("%pB: plugin needed to handle lto object"), abfd
);
1439 if (hashp
!= NULL
&& *hashp
!= NULL
)
1443 if (row
== UNDEF_ROW
|| row
== UNDEFW_ROW
)
1444 h
= bfd_wrapped_link_hash_lookup (abfd
, info
, name
, true, copy
, false);
1446 h
= bfd_link_hash_lookup (info
->hash
, name
, true, copy
, false);
1455 if (info
->notice_all
1456 || (info
->notice_hash
!= NULL
1457 && bfd_hash_lookup (info
->notice_hash
, name
, false, false) != NULL
))
1459 if (! (*info
->callbacks
->notice
) (info
, h
, inh
,
1460 abfd
, section
, value
, flags
))
1469 enum link_action action
;
1473 /* Treat symbols defined by early linker script pass as undefined. */
1474 if (h
->ldscript_def
)
1475 prev
= bfd_link_hash_undefined
;
1477 action
= link_action
[(int) row
][prev
];
1488 /* Make a new undefined symbol. */
1489 h
->type
= bfd_link_hash_undefined
;
1490 h
->u
.undef
.abfd
= abfd
;
1491 bfd_link_add_undef (info
->hash
, h
);
1495 /* Make a new weak undefined symbol. */
1496 h
->type
= bfd_link_hash_undefweak
;
1497 h
->u
.undef
.abfd
= abfd
;
1501 /* We have found a definition for a symbol which was
1502 previously common. */
1503 BFD_ASSERT (h
->type
== bfd_link_hash_common
);
1504 (*info
->callbacks
->multiple_common
) (info
, h
, abfd
,
1505 bfd_link_hash_defined
, 0);
1510 enum bfd_link_hash_type oldtype
;
1512 /* Define a symbol. */
1515 h
->type
= bfd_link_hash_defweak
;
1517 h
->type
= bfd_link_hash_defined
;
1518 h
->u
.def
.section
= section
;
1519 h
->u
.def
.value
= value
;
1521 h
->ldscript_def
= 0;
1523 /* If we have been asked to, we act like collect2 and
1524 identify all functions that might be global
1525 constructors and destructors and pass them up in a
1526 callback. We only do this for certain object file
1527 types, since many object file types can handle this
1529 if (collect
&& name
[0] == '_')
1533 /* A constructor or destructor name starts like this:
1534 _+GLOBAL_[_.$][ID][_.$] where the first [_.$] and
1535 the second are the same character (we accept any
1536 character there, in case a new object file format
1537 comes along with even worse naming restrictions). */
1539 #define CONS_PREFIX "GLOBAL_"
1540 #define CONS_PREFIX_LEN (sizeof CONS_PREFIX - 1)
1545 if (s
[0] == 'G' && startswith (s
, CONS_PREFIX
))
1549 c
= s
[CONS_PREFIX_LEN
+ 1];
1550 if ((c
== 'I' || c
== 'D')
1551 && s
[CONS_PREFIX_LEN
] == s
[CONS_PREFIX_LEN
+ 2])
1553 /* If this is a definition of a symbol which
1554 was previously weakly defined, we are in
1555 trouble. We have already added a
1556 constructor entry for the weak defined
1557 symbol, and now we are trying to add one
1558 for the new symbol. Fortunately, this case
1559 should never arise in practice. */
1560 if (oldtype
== bfd_link_hash_defweak
)
1563 (*info
->callbacks
->constructor
) (info
, c
== 'I',
1564 h
->root
.string
, abfd
,
1574 /* We have found a common definition for a symbol. */
1575 if (h
->type
== bfd_link_hash_new
)
1576 bfd_link_add_undef (info
->hash
, h
);
1577 h
->type
= bfd_link_hash_common
;
1578 h
->u
.c
.p
= (struct bfd_link_hash_common_entry
*)
1579 bfd_hash_allocate (&info
->hash
->table
,
1580 sizeof (struct bfd_link_hash_common_entry
));
1581 if (h
->u
.c
.p
== NULL
)
1584 h
->u
.c
.size
= value
;
1586 /* Select a default alignment based on the size. This may
1587 be overridden by the caller. */
1591 power
= bfd_log2 (value
);
1594 h
->u
.c
.p
->alignment_power
= power
;
1597 /* The section of a common symbol is only used if the common
1598 symbol is actually allocated. It basically provides a
1599 hook for the linker script to decide which output section
1600 the common symbols should be put in. In most cases, the
1601 section of a common symbol will be bfd_com_section_ptr,
1602 the code here will choose a common symbol section named
1603 "COMMON", and the linker script will contain *(COMMON) in
1604 the appropriate place. A few targets use separate common
1605 sections for small symbols, and they require special
1607 if (section
== bfd_com_section_ptr
)
1609 h
->u
.c
.p
->section
= bfd_make_section_old_way (abfd
, "COMMON");
1610 h
->u
.c
.p
->section
->flags
|= SEC_ALLOC
;
1612 else if (section
->owner
!= abfd
)
1614 h
->u
.c
.p
->section
= bfd_make_section_old_way (abfd
,
1616 h
->u
.c
.p
->section
->flags
|= SEC_ALLOC
;
1619 h
->u
.c
.p
->section
= section
;
1621 h
->ldscript_def
= 0;
1625 /* A reference to a defined symbol. */
1626 if (h
->u
.undef
.next
== NULL
&& info
->hash
->undefs_tail
!= h
)
1627 h
->u
.undef
.next
= h
;
1631 /* We have found a common definition for a symbol which
1632 already had a common definition. Use the maximum of the
1633 two sizes, and use the section required by the larger symbol. */
1634 BFD_ASSERT (h
->type
== bfd_link_hash_common
);
1635 (*info
->callbacks
->multiple_common
) (info
, h
, abfd
,
1636 bfd_link_hash_common
, value
);
1637 if (value
> h
->u
.c
.size
)
1641 h
->u
.c
.size
= value
;
1643 /* Select a default alignment based on the size. This may
1644 be overridden by the caller. */
1645 power
= bfd_log2 (value
);
1648 h
->u
.c
.p
->alignment_power
= power
;
1650 /* Some systems have special treatment for small commons,
1651 hence we want to select the section used by the larger
1652 symbol. This makes sure the symbol does not go in a
1653 small common section if it is now too large. */
1654 if (section
== bfd_com_section_ptr
)
1657 = bfd_make_section_old_way (abfd
, "COMMON");
1658 h
->u
.c
.p
->section
->flags
|= SEC_ALLOC
;
1660 else if (section
->owner
!= abfd
)
1663 = bfd_make_section_old_way (abfd
, section
->name
);
1664 h
->u
.c
.p
->section
->flags
|= SEC_ALLOC
;
1667 h
->u
.c
.p
->section
= section
;
1672 /* We have found a common definition for a symbol which
1673 was already defined. */
1674 (*info
->callbacks
->multiple_common
) (info
, h
, abfd
,
1675 bfd_link_hash_common
, value
);
1679 /* Multiple indirect symbols. This is OK if they both point
1680 to the same symbol. */
1681 if (h
->u
.i
.link
->type
== bfd_link_hash_defweak
)
1683 /* It is also OK to redefine a symbol that indirects to
1684 a weak definition. So for sym@ver -> sym@@ver where
1685 sym@@ver is weak and we have a new strong sym@ver,
1686 redefine sym@@ver. Of course if there exists
1687 sym -> sym@@ver then this also redefines sym. */
1692 if (string
!= NULL
&& strcmp (h
->u
.i
.link
->root
.string
, string
) == 0)
1696 /* Handle a multiple definition. */
1697 (*info
->callbacks
->multiple_definition
) (info
, h
,
1698 abfd
, section
, value
);
1702 /* Create an indirect symbol from an existing common symbol. */
1703 BFD_ASSERT (h
->type
== bfd_link_hash_common
);
1704 (*info
->callbacks
->multiple_common
) (info
, h
, abfd
,
1705 bfd_link_hash_indirect
, 0);
1708 if (inh
->type
== bfd_link_hash_indirect
1709 && inh
->u
.i
.link
== h
)
1712 /* xgettext:c-format */
1713 (_("%pB: indirect symbol `%s' to `%s' is a loop"),
1714 abfd
, name
, string
);
1715 bfd_set_error (bfd_error_invalid_operation
);
1718 if (inh
->type
== bfd_link_hash_new
)
1720 inh
->type
= bfd_link_hash_undefined
;
1721 inh
->u
.undef
.abfd
= abfd
;
1722 bfd_link_add_undef (info
->hash
, inh
);
1725 /* If the indirect symbol has been referenced, we need to
1726 push the reference down to the symbol we are referencing. */
1727 if (h
->type
!= bfd_link_hash_new
)
1729 /* ??? If inh->type == bfd_link_hash_undefweak this
1730 converts inh to bfd_link_hash_undefined. */
1735 h
->type
= bfd_link_hash_indirect
;
1737 /* Not setting h = h->u.i.link here means that when cycle is
1738 set above we'll always go to REFC, and then cycle again
1739 to the indirected symbol. This means that any successful
1740 change of an existing symbol to indirect counts as a
1741 reference. ??? That may not be correct when the existing
1742 symbol was defweak. */
1746 /* Add an entry to a set. */
1747 (*info
->callbacks
->add_to_set
) (info
, h
, BFD_RELOC_CTOR
,
1748 abfd
, section
, value
);
1752 /* Issue a warning and cycle, except when the reference is
1754 if (h
->u
.i
.warning
!= NULL
1755 && (abfd
->flags
& BFD_PLUGIN
) == 0)
1757 (*info
->callbacks
->warning
) (info
, h
->u
.i
.warning
,
1758 h
->root
.string
, abfd
, NULL
, 0);
1759 /* Only issue a warning once. */
1760 h
->u
.i
.warning
= NULL
;
1764 /* Try again with the referenced symbol. */
1770 /* A reference to an indirect symbol. */
1771 if (h
->u
.undef
.next
== NULL
&& info
->hash
->undefs_tail
!= h
)
1772 h
->u
.undef
.next
= h
;
1778 /* Warn if this symbol has been referenced already from non-IR,
1779 otherwise add a warning. */
1780 if ((!info
->lto_plugin_active
1781 && (h
->u
.undef
.next
!= NULL
|| info
->hash
->undefs_tail
== h
))
1782 || h
->non_ir_ref_regular
1783 || h
->non_ir_ref_dynamic
)
1785 (*info
->callbacks
->warning
) (info
, string
, h
->root
.string
,
1786 hash_entry_bfd (h
), NULL
, 0);
1791 /* Make a warning symbol. */
1793 struct bfd_link_hash_entry
*sub
;
1795 /* STRING is the warning to give. */
1796 sub
= ((struct bfd_link_hash_entry
*)
1797 ((*info
->hash
->table
.newfunc
)
1798 (NULL
, &info
->hash
->table
, h
->root
.string
)));
1802 sub
->type
= bfd_link_hash_warning
;
1805 sub
->u
.i
.warning
= string
;
1809 size_t len
= strlen (string
) + 1;
1811 w
= (char *) bfd_hash_allocate (&info
->hash
->table
, len
);
1814 memcpy (w
, string
, len
);
1815 sub
->u
.i
.warning
= w
;
1818 bfd_hash_replace (&info
->hash
->table
,
1819 (struct bfd_hash_entry
*) h
,
1820 (struct bfd_hash_entry
*) sub
);
1832 /* Generic final link routine. */
1835 _bfd_generic_final_link (bfd
*abfd
, struct bfd_link_info
*info
)
1839 struct bfd_link_order
*p
;
1841 struct generic_write_global_symbol_info wginfo
;
1843 abfd
->outsymbols
= NULL
;
1847 /* Mark all sections which will be included in the output file. */
1848 for (o
= abfd
->sections
; o
!= NULL
; o
= o
->next
)
1849 for (p
= o
->map_head
.link_order
; p
!= NULL
; p
= p
->next
)
1850 if (p
->type
== bfd_indirect_link_order
)
1851 p
->u
.indirect
.section
->linker_mark
= true;
1853 /* Build the output symbol table. */
1854 for (sub
= info
->input_bfds
; sub
!= NULL
; sub
= sub
->link
.next
)
1855 if (! _bfd_generic_link_output_symbols (abfd
, sub
, info
, &outsymalloc
))
1858 /* Accumulate the global symbols. */
1860 wginfo
.output_bfd
= abfd
;
1861 wginfo
.psymalloc
= &outsymalloc
;
1862 _bfd_generic_link_hash_traverse (_bfd_generic_hash_table (info
),
1863 _bfd_generic_link_write_global_symbol
,
1866 /* Make sure we have a trailing NULL pointer on OUTSYMBOLS. We
1867 shouldn't really need one, since we have SYMCOUNT, but some old
1868 code still expects one. */
1869 if (! generic_add_output_symbol (abfd
, &outsymalloc
, NULL
))
1872 if (bfd_link_relocatable (info
))
1874 /* Allocate space for the output relocs for each section. */
1875 for (o
= abfd
->sections
; o
!= NULL
; o
= o
->next
)
1878 for (p
= o
->map_head
.link_order
; p
!= NULL
; p
= p
->next
)
1880 if (p
->type
== bfd_section_reloc_link_order
1881 || p
->type
== bfd_symbol_reloc_link_order
)
1883 else if (p
->type
== bfd_indirect_link_order
)
1885 asection
*input_section
;
1892 input_section
= p
->u
.indirect
.section
;
1893 input_bfd
= input_section
->owner
;
1894 relsize
= bfd_get_reloc_upper_bound (input_bfd
,
1898 relocs
= (arelent
**) bfd_malloc (relsize
);
1899 if (!relocs
&& relsize
!= 0)
1901 symbols
= _bfd_generic_link_get_symbols (input_bfd
);
1902 reloc_count
= bfd_canonicalize_reloc (input_bfd
,
1907 if (reloc_count
< 0)
1909 BFD_ASSERT ((unsigned long) reloc_count
1910 == input_section
->reloc_count
);
1911 o
->reloc_count
+= reloc_count
;
1914 if (o
->reloc_count
> 0)
1918 amt
= o
->reloc_count
;
1919 amt
*= sizeof (arelent
*);
1920 o
->orelocation
= (struct reloc_cache_entry
**) bfd_alloc (abfd
, amt
);
1921 if (!o
->orelocation
)
1923 o
->flags
|= SEC_RELOC
;
1924 /* Reset the count so that it can be used as an index
1925 when putting in the output relocs. */
1931 /* Handle all the link order information for the sections. */
1932 for (o
= abfd
->sections
; o
!= NULL
; o
= o
->next
)
1934 for (p
= o
->map_head
.link_order
; p
!= NULL
; p
= p
->next
)
1938 case bfd_section_reloc_link_order
:
1939 case bfd_symbol_reloc_link_order
:
1940 if (! _bfd_generic_reloc_link_order (abfd
, info
, o
, p
))
1943 case bfd_indirect_link_order
:
1944 if (! default_indirect_link_order (abfd
, info
, o
, p
, true))
1948 if (! _bfd_default_link_order (abfd
, info
, o
, p
))
1958 /* Add an output symbol to the output BFD. */
1961 generic_add_output_symbol (bfd
*output_bfd
, size_t *psymalloc
, asymbol
*sym
)
1963 if (bfd_get_symcount (output_bfd
) >= *psymalloc
)
1968 if (*psymalloc
== 0)
1973 amt
*= sizeof (asymbol
*);
1974 newsyms
= (asymbol
**) bfd_realloc (bfd_get_outsymbols (output_bfd
), amt
);
1975 if (newsyms
== NULL
)
1977 output_bfd
->outsymbols
= newsyms
;
1980 output_bfd
->outsymbols
[output_bfd
->symcount
] = sym
;
1982 ++output_bfd
->symcount
;
1987 /* Handle the symbols for an input BFD. */
1990 _bfd_generic_link_output_symbols (bfd
*output_bfd
,
1992 struct bfd_link_info
*info
,
1998 if (!bfd_generic_link_read_symbols (input_bfd
))
2001 /* Create a filename symbol if we are supposed to. */
2002 if (info
->create_object_symbols_section
!= NULL
)
2006 for (sec
= input_bfd
->sections
; sec
!= NULL
; sec
= sec
->next
)
2008 if (sec
->output_section
== info
->create_object_symbols_section
)
2012 newsym
= bfd_make_empty_symbol (input_bfd
);
2015 newsym
->name
= bfd_get_filename (input_bfd
);
2017 newsym
->flags
= BSF_LOCAL
| BSF_FILE
;
2018 newsym
->section
= sec
;
2020 if (! generic_add_output_symbol (output_bfd
, psymalloc
,
2029 /* Adjust the values of the globally visible symbols, and write out
2031 sym_ptr
= _bfd_generic_link_get_symbols (input_bfd
);
2032 sym_end
= sym_ptr
+ _bfd_generic_link_get_symcount (input_bfd
);
2033 for (; sym_ptr
< sym_end
; sym_ptr
++)
2036 struct generic_link_hash_entry
*h
;
2041 if ((sym
->flags
& (BSF_INDIRECT
2046 || bfd_is_und_section (bfd_asymbol_section (sym
))
2047 || bfd_is_com_section (bfd_asymbol_section (sym
))
2048 || bfd_is_ind_section (bfd_asymbol_section (sym
)))
2050 if (sym
->udata
.p
!= NULL
)
2051 h
= (struct generic_link_hash_entry
*) sym
->udata
.p
;
2052 else if ((sym
->flags
& BSF_CONSTRUCTOR
) != 0)
2054 /* This case normally means that the main linker code
2055 deliberately ignored this constructor symbol. We
2056 should just pass it through. This will screw up if
2057 the constructor symbol is from a different,
2058 non-generic, object file format, but the case will
2059 only arise when linking with -r, which will probably
2060 fail anyhow, since there will be no way to represent
2061 the relocs in the output format being used. */
2064 else if (bfd_is_und_section (bfd_asymbol_section (sym
)))
2065 h
= ((struct generic_link_hash_entry
*)
2066 bfd_wrapped_link_hash_lookup (output_bfd
, info
,
2067 bfd_asymbol_name (sym
),
2068 false, false, true));
2070 h
= _bfd_generic_link_hash_lookup (_bfd_generic_hash_table (info
),
2071 bfd_asymbol_name (sym
),
2072 false, false, true);
2076 /* Force all references to this symbol to point to
2077 the same area in memory. It is possible that
2078 this routine will be called with a hash table
2079 other than a generic hash table, so we double
2081 if (info
->output_bfd
->xvec
== input_bfd
->xvec
)
2084 *sym_ptr
= sym
= h
->sym
;
2087 switch (h
->root
.type
)
2090 case bfd_link_hash_new
:
2092 case bfd_link_hash_undefined
:
2094 case bfd_link_hash_undefweak
:
2095 sym
->flags
|= BSF_WEAK
;
2097 case bfd_link_hash_indirect
:
2098 h
= (struct generic_link_hash_entry
*) h
->root
.u
.i
.link
;
2100 case bfd_link_hash_defined
:
2101 sym
->flags
|= BSF_GLOBAL
;
2102 sym
->flags
&=~ (BSF_WEAK
| BSF_CONSTRUCTOR
);
2103 sym
->value
= h
->root
.u
.def
.value
;
2104 sym
->section
= h
->root
.u
.def
.section
;
2106 case bfd_link_hash_defweak
:
2107 sym
->flags
|= BSF_WEAK
;
2108 sym
->flags
&=~ BSF_CONSTRUCTOR
;
2109 sym
->value
= h
->root
.u
.def
.value
;
2110 sym
->section
= h
->root
.u
.def
.section
;
2112 case bfd_link_hash_common
:
2113 sym
->value
= h
->root
.u
.c
.size
;
2114 sym
->flags
|= BSF_GLOBAL
;
2115 if (! bfd_is_com_section (sym
->section
))
2117 BFD_ASSERT (bfd_is_und_section (sym
->section
));
2118 sym
->section
= bfd_com_section_ptr
;
2120 /* We do not set the section of the symbol to
2121 h->root.u.c.p->section. That value was saved so
2122 that we would know where to allocate the symbol
2123 if it was defined. In this case the type is
2124 still bfd_link_hash_common, so we did not define
2125 it, so we do not want to use that section. */
2131 if ((sym
->flags
& BSF_KEEP
) == 0
2132 && (info
->strip
== strip_all
2133 || (info
->strip
== strip_some
2134 && bfd_hash_lookup (info
->keep_hash
, bfd_asymbol_name (sym
),
2135 false, false) == NULL
)))
2137 else if ((sym
->flags
& (BSF_GLOBAL
| BSF_WEAK
| BSF_GNU_UNIQUE
)) != 0)
2139 /* If this symbol is marked as occurring now, rather
2140 than at the end, output it now. This is used for
2141 COFF C_EXT FCN symbols. FIXME: There must be a
2143 if (bfd_asymbol_bfd (sym
) == input_bfd
2144 && (sym
->flags
& BSF_NOT_AT_END
) != 0)
2149 else if ((sym
->flags
& BSF_KEEP
) != 0)
2151 else if (bfd_is_ind_section (sym
->section
))
2153 else if ((sym
->flags
& BSF_DEBUGGING
) != 0)
2155 if (info
->strip
== strip_none
)
2160 else if (bfd_is_und_section (sym
->section
)
2161 || bfd_is_com_section (sym
->section
))
2163 else if ((sym
->flags
& BSF_LOCAL
) != 0)
2165 if ((sym
->flags
& BSF_WARNING
) != 0)
2169 switch (info
->discard
)
2175 case discard_sec_merge
:
2177 if (bfd_link_relocatable (info
)
2178 || ! (sym
->section
->flags
& SEC_MERGE
))
2182 if (bfd_is_local_label (input_bfd
, sym
))
2193 else if ((sym
->flags
& BSF_CONSTRUCTOR
))
2195 if (info
->strip
!= strip_all
)
2200 else if (sym
->flags
== 0
2201 && (sym
->section
->owner
->flags
& BFD_PLUGIN
) != 0)
2202 /* LTO doesn't set symbol information. We get here with the
2203 generic linker for a symbol that was "common" but no longer
2204 needs to be global. */
2209 /* If this symbol is in a section which is not being included
2210 in the output file, then we don't want to output the
2212 if (!bfd_is_abs_section (sym
->section
)
2213 && bfd_section_removed_from_list (output_bfd
,
2214 sym
->section
->output_section
))
2219 if (! generic_add_output_symbol (output_bfd
, psymalloc
, sym
))
2229 /* Set the section and value of a generic BFD symbol based on a linker
2230 hash table entry. */
2233 set_symbol_from_hash (asymbol
*sym
, struct bfd_link_hash_entry
*h
)
2240 case bfd_link_hash_new
:
2241 /* This can happen when a constructor symbol is seen but we are
2242 not building constructors. */
2243 if (sym
->section
!= NULL
)
2245 BFD_ASSERT ((sym
->flags
& BSF_CONSTRUCTOR
) != 0);
2249 sym
->flags
|= BSF_CONSTRUCTOR
;
2250 sym
->section
= bfd_abs_section_ptr
;
2254 case bfd_link_hash_undefined
:
2255 sym
->section
= bfd_und_section_ptr
;
2258 case bfd_link_hash_undefweak
:
2259 sym
->section
= bfd_und_section_ptr
;
2261 sym
->flags
|= BSF_WEAK
;
2263 case bfd_link_hash_defined
:
2264 sym
->section
= h
->u
.def
.section
;
2265 sym
->value
= h
->u
.def
.value
;
2267 case bfd_link_hash_defweak
:
2268 sym
->flags
|= BSF_WEAK
;
2269 sym
->section
= h
->u
.def
.section
;
2270 sym
->value
= h
->u
.def
.value
;
2272 case bfd_link_hash_common
:
2273 sym
->value
= h
->u
.c
.size
;
2274 if (sym
->section
== NULL
)
2275 sym
->section
= bfd_com_section_ptr
;
2276 else if (! bfd_is_com_section (sym
->section
))
2278 BFD_ASSERT (bfd_is_und_section (sym
->section
));
2279 sym
->section
= bfd_com_section_ptr
;
2281 /* Do not set the section; see _bfd_generic_link_output_symbols. */
2283 case bfd_link_hash_indirect
:
2284 case bfd_link_hash_warning
:
2285 /* FIXME: What should we do here? */
2290 /* Write out a global symbol, if it hasn't already been written out.
2291 This is called for each symbol in the hash table. */
2294 _bfd_generic_link_write_global_symbol (struct generic_link_hash_entry
*h
,
2297 struct generic_write_global_symbol_info
*wginfo
=
2298 (struct generic_write_global_symbol_info
*) data
;
2306 if (wginfo
->info
->strip
== strip_all
2307 || (wginfo
->info
->strip
== strip_some
2308 && bfd_hash_lookup (wginfo
->info
->keep_hash
, h
->root
.root
.string
,
2309 false, false) == NULL
))
2316 sym
= bfd_make_empty_symbol (wginfo
->output_bfd
);
2319 sym
->name
= h
->root
.root
.string
;
2323 set_symbol_from_hash (sym
, &h
->root
);
2325 sym
->flags
|= BSF_GLOBAL
;
2327 if (! generic_add_output_symbol (wginfo
->output_bfd
, wginfo
->psymalloc
,
2330 /* FIXME: No way to return failure. */
2337 /* Create a relocation. */
2340 _bfd_generic_reloc_link_order (bfd
*abfd
,
2341 struct bfd_link_info
*info
,
2343 struct bfd_link_order
*link_order
)
2347 if (! bfd_link_relocatable (info
))
2349 if (sec
->orelocation
== NULL
)
2352 r
= (arelent
*) bfd_alloc (abfd
, sizeof (arelent
));
2356 r
->address
= link_order
->offset
;
2357 r
->howto
= bfd_reloc_type_lookup (abfd
, link_order
->u
.reloc
.p
->reloc
);
2360 bfd_set_error (bfd_error_bad_value
);
2364 /* Get the symbol to use for the relocation. */
2365 if (link_order
->type
== bfd_section_reloc_link_order
)
2366 r
->sym_ptr_ptr
= link_order
->u
.reloc
.p
->u
.section
->symbol_ptr_ptr
;
2369 struct generic_link_hash_entry
*h
;
2371 h
= ((struct generic_link_hash_entry
*)
2372 bfd_wrapped_link_hash_lookup (abfd
, info
,
2373 link_order
->u
.reloc
.p
->u
.name
,
2374 false, false, true));
2378 (*info
->callbacks
->unattached_reloc
)
2379 (info
, link_order
->u
.reloc
.p
->u
.name
, NULL
, NULL
, 0);
2380 bfd_set_error (bfd_error_bad_value
);
2383 r
->sym_ptr_ptr
= &h
->sym
;
2386 /* If this is an inplace reloc, write the addend to the object file.
2387 Otherwise, store it in the reloc addend. */
2388 if (! r
->howto
->partial_inplace
)
2389 r
->addend
= link_order
->u
.reloc
.p
->addend
;
2393 bfd_reloc_status_type rstat
;
2398 size
= bfd_get_reloc_size (r
->howto
);
2399 buf
= (bfd_byte
*) bfd_zmalloc (size
);
2400 if (buf
== NULL
&& size
!= 0)
2402 rstat
= _bfd_relocate_contents (r
->howto
, abfd
,
2403 (bfd_vma
) link_order
->u
.reloc
.p
->addend
,
2410 case bfd_reloc_outofrange
:
2412 case bfd_reloc_overflow
:
2413 (*info
->callbacks
->reloc_overflow
)
2415 (link_order
->type
== bfd_section_reloc_link_order
2416 ? bfd_section_name (link_order
->u
.reloc
.p
->u
.section
)
2417 : link_order
->u
.reloc
.p
->u
.name
),
2418 r
->howto
->name
, link_order
->u
.reloc
.p
->addend
,
2422 loc
= link_order
->offset
* bfd_octets_per_byte (abfd
, sec
);
2423 ok
= bfd_set_section_contents (abfd
, sec
, buf
, loc
, size
);
2431 sec
->orelocation
[sec
->reloc_count
] = r
;
2437 /* Allocate a new link_order for a section. */
2439 struct bfd_link_order
*
2440 bfd_new_link_order (bfd
*abfd
, asection
*section
)
2442 size_t amt
= sizeof (struct bfd_link_order
);
2443 struct bfd_link_order
*new_lo
;
2445 new_lo
= (struct bfd_link_order
*) bfd_zalloc (abfd
, amt
);
2449 new_lo
->type
= bfd_undefined_link_order
;
2451 if (section
->map_tail
.link_order
!= NULL
)
2452 section
->map_tail
.link_order
->next
= new_lo
;
2454 section
->map_head
.link_order
= new_lo
;
2455 section
->map_tail
.link_order
= new_lo
;
2460 /* Default link order processing routine. Note that we can not handle
2461 the reloc_link_order types here, since they depend upon the details
2462 of how the particular backends generates relocs. */
2465 _bfd_default_link_order (bfd
*abfd
,
2466 struct bfd_link_info
*info
,
2468 struct bfd_link_order
*link_order
)
2470 switch (link_order
->type
)
2472 case bfd_undefined_link_order
:
2473 case bfd_section_reloc_link_order
:
2474 case bfd_symbol_reloc_link_order
:
2477 case bfd_indirect_link_order
:
2478 return default_indirect_link_order (abfd
, info
, sec
, link_order
,
2480 case bfd_data_link_order
:
2481 return default_data_link_order (abfd
, info
, sec
, link_order
);
2485 /* Default routine to handle a bfd_data_link_order. */
2488 default_data_link_order (bfd
*abfd
,
2489 struct bfd_link_info
*info
,
2491 struct bfd_link_order
*link_order
)
2499 BFD_ASSERT ((sec
->flags
& SEC_HAS_CONTENTS
) != 0);
2501 size
= link_order
->size
;
2505 fill
= link_order
->u
.data
.contents
;
2506 fill_size
= link_order
->u
.data
.size
;
2509 fill
= abfd
->arch_info
->fill (size
, info
->big_endian
,
2510 (sec
->flags
& SEC_CODE
) != 0);
2514 else if (fill_size
< size
)
2517 fill
= (bfd_byte
*) bfd_malloc (size
);
2522 memset (p
, (int) link_order
->u
.data
.contents
[0], (size_t) size
);
2527 memcpy (p
, link_order
->u
.data
.contents
, fill_size
);
2531 while (size
>= fill_size
);
2533 memcpy (p
, link_order
->u
.data
.contents
, (size_t) size
);
2534 size
= link_order
->size
;
2538 loc
= link_order
->offset
* bfd_octets_per_byte (abfd
, sec
);
2539 result
= bfd_set_section_contents (abfd
, sec
, fill
, loc
, size
);
2541 if (fill
!= link_order
->u
.data
.contents
)
2546 /* Default routine to handle a bfd_indirect_link_order. */
2549 default_indirect_link_order (bfd
*output_bfd
,
2550 struct bfd_link_info
*info
,
2551 asection
*output_section
,
2552 struct bfd_link_order
*link_order
,
2553 bool generic_linker
)
2555 asection
*input_section
;
2557 bfd_byte
*alloced
= NULL
;
2558 bfd_byte
*new_contents
;
2561 BFD_ASSERT ((output_section
->flags
& SEC_HAS_CONTENTS
) != 0);
2563 input_section
= link_order
->u
.indirect
.section
;
2564 input_bfd
= input_section
->owner
;
2565 if (input_section
->size
== 0)
2568 BFD_ASSERT (input_section
->output_section
== output_section
);
2569 BFD_ASSERT (input_section
->output_offset
== link_order
->offset
);
2570 BFD_ASSERT (input_section
->size
== link_order
->size
);
2572 if (bfd_link_relocatable (info
)
2573 && input_section
->reloc_count
> 0
2574 && output_section
->orelocation
== NULL
)
2576 /* Space has not been allocated for the output relocations.
2577 This can happen when we are called by a specific backend
2578 because somebody is attempting to link together different
2579 types of object files. Handling this case correctly is
2580 difficult, and sometimes impossible. */
2582 /* xgettext:c-format */
2583 (_("attempt to do relocatable link with %s input and %s output"),
2584 bfd_get_target (input_bfd
), bfd_get_target (output_bfd
));
2585 bfd_set_error (bfd_error_wrong_format
);
2589 if (! generic_linker
)
2594 /* Get the canonical symbols. The generic linker will always
2595 have retrieved them by this point, but we are being called by
2596 a specific linker, presumably because we are linking
2597 different types of object files together. */
2598 if (!bfd_generic_link_read_symbols (input_bfd
))
2601 /* Since we have been called by a specific linker, rather than
2602 the generic linker, the values of the symbols will not be
2603 right. They will be the values as seen in the input file,
2604 not the values of the final link. We need to fix them up
2605 before we can relocate the section. */
2606 sympp
= _bfd_generic_link_get_symbols (input_bfd
);
2607 symppend
= sympp
+ _bfd_generic_link_get_symcount (input_bfd
);
2608 for (; sympp
< symppend
; sympp
++)
2611 struct bfd_link_hash_entry
*h
;
2615 if ((sym
->flags
& (BSF_INDIRECT
2620 || bfd_is_und_section (bfd_asymbol_section (sym
))
2621 || bfd_is_com_section (bfd_asymbol_section (sym
))
2622 || bfd_is_ind_section (bfd_asymbol_section (sym
)))
2624 /* sym->udata may have been set by
2625 generic_link_add_symbol_list. */
2626 if (sym
->udata
.p
!= NULL
)
2627 h
= (struct bfd_link_hash_entry
*) sym
->udata
.p
;
2628 else if (bfd_is_und_section (bfd_asymbol_section (sym
)))
2629 h
= bfd_wrapped_link_hash_lookup (output_bfd
, info
,
2630 bfd_asymbol_name (sym
),
2631 false, false, true);
2633 h
= bfd_link_hash_lookup (info
->hash
,
2634 bfd_asymbol_name (sym
),
2635 false, false, true);
2637 set_symbol_from_hash (sym
, h
);
2642 if ((output_section
->flags
& (SEC_GROUP
| SEC_LINKER_CREATED
)) == SEC_GROUP
2643 && input_section
->size
!= 0)
2645 /* Group section contents are set by bfd_elf_set_group_contents. */
2646 if (!output_bfd
->output_has_begun
)
2648 /* FIXME: This hack ensures bfd_elf_set_group_contents is called. */
2649 if (!bfd_set_section_contents (output_bfd
, output_section
, "", 0, 1))
2652 new_contents
= output_section
->contents
;
2653 BFD_ASSERT (new_contents
!= NULL
);
2654 BFD_ASSERT (input_section
->output_offset
== 0);
2658 /* Get and relocate the section contents. */
2659 new_contents
= (bfd_get_relocated_section_contents
2660 (output_bfd
, info
, link_order
, NULL
,
2661 bfd_link_relocatable (info
),
2662 _bfd_generic_link_get_symbols (input_bfd
)));
2663 alloced
= new_contents
;
2668 /* Output the section contents. */
2669 loc
= (input_section
->output_offset
2670 * bfd_octets_per_byte (output_bfd
, output_section
));
2671 if (! bfd_set_section_contents (output_bfd
, output_section
,
2672 new_contents
, loc
, input_section
->size
))
2683 /* A little routine to count the number of relocs in a link_order
2687 _bfd_count_link_order_relocs (struct bfd_link_order
*link_order
)
2689 register unsigned int c
;
2690 register struct bfd_link_order
*l
;
2693 for (l
= link_order
; l
!= NULL
; l
= l
->next
)
2695 if (l
->type
== bfd_section_reloc_link_order
2696 || l
->type
== bfd_symbol_reloc_link_order
)
2705 bfd_link_split_section
2708 bool bfd_link_split_section (bfd *abfd, asection *sec);
2711 Return nonzero if @var{sec} should be split during a
2712 reloceatable or final link.
2714 .#define bfd_link_split_section(abfd, sec) \
2715 . BFD_SEND (abfd, _bfd_link_split_section, (abfd, sec))
2721 _bfd_generic_link_split_section (bfd
*abfd ATTRIBUTE_UNUSED
,
2722 asection
*sec ATTRIBUTE_UNUSED
)
2729 bfd_section_already_linked
2732 bool bfd_section_already_linked (bfd *abfd,
2734 struct bfd_link_info *info);
2737 Check if @var{data} has been already linked during a reloceatable
2738 or final link. Return TRUE if it has.
2740 .#define bfd_section_already_linked(abfd, sec, info) \
2741 . BFD_SEND (abfd, _section_already_linked, (abfd, sec, info))
2746 /* Sections marked with the SEC_LINK_ONCE flag should only be linked
2747 once into the output. This routine checks each section, and
2748 arrange to discard it if a section of the same name has already
2749 been linked. This code assumes that all relevant sections have the
2750 SEC_LINK_ONCE flag set; that is, it does not depend solely upon the
2751 section name. bfd_section_already_linked is called via
2752 bfd_map_over_sections. */
2754 /* The hash table. */
2756 static struct bfd_hash_table _bfd_section_already_linked_table
;
2758 /* Support routines for the hash table used by section_already_linked,
2759 initialize the table, traverse, lookup, fill in an entry and remove
2763 bfd_section_already_linked_table_traverse
2764 (bool (*func
) (struct bfd_section_already_linked_hash_entry
*, void *),
2767 bfd_hash_traverse (&_bfd_section_already_linked_table
,
2768 (bool (*) (struct bfd_hash_entry
*, void *)) func
,
2772 struct bfd_section_already_linked_hash_entry
*
2773 bfd_section_already_linked_table_lookup (const char *name
)
2775 return ((struct bfd_section_already_linked_hash_entry
*)
2776 bfd_hash_lookup (&_bfd_section_already_linked_table
, name
,
2781 bfd_section_already_linked_table_insert
2782 (struct bfd_section_already_linked_hash_entry
*already_linked_list
,
2785 struct bfd_section_already_linked
*l
;
2787 /* Allocate the memory from the same obstack as the hash table is
2789 l
= (struct bfd_section_already_linked
*)
2790 bfd_hash_allocate (&_bfd_section_already_linked_table
, sizeof *l
);
2794 l
->next
= already_linked_list
->entry
;
2795 already_linked_list
->entry
= l
;
2799 static struct bfd_hash_entry
*
2800 already_linked_newfunc (struct bfd_hash_entry
*entry ATTRIBUTE_UNUSED
,
2801 struct bfd_hash_table
*table
,
2802 const char *string ATTRIBUTE_UNUSED
)
2804 struct bfd_section_already_linked_hash_entry
*ret
=
2805 (struct bfd_section_already_linked_hash_entry
*)
2806 bfd_hash_allocate (table
, sizeof *ret
);
2817 bfd_section_already_linked_table_init (void)
2819 return bfd_hash_table_init_n (&_bfd_section_already_linked_table
,
2820 already_linked_newfunc
,
2821 sizeof (struct bfd_section_already_linked_hash_entry
),
2826 bfd_section_already_linked_table_free (void)
2828 bfd_hash_table_free (&_bfd_section_already_linked_table
);
2831 /* Report warnings as appropriate for duplicate section SEC.
2832 Return FALSE if we decide to keep SEC after all. */
2835 _bfd_handle_already_linked (asection
*sec
,
2836 struct bfd_section_already_linked
*l
,
2837 struct bfd_link_info
*info
)
2839 switch (sec
->flags
& SEC_LINK_DUPLICATES
)
2844 case SEC_LINK_DUPLICATES_DISCARD
:
2845 /* If we found an LTO IR match for this comdat group on
2846 the first pass, replace it with the LTO output on the
2847 second pass. We can't simply choose real object
2848 files over IR because the first pass may contain a
2849 mix of LTO and normal objects and we must keep the
2850 first match, be it IR or real. */
2851 if (sec
->owner
->lto_output
2852 && (l
->sec
->owner
->flags
& BFD_PLUGIN
) != 0)
2859 case SEC_LINK_DUPLICATES_ONE_ONLY
:
2860 info
->callbacks
->einfo
2861 /* xgettext:c-format */
2862 (_("%pB: ignoring duplicate section `%pA'\n"),
2866 case SEC_LINK_DUPLICATES_SAME_SIZE
:
2867 if ((l
->sec
->owner
->flags
& BFD_PLUGIN
) != 0)
2869 else if (sec
->size
!= l
->sec
->size
)
2870 info
->callbacks
->einfo
2871 /* xgettext:c-format */
2872 (_("%pB: duplicate section `%pA' has different size\n"),
2876 case SEC_LINK_DUPLICATES_SAME_CONTENTS
:
2877 if ((l
->sec
->owner
->flags
& BFD_PLUGIN
) != 0)
2879 else if (sec
->size
!= l
->sec
->size
)
2880 info
->callbacks
->einfo
2881 /* xgettext:c-format */
2882 (_("%pB: duplicate section `%pA' has different size\n"),
2884 else if (sec
->size
!= 0)
2886 bfd_byte
*sec_contents
, *l_sec_contents
;
2888 if ((sec
->flags
& SEC_HAS_CONTENTS
) == 0
2889 && (l
->sec
->flags
& SEC_HAS_CONTENTS
) == 0)
2891 else if ((sec
->flags
& SEC_HAS_CONTENTS
) == 0
2892 || !bfd_malloc_and_get_section (sec
->owner
, sec
,
2894 info
->callbacks
->einfo
2895 /* xgettext:c-format */
2896 (_("%pB: could not read contents of section `%pA'\n"),
2898 else if ((l
->sec
->flags
& SEC_HAS_CONTENTS
) == 0
2899 || !bfd_malloc_and_get_section (l
->sec
->owner
, l
->sec
,
2902 info
->callbacks
->einfo
2903 /* xgettext:c-format */
2904 (_("%pB: could not read contents of section `%pA'\n"),
2905 l
->sec
->owner
, l
->sec
);
2906 free (sec_contents
);
2910 if (memcmp (sec_contents
, l_sec_contents
, sec
->size
) != 0)
2911 info
->callbacks
->einfo
2912 /* xgettext:c-format */
2913 (_("%pB: duplicate section `%pA' has different contents\n"),
2915 free (l_sec_contents
);
2916 free (sec_contents
);
2922 /* Set the output_section field so that lang_add_section
2923 does not create a lang_input_section structure for this
2924 section. Since there might be a symbol in the section
2925 being discarded, we must retain a pointer to the section
2926 which we are really going to use. */
2927 sec
->output_section
= bfd_abs_section_ptr
;
2928 sec
->kept_section
= l
->sec
;
2932 /* This is used on non-ELF inputs. */
2935 _bfd_generic_section_already_linked (bfd
*abfd ATTRIBUTE_UNUSED
,
2937 struct bfd_link_info
*info
)
2940 struct bfd_section_already_linked
*l
;
2941 struct bfd_section_already_linked_hash_entry
*already_linked_list
;
2943 if ((sec
->flags
& SEC_LINK_ONCE
) == 0)
2946 /* The generic linker doesn't handle section groups. */
2947 if ((sec
->flags
& SEC_GROUP
) != 0)
2950 /* FIXME: When doing a relocatable link, we may have trouble
2951 copying relocations in other sections that refer to local symbols
2952 in the section being discarded. Those relocations will have to
2953 be converted somehow; as of this writing I'm not sure that any of
2954 the backends handle that correctly.
2956 It is tempting to instead not discard link once sections when
2957 doing a relocatable link (technically, they should be discarded
2958 whenever we are building constructors). However, that fails,
2959 because the linker winds up combining all the link once sections
2960 into a single large link once section, which defeats the purpose
2961 of having link once sections in the first place. */
2963 name
= bfd_section_name (sec
);
2965 already_linked_list
= bfd_section_already_linked_table_lookup (name
);
2967 l
= already_linked_list
->entry
;
2970 /* The section has already been linked. See if we should
2972 return _bfd_handle_already_linked (sec
, l
, info
);
2975 /* This is the first section with this name. Record it. */
2976 if (!bfd_section_already_linked_table_insert (already_linked_list
, sec
))
2977 info
->callbacks
->einfo (_("%F%P: already_linked_table: %E\n"));
2981 /* Choose a neighbouring section to S in OBFD that will be output, or
2982 the absolute section if ADDR is out of bounds of the neighbours. */
2985 _bfd_nearby_section (bfd
*obfd
, asection
*s
, bfd_vma addr
)
2987 asection
*next
, *prev
, *best
;
2989 /* Find preceding kept section. */
2990 for (prev
= s
->prev
; prev
!= NULL
; prev
= prev
->prev
)
2991 if ((prev
->flags
& SEC_EXCLUDE
) == 0
2992 && !bfd_section_removed_from_list (obfd
, prev
))
2995 /* Find following kept section. Start at prev->next because
2996 other sections may have been added after S was removed. */
2997 if (s
->prev
!= NULL
)
2998 next
= s
->prev
->next
;
3000 next
= s
->owner
->sections
;
3001 for (; next
!= NULL
; next
= next
->next
)
3002 if ((next
->flags
& SEC_EXCLUDE
) == 0
3003 && !bfd_section_removed_from_list (obfd
, next
))
3006 /* Choose better of two sections, based on flags. The idea
3007 is to choose a section that will be in the same segment
3008 as S would have been if it was kept. */
3013 best
= bfd_abs_section_ptr
;
3015 else if (next
== NULL
)
3017 else if (((prev
->flags
^ next
->flags
)
3018 & (SEC_ALLOC
| SEC_THREAD_LOCAL
| SEC_LOAD
)) != 0)
3020 if (((next
->flags
^ s
->flags
)
3021 & (SEC_ALLOC
| SEC_THREAD_LOCAL
)) != 0
3022 /* We prefer to choose a loaded section. Section S
3023 doesn't have SEC_LOAD set (it being excluded, that
3024 part of the flag processing didn't happen) so we
3025 can't compare that flag to those of NEXT and PREV. */
3026 || ((prev
->flags
& SEC_LOAD
) != 0
3027 && (next
->flags
& SEC_LOAD
) == 0))
3030 else if (((prev
->flags
^ next
->flags
) & SEC_READONLY
) != 0)
3032 if (((next
->flags
^ s
->flags
) & SEC_READONLY
) != 0)
3035 else if (((prev
->flags
^ next
->flags
) & SEC_CODE
) != 0)
3037 if (((next
->flags
^ s
->flags
) & SEC_CODE
) != 0)
3042 /* Flags we care about are the same. Prefer the following
3043 section if that will result in a positive valued sym. */
3044 if (addr
< next
->vma
)
3051 /* Convert symbols in excluded output sections to use a kept section. */
3054 fix_syms (struct bfd_link_hash_entry
*h
, void *data
)
3056 bfd
*obfd
= (bfd
*) data
;
3058 if (h
->type
== bfd_link_hash_defined
3059 || h
->type
== bfd_link_hash_defweak
)
3061 asection
*s
= h
->u
.def
.section
;
3063 && s
->output_section
!= NULL
3064 && (s
->output_section
->flags
& SEC_EXCLUDE
) != 0
3065 && bfd_section_removed_from_list (obfd
, s
->output_section
))
3069 h
->u
.def
.value
+= s
->output_offset
+ s
->output_section
->vma
;
3070 op
= _bfd_nearby_section (obfd
, s
->output_section
, h
->u
.def
.value
);
3071 h
->u
.def
.value
-= op
->vma
;
3072 h
->u
.def
.section
= op
;
3080 _bfd_fix_excluded_sec_syms (bfd
*obfd
, struct bfd_link_info
*info
)
3082 bfd_link_hash_traverse (info
->hash
, fix_syms
, obfd
);
3087 bfd_generic_define_common_symbol
3090 bool bfd_generic_define_common_symbol
3091 (bfd *output_bfd, struct bfd_link_info *info,
3092 struct bfd_link_hash_entry *h);
3095 Convert common symbol @var{h} into a defined symbol.
3096 Return TRUE on success and FALSE on failure.
3098 .#define bfd_define_common_symbol(output_bfd, info, h) \
3099 . BFD_SEND (output_bfd, _bfd_define_common_symbol, (output_bfd, info, h))
3104 bfd_generic_define_common_symbol (bfd
*output_bfd
,
3105 struct bfd_link_info
*info ATTRIBUTE_UNUSED
,
3106 struct bfd_link_hash_entry
*h
)
3108 unsigned int power_of_two
;
3109 bfd_vma alignment
, size
;
3112 BFD_ASSERT (h
!= NULL
&& h
->type
== bfd_link_hash_common
);
3115 power_of_two
= h
->u
.c
.p
->alignment_power
;
3116 section
= h
->u
.c
.p
->section
;
3118 /* Increase the size of the section to align the common symbol.
3119 The alignment must be a power of two. But if the section does
3120 not have any alignment requirement then do not increase the
3121 alignment unnecessarily. */
3123 alignment
= bfd_octets_per_byte (output_bfd
, section
) << power_of_two
;
3126 BFD_ASSERT (alignment
!= 0 && (alignment
& -alignment
) == alignment
);
3127 section
->size
+= alignment
- 1;
3128 section
->size
&= -alignment
;
3130 /* Adjust the section's overall alignment if necessary. */
3131 if (power_of_two
> section
->alignment_power
)
3132 section
->alignment_power
= power_of_two
;
3134 /* Change the symbol from common to defined. */
3135 h
->type
= bfd_link_hash_defined
;
3136 h
->u
.def
.section
= section
;
3137 h
->u
.def
.value
= section
->size
;
3139 /* Increase the size of the section. */
3140 section
->size
+= size
;
3142 /* Make sure the section is allocated in memory, and make sure that
3143 it is no longer a common section. */
3144 section
->flags
|= SEC_ALLOC
;
3145 section
->flags
&= ~(SEC_IS_COMMON
| SEC_HAS_CONTENTS
);
3151 _bfd_generic_link_hide_symbol
3154 void _bfd_generic_link_hide_symbol
3155 (bfd *output_bfd, struct bfd_link_info *info,
3156 struct bfd_link_hash_entry *h);
3159 Hide symbol @var{h}.
3160 This is an internal function. It should not be called from
3161 outside the BFD library.
3163 .#define bfd_link_hide_symbol(output_bfd, info, h) \
3164 . BFD_SEND (output_bfd, _bfd_link_hide_symbol, (output_bfd, info, h))
3169 _bfd_generic_link_hide_symbol (bfd
*output_bfd ATTRIBUTE_UNUSED
,
3170 struct bfd_link_info
*info ATTRIBUTE_UNUSED
,
3171 struct bfd_link_hash_entry
*h ATTRIBUTE_UNUSED
)
3177 bfd_generic_define_start_stop
3180 struct bfd_link_hash_entry *bfd_generic_define_start_stop
3181 (struct bfd_link_info *info,
3182 const char *symbol, asection *sec);
3185 Define a __start, __stop, .startof. or .sizeof. symbol.
3186 Return the symbol or NULL if no such undefined symbol exists.
3188 .#define bfd_define_start_stop(output_bfd, info, symbol, sec) \
3189 . BFD_SEND (output_bfd, _bfd_define_start_stop, (info, symbol, sec))
3193 struct bfd_link_hash_entry
*
3194 bfd_generic_define_start_stop (struct bfd_link_info
*info
,
3195 const char *symbol
, asection
*sec
)
3197 struct bfd_link_hash_entry
*h
;
3199 h
= bfd_link_hash_lookup (info
->hash
, symbol
, false, false, true);
3202 && (h
->type
== bfd_link_hash_undefined
3203 || h
->type
== bfd_link_hash_undefweak
))
3205 h
->type
= bfd_link_hash_defined
;
3206 h
->u
.def
.section
= sec
;
3215 bfd_find_version_for_sym
3218 struct bfd_elf_version_tree * bfd_find_version_for_sym
3219 (struct bfd_elf_version_tree *verdefs,
3220 const char *sym_name, bool *hide);
3223 Search an elf version script tree for symbol versioning
3224 info and export / don't-export status for a given symbol.
3225 Return non-NULL on success and NULL on failure; also sets
3226 the output @samp{hide} boolean parameter.
3230 struct bfd_elf_version_tree
*
3231 bfd_find_version_for_sym (struct bfd_elf_version_tree
*verdefs
,
3232 const char *sym_name
,
3235 struct bfd_elf_version_tree
*t
;
3236 struct bfd_elf_version_tree
*local_ver
, *global_ver
, *exist_ver
;
3237 struct bfd_elf_version_tree
*star_local_ver
, *star_global_ver
;
3241 star_local_ver
= NULL
;
3242 star_global_ver
= NULL
;
3244 for (t
= verdefs
; t
!= NULL
; t
= t
->next
)
3246 if (t
->globals
.list
!= NULL
)
3248 struct bfd_elf_version_expr
*d
= NULL
;
3250 while ((d
= (*t
->match
) (&t
->globals
, d
, sym_name
)) != NULL
)
3252 if (d
->literal
|| strcmp (d
->pattern
, "*") != 0)
3255 star_global_ver
= t
;
3259 /* If the match is a wildcard pattern, keep looking for
3260 a more explicit, perhaps even local, match. */
3269 if (t
->locals
.list
!= NULL
)
3271 struct bfd_elf_version_expr
*d
= NULL
;
3273 while ((d
= (*t
->match
) (&t
->locals
, d
, sym_name
)) != NULL
)
3275 if (d
->literal
|| strcmp (d
->pattern
, "*") != 0)
3279 /* If the match is a wildcard pattern, keep looking for
3280 a more explicit, perhaps even global, match. */
3283 /* An exact match overrides a global wildcard. */
3285 star_global_ver
= NULL
;
3295 if (global_ver
== NULL
&& local_ver
== NULL
)
3296 global_ver
= star_global_ver
;
3298 if (global_ver
!= NULL
)
3300 /* If we already have a versioned symbol that matches the
3301 node for this symbol, then we don't want to create a
3302 duplicate from the unversioned symbol. Instead hide the
3303 unversioned symbol. */
3304 *hide
= exist_ver
== global_ver
;
3308 if (local_ver
== NULL
)
3309 local_ver
= star_local_ver
;
3311 if (local_ver
!= NULL
)
3322 bfd_hide_sym_by_version
3325 bool bfd_hide_sym_by_version
3326 (struct bfd_elf_version_tree *verdefs, const char *sym_name);
3329 Search an elf version script tree for symbol versioning
3330 info for a given symbol. Return TRUE if the symbol is hidden.
3335 bfd_hide_sym_by_version (struct bfd_elf_version_tree
*verdefs
,
3336 const char *sym_name
)
3338 bool hidden
= false;
3339 bfd_find_version_for_sym (verdefs
, sym_name
, &hidden
);
3345 bfd_link_check_relocs
3348 bool bfd_link_check_relocs
3349 (bfd *abfd, struct bfd_link_info *info);
3352 Checks the relocs in ABFD for validity.
3353 Does not execute the relocs.
3354 Return TRUE if everything is OK, FALSE otherwise.
3355 This is the external entry point to this code.
3359 bfd_link_check_relocs (bfd
*abfd
, struct bfd_link_info
*info
)
3361 return BFD_SEND (abfd
, _bfd_link_check_relocs
, (abfd
, info
));
3366 _bfd_generic_link_check_relocs
3369 bool _bfd_generic_link_check_relocs
3370 (bfd *abfd, struct bfd_link_info *info);
3373 Stub function for targets that do not implement reloc checking.
3375 This is an internal function. It should not be called from
3376 outside the BFD library.
3380 _bfd_generic_link_check_relocs (bfd
*abfd ATTRIBUTE_UNUSED
,
3381 struct bfd_link_info
*info ATTRIBUTE_UNUSED
)
3388 bfd_merge_private_bfd_data
3391 bool bfd_merge_private_bfd_data
3392 (bfd *ibfd, struct bfd_link_info *info);
3395 Merge private BFD information from the BFD @var{ibfd} to the
3396 the output file BFD when linking. Return <<TRUE>> on success,
3397 <<FALSE>> on error. Possible error returns are:
3399 o <<bfd_error_no_memory>> -
3400 Not enough memory exists to create private data for @var{obfd}.
3402 .#define bfd_merge_private_bfd_data(ibfd, info) \
3403 . BFD_SEND ((info)->output_bfd, _bfd_merge_private_bfd_data, \
3410 _bfd_generic_verify_endian_match
3413 bool _bfd_generic_verify_endian_match
3414 (bfd *ibfd, struct bfd_link_info *info);
3417 Can be used from / for bfd_merge_private_bfd_data to check that
3418 endianness matches between input and output file. Returns
3419 TRUE for a match, otherwise returns FALSE and emits an error.
3423 _bfd_generic_verify_endian_match (bfd
*ibfd
, struct bfd_link_info
*info
)
3425 bfd
*obfd
= info
->output_bfd
;
3427 if (ibfd
->xvec
->byteorder
!= obfd
->xvec
->byteorder
3428 && ibfd
->xvec
->byteorder
!= BFD_ENDIAN_UNKNOWN
3429 && obfd
->xvec
->byteorder
!= BFD_ENDIAN_UNKNOWN
)
3431 if (bfd_big_endian (ibfd
))
3432 _bfd_error_handler (_("%pB: compiled for a big endian system "
3433 "and target is little endian"), ibfd
);
3435 _bfd_error_handler (_("%pB: compiled for a little endian system "
3436 "and target is big endian"), ibfd
);
3437 bfd_set_error (bfd_error_wrong_format
);
3445 _bfd_nolink_sizeof_headers (bfd
*abfd ATTRIBUTE_UNUSED
,
3446 struct bfd_link_info
*info ATTRIBUTE_UNUSED
)
3452 _bfd_nolink_bfd_relax_section (bfd
*abfd
,
3453 asection
*section ATTRIBUTE_UNUSED
,
3454 struct bfd_link_info
*link_info ATTRIBUTE_UNUSED
,
3455 bool *again ATTRIBUTE_UNUSED
)
3457 return _bfd_bool_bfd_false_error (abfd
);
3461 _bfd_nolink_bfd_get_relocated_section_contents
3463 struct bfd_link_info
*link_info ATTRIBUTE_UNUSED
,
3464 struct bfd_link_order
*link_order ATTRIBUTE_UNUSED
,
3465 bfd_byte
*data ATTRIBUTE_UNUSED
,
3466 bool relocatable ATTRIBUTE_UNUSED
,
3467 asymbol
**symbols ATTRIBUTE_UNUSED
)
3469 return (bfd_byte
*) _bfd_ptr_bfd_null_error (abfd
);
3473 _bfd_nolink_bfd_lookup_section_flags
3474 (struct bfd_link_info
*info ATTRIBUTE_UNUSED
,
3475 struct flag_info
*flaginfo ATTRIBUTE_UNUSED
,
3478 return _bfd_bool_bfd_false_error (section
->owner
);
3482 _bfd_nolink_bfd_is_group_section (bfd
*abfd
,
3483 const asection
*sec ATTRIBUTE_UNUSED
)
3485 return _bfd_bool_bfd_false_error (abfd
);
3489 _bfd_nolink_bfd_group_name (bfd
*abfd
,
3490 const asection
*sec ATTRIBUTE_UNUSED
)
3492 return _bfd_ptr_bfd_null_error (abfd
);
3496 _bfd_nolink_bfd_discard_group (bfd
*abfd
, asection
*sec ATTRIBUTE_UNUSED
)
3498 return _bfd_bool_bfd_false_error (abfd
);
3501 struct bfd_link_hash_table
*
3502 _bfd_nolink_bfd_link_hash_table_create (bfd
*abfd
)
3504 return (struct bfd_link_hash_table
*) _bfd_ptr_bfd_null_error (abfd
);
3508 _bfd_nolink_bfd_link_just_syms (asection
*sec ATTRIBUTE_UNUSED
,
3509 struct bfd_link_info
*info ATTRIBUTE_UNUSED
)
3514 _bfd_nolink_bfd_copy_link_hash_symbol_type
3515 (bfd
*abfd ATTRIBUTE_UNUSED
,
3516 struct bfd_link_hash_entry
*from ATTRIBUTE_UNUSED
,
3517 struct bfd_link_hash_entry
*to ATTRIBUTE_UNUSED
)
3522 _bfd_nolink_bfd_link_split_section (bfd
*abfd
, asection
*sec ATTRIBUTE_UNUSED
)
3524 return _bfd_bool_bfd_false_error (abfd
);
3528 _bfd_nolink_section_already_linked (bfd
*abfd
,
3529 asection
*sec ATTRIBUTE_UNUSED
,
3530 struct bfd_link_info
*info ATTRIBUTE_UNUSED
)
3532 return _bfd_bool_bfd_false_error (abfd
);
3536 _bfd_nolink_bfd_define_common_symbol
3538 struct bfd_link_info
*info ATTRIBUTE_UNUSED
,
3539 struct bfd_link_hash_entry
*h ATTRIBUTE_UNUSED
)
3541 return _bfd_bool_bfd_false_error (abfd
);
3544 struct bfd_link_hash_entry
*
3545 _bfd_nolink_bfd_define_start_stop (struct bfd_link_info
*info ATTRIBUTE_UNUSED
,
3546 const char *name ATTRIBUTE_UNUSED
,
3549 return (struct bfd_link_hash_entry
*) _bfd_ptr_bfd_null_error (sec
->owner
);
3552 /* Return false if linker should avoid caching relocation infomation
3553 and symbol tables of input files in memory. */
3556 _bfd_link_keep_memory (struct bfd_link_info
* info
)
3561 if (!info
->keep_memory
)
3564 if (info
->max_cache_size
== (bfd_size_type
) -1)
3567 abfd
= info
->input_bfds
;
3568 size
= info
->cache_size
;
3571 if (size
>= info
->max_cache_size
)
3573 /* Over the limit. Reduce the memory usage. */
3574 info
->keep_memory
= false;
3579 size
+= abfd
->alloc_size
;
3580 abfd
= abfd
->link
.next
;