* ldcref.c (cref_fill_array): Call bfd_demangle rather than demangle.
[deliverable/binutils-gdb.git] / ld / ldlang.c
1 /* Linker command language support.
2 Copyright 1991, 1992, 1993, 1994, 1995, 1996, 1997, 1998, 1999, 2000,
3 2001, 2002, 2003, 2004, 2005, 2006, 2007
4 Free Software Foundation, Inc.
5
6 This file is part of GLD, the Gnu Linker.
7
8 GLD is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 2, or (at your option)
11 any later version.
12
13 GLD is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
17
18 You should have received a copy of the GNU General Public License
19 along with GLD; see the file COPYING. If not, write to the Free
20 Software Foundation, 51 Franklin Street - Fifth Floor, Boston, MA
21 02110-1301, USA. */
22
23 #include "bfd.h"
24 #include "sysdep.h"
25 #include "libiberty.h"
26 #include "safe-ctype.h"
27 #include "obstack.h"
28 #include "bfdlink.h"
29
30 #include "ld.h"
31 #include "ldmain.h"
32 #include "ldexp.h"
33 #include "ldlang.h"
34 #include <ldgram.h>
35 #include "ldlex.h"
36 #include "ldmisc.h"
37 #include "ldctor.h"
38 #include "ldfile.h"
39 #include "ldemul.h"
40 #include "fnmatch.h"
41 #include "demangle.h"
42 #include "hashtab.h"
43
44 #ifndef offsetof
45 #define offsetof(TYPE, MEMBER) ((size_t) & (((TYPE*) 0)->MEMBER))
46 #endif
47
48 /* Locals variables. */
49 static struct obstack stat_obstack;
50 static struct obstack map_obstack;
51
52 #define obstack_chunk_alloc xmalloc
53 #define obstack_chunk_free free
54 static const char *startup_file;
55 static bfd_boolean placed_commons = FALSE;
56 static bfd_boolean stripped_excluded_sections = FALSE;
57 static lang_output_section_statement_type *default_common_section;
58 static bfd_boolean map_option_f;
59 static bfd_vma print_dot;
60 static lang_input_statement_type *first_file;
61 static const char *current_target;
62 static const char *output_target;
63 static lang_statement_list_type statement_list;
64 static struct bfd_hash_table lang_definedness_table;
65
66 /* Forward declarations. */
67 static void exp_init_os (etree_type *);
68 static void init_map_userdata (bfd *, asection *, void *);
69 static lang_input_statement_type *lookup_name (const char *);
70 static struct bfd_hash_entry *lang_definedness_newfunc
71 (struct bfd_hash_entry *, struct bfd_hash_table *, const char *);
72 static void insert_undefined (const char *);
73 static bfd_boolean sort_def_symbol (struct bfd_link_hash_entry *, void *);
74 static void print_statement (lang_statement_union_type *,
75 lang_output_section_statement_type *);
76 static void print_statement_list (lang_statement_union_type *,
77 lang_output_section_statement_type *);
78 static void print_statements (void);
79 static void print_input_section (asection *);
80 static bfd_boolean lang_one_common (struct bfd_link_hash_entry *, void *);
81 static void lang_record_phdrs (void);
82 static void lang_do_version_exports_section (void);
83 static void lang_finalize_version_expr_head
84 (struct bfd_elf_version_expr_head *);
85
86 /* Exported variables. */
87 lang_output_section_statement_type *abs_output_section;
88 lang_statement_list_type lang_output_section_statement;
89 lang_statement_list_type *stat_ptr = &statement_list;
90 lang_statement_list_type file_chain = { NULL, NULL };
91 lang_statement_list_type input_file_chain;
92 struct bfd_sym_chain entry_symbol = { NULL, NULL };
93 static const char *entry_symbol_default = "start";
94 const char *entry_section = ".text";
95 bfd_boolean entry_from_cmdline;
96 bfd_boolean lang_has_input_file = FALSE;
97 bfd_boolean had_output_filename = FALSE;
98 bfd_boolean lang_float_flag = FALSE;
99 bfd_boolean delete_output_file_on_failure = FALSE;
100 struct lang_phdr *lang_phdr_list;
101 struct lang_nocrossrefs *nocrossref_list;
102 static struct unique_sections *unique_section_list;
103 static bfd_boolean ldlang_sysrooted_script = FALSE;
104
105 /* Functions that traverse the linker script and might evaluate
106 DEFINED() need to increment this. */
107 int lang_statement_iteration = 0;
108
109 etree_type *base; /* Relocation base - or null */
110
111 /* Return TRUE if the PATTERN argument is a wildcard pattern.
112 Although backslashes are treated specially if a pattern contains
113 wildcards, we do not consider the mere presence of a backslash to
114 be enough to cause the pattern to be treated as a wildcard.
115 That lets us handle DOS filenames more naturally. */
116 #define wildcardp(pattern) (strpbrk ((pattern), "?*[") != NULL)
117
118 #define new_stat(x, y) \
119 (x##_type *) new_statement (x##_enum, sizeof (x##_type), y)
120
121 #define outside_section_address(q) \
122 ((q)->output_offset + (q)->output_section->vma)
123
124 #define outside_symbol_address(q) \
125 ((q)->value + outside_section_address (q->section))
126
127 #define SECTION_NAME_MAP_LENGTH (16)
128
129 void *
130 stat_alloc (size_t size)
131 {
132 return obstack_alloc (&stat_obstack, size);
133 }
134
135 bfd_boolean
136 unique_section_p (const asection *sec)
137 {
138 struct unique_sections *unam;
139 const char *secnam;
140
141 if (link_info.relocatable
142 && sec->owner != NULL
143 && bfd_is_group_section (sec->owner, sec))
144 return TRUE;
145
146 secnam = sec->name;
147 for (unam = unique_section_list; unam; unam = unam->next)
148 if (wildcardp (unam->name)
149 ? fnmatch (unam->name, secnam, 0) == 0
150 : strcmp (unam->name, secnam) == 0)
151 {
152 return TRUE;
153 }
154
155 return FALSE;
156 }
157
158 /* Generic traversal routines for finding matching sections. */
159
160 /* Try processing a section against a wildcard. This just calls
161 the callback unless the filename exclusion list is present
162 and excludes the file. It's hardly ever present so this
163 function is very fast. */
164
165 static void
166 walk_wild_consider_section (lang_wild_statement_type *ptr,
167 lang_input_statement_type *file,
168 asection *s,
169 struct wildcard_list *sec,
170 callback_t callback,
171 void *data)
172 {
173 bfd_boolean skip = FALSE;
174 struct name_list *list_tmp;
175
176 /* Don't process sections from files which were
177 excluded. */
178 for (list_tmp = sec->spec.exclude_name_list;
179 list_tmp;
180 list_tmp = list_tmp->next)
181 {
182 bfd_boolean is_wildcard = wildcardp (list_tmp->name);
183 if (is_wildcard)
184 skip = fnmatch (list_tmp->name, file->filename, 0) == 0;
185 else
186 skip = strcmp (list_tmp->name, file->filename) == 0;
187
188 /* If this file is part of an archive, and the archive is
189 excluded, exclude this file. */
190 if (! skip && file->the_bfd != NULL
191 && file->the_bfd->my_archive != NULL
192 && file->the_bfd->my_archive->filename != NULL)
193 {
194 if (is_wildcard)
195 skip = fnmatch (list_tmp->name,
196 file->the_bfd->my_archive->filename,
197 0) == 0;
198 else
199 skip = strcmp (list_tmp->name,
200 file->the_bfd->my_archive->filename) == 0;
201 }
202
203 if (skip)
204 break;
205 }
206
207 if (!skip)
208 (*callback) (ptr, sec, s, file, data);
209 }
210
211 /* Lowest common denominator routine that can handle everything correctly,
212 but slowly. */
213
214 static void
215 walk_wild_section_general (lang_wild_statement_type *ptr,
216 lang_input_statement_type *file,
217 callback_t callback,
218 void *data)
219 {
220 asection *s;
221 struct wildcard_list *sec;
222
223 for (s = file->the_bfd->sections; s != NULL; s = s->next)
224 {
225 sec = ptr->section_list;
226 if (sec == NULL)
227 (*callback) (ptr, sec, s, file, data);
228
229 while (sec != NULL)
230 {
231 bfd_boolean skip = FALSE;
232
233 if (sec->spec.name != NULL)
234 {
235 const char *sname = bfd_get_section_name (file->the_bfd, s);
236
237 if (wildcardp (sec->spec.name))
238 skip = fnmatch (sec->spec.name, sname, 0) != 0;
239 else
240 skip = strcmp (sec->spec.name, sname) != 0;
241 }
242
243 if (!skip)
244 walk_wild_consider_section (ptr, file, s, sec, callback, data);
245
246 sec = sec->next;
247 }
248 }
249 }
250
251 /* Routines to find a single section given its name. If there's more
252 than one section with that name, we report that. */
253
254 typedef struct
255 {
256 asection *found_section;
257 bfd_boolean multiple_sections_found;
258 } section_iterator_callback_data;
259
260 static bfd_boolean
261 section_iterator_callback (bfd *bfd ATTRIBUTE_UNUSED, asection *s, void *data)
262 {
263 section_iterator_callback_data *d = data;
264
265 if (d->found_section != NULL)
266 {
267 d->multiple_sections_found = TRUE;
268 return TRUE;
269 }
270
271 d->found_section = s;
272 return FALSE;
273 }
274
275 static asection *
276 find_section (lang_input_statement_type *file,
277 struct wildcard_list *sec,
278 bfd_boolean *multiple_sections_found)
279 {
280 section_iterator_callback_data cb_data = { NULL, FALSE };
281
282 bfd_get_section_by_name_if (file->the_bfd, sec->spec.name,
283 section_iterator_callback, &cb_data);
284 *multiple_sections_found = cb_data.multiple_sections_found;
285 return cb_data.found_section;
286 }
287
288 /* Code for handling simple wildcards without going through fnmatch,
289 which can be expensive because of charset translations etc. */
290
291 /* A simple wild is a literal string followed by a single '*',
292 where the literal part is at least 4 characters long. */
293
294 static bfd_boolean
295 is_simple_wild (const char *name)
296 {
297 size_t len = strcspn (name, "*?[");
298 return len >= 4 && name[len] == '*' && name[len + 1] == '\0';
299 }
300
301 static bfd_boolean
302 match_simple_wild (const char *pattern, const char *name)
303 {
304 /* The first four characters of the pattern are guaranteed valid
305 non-wildcard characters. So we can go faster. */
306 if (pattern[0] != name[0] || pattern[1] != name[1]
307 || pattern[2] != name[2] || pattern[3] != name[3])
308 return FALSE;
309
310 pattern += 4;
311 name += 4;
312 while (*pattern != '*')
313 if (*name++ != *pattern++)
314 return FALSE;
315
316 return TRUE;
317 }
318
319 /* Compare sections ASEC and BSEC according to SORT. */
320
321 static int
322 compare_section (sort_type sort, asection *asec, asection *bsec)
323 {
324 int ret;
325
326 switch (sort)
327 {
328 default:
329 abort ();
330
331 case by_alignment_name:
332 ret = (bfd_section_alignment (bsec->owner, bsec)
333 - bfd_section_alignment (asec->owner, asec));
334 if (ret)
335 break;
336 /* Fall through. */
337
338 case by_name:
339 ret = strcmp (bfd_get_section_name (asec->owner, asec),
340 bfd_get_section_name (bsec->owner, bsec));
341 break;
342
343 case by_name_alignment:
344 ret = strcmp (bfd_get_section_name (asec->owner, asec),
345 bfd_get_section_name (bsec->owner, bsec));
346 if (ret)
347 break;
348 /* Fall through. */
349
350 case by_alignment:
351 ret = (bfd_section_alignment (bsec->owner, bsec)
352 - bfd_section_alignment (asec->owner, asec));
353 break;
354 }
355
356 return ret;
357 }
358
359 /* Build a Binary Search Tree to sort sections, unlike insertion sort
360 used in wild_sort(). BST is considerably faster if the number of
361 of sections are large. */
362
363 static lang_section_bst_type **
364 wild_sort_fast (lang_wild_statement_type *wild,
365 struct wildcard_list *sec,
366 lang_input_statement_type *file ATTRIBUTE_UNUSED,
367 asection *section)
368 {
369 lang_section_bst_type **tree;
370
371 tree = &wild->tree;
372 if (!wild->filenames_sorted
373 && (sec == NULL || sec->spec.sorted == none))
374 {
375 /* Append at the right end of tree. */
376 while (*tree)
377 tree = &((*tree)->right);
378 return tree;
379 }
380
381 while (*tree)
382 {
383 /* Find the correct node to append this section. */
384 if (compare_section (sec->spec.sorted, section, (*tree)->section) < 0)
385 tree = &((*tree)->left);
386 else
387 tree = &((*tree)->right);
388 }
389
390 return tree;
391 }
392
393 /* Use wild_sort_fast to build a BST to sort sections. */
394
395 static void
396 output_section_callback_fast (lang_wild_statement_type *ptr,
397 struct wildcard_list *sec,
398 asection *section,
399 lang_input_statement_type *file,
400 void *output ATTRIBUTE_UNUSED)
401 {
402 lang_section_bst_type *node;
403 lang_section_bst_type **tree;
404
405 if (unique_section_p (section))
406 return;
407
408 node = xmalloc (sizeof (lang_section_bst_type));
409 node->left = 0;
410 node->right = 0;
411 node->section = section;
412
413 tree = wild_sort_fast (ptr, sec, file, section);
414 if (tree != NULL)
415 *tree = node;
416 }
417
418 /* Convert a sorted sections' BST back to list form. */
419
420 static void
421 output_section_callback_tree_to_list (lang_wild_statement_type *ptr,
422 lang_section_bst_type *tree,
423 void *output)
424 {
425 if (tree->left)
426 output_section_callback_tree_to_list (ptr, tree->left, output);
427
428 lang_add_section (&ptr->children, tree->section,
429 (lang_output_section_statement_type *) output);
430
431 if (tree->right)
432 output_section_callback_tree_to_list (ptr, tree->right, output);
433
434 free (tree);
435 }
436
437 /* Specialized, optimized routines for handling different kinds of
438 wildcards */
439
440 static void
441 walk_wild_section_specs1_wild0 (lang_wild_statement_type *ptr,
442 lang_input_statement_type *file,
443 callback_t callback,
444 void *data)
445 {
446 /* We can just do a hash lookup for the section with the right name.
447 But if that lookup discovers more than one section with the name
448 (should be rare), we fall back to the general algorithm because
449 we would otherwise have to sort the sections to make sure they
450 get processed in the bfd's order. */
451 bfd_boolean multiple_sections_found;
452 struct wildcard_list *sec0 = ptr->handler_data[0];
453 asection *s0 = find_section (file, sec0, &multiple_sections_found);
454
455 if (multiple_sections_found)
456 walk_wild_section_general (ptr, file, callback, data);
457 else if (s0)
458 walk_wild_consider_section (ptr, file, s0, sec0, callback, data);
459 }
460
461 static void
462 walk_wild_section_specs1_wild1 (lang_wild_statement_type *ptr,
463 lang_input_statement_type *file,
464 callback_t callback,
465 void *data)
466 {
467 asection *s;
468 struct wildcard_list *wildsec0 = ptr->handler_data[0];
469
470 for (s = file->the_bfd->sections; s != NULL; s = s->next)
471 {
472 const char *sname = bfd_get_section_name (file->the_bfd, s);
473 bfd_boolean skip = !match_simple_wild (wildsec0->spec.name, sname);
474
475 if (!skip)
476 walk_wild_consider_section (ptr, file, s, wildsec0, callback, data);
477 }
478 }
479
480 static void
481 walk_wild_section_specs2_wild1 (lang_wild_statement_type *ptr,
482 lang_input_statement_type *file,
483 callback_t callback,
484 void *data)
485 {
486 asection *s;
487 struct wildcard_list *sec0 = ptr->handler_data[0];
488 struct wildcard_list *wildsec1 = ptr->handler_data[1];
489 bfd_boolean multiple_sections_found;
490 asection *s0 = find_section (file, sec0, &multiple_sections_found);
491
492 if (multiple_sections_found)
493 {
494 walk_wild_section_general (ptr, file, callback, data);
495 return;
496 }
497
498 /* Note that if the section was not found, s0 is NULL and
499 we'll simply never succeed the s == s0 test below. */
500 for (s = file->the_bfd->sections; s != NULL; s = s->next)
501 {
502 /* Recall that in this code path, a section cannot satisfy more
503 than one spec, so if s == s0 then it cannot match
504 wildspec1. */
505 if (s == s0)
506 walk_wild_consider_section (ptr, file, s, sec0, callback, data);
507 else
508 {
509 const char *sname = bfd_get_section_name (file->the_bfd, s);
510 bfd_boolean skip = !match_simple_wild (wildsec1->spec.name, sname);
511
512 if (!skip)
513 walk_wild_consider_section (ptr, file, s, wildsec1, callback,
514 data);
515 }
516 }
517 }
518
519 static void
520 walk_wild_section_specs3_wild2 (lang_wild_statement_type *ptr,
521 lang_input_statement_type *file,
522 callback_t callback,
523 void *data)
524 {
525 asection *s;
526 struct wildcard_list *sec0 = ptr->handler_data[0];
527 struct wildcard_list *wildsec1 = ptr->handler_data[1];
528 struct wildcard_list *wildsec2 = ptr->handler_data[2];
529 bfd_boolean multiple_sections_found;
530 asection *s0 = find_section (file, sec0, &multiple_sections_found);
531
532 if (multiple_sections_found)
533 {
534 walk_wild_section_general (ptr, file, callback, data);
535 return;
536 }
537
538 for (s = file->the_bfd->sections; s != NULL; s = s->next)
539 {
540 if (s == s0)
541 walk_wild_consider_section (ptr, file, s, sec0, callback, data);
542 else
543 {
544 const char *sname = bfd_get_section_name (file->the_bfd, s);
545 bfd_boolean skip = !match_simple_wild (wildsec1->spec.name, sname);
546
547 if (!skip)
548 walk_wild_consider_section (ptr, file, s, wildsec1, callback, data);
549 else
550 {
551 skip = !match_simple_wild (wildsec2->spec.name, sname);
552 if (!skip)
553 walk_wild_consider_section (ptr, file, s, wildsec2, callback,
554 data);
555 }
556 }
557 }
558 }
559
560 static void
561 walk_wild_section_specs4_wild2 (lang_wild_statement_type *ptr,
562 lang_input_statement_type *file,
563 callback_t callback,
564 void *data)
565 {
566 asection *s;
567 struct wildcard_list *sec0 = ptr->handler_data[0];
568 struct wildcard_list *sec1 = ptr->handler_data[1];
569 struct wildcard_list *wildsec2 = ptr->handler_data[2];
570 struct wildcard_list *wildsec3 = ptr->handler_data[3];
571 bfd_boolean multiple_sections_found;
572 asection *s0 = find_section (file, sec0, &multiple_sections_found), *s1;
573
574 if (multiple_sections_found)
575 {
576 walk_wild_section_general (ptr, file, callback, data);
577 return;
578 }
579
580 s1 = find_section (file, sec1, &multiple_sections_found);
581 if (multiple_sections_found)
582 {
583 walk_wild_section_general (ptr, file, callback, data);
584 return;
585 }
586
587 for (s = file->the_bfd->sections; s != NULL; s = s->next)
588 {
589 if (s == s0)
590 walk_wild_consider_section (ptr, file, s, sec0, callback, data);
591 else
592 if (s == s1)
593 walk_wild_consider_section (ptr, file, s, sec1, callback, data);
594 else
595 {
596 const char *sname = bfd_get_section_name (file->the_bfd, s);
597 bfd_boolean skip = !match_simple_wild (wildsec2->spec.name,
598 sname);
599
600 if (!skip)
601 walk_wild_consider_section (ptr, file, s, wildsec2, callback,
602 data);
603 else
604 {
605 skip = !match_simple_wild (wildsec3->spec.name, sname);
606 if (!skip)
607 walk_wild_consider_section (ptr, file, s, wildsec3,
608 callback, data);
609 }
610 }
611 }
612 }
613
614 static void
615 walk_wild_section (lang_wild_statement_type *ptr,
616 lang_input_statement_type *file,
617 callback_t callback,
618 void *data)
619 {
620 if (file->just_syms_flag)
621 return;
622
623 (*ptr->walk_wild_section_handler) (ptr, file, callback, data);
624 }
625
626 /* Returns TRUE when name1 is a wildcard spec that might match
627 something name2 can match. We're conservative: we return FALSE
628 only if the prefixes of name1 and name2 are different up to the
629 first wildcard character. */
630
631 static bfd_boolean
632 wild_spec_can_overlap (const char *name1, const char *name2)
633 {
634 size_t prefix1_len = strcspn (name1, "?*[");
635 size_t prefix2_len = strcspn (name2, "?*[");
636 size_t min_prefix_len;
637
638 /* Note that if there is no wildcard character, then we treat the
639 terminating 0 as part of the prefix. Thus ".text" won't match
640 ".text." or ".text.*", for example. */
641 if (name1[prefix1_len] == '\0')
642 prefix1_len++;
643 if (name2[prefix2_len] == '\0')
644 prefix2_len++;
645
646 min_prefix_len = prefix1_len < prefix2_len ? prefix1_len : prefix2_len;
647
648 return memcmp (name1, name2, min_prefix_len) == 0;
649 }
650
651 /* Select specialized code to handle various kinds of wildcard
652 statements. */
653
654 static void
655 analyze_walk_wild_section_handler (lang_wild_statement_type *ptr)
656 {
657 int sec_count = 0;
658 int wild_name_count = 0;
659 struct wildcard_list *sec;
660 int signature;
661 int data_counter;
662
663 ptr->walk_wild_section_handler = walk_wild_section_general;
664 ptr->handler_data[0] = NULL;
665 ptr->handler_data[1] = NULL;
666 ptr->handler_data[2] = NULL;
667 ptr->handler_data[3] = NULL;
668 ptr->tree = NULL;
669
670 /* Count how many wildcard_specs there are, and how many of those
671 actually use wildcards in the name. Also, bail out if any of the
672 wildcard names are NULL. (Can this actually happen?
673 walk_wild_section used to test for it.) And bail out if any
674 of the wildcards are more complex than a simple string
675 ending in a single '*'. */
676 for (sec = ptr->section_list; sec != NULL; sec = sec->next)
677 {
678 ++sec_count;
679 if (sec->spec.name == NULL)
680 return;
681 if (wildcardp (sec->spec.name))
682 {
683 ++wild_name_count;
684 if (!is_simple_wild (sec->spec.name))
685 return;
686 }
687 }
688
689 /* The zero-spec case would be easy to optimize but it doesn't
690 happen in practice. Likewise, more than 4 specs doesn't
691 happen in practice. */
692 if (sec_count == 0 || sec_count > 4)
693 return;
694
695 /* Check that no two specs can match the same section. */
696 for (sec = ptr->section_list; sec != NULL; sec = sec->next)
697 {
698 struct wildcard_list *sec2;
699 for (sec2 = sec->next; sec2 != NULL; sec2 = sec2->next)
700 {
701 if (wild_spec_can_overlap (sec->spec.name, sec2->spec.name))
702 return;
703 }
704 }
705
706 signature = (sec_count << 8) + wild_name_count;
707 switch (signature)
708 {
709 case 0x0100:
710 ptr->walk_wild_section_handler = walk_wild_section_specs1_wild0;
711 break;
712 case 0x0101:
713 ptr->walk_wild_section_handler = walk_wild_section_specs1_wild1;
714 break;
715 case 0x0201:
716 ptr->walk_wild_section_handler = walk_wild_section_specs2_wild1;
717 break;
718 case 0x0302:
719 ptr->walk_wild_section_handler = walk_wild_section_specs3_wild2;
720 break;
721 case 0x0402:
722 ptr->walk_wild_section_handler = walk_wild_section_specs4_wild2;
723 break;
724 default:
725 return;
726 }
727
728 /* Now fill the data array with pointers to the specs, first the
729 specs with non-wildcard names, then the specs with wildcard
730 names. It's OK to process the specs in different order from the
731 given order, because we've already determined that no section
732 will match more than one spec. */
733 data_counter = 0;
734 for (sec = ptr->section_list; sec != NULL; sec = sec->next)
735 if (!wildcardp (sec->spec.name))
736 ptr->handler_data[data_counter++] = sec;
737 for (sec = ptr->section_list; sec != NULL; sec = sec->next)
738 if (wildcardp (sec->spec.name))
739 ptr->handler_data[data_counter++] = sec;
740 }
741
742 /* Handle a wild statement for a single file F. */
743
744 static void
745 walk_wild_file (lang_wild_statement_type *s,
746 lang_input_statement_type *f,
747 callback_t callback,
748 void *data)
749 {
750 if (f->the_bfd == NULL
751 || ! bfd_check_format (f->the_bfd, bfd_archive))
752 walk_wild_section (s, f, callback, data);
753 else
754 {
755 bfd *member;
756
757 /* This is an archive file. We must map each member of the
758 archive separately. */
759 member = bfd_openr_next_archived_file (f->the_bfd, NULL);
760 while (member != NULL)
761 {
762 /* When lookup_name is called, it will call the add_symbols
763 entry point for the archive. For each element of the
764 archive which is included, BFD will call ldlang_add_file,
765 which will set the usrdata field of the member to the
766 lang_input_statement. */
767 if (member->usrdata != NULL)
768 {
769 walk_wild_section (s, member->usrdata, callback, data);
770 }
771
772 member = bfd_openr_next_archived_file (f->the_bfd, member);
773 }
774 }
775 }
776
777 static void
778 walk_wild (lang_wild_statement_type *s, callback_t callback, void *data)
779 {
780 const char *file_spec = s->filename;
781
782 if (file_spec == NULL)
783 {
784 /* Perform the iteration over all files in the list. */
785 LANG_FOR_EACH_INPUT_STATEMENT (f)
786 {
787 walk_wild_file (s, f, callback, data);
788 }
789 }
790 else if (wildcardp (file_spec))
791 {
792 LANG_FOR_EACH_INPUT_STATEMENT (f)
793 {
794 if (fnmatch (file_spec, f->filename, 0) == 0)
795 walk_wild_file (s, f, callback, data);
796 }
797 }
798 else
799 {
800 lang_input_statement_type *f;
801
802 /* Perform the iteration over a single file. */
803 f = lookup_name (file_spec);
804 if (f)
805 walk_wild_file (s, f, callback, data);
806 }
807 }
808
809 /* lang_for_each_statement walks the parse tree and calls the provided
810 function for each node. */
811
812 static void
813 lang_for_each_statement_worker (void (*func) (lang_statement_union_type *),
814 lang_statement_union_type *s)
815 {
816 for (; s != NULL; s = s->header.next)
817 {
818 func (s);
819
820 switch (s->header.type)
821 {
822 case lang_constructors_statement_enum:
823 lang_for_each_statement_worker (func, constructor_list.head);
824 break;
825 case lang_output_section_statement_enum:
826 lang_for_each_statement_worker
827 (func, s->output_section_statement.children.head);
828 break;
829 case lang_wild_statement_enum:
830 lang_for_each_statement_worker (func,
831 s->wild_statement.children.head);
832 break;
833 case lang_group_statement_enum:
834 lang_for_each_statement_worker (func,
835 s->group_statement.children.head);
836 break;
837 case lang_data_statement_enum:
838 case lang_reloc_statement_enum:
839 case lang_object_symbols_statement_enum:
840 case lang_output_statement_enum:
841 case lang_target_statement_enum:
842 case lang_input_section_enum:
843 case lang_input_statement_enum:
844 case lang_assignment_statement_enum:
845 case lang_padding_statement_enum:
846 case lang_address_statement_enum:
847 case lang_fill_statement_enum:
848 break;
849 default:
850 FAIL ();
851 break;
852 }
853 }
854 }
855
856 void
857 lang_for_each_statement (void (*func) (lang_statement_union_type *))
858 {
859 lang_for_each_statement_worker (func, statement_list.head);
860 }
861
862 /*----------------------------------------------------------------------*/
863
864 void
865 lang_list_init (lang_statement_list_type *list)
866 {
867 list->head = NULL;
868 list->tail = &list->head;
869 }
870
871 /* Build a new statement node for the parse tree. */
872
873 static lang_statement_union_type *
874 new_statement (enum statement_enum type,
875 size_t size,
876 lang_statement_list_type *list)
877 {
878 lang_statement_union_type *new;
879
880 new = stat_alloc (size);
881 new->header.type = type;
882 new->header.next = NULL;
883 lang_statement_append (list, new, &new->header.next);
884 return new;
885 }
886
887 /* Build a new input file node for the language. There are several
888 ways in which we treat an input file, eg, we only look at symbols,
889 or prefix it with a -l etc.
890
891 We can be supplied with requests for input files more than once;
892 they may, for example be split over several lines like foo.o(.text)
893 foo.o(.data) etc, so when asked for a file we check that we haven't
894 got it already so we don't duplicate the bfd. */
895
896 static lang_input_statement_type *
897 new_afile (const char *name,
898 lang_input_file_enum_type file_type,
899 const char *target,
900 bfd_boolean add_to_list)
901 {
902 lang_input_statement_type *p;
903
904 if (add_to_list)
905 p = new_stat (lang_input_statement, stat_ptr);
906 else
907 {
908 p = stat_alloc (sizeof (lang_input_statement_type));
909 p->header.type = lang_input_statement_enum;
910 p->header.next = NULL;
911 }
912
913 lang_has_input_file = TRUE;
914 p->target = target;
915 p->sysrooted = FALSE;
916
917 if (file_type == lang_input_file_is_l_enum
918 && name[0] == ':' && name[1] != '\0')
919 {
920 file_type = lang_input_file_is_search_file_enum;
921 name = name + 1;
922 }
923
924 switch (file_type)
925 {
926 case lang_input_file_is_symbols_only_enum:
927 p->filename = name;
928 p->is_archive = FALSE;
929 p->real = TRUE;
930 p->local_sym_name = name;
931 p->just_syms_flag = TRUE;
932 p->search_dirs_flag = FALSE;
933 break;
934 case lang_input_file_is_fake_enum:
935 p->filename = name;
936 p->is_archive = FALSE;
937 p->real = FALSE;
938 p->local_sym_name = name;
939 p->just_syms_flag = FALSE;
940 p->search_dirs_flag = FALSE;
941 break;
942 case lang_input_file_is_l_enum:
943 p->is_archive = TRUE;
944 p->filename = name;
945 p->real = TRUE;
946 p->local_sym_name = concat ("-l", name, NULL);
947 p->just_syms_flag = FALSE;
948 p->search_dirs_flag = TRUE;
949 break;
950 case lang_input_file_is_marker_enum:
951 p->filename = name;
952 p->is_archive = FALSE;
953 p->real = FALSE;
954 p->local_sym_name = name;
955 p->just_syms_flag = FALSE;
956 p->search_dirs_flag = TRUE;
957 break;
958 case lang_input_file_is_search_file_enum:
959 p->sysrooted = ldlang_sysrooted_script;
960 p->filename = name;
961 p->is_archive = FALSE;
962 p->real = TRUE;
963 p->local_sym_name = name;
964 p->just_syms_flag = FALSE;
965 p->search_dirs_flag = TRUE;
966 break;
967 case lang_input_file_is_file_enum:
968 p->filename = name;
969 p->is_archive = FALSE;
970 p->real = TRUE;
971 p->local_sym_name = name;
972 p->just_syms_flag = FALSE;
973 p->search_dirs_flag = FALSE;
974 break;
975 default:
976 FAIL ();
977 }
978 p->the_bfd = NULL;
979 p->asymbols = NULL;
980 p->next_real_file = NULL;
981 p->next = NULL;
982 p->symbol_count = 0;
983 p->dynamic = config.dynamic_link;
984 p->add_needed = add_needed;
985 p->as_needed = as_needed;
986 p->whole_archive = whole_archive;
987 p->loaded = FALSE;
988 lang_statement_append (&input_file_chain,
989 (lang_statement_union_type *) p,
990 &p->next_real_file);
991 return p;
992 }
993
994 lang_input_statement_type *
995 lang_add_input_file (const char *name,
996 lang_input_file_enum_type file_type,
997 const char *target)
998 {
999 return new_afile (name, file_type, target, TRUE);
1000 }
1001
1002 struct out_section_hash_entry
1003 {
1004 struct bfd_hash_entry root;
1005 lang_statement_union_type s;
1006 };
1007
1008 /* The hash table. */
1009
1010 static struct bfd_hash_table output_section_statement_table;
1011
1012 /* Support routines for the hash table used by lang_output_section_find,
1013 initialize the table, fill in an entry and remove the table. */
1014
1015 static struct bfd_hash_entry *
1016 output_section_statement_newfunc (struct bfd_hash_entry *entry,
1017 struct bfd_hash_table *table,
1018 const char *string)
1019 {
1020 lang_output_section_statement_type **nextp;
1021 struct out_section_hash_entry *ret;
1022
1023 if (entry == NULL)
1024 {
1025 entry = bfd_hash_allocate (table, sizeof (*ret));
1026 if (entry == NULL)
1027 return entry;
1028 }
1029
1030 entry = bfd_hash_newfunc (entry, table, string);
1031 if (entry == NULL)
1032 return entry;
1033
1034 ret = (struct out_section_hash_entry *) entry;
1035 memset (&ret->s, 0, sizeof (ret->s));
1036 ret->s.header.type = lang_output_section_statement_enum;
1037 ret->s.output_section_statement.subsection_alignment = -1;
1038 ret->s.output_section_statement.section_alignment = -1;
1039 ret->s.output_section_statement.block_value = 1;
1040 lang_list_init (&ret->s.output_section_statement.children);
1041 lang_statement_append (stat_ptr, &ret->s, &ret->s.header.next);
1042
1043 /* For every output section statement added to the list, except the
1044 first one, lang_output_section_statement.tail points to the "next"
1045 field of the last element of the list. */
1046 if (lang_output_section_statement.head != NULL)
1047 ret->s.output_section_statement.prev
1048 = ((lang_output_section_statement_type *)
1049 ((char *) lang_output_section_statement.tail
1050 - offsetof (lang_output_section_statement_type, next)));
1051
1052 /* GCC's strict aliasing rules prevent us from just casting the
1053 address, so we store the pointer in a variable and cast that
1054 instead. */
1055 nextp = &ret->s.output_section_statement.next;
1056 lang_statement_append (&lang_output_section_statement,
1057 &ret->s,
1058 (lang_statement_union_type **) nextp);
1059 return &ret->root;
1060 }
1061
1062 static void
1063 output_section_statement_table_init (void)
1064 {
1065 if (!bfd_hash_table_init_n (&output_section_statement_table,
1066 output_section_statement_newfunc,
1067 sizeof (struct out_section_hash_entry),
1068 61))
1069 einfo (_("%P%F: can not create hash table: %E\n"));
1070 }
1071
1072 static void
1073 output_section_statement_table_free (void)
1074 {
1075 bfd_hash_table_free (&output_section_statement_table);
1076 }
1077
1078 /* Build enough state so that the parser can build its tree. */
1079
1080 void
1081 lang_init (void)
1082 {
1083 obstack_begin (&stat_obstack, 1000);
1084
1085 stat_ptr = &statement_list;
1086
1087 output_section_statement_table_init ();
1088
1089 lang_list_init (stat_ptr);
1090
1091 lang_list_init (&input_file_chain);
1092 lang_list_init (&lang_output_section_statement);
1093 lang_list_init (&file_chain);
1094 first_file = lang_add_input_file (NULL, lang_input_file_is_marker_enum,
1095 NULL);
1096 abs_output_section =
1097 lang_output_section_statement_lookup (BFD_ABS_SECTION_NAME);
1098
1099 abs_output_section->bfd_section = bfd_abs_section_ptr;
1100
1101 /* The value "3" is ad-hoc, somewhat related to the expected number of
1102 DEFINED expressions in a linker script. For most default linker
1103 scripts, there are none. Why a hash table then? Well, it's somewhat
1104 simpler to re-use working machinery than using a linked list in terms
1105 of code-complexity here in ld, besides the initialization which just
1106 looks like other code here. */
1107 if (!bfd_hash_table_init_n (&lang_definedness_table,
1108 lang_definedness_newfunc,
1109 sizeof (struct lang_definedness_hash_entry),
1110 3))
1111 einfo (_("%P%F: can not create hash table: %E\n"));
1112 }
1113
1114 void
1115 lang_finish (void)
1116 {
1117 output_section_statement_table_free ();
1118 }
1119
1120 /*----------------------------------------------------------------------
1121 A region is an area of memory declared with the
1122 MEMORY { name:org=exp, len=exp ... }
1123 syntax.
1124
1125 We maintain a list of all the regions here.
1126
1127 If no regions are specified in the script, then the default is used
1128 which is created when looked up to be the entire data space.
1129
1130 If create is true we are creating a region inside a MEMORY block.
1131 In this case it is probably an error to create a region that has
1132 already been created. If we are not inside a MEMORY block it is
1133 dubious to use an undeclared region name (except DEFAULT_MEMORY_REGION)
1134 and so we issue a warning. */
1135
1136 static lang_memory_region_type *lang_memory_region_list;
1137 static lang_memory_region_type **lang_memory_region_list_tail
1138 = &lang_memory_region_list;
1139
1140 lang_memory_region_type *
1141 lang_memory_region_lookup (const char *const name, bfd_boolean create)
1142 {
1143 lang_memory_region_type *p;
1144 lang_memory_region_type *new;
1145
1146 /* NAME is NULL for LMA memspecs if no region was specified. */
1147 if (name == NULL)
1148 return NULL;
1149
1150 for (p = lang_memory_region_list; p != NULL; p = p->next)
1151 if (strcmp (p->name, name) == 0)
1152 {
1153 if (create)
1154 einfo (_("%P:%S: warning: redeclaration of memory region '%s'\n"),
1155 name);
1156 return p;
1157 }
1158
1159 if (!create && strcmp (name, DEFAULT_MEMORY_REGION))
1160 einfo (_("%P:%S: warning: memory region %s not declared\n"), name);
1161
1162 new = stat_alloc (sizeof (lang_memory_region_type));
1163
1164 new->name = xstrdup (name);
1165 new->next = NULL;
1166 new->origin = 0;
1167 new->length = ~(bfd_size_type) 0;
1168 new->current = 0;
1169 new->last_os = NULL;
1170 new->flags = 0;
1171 new->not_flags = 0;
1172 new->had_full_message = FALSE;
1173
1174 *lang_memory_region_list_tail = new;
1175 lang_memory_region_list_tail = &new->next;
1176
1177 return new;
1178 }
1179
1180 static lang_memory_region_type *
1181 lang_memory_default (asection *section)
1182 {
1183 lang_memory_region_type *p;
1184
1185 flagword sec_flags = section->flags;
1186
1187 /* Override SEC_DATA to mean a writable section. */
1188 if ((sec_flags & (SEC_ALLOC | SEC_READONLY | SEC_CODE)) == SEC_ALLOC)
1189 sec_flags |= SEC_DATA;
1190
1191 for (p = lang_memory_region_list; p != NULL; p = p->next)
1192 {
1193 if ((p->flags & sec_flags) != 0
1194 && (p->not_flags & sec_flags) == 0)
1195 {
1196 return p;
1197 }
1198 }
1199 return lang_memory_region_lookup (DEFAULT_MEMORY_REGION, FALSE);
1200 }
1201
1202 lang_output_section_statement_type *
1203 lang_output_section_find (const char *const name)
1204 {
1205 struct out_section_hash_entry *entry;
1206 unsigned long hash;
1207
1208 entry = ((struct out_section_hash_entry *)
1209 bfd_hash_lookup (&output_section_statement_table, name,
1210 FALSE, FALSE));
1211 if (entry == NULL)
1212 return NULL;
1213
1214 hash = entry->root.hash;
1215 do
1216 {
1217 if (entry->s.output_section_statement.constraint != -1)
1218 return &entry->s.output_section_statement;
1219 entry = (struct out_section_hash_entry *) entry->root.next;
1220 }
1221 while (entry != NULL
1222 && entry->root.hash == hash
1223 && strcmp (name, entry->s.output_section_statement.name) == 0);
1224
1225 return NULL;
1226 }
1227
1228 static lang_output_section_statement_type *
1229 lang_output_section_statement_lookup_1 (const char *const name, int constraint)
1230 {
1231 struct out_section_hash_entry *entry;
1232 struct out_section_hash_entry *last_ent;
1233 unsigned long hash;
1234
1235 entry = ((struct out_section_hash_entry *)
1236 bfd_hash_lookup (&output_section_statement_table, name,
1237 TRUE, FALSE));
1238 if (entry == NULL)
1239 {
1240 einfo (_("%P%F: failed creating section `%s': %E\n"), name);
1241 return NULL;
1242 }
1243
1244 if (entry->s.output_section_statement.name != NULL)
1245 {
1246 /* We have a section of this name, but it might not have the correct
1247 constraint. */
1248 hash = entry->root.hash;
1249 do
1250 {
1251 if (entry->s.output_section_statement.constraint != -1
1252 && (constraint == 0
1253 || (constraint == entry->s.output_section_statement.constraint
1254 && constraint != SPECIAL)))
1255 return &entry->s.output_section_statement;
1256 last_ent = entry;
1257 entry = (struct out_section_hash_entry *) entry->root.next;
1258 }
1259 while (entry != NULL
1260 && entry->root.hash == hash
1261 && strcmp (name, entry->s.output_section_statement.name) == 0);
1262
1263 entry
1264 = ((struct out_section_hash_entry *)
1265 output_section_statement_newfunc (NULL,
1266 &output_section_statement_table,
1267 name));
1268 if (entry == NULL)
1269 {
1270 einfo (_("%P%F: failed creating section `%s': %E\n"), name);
1271 return NULL;
1272 }
1273 entry->root = last_ent->root;
1274 last_ent->root.next = &entry->root;
1275 }
1276
1277 entry->s.output_section_statement.name = name;
1278 entry->s.output_section_statement.constraint = constraint;
1279 return &entry->s.output_section_statement;
1280 }
1281
1282 lang_output_section_statement_type *
1283 lang_output_section_statement_lookup (const char *const name)
1284 {
1285 return lang_output_section_statement_lookup_1 (name, 0);
1286 }
1287
1288 /* A variant of lang_output_section_find used by place_orphan.
1289 Returns the output statement that should precede a new output
1290 statement for SEC. If an exact match is found on certain flags,
1291 sets *EXACT too. */
1292
1293 lang_output_section_statement_type *
1294 lang_output_section_find_by_flags (const asection *sec,
1295 lang_output_section_statement_type **exact,
1296 lang_match_sec_type_func match_type)
1297 {
1298 lang_output_section_statement_type *first, *look, *found;
1299 flagword flags;
1300
1301 /* We know the first statement on this list is *ABS*. May as well
1302 skip it. */
1303 first = &lang_output_section_statement.head->output_section_statement;
1304 first = first->next;
1305
1306 /* First try for an exact match. */
1307 found = NULL;
1308 for (look = first; look; look = look->next)
1309 {
1310 flags = look->flags;
1311 if (look->bfd_section != NULL)
1312 {
1313 flags = look->bfd_section->flags;
1314 if (match_type && !match_type (output_bfd, look->bfd_section,
1315 sec->owner, sec))
1316 continue;
1317 }
1318 flags ^= sec->flags;
1319 if (!(flags & (SEC_HAS_CONTENTS | SEC_ALLOC | SEC_LOAD | SEC_READONLY
1320 | SEC_CODE | SEC_SMALL_DATA | SEC_THREAD_LOCAL)))
1321 found = look;
1322 }
1323 if (found != NULL)
1324 {
1325 if (exact != NULL)
1326 *exact = found;
1327 return found;
1328 }
1329
1330 if (sec->flags & SEC_CODE)
1331 {
1332 /* Try for a rw code section. */
1333 for (look = first; look; look = look->next)
1334 {
1335 flags = look->flags;
1336 if (look->bfd_section != NULL)
1337 {
1338 flags = look->bfd_section->flags;
1339 if (match_type && !match_type (output_bfd, look->bfd_section,
1340 sec->owner, sec))
1341 continue;
1342 }
1343 flags ^= sec->flags;
1344 if (!(flags & (SEC_HAS_CONTENTS | SEC_ALLOC | SEC_LOAD
1345 | SEC_CODE | SEC_SMALL_DATA | SEC_THREAD_LOCAL)))
1346 found = look;
1347 }
1348 }
1349 else if (sec->flags & (SEC_READONLY | SEC_THREAD_LOCAL))
1350 {
1351 /* .rodata can go after .text, .sdata2 after .rodata. */
1352 for (look = first; look; look = look->next)
1353 {
1354 flags = look->flags;
1355 if (look->bfd_section != NULL)
1356 {
1357 flags = look->bfd_section->flags;
1358 if (match_type && !match_type (output_bfd, look->bfd_section,
1359 sec->owner, sec))
1360 continue;
1361 }
1362 flags ^= sec->flags;
1363 if (!(flags & (SEC_HAS_CONTENTS | SEC_ALLOC | SEC_LOAD
1364 | SEC_READONLY))
1365 && !(look->flags & (SEC_SMALL_DATA | SEC_THREAD_LOCAL)))
1366 found = look;
1367 }
1368 }
1369 else if (sec->flags & SEC_SMALL_DATA)
1370 {
1371 /* .sdata goes after .data, .sbss after .sdata. */
1372 for (look = first; look; look = look->next)
1373 {
1374 flags = look->flags;
1375 if (look->bfd_section != NULL)
1376 {
1377 flags = look->bfd_section->flags;
1378 if (match_type && !match_type (output_bfd, look->bfd_section,
1379 sec->owner, sec))
1380 continue;
1381 }
1382 flags ^= sec->flags;
1383 if (!(flags & (SEC_HAS_CONTENTS | SEC_ALLOC | SEC_LOAD
1384 | SEC_THREAD_LOCAL))
1385 || ((look->flags & SEC_SMALL_DATA)
1386 && !(sec->flags & SEC_HAS_CONTENTS)))
1387 found = look;
1388 }
1389 }
1390 else if (sec->flags & SEC_HAS_CONTENTS)
1391 {
1392 /* .data goes after .rodata. */
1393 for (look = first; look; look = look->next)
1394 {
1395 flags = look->flags;
1396 if (look->bfd_section != NULL)
1397 {
1398 flags = look->bfd_section->flags;
1399 if (match_type && !match_type (output_bfd, look->bfd_section,
1400 sec->owner, sec))
1401 continue;
1402 }
1403 flags ^= sec->flags;
1404 if (!(flags & (SEC_HAS_CONTENTS | SEC_ALLOC | SEC_LOAD
1405 | SEC_SMALL_DATA | SEC_THREAD_LOCAL)))
1406 found = look;
1407 }
1408 }
1409 else
1410 {
1411 /* .bss goes last. */
1412 for (look = first; look; look = look->next)
1413 {
1414 flags = look->flags;
1415 if (look->bfd_section != NULL)
1416 {
1417 flags = look->bfd_section->flags;
1418 if (match_type && !match_type (output_bfd, look->bfd_section,
1419 sec->owner, sec))
1420 continue;
1421 }
1422 flags ^= sec->flags;
1423 if (!(flags & SEC_ALLOC))
1424 found = look;
1425 }
1426 }
1427
1428 if (found || !match_type)
1429 return found;
1430
1431 return lang_output_section_find_by_flags (sec, NULL, NULL);
1432 }
1433
1434 /* Find the last output section before given output statement.
1435 Used by place_orphan. */
1436
1437 static asection *
1438 output_prev_sec_find (lang_output_section_statement_type *os)
1439 {
1440 lang_output_section_statement_type *lookup;
1441
1442 for (lookup = os->prev; lookup != NULL; lookup = lookup->prev)
1443 {
1444 if (lookup->constraint == -1)
1445 continue;
1446
1447 if (lookup->bfd_section != NULL && lookup->bfd_section->owner != NULL)
1448 return lookup->bfd_section;
1449 }
1450
1451 return NULL;
1452 }
1453
1454 lang_output_section_statement_type *
1455 lang_insert_orphan (asection *s,
1456 const char *secname,
1457 lang_output_section_statement_type *after,
1458 struct orphan_save *place,
1459 etree_type *address,
1460 lang_statement_list_type *add_child)
1461 {
1462 lang_statement_list_type *old;
1463 lang_statement_list_type add;
1464 const char *ps;
1465 lang_output_section_statement_type *os;
1466 lang_output_section_statement_type **os_tail;
1467
1468 /* Start building a list of statements for this section.
1469 First save the current statement pointer. */
1470 old = stat_ptr;
1471
1472 /* If we have found an appropriate place for the output section
1473 statements for this orphan, add them to our own private list,
1474 inserting them later into the global statement list. */
1475 if (after != NULL)
1476 {
1477 stat_ptr = &add;
1478 lang_list_init (stat_ptr);
1479 }
1480
1481 ps = NULL;
1482 if (config.build_constructors)
1483 {
1484 /* If the name of the section is representable in C, then create
1485 symbols to mark the start and the end of the section. */
1486 for (ps = secname; *ps != '\0'; ps++)
1487 if (! ISALNUM ((unsigned char) *ps) && *ps != '_')
1488 break;
1489 if (*ps == '\0')
1490 {
1491 char *symname;
1492 etree_type *e_align;
1493
1494 symname = (char *) xmalloc (ps - secname + sizeof "__start_" + 1);
1495 symname[0] = bfd_get_symbol_leading_char (output_bfd);
1496 sprintf (symname + (symname[0] != 0), "__start_%s", secname);
1497 e_align = exp_unop (ALIGN_K,
1498 exp_intop ((bfd_vma) 1 << s->alignment_power));
1499 lang_add_assignment (exp_assop ('=', ".", e_align));
1500 lang_add_assignment (exp_provide (symname,
1501 exp_nameop (NAME, "."),
1502 FALSE));
1503 }
1504 }
1505
1506 if (link_info.relocatable || (s->flags & (SEC_LOAD | SEC_ALLOC)) == 0)
1507 address = exp_intop (0);
1508
1509 os_tail = ((lang_output_section_statement_type **)
1510 lang_output_section_statement.tail);
1511 os = lang_enter_output_section_statement (secname, address, 0, NULL, NULL,
1512 NULL, 0);
1513
1514 if (add_child == NULL)
1515 add_child = &os->children;
1516 lang_add_section (add_child, s, os);
1517
1518 lang_leave_output_section_statement (0, "*default*", NULL, NULL);
1519
1520 if (config.build_constructors && *ps == '\0')
1521 {
1522 char *symname;
1523
1524 /* lang_leave_ouput_section_statement resets stat_ptr.
1525 Put stat_ptr back where we want it. */
1526 if (after != NULL)
1527 stat_ptr = &add;
1528
1529 symname = (char *) xmalloc (ps - secname + sizeof "__stop_" + 1);
1530 symname[0] = bfd_get_symbol_leading_char (output_bfd);
1531 sprintf (symname + (symname[0] != 0), "__stop_%s", secname);
1532 lang_add_assignment (exp_provide (symname,
1533 exp_nameop (NAME, "."),
1534 FALSE));
1535 }
1536
1537 /* Restore the global list pointer. */
1538 if (after != NULL)
1539 stat_ptr = old;
1540
1541 if (after != NULL && os->bfd_section != NULL)
1542 {
1543 asection *snew, *as;
1544
1545 snew = os->bfd_section;
1546
1547 /* Shuffle the bfd section list to make the output file look
1548 neater. This is really only cosmetic. */
1549 if (place->section == NULL
1550 && after != (&lang_output_section_statement.head
1551 ->output_section_statement))
1552 {
1553 asection *bfd_section = after->bfd_section;
1554
1555 /* If the output statement hasn't been used to place any input
1556 sections (and thus doesn't have an output bfd_section),
1557 look for the closest prior output statement having an
1558 output section. */
1559 if (bfd_section == NULL)
1560 bfd_section = output_prev_sec_find (after);
1561
1562 if (bfd_section != NULL && bfd_section != snew)
1563 place->section = &bfd_section->next;
1564 }
1565
1566 if (place->section == NULL)
1567 place->section = &output_bfd->sections;
1568
1569 as = *place->section;
1570
1571 if (!as)
1572 {
1573 /* Put the section at the end of the list. */
1574
1575 /* Unlink the section. */
1576 bfd_section_list_remove (output_bfd, snew);
1577
1578 /* Now tack it back on in the right place. */
1579 bfd_section_list_append (output_bfd, snew);
1580 }
1581 else if (as != snew && as->prev != snew)
1582 {
1583 /* Unlink the section. */
1584 bfd_section_list_remove (output_bfd, snew);
1585
1586 /* Now tack it back on in the right place. */
1587 bfd_section_list_insert_before (output_bfd, as, snew);
1588 }
1589
1590 /* Save the end of this list. Further ophans of this type will
1591 follow the one we've just added. */
1592 place->section = &snew->next;
1593
1594 /* The following is non-cosmetic. We try to put the output
1595 statements in some sort of reasonable order here, because they
1596 determine the final load addresses of the orphan sections.
1597 In addition, placing output statements in the wrong order may
1598 require extra segments. For instance, given a typical
1599 situation of all read-only sections placed in one segment and
1600 following that a segment containing all the read-write
1601 sections, we wouldn't want to place an orphan read/write
1602 section before or amongst the read-only ones. */
1603 if (add.head != NULL)
1604 {
1605 lang_output_section_statement_type *newly_added_os;
1606
1607 if (place->stmt == NULL)
1608 {
1609 lang_statement_union_type **where;
1610 lang_statement_union_type **assign = NULL;
1611 bfd_boolean ignore_first;
1612
1613 /* Look for a suitable place for the new statement list.
1614 The idea is to skip over anything that might be inside
1615 a SECTIONS {} statement in a script, before we find
1616 another output_section_statement. Assignments to "dot"
1617 before an output section statement are assumed to
1618 belong to it. An exception to this rule is made for
1619 the first assignment to dot, otherwise we might put an
1620 orphan before . = . + SIZEOF_HEADERS or similar
1621 assignments that set the initial address. */
1622
1623 ignore_first = after == (&lang_output_section_statement.head
1624 ->output_section_statement);
1625 for (where = &after->header.next;
1626 *where != NULL;
1627 where = &(*where)->header.next)
1628 {
1629 switch ((*where)->header.type)
1630 {
1631 case lang_assignment_statement_enum:
1632 if (assign == NULL)
1633 {
1634 lang_assignment_statement_type *ass;
1635 ass = &(*where)->assignment_statement;
1636 if (ass->exp->type.node_class != etree_assert
1637 && ass->exp->assign.dst[0] == '.'
1638 && ass->exp->assign.dst[1] == 0
1639 && !ignore_first)
1640 assign = where;
1641 }
1642 ignore_first = FALSE;
1643 continue;
1644 case lang_wild_statement_enum:
1645 case lang_input_section_enum:
1646 case lang_object_symbols_statement_enum:
1647 case lang_fill_statement_enum:
1648 case lang_data_statement_enum:
1649 case lang_reloc_statement_enum:
1650 case lang_padding_statement_enum:
1651 case lang_constructors_statement_enum:
1652 assign = NULL;
1653 continue;
1654 case lang_output_section_statement_enum:
1655 if (assign != NULL)
1656 where = assign;
1657 case lang_input_statement_enum:
1658 case lang_address_statement_enum:
1659 case lang_target_statement_enum:
1660 case lang_output_statement_enum:
1661 case lang_group_statement_enum:
1662 case lang_afile_asection_pair_statement_enum:
1663 break;
1664 }
1665 break;
1666 }
1667
1668 *add.tail = *where;
1669 *where = add.head;
1670
1671 place->os_tail = &after->next;
1672 }
1673 else
1674 {
1675 /* Put it after the last orphan statement we added. */
1676 *add.tail = *place->stmt;
1677 *place->stmt = add.head;
1678 }
1679
1680 /* Fix the global list pointer if we happened to tack our
1681 new list at the tail. */
1682 if (*old->tail == add.head)
1683 old->tail = add.tail;
1684
1685 /* Save the end of this list. */
1686 place->stmt = add.tail;
1687
1688 /* Do the same for the list of output section statements. */
1689 newly_added_os = *os_tail;
1690 *os_tail = NULL;
1691 newly_added_os->prev = (lang_output_section_statement_type *)
1692 ((char *) place->os_tail
1693 - offsetof (lang_output_section_statement_type, next));
1694 newly_added_os->next = *place->os_tail;
1695 if (newly_added_os->next != NULL)
1696 newly_added_os->next->prev = newly_added_os;
1697 *place->os_tail = newly_added_os;
1698 place->os_tail = &newly_added_os->next;
1699
1700 /* Fixing the global list pointer here is a little different.
1701 We added to the list in lang_enter_output_section_statement,
1702 trimmed off the new output_section_statment above when
1703 assigning *os_tail = NULL, but possibly added it back in
1704 the same place when assigning *place->os_tail. */
1705 if (*os_tail == NULL)
1706 lang_output_section_statement.tail
1707 = (lang_statement_union_type **) os_tail;
1708 }
1709 }
1710 return os;
1711 }
1712
1713 static void
1714 lang_map_flags (flagword flag)
1715 {
1716 if (flag & SEC_ALLOC)
1717 minfo ("a");
1718
1719 if (flag & SEC_CODE)
1720 minfo ("x");
1721
1722 if (flag & SEC_READONLY)
1723 minfo ("r");
1724
1725 if (flag & SEC_DATA)
1726 minfo ("w");
1727
1728 if (flag & SEC_LOAD)
1729 minfo ("l");
1730 }
1731
1732 void
1733 lang_map (void)
1734 {
1735 lang_memory_region_type *m;
1736 bfd_boolean dis_header_printed = FALSE;
1737 bfd *p;
1738
1739 LANG_FOR_EACH_INPUT_STATEMENT (file)
1740 {
1741 asection *s;
1742
1743 if ((file->the_bfd->flags & (BFD_LINKER_CREATED | DYNAMIC)) != 0
1744 || file->just_syms_flag)
1745 continue;
1746
1747 for (s = file->the_bfd->sections; s != NULL; s = s->next)
1748 if ((s->output_section == NULL
1749 || s->output_section->owner != output_bfd)
1750 && (s->flags & (SEC_LINKER_CREATED | SEC_KEEP)) == 0)
1751 {
1752 if (! dis_header_printed)
1753 {
1754 fprintf (config.map_file, _("\nDiscarded input sections\n\n"));
1755 dis_header_printed = TRUE;
1756 }
1757
1758 print_input_section (s);
1759 }
1760 }
1761
1762 minfo (_("\nMemory Configuration\n\n"));
1763 fprintf (config.map_file, "%-16s %-18s %-18s %s\n",
1764 _("Name"), _("Origin"), _("Length"), _("Attributes"));
1765
1766 for (m = lang_memory_region_list; m != NULL; m = m->next)
1767 {
1768 char buf[100];
1769 int len;
1770
1771 fprintf (config.map_file, "%-16s ", m->name);
1772
1773 sprintf_vma (buf, m->origin);
1774 minfo ("0x%s ", buf);
1775 len = strlen (buf);
1776 while (len < 16)
1777 {
1778 print_space ();
1779 ++len;
1780 }
1781
1782 minfo ("0x%V", m->length);
1783 if (m->flags || m->not_flags)
1784 {
1785 #ifndef BFD64
1786 minfo (" ");
1787 #endif
1788 if (m->flags)
1789 {
1790 print_space ();
1791 lang_map_flags (m->flags);
1792 }
1793
1794 if (m->not_flags)
1795 {
1796 minfo (" !");
1797 lang_map_flags (m->not_flags);
1798 }
1799 }
1800
1801 print_nl ();
1802 }
1803
1804 fprintf (config.map_file, _("\nLinker script and memory map\n\n"));
1805
1806 if (! link_info.reduce_memory_overheads)
1807 {
1808 obstack_begin (&map_obstack, 1000);
1809 for (p = link_info.input_bfds; p != (bfd *) NULL; p = p->link_next)
1810 bfd_map_over_sections (p, init_map_userdata, 0);
1811 bfd_link_hash_traverse (link_info.hash, sort_def_symbol, 0);
1812 }
1813 print_statements ();
1814 }
1815
1816 static void
1817 init_map_userdata (abfd, sec, data)
1818 bfd *abfd ATTRIBUTE_UNUSED;
1819 asection *sec;
1820 void *data ATTRIBUTE_UNUSED;
1821 {
1822 fat_section_userdata_type *new_data
1823 = ((fat_section_userdata_type *) (stat_alloc
1824 (sizeof (fat_section_userdata_type))));
1825
1826 ASSERT (get_userdata (sec) == NULL);
1827 get_userdata (sec) = new_data;
1828 new_data->map_symbol_def_tail = &new_data->map_symbol_def_head;
1829 }
1830
1831 static bfd_boolean
1832 sort_def_symbol (hash_entry, info)
1833 struct bfd_link_hash_entry *hash_entry;
1834 void *info ATTRIBUTE_UNUSED;
1835 {
1836 if (hash_entry->type == bfd_link_hash_defined
1837 || hash_entry->type == bfd_link_hash_defweak)
1838 {
1839 struct fat_user_section_struct *ud;
1840 struct map_symbol_def *def;
1841
1842 ud = get_userdata (hash_entry->u.def.section);
1843 if (! ud)
1844 {
1845 /* ??? What do we have to do to initialize this beforehand? */
1846 /* The first time we get here is bfd_abs_section... */
1847 init_map_userdata (0, hash_entry->u.def.section, 0);
1848 ud = get_userdata (hash_entry->u.def.section);
1849 }
1850 else if (!ud->map_symbol_def_tail)
1851 ud->map_symbol_def_tail = &ud->map_symbol_def_head;
1852
1853 def = obstack_alloc (&map_obstack, sizeof *def);
1854 def->entry = hash_entry;
1855 *(ud->map_symbol_def_tail) = def;
1856 ud->map_symbol_def_tail = &def->next;
1857 }
1858 return TRUE;
1859 }
1860
1861 /* Initialize an output section. */
1862
1863 static void
1864 init_os (lang_output_section_statement_type *s, asection *isec,
1865 flagword flags)
1866 {
1867 if (s->bfd_section != NULL)
1868 return;
1869
1870 if (strcmp (s->name, DISCARD_SECTION_NAME) == 0)
1871 einfo (_("%P%F: Illegal use of `%s' section\n"), DISCARD_SECTION_NAME);
1872
1873 s->bfd_section = bfd_get_section_by_name (output_bfd, s->name);
1874 if (s->bfd_section == NULL)
1875 s->bfd_section = bfd_make_section_with_flags (output_bfd, s->name,
1876 flags);
1877 if (s->bfd_section == NULL)
1878 {
1879 einfo (_("%P%F: output format %s cannot represent section called %s\n"),
1880 output_bfd->xvec->name, s->name);
1881 }
1882 s->bfd_section->output_section = s->bfd_section;
1883 s->bfd_section->output_offset = 0;
1884
1885 if (!link_info.reduce_memory_overheads)
1886 {
1887 fat_section_userdata_type *new
1888 = stat_alloc (sizeof (fat_section_userdata_type));
1889 memset (new, 0, sizeof (fat_section_userdata_type));
1890 get_userdata (s->bfd_section) = new;
1891 }
1892
1893 /* If there is a base address, make sure that any sections it might
1894 mention are initialized. */
1895 if (s->addr_tree != NULL)
1896 exp_init_os (s->addr_tree);
1897
1898 if (s->load_base != NULL)
1899 exp_init_os (s->load_base);
1900
1901 /* If supplied an alignment, set it. */
1902 if (s->section_alignment != -1)
1903 s->bfd_section->alignment_power = s->section_alignment;
1904
1905 if (isec)
1906 bfd_init_private_section_data (isec->owner, isec,
1907 output_bfd, s->bfd_section,
1908 &link_info);
1909 }
1910
1911 /* Make sure that all output sections mentioned in an expression are
1912 initialized. */
1913
1914 static void
1915 exp_init_os (etree_type *exp)
1916 {
1917 switch (exp->type.node_class)
1918 {
1919 case etree_assign:
1920 case etree_provide:
1921 exp_init_os (exp->assign.src);
1922 break;
1923
1924 case etree_binary:
1925 exp_init_os (exp->binary.lhs);
1926 exp_init_os (exp->binary.rhs);
1927 break;
1928
1929 case etree_trinary:
1930 exp_init_os (exp->trinary.cond);
1931 exp_init_os (exp->trinary.lhs);
1932 exp_init_os (exp->trinary.rhs);
1933 break;
1934
1935 case etree_assert:
1936 exp_init_os (exp->assert_s.child);
1937 break;
1938
1939 case etree_unary:
1940 exp_init_os (exp->unary.child);
1941 break;
1942
1943 case etree_name:
1944 switch (exp->type.node_code)
1945 {
1946 case ADDR:
1947 case LOADADDR:
1948 case SIZEOF:
1949 {
1950 lang_output_section_statement_type *os;
1951
1952 os = lang_output_section_find (exp->name.name);
1953 if (os != NULL && os->bfd_section == NULL)
1954 init_os (os, NULL, 0);
1955 }
1956 }
1957 break;
1958
1959 default:
1960 break;
1961 }
1962 }
1963 \f
1964 static void
1965 section_already_linked (bfd *abfd, asection *sec, void *data)
1966 {
1967 lang_input_statement_type *entry = data;
1968
1969 /* If we are only reading symbols from this object, then we want to
1970 discard all sections. */
1971 if (entry->just_syms_flag)
1972 {
1973 bfd_link_just_syms (abfd, sec, &link_info);
1974 return;
1975 }
1976
1977 if (!(abfd->flags & DYNAMIC))
1978 bfd_section_already_linked (abfd, sec, &link_info);
1979 }
1980 \f
1981 /* The wild routines.
1982
1983 These expand statements like *(.text) and foo.o to a list of
1984 explicit actions, like foo.o(.text), bar.o(.text) and
1985 foo.o(.text, .data). */
1986
1987 /* Add SECTION to the output section OUTPUT. Do this by creating a
1988 lang_input_section statement which is placed at PTR. FILE is the
1989 input file which holds SECTION. */
1990
1991 void
1992 lang_add_section (lang_statement_list_type *ptr,
1993 asection *section,
1994 lang_output_section_statement_type *output)
1995 {
1996 flagword flags = section->flags;
1997 bfd_boolean discard;
1998
1999 /* Discard sections marked with SEC_EXCLUDE. */
2000 discard = (flags & SEC_EXCLUDE) != 0;
2001
2002 /* Discard input sections which are assigned to a section named
2003 DISCARD_SECTION_NAME. */
2004 if (strcmp (output->name, DISCARD_SECTION_NAME) == 0)
2005 discard = TRUE;
2006
2007 /* Discard debugging sections if we are stripping debugging
2008 information. */
2009 if ((link_info.strip == strip_debugger || link_info.strip == strip_all)
2010 && (flags & SEC_DEBUGGING) != 0)
2011 discard = TRUE;
2012
2013 if (discard)
2014 {
2015 if (section->output_section == NULL)
2016 {
2017 /* This prevents future calls from assigning this section. */
2018 section->output_section = bfd_abs_section_ptr;
2019 }
2020 return;
2021 }
2022
2023 if (section->output_section == NULL)
2024 {
2025 bfd_boolean first;
2026 lang_input_section_type *new;
2027 flagword flags;
2028
2029 flags = section->flags;
2030
2031 /* We don't copy the SEC_NEVER_LOAD flag from an input section
2032 to an output section, because we want to be able to include a
2033 SEC_NEVER_LOAD section in the middle of an otherwise loaded
2034 section (I don't know why we want to do this, but we do).
2035 build_link_order in ldwrite.c handles this case by turning
2036 the embedded SEC_NEVER_LOAD section into a fill. */
2037
2038 flags &= ~ SEC_NEVER_LOAD;
2039
2040 switch (output->sectype)
2041 {
2042 case normal_section:
2043 case overlay_section:
2044 break;
2045 case noalloc_section:
2046 flags &= ~SEC_ALLOC;
2047 break;
2048 case noload_section:
2049 flags &= ~SEC_LOAD;
2050 flags |= SEC_NEVER_LOAD;
2051 break;
2052 }
2053
2054 if (output->bfd_section == NULL)
2055 init_os (output, section, flags);
2056
2057 first = ! output->bfd_section->linker_has_input;
2058 output->bfd_section->linker_has_input = 1;
2059
2060 if (!link_info.relocatable
2061 && !stripped_excluded_sections)
2062 {
2063 asection *s = output->bfd_section->map_tail.s;
2064 output->bfd_section->map_tail.s = section;
2065 section->map_head.s = NULL;
2066 section->map_tail.s = s;
2067 if (s != NULL)
2068 s->map_head.s = section;
2069 else
2070 output->bfd_section->map_head.s = section;
2071 }
2072
2073 /* Add a section reference to the list. */
2074 new = new_stat (lang_input_section, ptr);
2075
2076 new->section = section;
2077 section->output_section = output->bfd_section;
2078
2079 /* If final link, don't copy the SEC_LINK_ONCE flags, they've
2080 already been processed. One reason to do this is that on pe
2081 format targets, .text$foo sections go into .text and it's odd
2082 to see .text with SEC_LINK_ONCE set. */
2083
2084 if (! link_info.relocatable)
2085 flags &= ~ (SEC_LINK_ONCE | SEC_LINK_DUPLICATES);
2086
2087 /* If this is not the first input section, and the SEC_READONLY
2088 flag is not currently set, then don't set it just because the
2089 input section has it set. */
2090
2091 if (! first && (output->bfd_section->flags & SEC_READONLY) == 0)
2092 flags &= ~ SEC_READONLY;
2093
2094 /* Keep SEC_MERGE and SEC_STRINGS only if they are the same. */
2095 if (! first
2096 && ((output->bfd_section->flags & (SEC_MERGE | SEC_STRINGS))
2097 != (flags & (SEC_MERGE | SEC_STRINGS))
2098 || ((flags & SEC_MERGE)
2099 && output->bfd_section->entsize != section->entsize)))
2100 {
2101 output->bfd_section->flags &= ~ (SEC_MERGE | SEC_STRINGS);
2102 flags &= ~ (SEC_MERGE | SEC_STRINGS);
2103 }
2104
2105 output->bfd_section->flags |= flags;
2106
2107 if (flags & SEC_MERGE)
2108 output->bfd_section->entsize = section->entsize;
2109
2110 /* If SEC_READONLY is not set in the input section, then clear
2111 it from the output section. */
2112 if ((section->flags & SEC_READONLY) == 0)
2113 output->bfd_section->flags &= ~SEC_READONLY;
2114
2115 /* Copy over SEC_SMALL_DATA. */
2116 if (section->flags & SEC_SMALL_DATA)
2117 output->bfd_section->flags |= SEC_SMALL_DATA;
2118
2119 if (section->alignment_power > output->bfd_section->alignment_power)
2120 output->bfd_section->alignment_power = section->alignment_power;
2121
2122 if (bfd_get_arch (section->owner) == bfd_arch_tic54x
2123 && (section->flags & SEC_TIC54X_BLOCK) != 0)
2124 {
2125 output->bfd_section->flags |= SEC_TIC54X_BLOCK;
2126 /* FIXME: This value should really be obtained from the bfd... */
2127 output->block_value = 128;
2128 }
2129 }
2130 }
2131
2132 /* Handle wildcard sorting. This returns the lang_input_section which
2133 should follow the one we are going to create for SECTION and FILE,
2134 based on the sorting requirements of WILD. It returns NULL if the
2135 new section should just go at the end of the current list. */
2136
2137 static lang_statement_union_type *
2138 wild_sort (lang_wild_statement_type *wild,
2139 struct wildcard_list *sec,
2140 lang_input_statement_type *file,
2141 asection *section)
2142 {
2143 const char *section_name;
2144 lang_statement_union_type *l;
2145
2146 if (!wild->filenames_sorted
2147 && (sec == NULL || sec->spec.sorted == none))
2148 return NULL;
2149
2150 section_name = bfd_get_section_name (file->the_bfd, section);
2151 for (l = wild->children.head; l != NULL; l = l->header.next)
2152 {
2153 lang_input_section_type *ls;
2154
2155 if (l->header.type != lang_input_section_enum)
2156 continue;
2157 ls = &l->input_section;
2158
2159 /* Sorting by filename takes precedence over sorting by section
2160 name. */
2161
2162 if (wild->filenames_sorted)
2163 {
2164 const char *fn, *ln;
2165 bfd_boolean fa, la;
2166 int i;
2167
2168 /* The PE support for the .idata section as generated by
2169 dlltool assumes that files will be sorted by the name of
2170 the archive and then the name of the file within the
2171 archive. */
2172
2173 if (file->the_bfd != NULL
2174 && bfd_my_archive (file->the_bfd) != NULL)
2175 {
2176 fn = bfd_get_filename (bfd_my_archive (file->the_bfd));
2177 fa = TRUE;
2178 }
2179 else
2180 {
2181 fn = file->filename;
2182 fa = FALSE;
2183 }
2184
2185 if (bfd_my_archive (ls->section->owner) != NULL)
2186 {
2187 ln = bfd_get_filename (bfd_my_archive (ls->section->owner));
2188 la = TRUE;
2189 }
2190 else
2191 {
2192 ln = ls->section->owner->filename;
2193 la = FALSE;
2194 }
2195
2196 i = strcmp (fn, ln);
2197 if (i > 0)
2198 continue;
2199 else if (i < 0)
2200 break;
2201
2202 if (fa || la)
2203 {
2204 if (fa)
2205 fn = file->filename;
2206 if (la)
2207 ln = ls->section->owner->filename;
2208
2209 i = strcmp (fn, ln);
2210 if (i > 0)
2211 continue;
2212 else if (i < 0)
2213 break;
2214 }
2215 }
2216
2217 /* Here either the files are not sorted by name, or we are
2218 looking at the sections for this file. */
2219
2220 if (sec != NULL && sec->spec.sorted != none)
2221 if (compare_section (sec->spec.sorted, section, ls->section) < 0)
2222 break;
2223 }
2224
2225 return l;
2226 }
2227
2228 /* Expand a wild statement for a particular FILE. SECTION may be
2229 NULL, in which case it is a wild card. */
2230
2231 static void
2232 output_section_callback (lang_wild_statement_type *ptr,
2233 struct wildcard_list *sec,
2234 asection *section,
2235 lang_input_statement_type *file,
2236 void *output)
2237 {
2238 lang_statement_union_type *before;
2239
2240 /* Exclude sections that match UNIQUE_SECTION_LIST. */
2241 if (unique_section_p (section))
2242 return;
2243
2244 before = wild_sort (ptr, sec, file, section);
2245
2246 /* Here BEFORE points to the lang_input_section which
2247 should follow the one we are about to add. If BEFORE
2248 is NULL, then the section should just go at the end
2249 of the current list. */
2250
2251 if (before == NULL)
2252 lang_add_section (&ptr->children, section,
2253 (lang_output_section_statement_type *) output);
2254 else
2255 {
2256 lang_statement_list_type list;
2257 lang_statement_union_type **pp;
2258
2259 lang_list_init (&list);
2260 lang_add_section (&list, section,
2261 (lang_output_section_statement_type *) output);
2262
2263 /* If we are discarding the section, LIST.HEAD will
2264 be NULL. */
2265 if (list.head != NULL)
2266 {
2267 ASSERT (list.head->header.next == NULL);
2268
2269 for (pp = &ptr->children.head;
2270 *pp != before;
2271 pp = &(*pp)->header.next)
2272 ASSERT (*pp != NULL);
2273
2274 list.head->header.next = *pp;
2275 *pp = list.head;
2276 }
2277 }
2278 }
2279
2280 /* Check if all sections in a wild statement for a particular FILE
2281 are readonly. */
2282
2283 static void
2284 check_section_callback (lang_wild_statement_type *ptr ATTRIBUTE_UNUSED,
2285 struct wildcard_list *sec ATTRIBUTE_UNUSED,
2286 asection *section,
2287 lang_input_statement_type *file ATTRIBUTE_UNUSED,
2288 void *data)
2289 {
2290 /* Exclude sections that match UNIQUE_SECTION_LIST. */
2291 if (unique_section_p (section))
2292 return;
2293
2294 if (section->output_section == NULL && (section->flags & SEC_READONLY) == 0)
2295 ((lang_output_section_statement_type *) data)->all_input_readonly = FALSE;
2296 }
2297
2298 /* This is passed a file name which must have been seen already and
2299 added to the statement tree. We will see if it has been opened
2300 already and had its symbols read. If not then we'll read it. */
2301
2302 static lang_input_statement_type *
2303 lookup_name (const char *name)
2304 {
2305 lang_input_statement_type *search;
2306
2307 for (search = (lang_input_statement_type *) input_file_chain.head;
2308 search != NULL;
2309 search = (lang_input_statement_type *) search->next_real_file)
2310 {
2311 /* Use the local_sym_name as the name of the file that has
2312 already been loaded as filename might have been transformed
2313 via the search directory lookup mechanism. */
2314 const char *filename = search->local_sym_name;
2315
2316 if (filename != NULL
2317 && strcmp (filename, name) == 0)
2318 break;
2319 }
2320
2321 if (search == NULL)
2322 search = new_afile (name, lang_input_file_is_search_file_enum,
2323 default_target, FALSE);
2324
2325 /* If we have already added this file, or this file is not real
2326 don't add this file. */
2327 if (search->loaded || !search->real)
2328 return search;
2329
2330 if (! load_symbols (search, NULL))
2331 return NULL;
2332
2333 return search;
2334 }
2335
2336 /* Save LIST as a list of libraries whose symbols should not be exported. */
2337
2338 struct excluded_lib
2339 {
2340 char *name;
2341 struct excluded_lib *next;
2342 };
2343 static struct excluded_lib *excluded_libs;
2344
2345 void
2346 add_excluded_libs (const char *list)
2347 {
2348 const char *p = list, *end;
2349
2350 while (*p != '\0')
2351 {
2352 struct excluded_lib *entry;
2353 end = strpbrk (p, ",:");
2354 if (end == NULL)
2355 end = p + strlen (p);
2356 entry = xmalloc (sizeof (*entry));
2357 entry->next = excluded_libs;
2358 entry->name = xmalloc (end - p + 1);
2359 memcpy (entry->name, p, end - p);
2360 entry->name[end - p] = '\0';
2361 excluded_libs = entry;
2362 if (*end == '\0')
2363 break;
2364 p = end + 1;
2365 }
2366 }
2367
2368 static void
2369 check_excluded_libs (bfd *abfd)
2370 {
2371 struct excluded_lib *lib = excluded_libs;
2372
2373 while (lib)
2374 {
2375 int len = strlen (lib->name);
2376 const char *filename = lbasename (abfd->filename);
2377
2378 if (strcmp (lib->name, "ALL") == 0)
2379 {
2380 abfd->no_export = TRUE;
2381 return;
2382 }
2383
2384 if (strncmp (lib->name, filename, len) == 0
2385 && (filename[len] == '\0'
2386 || (filename[len] == '.' && filename[len + 1] == 'a'
2387 && filename[len + 2] == '\0')))
2388 {
2389 abfd->no_export = TRUE;
2390 return;
2391 }
2392
2393 lib = lib->next;
2394 }
2395 }
2396
2397 /* Get the symbols for an input file. */
2398
2399 bfd_boolean
2400 load_symbols (lang_input_statement_type *entry,
2401 lang_statement_list_type *place)
2402 {
2403 char **matching;
2404
2405 if (entry->loaded)
2406 return TRUE;
2407
2408 ldfile_open_file (entry);
2409
2410 if (! bfd_check_format (entry->the_bfd, bfd_archive)
2411 && ! bfd_check_format_matches (entry->the_bfd, bfd_object, &matching))
2412 {
2413 bfd_error_type err;
2414 lang_statement_list_type *hold;
2415 bfd_boolean bad_load = TRUE;
2416 bfd_boolean save_ldlang_sysrooted_script;
2417 bfd_boolean save_as_needed, save_add_needed;
2418
2419 err = bfd_get_error ();
2420
2421 /* See if the emulation has some special knowledge. */
2422 if (ldemul_unrecognized_file (entry))
2423 return TRUE;
2424
2425 if (err == bfd_error_file_ambiguously_recognized)
2426 {
2427 char **p;
2428
2429 einfo (_("%B: file not recognized: %E\n"), entry->the_bfd);
2430 einfo (_("%B: matching formats:"), entry->the_bfd);
2431 for (p = matching; *p != NULL; p++)
2432 einfo (" %s", *p);
2433 einfo ("%F\n");
2434 }
2435 else if (err != bfd_error_file_not_recognized
2436 || place == NULL)
2437 einfo (_("%F%B: file not recognized: %E\n"), entry->the_bfd);
2438 else
2439 bad_load = FALSE;
2440
2441 bfd_close (entry->the_bfd);
2442 entry->the_bfd = NULL;
2443
2444 /* Try to interpret the file as a linker script. */
2445 ldfile_open_command_file (entry->filename);
2446
2447 hold = stat_ptr;
2448 stat_ptr = place;
2449 save_ldlang_sysrooted_script = ldlang_sysrooted_script;
2450 ldlang_sysrooted_script = entry->sysrooted;
2451 save_as_needed = as_needed;
2452 as_needed = entry->as_needed;
2453 save_add_needed = add_needed;
2454 add_needed = entry->add_needed;
2455
2456 ldfile_assumed_script = TRUE;
2457 parser_input = input_script;
2458 /* We want to use the same -Bdynamic/-Bstatic as the one for
2459 ENTRY. */
2460 config.dynamic_link = entry->dynamic;
2461 yyparse ();
2462 ldfile_assumed_script = FALSE;
2463
2464 ldlang_sysrooted_script = save_ldlang_sysrooted_script;
2465 as_needed = save_as_needed;
2466 add_needed = save_add_needed;
2467 stat_ptr = hold;
2468
2469 return ! bad_load;
2470 }
2471
2472 if (ldemul_recognized_file (entry))
2473 return TRUE;
2474
2475 /* We don't call ldlang_add_file for an archive. Instead, the
2476 add_symbols entry point will call ldlang_add_file, via the
2477 add_archive_element callback, for each element of the archive
2478 which is used. */
2479 switch (bfd_get_format (entry->the_bfd))
2480 {
2481 default:
2482 break;
2483
2484 case bfd_object:
2485 ldlang_add_file (entry);
2486 if (trace_files || trace_file_tries)
2487 info_msg ("%I\n", entry);
2488 break;
2489
2490 case bfd_archive:
2491 check_excluded_libs (entry->the_bfd);
2492
2493 if (entry->whole_archive)
2494 {
2495 bfd *member = NULL;
2496 bfd_boolean loaded = TRUE;
2497
2498 for (;;)
2499 {
2500 member = bfd_openr_next_archived_file (entry->the_bfd, member);
2501
2502 if (member == NULL)
2503 break;
2504
2505 if (! bfd_check_format (member, bfd_object))
2506 {
2507 einfo (_("%F%B: member %B in archive is not an object\n"),
2508 entry->the_bfd, member);
2509 loaded = FALSE;
2510 }
2511
2512 if (! ((*link_info.callbacks->add_archive_element)
2513 (&link_info, member, "--whole-archive")))
2514 abort ();
2515
2516 if (! bfd_link_add_symbols (member, &link_info))
2517 {
2518 einfo (_("%F%B: could not read symbols: %E\n"), member);
2519 loaded = FALSE;
2520 }
2521 }
2522
2523 entry->loaded = loaded;
2524 return loaded;
2525 }
2526 break;
2527 }
2528
2529 if (bfd_link_add_symbols (entry->the_bfd, &link_info))
2530 entry->loaded = TRUE;
2531 else
2532 einfo (_("%F%B: could not read symbols: %E\n"), entry->the_bfd);
2533
2534 return entry->loaded;
2535 }
2536
2537 /* Handle a wild statement. S->FILENAME or S->SECTION_LIST or both
2538 may be NULL, indicating that it is a wildcard. Separate
2539 lang_input_section statements are created for each part of the
2540 expansion; they are added after the wild statement S. OUTPUT is
2541 the output section. */
2542
2543 static void
2544 wild (lang_wild_statement_type *s,
2545 const char *target ATTRIBUTE_UNUSED,
2546 lang_output_section_statement_type *output)
2547 {
2548 struct wildcard_list *sec;
2549
2550 if (s->handler_data[0]
2551 && s->handler_data[0]->spec.sorted == by_name
2552 && !s->filenames_sorted)
2553 {
2554 lang_section_bst_type *tree;
2555
2556 walk_wild (s, output_section_callback_fast, output);
2557
2558 tree = s->tree;
2559 if (tree)
2560 {
2561 output_section_callback_tree_to_list (s, tree, output);
2562 s->tree = NULL;
2563 }
2564 }
2565 else
2566 walk_wild (s, output_section_callback, output);
2567
2568 if (default_common_section == NULL)
2569 for (sec = s->section_list; sec != NULL; sec = sec->next)
2570 if (sec->spec.name != NULL && strcmp (sec->spec.name, "COMMON") == 0)
2571 {
2572 /* Remember the section that common is going to in case we
2573 later get something which doesn't know where to put it. */
2574 default_common_section = output;
2575 break;
2576 }
2577 }
2578
2579 /* Return TRUE iff target is the sought target. */
2580
2581 static int
2582 get_target (const bfd_target *target, void *data)
2583 {
2584 const char *sought = data;
2585
2586 return strcmp (target->name, sought) == 0;
2587 }
2588
2589 /* Like strcpy() but convert to lower case as well. */
2590
2591 static void
2592 stricpy (char *dest, char *src)
2593 {
2594 char c;
2595
2596 while ((c = *src++) != 0)
2597 *dest++ = TOLOWER (c);
2598
2599 *dest = 0;
2600 }
2601
2602 /* Remove the first occurrence of needle (if any) in haystack
2603 from haystack. */
2604
2605 static void
2606 strcut (char *haystack, char *needle)
2607 {
2608 haystack = strstr (haystack, needle);
2609
2610 if (haystack)
2611 {
2612 char *src;
2613
2614 for (src = haystack + strlen (needle); *src;)
2615 *haystack++ = *src++;
2616
2617 *haystack = 0;
2618 }
2619 }
2620
2621 /* Compare two target format name strings.
2622 Return a value indicating how "similar" they are. */
2623
2624 static int
2625 name_compare (char *first, char *second)
2626 {
2627 char *copy1;
2628 char *copy2;
2629 int result;
2630
2631 copy1 = xmalloc (strlen (first) + 1);
2632 copy2 = xmalloc (strlen (second) + 1);
2633
2634 /* Convert the names to lower case. */
2635 stricpy (copy1, first);
2636 stricpy (copy2, second);
2637
2638 /* Remove size and endian strings from the name. */
2639 strcut (copy1, "big");
2640 strcut (copy1, "little");
2641 strcut (copy2, "big");
2642 strcut (copy2, "little");
2643
2644 /* Return a value based on how many characters match,
2645 starting from the beginning. If both strings are
2646 the same then return 10 * their length. */
2647 for (result = 0; copy1[result] == copy2[result]; result++)
2648 if (copy1[result] == 0)
2649 {
2650 result *= 10;
2651 break;
2652 }
2653
2654 free (copy1);
2655 free (copy2);
2656
2657 return result;
2658 }
2659
2660 /* Set by closest_target_match() below. */
2661 static const bfd_target *winner;
2662
2663 /* Scan all the valid bfd targets looking for one that has the endianness
2664 requirement that was specified on the command line, and is the nearest
2665 match to the original output target. */
2666
2667 static int
2668 closest_target_match (const bfd_target *target, void *data)
2669 {
2670 const bfd_target *original = data;
2671
2672 if (command_line.endian == ENDIAN_BIG
2673 && target->byteorder != BFD_ENDIAN_BIG)
2674 return 0;
2675
2676 if (command_line.endian == ENDIAN_LITTLE
2677 && target->byteorder != BFD_ENDIAN_LITTLE)
2678 return 0;
2679
2680 /* Must be the same flavour. */
2681 if (target->flavour != original->flavour)
2682 return 0;
2683
2684 /* If we have not found a potential winner yet, then record this one. */
2685 if (winner == NULL)
2686 {
2687 winner = target;
2688 return 0;
2689 }
2690
2691 /* Oh dear, we now have two potential candidates for a successful match.
2692 Compare their names and choose the better one. */
2693 if (name_compare (target->name, original->name)
2694 > name_compare (winner->name, original->name))
2695 winner = target;
2696
2697 /* Keep on searching until wqe have checked them all. */
2698 return 0;
2699 }
2700
2701 /* Return the BFD target format of the first input file. */
2702
2703 static char *
2704 get_first_input_target (void)
2705 {
2706 char *target = NULL;
2707
2708 LANG_FOR_EACH_INPUT_STATEMENT (s)
2709 {
2710 if (s->header.type == lang_input_statement_enum
2711 && s->real)
2712 {
2713 ldfile_open_file (s);
2714
2715 if (s->the_bfd != NULL
2716 && bfd_check_format (s->the_bfd, bfd_object))
2717 {
2718 target = bfd_get_target (s->the_bfd);
2719
2720 if (target != NULL)
2721 break;
2722 }
2723 }
2724 }
2725
2726 return target;
2727 }
2728
2729 const char *
2730 lang_get_output_target (void)
2731 {
2732 const char *target;
2733
2734 /* Has the user told us which output format to use? */
2735 if (output_target != NULL)
2736 return output_target;
2737
2738 /* No - has the current target been set to something other than
2739 the default? */
2740 if (current_target != default_target)
2741 return current_target;
2742
2743 /* No - can we determine the format of the first input file? */
2744 target = get_first_input_target ();
2745 if (target != NULL)
2746 return target;
2747
2748 /* Failed - use the default output target. */
2749 return default_target;
2750 }
2751
2752 /* Open the output file. */
2753
2754 static bfd *
2755 open_output (const char *name)
2756 {
2757 bfd *output;
2758
2759 output_target = lang_get_output_target ();
2760
2761 /* Has the user requested a particular endianness on the command
2762 line? */
2763 if (command_line.endian != ENDIAN_UNSET)
2764 {
2765 const bfd_target *target;
2766 enum bfd_endian desired_endian;
2767
2768 /* Get the chosen target. */
2769 target = bfd_search_for_target (get_target, (void *) output_target);
2770
2771 /* If the target is not supported, we cannot do anything. */
2772 if (target != NULL)
2773 {
2774 if (command_line.endian == ENDIAN_BIG)
2775 desired_endian = BFD_ENDIAN_BIG;
2776 else
2777 desired_endian = BFD_ENDIAN_LITTLE;
2778
2779 /* See if the target has the wrong endianness. This should
2780 not happen if the linker script has provided big and
2781 little endian alternatives, but some scrips don't do
2782 this. */
2783 if (target->byteorder != desired_endian)
2784 {
2785 /* If it does, then see if the target provides
2786 an alternative with the correct endianness. */
2787 if (target->alternative_target != NULL
2788 && (target->alternative_target->byteorder == desired_endian))
2789 output_target = target->alternative_target->name;
2790 else
2791 {
2792 /* Try to find a target as similar as possible to
2793 the default target, but which has the desired
2794 endian characteristic. */
2795 bfd_search_for_target (closest_target_match,
2796 (void *) target);
2797
2798 /* Oh dear - we could not find any targets that
2799 satisfy our requirements. */
2800 if (winner == NULL)
2801 einfo (_("%P: warning: could not find any targets"
2802 " that match endianness requirement\n"));
2803 else
2804 output_target = winner->name;
2805 }
2806 }
2807 }
2808 }
2809
2810 output = bfd_openw (name, output_target);
2811
2812 if (output == NULL)
2813 {
2814 if (bfd_get_error () == bfd_error_invalid_target)
2815 einfo (_("%P%F: target %s not found\n"), output_target);
2816
2817 einfo (_("%P%F: cannot open output file %s: %E\n"), name);
2818 }
2819
2820 delete_output_file_on_failure = TRUE;
2821
2822 if (! bfd_set_format (output, bfd_object))
2823 einfo (_("%P%F:%s: can not make object file: %E\n"), name);
2824 if (! bfd_set_arch_mach (output,
2825 ldfile_output_architecture,
2826 ldfile_output_machine))
2827 einfo (_("%P%F:%s: can not set architecture: %E\n"), name);
2828
2829 link_info.hash = bfd_link_hash_table_create (output);
2830 if (link_info.hash == NULL)
2831 einfo (_("%P%F: can not create hash table: %E\n"));
2832
2833 bfd_set_gp_size (output, g_switch_value);
2834 return output;
2835 }
2836
2837 static void
2838 ldlang_open_output (lang_statement_union_type *statement)
2839 {
2840 switch (statement->header.type)
2841 {
2842 case lang_output_statement_enum:
2843 ASSERT (output_bfd == NULL);
2844 output_bfd = open_output (statement->output_statement.name);
2845 ldemul_set_output_arch ();
2846 if (config.magic_demand_paged && !link_info.relocatable)
2847 output_bfd->flags |= D_PAGED;
2848 else
2849 output_bfd->flags &= ~D_PAGED;
2850 if (config.text_read_only)
2851 output_bfd->flags |= WP_TEXT;
2852 else
2853 output_bfd->flags &= ~WP_TEXT;
2854 if (link_info.traditional_format)
2855 output_bfd->flags |= BFD_TRADITIONAL_FORMAT;
2856 else
2857 output_bfd->flags &= ~BFD_TRADITIONAL_FORMAT;
2858 break;
2859
2860 case lang_target_statement_enum:
2861 current_target = statement->target_statement.target;
2862 break;
2863 default:
2864 break;
2865 }
2866 }
2867
2868 /* Convert between addresses in bytes and sizes in octets.
2869 For currently supported targets, octets_per_byte is always a power
2870 of two, so we can use shifts. */
2871 #define TO_ADDR(X) ((X) >> opb_shift)
2872 #define TO_SIZE(X) ((X) << opb_shift)
2873
2874 /* Support the above. */
2875 static unsigned int opb_shift = 0;
2876
2877 static void
2878 init_opb (void)
2879 {
2880 unsigned x = bfd_arch_mach_octets_per_byte (ldfile_output_architecture,
2881 ldfile_output_machine);
2882 opb_shift = 0;
2883 if (x > 1)
2884 while ((x & 1) == 0)
2885 {
2886 x >>= 1;
2887 ++opb_shift;
2888 }
2889 ASSERT (x == 1);
2890 }
2891
2892 /* Open all the input files. */
2893
2894 static void
2895 open_input_bfds (lang_statement_union_type *s, bfd_boolean force)
2896 {
2897 for (; s != NULL; s = s->header.next)
2898 {
2899 switch (s->header.type)
2900 {
2901 case lang_constructors_statement_enum:
2902 open_input_bfds (constructor_list.head, force);
2903 break;
2904 case lang_output_section_statement_enum:
2905 open_input_bfds (s->output_section_statement.children.head, force);
2906 break;
2907 case lang_wild_statement_enum:
2908 /* Maybe we should load the file's symbols. */
2909 if (s->wild_statement.filename
2910 && ! wildcardp (s->wild_statement.filename))
2911 lookup_name (s->wild_statement.filename);
2912 open_input_bfds (s->wild_statement.children.head, force);
2913 break;
2914 case lang_group_statement_enum:
2915 {
2916 struct bfd_link_hash_entry *undefs;
2917
2918 /* We must continually search the entries in the group
2919 until no new symbols are added to the list of undefined
2920 symbols. */
2921
2922 do
2923 {
2924 undefs = link_info.hash->undefs_tail;
2925 open_input_bfds (s->group_statement.children.head, TRUE);
2926 }
2927 while (undefs != link_info.hash->undefs_tail);
2928 }
2929 break;
2930 case lang_target_statement_enum:
2931 current_target = s->target_statement.target;
2932 break;
2933 case lang_input_statement_enum:
2934 if (s->input_statement.real)
2935 {
2936 lang_statement_list_type add;
2937
2938 s->input_statement.target = current_target;
2939
2940 /* If we are being called from within a group, and this
2941 is an archive which has already been searched, then
2942 force it to be researched unless the whole archive
2943 has been loaded already. */
2944 if (force
2945 && !s->input_statement.whole_archive
2946 && s->input_statement.loaded
2947 && bfd_check_format (s->input_statement.the_bfd,
2948 bfd_archive))
2949 s->input_statement.loaded = FALSE;
2950
2951 lang_list_init (&add);
2952
2953 if (! load_symbols (&s->input_statement, &add))
2954 config.make_executable = FALSE;
2955
2956 if (add.head != NULL)
2957 {
2958 *add.tail = s->header.next;
2959 s->header.next = add.head;
2960 }
2961 }
2962 break;
2963 default:
2964 break;
2965 }
2966 }
2967 }
2968
2969 /* Add a symbol to a hash of symbols used in DEFINED (NAME) expressions. */
2970
2971 void
2972 lang_track_definedness (const char *name)
2973 {
2974 if (bfd_hash_lookup (&lang_definedness_table, name, TRUE, FALSE) == NULL)
2975 einfo (_("%P%F: bfd_hash_lookup failed creating symbol %s\n"), name);
2976 }
2977
2978 /* New-function for the definedness hash table. */
2979
2980 static struct bfd_hash_entry *
2981 lang_definedness_newfunc (struct bfd_hash_entry *entry,
2982 struct bfd_hash_table *table ATTRIBUTE_UNUSED,
2983 const char *name ATTRIBUTE_UNUSED)
2984 {
2985 struct lang_definedness_hash_entry *ret
2986 = (struct lang_definedness_hash_entry *) entry;
2987
2988 if (ret == NULL)
2989 ret = (struct lang_definedness_hash_entry *)
2990 bfd_hash_allocate (table, sizeof (struct lang_definedness_hash_entry));
2991
2992 if (ret == NULL)
2993 einfo (_("%P%F: bfd_hash_allocate failed creating symbol %s\n"), name);
2994
2995 ret->iteration = -1;
2996 return &ret->root;
2997 }
2998
2999 /* Return the iteration when the definition of NAME was last updated. A
3000 value of -1 means that the symbol is not defined in the linker script
3001 or the command line, but may be defined in the linker symbol table. */
3002
3003 int
3004 lang_symbol_definition_iteration (const char *name)
3005 {
3006 struct lang_definedness_hash_entry *defentry
3007 = (struct lang_definedness_hash_entry *)
3008 bfd_hash_lookup (&lang_definedness_table, name, FALSE, FALSE);
3009
3010 /* We've already created this one on the presence of DEFINED in the
3011 script, so it can't be NULL unless something is borked elsewhere in
3012 the code. */
3013 if (defentry == NULL)
3014 FAIL ();
3015
3016 return defentry->iteration;
3017 }
3018
3019 /* Update the definedness state of NAME. */
3020
3021 void
3022 lang_update_definedness (const char *name, struct bfd_link_hash_entry *h)
3023 {
3024 struct lang_definedness_hash_entry *defentry
3025 = (struct lang_definedness_hash_entry *)
3026 bfd_hash_lookup (&lang_definedness_table, name, FALSE, FALSE);
3027
3028 /* We don't keep track of symbols not tested with DEFINED. */
3029 if (defentry == NULL)
3030 return;
3031
3032 /* If the symbol was already defined, and not from an earlier statement
3033 iteration, don't update the definedness iteration, because that'd
3034 make the symbol seem defined in the linker script at this point, and
3035 it wasn't; it was defined in some object. If we do anyway, DEFINED
3036 would start to yield false before this point and the construct "sym =
3037 DEFINED (sym) ? sym : X;" would change sym to X despite being defined
3038 in an object. */
3039 if (h->type != bfd_link_hash_undefined
3040 && h->type != bfd_link_hash_common
3041 && h->type != bfd_link_hash_new
3042 && defentry->iteration == -1)
3043 return;
3044
3045 defentry->iteration = lang_statement_iteration;
3046 }
3047
3048 /* Add the supplied name to the symbol table as an undefined reference.
3049 This is a two step process as the symbol table doesn't even exist at
3050 the time the ld command line is processed. First we put the name
3051 on a list, then, once the output file has been opened, transfer the
3052 name to the symbol table. */
3053
3054 typedef struct bfd_sym_chain ldlang_undef_chain_list_type;
3055
3056 #define ldlang_undef_chain_list_head entry_symbol.next
3057
3058 void
3059 ldlang_add_undef (const char *const name)
3060 {
3061 ldlang_undef_chain_list_type *new =
3062 stat_alloc (sizeof (ldlang_undef_chain_list_type));
3063
3064 new->next = ldlang_undef_chain_list_head;
3065 ldlang_undef_chain_list_head = new;
3066
3067 new->name = xstrdup (name);
3068
3069 if (output_bfd != NULL)
3070 insert_undefined (new->name);
3071 }
3072
3073 /* Insert NAME as undefined in the symbol table. */
3074
3075 static void
3076 insert_undefined (const char *name)
3077 {
3078 struct bfd_link_hash_entry *h;
3079
3080 h = bfd_link_hash_lookup (link_info.hash, name, TRUE, FALSE, TRUE);
3081 if (h == NULL)
3082 einfo (_("%P%F: bfd_link_hash_lookup failed: %E\n"));
3083 if (h->type == bfd_link_hash_new)
3084 {
3085 h->type = bfd_link_hash_undefined;
3086 h->u.undef.abfd = NULL;
3087 bfd_link_add_undef (link_info.hash, h);
3088 }
3089 }
3090
3091 /* Run through the list of undefineds created above and place them
3092 into the linker hash table as undefined symbols belonging to the
3093 script file. */
3094
3095 static void
3096 lang_place_undefineds (void)
3097 {
3098 ldlang_undef_chain_list_type *ptr;
3099
3100 for (ptr = ldlang_undef_chain_list_head; ptr != NULL; ptr = ptr->next)
3101 insert_undefined (ptr->name);
3102 }
3103
3104 /* Check for all readonly or some readwrite sections. */
3105
3106 static void
3107 check_input_sections
3108 (lang_statement_union_type *s,
3109 lang_output_section_statement_type *output_section_statement)
3110 {
3111 for (; s != (lang_statement_union_type *) NULL; s = s->header.next)
3112 {
3113 switch (s->header.type)
3114 {
3115 case lang_wild_statement_enum:
3116 walk_wild (&s->wild_statement, check_section_callback,
3117 output_section_statement);
3118 if (! output_section_statement->all_input_readonly)
3119 return;
3120 break;
3121 case lang_constructors_statement_enum:
3122 check_input_sections (constructor_list.head,
3123 output_section_statement);
3124 if (! output_section_statement->all_input_readonly)
3125 return;
3126 break;
3127 case lang_group_statement_enum:
3128 check_input_sections (s->group_statement.children.head,
3129 output_section_statement);
3130 if (! output_section_statement->all_input_readonly)
3131 return;
3132 break;
3133 default:
3134 break;
3135 }
3136 }
3137 }
3138
3139 /* Update wildcard statements if needed. */
3140
3141 static void
3142 update_wild_statements (lang_statement_union_type *s)
3143 {
3144 struct wildcard_list *sec;
3145
3146 switch (sort_section)
3147 {
3148 default:
3149 FAIL ();
3150
3151 case none:
3152 break;
3153
3154 case by_name:
3155 case by_alignment:
3156 for (; s != NULL; s = s->header.next)
3157 {
3158 switch (s->header.type)
3159 {
3160 default:
3161 break;
3162
3163 case lang_wild_statement_enum:
3164 sec = s->wild_statement.section_list;
3165 for (sec = s->wild_statement.section_list; sec != NULL;
3166 sec = sec->next)
3167 {
3168 switch (sec->spec.sorted)
3169 {
3170 case none:
3171 sec->spec.sorted = sort_section;
3172 break;
3173 case by_name:
3174 if (sort_section == by_alignment)
3175 sec->spec.sorted = by_name_alignment;
3176 break;
3177 case by_alignment:
3178 if (sort_section == by_name)
3179 sec->spec.sorted = by_alignment_name;
3180 break;
3181 default:
3182 break;
3183 }
3184 }
3185 break;
3186
3187 case lang_constructors_statement_enum:
3188 update_wild_statements (constructor_list.head);
3189 break;
3190
3191 case lang_output_section_statement_enum:
3192 update_wild_statements
3193 (s->output_section_statement.children.head);
3194 break;
3195
3196 case lang_group_statement_enum:
3197 update_wild_statements (s->group_statement.children.head);
3198 break;
3199 }
3200 }
3201 break;
3202 }
3203 }
3204
3205 /* Open input files and attach to output sections. */
3206
3207 static void
3208 map_input_to_output_sections
3209 (lang_statement_union_type *s, const char *target,
3210 lang_output_section_statement_type *os)
3211 {
3212 flagword flags;
3213
3214 for (; s != NULL; s = s->header.next)
3215 {
3216 switch (s->header.type)
3217 {
3218 case lang_wild_statement_enum:
3219 wild (&s->wild_statement, target, os);
3220 break;
3221 case lang_constructors_statement_enum:
3222 map_input_to_output_sections (constructor_list.head,
3223 target,
3224 os);
3225 break;
3226 case lang_output_section_statement_enum:
3227 if (s->output_section_statement.constraint)
3228 {
3229 if (s->output_section_statement.constraint != ONLY_IF_RW
3230 && s->output_section_statement.constraint != ONLY_IF_RO)
3231 break;
3232 s->output_section_statement.all_input_readonly = TRUE;
3233 check_input_sections (s->output_section_statement.children.head,
3234 &s->output_section_statement);
3235 if ((s->output_section_statement.all_input_readonly
3236 && s->output_section_statement.constraint == ONLY_IF_RW)
3237 || (!s->output_section_statement.all_input_readonly
3238 && s->output_section_statement.constraint == ONLY_IF_RO))
3239 {
3240 s->output_section_statement.constraint = -1;
3241 break;
3242 }
3243 }
3244
3245 map_input_to_output_sections (s->output_section_statement.children.head,
3246 target,
3247 &s->output_section_statement);
3248 break;
3249 case lang_output_statement_enum:
3250 break;
3251 case lang_target_statement_enum:
3252 target = s->target_statement.target;
3253 break;
3254 case lang_group_statement_enum:
3255 map_input_to_output_sections (s->group_statement.children.head,
3256 target,
3257 os);
3258 break;
3259 case lang_data_statement_enum:
3260 /* Make sure that any sections mentioned in the expression
3261 are initialized. */
3262 exp_init_os (s->data_statement.exp);
3263 flags = SEC_HAS_CONTENTS;
3264 /* The output section gets contents, and then we inspect for
3265 any flags set in the input script which override any ALLOC. */
3266 if (!(os->flags & SEC_NEVER_LOAD))
3267 flags |= SEC_ALLOC | SEC_LOAD;
3268 if (os->bfd_section == NULL)
3269 init_os (os, NULL, flags);
3270 else
3271 os->bfd_section->flags |= flags;
3272 break;
3273 case lang_input_section_enum:
3274 break;
3275 case lang_fill_statement_enum:
3276 case lang_object_symbols_statement_enum:
3277 case lang_reloc_statement_enum:
3278 case lang_padding_statement_enum:
3279 case lang_input_statement_enum:
3280 if (os != NULL && os->bfd_section == NULL)
3281 init_os (os, NULL, 0);
3282 break;
3283 case lang_assignment_statement_enum:
3284 if (os != NULL && os->bfd_section == NULL)
3285 init_os (os, NULL, 0);
3286
3287 /* Make sure that any sections mentioned in the assignment
3288 are initialized. */
3289 exp_init_os (s->assignment_statement.exp);
3290 break;
3291 case lang_afile_asection_pair_statement_enum:
3292 FAIL ();
3293 break;
3294 case lang_address_statement_enum:
3295 /* Mark the specified section with the supplied address.
3296
3297 If this section was actually a segment marker, then the
3298 directive is ignored if the linker script explicitly
3299 processed the segment marker. Originally, the linker
3300 treated segment directives (like -Ttext on the
3301 command-line) as section directives. We honor the
3302 section directive semantics for backwards compatibilty;
3303 linker scripts that do not specifically check for
3304 SEGMENT_START automatically get the old semantics. */
3305 if (!s->address_statement.segment
3306 || !s->address_statement.segment->used)
3307 {
3308 lang_output_section_statement_type *aos
3309 = (lang_output_section_statement_lookup
3310 (s->address_statement.section_name));
3311
3312 if (aos->bfd_section == NULL)
3313 init_os (aos, NULL, 0);
3314 aos->addr_tree = s->address_statement.address;
3315 }
3316 break;
3317 }
3318 }
3319 }
3320
3321 /* An output section might have been removed after its statement was
3322 added. For example, ldemul_before_allocation can remove dynamic
3323 sections if they turn out to be not needed. Clean them up here. */
3324
3325 void
3326 strip_excluded_output_sections (void)
3327 {
3328 lang_output_section_statement_type *os;
3329
3330 /* Run lang_size_sections (if not already done). */
3331 if (expld.phase != lang_mark_phase_enum)
3332 {
3333 expld.phase = lang_mark_phase_enum;
3334 expld.dataseg.phase = exp_dataseg_none;
3335 one_lang_size_sections_pass (NULL, FALSE);
3336 lang_reset_memory_regions ();
3337 }
3338
3339 for (os = &lang_output_section_statement.head->output_section_statement;
3340 os != NULL;
3341 os = os->next)
3342 {
3343 asection *output_section;
3344 bfd_boolean exclude;
3345
3346 if (os->constraint == -1)
3347 continue;
3348
3349 output_section = os->bfd_section;
3350 if (output_section == NULL)
3351 continue;
3352
3353 exclude = (output_section->rawsize == 0
3354 && (output_section->flags & SEC_KEEP) == 0
3355 && !bfd_section_removed_from_list (output_bfd,
3356 output_section));
3357
3358 /* Some sections have not yet been sized, notably .gnu.version,
3359 .dynsym, .dynstr and .hash. These all have SEC_LINKER_CREATED
3360 input sections, so don't drop output sections that have such
3361 input sections unless they are also marked SEC_EXCLUDE. */
3362 if (exclude && output_section->map_head.s != NULL)
3363 {
3364 asection *s;
3365
3366 for (s = output_section->map_head.s; s != NULL; s = s->map_head.s)
3367 if ((s->flags & SEC_LINKER_CREATED) != 0
3368 && (s->flags & SEC_EXCLUDE) == 0)
3369 {
3370 exclude = FALSE;
3371 break;
3372 }
3373 }
3374
3375 /* TODO: Don't just junk map_head.s, turn them into link_orders. */
3376 output_section->map_head.link_order = NULL;
3377 output_section->map_tail.link_order = NULL;
3378
3379 if (exclude)
3380 {
3381 /* We don't set bfd_section to NULL since bfd_section of the
3382 removed output section statement may still be used. */
3383 if (!os->section_relative_symbol)
3384 os->ignored = TRUE;
3385 output_section->flags |= SEC_EXCLUDE;
3386 bfd_section_list_remove (output_bfd, output_section);
3387 output_bfd->section_count--;
3388 }
3389 }
3390
3391 /* Stop future calls to lang_add_section from messing with map_head
3392 and map_tail link_order fields. */
3393 stripped_excluded_sections = TRUE;
3394 }
3395
3396 static void
3397 print_output_section_statement
3398 (lang_output_section_statement_type *output_section_statement)
3399 {
3400 asection *section = output_section_statement->bfd_section;
3401 int len;
3402
3403 if (output_section_statement != abs_output_section)
3404 {
3405 minfo ("\n%s", output_section_statement->name);
3406
3407 if (section != NULL)
3408 {
3409 print_dot = section->vma;
3410
3411 len = strlen (output_section_statement->name);
3412 if (len >= SECTION_NAME_MAP_LENGTH - 1)
3413 {
3414 print_nl ();
3415 len = 0;
3416 }
3417 while (len < SECTION_NAME_MAP_LENGTH)
3418 {
3419 print_space ();
3420 ++len;
3421 }
3422
3423 minfo ("0x%V %W", section->vma, section->size);
3424
3425 if (section->vma != section->lma)
3426 minfo (_(" load address 0x%V"), section->lma);
3427 }
3428
3429 print_nl ();
3430 }
3431
3432 print_statement_list (output_section_statement->children.head,
3433 output_section_statement);
3434 }
3435
3436 /* Scan for the use of the destination in the right hand side
3437 of an expression. In such cases we will not compute the
3438 correct expression, since the value of DST that is used on
3439 the right hand side will be its final value, not its value
3440 just before this expression is evaluated. */
3441
3442 static bfd_boolean
3443 scan_for_self_assignment (const char * dst, etree_type * rhs)
3444 {
3445 if (rhs == NULL || dst == NULL)
3446 return FALSE;
3447
3448 switch (rhs->type.node_class)
3449 {
3450 case etree_binary:
3451 return scan_for_self_assignment (dst, rhs->binary.lhs)
3452 || scan_for_self_assignment (dst, rhs->binary.rhs);
3453
3454 case etree_trinary:
3455 return scan_for_self_assignment (dst, rhs->trinary.lhs)
3456 || scan_for_self_assignment (dst, rhs->trinary.rhs);
3457
3458 case etree_assign:
3459 case etree_provided:
3460 case etree_provide:
3461 if (strcmp (dst, rhs->assign.dst) == 0)
3462 return TRUE;
3463 return scan_for_self_assignment (dst, rhs->assign.src);
3464
3465 case etree_unary:
3466 return scan_for_self_assignment (dst, rhs->unary.child);
3467
3468 case etree_value:
3469 if (rhs->value.str)
3470 return strcmp (dst, rhs->value.str) == 0;
3471 return FALSE;
3472
3473 case etree_name:
3474 if (rhs->name.name)
3475 return strcmp (dst, rhs->name.name) == 0;
3476 return FALSE;
3477
3478 default:
3479 break;
3480 }
3481
3482 return FALSE;
3483 }
3484
3485
3486 static void
3487 print_assignment (lang_assignment_statement_type *assignment,
3488 lang_output_section_statement_type *output_section)
3489 {
3490 unsigned int i;
3491 bfd_boolean is_dot;
3492 bfd_boolean computation_is_valid = TRUE;
3493 etree_type *tree;
3494
3495 for (i = 0; i < SECTION_NAME_MAP_LENGTH; i++)
3496 print_space ();
3497
3498 if (assignment->exp->type.node_class == etree_assert)
3499 {
3500 is_dot = FALSE;
3501 tree = assignment->exp->assert_s.child;
3502 computation_is_valid = TRUE;
3503 }
3504 else
3505 {
3506 const char *dst = assignment->exp->assign.dst;
3507
3508 is_dot = (dst[0] == '.' && dst[1] == 0);
3509 tree = assignment->exp->assign.src;
3510 computation_is_valid = is_dot || (scan_for_self_assignment (dst, tree) == FALSE);
3511 }
3512
3513 exp_fold_tree (tree, output_section->bfd_section, &print_dot);
3514 if (expld.result.valid_p)
3515 {
3516 bfd_vma value;
3517
3518 if (computation_is_valid)
3519 {
3520 value = expld.result.value;
3521
3522 if (expld.result.section)
3523 value += expld.result.section->vma;
3524
3525 minfo ("0x%V", value);
3526 if (is_dot)
3527 print_dot = value;
3528 }
3529 else
3530 {
3531 struct bfd_link_hash_entry *h;
3532
3533 h = bfd_link_hash_lookup (link_info.hash, assignment->exp->assign.dst,
3534 FALSE, FALSE, TRUE);
3535 if (h)
3536 {
3537 value = h->u.def.value;
3538
3539 if (expld.result.section)
3540 value += expld.result.section->vma;
3541
3542 minfo ("[0x%V]", value);
3543 }
3544 else
3545 minfo ("[unresolved]");
3546 }
3547 }
3548 else
3549 {
3550 minfo ("*undef* ");
3551 #ifdef BFD64
3552 minfo (" ");
3553 #endif
3554 }
3555
3556 minfo (" ");
3557 exp_print_tree (assignment->exp);
3558 print_nl ();
3559 }
3560
3561 static void
3562 print_input_statement (lang_input_statement_type *statm)
3563 {
3564 if (statm->filename != NULL)
3565 {
3566 fprintf (config.map_file, "LOAD %s\n", statm->filename);
3567 }
3568 }
3569
3570 /* Print all symbols defined in a particular section. This is called
3571 via bfd_link_hash_traverse, or by print_all_symbols. */
3572
3573 static bfd_boolean
3574 print_one_symbol (struct bfd_link_hash_entry *hash_entry, void *ptr)
3575 {
3576 asection *sec = ptr;
3577
3578 if ((hash_entry->type == bfd_link_hash_defined
3579 || hash_entry->type == bfd_link_hash_defweak)
3580 && sec == hash_entry->u.def.section)
3581 {
3582 int i;
3583
3584 for (i = 0; i < SECTION_NAME_MAP_LENGTH; i++)
3585 print_space ();
3586 minfo ("0x%V ",
3587 (hash_entry->u.def.value
3588 + hash_entry->u.def.section->output_offset
3589 + hash_entry->u.def.section->output_section->vma));
3590
3591 minfo (" %T\n", hash_entry->root.string);
3592 }
3593
3594 return TRUE;
3595 }
3596
3597 static void
3598 print_all_symbols (asection *sec)
3599 {
3600 struct fat_user_section_struct *ud = get_userdata (sec);
3601 struct map_symbol_def *def;
3602
3603 if (!ud)
3604 return;
3605
3606 *ud->map_symbol_def_tail = 0;
3607 for (def = ud->map_symbol_def_head; def; def = def->next)
3608 print_one_symbol (def->entry, sec);
3609 }
3610
3611 /* Print information about an input section to the map file. */
3612
3613 static void
3614 print_input_section (asection *i)
3615 {
3616 bfd_size_type size = i->size;
3617 int len;
3618 bfd_vma addr;
3619
3620 init_opb ();
3621
3622 print_space ();
3623 minfo ("%s", i->name);
3624
3625 len = 1 + strlen (i->name);
3626 if (len >= SECTION_NAME_MAP_LENGTH - 1)
3627 {
3628 print_nl ();
3629 len = 0;
3630 }
3631 while (len < SECTION_NAME_MAP_LENGTH)
3632 {
3633 print_space ();
3634 ++len;
3635 }
3636
3637 if (i->output_section != NULL && i->output_section->owner == output_bfd)
3638 addr = i->output_section->vma + i->output_offset;
3639 else
3640 {
3641 addr = print_dot;
3642 size = 0;
3643 }
3644
3645 minfo ("0x%V %W %B\n", addr, TO_ADDR (size), i->owner);
3646
3647 if (size != i->rawsize && i->rawsize != 0)
3648 {
3649 len = SECTION_NAME_MAP_LENGTH + 3;
3650 #ifdef BFD64
3651 len += 16;
3652 #else
3653 len += 8;
3654 #endif
3655 while (len > 0)
3656 {
3657 print_space ();
3658 --len;
3659 }
3660
3661 minfo (_("%W (size before relaxing)\n"), i->rawsize);
3662 }
3663
3664 if (i->output_section != NULL && i->output_section->owner == output_bfd)
3665 {
3666 if (link_info.reduce_memory_overheads)
3667 bfd_link_hash_traverse (link_info.hash, print_one_symbol, i);
3668 else
3669 print_all_symbols (i);
3670
3671 print_dot = addr + TO_ADDR (size);
3672 }
3673 }
3674
3675 static void
3676 print_fill_statement (lang_fill_statement_type *fill)
3677 {
3678 size_t size;
3679 unsigned char *p;
3680 fputs (" FILL mask 0x", config.map_file);
3681 for (p = fill->fill->data, size = fill->fill->size; size != 0; p++, size--)
3682 fprintf (config.map_file, "%02x", *p);
3683 fputs ("\n", config.map_file);
3684 }
3685
3686 static void
3687 print_data_statement (lang_data_statement_type *data)
3688 {
3689 int i;
3690 bfd_vma addr;
3691 bfd_size_type size;
3692 const char *name;
3693
3694 init_opb ();
3695 for (i = 0; i < SECTION_NAME_MAP_LENGTH; i++)
3696 print_space ();
3697
3698 addr = data->output_offset;
3699 if (data->output_section != NULL)
3700 addr += data->output_section->vma;
3701
3702 switch (data->type)
3703 {
3704 default:
3705 abort ();
3706 case BYTE:
3707 size = BYTE_SIZE;
3708 name = "BYTE";
3709 break;
3710 case SHORT:
3711 size = SHORT_SIZE;
3712 name = "SHORT";
3713 break;
3714 case LONG:
3715 size = LONG_SIZE;
3716 name = "LONG";
3717 break;
3718 case QUAD:
3719 size = QUAD_SIZE;
3720 name = "QUAD";
3721 break;
3722 case SQUAD:
3723 size = QUAD_SIZE;
3724 name = "SQUAD";
3725 break;
3726 }
3727
3728 minfo ("0x%V %W %s 0x%v", addr, size, name, data->value);
3729
3730 if (data->exp->type.node_class != etree_value)
3731 {
3732 print_space ();
3733 exp_print_tree (data->exp);
3734 }
3735
3736 print_nl ();
3737
3738 print_dot = addr + TO_ADDR (size);
3739 }
3740
3741 /* Print an address statement. These are generated by options like
3742 -Ttext. */
3743
3744 static void
3745 print_address_statement (lang_address_statement_type *address)
3746 {
3747 minfo (_("Address of section %s set to "), address->section_name);
3748 exp_print_tree (address->address);
3749 print_nl ();
3750 }
3751
3752 /* Print a reloc statement. */
3753
3754 static void
3755 print_reloc_statement (lang_reloc_statement_type *reloc)
3756 {
3757 int i;
3758 bfd_vma addr;
3759 bfd_size_type size;
3760
3761 init_opb ();
3762 for (i = 0; i < SECTION_NAME_MAP_LENGTH; i++)
3763 print_space ();
3764
3765 addr = reloc->output_offset;
3766 if (reloc->output_section != NULL)
3767 addr += reloc->output_section->vma;
3768
3769 size = bfd_get_reloc_size (reloc->howto);
3770
3771 minfo ("0x%V %W RELOC %s ", addr, size, reloc->howto->name);
3772
3773 if (reloc->name != NULL)
3774 minfo ("%s+", reloc->name);
3775 else
3776 minfo ("%s+", reloc->section->name);
3777
3778 exp_print_tree (reloc->addend_exp);
3779
3780 print_nl ();
3781
3782 print_dot = addr + TO_ADDR (size);
3783 }
3784
3785 static void
3786 print_padding_statement (lang_padding_statement_type *s)
3787 {
3788 int len;
3789 bfd_vma addr;
3790
3791 init_opb ();
3792 minfo (" *fill*");
3793
3794 len = sizeof " *fill*" - 1;
3795 while (len < SECTION_NAME_MAP_LENGTH)
3796 {
3797 print_space ();
3798 ++len;
3799 }
3800
3801 addr = s->output_offset;
3802 if (s->output_section != NULL)
3803 addr += s->output_section->vma;
3804 minfo ("0x%V %W ", addr, (bfd_vma) s->size);
3805
3806 if (s->fill->size != 0)
3807 {
3808 size_t size;
3809 unsigned char *p;
3810 for (p = s->fill->data, size = s->fill->size; size != 0; p++, size--)
3811 fprintf (config.map_file, "%02x", *p);
3812 }
3813
3814 print_nl ();
3815
3816 print_dot = addr + TO_ADDR (s->size);
3817 }
3818
3819 static void
3820 print_wild_statement (lang_wild_statement_type *w,
3821 lang_output_section_statement_type *os)
3822 {
3823 struct wildcard_list *sec;
3824
3825 print_space ();
3826
3827 if (w->filenames_sorted)
3828 minfo ("SORT(");
3829 if (w->filename != NULL)
3830 minfo ("%s", w->filename);
3831 else
3832 minfo ("*");
3833 if (w->filenames_sorted)
3834 minfo (")");
3835
3836 minfo ("(");
3837 for (sec = w->section_list; sec; sec = sec->next)
3838 {
3839 if (sec->spec.sorted)
3840 minfo ("SORT(");
3841 if (sec->spec.exclude_name_list != NULL)
3842 {
3843 name_list *tmp;
3844 minfo ("EXCLUDE_FILE(%s", sec->spec.exclude_name_list->name);
3845 for (tmp = sec->spec.exclude_name_list->next; tmp; tmp = tmp->next)
3846 minfo (" %s", tmp->name);
3847 minfo (") ");
3848 }
3849 if (sec->spec.name != NULL)
3850 minfo ("%s", sec->spec.name);
3851 else
3852 minfo ("*");
3853 if (sec->spec.sorted)
3854 minfo (")");
3855 if (sec->next)
3856 minfo (" ");
3857 }
3858 minfo (")");
3859
3860 print_nl ();
3861
3862 print_statement_list (w->children.head, os);
3863 }
3864
3865 /* Print a group statement. */
3866
3867 static void
3868 print_group (lang_group_statement_type *s,
3869 lang_output_section_statement_type *os)
3870 {
3871 fprintf (config.map_file, "START GROUP\n");
3872 print_statement_list (s->children.head, os);
3873 fprintf (config.map_file, "END GROUP\n");
3874 }
3875
3876 /* Print the list of statements in S.
3877 This can be called for any statement type. */
3878
3879 static void
3880 print_statement_list (lang_statement_union_type *s,
3881 lang_output_section_statement_type *os)
3882 {
3883 while (s != NULL)
3884 {
3885 print_statement (s, os);
3886 s = s->header.next;
3887 }
3888 }
3889
3890 /* Print the first statement in statement list S.
3891 This can be called for any statement type. */
3892
3893 static void
3894 print_statement (lang_statement_union_type *s,
3895 lang_output_section_statement_type *os)
3896 {
3897 switch (s->header.type)
3898 {
3899 default:
3900 fprintf (config.map_file, _("Fail with %d\n"), s->header.type);
3901 FAIL ();
3902 break;
3903 case lang_constructors_statement_enum:
3904 if (constructor_list.head != NULL)
3905 {
3906 if (constructors_sorted)
3907 minfo (" SORT (CONSTRUCTORS)\n");
3908 else
3909 minfo (" CONSTRUCTORS\n");
3910 print_statement_list (constructor_list.head, os);
3911 }
3912 break;
3913 case lang_wild_statement_enum:
3914 print_wild_statement (&s->wild_statement, os);
3915 break;
3916 case lang_address_statement_enum:
3917 print_address_statement (&s->address_statement);
3918 break;
3919 case lang_object_symbols_statement_enum:
3920 minfo (" CREATE_OBJECT_SYMBOLS\n");
3921 break;
3922 case lang_fill_statement_enum:
3923 print_fill_statement (&s->fill_statement);
3924 break;
3925 case lang_data_statement_enum:
3926 print_data_statement (&s->data_statement);
3927 break;
3928 case lang_reloc_statement_enum:
3929 print_reloc_statement (&s->reloc_statement);
3930 break;
3931 case lang_input_section_enum:
3932 print_input_section (s->input_section.section);
3933 break;
3934 case lang_padding_statement_enum:
3935 print_padding_statement (&s->padding_statement);
3936 break;
3937 case lang_output_section_statement_enum:
3938 print_output_section_statement (&s->output_section_statement);
3939 break;
3940 case lang_assignment_statement_enum:
3941 print_assignment (&s->assignment_statement, os);
3942 break;
3943 case lang_target_statement_enum:
3944 fprintf (config.map_file, "TARGET(%s)\n", s->target_statement.target);
3945 break;
3946 case lang_output_statement_enum:
3947 minfo ("OUTPUT(%s", s->output_statement.name);
3948 if (output_target != NULL)
3949 minfo (" %s", output_target);
3950 minfo (")\n");
3951 break;
3952 case lang_input_statement_enum:
3953 print_input_statement (&s->input_statement);
3954 break;
3955 case lang_group_statement_enum:
3956 print_group (&s->group_statement, os);
3957 break;
3958 case lang_afile_asection_pair_statement_enum:
3959 FAIL ();
3960 break;
3961 }
3962 }
3963
3964 static void
3965 print_statements (void)
3966 {
3967 print_statement_list (statement_list.head, abs_output_section);
3968 }
3969
3970 /* Print the first N statements in statement list S to STDERR.
3971 If N == 0, nothing is printed.
3972 If N < 0, the entire list is printed.
3973 Intended to be called from GDB. */
3974
3975 void
3976 dprint_statement (lang_statement_union_type *s, int n)
3977 {
3978 FILE *map_save = config.map_file;
3979
3980 config.map_file = stderr;
3981
3982 if (n < 0)
3983 print_statement_list (s, abs_output_section);
3984 else
3985 {
3986 while (s && --n >= 0)
3987 {
3988 print_statement (s, abs_output_section);
3989 s = s->header.next;
3990 }
3991 }
3992
3993 config.map_file = map_save;
3994 }
3995
3996 static void
3997 insert_pad (lang_statement_union_type **ptr,
3998 fill_type *fill,
3999 unsigned int alignment_needed,
4000 asection *output_section,
4001 bfd_vma dot)
4002 {
4003 static fill_type zero_fill = { 1, { 0 } };
4004 lang_statement_union_type *pad = NULL;
4005
4006 if (ptr != &statement_list.head)
4007 pad = ((lang_statement_union_type *)
4008 ((char *) ptr - offsetof (lang_statement_union_type, header.next)));
4009 if (pad != NULL
4010 && pad->header.type == lang_padding_statement_enum
4011 && pad->padding_statement.output_section == output_section)
4012 {
4013 /* Use the existing pad statement. */
4014 }
4015 else if ((pad = *ptr) != NULL
4016 && pad->header.type == lang_padding_statement_enum
4017 && pad->padding_statement.output_section == output_section)
4018 {
4019 /* Use the existing pad statement. */
4020 }
4021 else
4022 {
4023 /* Make a new padding statement, linked into existing chain. */
4024 pad = stat_alloc (sizeof (lang_padding_statement_type));
4025 pad->header.next = *ptr;
4026 *ptr = pad;
4027 pad->header.type = lang_padding_statement_enum;
4028 pad->padding_statement.output_section = output_section;
4029 if (fill == NULL)
4030 fill = &zero_fill;
4031 pad->padding_statement.fill = fill;
4032 }
4033 pad->padding_statement.output_offset = dot - output_section->vma;
4034 pad->padding_statement.size = alignment_needed;
4035 output_section->size += alignment_needed;
4036 }
4037
4038 /* Work out how much this section will move the dot point. */
4039
4040 static bfd_vma
4041 size_input_section
4042 (lang_statement_union_type **this_ptr,
4043 lang_output_section_statement_type *output_section_statement,
4044 fill_type *fill,
4045 bfd_vma dot)
4046 {
4047 lang_input_section_type *is = &((*this_ptr)->input_section);
4048 asection *i = is->section;
4049
4050 if (!((lang_input_statement_type *) i->owner->usrdata)->just_syms_flag
4051 && (i->flags & SEC_EXCLUDE) == 0)
4052 {
4053 unsigned int alignment_needed;
4054 asection *o;
4055
4056 /* Align this section first to the input sections requirement,
4057 then to the output section's requirement. If this alignment
4058 is greater than any seen before, then record it too. Perform
4059 the alignment by inserting a magic 'padding' statement. */
4060
4061 if (output_section_statement->subsection_alignment != -1)
4062 i->alignment_power = output_section_statement->subsection_alignment;
4063
4064 o = output_section_statement->bfd_section;
4065 if (o->alignment_power < i->alignment_power)
4066 o->alignment_power = i->alignment_power;
4067
4068 alignment_needed = align_power (dot, i->alignment_power) - dot;
4069
4070 if (alignment_needed != 0)
4071 {
4072 insert_pad (this_ptr, fill, TO_SIZE (alignment_needed), o, dot);
4073 dot += alignment_needed;
4074 }
4075
4076 /* Remember where in the output section this input section goes. */
4077
4078 i->output_offset = dot - o->vma;
4079
4080 /* Mark how big the output section must be to contain this now. */
4081 dot += TO_ADDR (i->size);
4082 o->size = TO_SIZE (dot - o->vma);
4083 }
4084 else
4085 {
4086 i->output_offset = i->vma - output_section_statement->bfd_section->vma;
4087 }
4088
4089 return dot;
4090 }
4091
4092 static int
4093 sort_sections_by_lma (const void *arg1, const void *arg2)
4094 {
4095 const asection *sec1 = *(const asection **) arg1;
4096 const asection *sec2 = *(const asection **) arg2;
4097
4098 if (bfd_section_lma (sec1->owner, sec1)
4099 < bfd_section_lma (sec2->owner, sec2))
4100 return -1;
4101 else if (bfd_section_lma (sec1->owner, sec1)
4102 > bfd_section_lma (sec2->owner, sec2))
4103 return 1;
4104
4105 return 0;
4106 }
4107
4108 #define IGNORE_SECTION(s) \
4109 ((s->flags & SEC_NEVER_LOAD) != 0 \
4110 || (s->flags & SEC_ALLOC) == 0 \
4111 || ((s->flags & SEC_THREAD_LOCAL) != 0 \
4112 && (s->flags & SEC_LOAD) == 0))
4113
4114 /* Check to see if any allocated sections overlap with other allocated
4115 sections. This can happen if a linker script specifies the output
4116 section addresses of the two sections. */
4117
4118 static void
4119 lang_check_section_addresses (void)
4120 {
4121 asection *s, *os;
4122 asection **sections, **spp;
4123 unsigned int count;
4124 bfd_vma s_start;
4125 bfd_vma s_end;
4126 bfd_vma os_start;
4127 bfd_vma os_end;
4128 bfd_size_type amt;
4129
4130 if (bfd_count_sections (output_bfd) <= 1)
4131 return;
4132
4133 amt = bfd_count_sections (output_bfd) * sizeof (asection *);
4134 sections = xmalloc (amt);
4135
4136 /* Scan all sections in the output list. */
4137 count = 0;
4138 for (s = output_bfd->sections; s != NULL; s = s->next)
4139 {
4140 /* Only consider loadable sections with real contents. */
4141 if (IGNORE_SECTION (s) || s->size == 0)
4142 continue;
4143
4144 sections[count] = s;
4145 count++;
4146 }
4147
4148 if (count <= 1)
4149 return;
4150
4151 qsort (sections, (size_t) count, sizeof (asection *),
4152 sort_sections_by_lma);
4153
4154 spp = sections;
4155 s = *spp++;
4156 s_start = bfd_section_lma (output_bfd, s);
4157 s_end = s_start + TO_ADDR (s->size) - 1;
4158 for (count--; count; count--)
4159 {
4160 /* We must check the sections' LMA addresses not their VMA
4161 addresses because overlay sections can have overlapping VMAs
4162 but they must have distinct LMAs. */
4163 os = s;
4164 os_start = s_start;
4165 os_end = s_end;
4166 s = *spp++;
4167 s_start = bfd_section_lma (output_bfd, s);
4168 s_end = s_start + TO_ADDR (s->size) - 1;
4169
4170 /* Look for an overlap. */
4171 if (s_end >= os_start && s_start <= os_end)
4172 einfo (_("%X%P: section %s [%V -> %V] overlaps section %s [%V -> %V]\n"),
4173 s->name, s_start, s_end, os->name, os_start, os_end);
4174 }
4175
4176 free (sections);
4177 }
4178
4179 /* Make sure the new address is within the region. We explicitly permit the
4180 current address to be at the exact end of the region when the address is
4181 non-zero, in case the region is at the end of addressable memory and the
4182 calculation wraps around. */
4183
4184 static void
4185 os_region_check (lang_output_section_statement_type *os,
4186 lang_memory_region_type *region,
4187 etree_type *tree,
4188 bfd_vma base)
4189 {
4190 if ((region->current < region->origin
4191 || (region->current - region->origin > region->length))
4192 && ((region->current != region->origin + region->length)
4193 || base == 0))
4194 {
4195 if (tree != NULL)
4196 {
4197 einfo (_("%X%P: address 0x%v of %B section %s"
4198 " is not within region %s\n"),
4199 region->current,
4200 os->bfd_section->owner,
4201 os->bfd_section->name,
4202 region->name);
4203 }
4204 else
4205 {
4206 einfo (_("%X%P: region %s is full (%B section %s)\n"),
4207 region->name,
4208 os->bfd_section->owner,
4209 os->bfd_section->name);
4210 }
4211 /* Reset the region pointer. */
4212 region->current = region->origin;
4213 }
4214 }
4215
4216 /* Set the sizes for all the output sections. */
4217
4218 static bfd_vma
4219 lang_size_sections_1
4220 (lang_statement_union_type *s,
4221 lang_output_section_statement_type *output_section_statement,
4222 lang_statement_union_type **prev,
4223 fill_type *fill,
4224 bfd_vma dot,
4225 bfd_boolean *relax,
4226 bfd_boolean check_regions)
4227 {
4228 /* Size up the sections from their constituent parts. */
4229 for (; s != NULL; s = s->header.next)
4230 {
4231 switch (s->header.type)
4232 {
4233 case lang_output_section_statement_enum:
4234 {
4235 bfd_vma newdot, after;
4236 lang_output_section_statement_type *os;
4237 lang_memory_region_type *r;
4238
4239 os = &s->output_section_statement;
4240 if (os->addr_tree != NULL)
4241 {
4242 os->processed_vma = FALSE;
4243 exp_fold_tree (os->addr_tree, bfd_abs_section_ptr, &dot);
4244
4245 if (!expld.result.valid_p
4246 && expld.phase != lang_mark_phase_enum)
4247 einfo (_("%F%S: non constant or forward reference"
4248 " address expression for section %s\n"),
4249 os->name);
4250
4251 dot = expld.result.value + expld.result.section->vma;
4252 }
4253
4254 if (os->bfd_section == NULL)
4255 /* This section was removed or never actually created. */
4256 break;
4257
4258 /* If this is a COFF shared library section, use the size and
4259 address from the input section. FIXME: This is COFF
4260 specific; it would be cleaner if there were some other way
4261 to do this, but nothing simple comes to mind. */
4262 if ((bfd_get_flavour (output_bfd) == bfd_target_ecoff_flavour
4263 || bfd_get_flavour (output_bfd) == bfd_target_coff_flavour)
4264 && (os->bfd_section->flags & SEC_COFF_SHARED_LIBRARY) != 0)
4265 {
4266 asection *input;
4267
4268 if (os->children.head == NULL
4269 || os->children.head->header.next != NULL
4270 || (os->children.head->header.type
4271 != lang_input_section_enum))
4272 einfo (_("%P%X: Internal error on COFF shared library"
4273 " section %s\n"), os->name);
4274
4275 input = os->children.head->input_section.section;
4276 bfd_set_section_vma (os->bfd_section->owner,
4277 os->bfd_section,
4278 bfd_section_vma (input->owner, input));
4279 os->bfd_section->size = input->size;
4280 break;
4281 }
4282
4283 newdot = dot;
4284 if (bfd_is_abs_section (os->bfd_section))
4285 {
4286 /* No matter what happens, an abs section starts at zero. */
4287 ASSERT (os->bfd_section->vma == 0);
4288 }
4289 else
4290 {
4291 int align;
4292
4293 if (os->addr_tree == NULL)
4294 {
4295 /* No address specified for this section, get one
4296 from the region specification. */
4297 if (os->region == NULL
4298 || ((os->bfd_section->flags & (SEC_ALLOC | SEC_LOAD))
4299 && os->region->name[0] == '*'
4300 && strcmp (os->region->name,
4301 DEFAULT_MEMORY_REGION) == 0))
4302 {
4303 os->region = lang_memory_default (os->bfd_section);
4304 }
4305
4306 /* If a loadable section is using the default memory
4307 region, and some non default memory regions were
4308 defined, issue an error message. */
4309 if (!os->ignored
4310 && !IGNORE_SECTION (os->bfd_section)
4311 && ! link_info.relocatable
4312 && check_regions
4313 && strcmp (os->region->name,
4314 DEFAULT_MEMORY_REGION) == 0
4315 && lang_memory_region_list != NULL
4316 && (strcmp (lang_memory_region_list->name,
4317 DEFAULT_MEMORY_REGION) != 0
4318 || lang_memory_region_list->next != NULL)
4319 && expld.phase != lang_mark_phase_enum)
4320 {
4321 /* By default this is an error rather than just a
4322 warning because if we allocate the section to the
4323 default memory region we can end up creating an
4324 excessively large binary, or even seg faulting when
4325 attempting to perform a negative seek. See
4326 sources.redhat.com/ml/binutils/2003-04/msg00423.html
4327 for an example of this. This behaviour can be
4328 overridden by the using the --no-check-sections
4329 switch. */
4330 if (command_line.check_section_addresses)
4331 einfo (_("%P%F: error: no memory region specified"
4332 " for loadable section `%s'\n"),
4333 bfd_get_section_name (output_bfd,
4334 os->bfd_section));
4335 else
4336 einfo (_("%P: warning: no memory region specified"
4337 " for loadable section `%s'\n"),
4338 bfd_get_section_name (output_bfd,
4339 os->bfd_section));
4340 }
4341
4342 newdot = os->region->current;
4343 align = os->bfd_section->alignment_power;
4344 }
4345 else
4346 align = os->section_alignment;
4347
4348 /* Align to what the section needs. */
4349 if (align > 0)
4350 {
4351 bfd_vma savedot = newdot;
4352 newdot = align_power (newdot, align);
4353
4354 if (newdot != savedot
4355 && (config.warn_section_align
4356 || os->addr_tree != NULL)
4357 && expld.phase != lang_mark_phase_enum)
4358 einfo (_("%P: warning: changing start of section"
4359 " %s by %lu bytes\n"),
4360 os->name, (unsigned long) (newdot - savedot));
4361 }
4362
4363 bfd_set_section_vma (0, os->bfd_section, newdot);
4364
4365 os->bfd_section->output_offset = 0;
4366 }
4367
4368 lang_size_sections_1 (os->children.head, os, &os->children.head,
4369 os->fill, newdot, relax, check_regions);
4370
4371 os->processed_vma = TRUE;
4372
4373 if (bfd_is_abs_section (os->bfd_section) || os->ignored)
4374 /* Except for some special linker created sections,
4375 no output section should change from zero size
4376 after strip_excluded_output_sections. A non-zero
4377 size on an ignored section indicates that some
4378 input section was not sized early enough. */
4379 ASSERT (os->bfd_section->size == 0);
4380 else
4381 {
4382 dot = os->bfd_section->vma;
4383
4384 /* Put the section within the requested block size, or
4385 align at the block boundary. */
4386 after = ((dot
4387 + TO_ADDR (os->bfd_section->size)
4388 + os->block_value - 1)
4389 & - (bfd_vma) os->block_value);
4390
4391 os->bfd_section->size = TO_SIZE (after - os->bfd_section->vma);
4392 }
4393
4394 /* Set section lma. */
4395 r = os->region;
4396 if (r == NULL)
4397 r = lang_memory_region_lookup (DEFAULT_MEMORY_REGION, FALSE);
4398
4399 if (os->load_base)
4400 {
4401 bfd_vma lma = exp_get_abs_int (os->load_base, 0, "load base");
4402 os->bfd_section->lma = lma;
4403 }
4404 else if (os->region != NULL
4405 && os->lma_region != NULL
4406 && os->lma_region != os->region)
4407 {
4408 bfd_vma lma = os->lma_region->current;
4409
4410 if (os->section_alignment != -1)
4411 lma = align_power (lma, os->section_alignment);
4412 os->bfd_section->lma = lma;
4413 }
4414 else if (r->last_os != NULL
4415 && (os->bfd_section->flags & SEC_ALLOC) != 0)
4416 {
4417 bfd_vma lma;
4418 asection *last;
4419
4420 last = r->last_os->output_section_statement.bfd_section;
4421
4422 /* A backwards move of dot should be accompanied by
4423 an explicit assignment to the section LMA (ie.
4424 os->load_base set) because backwards moves can
4425 create overlapping LMAs. */
4426 if (dot < last->vma
4427 && os->bfd_section->size != 0
4428 && dot + os->bfd_section->size <= last->vma)
4429 {
4430 /* If dot moved backwards then leave lma equal to
4431 vma. This is the old default lma, which might
4432 just happen to work when the backwards move is
4433 sufficiently large. Nag if this changes anything,
4434 so people can fix their linker scripts. */
4435
4436 if (last->vma != last->lma)
4437 einfo (_("%P: warning: dot moved backwards before `%s'\n"),
4438 os->name);
4439 }
4440 else
4441 {
4442 /* If this is an overlay, set the current lma to that
4443 at the end of the previous section. */
4444 if (os->sectype == overlay_section)
4445 lma = last->lma + last->size;
4446
4447 /* Otherwise, keep the same lma to vma relationship
4448 as the previous section. */
4449 else
4450 lma = dot + last->lma - last->vma;
4451
4452 if (os->section_alignment != -1)
4453 lma = align_power (lma, os->section_alignment);
4454 os->bfd_section->lma = lma;
4455 }
4456 }
4457 os->processed_lma = TRUE;
4458
4459 if (bfd_is_abs_section (os->bfd_section) || os->ignored)
4460 break;
4461
4462 /* Keep track of normal sections using the default
4463 lma region. We use this to set the lma for
4464 following sections. Overlays or other linker
4465 script assignment to lma might mean that the
4466 default lma == vma is incorrect.
4467 To avoid warnings about dot moving backwards when using
4468 -Ttext, don't start tracking sections until we find one
4469 of non-zero size or with lma set differently to vma. */
4470 if (((os->bfd_section->flags & SEC_HAS_CONTENTS) != 0
4471 || (os->bfd_section->flags & SEC_THREAD_LOCAL) == 0)
4472 && (os->bfd_section->flags & SEC_ALLOC) != 0
4473 && (os->bfd_section->size != 0
4474 || (r->last_os == NULL
4475 && os->bfd_section->vma != os->bfd_section->lma)
4476 || (r->last_os != NULL
4477 && dot >= (r->last_os->output_section_statement
4478 .bfd_section->vma)))
4479 && os->lma_region == NULL
4480 && !link_info.relocatable)
4481 r->last_os = s;
4482
4483 /* .tbss sections effectively have zero size. */
4484 if ((os->bfd_section->flags & SEC_HAS_CONTENTS) != 0
4485 || (os->bfd_section->flags & SEC_THREAD_LOCAL) == 0
4486 || link_info.relocatable)
4487 dot += TO_ADDR (os->bfd_section->size);
4488
4489 if (os->update_dot_tree != 0)
4490 exp_fold_tree (os->update_dot_tree, bfd_abs_section_ptr, &dot);
4491
4492 /* Update dot in the region ?
4493 We only do this if the section is going to be allocated,
4494 since unallocated sections do not contribute to the region's
4495 overall size in memory.
4496
4497 If the SEC_NEVER_LOAD bit is not set, it will affect the
4498 addresses of sections after it. We have to update
4499 dot. */
4500 if (os->region != NULL
4501 && ((os->bfd_section->flags & SEC_NEVER_LOAD) == 0
4502 || (os->bfd_section->flags & (SEC_ALLOC | SEC_LOAD))))
4503 {
4504 os->region->current = dot;
4505
4506 if (check_regions)
4507 /* Make sure the new address is within the region. */
4508 os_region_check (os, os->region, os->addr_tree,
4509 os->bfd_section->vma);
4510
4511 if (os->lma_region != NULL && os->lma_region != os->region)
4512 {
4513 os->lma_region->current
4514 = os->bfd_section->lma + TO_ADDR (os->bfd_section->size);
4515
4516 if (check_regions)
4517 os_region_check (os, os->lma_region, NULL,
4518 os->bfd_section->lma);
4519 }
4520 }
4521 }
4522 break;
4523
4524 case lang_constructors_statement_enum:
4525 dot = lang_size_sections_1 (constructor_list.head,
4526 output_section_statement,
4527 &s->wild_statement.children.head,
4528 fill, dot, relax, check_regions);
4529 break;
4530
4531 case lang_data_statement_enum:
4532 {
4533 unsigned int size = 0;
4534
4535 s->data_statement.output_offset =
4536 dot - output_section_statement->bfd_section->vma;
4537 s->data_statement.output_section =
4538 output_section_statement->bfd_section;
4539
4540 /* We might refer to provided symbols in the expression, and
4541 need to mark them as needed. */
4542 exp_fold_tree (s->data_statement.exp, bfd_abs_section_ptr, &dot);
4543
4544 switch (s->data_statement.type)
4545 {
4546 default:
4547 abort ();
4548 case QUAD:
4549 case SQUAD:
4550 size = QUAD_SIZE;
4551 break;
4552 case LONG:
4553 size = LONG_SIZE;
4554 break;
4555 case SHORT:
4556 size = SHORT_SIZE;
4557 break;
4558 case BYTE:
4559 size = BYTE_SIZE;
4560 break;
4561 }
4562 if (size < TO_SIZE ((unsigned) 1))
4563 size = TO_SIZE ((unsigned) 1);
4564 dot += TO_ADDR (size);
4565 output_section_statement->bfd_section->size += size;
4566 }
4567 break;
4568
4569 case lang_reloc_statement_enum:
4570 {
4571 int size;
4572
4573 s->reloc_statement.output_offset =
4574 dot - output_section_statement->bfd_section->vma;
4575 s->reloc_statement.output_section =
4576 output_section_statement->bfd_section;
4577 size = bfd_get_reloc_size (s->reloc_statement.howto);
4578 dot += TO_ADDR (size);
4579 output_section_statement->bfd_section->size += size;
4580 }
4581 break;
4582
4583 case lang_wild_statement_enum:
4584 dot = lang_size_sections_1 (s->wild_statement.children.head,
4585 output_section_statement,
4586 &s->wild_statement.children.head,
4587 fill, dot, relax, check_regions);
4588 break;
4589
4590 case lang_object_symbols_statement_enum:
4591 link_info.create_object_symbols_section =
4592 output_section_statement->bfd_section;
4593 break;
4594
4595 case lang_output_statement_enum:
4596 case lang_target_statement_enum:
4597 break;
4598
4599 case lang_input_section_enum:
4600 {
4601 asection *i;
4602
4603 i = (*prev)->input_section.section;
4604 if (relax)
4605 {
4606 bfd_boolean again;
4607
4608 if (! bfd_relax_section (i->owner, i, &link_info, &again))
4609 einfo (_("%P%F: can't relax section: %E\n"));
4610 if (again)
4611 *relax = TRUE;
4612 }
4613 dot = size_input_section (prev, output_section_statement,
4614 output_section_statement->fill, dot);
4615 }
4616 break;
4617
4618 case lang_input_statement_enum:
4619 break;
4620
4621 case lang_fill_statement_enum:
4622 s->fill_statement.output_section =
4623 output_section_statement->bfd_section;
4624
4625 fill = s->fill_statement.fill;
4626 break;
4627
4628 case lang_assignment_statement_enum:
4629 {
4630 bfd_vma newdot = dot;
4631 etree_type *tree = s->assignment_statement.exp;
4632
4633 exp_fold_tree (tree,
4634 output_section_statement->bfd_section,
4635 &newdot);
4636
4637 /* This symbol is relative to this section. */
4638 if ((tree->type.node_class == etree_provided
4639 || tree->type.node_class == etree_assign)
4640 && (tree->assign.dst [0] != '.'
4641 || tree->assign.dst [1] != '\0'))
4642 output_section_statement->section_relative_symbol = 1;
4643
4644 if (!output_section_statement->ignored)
4645 {
4646 if (output_section_statement == abs_output_section)
4647 {
4648 /* If we don't have an output section, then just adjust
4649 the default memory address. */
4650 lang_memory_region_lookup (DEFAULT_MEMORY_REGION,
4651 FALSE)->current = newdot;
4652 }
4653 else if (newdot != dot)
4654 {
4655 /* Insert a pad after this statement. We can't
4656 put the pad before when relaxing, in case the
4657 assignment references dot. */
4658 insert_pad (&s->header.next, fill, TO_SIZE (newdot - dot),
4659 output_section_statement->bfd_section, dot);
4660
4661 /* Don't neuter the pad below when relaxing. */
4662 s = s->header.next;
4663
4664 /* If dot is advanced, this implies that the section
4665 should have space allocated to it, unless the
4666 user has explicitly stated that the section
4667 should never be loaded. */
4668 if (!(output_section_statement->flags
4669 & (SEC_NEVER_LOAD | SEC_ALLOC)))
4670 output_section_statement->bfd_section->flags |= SEC_ALLOC;
4671 }
4672 dot = newdot;
4673 }
4674 }
4675 break;
4676
4677 case lang_padding_statement_enum:
4678 /* If this is the first time lang_size_sections is called,
4679 we won't have any padding statements. If this is the
4680 second or later passes when relaxing, we should allow
4681 padding to shrink. If padding is needed on this pass, it
4682 will be added back in. */
4683 s->padding_statement.size = 0;
4684
4685 /* Make sure output_offset is valid. If relaxation shrinks
4686 the section and this pad isn't needed, it's possible to
4687 have output_offset larger than the final size of the
4688 section. bfd_set_section_contents will complain even for
4689 a pad size of zero. */
4690 s->padding_statement.output_offset
4691 = dot - output_section_statement->bfd_section->vma;
4692 break;
4693
4694 case lang_group_statement_enum:
4695 dot = lang_size_sections_1 (s->group_statement.children.head,
4696 output_section_statement,
4697 &s->group_statement.children.head,
4698 fill, dot, relax, check_regions);
4699 break;
4700
4701 default:
4702 FAIL ();
4703 break;
4704
4705 /* We can only get here when relaxing is turned on. */
4706 case lang_address_statement_enum:
4707 break;
4708 }
4709 prev = &s->header.next;
4710 }
4711 return dot;
4712 }
4713
4714 /* Callback routine that is used in _bfd_elf_map_sections_to_segments.
4715 The BFD library has set NEW_SEGMENT to TRUE iff it thinks that
4716 CURRENT_SECTION and PREVIOUS_SECTION ought to be placed into different
4717 segments. We are allowed an opportunity to override this decision. */
4718
4719 bfd_boolean
4720 ldlang_override_segment_assignment (struct bfd_link_info * info ATTRIBUTE_UNUSED,
4721 bfd * abfd ATTRIBUTE_UNUSED,
4722 asection * current_section,
4723 asection * previous_section,
4724 bfd_boolean new_segment)
4725 {
4726 lang_output_section_statement_type * cur;
4727 lang_output_section_statement_type * prev;
4728
4729 /* The checks below are only necessary when the BFD library has decided
4730 that the two sections ought to be placed into the same segment. */
4731 if (new_segment)
4732 return TRUE;
4733
4734 /* Paranoia checks. */
4735 if (current_section == NULL || previous_section == NULL)
4736 return new_segment;
4737
4738 /* Find the memory regions associated with the two sections.
4739 We call lang_output_section_find() here rather than scanning the list
4740 of output sections looking for a matching section pointer because if
4741 we have a large number of sections then a hash lookup is faster. */
4742 cur = lang_output_section_find (current_section->name);
4743 prev = lang_output_section_find (previous_section->name);
4744
4745 /* More paranoia. */
4746 if (cur == NULL || prev == NULL)
4747 return new_segment;
4748
4749 /* If the regions are different then force the sections to live in
4750 different segments. See the email thread starting at the following
4751 URL for the reasons why this is necessary:
4752 http://sourceware.org/ml/binutils/2007-02/msg00216.html */
4753 return cur->region != prev->region;
4754 }
4755
4756 void
4757 one_lang_size_sections_pass (bfd_boolean *relax, bfd_boolean check_regions)
4758 {
4759 lang_statement_iteration++;
4760 lang_size_sections_1 (statement_list.head, abs_output_section,
4761 &statement_list.head, 0, 0, relax, check_regions);
4762 }
4763
4764 void
4765 lang_size_sections (bfd_boolean *relax, bfd_boolean check_regions)
4766 {
4767 expld.phase = lang_allocating_phase_enum;
4768 expld.dataseg.phase = exp_dataseg_none;
4769
4770 one_lang_size_sections_pass (relax, check_regions);
4771 if (expld.dataseg.phase == exp_dataseg_end_seen
4772 && link_info.relro && expld.dataseg.relro_end)
4773 {
4774 /* If DATA_SEGMENT_ALIGN DATA_SEGMENT_RELRO_END pair was seen, try
4775 to put expld.dataseg.relro on a (common) page boundary. */
4776 bfd_vma old_min_base, relro_end, maxpage;
4777
4778 expld.dataseg.phase = exp_dataseg_relro_adjust;
4779 old_min_base = expld.dataseg.min_base;
4780 maxpage = expld.dataseg.maxpagesize;
4781 expld.dataseg.base += (-expld.dataseg.relro_end
4782 & (expld.dataseg.pagesize - 1));
4783 /* Compute the expected PT_GNU_RELRO segment end. */
4784 relro_end = (expld.dataseg.relro_end + expld.dataseg.pagesize - 1)
4785 & ~(expld.dataseg.pagesize - 1);
4786 if (old_min_base + maxpage < expld.dataseg.base)
4787 {
4788 expld.dataseg.base -= maxpage;
4789 relro_end -= maxpage;
4790 }
4791 lang_reset_memory_regions ();
4792 one_lang_size_sections_pass (relax, check_regions);
4793 if (expld.dataseg.relro_end > relro_end)
4794 {
4795 /* The alignment of sections between DATA_SEGMENT_ALIGN
4796 and DATA_SEGMENT_RELRO_END caused huge padding to be
4797 inserted at DATA_SEGMENT_RELRO_END. Try some other base. */
4798 asection *sec;
4799 unsigned int max_alignment_power = 0;
4800
4801 /* Find maximum alignment power of sections between
4802 DATA_SEGMENT_ALIGN and DATA_SEGMENT_RELRO_END. */
4803 for (sec = output_bfd->sections; sec; sec = sec->next)
4804 if (sec->vma >= expld.dataseg.base
4805 && sec->vma < expld.dataseg.relro_end
4806 && sec->alignment_power > max_alignment_power)
4807 max_alignment_power = sec->alignment_power;
4808
4809 if (((bfd_vma) 1 << max_alignment_power) < expld.dataseg.pagesize)
4810 {
4811 if (expld.dataseg.base - (1 << max_alignment_power)
4812 < old_min_base)
4813 expld.dataseg.base += expld.dataseg.pagesize;
4814 expld.dataseg.base -= (1 << max_alignment_power);
4815 lang_reset_memory_regions ();
4816 one_lang_size_sections_pass (relax, check_regions);
4817 }
4818 }
4819 link_info.relro_start = expld.dataseg.base;
4820 link_info.relro_end = expld.dataseg.relro_end;
4821 }
4822 else if (expld.dataseg.phase == exp_dataseg_end_seen)
4823 {
4824 /* If DATA_SEGMENT_ALIGN DATA_SEGMENT_END pair was seen, check whether
4825 a page could be saved in the data segment. */
4826 bfd_vma first, last;
4827
4828 first = -expld.dataseg.base & (expld.dataseg.pagesize - 1);
4829 last = expld.dataseg.end & (expld.dataseg.pagesize - 1);
4830 if (first && last
4831 && ((expld.dataseg.base & ~(expld.dataseg.pagesize - 1))
4832 != (expld.dataseg.end & ~(expld.dataseg.pagesize - 1)))
4833 && first + last <= expld.dataseg.pagesize)
4834 {
4835 expld.dataseg.phase = exp_dataseg_adjust;
4836 lang_reset_memory_regions ();
4837 one_lang_size_sections_pass (relax, check_regions);
4838 }
4839 }
4840
4841 expld.phase = lang_final_phase_enum;
4842 }
4843
4844 /* Worker function for lang_do_assignments. Recursiveness goes here. */
4845
4846 static bfd_vma
4847 lang_do_assignments_1 (lang_statement_union_type *s,
4848 lang_output_section_statement_type *current_os,
4849 fill_type *fill,
4850 bfd_vma dot)
4851 {
4852 for (; s != NULL; s = s->header.next)
4853 {
4854 switch (s->header.type)
4855 {
4856 case lang_constructors_statement_enum:
4857 dot = lang_do_assignments_1 (constructor_list.head,
4858 current_os, fill, dot);
4859 break;
4860
4861 case lang_output_section_statement_enum:
4862 {
4863 lang_output_section_statement_type *os;
4864
4865 os = &(s->output_section_statement);
4866 if (os->bfd_section != NULL && !os->ignored)
4867 {
4868 dot = os->bfd_section->vma;
4869
4870 lang_do_assignments_1 (os->children.head, os, os->fill, dot);
4871
4872 /* .tbss sections effectively have zero size. */
4873 if ((os->bfd_section->flags & SEC_HAS_CONTENTS) != 0
4874 || (os->bfd_section->flags & SEC_THREAD_LOCAL) == 0
4875 || link_info.relocatable)
4876 dot += TO_ADDR (os->bfd_section->size);
4877 }
4878 }
4879 break;
4880
4881 case lang_wild_statement_enum:
4882
4883 dot = lang_do_assignments_1 (s->wild_statement.children.head,
4884 current_os, fill, dot);
4885 break;
4886
4887 case lang_object_symbols_statement_enum:
4888 case lang_output_statement_enum:
4889 case lang_target_statement_enum:
4890 break;
4891
4892 case lang_data_statement_enum:
4893 exp_fold_tree (s->data_statement.exp, bfd_abs_section_ptr, &dot);
4894 if (expld.result.valid_p)
4895 s->data_statement.value = (expld.result.value
4896 + expld.result.section->vma);
4897 else
4898 einfo (_("%F%P: invalid data statement\n"));
4899 {
4900 unsigned int size;
4901 switch (s->data_statement.type)
4902 {
4903 default:
4904 abort ();
4905 case QUAD:
4906 case SQUAD:
4907 size = QUAD_SIZE;
4908 break;
4909 case LONG:
4910 size = LONG_SIZE;
4911 break;
4912 case SHORT:
4913 size = SHORT_SIZE;
4914 break;
4915 case BYTE:
4916 size = BYTE_SIZE;
4917 break;
4918 }
4919 if (size < TO_SIZE ((unsigned) 1))
4920 size = TO_SIZE ((unsigned) 1);
4921 dot += TO_ADDR (size);
4922 }
4923 break;
4924
4925 case lang_reloc_statement_enum:
4926 exp_fold_tree (s->reloc_statement.addend_exp,
4927 bfd_abs_section_ptr, &dot);
4928 if (expld.result.valid_p)
4929 s->reloc_statement.addend_value = expld.result.value;
4930 else
4931 einfo (_("%F%P: invalid reloc statement\n"));
4932 dot += TO_ADDR (bfd_get_reloc_size (s->reloc_statement.howto));
4933 break;
4934
4935 case lang_input_section_enum:
4936 {
4937 asection *in = s->input_section.section;
4938
4939 if ((in->flags & SEC_EXCLUDE) == 0)
4940 dot += TO_ADDR (in->size);
4941 }
4942 break;
4943
4944 case lang_input_statement_enum:
4945 break;
4946
4947 case lang_fill_statement_enum:
4948 fill = s->fill_statement.fill;
4949 break;
4950
4951 case lang_assignment_statement_enum:
4952 exp_fold_tree (s->assignment_statement.exp,
4953 current_os->bfd_section,
4954 &dot);
4955 break;
4956
4957 case lang_padding_statement_enum:
4958 dot += TO_ADDR (s->padding_statement.size);
4959 break;
4960
4961 case lang_group_statement_enum:
4962 dot = lang_do_assignments_1 (s->group_statement.children.head,
4963 current_os, fill, dot);
4964 break;
4965
4966 default:
4967 FAIL ();
4968 break;
4969
4970 case lang_address_statement_enum:
4971 break;
4972 }
4973 }
4974 return dot;
4975 }
4976
4977 void
4978 lang_do_assignments (void)
4979 {
4980 lang_statement_iteration++;
4981 lang_do_assignments_1 (statement_list.head, abs_output_section, NULL, 0);
4982 }
4983
4984 /* Fix any .startof. or .sizeof. symbols. When the assemblers see the
4985 operator .startof. (section_name), it produces an undefined symbol
4986 .startof.section_name. Similarly, when it sees
4987 .sizeof. (section_name), it produces an undefined symbol
4988 .sizeof.section_name. For all the output sections, we look for
4989 such symbols, and set them to the correct value. */
4990
4991 static void
4992 lang_set_startof (void)
4993 {
4994 asection *s;
4995
4996 if (link_info.relocatable)
4997 return;
4998
4999 for (s = output_bfd->sections; s != NULL; s = s->next)
5000 {
5001 const char *secname;
5002 char *buf;
5003 struct bfd_link_hash_entry *h;
5004
5005 secname = bfd_get_section_name (output_bfd, s);
5006 buf = xmalloc (10 + strlen (secname));
5007
5008 sprintf (buf, ".startof.%s", secname);
5009 h = bfd_link_hash_lookup (link_info.hash, buf, FALSE, FALSE, TRUE);
5010 if (h != NULL && h->type == bfd_link_hash_undefined)
5011 {
5012 h->type = bfd_link_hash_defined;
5013 h->u.def.value = bfd_get_section_vma (output_bfd, s);
5014 h->u.def.section = bfd_abs_section_ptr;
5015 }
5016
5017 sprintf (buf, ".sizeof.%s", secname);
5018 h = bfd_link_hash_lookup (link_info.hash, buf, FALSE, FALSE, TRUE);
5019 if (h != NULL && h->type == bfd_link_hash_undefined)
5020 {
5021 h->type = bfd_link_hash_defined;
5022 h->u.def.value = TO_ADDR (s->size);
5023 h->u.def.section = bfd_abs_section_ptr;
5024 }
5025
5026 free (buf);
5027 }
5028 }
5029
5030 static void
5031 lang_end (void)
5032 {
5033 struct bfd_link_hash_entry *h;
5034 bfd_boolean warn;
5035
5036 if (link_info.relocatable || link_info.shared)
5037 warn = FALSE;
5038 else
5039 warn = TRUE;
5040
5041 if (entry_symbol.name == NULL)
5042 {
5043 /* No entry has been specified. Look for the default entry, but
5044 don't warn if we don't find it. */
5045 entry_symbol.name = entry_symbol_default;
5046 warn = FALSE;
5047 }
5048
5049 h = bfd_link_hash_lookup (link_info.hash, entry_symbol.name,
5050 FALSE, FALSE, TRUE);
5051 if (h != NULL
5052 && (h->type == bfd_link_hash_defined
5053 || h->type == bfd_link_hash_defweak)
5054 && h->u.def.section->output_section != NULL)
5055 {
5056 bfd_vma val;
5057
5058 val = (h->u.def.value
5059 + bfd_get_section_vma (output_bfd,
5060 h->u.def.section->output_section)
5061 + h->u.def.section->output_offset);
5062 if (! bfd_set_start_address (output_bfd, val))
5063 einfo (_("%P%F:%s: can't set start address\n"), entry_symbol.name);
5064 }
5065 else
5066 {
5067 bfd_vma val;
5068 const char *send;
5069
5070 /* We couldn't find the entry symbol. Try parsing it as a
5071 number. */
5072 val = bfd_scan_vma (entry_symbol.name, &send, 0);
5073 if (*send == '\0')
5074 {
5075 if (! bfd_set_start_address (output_bfd, val))
5076 einfo (_("%P%F: can't set start address\n"));
5077 }
5078 else
5079 {
5080 asection *ts;
5081
5082 /* Can't find the entry symbol, and it's not a number. Use
5083 the first address in the text section. */
5084 ts = bfd_get_section_by_name (output_bfd, entry_section);
5085 if (ts != NULL)
5086 {
5087 if (warn)
5088 einfo (_("%P: warning: cannot find entry symbol %s;"
5089 " defaulting to %V\n"),
5090 entry_symbol.name,
5091 bfd_get_section_vma (output_bfd, ts));
5092 if (! bfd_set_start_address (output_bfd,
5093 bfd_get_section_vma (output_bfd,
5094 ts)))
5095 einfo (_("%P%F: can't set start address\n"));
5096 }
5097 else
5098 {
5099 if (warn)
5100 einfo (_("%P: warning: cannot find entry symbol %s;"
5101 " not setting start address\n"),
5102 entry_symbol.name);
5103 }
5104 }
5105 }
5106
5107 /* Don't bfd_hash_table_free (&lang_definedness_table);
5108 map file output may result in a call of lang_track_definedness. */
5109 }
5110
5111 /* This is a small function used when we want to ignore errors from
5112 BFD. */
5113
5114 static void
5115 ignore_bfd_errors (const char *s ATTRIBUTE_UNUSED, ...)
5116 {
5117 /* Don't do anything. */
5118 }
5119
5120 /* Check that the architecture of all the input files is compatible
5121 with the output file. Also call the backend to let it do any
5122 other checking that is needed. */
5123
5124 static void
5125 lang_check (void)
5126 {
5127 lang_statement_union_type *file;
5128 bfd *input_bfd;
5129 const bfd_arch_info_type *compatible;
5130
5131 for (file = file_chain.head; file != NULL; file = file->input_statement.next)
5132 {
5133 input_bfd = file->input_statement.the_bfd;
5134 compatible
5135 = bfd_arch_get_compatible (input_bfd, output_bfd,
5136 command_line.accept_unknown_input_arch);
5137
5138 /* In general it is not possible to perform a relocatable
5139 link between differing object formats when the input
5140 file has relocations, because the relocations in the
5141 input format may not have equivalent representations in
5142 the output format (and besides BFD does not translate
5143 relocs for other link purposes than a final link). */
5144 if ((link_info.relocatable || link_info.emitrelocations)
5145 && (compatible == NULL
5146 || bfd_get_flavour (input_bfd) != bfd_get_flavour (output_bfd))
5147 && (bfd_get_file_flags (input_bfd) & HAS_RELOC) != 0)
5148 {
5149 einfo (_("%P%F: Relocatable linking with relocations from"
5150 " format %s (%B) to format %s (%B) is not supported\n"),
5151 bfd_get_target (input_bfd), input_bfd,
5152 bfd_get_target (output_bfd), output_bfd);
5153 /* einfo with %F exits. */
5154 }
5155
5156 if (compatible == NULL)
5157 {
5158 if (command_line.warn_mismatch)
5159 einfo (_("%P: warning: %s architecture of input file `%B'"
5160 " is incompatible with %s output\n"),
5161 bfd_printable_name (input_bfd), input_bfd,
5162 bfd_printable_name (output_bfd));
5163 }
5164 else if (bfd_count_sections (input_bfd))
5165 {
5166 /* If the input bfd has no contents, it shouldn't set the
5167 private data of the output bfd. */
5168
5169 bfd_error_handler_type pfn = NULL;
5170
5171 /* If we aren't supposed to warn about mismatched input
5172 files, temporarily set the BFD error handler to a
5173 function which will do nothing. We still want to call
5174 bfd_merge_private_bfd_data, since it may set up
5175 information which is needed in the output file. */
5176 if (! command_line.warn_mismatch)
5177 pfn = bfd_set_error_handler (ignore_bfd_errors);
5178 if (! bfd_merge_private_bfd_data (input_bfd, output_bfd))
5179 {
5180 if (command_line.warn_mismatch)
5181 einfo (_("%P%X: failed to merge target specific data"
5182 " of file %B\n"), input_bfd);
5183 }
5184 if (! command_line.warn_mismatch)
5185 bfd_set_error_handler (pfn);
5186 }
5187 }
5188 }
5189
5190 /* Look through all the global common symbols and attach them to the
5191 correct section. The -sort-common command line switch may be used
5192 to roughly sort the entries by size. */
5193
5194 static void
5195 lang_common (void)
5196 {
5197 if (command_line.inhibit_common_definition)
5198 return;
5199 if (link_info.relocatable
5200 && ! command_line.force_common_definition)
5201 return;
5202
5203 if (! config.sort_common)
5204 bfd_link_hash_traverse (link_info.hash, lang_one_common, NULL);
5205 else
5206 {
5207 int power;
5208
5209 for (power = 4; power >= 0; power--)
5210 bfd_link_hash_traverse (link_info.hash, lang_one_common, &power);
5211 }
5212 }
5213
5214 /* Place one common symbol in the correct section. */
5215
5216 static bfd_boolean
5217 lang_one_common (struct bfd_link_hash_entry *h, void *info)
5218 {
5219 unsigned int power_of_two;
5220 bfd_vma size;
5221 asection *section;
5222
5223 if (h->type != bfd_link_hash_common)
5224 return TRUE;
5225
5226 size = h->u.c.size;
5227 power_of_two = h->u.c.p->alignment_power;
5228
5229 if (config.sort_common
5230 && power_of_two < (unsigned int) *(int *) info)
5231 return TRUE;
5232
5233 section = h->u.c.p->section;
5234
5235 /* Increase the size of the section to align the common sym. */
5236 section->size += ((bfd_vma) 1 << (power_of_two + opb_shift)) - 1;
5237 section->size &= (- (bfd_vma) 1 << (power_of_two + opb_shift));
5238
5239 /* Adjust the alignment if necessary. */
5240 if (power_of_two > section->alignment_power)
5241 section->alignment_power = power_of_two;
5242
5243 /* Change the symbol from common to defined. */
5244 h->type = bfd_link_hash_defined;
5245 h->u.def.section = section;
5246 h->u.def.value = section->size;
5247
5248 /* Increase the size of the section. */
5249 section->size += size;
5250
5251 /* Make sure the section is allocated in memory, and make sure that
5252 it is no longer a common section. */
5253 section->flags |= SEC_ALLOC;
5254 section->flags &= ~SEC_IS_COMMON;
5255
5256 if (config.map_file != NULL)
5257 {
5258 static bfd_boolean header_printed;
5259 int len;
5260 char *name;
5261 char buf[50];
5262
5263 if (! header_printed)
5264 {
5265 minfo (_("\nAllocating common symbols\n"));
5266 minfo (_("Common symbol size file\n\n"));
5267 header_printed = TRUE;
5268 }
5269
5270 name = bfd_demangle (output_bfd, h->root.string,
5271 DMGL_ANSI | DMGL_PARAMS);
5272 minfo ("%s", name);
5273 len = strlen (name);
5274 free (name);
5275
5276 if (len >= 19)
5277 {
5278 print_nl ();
5279 len = 0;
5280 }
5281 while (len < 20)
5282 {
5283 print_space ();
5284 ++len;
5285 }
5286
5287 minfo ("0x");
5288 if (size <= 0xffffffff)
5289 sprintf (buf, "%lx", (unsigned long) size);
5290 else
5291 sprintf_vma (buf, size);
5292 minfo ("%s", buf);
5293 len = strlen (buf);
5294
5295 while (len < 16)
5296 {
5297 print_space ();
5298 ++len;
5299 }
5300
5301 minfo ("%B\n", section->owner);
5302 }
5303
5304 return TRUE;
5305 }
5306
5307 /* Run through the input files and ensure that every input section has
5308 somewhere to go. If one is found without a destination then create
5309 an input request and place it into the statement tree. */
5310
5311 static void
5312 lang_place_orphans (void)
5313 {
5314 LANG_FOR_EACH_INPUT_STATEMENT (file)
5315 {
5316 asection *s;
5317
5318 for (s = file->the_bfd->sections; s != NULL; s = s->next)
5319 {
5320 if (s->output_section == NULL)
5321 {
5322 /* This section of the file is not attached, root
5323 around for a sensible place for it to go. */
5324
5325 if (file->just_syms_flag)
5326 bfd_link_just_syms (file->the_bfd, s, &link_info);
5327 else if ((s->flags & SEC_EXCLUDE) != 0)
5328 s->output_section = bfd_abs_section_ptr;
5329 else if (strcmp (s->name, "COMMON") == 0)
5330 {
5331 /* This is a lonely common section which must have
5332 come from an archive. We attach to the section
5333 with the wildcard. */
5334 if (! link_info.relocatable
5335 || command_line.force_common_definition)
5336 {
5337 if (default_common_section == NULL)
5338 {
5339 default_common_section =
5340 lang_output_section_statement_lookup (".bss");
5341
5342 }
5343 lang_add_section (&default_common_section->children, s,
5344 default_common_section);
5345 }
5346 }
5347 else if (ldemul_place_orphan (s))
5348 ;
5349 else
5350 {
5351 lang_output_section_statement_type *os;
5352
5353 os = lang_output_section_statement_lookup (s->name);
5354 lang_add_section (&os->children, s, os);
5355 }
5356 }
5357 }
5358 }
5359 }
5360
5361 void
5362 lang_set_flags (lang_memory_region_type *ptr, const char *flags, int invert)
5363 {
5364 flagword *ptr_flags;
5365
5366 ptr_flags = invert ? &ptr->not_flags : &ptr->flags;
5367 while (*flags)
5368 {
5369 switch (*flags)
5370 {
5371 case 'A': case 'a':
5372 *ptr_flags |= SEC_ALLOC;
5373 break;
5374
5375 case 'R': case 'r':
5376 *ptr_flags |= SEC_READONLY;
5377 break;
5378
5379 case 'W': case 'w':
5380 *ptr_flags |= SEC_DATA;
5381 break;
5382
5383 case 'X': case 'x':
5384 *ptr_flags |= SEC_CODE;
5385 break;
5386
5387 case 'L': case 'l':
5388 case 'I': case 'i':
5389 *ptr_flags |= SEC_LOAD;
5390 break;
5391
5392 default:
5393 einfo (_("%P%F: invalid syntax in flags\n"));
5394 break;
5395 }
5396 flags++;
5397 }
5398 }
5399
5400 /* Call a function on each input file. This function will be called
5401 on an archive, but not on the elements. */
5402
5403 void
5404 lang_for_each_input_file (void (*func) (lang_input_statement_type *))
5405 {
5406 lang_input_statement_type *f;
5407
5408 for (f = (lang_input_statement_type *) input_file_chain.head;
5409 f != NULL;
5410 f = (lang_input_statement_type *) f->next_real_file)
5411 func (f);
5412 }
5413
5414 /* Call a function on each file. The function will be called on all
5415 the elements of an archive which are included in the link, but will
5416 not be called on the archive file itself. */
5417
5418 void
5419 lang_for_each_file (void (*func) (lang_input_statement_type *))
5420 {
5421 LANG_FOR_EACH_INPUT_STATEMENT (f)
5422 {
5423 func (f);
5424 }
5425 }
5426
5427 void
5428 ldlang_add_file (lang_input_statement_type *entry)
5429 {
5430 bfd **pp;
5431
5432 lang_statement_append (&file_chain,
5433 (lang_statement_union_type *) entry,
5434 &entry->next);
5435
5436 /* The BFD linker needs to have a list of all input BFDs involved in
5437 a link. */
5438 ASSERT (entry->the_bfd->link_next == NULL);
5439 ASSERT (entry->the_bfd != output_bfd);
5440 for (pp = &link_info.input_bfds; *pp != NULL; pp = &(*pp)->link_next)
5441 ;
5442 *pp = entry->the_bfd;
5443 entry->the_bfd->usrdata = entry;
5444 bfd_set_gp_size (entry->the_bfd, g_switch_value);
5445
5446 /* Look through the sections and check for any which should not be
5447 included in the link. We need to do this now, so that we can
5448 notice when the backend linker tries to report multiple
5449 definition errors for symbols which are in sections we aren't
5450 going to link. FIXME: It might be better to entirely ignore
5451 symbols which are defined in sections which are going to be
5452 discarded. This would require modifying the backend linker for
5453 each backend which might set the SEC_LINK_ONCE flag. If we do
5454 this, we should probably handle SEC_EXCLUDE in the same way. */
5455
5456 bfd_map_over_sections (entry->the_bfd, section_already_linked, entry);
5457 }
5458
5459 void
5460 lang_add_output (const char *name, int from_script)
5461 {
5462 /* Make -o on command line override OUTPUT in script. */
5463 if (!had_output_filename || !from_script)
5464 {
5465 output_filename = name;
5466 had_output_filename = TRUE;
5467 }
5468 }
5469
5470 static lang_output_section_statement_type *current_section;
5471
5472 static int
5473 topower (int x)
5474 {
5475 unsigned int i = 1;
5476 int l;
5477
5478 if (x < 0)
5479 return -1;
5480
5481 for (l = 0; l < 32; l++)
5482 {
5483 if (i >= (unsigned int) x)
5484 return l;
5485 i <<= 1;
5486 }
5487
5488 return 0;
5489 }
5490
5491 lang_output_section_statement_type *
5492 lang_enter_output_section_statement (const char *output_section_statement_name,
5493 etree_type *address_exp,
5494 enum section_type sectype,
5495 etree_type *align,
5496 etree_type *subalign,
5497 etree_type *ebase,
5498 int constraint)
5499 {
5500 lang_output_section_statement_type *os;
5501
5502 os = lang_output_section_statement_lookup_1 (output_section_statement_name,
5503 constraint);
5504 current_section = os;
5505
5506 /* Make next things chain into subchain of this. */
5507
5508 if (os->addr_tree == NULL)
5509 {
5510 os->addr_tree = address_exp;
5511 }
5512 os->sectype = sectype;
5513 if (sectype != noload_section)
5514 os->flags = SEC_NO_FLAGS;
5515 else
5516 os->flags = SEC_NEVER_LOAD;
5517 os->block_value = 1;
5518 stat_ptr = &os->children;
5519
5520 os->subsection_alignment =
5521 topower (exp_get_value_int (subalign, -1, "subsection alignment"));
5522 os->section_alignment =
5523 topower (exp_get_value_int (align, -1, "section alignment"));
5524
5525 os->load_base = ebase;
5526 return os;
5527 }
5528
5529 void
5530 lang_final (void)
5531 {
5532 lang_output_statement_type *new;
5533
5534 new = new_stat (lang_output_statement, stat_ptr);
5535 new->name = output_filename;
5536 }
5537
5538 /* Reset the current counters in the regions. */
5539
5540 void
5541 lang_reset_memory_regions (void)
5542 {
5543 lang_memory_region_type *p = lang_memory_region_list;
5544 asection *o;
5545 lang_output_section_statement_type *os;
5546
5547 for (p = lang_memory_region_list; p != NULL; p = p->next)
5548 {
5549 p->current = p->origin;
5550 p->last_os = NULL;
5551 }
5552
5553 for (os = &lang_output_section_statement.head->output_section_statement;
5554 os != NULL;
5555 os = os->next)
5556 {
5557 os->processed_vma = FALSE;
5558 os->processed_lma = FALSE;
5559 }
5560
5561 for (o = output_bfd->sections; o != NULL; o = o->next)
5562 {
5563 /* Save the last size for possible use by bfd_relax_section. */
5564 o->rawsize = o->size;
5565 o->size = 0;
5566 }
5567 }
5568
5569 /* Worker for lang_gc_sections_1. */
5570
5571 static void
5572 gc_section_callback (lang_wild_statement_type *ptr,
5573 struct wildcard_list *sec ATTRIBUTE_UNUSED,
5574 asection *section,
5575 lang_input_statement_type *file ATTRIBUTE_UNUSED,
5576 void *data ATTRIBUTE_UNUSED)
5577 {
5578 /* If the wild pattern was marked KEEP, the member sections
5579 should be as well. */
5580 if (ptr->keep_sections)
5581 section->flags |= SEC_KEEP;
5582 }
5583
5584 /* Iterate over sections marking them against GC. */
5585
5586 static void
5587 lang_gc_sections_1 (lang_statement_union_type *s)
5588 {
5589 for (; s != NULL; s = s->header.next)
5590 {
5591 switch (s->header.type)
5592 {
5593 case lang_wild_statement_enum:
5594 walk_wild (&s->wild_statement, gc_section_callback, NULL);
5595 break;
5596 case lang_constructors_statement_enum:
5597 lang_gc_sections_1 (constructor_list.head);
5598 break;
5599 case lang_output_section_statement_enum:
5600 lang_gc_sections_1 (s->output_section_statement.children.head);
5601 break;
5602 case lang_group_statement_enum:
5603 lang_gc_sections_1 (s->group_statement.children.head);
5604 break;
5605 default:
5606 break;
5607 }
5608 }
5609 }
5610
5611 static void
5612 lang_gc_sections (void)
5613 {
5614 struct bfd_link_hash_entry *h;
5615 ldlang_undef_chain_list_type *ulist;
5616
5617 /* Keep all sections so marked in the link script. */
5618
5619 lang_gc_sections_1 (statement_list.head);
5620
5621 /* Keep all sections containing symbols undefined on the command-line,
5622 and the section containing the entry symbol. */
5623
5624 for (ulist = link_info.gc_sym_list; ulist; ulist = ulist->next)
5625 {
5626 h = bfd_link_hash_lookup (link_info.hash, ulist->name,
5627 FALSE, FALSE, FALSE);
5628
5629 if (h != NULL
5630 && (h->type == bfd_link_hash_defined
5631 || h->type == bfd_link_hash_defweak)
5632 && ! bfd_is_abs_section (h->u.def.section))
5633 {
5634 h->u.def.section->flags |= SEC_KEEP;
5635 }
5636 }
5637
5638 /* SEC_EXCLUDE is ignored when doing a relocatable link, except in
5639 the special case of debug info. (See bfd/stabs.c)
5640 Twiddle the flag here, to simplify later linker code. */
5641 if (link_info.relocatable)
5642 {
5643 LANG_FOR_EACH_INPUT_STATEMENT (f)
5644 {
5645 asection *sec;
5646 for (sec = f->the_bfd->sections; sec != NULL; sec = sec->next)
5647 if ((sec->flags & SEC_DEBUGGING) == 0)
5648 sec->flags &= ~SEC_EXCLUDE;
5649 }
5650 }
5651
5652 if (link_info.gc_sections)
5653 bfd_gc_sections (output_bfd, &link_info);
5654 }
5655
5656 /* Relax all sections until bfd_relax_section gives up. */
5657
5658 static void
5659 relax_sections (void)
5660 {
5661 /* Keep relaxing until bfd_relax_section gives up. */
5662 bfd_boolean relax_again;
5663
5664 link_info.relax_trip = -1;
5665 do
5666 {
5667 relax_again = FALSE;
5668 link_info.relax_trip++;
5669
5670 /* Note: pe-dll.c does something like this also. If you find
5671 you need to change this code, you probably need to change
5672 pe-dll.c also. DJ */
5673
5674 /* Do all the assignments with our current guesses as to
5675 section sizes. */
5676 lang_do_assignments ();
5677
5678 /* We must do this after lang_do_assignments, because it uses
5679 size. */
5680 lang_reset_memory_regions ();
5681
5682 /* Perform another relax pass - this time we know where the
5683 globals are, so can make a better guess. */
5684 lang_size_sections (&relax_again, FALSE);
5685 }
5686 while (relax_again);
5687 }
5688
5689 void
5690 lang_process (void)
5691 {
5692 /* Finalize dynamic list. */
5693 if (link_info.dynamic_list)
5694 lang_finalize_version_expr_head (&link_info.dynamic_list->head);
5695
5696 current_target = default_target;
5697
5698 /* Open the output file. */
5699 lang_for_each_statement (ldlang_open_output);
5700 init_opb ();
5701
5702 ldemul_create_output_section_statements ();
5703
5704 /* Add to the hash table all undefineds on the command line. */
5705 lang_place_undefineds ();
5706
5707 if (!bfd_section_already_linked_table_init ())
5708 einfo (_("%P%F: Failed to create hash table\n"));
5709
5710 /* Create a bfd for each input file. */
5711 current_target = default_target;
5712 open_input_bfds (statement_list.head, FALSE);
5713
5714 link_info.gc_sym_list = &entry_symbol;
5715 if (entry_symbol.name == NULL)
5716 link_info.gc_sym_list = ldlang_undef_chain_list_head;
5717
5718 ldemul_after_open ();
5719
5720 bfd_section_already_linked_table_free ();
5721
5722 /* Make sure that we're not mixing architectures. We call this
5723 after all the input files have been opened, but before we do any
5724 other processing, so that any operations merge_private_bfd_data
5725 does on the output file will be known during the rest of the
5726 link. */
5727 lang_check ();
5728
5729 /* Handle .exports instead of a version script if we're told to do so. */
5730 if (command_line.version_exports_section)
5731 lang_do_version_exports_section ();
5732
5733 /* Build all sets based on the information gathered from the input
5734 files. */
5735 ldctor_build_sets ();
5736
5737 /* Remove unreferenced sections if asked to. */
5738 lang_gc_sections ();
5739
5740 /* Size up the common data. */
5741 lang_common ();
5742
5743 /* Update wild statements. */
5744 update_wild_statements (statement_list.head);
5745
5746 /* Run through the contours of the script and attach input sections
5747 to the correct output sections. */
5748 map_input_to_output_sections (statement_list.head, NULL, NULL);
5749
5750 /* Find any sections not attached explicitly and handle them. */
5751 lang_place_orphans ();
5752
5753 if (! link_info.relocatable)
5754 {
5755 asection *found;
5756
5757 /* Merge SEC_MERGE sections. This has to be done after GC of
5758 sections, so that GCed sections are not merged, but before
5759 assigning dynamic symbols, since removing whole input sections
5760 is hard then. */
5761 bfd_merge_sections (output_bfd, &link_info);
5762
5763 /* Look for a text section and set the readonly attribute in it. */
5764 found = bfd_get_section_by_name (output_bfd, ".text");
5765
5766 if (found != NULL)
5767 {
5768 if (config.text_read_only)
5769 found->flags |= SEC_READONLY;
5770 else
5771 found->flags &= ~SEC_READONLY;
5772 }
5773 }
5774
5775 /* Do anything special before sizing sections. This is where ELF
5776 and other back-ends size dynamic sections. */
5777 ldemul_before_allocation ();
5778
5779 /* We must record the program headers before we try to fix the
5780 section positions, since they will affect SIZEOF_HEADERS. */
5781 lang_record_phdrs ();
5782
5783 /* Size up the sections. */
5784 lang_size_sections (NULL, !command_line.relax);
5785
5786 /* Now run around and relax if we can. */
5787 if (command_line.relax)
5788 {
5789 /* We may need more than one relaxation pass. */
5790 int i = link_info.relax_pass;
5791
5792 /* The backend can use it to determine the current pass. */
5793 link_info.relax_pass = 0;
5794
5795 while (i--)
5796 {
5797 relax_sections ();
5798 link_info.relax_pass++;
5799 }
5800
5801 /* Final extra sizing to report errors. */
5802 lang_do_assignments ();
5803 lang_reset_memory_regions ();
5804 lang_size_sections (NULL, TRUE);
5805 }
5806
5807 /* See if anything special should be done now we know how big
5808 everything is. */
5809 ldemul_after_allocation ();
5810
5811 /* Fix any .startof. or .sizeof. symbols. */
5812 lang_set_startof ();
5813
5814 /* Do all the assignments, now that we know the final resting places
5815 of all the symbols. */
5816
5817 lang_do_assignments ();
5818
5819 ldemul_finish ();
5820
5821 /* Make sure that the section addresses make sense. */
5822 if (! link_info.relocatable
5823 && command_line.check_section_addresses)
5824 lang_check_section_addresses ();
5825
5826 lang_end ();
5827 }
5828
5829 /* EXPORTED TO YACC */
5830
5831 void
5832 lang_add_wild (struct wildcard_spec *filespec,
5833 struct wildcard_list *section_list,
5834 bfd_boolean keep_sections)
5835 {
5836 struct wildcard_list *curr, *next;
5837 lang_wild_statement_type *new;
5838
5839 /* Reverse the list as the parser puts it back to front. */
5840 for (curr = section_list, section_list = NULL;
5841 curr != NULL;
5842 section_list = curr, curr = next)
5843 {
5844 if (curr->spec.name != NULL && strcmp (curr->spec.name, "COMMON") == 0)
5845 placed_commons = TRUE;
5846
5847 next = curr->next;
5848 curr->next = section_list;
5849 }
5850
5851 if (filespec != NULL && filespec->name != NULL)
5852 {
5853 if (strcmp (filespec->name, "*") == 0)
5854 filespec->name = NULL;
5855 else if (! wildcardp (filespec->name))
5856 lang_has_input_file = TRUE;
5857 }
5858
5859 new = new_stat (lang_wild_statement, stat_ptr);
5860 new->filename = NULL;
5861 new->filenames_sorted = FALSE;
5862 if (filespec != NULL)
5863 {
5864 new->filename = filespec->name;
5865 new->filenames_sorted = filespec->sorted == by_name;
5866 }
5867 new->section_list = section_list;
5868 new->keep_sections = keep_sections;
5869 lang_list_init (&new->children);
5870 analyze_walk_wild_section_handler (new);
5871 }
5872
5873 void
5874 lang_section_start (const char *name, etree_type *address,
5875 const segment_type *segment)
5876 {
5877 lang_address_statement_type *ad;
5878
5879 ad = new_stat (lang_address_statement, stat_ptr);
5880 ad->section_name = name;
5881 ad->address = address;
5882 ad->segment = segment;
5883 }
5884
5885 /* Set the start symbol to NAME. CMDLINE is nonzero if this is called
5886 because of a -e argument on the command line, or zero if this is
5887 called by ENTRY in a linker script. Command line arguments take
5888 precedence. */
5889
5890 void
5891 lang_add_entry (const char *name, bfd_boolean cmdline)
5892 {
5893 if (entry_symbol.name == NULL
5894 || cmdline
5895 || ! entry_from_cmdline)
5896 {
5897 entry_symbol.name = name;
5898 entry_from_cmdline = cmdline;
5899 }
5900 }
5901
5902 /* Set the default start symbol to NAME. .em files should use this,
5903 not lang_add_entry, to override the use of "start" if neither the
5904 linker script nor the command line specifies an entry point. NAME
5905 must be permanently allocated. */
5906 void
5907 lang_default_entry (const char *name)
5908 {
5909 entry_symbol_default = name;
5910 }
5911
5912 void
5913 lang_add_target (const char *name)
5914 {
5915 lang_target_statement_type *new;
5916
5917 new = new_stat (lang_target_statement, stat_ptr);
5918 new->target = name;
5919 }
5920
5921 void
5922 lang_add_map (const char *name)
5923 {
5924 while (*name)
5925 {
5926 switch (*name)
5927 {
5928 case 'F':
5929 map_option_f = TRUE;
5930 break;
5931 }
5932 name++;
5933 }
5934 }
5935
5936 void
5937 lang_add_fill (fill_type *fill)
5938 {
5939 lang_fill_statement_type *new;
5940
5941 new = new_stat (lang_fill_statement, stat_ptr);
5942 new->fill = fill;
5943 }
5944
5945 void
5946 lang_add_data (int type, union etree_union *exp)
5947 {
5948 lang_data_statement_type *new;
5949
5950 new = new_stat (lang_data_statement, stat_ptr);
5951 new->exp = exp;
5952 new->type = type;
5953 }
5954
5955 /* Create a new reloc statement. RELOC is the BFD relocation type to
5956 generate. HOWTO is the corresponding howto structure (we could
5957 look this up, but the caller has already done so). SECTION is the
5958 section to generate a reloc against, or NAME is the name of the
5959 symbol to generate a reloc against. Exactly one of SECTION and
5960 NAME must be NULL. ADDEND is an expression for the addend. */
5961
5962 void
5963 lang_add_reloc (bfd_reloc_code_real_type reloc,
5964 reloc_howto_type *howto,
5965 asection *section,
5966 const char *name,
5967 union etree_union *addend)
5968 {
5969 lang_reloc_statement_type *p = new_stat (lang_reloc_statement, stat_ptr);
5970
5971 p->reloc = reloc;
5972 p->howto = howto;
5973 p->section = section;
5974 p->name = name;
5975 p->addend_exp = addend;
5976
5977 p->addend_value = 0;
5978 p->output_section = NULL;
5979 p->output_offset = 0;
5980 }
5981
5982 lang_assignment_statement_type *
5983 lang_add_assignment (etree_type *exp)
5984 {
5985 lang_assignment_statement_type *new;
5986
5987 new = new_stat (lang_assignment_statement, stat_ptr);
5988 new->exp = exp;
5989 return new;
5990 }
5991
5992 void
5993 lang_add_attribute (enum statement_enum attribute)
5994 {
5995 new_statement (attribute, sizeof (lang_statement_header_type), stat_ptr);
5996 }
5997
5998 void
5999 lang_startup (const char *name)
6000 {
6001 if (startup_file != NULL)
6002 {
6003 einfo (_("%P%F: multiple STARTUP files\n"));
6004 }
6005 first_file->filename = name;
6006 first_file->local_sym_name = name;
6007 first_file->real = TRUE;
6008
6009 startup_file = name;
6010 }
6011
6012 void
6013 lang_float (bfd_boolean maybe)
6014 {
6015 lang_float_flag = maybe;
6016 }
6017
6018
6019 /* Work out the load- and run-time regions from a script statement, and
6020 store them in *LMA_REGION and *REGION respectively.
6021
6022 MEMSPEC is the name of the run-time region, or the value of
6023 DEFAULT_MEMORY_REGION if the statement didn't specify one.
6024 LMA_MEMSPEC is the name of the load-time region, or null if the
6025 statement didn't specify one.HAVE_LMA_P is TRUE if the statement
6026 had an explicit load address.
6027
6028 It is an error to specify both a load region and a load address. */
6029
6030 static void
6031 lang_get_regions (lang_memory_region_type **region,
6032 lang_memory_region_type **lma_region,
6033 const char *memspec,
6034 const char *lma_memspec,
6035 bfd_boolean have_lma,
6036 bfd_boolean have_vma)
6037 {
6038 *lma_region = lang_memory_region_lookup (lma_memspec, FALSE);
6039
6040 /* If no runtime region or VMA has been specified, but the load region
6041 has been specified, then use the load region for the runtime region
6042 as well. */
6043 if (lma_memspec != NULL
6044 && ! have_vma
6045 && strcmp (memspec, DEFAULT_MEMORY_REGION) == 0)
6046 *region = *lma_region;
6047 else
6048 *region = lang_memory_region_lookup (memspec, FALSE);
6049
6050 if (have_lma && lma_memspec != 0)
6051 einfo (_("%X%P:%S: section has both a load address and a load region\n"));
6052 }
6053
6054 void
6055 lang_leave_output_section_statement (fill_type *fill, const char *memspec,
6056 lang_output_section_phdr_list *phdrs,
6057 const char *lma_memspec)
6058 {
6059 lang_get_regions (&current_section->region,
6060 &current_section->lma_region,
6061 memspec, lma_memspec,
6062 current_section->load_base != NULL,
6063 current_section->addr_tree != NULL);
6064 current_section->fill = fill;
6065 current_section->phdrs = phdrs;
6066 stat_ptr = &statement_list;
6067 }
6068
6069 /* Create an absolute symbol with the given name with the value of the
6070 address of first byte of the section named.
6071
6072 If the symbol already exists, then do nothing. */
6073
6074 void
6075 lang_abs_symbol_at_beginning_of (const char *secname, const char *name)
6076 {
6077 struct bfd_link_hash_entry *h;
6078
6079 h = bfd_link_hash_lookup (link_info.hash, name, TRUE, TRUE, TRUE);
6080 if (h == NULL)
6081 einfo (_("%P%F: bfd_link_hash_lookup failed: %E\n"));
6082
6083 if (h->type == bfd_link_hash_new
6084 || h->type == bfd_link_hash_undefined)
6085 {
6086 asection *sec;
6087
6088 h->type = bfd_link_hash_defined;
6089
6090 sec = bfd_get_section_by_name (output_bfd, secname);
6091 if (sec == NULL)
6092 h->u.def.value = 0;
6093 else
6094 h->u.def.value = bfd_get_section_vma (output_bfd, sec);
6095
6096 h->u.def.section = bfd_abs_section_ptr;
6097 }
6098 }
6099
6100 /* Create an absolute symbol with the given name with the value of the
6101 address of the first byte after the end of the section named.
6102
6103 If the symbol already exists, then do nothing. */
6104
6105 void
6106 lang_abs_symbol_at_end_of (const char *secname, const char *name)
6107 {
6108 struct bfd_link_hash_entry *h;
6109
6110 h = bfd_link_hash_lookup (link_info.hash, name, TRUE, TRUE, TRUE);
6111 if (h == NULL)
6112 einfo (_("%P%F: bfd_link_hash_lookup failed: %E\n"));
6113
6114 if (h->type == bfd_link_hash_new
6115 || h->type == bfd_link_hash_undefined)
6116 {
6117 asection *sec;
6118
6119 h->type = bfd_link_hash_defined;
6120
6121 sec = bfd_get_section_by_name (output_bfd, secname);
6122 if (sec == NULL)
6123 h->u.def.value = 0;
6124 else
6125 h->u.def.value = (bfd_get_section_vma (output_bfd, sec)
6126 + TO_ADDR (sec->size));
6127
6128 h->u.def.section = bfd_abs_section_ptr;
6129 }
6130 }
6131
6132 void
6133 lang_statement_append (lang_statement_list_type *list,
6134 lang_statement_union_type *element,
6135 lang_statement_union_type **field)
6136 {
6137 *(list->tail) = element;
6138 list->tail = field;
6139 }
6140
6141 /* Set the output format type. -oformat overrides scripts. */
6142
6143 void
6144 lang_add_output_format (const char *format,
6145 const char *big,
6146 const char *little,
6147 int from_script)
6148 {
6149 if (output_target == NULL || !from_script)
6150 {
6151 if (command_line.endian == ENDIAN_BIG
6152 && big != NULL)
6153 format = big;
6154 else if (command_line.endian == ENDIAN_LITTLE
6155 && little != NULL)
6156 format = little;
6157
6158 output_target = format;
6159 }
6160 }
6161
6162 /* Enter a group. This creates a new lang_group_statement, and sets
6163 stat_ptr to build new statements within the group. */
6164
6165 void
6166 lang_enter_group (void)
6167 {
6168 lang_group_statement_type *g;
6169
6170 g = new_stat (lang_group_statement, stat_ptr);
6171 lang_list_init (&g->children);
6172 stat_ptr = &g->children;
6173 }
6174
6175 /* Leave a group. This just resets stat_ptr to start writing to the
6176 regular list of statements again. Note that this will not work if
6177 groups can occur inside anything else which can adjust stat_ptr,
6178 but currently they can't. */
6179
6180 void
6181 lang_leave_group (void)
6182 {
6183 stat_ptr = &statement_list;
6184 }
6185
6186 /* Add a new program header. This is called for each entry in a PHDRS
6187 command in a linker script. */
6188
6189 void
6190 lang_new_phdr (const char *name,
6191 etree_type *type,
6192 bfd_boolean filehdr,
6193 bfd_boolean phdrs,
6194 etree_type *at,
6195 etree_type *flags)
6196 {
6197 struct lang_phdr *n, **pp;
6198
6199 n = stat_alloc (sizeof (struct lang_phdr));
6200 n->next = NULL;
6201 n->name = name;
6202 n->type = exp_get_value_int (type, 0, "program header type");
6203 n->filehdr = filehdr;
6204 n->phdrs = phdrs;
6205 n->at = at;
6206 n->flags = flags;
6207
6208 for (pp = &lang_phdr_list; *pp != NULL; pp = &(*pp)->next)
6209 ;
6210 *pp = n;
6211 }
6212
6213 /* Record the program header information in the output BFD. FIXME: We
6214 should not be calling an ELF specific function here. */
6215
6216 static void
6217 lang_record_phdrs (void)
6218 {
6219 unsigned int alc;
6220 asection **secs;
6221 lang_output_section_phdr_list *last;
6222 struct lang_phdr *l;
6223 lang_output_section_statement_type *os;
6224
6225 alc = 10;
6226 secs = xmalloc (alc * sizeof (asection *));
6227 last = NULL;
6228
6229 for (l = lang_phdr_list; l != NULL; l = l->next)
6230 {
6231 unsigned int c;
6232 flagword flags;
6233 bfd_vma at;
6234
6235 c = 0;
6236 for (os = &lang_output_section_statement.head->output_section_statement;
6237 os != NULL;
6238 os = os->next)
6239 {
6240 lang_output_section_phdr_list *pl;
6241
6242 if (os->constraint == -1)
6243 continue;
6244
6245 pl = os->phdrs;
6246 if (pl != NULL)
6247 last = pl;
6248 else
6249 {
6250 if (os->sectype == noload_section
6251 || os->bfd_section == NULL
6252 || (os->bfd_section->flags & SEC_ALLOC) == 0)
6253 continue;
6254
6255 if (last)
6256 pl = last;
6257 else
6258 {
6259 lang_output_section_statement_type * tmp_os;
6260
6261 /* If we have not run across a section with a program
6262 header assigned to it yet, then scan forwards to find
6263 one. This prevents inconsistencies in the linker's
6264 behaviour when a script has specified just a single
6265 header and there are sections in that script which are
6266 not assigned to it, and which occur before the first
6267 use of that header. See here for more details:
6268 http://sourceware.org/ml/binutils/2007-02/msg00291.html */
6269 for (tmp_os = os; tmp_os; tmp_os = tmp_os->next)
6270 if (tmp_os->phdrs)
6271 break;
6272 pl = tmp_os->phdrs;
6273 }
6274 }
6275
6276 if (os->bfd_section == NULL)
6277 continue;
6278
6279 for (; pl != NULL; pl = pl->next)
6280 {
6281 if (strcmp (pl->name, l->name) == 0)
6282 {
6283 if (c >= alc)
6284 {
6285 alc *= 2;
6286 secs = xrealloc (secs, alc * sizeof (asection *));
6287 }
6288 secs[c] = os->bfd_section;
6289 ++c;
6290 pl->used = TRUE;
6291 }
6292 }
6293 }
6294
6295 if (l->flags == NULL)
6296 flags = 0;
6297 else
6298 flags = exp_get_vma (l->flags, 0, "phdr flags");
6299
6300 if (l->at == NULL)
6301 at = 0;
6302 else
6303 at = exp_get_vma (l->at, 0, "phdr load address");
6304
6305 if (! bfd_record_phdr (output_bfd, l->type,
6306 l->flags != NULL, flags, l->at != NULL,
6307 at, l->filehdr, l->phdrs, c, secs))
6308 einfo (_("%F%P: bfd_record_phdr failed: %E\n"));
6309 }
6310
6311 free (secs);
6312
6313 /* Make sure all the phdr assignments succeeded. */
6314 for (os = &lang_output_section_statement.head->output_section_statement;
6315 os != NULL;
6316 os = os->next)
6317 {
6318 lang_output_section_phdr_list *pl;
6319
6320 if (os->constraint == -1
6321 || os->bfd_section == NULL)
6322 continue;
6323
6324 for (pl = os->phdrs;
6325 pl != NULL;
6326 pl = pl->next)
6327 if (! pl->used && strcmp (pl->name, "NONE") != 0)
6328 einfo (_("%X%P: section `%s' assigned to non-existent phdr `%s'\n"),
6329 os->name, pl->name);
6330 }
6331 }
6332
6333 /* Record a list of sections which may not be cross referenced. */
6334
6335 void
6336 lang_add_nocrossref (lang_nocrossref_type *l)
6337 {
6338 struct lang_nocrossrefs *n;
6339
6340 n = xmalloc (sizeof *n);
6341 n->next = nocrossref_list;
6342 n->list = l;
6343 nocrossref_list = n;
6344
6345 /* Set notice_all so that we get informed about all symbols. */
6346 link_info.notice_all = TRUE;
6347 }
6348 \f
6349 /* Overlay handling. We handle overlays with some static variables. */
6350
6351 /* The overlay virtual address. */
6352 static etree_type *overlay_vma;
6353 /* And subsection alignment. */
6354 static etree_type *overlay_subalign;
6355
6356 /* An expression for the maximum section size seen so far. */
6357 static etree_type *overlay_max;
6358
6359 /* A list of all the sections in this overlay. */
6360
6361 struct overlay_list {
6362 struct overlay_list *next;
6363 lang_output_section_statement_type *os;
6364 };
6365
6366 static struct overlay_list *overlay_list;
6367
6368 /* Start handling an overlay. */
6369
6370 void
6371 lang_enter_overlay (etree_type *vma_expr, etree_type *subalign)
6372 {
6373 /* The grammar should prevent nested overlays from occurring. */
6374 ASSERT (overlay_vma == NULL
6375 && overlay_subalign == NULL
6376 && overlay_max == NULL);
6377
6378 overlay_vma = vma_expr;
6379 overlay_subalign = subalign;
6380 }
6381
6382 /* Start a section in an overlay. We handle this by calling
6383 lang_enter_output_section_statement with the correct VMA.
6384 lang_leave_overlay sets up the LMA and memory regions. */
6385
6386 void
6387 lang_enter_overlay_section (const char *name)
6388 {
6389 struct overlay_list *n;
6390 etree_type *size;
6391
6392 lang_enter_output_section_statement (name, overlay_vma, overlay_section,
6393 0, overlay_subalign, 0, 0);
6394
6395 /* If this is the first section, then base the VMA of future
6396 sections on this one. This will work correctly even if `.' is
6397 used in the addresses. */
6398 if (overlay_list == NULL)
6399 overlay_vma = exp_nameop (ADDR, name);
6400
6401 /* Remember the section. */
6402 n = xmalloc (sizeof *n);
6403 n->os = current_section;
6404 n->next = overlay_list;
6405 overlay_list = n;
6406
6407 size = exp_nameop (SIZEOF, name);
6408
6409 /* Arrange to work out the maximum section end address. */
6410 if (overlay_max == NULL)
6411 overlay_max = size;
6412 else
6413 overlay_max = exp_binop (MAX_K, overlay_max, size);
6414 }
6415
6416 /* Finish a section in an overlay. There isn't any special to do
6417 here. */
6418
6419 void
6420 lang_leave_overlay_section (fill_type *fill,
6421 lang_output_section_phdr_list *phdrs)
6422 {
6423 const char *name;
6424 char *clean, *s2;
6425 const char *s1;
6426 char *buf;
6427
6428 name = current_section->name;
6429
6430 /* For now, assume that DEFAULT_MEMORY_REGION is the run-time memory
6431 region and that no load-time region has been specified. It doesn't
6432 really matter what we say here, since lang_leave_overlay will
6433 override it. */
6434 lang_leave_output_section_statement (fill, DEFAULT_MEMORY_REGION, phdrs, 0);
6435
6436 /* Define the magic symbols. */
6437
6438 clean = xmalloc (strlen (name) + 1);
6439 s2 = clean;
6440 for (s1 = name; *s1 != '\0'; s1++)
6441 if (ISALNUM (*s1) || *s1 == '_')
6442 *s2++ = *s1;
6443 *s2 = '\0';
6444
6445 buf = xmalloc (strlen (clean) + sizeof "__load_start_");
6446 sprintf (buf, "__load_start_%s", clean);
6447 lang_add_assignment (exp_provide (buf,
6448 exp_nameop (LOADADDR, name),
6449 FALSE));
6450
6451 buf = xmalloc (strlen (clean) + sizeof "__load_stop_");
6452 sprintf (buf, "__load_stop_%s", clean);
6453 lang_add_assignment (exp_provide (buf,
6454 exp_binop ('+',
6455 exp_nameop (LOADADDR, name),
6456 exp_nameop (SIZEOF, name)),
6457 FALSE));
6458
6459 free (clean);
6460 }
6461
6462 /* Finish an overlay. If there are any overlay wide settings, this
6463 looks through all the sections in the overlay and sets them. */
6464
6465 void
6466 lang_leave_overlay (etree_type *lma_expr,
6467 int nocrossrefs,
6468 fill_type *fill,
6469 const char *memspec,
6470 lang_output_section_phdr_list *phdrs,
6471 const char *lma_memspec)
6472 {
6473 lang_memory_region_type *region;
6474 lang_memory_region_type *lma_region;
6475 struct overlay_list *l;
6476 lang_nocrossref_type *nocrossref;
6477
6478 lang_get_regions (&region, &lma_region,
6479 memspec, lma_memspec,
6480 lma_expr != NULL, FALSE);
6481
6482 nocrossref = NULL;
6483
6484 /* After setting the size of the last section, set '.' to end of the
6485 overlay region. */
6486 if (overlay_list != NULL)
6487 overlay_list->os->update_dot_tree
6488 = exp_assop ('=', ".", exp_binop ('+', overlay_vma, overlay_max));
6489
6490 l = overlay_list;
6491 while (l != NULL)
6492 {
6493 struct overlay_list *next;
6494
6495 if (fill != NULL && l->os->fill == NULL)
6496 l->os->fill = fill;
6497
6498 l->os->region = region;
6499 l->os->lma_region = lma_region;
6500
6501 /* The first section has the load address specified in the
6502 OVERLAY statement. The rest are worked out from that.
6503 The base address is not needed (and should be null) if
6504 an LMA region was specified. */
6505 if (l->next == 0)
6506 {
6507 l->os->load_base = lma_expr;
6508 l->os->sectype = normal_section;
6509 }
6510 if (phdrs != NULL && l->os->phdrs == NULL)
6511 l->os->phdrs = phdrs;
6512
6513 if (nocrossrefs)
6514 {
6515 lang_nocrossref_type *nc;
6516
6517 nc = xmalloc (sizeof *nc);
6518 nc->name = l->os->name;
6519 nc->next = nocrossref;
6520 nocrossref = nc;
6521 }
6522
6523 next = l->next;
6524 free (l);
6525 l = next;
6526 }
6527
6528 if (nocrossref != NULL)
6529 lang_add_nocrossref (nocrossref);
6530
6531 overlay_vma = NULL;
6532 overlay_list = NULL;
6533 overlay_max = NULL;
6534 }
6535 \f
6536 /* Version handling. This is only useful for ELF. */
6537
6538 /* This global variable holds the version tree that we build. */
6539
6540 struct bfd_elf_version_tree *lang_elf_version_info;
6541
6542 /* If PREV is NULL, return first version pattern matching particular symbol.
6543 If PREV is non-NULL, return first version pattern matching particular
6544 symbol after PREV (previously returned by lang_vers_match). */
6545
6546 static struct bfd_elf_version_expr *
6547 lang_vers_match (struct bfd_elf_version_expr_head *head,
6548 struct bfd_elf_version_expr *prev,
6549 const char *sym)
6550 {
6551 const char *cxx_sym = sym;
6552 const char *java_sym = sym;
6553 struct bfd_elf_version_expr *expr = NULL;
6554
6555 if (head->mask & BFD_ELF_VERSION_CXX_TYPE)
6556 {
6557 cxx_sym = cplus_demangle (sym, DMGL_PARAMS | DMGL_ANSI);
6558 if (!cxx_sym)
6559 cxx_sym = sym;
6560 }
6561 if (head->mask & BFD_ELF_VERSION_JAVA_TYPE)
6562 {
6563 java_sym = cplus_demangle (sym, DMGL_JAVA);
6564 if (!java_sym)
6565 java_sym = sym;
6566 }
6567
6568 if (head->htab && (prev == NULL || prev->symbol))
6569 {
6570 struct bfd_elf_version_expr e;
6571
6572 switch (prev ? prev->mask : 0)
6573 {
6574 case 0:
6575 if (head->mask & BFD_ELF_VERSION_C_TYPE)
6576 {
6577 e.symbol = sym;
6578 expr = htab_find (head->htab, &e);
6579 while (expr && strcmp (expr->symbol, sym) == 0)
6580 if (expr->mask == BFD_ELF_VERSION_C_TYPE)
6581 goto out_ret;
6582 else
6583 expr = expr->next;
6584 }
6585 /* Fallthrough */
6586 case BFD_ELF_VERSION_C_TYPE:
6587 if (head->mask & BFD_ELF_VERSION_CXX_TYPE)
6588 {
6589 e.symbol = cxx_sym;
6590 expr = htab_find (head->htab, &e);
6591 while (expr && strcmp (expr->symbol, cxx_sym) == 0)
6592 if (expr->mask == BFD_ELF_VERSION_CXX_TYPE)
6593 goto out_ret;
6594 else
6595 expr = expr->next;
6596 }
6597 /* Fallthrough */
6598 case BFD_ELF_VERSION_CXX_TYPE:
6599 if (head->mask & BFD_ELF_VERSION_JAVA_TYPE)
6600 {
6601 e.symbol = java_sym;
6602 expr = htab_find (head->htab, &e);
6603 while (expr && strcmp (expr->symbol, java_sym) == 0)
6604 if (expr->mask == BFD_ELF_VERSION_JAVA_TYPE)
6605 goto out_ret;
6606 else
6607 expr = expr->next;
6608 }
6609 /* Fallthrough */
6610 default:
6611 break;
6612 }
6613 }
6614
6615 /* Finally, try the wildcards. */
6616 if (prev == NULL || prev->symbol)
6617 expr = head->remaining;
6618 else
6619 expr = prev->next;
6620 for (; expr; expr = expr->next)
6621 {
6622 const char *s;
6623
6624 if (!expr->pattern)
6625 continue;
6626
6627 if (expr->pattern[0] == '*' && expr->pattern[1] == '\0')
6628 break;
6629
6630 if (expr->mask == BFD_ELF_VERSION_JAVA_TYPE)
6631 s = java_sym;
6632 else if (expr->mask == BFD_ELF_VERSION_CXX_TYPE)
6633 s = cxx_sym;
6634 else
6635 s = sym;
6636 if (fnmatch (expr->pattern, s, 0) == 0)
6637 break;
6638 }
6639
6640 out_ret:
6641 if (cxx_sym != sym)
6642 free ((char *) cxx_sym);
6643 if (java_sym != sym)
6644 free ((char *) java_sym);
6645 return expr;
6646 }
6647
6648 /* Return NULL if the PATTERN argument is a glob pattern, otherwise,
6649 return a string pointing to the symbol name. */
6650
6651 static const char *
6652 realsymbol (const char *pattern)
6653 {
6654 const char *p;
6655 bfd_boolean changed = FALSE, backslash = FALSE;
6656 char *s, *symbol = xmalloc (strlen (pattern) + 1);
6657
6658 for (p = pattern, s = symbol; *p != '\0'; ++p)
6659 {
6660 /* It is a glob pattern only if there is no preceding
6661 backslash. */
6662 if (! backslash && (*p == '?' || *p == '*' || *p == '['))
6663 {
6664 free (symbol);
6665 return NULL;
6666 }
6667
6668 if (backslash)
6669 {
6670 /* Remove the preceding backslash. */
6671 *(s - 1) = *p;
6672 changed = TRUE;
6673 }
6674 else
6675 *s++ = *p;
6676
6677 backslash = *p == '\\';
6678 }
6679
6680 if (changed)
6681 {
6682 *s = '\0';
6683 return symbol;
6684 }
6685 else
6686 {
6687 free (symbol);
6688 return pattern;
6689 }
6690 }
6691
6692 /* This is called for each variable name or match expression. NEW is
6693 the name of the symbol to match, or, if LITERAL_P is FALSE, a glob
6694 pattern to be matched against symbol names. */
6695
6696 struct bfd_elf_version_expr *
6697 lang_new_vers_pattern (struct bfd_elf_version_expr *orig,
6698 const char *new,
6699 const char *lang,
6700 bfd_boolean literal_p)
6701 {
6702 struct bfd_elf_version_expr *ret;
6703
6704 ret = xmalloc (sizeof *ret);
6705 ret->next = orig;
6706 ret->pattern = literal_p ? NULL : new;
6707 ret->symver = 0;
6708 ret->script = 0;
6709 ret->symbol = literal_p ? new : realsymbol (new);
6710
6711 if (lang == NULL || strcasecmp (lang, "C") == 0)
6712 ret->mask = BFD_ELF_VERSION_C_TYPE;
6713 else if (strcasecmp (lang, "C++") == 0)
6714 ret->mask = BFD_ELF_VERSION_CXX_TYPE;
6715 else if (strcasecmp (lang, "Java") == 0)
6716 ret->mask = BFD_ELF_VERSION_JAVA_TYPE;
6717 else
6718 {
6719 einfo (_("%X%P: unknown language `%s' in version information\n"),
6720 lang);
6721 ret->mask = BFD_ELF_VERSION_C_TYPE;
6722 }
6723
6724 return ldemul_new_vers_pattern (ret);
6725 }
6726
6727 /* This is called for each set of variable names and match
6728 expressions. */
6729
6730 struct bfd_elf_version_tree *
6731 lang_new_vers_node (struct bfd_elf_version_expr *globals,
6732 struct bfd_elf_version_expr *locals)
6733 {
6734 struct bfd_elf_version_tree *ret;
6735
6736 ret = xcalloc (1, sizeof *ret);
6737 ret->globals.list = globals;
6738 ret->locals.list = locals;
6739 ret->match = lang_vers_match;
6740 ret->name_indx = (unsigned int) -1;
6741 return ret;
6742 }
6743
6744 /* This static variable keeps track of version indices. */
6745
6746 static int version_index;
6747
6748 static hashval_t
6749 version_expr_head_hash (const void *p)
6750 {
6751 const struct bfd_elf_version_expr *e = p;
6752
6753 return htab_hash_string (e->symbol);
6754 }
6755
6756 static int
6757 version_expr_head_eq (const void *p1, const void *p2)
6758 {
6759 const struct bfd_elf_version_expr *e1 = p1;
6760 const struct bfd_elf_version_expr *e2 = p2;
6761
6762 return strcmp (e1->symbol, e2->symbol) == 0;
6763 }
6764
6765 static void
6766 lang_finalize_version_expr_head (struct bfd_elf_version_expr_head *head)
6767 {
6768 size_t count = 0;
6769 struct bfd_elf_version_expr *e, *next;
6770 struct bfd_elf_version_expr **list_loc, **remaining_loc;
6771
6772 for (e = head->list; e; e = e->next)
6773 {
6774 if (e->symbol)
6775 count++;
6776 head->mask |= e->mask;
6777 }
6778
6779 if (count)
6780 {
6781 head->htab = htab_create (count * 2, version_expr_head_hash,
6782 version_expr_head_eq, NULL);
6783 list_loc = &head->list;
6784 remaining_loc = &head->remaining;
6785 for (e = head->list; e; e = next)
6786 {
6787 next = e->next;
6788 if (!e->symbol)
6789 {
6790 *remaining_loc = e;
6791 remaining_loc = &e->next;
6792 }
6793 else
6794 {
6795 void **loc = htab_find_slot (head->htab, e, INSERT);
6796
6797 if (*loc)
6798 {
6799 struct bfd_elf_version_expr *e1, *last;
6800
6801 e1 = *loc;
6802 last = NULL;
6803 do
6804 {
6805 if (e1->mask == e->mask)
6806 {
6807 last = NULL;
6808 break;
6809 }
6810 last = e1;
6811 e1 = e1->next;
6812 }
6813 while (e1 && strcmp (e1->symbol, e->symbol) == 0);
6814
6815 if (last == NULL)
6816 {
6817 /* This is a duplicate. */
6818 /* FIXME: Memory leak. Sometimes pattern is not
6819 xmalloced alone, but in larger chunk of memory. */
6820 /* free (e->symbol); */
6821 free (e);
6822 }
6823 else
6824 {
6825 e->next = last->next;
6826 last->next = e;
6827 }
6828 }
6829 else
6830 {
6831 *loc = e;
6832 *list_loc = e;
6833 list_loc = &e->next;
6834 }
6835 }
6836 }
6837 *remaining_loc = NULL;
6838 *list_loc = head->remaining;
6839 }
6840 else
6841 head->remaining = head->list;
6842 }
6843
6844 /* This is called when we know the name and dependencies of the
6845 version. */
6846
6847 void
6848 lang_register_vers_node (const char *name,
6849 struct bfd_elf_version_tree *version,
6850 struct bfd_elf_version_deps *deps)
6851 {
6852 struct bfd_elf_version_tree *t, **pp;
6853 struct bfd_elf_version_expr *e1;
6854
6855 if (name == NULL)
6856 name = "";
6857
6858 if ((name[0] == '\0' && lang_elf_version_info != NULL)
6859 || (lang_elf_version_info && lang_elf_version_info->name[0] == '\0'))
6860 {
6861 einfo (_("%X%P: anonymous version tag cannot be combined"
6862 " with other version tags\n"));
6863 free (version);
6864 return;
6865 }
6866
6867 /* Make sure this node has a unique name. */
6868 for (t = lang_elf_version_info; t != NULL; t = t->next)
6869 if (strcmp (t->name, name) == 0)
6870 einfo (_("%X%P: duplicate version tag `%s'\n"), name);
6871
6872 lang_finalize_version_expr_head (&version->globals);
6873 lang_finalize_version_expr_head (&version->locals);
6874
6875 /* Check the global and local match names, and make sure there
6876 aren't any duplicates. */
6877
6878 for (e1 = version->globals.list; e1 != NULL; e1 = e1->next)
6879 {
6880 for (t = lang_elf_version_info; t != NULL; t = t->next)
6881 {
6882 struct bfd_elf_version_expr *e2;
6883
6884 if (t->locals.htab && e1->symbol)
6885 {
6886 e2 = htab_find (t->locals.htab, e1);
6887 while (e2 && strcmp (e1->symbol, e2->symbol) == 0)
6888 {
6889 if (e1->mask == e2->mask)
6890 einfo (_("%X%P: duplicate expression `%s'"
6891 " in version information\n"), e1->symbol);
6892 e2 = e2->next;
6893 }
6894 }
6895 else if (!e1->symbol)
6896 for (e2 = t->locals.remaining; e2 != NULL; e2 = e2->next)
6897 if (strcmp (e1->pattern, e2->pattern) == 0
6898 && e1->mask == e2->mask)
6899 einfo (_("%X%P: duplicate expression `%s'"
6900 " in version information\n"), e1->pattern);
6901 }
6902 }
6903
6904 for (e1 = version->locals.list; e1 != NULL; e1 = e1->next)
6905 {
6906 for (t = lang_elf_version_info; t != NULL; t = t->next)
6907 {
6908 struct bfd_elf_version_expr *e2;
6909
6910 if (t->globals.htab && e1->symbol)
6911 {
6912 e2 = htab_find (t->globals.htab, e1);
6913 while (e2 && strcmp (e1->symbol, e2->symbol) == 0)
6914 {
6915 if (e1->mask == e2->mask)
6916 einfo (_("%X%P: duplicate expression `%s'"
6917 " in version information\n"),
6918 e1->symbol);
6919 e2 = e2->next;
6920 }
6921 }
6922 else if (!e1->symbol)
6923 for (e2 = t->globals.remaining; e2 != NULL; e2 = e2->next)
6924 if (strcmp (e1->pattern, e2->pattern) == 0
6925 && e1->mask == e2->mask)
6926 einfo (_("%X%P: duplicate expression `%s'"
6927 " in version information\n"), e1->pattern);
6928 }
6929 }
6930
6931 version->deps = deps;
6932 version->name = name;
6933 if (name[0] != '\0')
6934 {
6935 ++version_index;
6936 version->vernum = version_index;
6937 }
6938 else
6939 version->vernum = 0;
6940
6941 for (pp = &lang_elf_version_info; *pp != NULL; pp = &(*pp)->next)
6942 ;
6943 *pp = version;
6944 }
6945
6946 /* This is called when we see a version dependency. */
6947
6948 struct bfd_elf_version_deps *
6949 lang_add_vers_depend (struct bfd_elf_version_deps *list, const char *name)
6950 {
6951 struct bfd_elf_version_deps *ret;
6952 struct bfd_elf_version_tree *t;
6953
6954 ret = xmalloc (sizeof *ret);
6955 ret->next = list;
6956
6957 for (t = lang_elf_version_info; t != NULL; t = t->next)
6958 {
6959 if (strcmp (t->name, name) == 0)
6960 {
6961 ret->version_needed = t;
6962 return ret;
6963 }
6964 }
6965
6966 einfo (_("%X%P: unable to find version dependency `%s'\n"), name);
6967
6968 return ret;
6969 }
6970
6971 static void
6972 lang_do_version_exports_section (void)
6973 {
6974 struct bfd_elf_version_expr *greg = NULL, *lreg;
6975
6976 LANG_FOR_EACH_INPUT_STATEMENT (is)
6977 {
6978 asection *sec = bfd_get_section_by_name (is->the_bfd, ".exports");
6979 char *contents, *p;
6980 bfd_size_type len;
6981
6982 if (sec == NULL)
6983 continue;
6984
6985 len = sec->size;
6986 contents = xmalloc (len);
6987 if (!bfd_get_section_contents (is->the_bfd, sec, contents, 0, len))
6988 einfo (_("%X%P: unable to read .exports section contents\n"), sec);
6989
6990 p = contents;
6991 while (p < contents + len)
6992 {
6993 greg = lang_new_vers_pattern (greg, p, NULL, FALSE);
6994 p = strchr (p, '\0') + 1;
6995 }
6996
6997 /* Do not free the contents, as we used them creating the regex. */
6998
6999 /* Do not include this section in the link. */
7000 sec->flags |= SEC_EXCLUDE | SEC_KEEP;
7001 }
7002
7003 lreg = lang_new_vers_pattern (NULL, "*", NULL, FALSE);
7004 lang_register_vers_node (command_line.version_exports_section,
7005 lang_new_vers_node (greg, lreg), NULL);
7006 }
7007
7008 void
7009 lang_add_unique (const char *name)
7010 {
7011 struct unique_sections *ent;
7012
7013 for (ent = unique_section_list; ent; ent = ent->next)
7014 if (strcmp (ent->name, name) == 0)
7015 return;
7016
7017 ent = xmalloc (sizeof *ent);
7018 ent->name = xstrdup (name);
7019 ent->next = unique_section_list;
7020 unique_section_list = ent;
7021 }
7022
7023 /* Append the list of dynamic symbols to the existing one. */
7024
7025 void
7026 lang_append_dynamic_list (struct bfd_elf_version_expr *dynamic)
7027 {
7028 if (link_info.dynamic_list)
7029 {
7030 struct bfd_elf_version_expr *tail;
7031 for (tail = dynamic; tail->next != NULL; tail = tail->next)
7032 ;
7033 tail->next = link_info.dynamic_list->head.list;
7034 link_info.dynamic_list->head.list = dynamic;
7035 }
7036 else
7037 {
7038 struct bfd_elf_dynamic_list *d;
7039
7040 d = xcalloc (1, sizeof *d);
7041 d->head.list = dynamic;
7042 d->match = lang_vers_match;
7043 link_info.dynamic_list = d;
7044 }
7045 }
7046
7047 /* Append the list of C++ typeinfo dynamic symbols to the existing
7048 one. */
7049
7050 void
7051 lang_append_dynamic_list_cpp_typeinfo (void)
7052 {
7053 const char * symbols [] =
7054 {
7055 "typeinfo name for*",
7056 "typeinfo for*"
7057 };
7058 struct bfd_elf_version_expr *dynamic = NULL;
7059 unsigned int i;
7060
7061 for (i = 0; i < ARRAY_SIZE (symbols); i++)
7062 dynamic = lang_new_vers_pattern (dynamic, symbols [i], "C++",
7063 FALSE);
7064
7065 lang_append_dynamic_list (dynamic);
7066 }
7067
7068 /* Append the list of C++ operator new and delete dynamic symbols to the
7069 existing one. */
7070
7071 void
7072 lang_append_dynamic_list_cpp_new (void)
7073 {
7074 const char * symbols [] =
7075 {
7076 "operator new*",
7077 "operator delete*"
7078 };
7079 struct bfd_elf_version_expr *dynamic = NULL;
7080 unsigned int i;
7081
7082 for (i = 0; i < ARRAY_SIZE (symbols); i++)
7083 dynamic = lang_new_vers_pattern (dynamic, symbols [i], "C++",
7084 FALSE);
7085
7086 lang_append_dynamic_list (dynamic);
7087 }
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