Correct the ChangeLog entry
[deliverable/binutils-gdb.git] / ld / ldlang.c
1 /* Linker command language support.
2 Copyright (C) 1991-2017 Free Software Foundation, Inc.
3
4 This file is part of the GNU Binutils.
5
6 This program is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 3 of the License, or
9 (at your option) any later version.
10
11 This program is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
15
16 You should have received a copy of the GNU General Public License
17 along with this program; if not, write to the Free Software
18 Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
19 MA 02110-1301, USA. */
20
21 #include "sysdep.h"
22 #include "bfd.h"
23 #include "libiberty.h"
24 #include "filenames.h"
25 #include "safe-ctype.h"
26 #include "obstack.h"
27 #include "bfdlink.h"
28
29 #include "ld.h"
30 #include "ldmain.h"
31 #include "ldexp.h"
32 #include "ldlang.h"
33 #include <ldgram.h>
34 #include "ldlex.h"
35 #include "ldmisc.h"
36 #include "ldctor.h"
37 #include "ldfile.h"
38 #include "ldemul.h"
39 #include "fnmatch.h"
40 #include "demangle.h"
41 #include "hashtab.h"
42 #include "elf-bfd.h"
43 #ifdef ENABLE_PLUGINS
44 #include "plugin.h"
45 #endif /* ENABLE_PLUGINS */
46
47 #ifndef offsetof
48 #define offsetof(TYPE, MEMBER) ((size_t) & (((TYPE*) 0)->MEMBER))
49 #endif
50
51 /* Convert between addresses in bytes and sizes in octets.
52 For currently supported targets, octets_per_byte is always a power
53 of two, so we can use shifts. */
54 #define TO_ADDR(X) ((X) >> opb_shift)
55 #define TO_SIZE(X) ((X) << opb_shift)
56
57 /* Local variables. */
58 static struct obstack stat_obstack;
59 static struct obstack map_obstack;
60
61 #define obstack_chunk_alloc xmalloc
62 #define obstack_chunk_free free
63 static const char *entry_symbol_default = "start";
64 static bfd_boolean placed_commons = FALSE;
65 static bfd_boolean map_head_is_link_order = FALSE;
66 static lang_output_section_statement_type *default_common_section;
67 static bfd_boolean map_option_f;
68 static bfd_vma print_dot;
69 static lang_input_statement_type *first_file;
70 static const char *current_target;
71 static lang_statement_list_type statement_list;
72 static lang_statement_list_type *stat_save[10];
73 static lang_statement_list_type **stat_save_ptr = &stat_save[0];
74 static struct unique_sections *unique_section_list;
75 static struct asneeded_minfo *asneeded_list_head;
76 static unsigned int opb_shift = 0;
77
78 /* Forward declarations. */
79 static void exp_init_os (etree_type *);
80 static lang_input_statement_type *lookup_name (const char *);
81 static void insert_undefined (const char *);
82 static bfd_boolean sort_def_symbol (struct bfd_link_hash_entry *, void *);
83 static void print_statement (lang_statement_union_type *,
84 lang_output_section_statement_type *);
85 static void print_statement_list (lang_statement_union_type *,
86 lang_output_section_statement_type *);
87 static void print_statements (void);
88 static void print_input_section (asection *, bfd_boolean);
89 static bfd_boolean lang_one_common (struct bfd_link_hash_entry *, void *);
90 static void lang_record_phdrs (void);
91 static void lang_do_version_exports_section (void);
92 static void lang_finalize_version_expr_head
93 (struct bfd_elf_version_expr_head *);
94 static void lang_do_memory_regions (void);
95
96 /* Exported variables. */
97 const char *output_target;
98 lang_output_section_statement_type *abs_output_section;
99 lang_statement_list_type lang_output_section_statement;
100 lang_statement_list_type *stat_ptr = &statement_list;
101 lang_statement_list_type file_chain = { NULL, NULL };
102 lang_statement_list_type input_file_chain;
103 struct bfd_sym_chain entry_symbol = { NULL, NULL };
104 const char *entry_section = ".text";
105 struct lang_input_statement_flags input_flags;
106 bfd_boolean entry_from_cmdline;
107 bfd_boolean undef_from_cmdline;
108 bfd_boolean lang_has_input_file = FALSE;
109 bfd_boolean had_output_filename = FALSE;
110 bfd_boolean lang_float_flag = FALSE;
111 bfd_boolean delete_output_file_on_failure = FALSE;
112 struct lang_phdr *lang_phdr_list;
113 struct lang_nocrossrefs *nocrossref_list;
114 struct asneeded_minfo **asneeded_list_tail;
115
116 /* Functions that traverse the linker script and might evaluate
117 DEFINED() need to increment this at the start of the traversal. */
118 int lang_statement_iteration = 0;
119
120 /* Return TRUE if the PATTERN argument is a wildcard pattern.
121 Although backslashes are treated specially if a pattern contains
122 wildcards, we do not consider the mere presence of a backslash to
123 be enough to cause the pattern to be treated as a wildcard.
124 That lets us handle DOS filenames more naturally. */
125 #define wildcardp(pattern) (strpbrk ((pattern), "?*[") != NULL)
126
127 #define new_stat(x, y) \
128 (x##_type *) new_statement (x##_enum, sizeof (x##_type), y)
129
130 #define outside_section_address(q) \
131 ((q)->output_offset + (q)->output_section->vma)
132
133 #define outside_symbol_address(q) \
134 ((q)->value + outside_section_address (q->section))
135
136 #define SECTION_NAME_MAP_LENGTH (16)
137
138 void *
139 stat_alloc (size_t size)
140 {
141 return obstack_alloc (&stat_obstack, size);
142 }
143
144 static int
145 name_match (const char *pattern, const char *name)
146 {
147 if (wildcardp (pattern))
148 return fnmatch (pattern, name, 0);
149 return strcmp (pattern, name);
150 }
151
152 /* If PATTERN is of the form archive:file, return a pointer to the
153 separator. If not, return NULL. */
154
155 static char *
156 archive_path (const char *pattern)
157 {
158 char *p = NULL;
159
160 if (link_info.path_separator == 0)
161 return p;
162
163 p = strchr (pattern, link_info.path_separator);
164 #ifdef HAVE_DOS_BASED_FILE_SYSTEM
165 if (p == NULL || link_info.path_separator != ':')
166 return p;
167
168 /* Assume a match on the second char is part of drive specifier,
169 as in "c:\silly.dos". */
170 if (p == pattern + 1 && ISALPHA (*pattern))
171 p = strchr (p + 1, link_info.path_separator);
172 #endif
173 return p;
174 }
175
176 /* Given that FILE_SPEC results in a non-NULL SEP result from archive_path,
177 return whether F matches FILE_SPEC. */
178
179 static bfd_boolean
180 input_statement_is_archive_path (const char *file_spec, char *sep,
181 lang_input_statement_type *f)
182 {
183 bfd_boolean match = FALSE;
184
185 if ((*(sep + 1) == 0
186 || name_match (sep + 1, f->filename) == 0)
187 && ((sep != file_spec)
188 == (f->the_bfd != NULL && f->the_bfd->my_archive != NULL)))
189 {
190 match = TRUE;
191
192 if (sep != file_spec)
193 {
194 const char *aname = f->the_bfd->my_archive->filename;
195 *sep = 0;
196 match = name_match (file_spec, aname) == 0;
197 *sep = link_info.path_separator;
198 }
199 }
200 return match;
201 }
202
203 static bfd_boolean
204 unique_section_p (const asection *sec,
205 const lang_output_section_statement_type *os)
206 {
207 struct unique_sections *unam;
208 const char *secnam;
209
210 if (bfd_link_relocatable (&link_info)
211 && sec->owner != NULL
212 && bfd_is_group_section (sec->owner, sec))
213 return !(os != NULL
214 && strcmp (os->name, DISCARD_SECTION_NAME) == 0);
215
216 secnam = sec->name;
217 for (unam = unique_section_list; unam; unam = unam->next)
218 if (name_match (unam->name, secnam) == 0)
219 return TRUE;
220
221 return FALSE;
222 }
223
224 /* Generic traversal routines for finding matching sections. */
225
226 /* Return true if FILE matches a pattern in EXCLUDE_LIST, otherwise return
227 false. */
228
229 static bfd_boolean
230 walk_wild_file_in_exclude_list (struct name_list *exclude_list,
231 lang_input_statement_type *file)
232 {
233 struct name_list *list_tmp;
234
235 for (list_tmp = exclude_list;
236 list_tmp;
237 list_tmp = list_tmp->next)
238 {
239 char *p = archive_path (list_tmp->name);
240
241 if (p != NULL)
242 {
243 if (input_statement_is_archive_path (list_tmp->name, p, file))
244 return TRUE;
245 }
246
247 else if (name_match (list_tmp->name, file->filename) == 0)
248 return TRUE;
249
250 /* FIXME: Perhaps remove the following at some stage? Matching
251 unadorned archives like this was never documented and has
252 been superceded by the archive:path syntax. */
253 else if (file->the_bfd != NULL
254 && file->the_bfd->my_archive != NULL
255 && name_match (list_tmp->name,
256 file->the_bfd->my_archive->filename) == 0)
257 return TRUE;
258 }
259
260 return FALSE;
261 }
262
263 /* Try processing a section against a wildcard. This just calls
264 the callback unless the filename exclusion list is present
265 and excludes the file. It's hardly ever present so this
266 function is very fast. */
267
268 static void
269 walk_wild_consider_section (lang_wild_statement_type *ptr,
270 lang_input_statement_type *file,
271 asection *s,
272 struct wildcard_list *sec,
273 callback_t callback,
274 void *data)
275 {
276 /* Don't process sections from files which were excluded. */
277 if (walk_wild_file_in_exclude_list (sec->spec.exclude_name_list, file))
278 return;
279
280 (*callback) (ptr, sec, s, ptr->section_flag_list, file, data);
281 }
282
283 /* Lowest common denominator routine that can handle everything correctly,
284 but slowly. */
285
286 static void
287 walk_wild_section_general (lang_wild_statement_type *ptr,
288 lang_input_statement_type *file,
289 callback_t callback,
290 void *data)
291 {
292 asection *s;
293 struct wildcard_list *sec;
294
295 for (s = file->the_bfd->sections; s != NULL; s = s->next)
296 {
297 sec = ptr->section_list;
298 if (sec == NULL)
299 (*callback) (ptr, sec, s, ptr->section_flag_list, file, data);
300
301 while (sec != NULL)
302 {
303 bfd_boolean skip = FALSE;
304
305 if (sec->spec.name != NULL)
306 {
307 const char *sname = bfd_get_section_name (file->the_bfd, s);
308
309 skip = name_match (sec->spec.name, sname) != 0;
310 }
311
312 if (!skip)
313 walk_wild_consider_section (ptr, file, s, sec, callback, data);
314
315 sec = sec->next;
316 }
317 }
318 }
319
320 /* Routines to find a single section given its name. If there's more
321 than one section with that name, we report that. */
322
323 typedef struct
324 {
325 asection *found_section;
326 bfd_boolean multiple_sections_found;
327 } section_iterator_callback_data;
328
329 static bfd_boolean
330 section_iterator_callback (bfd *abfd ATTRIBUTE_UNUSED, asection *s, void *data)
331 {
332 section_iterator_callback_data *d = (section_iterator_callback_data *) data;
333
334 if (d->found_section != NULL)
335 {
336 d->multiple_sections_found = TRUE;
337 return TRUE;
338 }
339
340 d->found_section = s;
341 return FALSE;
342 }
343
344 static asection *
345 find_section (lang_input_statement_type *file,
346 struct wildcard_list *sec,
347 bfd_boolean *multiple_sections_found)
348 {
349 section_iterator_callback_data cb_data = { NULL, FALSE };
350
351 bfd_get_section_by_name_if (file->the_bfd, sec->spec.name,
352 section_iterator_callback, &cb_data);
353 *multiple_sections_found = cb_data.multiple_sections_found;
354 return cb_data.found_section;
355 }
356
357 /* Code for handling simple wildcards without going through fnmatch,
358 which can be expensive because of charset translations etc. */
359
360 /* A simple wild is a literal string followed by a single '*',
361 where the literal part is at least 4 characters long. */
362
363 static bfd_boolean
364 is_simple_wild (const char *name)
365 {
366 size_t len = strcspn (name, "*?[");
367 return len >= 4 && name[len] == '*' && name[len + 1] == '\0';
368 }
369
370 static bfd_boolean
371 match_simple_wild (const char *pattern, const char *name)
372 {
373 /* The first four characters of the pattern are guaranteed valid
374 non-wildcard characters. So we can go faster. */
375 if (pattern[0] != name[0] || pattern[1] != name[1]
376 || pattern[2] != name[2] || pattern[3] != name[3])
377 return FALSE;
378
379 pattern += 4;
380 name += 4;
381 while (*pattern != '*')
382 if (*name++ != *pattern++)
383 return FALSE;
384
385 return TRUE;
386 }
387
388 /* Return the numerical value of the init_priority attribute from
389 section name NAME. */
390
391 static unsigned long
392 get_init_priority (const char *name)
393 {
394 char *end;
395 unsigned long init_priority;
396
397 /* GCC uses the following section names for the init_priority
398 attribute with numerical values 101 and 65535 inclusive. A
399 lower value means a higher priority.
400
401 1: .init_array.NNNN/.fini_array.NNNN: Where NNNN is the
402 decimal numerical value of the init_priority attribute.
403 The order of execution in .init_array is forward and
404 .fini_array is backward.
405 2: .ctors.NNNN/.dtors.NNNN: Where NNNN is 65535 minus the
406 decimal numerical value of the init_priority attribute.
407 The order of execution in .ctors is backward and .dtors
408 is forward.
409 */
410 if (strncmp (name, ".init_array.", 12) == 0
411 || strncmp (name, ".fini_array.", 12) == 0)
412 {
413 init_priority = strtoul (name + 12, &end, 10);
414 return *end ? 0 : init_priority;
415 }
416 else if (strncmp (name, ".ctors.", 7) == 0
417 || strncmp (name, ".dtors.", 7) == 0)
418 {
419 init_priority = strtoul (name + 7, &end, 10);
420 return *end ? 0 : 65535 - init_priority;
421 }
422
423 return 0;
424 }
425
426 /* Compare sections ASEC and BSEC according to SORT. */
427
428 static int
429 compare_section (sort_type sort, asection *asec, asection *bsec)
430 {
431 int ret;
432 unsigned long ainit_priority, binit_priority;
433
434 switch (sort)
435 {
436 default:
437 abort ();
438
439 case by_init_priority:
440 ainit_priority
441 = get_init_priority (bfd_get_section_name (asec->owner, asec));
442 binit_priority
443 = get_init_priority (bfd_get_section_name (bsec->owner, bsec));
444 if (ainit_priority == 0 || binit_priority == 0)
445 goto sort_by_name;
446 ret = ainit_priority - binit_priority;
447 if (ret)
448 break;
449 else
450 goto sort_by_name;
451
452 case by_alignment_name:
453 ret = (bfd_section_alignment (bsec->owner, bsec)
454 - bfd_section_alignment (asec->owner, asec));
455 if (ret)
456 break;
457 /* Fall through. */
458
459 case by_name:
460 sort_by_name:
461 ret = strcmp (bfd_get_section_name (asec->owner, asec),
462 bfd_get_section_name (bsec->owner, bsec));
463 break;
464
465 case by_name_alignment:
466 ret = strcmp (bfd_get_section_name (asec->owner, asec),
467 bfd_get_section_name (bsec->owner, bsec));
468 if (ret)
469 break;
470 /* Fall through. */
471
472 case by_alignment:
473 ret = (bfd_section_alignment (bsec->owner, bsec)
474 - bfd_section_alignment (asec->owner, asec));
475 break;
476 }
477
478 return ret;
479 }
480
481 /* Build a Binary Search Tree to sort sections, unlike insertion sort
482 used in wild_sort(). BST is considerably faster if the number of
483 of sections are large. */
484
485 static lang_section_bst_type **
486 wild_sort_fast (lang_wild_statement_type *wild,
487 struct wildcard_list *sec,
488 lang_input_statement_type *file ATTRIBUTE_UNUSED,
489 asection *section)
490 {
491 lang_section_bst_type **tree;
492
493 tree = &wild->tree;
494 if (!wild->filenames_sorted
495 && (sec == NULL || sec->spec.sorted == none))
496 {
497 /* Append at the right end of tree. */
498 while (*tree)
499 tree = &((*tree)->right);
500 return tree;
501 }
502
503 while (*tree)
504 {
505 /* Find the correct node to append this section. */
506 if (compare_section (sec->spec.sorted, section, (*tree)->section) < 0)
507 tree = &((*tree)->left);
508 else
509 tree = &((*tree)->right);
510 }
511
512 return tree;
513 }
514
515 /* Use wild_sort_fast to build a BST to sort sections. */
516
517 static void
518 output_section_callback_fast (lang_wild_statement_type *ptr,
519 struct wildcard_list *sec,
520 asection *section,
521 struct flag_info *sflag_list ATTRIBUTE_UNUSED,
522 lang_input_statement_type *file,
523 void *output)
524 {
525 lang_section_bst_type *node;
526 lang_section_bst_type **tree;
527 lang_output_section_statement_type *os;
528
529 os = (lang_output_section_statement_type *) output;
530
531 if (unique_section_p (section, os))
532 return;
533
534 node = (lang_section_bst_type *) xmalloc (sizeof (lang_section_bst_type));
535 node->left = 0;
536 node->right = 0;
537 node->section = section;
538
539 tree = wild_sort_fast (ptr, sec, file, section);
540 if (tree != NULL)
541 *tree = node;
542 }
543
544 /* Convert a sorted sections' BST back to list form. */
545
546 static void
547 output_section_callback_tree_to_list (lang_wild_statement_type *ptr,
548 lang_section_bst_type *tree,
549 void *output)
550 {
551 if (tree->left)
552 output_section_callback_tree_to_list (ptr, tree->left, output);
553
554 lang_add_section (&ptr->children, tree->section, NULL,
555 (lang_output_section_statement_type *) output);
556
557 if (tree->right)
558 output_section_callback_tree_to_list (ptr, tree->right, output);
559
560 free (tree);
561 }
562
563 /* Specialized, optimized routines for handling different kinds of
564 wildcards */
565
566 static void
567 walk_wild_section_specs1_wild0 (lang_wild_statement_type *ptr,
568 lang_input_statement_type *file,
569 callback_t callback,
570 void *data)
571 {
572 /* We can just do a hash lookup for the section with the right name.
573 But if that lookup discovers more than one section with the name
574 (should be rare), we fall back to the general algorithm because
575 we would otherwise have to sort the sections to make sure they
576 get processed in the bfd's order. */
577 bfd_boolean multiple_sections_found;
578 struct wildcard_list *sec0 = ptr->handler_data[0];
579 asection *s0 = find_section (file, sec0, &multiple_sections_found);
580
581 if (multiple_sections_found)
582 walk_wild_section_general (ptr, file, callback, data);
583 else if (s0)
584 walk_wild_consider_section (ptr, file, s0, sec0, callback, data);
585 }
586
587 static void
588 walk_wild_section_specs1_wild1 (lang_wild_statement_type *ptr,
589 lang_input_statement_type *file,
590 callback_t callback,
591 void *data)
592 {
593 asection *s;
594 struct wildcard_list *wildsec0 = ptr->handler_data[0];
595
596 for (s = file->the_bfd->sections; s != NULL; s = s->next)
597 {
598 const char *sname = bfd_get_section_name (file->the_bfd, s);
599 bfd_boolean skip = !match_simple_wild (wildsec0->spec.name, sname);
600
601 if (!skip)
602 walk_wild_consider_section (ptr, file, s, wildsec0, callback, data);
603 }
604 }
605
606 static void
607 walk_wild_section_specs2_wild1 (lang_wild_statement_type *ptr,
608 lang_input_statement_type *file,
609 callback_t callback,
610 void *data)
611 {
612 asection *s;
613 struct wildcard_list *sec0 = ptr->handler_data[0];
614 struct wildcard_list *wildsec1 = ptr->handler_data[1];
615 bfd_boolean multiple_sections_found;
616 asection *s0 = find_section (file, sec0, &multiple_sections_found);
617
618 if (multiple_sections_found)
619 {
620 walk_wild_section_general (ptr, file, callback, data);
621 return;
622 }
623
624 /* Note that if the section was not found, s0 is NULL and
625 we'll simply never succeed the s == s0 test below. */
626 for (s = file->the_bfd->sections; s != NULL; s = s->next)
627 {
628 /* Recall that in this code path, a section cannot satisfy more
629 than one spec, so if s == s0 then it cannot match
630 wildspec1. */
631 if (s == s0)
632 walk_wild_consider_section (ptr, file, s, sec0, callback, data);
633 else
634 {
635 const char *sname = bfd_get_section_name (file->the_bfd, s);
636 bfd_boolean skip = !match_simple_wild (wildsec1->spec.name, sname);
637
638 if (!skip)
639 walk_wild_consider_section (ptr, file, s, wildsec1, callback,
640 data);
641 }
642 }
643 }
644
645 static void
646 walk_wild_section_specs3_wild2 (lang_wild_statement_type *ptr,
647 lang_input_statement_type *file,
648 callback_t callback,
649 void *data)
650 {
651 asection *s;
652 struct wildcard_list *sec0 = ptr->handler_data[0];
653 struct wildcard_list *wildsec1 = ptr->handler_data[1];
654 struct wildcard_list *wildsec2 = ptr->handler_data[2];
655 bfd_boolean multiple_sections_found;
656 asection *s0 = find_section (file, sec0, &multiple_sections_found);
657
658 if (multiple_sections_found)
659 {
660 walk_wild_section_general (ptr, file, callback, data);
661 return;
662 }
663
664 for (s = file->the_bfd->sections; s != NULL; s = s->next)
665 {
666 if (s == s0)
667 walk_wild_consider_section (ptr, file, s, sec0, callback, data);
668 else
669 {
670 const char *sname = bfd_get_section_name (file->the_bfd, s);
671 bfd_boolean skip = !match_simple_wild (wildsec1->spec.name, sname);
672
673 if (!skip)
674 walk_wild_consider_section (ptr, file, s, wildsec1, callback, data);
675 else
676 {
677 skip = !match_simple_wild (wildsec2->spec.name, sname);
678 if (!skip)
679 walk_wild_consider_section (ptr, file, s, wildsec2, callback,
680 data);
681 }
682 }
683 }
684 }
685
686 static void
687 walk_wild_section_specs4_wild2 (lang_wild_statement_type *ptr,
688 lang_input_statement_type *file,
689 callback_t callback,
690 void *data)
691 {
692 asection *s;
693 struct wildcard_list *sec0 = ptr->handler_data[0];
694 struct wildcard_list *sec1 = ptr->handler_data[1];
695 struct wildcard_list *wildsec2 = ptr->handler_data[2];
696 struct wildcard_list *wildsec3 = ptr->handler_data[3];
697 bfd_boolean multiple_sections_found;
698 asection *s0 = find_section (file, sec0, &multiple_sections_found), *s1;
699
700 if (multiple_sections_found)
701 {
702 walk_wild_section_general (ptr, file, callback, data);
703 return;
704 }
705
706 s1 = find_section (file, sec1, &multiple_sections_found);
707 if (multiple_sections_found)
708 {
709 walk_wild_section_general (ptr, file, callback, data);
710 return;
711 }
712
713 for (s = file->the_bfd->sections; s != NULL; s = s->next)
714 {
715 if (s == s0)
716 walk_wild_consider_section (ptr, file, s, sec0, callback, data);
717 else
718 if (s == s1)
719 walk_wild_consider_section (ptr, file, s, sec1, callback, data);
720 else
721 {
722 const char *sname = bfd_get_section_name (file->the_bfd, s);
723 bfd_boolean skip = !match_simple_wild (wildsec2->spec.name,
724 sname);
725
726 if (!skip)
727 walk_wild_consider_section (ptr, file, s, wildsec2, callback,
728 data);
729 else
730 {
731 skip = !match_simple_wild (wildsec3->spec.name, sname);
732 if (!skip)
733 walk_wild_consider_section (ptr, file, s, wildsec3,
734 callback, data);
735 }
736 }
737 }
738 }
739
740 static void
741 walk_wild_section (lang_wild_statement_type *ptr,
742 lang_input_statement_type *file,
743 callback_t callback,
744 void *data)
745 {
746 if (file->flags.just_syms)
747 return;
748
749 (*ptr->walk_wild_section_handler) (ptr, file, callback, data);
750 }
751
752 /* Returns TRUE when name1 is a wildcard spec that might match
753 something name2 can match. We're conservative: we return FALSE
754 only if the prefixes of name1 and name2 are different up to the
755 first wildcard character. */
756
757 static bfd_boolean
758 wild_spec_can_overlap (const char *name1, const char *name2)
759 {
760 size_t prefix1_len = strcspn (name1, "?*[");
761 size_t prefix2_len = strcspn (name2, "?*[");
762 size_t min_prefix_len;
763
764 /* Note that if there is no wildcard character, then we treat the
765 terminating 0 as part of the prefix. Thus ".text" won't match
766 ".text." or ".text.*", for example. */
767 if (name1[prefix1_len] == '\0')
768 prefix1_len++;
769 if (name2[prefix2_len] == '\0')
770 prefix2_len++;
771
772 min_prefix_len = prefix1_len < prefix2_len ? prefix1_len : prefix2_len;
773
774 return memcmp (name1, name2, min_prefix_len) == 0;
775 }
776
777 /* Select specialized code to handle various kinds of wildcard
778 statements. */
779
780 static void
781 analyze_walk_wild_section_handler (lang_wild_statement_type *ptr)
782 {
783 int sec_count = 0;
784 int wild_name_count = 0;
785 struct wildcard_list *sec;
786 int signature;
787 int data_counter;
788
789 ptr->walk_wild_section_handler = walk_wild_section_general;
790 ptr->handler_data[0] = NULL;
791 ptr->handler_data[1] = NULL;
792 ptr->handler_data[2] = NULL;
793 ptr->handler_data[3] = NULL;
794 ptr->tree = NULL;
795
796 /* Count how many wildcard_specs there are, and how many of those
797 actually use wildcards in the name. Also, bail out if any of the
798 wildcard names are NULL. (Can this actually happen?
799 walk_wild_section used to test for it.) And bail out if any
800 of the wildcards are more complex than a simple string
801 ending in a single '*'. */
802 for (sec = ptr->section_list; sec != NULL; sec = sec->next)
803 {
804 ++sec_count;
805 if (sec->spec.name == NULL)
806 return;
807 if (wildcardp (sec->spec.name))
808 {
809 ++wild_name_count;
810 if (!is_simple_wild (sec->spec.name))
811 return;
812 }
813 }
814
815 /* The zero-spec case would be easy to optimize but it doesn't
816 happen in practice. Likewise, more than 4 specs doesn't
817 happen in practice. */
818 if (sec_count == 0 || sec_count > 4)
819 return;
820
821 /* Check that no two specs can match the same section. */
822 for (sec = ptr->section_list; sec != NULL; sec = sec->next)
823 {
824 struct wildcard_list *sec2;
825 for (sec2 = sec->next; sec2 != NULL; sec2 = sec2->next)
826 {
827 if (wild_spec_can_overlap (sec->spec.name, sec2->spec.name))
828 return;
829 }
830 }
831
832 signature = (sec_count << 8) + wild_name_count;
833 switch (signature)
834 {
835 case 0x0100:
836 ptr->walk_wild_section_handler = walk_wild_section_specs1_wild0;
837 break;
838 case 0x0101:
839 ptr->walk_wild_section_handler = walk_wild_section_specs1_wild1;
840 break;
841 case 0x0201:
842 ptr->walk_wild_section_handler = walk_wild_section_specs2_wild1;
843 break;
844 case 0x0302:
845 ptr->walk_wild_section_handler = walk_wild_section_specs3_wild2;
846 break;
847 case 0x0402:
848 ptr->walk_wild_section_handler = walk_wild_section_specs4_wild2;
849 break;
850 default:
851 return;
852 }
853
854 /* Now fill the data array with pointers to the specs, first the
855 specs with non-wildcard names, then the specs with wildcard
856 names. It's OK to process the specs in different order from the
857 given order, because we've already determined that no section
858 will match more than one spec. */
859 data_counter = 0;
860 for (sec = ptr->section_list; sec != NULL; sec = sec->next)
861 if (!wildcardp (sec->spec.name))
862 ptr->handler_data[data_counter++] = sec;
863 for (sec = ptr->section_list; sec != NULL; sec = sec->next)
864 if (wildcardp (sec->spec.name))
865 ptr->handler_data[data_counter++] = sec;
866 }
867
868 /* Handle a wild statement for a single file F. */
869
870 static void
871 walk_wild_file (lang_wild_statement_type *s,
872 lang_input_statement_type *f,
873 callback_t callback,
874 void *data)
875 {
876 if (walk_wild_file_in_exclude_list (s->exclude_name_list, f))
877 return;
878
879 if (f->the_bfd == NULL
880 || !bfd_check_format (f->the_bfd, bfd_archive))
881 walk_wild_section (s, f, callback, data);
882 else
883 {
884 bfd *member;
885
886 /* This is an archive file. We must map each member of the
887 archive separately. */
888 member = bfd_openr_next_archived_file (f->the_bfd, NULL);
889 while (member != NULL)
890 {
891 /* When lookup_name is called, it will call the add_symbols
892 entry point for the archive. For each element of the
893 archive which is included, BFD will call ldlang_add_file,
894 which will set the usrdata field of the member to the
895 lang_input_statement. */
896 if (member->usrdata != NULL)
897 {
898 walk_wild_section (s,
899 (lang_input_statement_type *) member->usrdata,
900 callback, data);
901 }
902
903 member = bfd_openr_next_archived_file (f->the_bfd, member);
904 }
905 }
906 }
907
908 static void
909 walk_wild (lang_wild_statement_type *s, callback_t callback, void *data)
910 {
911 const char *file_spec = s->filename;
912 char *p;
913
914 if (file_spec == NULL)
915 {
916 /* Perform the iteration over all files in the list. */
917 LANG_FOR_EACH_INPUT_STATEMENT (f)
918 {
919 walk_wild_file (s, f, callback, data);
920 }
921 }
922 else if ((p = archive_path (file_spec)) != NULL)
923 {
924 LANG_FOR_EACH_INPUT_STATEMENT (f)
925 {
926 if (input_statement_is_archive_path (file_spec, p, f))
927 walk_wild_file (s, f, callback, data);
928 }
929 }
930 else if (wildcardp (file_spec))
931 {
932 LANG_FOR_EACH_INPUT_STATEMENT (f)
933 {
934 if (fnmatch (file_spec, f->filename, 0) == 0)
935 walk_wild_file (s, f, callback, data);
936 }
937 }
938 else
939 {
940 lang_input_statement_type *f;
941
942 /* Perform the iteration over a single file. */
943 f = lookup_name (file_spec);
944 if (f)
945 walk_wild_file (s, f, callback, data);
946 }
947 }
948
949 /* lang_for_each_statement walks the parse tree and calls the provided
950 function for each node, except those inside output section statements
951 with constraint set to -1. */
952
953 void
954 lang_for_each_statement_worker (void (*func) (lang_statement_union_type *),
955 lang_statement_union_type *s)
956 {
957 for (; s != NULL; s = s->header.next)
958 {
959 func (s);
960
961 switch (s->header.type)
962 {
963 case lang_constructors_statement_enum:
964 lang_for_each_statement_worker (func, constructor_list.head);
965 break;
966 case lang_output_section_statement_enum:
967 if (s->output_section_statement.constraint != -1)
968 lang_for_each_statement_worker
969 (func, s->output_section_statement.children.head);
970 break;
971 case lang_wild_statement_enum:
972 lang_for_each_statement_worker (func,
973 s->wild_statement.children.head);
974 break;
975 case lang_group_statement_enum:
976 lang_for_each_statement_worker (func,
977 s->group_statement.children.head);
978 break;
979 case lang_data_statement_enum:
980 case lang_reloc_statement_enum:
981 case lang_object_symbols_statement_enum:
982 case lang_output_statement_enum:
983 case lang_target_statement_enum:
984 case lang_input_section_enum:
985 case lang_input_statement_enum:
986 case lang_assignment_statement_enum:
987 case lang_padding_statement_enum:
988 case lang_address_statement_enum:
989 case lang_fill_statement_enum:
990 case lang_insert_statement_enum:
991 break;
992 default:
993 FAIL ();
994 break;
995 }
996 }
997 }
998
999 void
1000 lang_for_each_statement (void (*func) (lang_statement_union_type *))
1001 {
1002 lang_for_each_statement_worker (func, statement_list.head);
1003 }
1004
1005 /*----------------------------------------------------------------------*/
1006
1007 void
1008 lang_list_init (lang_statement_list_type *list)
1009 {
1010 list->head = NULL;
1011 list->tail = &list->head;
1012 }
1013
1014 void
1015 push_stat_ptr (lang_statement_list_type *new_ptr)
1016 {
1017 if (stat_save_ptr >= stat_save + sizeof (stat_save) / sizeof (stat_save[0]))
1018 abort ();
1019 *stat_save_ptr++ = stat_ptr;
1020 stat_ptr = new_ptr;
1021 }
1022
1023 void
1024 pop_stat_ptr (void)
1025 {
1026 if (stat_save_ptr <= stat_save)
1027 abort ();
1028 stat_ptr = *--stat_save_ptr;
1029 }
1030
1031 /* Build a new statement node for the parse tree. */
1032
1033 static lang_statement_union_type *
1034 new_statement (enum statement_enum type,
1035 size_t size,
1036 lang_statement_list_type *list)
1037 {
1038 lang_statement_union_type *new_stmt;
1039
1040 new_stmt = (lang_statement_union_type *) stat_alloc (size);
1041 new_stmt->header.type = type;
1042 new_stmt->header.next = NULL;
1043 lang_statement_append (list, new_stmt, &new_stmt->header.next);
1044 return new_stmt;
1045 }
1046
1047 /* Build a new input file node for the language. There are several
1048 ways in which we treat an input file, eg, we only look at symbols,
1049 or prefix it with a -l etc.
1050
1051 We can be supplied with requests for input files more than once;
1052 they may, for example be split over several lines like foo.o(.text)
1053 foo.o(.data) etc, so when asked for a file we check that we haven't
1054 got it already so we don't duplicate the bfd. */
1055
1056 static lang_input_statement_type *
1057 new_afile (const char *name,
1058 lang_input_file_enum_type file_type,
1059 const char *target,
1060 bfd_boolean add_to_list)
1061 {
1062 lang_input_statement_type *p;
1063
1064 lang_has_input_file = TRUE;
1065
1066 if (add_to_list)
1067 p = (lang_input_statement_type *) new_stat (lang_input_statement, stat_ptr);
1068 else
1069 {
1070 p = (lang_input_statement_type *)
1071 stat_alloc (sizeof (lang_input_statement_type));
1072 p->header.type = lang_input_statement_enum;
1073 p->header.next = NULL;
1074 }
1075
1076 memset (&p->the_bfd, 0,
1077 sizeof (*p) - offsetof (lang_input_statement_type, the_bfd));
1078 p->target = target;
1079 p->flags.dynamic = input_flags.dynamic;
1080 p->flags.add_DT_NEEDED_for_dynamic = input_flags.add_DT_NEEDED_for_dynamic;
1081 p->flags.add_DT_NEEDED_for_regular = input_flags.add_DT_NEEDED_for_regular;
1082 p->flags.whole_archive = input_flags.whole_archive;
1083 p->flags.sysrooted = input_flags.sysrooted;
1084
1085 switch (file_type)
1086 {
1087 case lang_input_file_is_symbols_only_enum:
1088 p->filename = name;
1089 p->local_sym_name = name;
1090 p->flags.real = TRUE;
1091 p->flags.just_syms = TRUE;
1092 break;
1093 case lang_input_file_is_fake_enum:
1094 p->filename = name;
1095 p->local_sym_name = name;
1096 break;
1097 case lang_input_file_is_l_enum:
1098 if (name[0] == ':' && name[1] != '\0')
1099 {
1100 p->filename = name + 1;
1101 p->flags.full_name_provided = TRUE;
1102 }
1103 else
1104 p->filename = name;
1105 p->local_sym_name = concat ("-l", name, (const char *) NULL);
1106 p->flags.maybe_archive = TRUE;
1107 p->flags.real = TRUE;
1108 p->flags.search_dirs = TRUE;
1109 break;
1110 case lang_input_file_is_marker_enum:
1111 p->filename = name;
1112 p->local_sym_name = name;
1113 p->flags.search_dirs = TRUE;
1114 break;
1115 case lang_input_file_is_search_file_enum:
1116 p->filename = name;
1117 p->local_sym_name = name;
1118 p->flags.real = TRUE;
1119 p->flags.search_dirs = TRUE;
1120 break;
1121 case lang_input_file_is_file_enum:
1122 p->filename = name;
1123 p->local_sym_name = name;
1124 p->flags.real = TRUE;
1125 break;
1126 default:
1127 FAIL ();
1128 }
1129
1130 lang_statement_append (&input_file_chain,
1131 (lang_statement_union_type *) p,
1132 &p->next_real_file);
1133 return p;
1134 }
1135
1136 lang_input_statement_type *
1137 lang_add_input_file (const char *name,
1138 lang_input_file_enum_type file_type,
1139 const char *target)
1140 {
1141 if (name != NULL && *name == '=')
1142 {
1143 lang_input_statement_type *ret;
1144 char *sysrooted_name
1145 = concat (ld_sysroot, name + 1, (const char *) NULL);
1146
1147 /* We've now forcibly prepended the sysroot, making the input
1148 file independent of the context. Therefore, temporarily
1149 force a non-sysrooted context for this statement, so it won't
1150 get the sysroot prepended again when opened. (N.B. if it's a
1151 script, any child nodes with input files starting with "/"
1152 will be handled as "sysrooted" as they'll be found to be
1153 within the sysroot subdirectory.) */
1154 unsigned int outer_sysrooted = input_flags.sysrooted;
1155 input_flags.sysrooted = 0;
1156 ret = new_afile (sysrooted_name, file_type, target, TRUE);
1157 input_flags.sysrooted = outer_sysrooted;
1158 return ret;
1159 }
1160
1161 return new_afile (name, file_type, target, TRUE);
1162 }
1163
1164 struct out_section_hash_entry
1165 {
1166 struct bfd_hash_entry root;
1167 lang_statement_union_type s;
1168 };
1169
1170 /* The hash table. */
1171
1172 static struct bfd_hash_table output_section_statement_table;
1173
1174 /* Support routines for the hash table used by lang_output_section_find,
1175 initialize the table, fill in an entry and remove the table. */
1176
1177 static struct bfd_hash_entry *
1178 output_section_statement_newfunc (struct bfd_hash_entry *entry,
1179 struct bfd_hash_table *table,
1180 const char *string)
1181 {
1182 lang_output_section_statement_type **nextp;
1183 struct out_section_hash_entry *ret;
1184
1185 if (entry == NULL)
1186 {
1187 entry = (struct bfd_hash_entry *) bfd_hash_allocate (table,
1188 sizeof (*ret));
1189 if (entry == NULL)
1190 return entry;
1191 }
1192
1193 entry = bfd_hash_newfunc (entry, table, string);
1194 if (entry == NULL)
1195 return entry;
1196
1197 ret = (struct out_section_hash_entry *) entry;
1198 memset (&ret->s, 0, sizeof (ret->s));
1199 ret->s.header.type = lang_output_section_statement_enum;
1200 ret->s.output_section_statement.subsection_alignment = -1;
1201 ret->s.output_section_statement.section_alignment = -1;
1202 ret->s.output_section_statement.block_value = 1;
1203 lang_list_init (&ret->s.output_section_statement.children);
1204 lang_statement_append (stat_ptr, &ret->s, &ret->s.header.next);
1205
1206 /* For every output section statement added to the list, except the
1207 first one, lang_output_section_statement.tail points to the "next"
1208 field of the last element of the list. */
1209 if (lang_output_section_statement.head != NULL)
1210 ret->s.output_section_statement.prev
1211 = ((lang_output_section_statement_type *)
1212 ((char *) lang_output_section_statement.tail
1213 - offsetof (lang_output_section_statement_type, next)));
1214
1215 /* GCC's strict aliasing rules prevent us from just casting the
1216 address, so we store the pointer in a variable and cast that
1217 instead. */
1218 nextp = &ret->s.output_section_statement.next;
1219 lang_statement_append (&lang_output_section_statement,
1220 &ret->s,
1221 (lang_statement_union_type **) nextp);
1222 return &ret->root;
1223 }
1224
1225 static void
1226 output_section_statement_table_init (void)
1227 {
1228 if (!bfd_hash_table_init_n (&output_section_statement_table,
1229 output_section_statement_newfunc,
1230 sizeof (struct out_section_hash_entry),
1231 61))
1232 einfo (_("%P%F: can not create hash table: %E\n"));
1233 }
1234
1235 static void
1236 output_section_statement_table_free (void)
1237 {
1238 bfd_hash_table_free (&output_section_statement_table);
1239 }
1240
1241 /* Build enough state so that the parser can build its tree. */
1242
1243 void
1244 lang_init (void)
1245 {
1246 obstack_begin (&stat_obstack, 1000);
1247
1248 stat_ptr = &statement_list;
1249
1250 output_section_statement_table_init ();
1251
1252 lang_list_init (stat_ptr);
1253
1254 lang_list_init (&input_file_chain);
1255 lang_list_init (&lang_output_section_statement);
1256 lang_list_init (&file_chain);
1257 first_file = lang_add_input_file (NULL, lang_input_file_is_marker_enum,
1258 NULL);
1259 abs_output_section =
1260 lang_output_section_statement_lookup (BFD_ABS_SECTION_NAME, 0, TRUE);
1261
1262 abs_output_section->bfd_section = bfd_abs_section_ptr;
1263
1264 asneeded_list_head = NULL;
1265 asneeded_list_tail = &asneeded_list_head;
1266 }
1267
1268 void
1269 lang_finish (void)
1270 {
1271 output_section_statement_table_free ();
1272 }
1273
1274 /*----------------------------------------------------------------------
1275 A region is an area of memory declared with the
1276 MEMORY { name:org=exp, len=exp ... }
1277 syntax.
1278
1279 We maintain a list of all the regions here.
1280
1281 If no regions are specified in the script, then the default is used
1282 which is created when looked up to be the entire data space.
1283
1284 If create is true we are creating a region inside a MEMORY block.
1285 In this case it is probably an error to create a region that has
1286 already been created. If we are not inside a MEMORY block it is
1287 dubious to use an undeclared region name (except DEFAULT_MEMORY_REGION)
1288 and so we issue a warning.
1289
1290 Each region has at least one name. The first name is either
1291 DEFAULT_MEMORY_REGION or the name given in the MEMORY block. You can add
1292 alias names to an existing region within a script with
1293 REGION_ALIAS (alias, region_name). Each name corresponds to at most one
1294 region. */
1295
1296 static lang_memory_region_type *lang_memory_region_list;
1297 static lang_memory_region_type **lang_memory_region_list_tail
1298 = &lang_memory_region_list;
1299
1300 lang_memory_region_type *
1301 lang_memory_region_lookup (const char *const name, bfd_boolean create)
1302 {
1303 lang_memory_region_name *n;
1304 lang_memory_region_type *r;
1305 lang_memory_region_type *new_region;
1306
1307 /* NAME is NULL for LMA memspecs if no region was specified. */
1308 if (name == NULL)
1309 return NULL;
1310
1311 for (r = lang_memory_region_list; r != NULL; r = r->next)
1312 for (n = &r->name_list; n != NULL; n = n->next)
1313 if (strcmp (n->name, name) == 0)
1314 {
1315 if (create)
1316 einfo (_("%P:%S: warning: redeclaration of memory region `%s'\n"),
1317 NULL, name);
1318 return r;
1319 }
1320
1321 if (!create && strcmp (name, DEFAULT_MEMORY_REGION))
1322 einfo (_("%P:%S: warning: memory region `%s' not declared\n"),
1323 NULL, name);
1324
1325 new_region = (lang_memory_region_type *)
1326 stat_alloc (sizeof (lang_memory_region_type));
1327
1328 new_region->name_list.name = xstrdup (name);
1329 new_region->name_list.next = NULL;
1330 new_region->next = NULL;
1331 new_region->origin_exp = NULL;
1332 new_region->origin = 0;
1333 new_region->length_exp = NULL;
1334 new_region->length = ~(bfd_size_type) 0;
1335 new_region->current = 0;
1336 new_region->last_os = NULL;
1337 new_region->flags = 0;
1338 new_region->not_flags = 0;
1339 new_region->had_full_message = FALSE;
1340
1341 *lang_memory_region_list_tail = new_region;
1342 lang_memory_region_list_tail = &new_region->next;
1343
1344 return new_region;
1345 }
1346
1347 void
1348 lang_memory_region_alias (const char *alias, const char *region_name)
1349 {
1350 lang_memory_region_name *n;
1351 lang_memory_region_type *r;
1352 lang_memory_region_type *region;
1353
1354 /* The default region must be unique. This ensures that it is not necessary
1355 to iterate through the name list if someone wants the check if a region is
1356 the default memory region. */
1357 if (strcmp (region_name, DEFAULT_MEMORY_REGION) == 0
1358 || strcmp (alias, DEFAULT_MEMORY_REGION) == 0)
1359 einfo (_("%F%P:%S: error: alias for default memory region\n"), NULL);
1360
1361 /* Look for the target region and check if the alias is not already
1362 in use. */
1363 region = NULL;
1364 for (r = lang_memory_region_list; r != NULL; r = r->next)
1365 for (n = &r->name_list; n != NULL; n = n->next)
1366 {
1367 if (region == NULL && strcmp (n->name, region_name) == 0)
1368 region = r;
1369 if (strcmp (n->name, alias) == 0)
1370 einfo (_("%F%P:%S: error: redefinition of memory region "
1371 "alias `%s'\n"),
1372 NULL, alias);
1373 }
1374
1375 /* Check if the target region exists. */
1376 if (region == NULL)
1377 einfo (_("%F%P:%S: error: memory region `%s' "
1378 "for alias `%s' does not exist\n"),
1379 NULL, region_name, alias);
1380
1381 /* Add alias to region name list. */
1382 n = (lang_memory_region_name *) stat_alloc (sizeof (lang_memory_region_name));
1383 n->name = xstrdup (alias);
1384 n->next = region->name_list.next;
1385 region->name_list.next = n;
1386 }
1387
1388 static lang_memory_region_type *
1389 lang_memory_default (asection *section)
1390 {
1391 lang_memory_region_type *p;
1392
1393 flagword sec_flags = section->flags;
1394
1395 /* Override SEC_DATA to mean a writable section. */
1396 if ((sec_flags & (SEC_ALLOC | SEC_READONLY | SEC_CODE)) == SEC_ALLOC)
1397 sec_flags |= SEC_DATA;
1398
1399 for (p = lang_memory_region_list; p != NULL; p = p->next)
1400 {
1401 if ((p->flags & sec_flags) != 0
1402 && (p->not_flags & sec_flags) == 0)
1403 {
1404 return p;
1405 }
1406 }
1407 return lang_memory_region_lookup (DEFAULT_MEMORY_REGION, FALSE);
1408 }
1409
1410 /* Get the output section statement directly from the userdata. */
1411
1412 lang_output_section_statement_type *
1413 lang_output_section_get (const asection *output_section)
1414 {
1415 return get_userdata (output_section);
1416 }
1417
1418 /* Find or create an output_section_statement with the given NAME.
1419 If CONSTRAINT is non-zero match one with that constraint, otherwise
1420 match any non-negative constraint. If CREATE, always make a
1421 new output_section_statement for SPECIAL CONSTRAINT. */
1422
1423 lang_output_section_statement_type *
1424 lang_output_section_statement_lookup (const char *name,
1425 int constraint,
1426 bfd_boolean create)
1427 {
1428 struct out_section_hash_entry *entry;
1429
1430 entry = ((struct out_section_hash_entry *)
1431 bfd_hash_lookup (&output_section_statement_table, name,
1432 create, FALSE));
1433 if (entry == NULL)
1434 {
1435 if (create)
1436 einfo (_("%P%F: failed creating section `%s': %E\n"), name);
1437 return NULL;
1438 }
1439
1440 if (entry->s.output_section_statement.name != NULL)
1441 {
1442 /* We have a section of this name, but it might not have the correct
1443 constraint. */
1444 struct out_section_hash_entry *last_ent;
1445
1446 name = entry->s.output_section_statement.name;
1447 if (create && constraint == SPECIAL)
1448 /* Not traversing to the end reverses the order of the second
1449 and subsequent SPECIAL sections in the hash table chain,
1450 but that shouldn't matter. */
1451 last_ent = entry;
1452 else
1453 do
1454 {
1455 if (constraint == entry->s.output_section_statement.constraint
1456 || (constraint == 0
1457 && entry->s.output_section_statement.constraint >= 0))
1458 return &entry->s.output_section_statement;
1459 last_ent = entry;
1460 entry = (struct out_section_hash_entry *) entry->root.next;
1461 }
1462 while (entry != NULL
1463 && name == entry->s.output_section_statement.name);
1464
1465 if (!create)
1466 return NULL;
1467
1468 entry
1469 = ((struct out_section_hash_entry *)
1470 output_section_statement_newfunc (NULL,
1471 &output_section_statement_table,
1472 name));
1473 if (entry == NULL)
1474 {
1475 einfo (_("%P%F: failed creating section `%s': %E\n"), name);
1476 return NULL;
1477 }
1478 entry->root = last_ent->root;
1479 last_ent->root.next = &entry->root;
1480 }
1481
1482 entry->s.output_section_statement.name = name;
1483 entry->s.output_section_statement.constraint = constraint;
1484 return &entry->s.output_section_statement;
1485 }
1486
1487 /* Find the next output_section_statement with the same name as OS.
1488 If CONSTRAINT is non-zero, find one with that constraint otherwise
1489 match any non-negative constraint. */
1490
1491 lang_output_section_statement_type *
1492 next_matching_output_section_statement (lang_output_section_statement_type *os,
1493 int constraint)
1494 {
1495 /* All output_section_statements are actually part of a
1496 struct out_section_hash_entry. */
1497 struct out_section_hash_entry *entry = (struct out_section_hash_entry *)
1498 ((char *) os
1499 - offsetof (struct out_section_hash_entry, s.output_section_statement));
1500 const char *name = os->name;
1501
1502 ASSERT (name == entry->root.string);
1503 do
1504 {
1505 entry = (struct out_section_hash_entry *) entry->root.next;
1506 if (entry == NULL
1507 || name != entry->s.output_section_statement.name)
1508 return NULL;
1509 }
1510 while (constraint != entry->s.output_section_statement.constraint
1511 && (constraint != 0
1512 || entry->s.output_section_statement.constraint < 0));
1513
1514 return &entry->s.output_section_statement;
1515 }
1516
1517 /* A variant of lang_output_section_find used by place_orphan.
1518 Returns the output statement that should precede a new output
1519 statement for SEC. If an exact match is found on certain flags,
1520 sets *EXACT too. */
1521
1522 lang_output_section_statement_type *
1523 lang_output_section_find_by_flags (const asection *sec,
1524 flagword sec_flags,
1525 lang_output_section_statement_type **exact,
1526 lang_match_sec_type_func match_type)
1527 {
1528 lang_output_section_statement_type *first, *look, *found;
1529 flagword look_flags, differ;
1530
1531 /* We know the first statement on this list is *ABS*. May as well
1532 skip it. */
1533 first = &lang_output_section_statement.head->output_section_statement;
1534 first = first->next;
1535
1536 /* First try for an exact match. */
1537 found = NULL;
1538 for (look = first; look; look = look->next)
1539 {
1540 look_flags = look->flags;
1541 if (look->bfd_section != NULL)
1542 {
1543 look_flags = look->bfd_section->flags;
1544 if (match_type && !match_type (link_info.output_bfd,
1545 look->bfd_section,
1546 sec->owner, sec))
1547 continue;
1548 }
1549 differ = look_flags ^ sec_flags;
1550 if (!(differ & (SEC_HAS_CONTENTS | SEC_ALLOC | SEC_LOAD | SEC_READONLY
1551 | SEC_CODE | SEC_SMALL_DATA | SEC_THREAD_LOCAL)))
1552 found = look;
1553 }
1554 if (found != NULL)
1555 {
1556 if (exact != NULL)
1557 *exact = found;
1558 return found;
1559 }
1560
1561 if ((sec_flags & SEC_CODE) != 0
1562 && (sec_flags & SEC_ALLOC) != 0)
1563 {
1564 /* Try for a rw code section. */
1565 for (look = first; look; look = look->next)
1566 {
1567 look_flags = look->flags;
1568 if (look->bfd_section != NULL)
1569 {
1570 look_flags = look->bfd_section->flags;
1571 if (match_type && !match_type (link_info.output_bfd,
1572 look->bfd_section,
1573 sec->owner, sec))
1574 continue;
1575 }
1576 differ = look_flags ^ sec_flags;
1577 if (!(differ & (SEC_HAS_CONTENTS | SEC_ALLOC | SEC_LOAD
1578 | SEC_CODE | SEC_SMALL_DATA | SEC_THREAD_LOCAL)))
1579 found = look;
1580 }
1581 }
1582 else if ((sec_flags & SEC_READONLY) != 0
1583 && (sec_flags & SEC_ALLOC) != 0)
1584 {
1585 /* .rodata can go after .text, .sdata2 after .rodata. */
1586 for (look = first; look; look = look->next)
1587 {
1588 look_flags = look->flags;
1589 if (look->bfd_section != NULL)
1590 {
1591 look_flags = look->bfd_section->flags;
1592 if (match_type && !match_type (link_info.output_bfd,
1593 look->bfd_section,
1594 sec->owner, sec))
1595 continue;
1596 }
1597 differ = look_flags ^ sec_flags;
1598 if (!(differ & (SEC_HAS_CONTENTS | SEC_ALLOC | SEC_LOAD
1599 | SEC_READONLY | SEC_SMALL_DATA))
1600 || (!(differ & (SEC_HAS_CONTENTS | SEC_ALLOC | SEC_LOAD
1601 | SEC_READONLY))
1602 && !(look_flags & SEC_SMALL_DATA)))
1603 found = look;
1604 }
1605 }
1606 else if ((sec_flags & SEC_THREAD_LOCAL) != 0
1607 && (sec_flags & SEC_ALLOC) != 0)
1608 {
1609 /* .tdata can go after .data, .tbss after .tdata. Treat .tbss
1610 as if it were a loaded section, and don't use match_type. */
1611 bfd_boolean seen_thread_local = FALSE;
1612
1613 match_type = NULL;
1614 for (look = first; look; look = look->next)
1615 {
1616 look_flags = look->flags;
1617 if (look->bfd_section != NULL)
1618 look_flags = look->bfd_section->flags;
1619
1620 differ = look_flags ^ (sec_flags | SEC_LOAD | SEC_HAS_CONTENTS);
1621 if (!(differ & (SEC_THREAD_LOCAL | SEC_ALLOC)))
1622 {
1623 /* .tdata and .tbss must be adjacent and in that order. */
1624 if (!(look_flags & SEC_LOAD)
1625 && (sec_flags & SEC_LOAD))
1626 /* ..so if we're at a .tbss section and we're placing
1627 a .tdata section stop looking and return the
1628 previous section. */
1629 break;
1630 found = look;
1631 seen_thread_local = TRUE;
1632 }
1633 else if (seen_thread_local)
1634 break;
1635 else if (!(differ & (SEC_HAS_CONTENTS | SEC_ALLOC | SEC_LOAD)))
1636 found = look;
1637 }
1638 }
1639 else if ((sec_flags & SEC_SMALL_DATA) != 0
1640 && (sec_flags & SEC_ALLOC) != 0)
1641 {
1642 /* .sdata goes after .data, .sbss after .sdata. */
1643 for (look = first; look; look = look->next)
1644 {
1645 look_flags = look->flags;
1646 if (look->bfd_section != NULL)
1647 {
1648 look_flags = look->bfd_section->flags;
1649 if (match_type && !match_type (link_info.output_bfd,
1650 look->bfd_section,
1651 sec->owner, sec))
1652 continue;
1653 }
1654 differ = look_flags ^ sec_flags;
1655 if (!(differ & (SEC_HAS_CONTENTS | SEC_ALLOC | SEC_LOAD
1656 | SEC_THREAD_LOCAL))
1657 || ((look_flags & SEC_SMALL_DATA)
1658 && !(sec_flags & SEC_HAS_CONTENTS)))
1659 found = look;
1660 }
1661 }
1662 else if ((sec_flags & SEC_HAS_CONTENTS) != 0
1663 && (sec_flags & SEC_ALLOC) != 0)
1664 {
1665 /* .data goes after .rodata. */
1666 for (look = first; look; look = look->next)
1667 {
1668 look_flags = look->flags;
1669 if (look->bfd_section != NULL)
1670 {
1671 look_flags = look->bfd_section->flags;
1672 if (match_type && !match_type (link_info.output_bfd,
1673 look->bfd_section,
1674 sec->owner, sec))
1675 continue;
1676 }
1677 differ = look_flags ^ sec_flags;
1678 if (!(differ & (SEC_HAS_CONTENTS | SEC_ALLOC | SEC_LOAD
1679 | SEC_SMALL_DATA | SEC_THREAD_LOCAL)))
1680 found = look;
1681 }
1682 }
1683 else if ((sec_flags & SEC_ALLOC) != 0)
1684 {
1685 /* .bss goes after any other alloc section. */
1686 for (look = first; look; look = look->next)
1687 {
1688 look_flags = look->flags;
1689 if (look->bfd_section != NULL)
1690 {
1691 look_flags = look->bfd_section->flags;
1692 if (match_type && !match_type (link_info.output_bfd,
1693 look->bfd_section,
1694 sec->owner, sec))
1695 continue;
1696 }
1697 differ = look_flags ^ sec_flags;
1698 if (!(differ & SEC_ALLOC))
1699 found = look;
1700 }
1701 }
1702 else
1703 {
1704 /* non-alloc go last. */
1705 for (look = first; look; look = look->next)
1706 {
1707 look_flags = look->flags;
1708 if (look->bfd_section != NULL)
1709 look_flags = look->bfd_section->flags;
1710 differ = look_flags ^ sec_flags;
1711 if (!(differ & SEC_DEBUGGING))
1712 found = look;
1713 }
1714 return found;
1715 }
1716
1717 if (found || !match_type)
1718 return found;
1719
1720 return lang_output_section_find_by_flags (sec, sec_flags, NULL, NULL);
1721 }
1722
1723 /* Find the last output section before given output statement.
1724 Used by place_orphan. */
1725
1726 static asection *
1727 output_prev_sec_find (lang_output_section_statement_type *os)
1728 {
1729 lang_output_section_statement_type *lookup;
1730
1731 for (lookup = os->prev; lookup != NULL; lookup = lookup->prev)
1732 {
1733 if (lookup->constraint < 0)
1734 continue;
1735
1736 if (lookup->bfd_section != NULL && lookup->bfd_section->owner != NULL)
1737 return lookup->bfd_section;
1738 }
1739
1740 return NULL;
1741 }
1742
1743 /* Look for a suitable place for a new output section statement. The
1744 idea is to skip over anything that might be inside a SECTIONS {}
1745 statement in a script, before we find another output section
1746 statement. Assignments to "dot" before an output section statement
1747 are assumed to belong to it, except in two cases; The first
1748 assignment to dot, and assignments before non-alloc sections.
1749 Otherwise we might put an orphan before . = . + SIZEOF_HEADERS or
1750 similar assignments that set the initial address, or we might
1751 insert non-alloc note sections among assignments setting end of
1752 image symbols. */
1753
1754 static lang_statement_union_type **
1755 insert_os_after (lang_output_section_statement_type *after)
1756 {
1757 lang_statement_union_type **where;
1758 lang_statement_union_type **assign = NULL;
1759 bfd_boolean ignore_first;
1760
1761 ignore_first
1762 = after == &lang_output_section_statement.head->output_section_statement;
1763
1764 for (where = &after->header.next;
1765 *where != NULL;
1766 where = &(*where)->header.next)
1767 {
1768 switch ((*where)->header.type)
1769 {
1770 case lang_assignment_statement_enum:
1771 if (assign == NULL)
1772 {
1773 lang_assignment_statement_type *ass;
1774
1775 ass = &(*where)->assignment_statement;
1776 if (ass->exp->type.node_class != etree_assert
1777 && ass->exp->assign.dst[0] == '.'
1778 && ass->exp->assign.dst[1] == 0
1779 && !ignore_first)
1780 assign = where;
1781 }
1782 ignore_first = FALSE;
1783 continue;
1784 case lang_wild_statement_enum:
1785 case lang_input_section_enum:
1786 case lang_object_symbols_statement_enum:
1787 case lang_fill_statement_enum:
1788 case lang_data_statement_enum:
1789 case lang_reloc_statement_enum:
1790 case lang_padding_statement_enum:
1791 case lang_constructors_statement_enum:
1792 assign = NULL;
1793 continue;
1794 case lang_output_section_statement_enum:
1795 if (assign != NULL)
1796 {
1797 asection *s = (*where)->output_section_statement.bfd_section;
1798
1799 if (s == NULL
1800 || s->map_head.s == NULL
1801 || (s->flags & SEC_ALLOC) != 0)
1802 where = assign;
1803 }
1804 break;
1805 case lang_input_statement_enum:
1806 case lang_address_statement_enum:
1807 case lang_target_statement_enum:
1808 case lang_output_statement_enum:
1809 case lang_group_statement_enum:
1810 case lang_insert_statement_enum:
1811 continue;
1812 }
1813 break;
1814 }
1815
1816 return where;
1817 }
1818
1819 lang_output_section_statement_type *
1820 lang_insert_orphan (asection *s,
1821 const char *secname,
1822 int constraint,
1823 lang_output_section_statement_type *after,
1824 struct orphan_save *place,
1825 etree_type *address,
1826 lang_statement_list_type *add_child)
1827 {
1828 lang_statement_list_type add;
1829 const char *ps;
1830 lang_assignment_statement_type *start_assign;
1831 lang_output_section_statement_type *os;
1832 lang_output_section_statement_type **os_tail;
1833
1834 /* If we have found an appropriate place for the output section
1835 statements for this orphan, add them to our own private list,
1836 inserting them later into the global statement list. */
1837 if (after != NULL)
1838 {
1839 lang_list_init (&add);
1840 push_stat_ptr (&add);
1841 }
1842
1843 if (bfd_link_relocatable (&link_info)
1844 || (s->flags & (SEC_LOAD | SEC_ALLOC)) == 0)
1845 address = exp_intop (0);
1846
1847 os_tail = ((lang_output_section_statement_type **)
1848 lang_output_section_statement.tail);
1849 os = lang_enter_output_section_statement (secname, address, normal_section,
1850 NULL, NULL, NULL, constraint, 0);
1851
1852 ps = NULL;
1853 start_assign = NULL;
1854 if (config.build_constructors && *os_tail == os)
1855 {
1856 /* If the name of the section is representable in C, then create
1857 symbols to mark the start and the end of the section. */
1858 for (ps = secname; *ps != '\0'; ps++)
1859 if (!ISALNUM ((unsigned char) *ps) && *ps != '_')
1860 break;
1861 if (*ps == '\0')
1862 {
1863 char *symname;
1864
1865 symname = (char *) xmalloc (ps - secname + sizeof "__start_" + 1);
1866 symname[0] = bfd_get_symbol_leading_char (link_info.output_bfd);
1867 sprintf (symname + (symname[0] != 0), "__start_%s", secname);
1868 start_assign
1869 = lang_add_assignment (exp_provide (symname,
1870 exp_nameop (NAME, "."),
1871 FALSE));
1872 }
1873 }
1874
1875 if (add_child == NULL)
1876 add_child = &os->children;
1877 lang_add_section (add_child, s, NULL, os);
1878
1879 if (after && (s->flags & (SEC_LOAD | SEC_ALLOC)) != 0)
1880 {
1881 const char *region = (after->region
1882 ? after->region->name_list.name
1883 : DEFAULT_MEMORY_REGION);
1884 const char *lma_region = (after->lma_region
1885 ? after->lma_region->name_list.name
1886 : NULL);
1887 lang_leave_output_section_statement (NULL, region, after->phdrs,
1888 lma_region);
1889 }
1890 else
1891 lang_leave_output_section_statement (NULL, DEFAULT_MEMORY_REGION, NULL,
1892 NULL);
1893
1894 if (start_assign != NULL)
1895 {
1896 char *symname;
1897 lang_assignment_statement_type *stop_assign;
1898 bfd_vma dot;
1899
1900 symname = (char *) xmalloc (ps - secname + sizeof "__stop_" + 1);
1901 symname[0] = bfd_get_symbol_leading_char (link_info.output_bfd);
1902 sprintf (symname + (symname[0] != 0), "__stop_%s", secname);
1903 stop_assign
1904 = lang_add_assignment (exp_provide (symname,
1905 exp_nameop (NAME, "."),
1906 FALSE));
1907 /* Evaluate the expression to define the symbol if referenced,
1908 before sizing dynamic sections. */
1909 dot = os->bfd_section->vma;
1910 exp_fold_tree (start_assign->exp, os->bfd_section, &dot);
1911 dot += TO_ADDR (s->size);
1912 exp_fold_tree (stop_assign->exp, os->bfd_section, &dot);
1913 }
1914
1915 /* Restore the global list pointer. */
1916 if (after != NULL)
1917 pop_stat_ptr ();
1918
1919 if (after != NULL && os->bfd_section != NULL)
1920 {
1921 asection *snew, *as;
1922
1923 snew = os->bfd_section;
1924
1925 /* Shuffle the bfd section list to make the output file look
1926 neater. This is really only cosmetic. */
1927 if (place->section == NULL
1928 && after != (&lang_output_section_statement.head
1929 ->output_section_statement))
1930 {
1931 asection *bfd_section = after->bfd_section;
1932
1933 /* If the output statement hasn't been used to place any input
1934 sections (and thus doesn't have an output bfd_section),
1935 look for the closest prior output statement having an
1936 output section. */
1937 if (bfd_section == NULL)
1938 bfd_section = output_prev_sec_find (after);
1939
1940 if (bfd_section != NULL && bfd_section != snew)
1941 place->section = &bfd_section->next;
1942 }
1943
1944 if (place->section == NULL)
1945 place->section = &link_info.output_bfd->sections;
1946
1947 as = *place->section;
1948
1949 if (!as)
1950 {
1951 /* Put the section at the end of the list. */
1952
1953 /* Unlink the section. */
1954 bfd_section_list_remove (link_info.output_bfd, snew);
1955
1956 /* Now tack it back on in the right place. */
1957 bfd_section_list_append (link_info.output_bfd, snew);
1958 }
1959 else if (as != snew && as->prev != snew)
1960 {
1961 /* Unlink the section. */
1962 bfd_section_list_remove (link_info.output_bfd, snew);
1963
1964 /* Now tack it back on in the right place. */
1965 bfd_section_list_insert_before (link_info.output_bfd, as, snew);
1966 }
1967
1968 /* Save the end of this list. Further ophans of this type will
1969 follow the one we've just added. */
1970 place->section = &snew->next;
1971
1972 /* The following is non-cosmetic. We try to put the output
1973 statements in some sort of reasonable order here, because they
1974 determine the final load addresses of the orphan sections.
1975 In addition, placing output statements in the wrong order may
1976 require extra segments. For instance, given a typical
1977 situation of all read-only sections placed in one segment and
1978 following that a segment containing all the read-write
1979 sections, we wouldn't want to place an orphan read/write
1980 section before or amongst the read-only ones. */
1981 if (add.head != NULL)
1982 {
1983 lang_output_section_statement_type *newly_added_os;
1984
1985 if (place->stmt == NULL)
1986 {
1987 lang_statement_union_type **where = insert_os_after (after);
1988
1989 *add.tail = *where;
1990 *where = add.head;
1991
1992 place->os_tail = &after->next;
1993 }
1994 else
1995 {
1996 /* Put it after the last orphan statement we added. */
1997 *add.tail = *place->stmt;
1998 *place->stmt = add.head;
1999 }
2000
2001 /* Fix the global list pointer if we happened to tack our
2002 new list at the tail. */
2003 if (*stat_ptr->tail == add.head)
2004 stat_ptr->tail = add.tail;
2005
2006 /* Save the end of this list. */
2007 place->stmt = add.tail;
2008
2009 /* Do the same for the list of output section statements. */
2010 newly_added_os = *os_tail;
2011 *os_tail = NULL;
2012 newly_added_os->prev = (lang_output_section_statement_type *)
2013 ((char *) place->os_tail
2014 - offsetof (lang_output_section_statement_type, next));
2015 newly_added_os->next = *place->os_tail;
2016 if (newly_added_os->next != NULL)
2017 newly_added_os->next->prev = newly_added_os;
2018 *place->os_tail = newly_added_os;
2019 place->os_tail = &newly_added_os->next;
2020
2021 /* Fixing the global list pointer here is a little different.
2022 We added to the list in lang_enter_output_section_statement,
2023 trimmed off the new output_section_statment above when
2024 assigning *os_tail = NULL, but possibly added it back in
2025 the same place when assigning *place->os_tail. */
2026 if (*os_tail == NULL)
2027 lang_output_section_statement.tail
2028 = (lang_statement_union_type **) os_tail;
2029 }
2030 }
2031 return os;
2032 }
2033
2034 static void
2035 lang_print_asneeded (void)
2036 {
2037 struct asneeded_minfo *m;
2038
2039 if (asneeded_list_head == NULL)
2040 return;
2041
2042 minfo (_("\nAs-needed library included to satisfy reference by file (symbol)\n\n"));
2043
2044 for (m = asneeded_list_head; m != NULL; m = m->next)
2045 {
2046 size_t len;
2047
2048 minfo ("%s", m->soname);
2049 len = strlen (m->soname);
2050
2051 if (len >= 29)
2052 {
2053 print_nl ();
2054 len = 0;
2055 }
2056 while (len < 30)
2057 {
2058 print_space ();
2059 ++len;
2060 }
2061
2062 if (m->ref != NULL)
2063 minfo ("%B ", m->ref);
2064 minfo ("(%T)\n", m->name);
2065 }
2066 }
2067
2068 static void
2069 lang_map_flags (flagword flag)
2070 {
2071 if (flag & SEC_ALLOC)
2072 minfo ("a");
2073
2074 if (flag & SEC_CODE)
2075 minfo ("x");
2076
2077 if (flag & SEC_READONLY)
2078 minfo ("r");
2079
2080 if (flag & SEC_DATA)
2081 minfo ("w");
2082
2083 if (flag & SEC_LOAD)
2084 minfo ("l");
2085 }
2086
2087 void
2088 lang_map (void)
2089 {
2090 lang_memory_region_type *m;
2091 bfd_boolean dis_header_printed = FALSE;
2092
2093 LANG_FOR_EACH_INPUT_STATEMENT (file)
2094 {
2095 asection *s;
2096
2097 if ((file->the_bfd->flags & (BFD_LINKER_CREATED | DYNAMIC)) != 0
2098 || file->flags.just_syms)
2099 continue;
2100
2101 for (s = file->the_bfd->sections; s != NULL; s = s->next)
2102 if ((s->output_section == NULL
2103 || s->output_section->owner != link_info.output_bfd)
2104 && (s->flags & (SEC_LINKER_CREATED | SEC_KEEP)) == 0)
2105 {
2106 if (!dis_header_printed)
2107 {
2108 fprintf (config.map_file, _("\nDiscarded input sections\n\n"));
2109 dis_header_printed = TRUE;
2110 }
2111
2112 print_input_section (s, TRUE);
2113 }
2114 }
2115
2116 minfo (_("\nMemory Configuration\n\n"));
2117 fprintf (config.map_file, "%-16s %-18s %-18s %s\n",
2118 _("Name"), _("Origin"), _("Length"), _("Attributes"));
2119
2120 for (m = lang_memory_region_list; m != NULL; m = m->next)
2121 {
2122 char buf[100];
2123 int len;
2124
2125 fprintf (config.map_file, "%-16s ", m->name_list.name);
2126
2127 sprintf_vma (buf, m->origin);
2128 minfo ("0x%s ", buf);
2129 len = strlen (buf);
2130 while (len < 16)
2131 {
2132 print_space ();
2133 ++len;
2134 }
2135
2136 minfo ("0x%V", m->length);
2137 if (m->flags || m->not_flags)
2138 {
2139 #ifndef BFD64
2140 minfo (" ");
2141 #endif
2142 if (m->flags)
2143 {
2144 print_space ();
2145 lang_map_flags (m->flags);
2146 }
2147
2148 if (m->not_flags)
2149 {
2150 minfo (" !");
2151 lang_map_flags (m->not_flags);
2152 }
2153 }
2154
2155 print_nl ();
2156 }
2157
2158 fprintf (config.map_file, _("\nLinker script and memory map\n\n"));
2159
2160 if (!link_info.reduce_memory_overheads)
2161 {
2162 obstack_begin (&map_obstack, 1000);
2163 bfd_link_hash_traverse (link_info.hash, sort_def_symbol, 0);
2164 }
2165 lang_statement_iteration++;
2166 print_statements ();
2167
2168 ldemul_extra_map_file_text (link_info.output_bfd, &link_info,
2169 config.map_file);
2170 }
2171
2172 static bfd_boolean
2173 sort_def_symbol (struct bfd_link_hash_entry *hash_entry,
2174 void *info ATTRIBUTE_UNUSED)
2175 {
2176 if ((hash_entry->type == bfd_link_hash_defined
2177 || hash_entry->type == bfd_link_hash_defweak)
2178 && hash_entry->u.def.section->owner != link_info.output_bfd
2179 && hash_entry->u.def.section->owner != NULL)
2180 {
2181 input_section_userdata_type *ud;
2182 struct map_symbol_def *def;
2183
2184 ud = ((input_section_userdata_type *)
2185 get_userdata (hash_entry->u.def.section));
2186 if (!ud)
2187 {
2188 ud = (input_section_userdata_type *) stat_alloc (sizeof (*ud));
2189 get_userdata (hash_entry->u.def.section) = ud;
2190 ud->map_symbol_def_tail = &ud->map_symbol_def_head;
2191 ud->map_symbol_def_count = 0;
2192 }
2193 else if (!ud->map_symbol_def_tail)
2194 ud->map_symbol_def_tail = &ud->map_symbol_def_head;
2195
2196 def = (struct map_symbol_def *) obstack_alloc (&map_obstack, sizeof *def);
2197 def->entry = hash_entry;
2198 *(ud->map_symbol_def_tail) = def;
2199 ud->map_symbol_def_tail = &def->next;
2200 ud->map_symbol_def_count++;
2201 }
2202 return TRUE;
2203 }
2204
2205 /* Initialize an output section. */
2206
2207 static void
2208 init_os (lang_output_section_statement_type *s, flagword flags)
2209 {
2210 if (strcmp (s->name, DISCARD_SECTION_NAME) == 0)
2211 einfo (_("%P%F: Illegal use of `%s' section\n"), DISCARD_SECTION_NAME);
2212
2213 if (s->constraint != SPECIAL)
2214 s->bfd_section = bfd_get_section_by_name (link_info.output_bfd, s->name);
2215 if (s->bfd_section == NULL)
2216 s->bfd_section = bfd_make_section_anyway_with_flags (link_info.output_bfd,
2217 s->name, flags);
2218 if (s->bfd_section == NULL)
2219 {
2220 einfo (_("%P%F: output format %s cannot represent section"
2221 " called %s: %E\n"),
2222 link_info.output_bfd->xvec->name, s->name);
2223 }
2224 s->bfd_section->output_section = s->bfd_section;
2225 s->bfd_section->output_offset = 0;
2226
2227 /* Set the userdata of the output section to the output section
2228 statement to avoid lookup. */
2229 get_userdata (s->bfd_section) = s;
2230
2231 /* If there is a base address, make sure that any sections it might
2232 mention are initialized. */
2233 if (s->addr_tree != NULL)
2234 exp_init_os (s->addr_tree);
2235
2236 if (s->load_base != NULL)
2237 exp_init_os (s->load_base);
2238
2239 /* If supplied an alignment, set it. */
2240 if (s->section_alignment != -1)
2241 s->bfd_section->alignment_power = s->section_alignment;
2242 }
2243
2244 /* Make sure that all output sections mentioned in an expression are
2245 initialized. */
2246
2247 static void
2248 exp_init_os (etree_type *exp)
2249 {
2250 switch (exp->type.node_class)
2251 {
2252 case etree_assign:
2253 case etree_provide:
2254 exp_init_os (exp->assign.src);
2255 break;
2256
2257 case etree_binary:
2258 exp_init_os (exp->binary.lhs);
2259 exp_init_os (exp->binary.rhs);
2260 break;
2261
2262 case etree_trinary:
2263 exp_init_os (exp->trinary.cond);
2264 exp_init_os (exp->trinary.lhs);
2265 exp_init_os (exp->trinary.rhs);
2266 break;
2267
2268 case etree_assert:
2269 exp_init_os (exp->assert_s.child);
2270 break;
2271
2272 case etree_unary:
2273 exp_init_os (exp->unary.child);
2274 break;
2275
2276 case etree_name:
2277 switch (exp->type.node_code)
2278 {
2279 case ADDR:
2280 case LOADADDR:
2281 case SIZEOF:
2282 {
2283 lang_output_section_statement_type *os;
2284
2285 os = lang_output_section_find (exp->name.name);
2286 if (os != NULL && os->bfd_section == NULL)
2287 init_os (os, 0);
2288 }
2289 }
2290 break;
2291
2292 default:
2293 break;
2294 }
2295 }
2296 \f
2297 static void
2298 section_already_linked (bfd *abfd, asection *sec, void *data)
2299 {
2300 lang_input_statement_type *entry = (lang_input_statement_type *) data;
2301
2302 /* If we are only reading symbols from this object, then we want to
2303 discard all sections. */
2304 if (entry->flags.just_syms)
2305 {
2306 bfd_link_just_syms (abfd, sec, &link_info);
2307 return;
2308 }
2309
2310 /* Deal with SHF_EXCLUDE ELF sections. */
2311 if (!bfd_link_relocatable (&link_info)
2312 && (abfd->flags & BFD_PLUGIN) == 0
2313 && (sec->flags & (SEC_GROUP | SEC_KEEP | SEC_EXCLUDE)) == SEC_EXCLUDE)
2314 sec->output_section = bfd_abs_section_ptr;
2315
2316 if (!(abfd->flags & DYNAMIC))
2317 bfd_section_already_linked (abfd, sec, &link_info);
2318 }
2319 \f
2320 /* The wild routines.
2321
2322 These expand statements like *(.text) and foo.o to a list of
2323 explicit actions, like foo.o(.text), bar.o(.text) and
2324 foo.o(.text, .data). */
2325
2326 /* Add SECTION to the output section OUTPUT. Do this by creating a
2327 lang_input_section statement which is placed at PTR. */
2328
2329 void
2330 lang_add_section (lang_statement_list_type *ptr,
2331 asection *section,
2332 struct flag_info *sflag_info,
2333 lang_output_section_statement_type *output)
2334 {
2335 flagword flags = section->flags;
2336
2337 bfd_boolean discard;
2338 lang_input_section_type *new_section;
2339 bfd *abfd = link_info.output_bfd;
2340
2341 /* Discard sections marked with SEC_EXCLUDE. */
2342 discard = (flags & SEC_EXCLUDE) != 0;
2343
2344 /* Discard input sections which are assigned to a section named
2345 DISCARD_SECTION_NAME. */
2346 if (strcmp (output->name, DISCARD_SECTION_NAME) == 0)
2347 discard = TRUE;
2348
2349 /* Discard debugging sections if we are stripping debugging
2350 information. */
2351 if ((link_info.strip == strip_debugger || link_info.strip == strip_all)
2352 && (flags & SEC_DEBUGGING) != 0)
2353 discard = TRUE;
2354
2355 if (discard)
2356 {
2357 if (section->output_section == NULL)
2358 {
2359 /* This prevents future calls from assigning this section. */
2360 section->output_section = bfd_abs_section_ptr;
2361 }
2362 return;
2363 }
2364
2365 if (sflag_info)
2366 {
2367 bfd_boolean keep;
2368
2369 keep = bfd_lookup_section_flags (&link_info, sflag_info, section);
2370 if (!keep)
2371 return;
2372 }
2373
2374 if (section->output_section != NULL)
2375 return;
2376
2377 /* We don't copy the SEC_NEVER_LOAD flag from an input section
2378 to an output section, because we want to be able to include a
2379 SEC_NEVER_LOAD section in the middle of an otherwise loaded
2380 section (I don't know why we want to do this, but we do).
2381 build_link_order in ldwrite.c handles this case by turning
2382 the embedded SEC_NEVER_LOAD section into a fill. */
2383 flags &= ~ SEC_NEVER_LOAD;
2384
2385 /* If final link, don't copy the SEC_LINK_ONCE flags, they've
2386 already been processed. One reason to do this is that on pe
2387 format targets, .text$foo sections go into .text and it's odd
2388 to see .text with SEC_LINK_ONCE set. */
2389
2390 if (!bfd_link_relocatable (&link_info))
2391 flags &= ~(SEC_LINK_ONCE | SEC_LINK_DUPLICATES | SEC_RELOC);
2392
2393 switch (output->sectype)
2394 {
2395 case normal_section:
2396 case overlay_section:
2397 break;
2398 case noalloc_section:
2399 flags &= ~SEC_ALLOC;
2400 break;
2401 case noload_section:
2402 flags &= ~SEC_LOAD;
2403 flags |= SEC_NEVER_LOAD;
2404 /* Unfortunately GNU ld has managed to evolve two different
2405 meanings to NOLOAD in scripts. ELF gets a .bss style noload,
2406 alloc, no contents section. All others get a noload, noalloc
2407 section. */
2408 if (bfd_get_flavour (link_info.output_bfd) == bfd_target_elf_flavour)
2409 flags &= ~SEC_HAS_CONTENTS;
2410 else
2411 flags &= ~SEC_ALLOC;
2412 break;
2413 }
2414
2415 if (output->bfd_section == NULL)
2416 init_os (output, flags);
2417
2418 /* If SEC_READONLY is not set in the input section, then clear
2419 it from the output section. */
2420 output->bfd_section->flags &= flags | ~SEC_READONLY;
2421
2422 if (output->bfd_section->linker_has_input)
2423 {
2424 /* Only set SEC_READONLY flag on the first input section. */
2425 flags &= ~ SEC_READONLY;
2426
2427 /* Keep SEC_MERGE and SEC_STRINGS only if they are the same. */
2428 if ((output->bfd_section->flags & (SEC_MERGE | SEC_STRINGS))
2429 != (flags & (SEC_MERGE | SEC_STRINGS))
2430 || ((flags & SEC_MERGE) != 0
2431 && output->bfd_section->entsize != section->entsize))
2432 {
2433 output->bfd_section->flags &= ~ (SEC_MERGE | SEC_STRINGS);
2434 flags &= ~ (SEC_MERGE | SEC_STRINGS);
2435 }
2436 }
2437 output->bfd_section->flags |= flags;
2438
2439 if (!output->bfd_section->linker_has_input)
2440 {
2441 output->bfd_section->linker_has_input = 1;
2442 /* This must happen after flags have been updated. The output
2443 section may have been created before we saw its first input
2444 section, eg. for a data statement. */
2445 bfd_init_private_section_data (section->owner, section,
2446 link_info.output_bfd,
2447 output->bfd_section,
2448 &link_info);
2449 if ((flags & SEC_MERGE) != 0)
2450 output->bfd_section->entsize = section->entsize;
2451 }
2452
2453 if ((flags & SEC_TIC54X_BLOCK) != 0
2454 && bfd_get_arch (section->owner) == bfd_arch_tic54x)
2455 {
2456 /* FIXME: This value should really be obtained from the bfd... */
2457 output->block_value = 128;
2458 }
2459
2460 if (section->alignment_power > output->bfd_section->alignment_power)
2461 output->bfd_section->alignment_power = section->alignment_power;
2462
2463 section->output_section = output->bfd_section;
2464
2465 if (!map_head_is_link_order)
2466 {
2467 asection *s = output->bfd_section->map_tail.s;
2468 output->bfd_section->map_tail.s = section;
2469 section->map_head.s = NULL;
2470 section->map_tail.s = s;
2471 if (s != NULL)
2472 s->map_head.s = section;
2473 else
2474 output->bfd_section->map_head.s = section;
2475 }
2476
2477 /* Add a section reference to the list. */
2478 new_section = new_stat (lang_input_section, ptr);
2479 new_section->section = section;
2480 }
2481
2482 /* Handle wildcard sorting. This returns the lang_input_section which
2483 should follow the one we are going to create for SECTION and FILE,
2484 based on the sorting requirements of WILD. It returns NULL if the
2485 new section should just go at the end of the current list. */
2486
2487 static lang_statement_union_type *
2488 wild_sort (lang_wild_statement_type *wild,
2489 struct wildcard_list *sec,
2490 lang_input_statement_type *file,
2491 asection *section)
2492 {
2493 lang_statement_union_type *l;
2494
2495 if (!wild->filenames_sorted
2496 && (sec == NULL || sec->spec.sorted == none))
2497 return NULL;
2498
2499 for (l = wild->children.head; l != NULL; l = l->header.next)
2500 {
2501 lang_input_section_type *ls;
2502
2503 if (l->header.type != lang_input_section_enum)
2504 continue;
2505 ls = &l->input_section;
2506
2507 /* Sorting by filename takes precedence over sorting by section
2508 name. */
2509
2510 if (wild->filenames_sorted)
2511 {
2512 const char *fn, *ln;
2513 bfd_boolean fa, la;
2514 int i;
2515
2516 /* The PE support for the .idata section as generated by
2517 dlltool assumes that files will be sorted by the name of
2518 the archive and then the name of the file within the
2519 archive. */
2520
2521 if (file->the_bfd != NULL
2522 && file->the_bfd->my_archive != NULL)
2523 {
2524 fn = bfd_get_filename (file->the_bfd->my_archive);
2525 fa = TRUE;
2526 }
2527 else
2528 {
2529 fn = file->filename;
2530 fa = FALSE;
2531 }
2532
2533 if (ls->section->owner->my_archive != NULL)
2534 {
2535 ln = bfd_get_filename (ls->section->owner->my_archive);
2536 la = TRUE;
2537 }
2538 else
2539 {
2540 ln = ls->section->owner->filename;
2541 la = FALSE;
2542 }
2543
2544 i = filename_cmp (fn, ln);
2545 if (i > 0)
2546 continue;
2547 else if (i < 0)
2548 break;
2549
2550 if (fa || la)
2551 {
2552 if (fa)
2553 fn = file->filename;
2554 if (la)
2555 ln = ls->section->owner->filename;
2556
2557 i = filename_cmp (fn, ln);
2558 if (i > 0)
2559 continue;
2560 else if (i < 0)
2561 break;
2562 }
2563 }
2564
2565 /* Here either the files are not sorted by name, or we are
2566 looking at the sections for this file. */
2567
2568 if (sec != NULL
2569 && sec->spec.sorted != none
2570 && sec->spec.sorted != by_none)
2571 if (compare_section (sec->spec.sorted, section, ls->section) < 0)
2572 break;
2573 }
2574
2575 return l;
2576 }
2577
2578 /* Expand a wild statement for a particular FILE. SECTION may be
2579 NULL, in which case it is a wild card. */
2580
2581 static void
2582 output_section_callback (lang_wild_statement_type *ptr,
2583 struct wildcard_list *sec,
2584 asection *section,
2585 struct flag_info *sflag_info,
2586 lang_input_statement_type *file,
2587 void *output)
2588 {
2589 lang_statement_union_type *before;
2590 lang_output_section_statement_type *os;
2591
2592 os = (lang_output_section_statement_type *) output;
2593
2594 /* Exclude sections that match UNIQUE_SECTION_LIST. */
2595 if (unique_section_p (section, os))
2596 return;
2597
2598 before = wild_sort (ptr, sec, file, section);
2599
2600 /* Here BEFORE points to the lang_input_section which
2601 should follow the one we are about to add. If BEFORE
2602 is NULL, then the section should just go at the end
2603 of the current list. */
2604
2605 if (before == NULL)
2606 lang_add_section (&ptr->children, section, sflag_info, os);
2607 else
2608 {
2609 lang_statement_list_type list;
2610 lang_statement_union_type **pp;
2611
2612 lang_list_init (&list);
2613 lang_add_section (&list, section, sflag_info, os);
2614
2615 /* If we are discarding the section, LIST.HEAD will
2616 be NULL. */
2617 if (list.head != NULL)
2618 {
2619 ASSERT (list.head->header.next == NULL);
2620
2621 for (pp = &ptr->children.head;
2622 *pp != before;
2623 pp = &(*pp)->header.next)
2624 ASSERT (*pp != NULL);
2625
2626 list.head->header.next = *pp;
2627 *pp = list.head;
2628 }
2629 }
2630 }
2631
2632 /* Check if all sections in a wild statement for a particular FILE
2633 are readonly. */
2634
2635 static void
2636 check_section_callback (lang_wild_statement_type *ptr ATTRIBUTE_UNUSED,
2637 struct wildcard_list *sec ATTRIBUTE_UNUSED,
2638 asection *section,
2639 struct flag_info *sflag_info ATTRIBUTE_UNUSED,
2640 lang_input_statement_type *file ATTRIBUTE_UNUSED,
2641 void *output)
2642 {
2643 lang_output_section_statement_type *os;
2644
2645 os = (lang_output_section_statement_type *) output;
2646
2647 /* Exclude sections that match UNIQUE_SECTION_LIST. */
2648 if (unique_section_p (section, os))
2649 return;
2650
2651 if (section->output_section == NULL && (section->flags & SEC_READONLY) == 0)
2652 os->all_input_readonly = FALSE;
2653 }
2654
2655 /* This is passed a file name which must have been seen already and
2656 added to the statement tree. We will see if it has been opened
2657 already and had its symbols read. If not then we'll read it. */
2658
2659 static lang_input_statement_type *
2660 lookup_name (const char *name)
2661 {
2662 lang_input_statement_type *search;
2663
2664 for (search = (lang_input_statement_type *) input_file_chain.head;
2665 search != NULL;
2666 search = (lang_input_statement_type *) search->next_real_file)
2667 {
2668 /* Use the local_sym_name as the name of the file that has
2669 already been loaded as filename might have been transformed
2670 via the search directory lookup mechanism. */
2671 const char *filename = search->local_sym_name;
2672
2673 if (filename != NULL
2674 && filename_cmp (filename, name) == 0)
2675 break;
2676 }
2677
2678 if (search == NULL)
2679 search = new_afile (name, lang_input_file_is_search_file_enum,
2680 default_target, FALSE);
2681
2682 /* If we have already added this file, or this file is not real
2683 don't add this file. */
2684 if (search->flags.loaded || !search->flags.real)
2685 return search;
2686
2687 if (!load_symbols (search, NULL))
2688 return NULL;
2689
2690 return search;
2691 }
2692
2693 /* Save LIST as a list of libraries whose symbols should not be exported. */
2694
2695 struct excluded_lib
2696 {
2697 char *name;
2698 struct excluded_lib *next;
2699 };
2700 static struct excluded_lib *excluded_libs;
2701
2702 void
2703 add_excluded_libs (const char *list)
2704 {
2705 const char *p = list, *end;
2706
2707 while (*p != '\0')
2708 {
2709 struct excluded_lib *entry;
2710 end = strpbrk (p, ",:");
2711 if (end == NULL)
2712 end = p + strlen (p);
2713 entry = (struct excluded_lib *) xmalloc (sizeof (*entry));
2714 entry->next = excluded_libs;
2715 entry->name = (char *) xmalloc (end - p + 1);
2716 memcpy (entry->name, p, end - p);
2717 entry->name[end - p] = '\0';
2718 excluded_libs = entry;
2719 if (*end == '\0')
2720 break;
2721 p = end + 1;
2722 }
2723 }
2724
2725 static void
2726 check_excluded_libs (bfd *abfd)
2727 {
2728 struct excluded_lib *lib = excluded_libs;
2729
2730 while (lib)
2731 {
2732 int len = strlen (lib->name);
2733 const char *filename = lbasename (abfd->filename);
2734
2735 if (strcmp (lib->name, "ALL") == 0)
2736 {
2737 abfd->no_export = TRUE;
2738 return;
2739 }
2740
2741 if (filename_ncmp (lib->name, filename, len) == 0
2742 && (filename[len] == '\0'
2743 || (filename[len] == '.' && filename[len + 1] == 'a'
2744 && filename[len + 2] == '\0')))
2745 {
2746 abfd->no_export = TRUE;
2747 return;
2748 }
2749
2750 lib = lib->next;
2751 }
2752 }
2753
2754 /* Get the symbols for an input file. */
2755
2756 bfd_boolean
2757 load_symbols (lang_input_statement_type *entry,
2758 lang_statement_list_type *place)
2759 {
2760 char **matching;
2761
2762 if (entry->flags.loaded)
2763 return TRUE;
2764
2765 ldfile_open_file (entry);
2766
2767 /* Do not process further if the file was missing. */
2768 if (entry->flags.missing_file)
2769 return TRUE;
2770
2771 if (!bfd_check_format (entry->the_bfd, bfd_archive)
2772 && !bfd_check_format_matches (entry->the_bfd, bfd_object, &matching))
2773 {
2774 bfd_error_type err;
2775 struct lang_input_statement_flags save_flags;
2776 extern FILE *yyin;
2777
2778 err = bfd_get_error ();
2779
2780 /* See if the emulation has some special knowledge. */
2781 if (ldemul_unrecognized_file (entry))
2782 return TRUE;
2783
2784 if (err == bfd_error_file_ambiguously_recognized)
2785 {
2786 char **p;
2787
2788 einfo (_("%B: file not recognized: %E\n"), entry->the_bfd);
2789 einfo (_("%B: matching formats:"), entry->the_bfd);
2790 for (p = matching; *p != NULL; p++)
2791 einfo (" %s", *p);
2792 einfo ("%F\n");
2793 }
2794 else if (err != bfd_error_file_not_recognized
2795 || place == NULL)
2796 einfo (_("%F%B: file not recognized: %E\n"), entry->the_bfd);
2797
2798 bfd_close (entry->the_bfd);
2799 entry->the_bfd = NULL;
2800
2801 /* Try to interpret the file as a linker script. */
2802 save_flags = input_flags;
2803 ldfile_open_command_file (entry->filename);
2804
2805 push_stat_ptr (place);
2806 input_flags.add_DT_NEEDED_for_regular
2807 = entry->flags.add_DT_NEEDED_for_regular;
2808 input_flags.add_DT_NEEDED_for_dynamic
2809 = entry->flags.add_DT_NEEDED_for_dynamic;
2810 input_flags.whole_archive = entry->flags.whole_archive;
2811 input_flags.dynamic = entry->flags.dynamic;
2812
2813 ldfile_assumed_script = TRUE;
2814 parser_input = input_script;
2815 yyparse ();
2816 ldfile_assumed_script = FALSE;
2817
2818 /* missing_file is sticky. sysrooted will already have been
2819 restored when seeing EOF in yyparse, but no harm to restore
2820 again. */
2821 save_flags.missing_file |= input_flags.missing_file;
2822 input_flags = save_flags;
2823 pop_stat_ptr ();
2824 fclose (yyin);
2825 yyin = NULL;
2826 entry->flags.loaded = TRUE;
2827
2828 return TRUE;
2829 }
2830
2831 if (ldemul_recognized_file (entry))
2832 return TRUE;
2833
2834 /* We don't call ldlang_add_file for an archive. Instead, the
2835 add_symbols entry point will call ldlang_add_file, via the
2836 add_archive_element callback, for each element of the archive
2837 which is used. */
2838 switch (bfd_get_format (entry->the_bfd))
2839 {
2840 default:
2841 break;
2842
2843 case bfd_object:
2844 if (!entry->flags.reload)
2845 ldlang_add_file (entry);
2846 if (trace_files || verbose)
2847 info_msg ("%I\n", entry);
2848 break;
2849
2850 case bfd_archive:
2851 check_excluded_libs (entry->the_bfd);
2852
2853 if (entry->flags.whole_archive)
2854 {
2855 bfd *member = NULL;
2856 bfd_boolean loaded = TRUE;
2857
2858 for (;;)
2859 {
2860 bfd *subsbfd;
2861 member = bfd_openr_next_archived_file (entry->the_bfd, member);
2862
2863 if (member == NULL)
2864 break;
2865
2866 if (!bfd_check_format (member, bfd_object))
2867 {
2868 einfo (_("%F%B: member %B in archive is not an object\n"),
2869 entry->the_bfd, member);
2870 loaded = FALSE;
2871 }
2872
2873 subsbfd = member;
2874 if (!(*link_info.callbacks
2875 ->add_archive_element) (&link_info, member,
2876 "--whole-archive", &subsbfd))
2877 abort ();
2878
2879 /* Potentially, the add_archive_element hook may have set a
2880 substitute BFD for us. */
2881 if (!bfd_link_add_symbols (subsbfd, &link_info))
2882 {
2883 einfo (_("%F%B: error adding symbols: %E\n"), member);
2884 loaded = FALSE;
2885 }
2886 }
2887
2888 entry->flags.loaded = loaded;
2889 return loaded;
2890 }
2891 break;
2892 }
2893
2894 if (bfd_link_add_symbols (entry->the_bfd, &link_info))
2895 entry->flags.loaded = TRUE;
2896 else
2897 einfo (_("%F%B: error adding symbols: %E\n"), entry->the_bfd);
2898
2899 return entry->flags.loaded;
2900 }
2901
2902 /* Handle a wild statement. S->FILENAME or S->SECTION_LIST or both
2903 may be NULL, indicating that it is a wildcard. Separate
2904 lang_input_section statements are created for each part of the
2905 expansion; they are added after the wild statement S. OUTPUT is
2906 the output section. */
2907
2908 static void
2909 wild (lang_wild_statement_type *s,
2910 const char *target ATTRIBUTE_UNUSED,
2911 lang_output_section_statement_type *output)
2912 {
2913 struct wildcard_list *sec;
2914
2915 if (s->handler_data[0]
2916 && s->handler_data[0]->spec.sorted == by_name
2917 && !s->filenames_sorted)
2918 {
2919 lang_section_bst_type *tree;
2920
2921 walk_wild (s, output_section_callback_fast, output);
2922
2923 tree = s->tree;
2924 if (tree)
2925 {
2926 output_section_callback_tree_to_list (s, tree, output);
2927 s->tree = NULL;
2928 }
2929 }
2930 else
2931 walk_wild (s, output_section_callback, output);
2932
2933 if (default_common_section == NULL)
2934 for (sec = s->section_list; sec != NULL; sec = sec->next)
2935 if (sec->spec.name != NULL && strcmp (sec->spec.name, "COMMON") == 0)
2936 {
2937 /* Remember the section that common is going to in case we
2938 later get something which doesn't know where to put it. */
2939 default_common_section = output;
2940 break;
2941 }
2942 }
2943
2944 /* Return TRUE iff target is the sought target. */
2945
2946 static int
2947 get_target (const bfd_target *target, void *data)
2948 {
2949 const char *sought = (const char *) data;
2950
2951 return strcmp (target->name, sought) == 0;
2952 }
2953
2954 /* Like strcpy() but convert to lower case as well. */
2955
2956 static void
2957 stricpy (char *dest, char *src)
2958 {
2959 char c;
2960
2961 while ((c = *src++) != 0)
2962 *dest++ = TOLOWER (c);
2963
2964 *dest = 0;
2965 }
2966
2967 /* Remove the first occurrence of needle (if any) in haystack
2968 from haystack. */
2969
2970 static void
2971 strcut (char *haystack, char *needle)
2972 {
2973 haystack = strstr (haystack, needle);
2974
2975 if (haystack)
2976 {
2977 char *src;
2978
2979 for (src = haystack + strlen (needle); *src;)
2980 *haystack++ = *src++;
2981
2982 *haystack = 0;
2983 }
2984 }
2985
2986 /* Compare two target format name strings.
2987 Return a value indicating how "similar" they are. */
2988
2989 static int
2990 name_compare (char *first, char *second)
2991 {
2992 char *copy1;
2993 char *copy2;
2994 int result;
2995
2996 copy1 = (char *) xmalloc (strlen (first) + 1);
2997 copy2 = (char *) xmalloc (strlen (second) + 1);
2998
2999 /* Convert the names to lower case. */
3000 stricpy (copy1, first);
3001 stricpy (copy2, second);
3002
3003 /* Remove size and endian strings from the name. */
3004 strcut (copy1, "big");
3005 strcut (copy1, "little");
3006 strcut (copy2, "big");
3007 strcut (copy2, "little");
3008
3009 /* Return a value based on how many characters match,
3010 starting from the beginning. If both strings are
3011 the same then return 10 * their length. */
3012 for (result = 0; copy1[result] == copy2[result]; result++)
3013 if (copy1[result] == 0)
3014 {
3015 result *= 10;
3016 break;
3017 }
3018
3019 free (copy1);
3020 free (copy2);
3021
3022 return result;
3023 }
3024
3025 /* Set by closest_target_match() below. */
3026 static const bfd_target *winner;
3027
3028 /* Scan all the valid bfd targets looking for one that has the endianness
3029 requirement that was specified on the command line, and is the nearest
3030 match to the original output target. */
3031
3032 static int
3033 closest_target_match (const bfd_target *target, void *data)
3034 {
3035 const bfd_target *original = (const bfd_target *) data;
3036
3037 if (command_line.endian == ENDIAN_BIG
3038 && target->byteorder != BFD_ENDIAN_BIG)
3039 return 0;
3040
3041 if (command_line.endian == ENDIAN_LITTLE
3042 && target->byteorder != BFD_ENDIAN_LITTLE)
3043 return 0;
3044
3045 /* Must be the same flavour. */
3046 if (target->flavour != original->flavour)
3047 return 0;
3048
3049 /* Ignore generic big and little endian elf vectors. */
3050 if (strcmp (target->name, "elf32-big") == 0
3051 || strcmp (target->name, "elf64-big") == 0
3052 || strcmp (target->name, "elf32-little") == 0
3053 || strcmp (target->name, "elf64-little") == 0)
3054 return 0;
3055
3056 /* If we have not found a potential winner yet, then record this one. */
3057 if (winner == NULL)
3058 {
3059 winner = target;
3060 return 0;
3061 }
3062
3063 /* Oh dear, we now have two potential candidates for a successful match.
3064 Compare their names and choose the better one. */
3065 if (name_compare (target->name, original->name)
3066 > name_compare (winner->name, original->name))
3067 winner = target;
3068
3069 /* Keep on searching until wqe have checked them all. */
3070 return 0;
3071 }
3072
3073 /* Return the BFD target format of the first input file. */
3074
3075 static char *
3076 get_first_input_target (void)
3077 {
3078 char *target = NULL;
3079
3080 LANG_FOR_EACH_INPUT_STATEMENT (s)
3081 {
3082 if (s->header.type == lang_input_statement_enum
3083 && s->flags.real)
3084 {
3085 ldfile_open_file (s);
3086
3087 if (s->the_bfd != NULL
3088 && bfd_check_format (s->the_bfd, bfd_object))
3089 {
3090 target = bfd_get_target (s->the_bfd);
3091
3092 if (target != NULL)
3093 break;
3094 }
3095 }
3096 }
3097
3098 return target;
3099 }
3100
3101 const char *
3102 lang_get_output_target (void)
3103 {
3104 const char *target;
3105
3106 /* Has the user told us which output format to use? */
3107 if (output_target != NULL)
3108 return output_target;
3109
3110 /* No - has the current target been set to something other than
3111 the default? */
3112 if (current_target != default_target && current_target != NULL)
3113 return current_target;
3114
3115 /* No - can we determine the format of the first input file? */
3116 target = get_first_input_target ();
3117 if (target != NULL)
3118 return target;
3119
3120 /* Failed - use the default output target. */
3121 return default_target;
3122 }
3123
3124 /* Open the output file. */
3125
3126 static void
3127 open_output (const char *name)
3128 {
3129 output_target = lang_get_output_target ();
3130
3131 /* Has the user requested a particular endianness on the command
3132 line? */
3133 if (command_line.endian != ENDIAN_UNSET)
3134 {
3135 /* Get the chosen target. */
3136 const bfd_target *target
3137 = bfd_iterate_over_targets (get_target, (void *) output_target);
3138
3139 /* If the target is not supported, we cannot do anything. */
3140 if (target != NULL)
3141 {
3142 enum bfd_endian desired_endian;
3143
3144 if (command_line.endian == ENDIAN_BIG)
3145 desired_endian = BFD_ENDIAN_BIG;
3146 else
3147 desired_endian = BFD_ENDIAN_LITTLE;
3148
3149 /* See if the target has the wrong endianness. This should
3150 not happen if the linker script has provided big and
3151 little endian alternatives, but some scrips don't do
3152 this. */
3153 if (target->byteorder != desired_endian)
3154 {
3155 /* If it does, then see if the target provides
3156 an alternative with the correct endianness. */
3157 if (target->alternative_target != NULL
3158 && (target->alternative_target->byteorder == desired_endian))
3159 output_target = target->alternative_target->name;
3160 else
3161 {
3162 /* Try to find a target as similar as possible to
3163 the default target, but which has the desired
3164 endian characteristic. */
3165 bfd_iterate_over_targets (closest_target_match,
3166 (void *) target);
3167
3168 /* Oh dear - we could not find any targets that
3169 satisfy our requirements. */
3170 if (winner == NULL)
3171 einfo (_("%P: warning: could not find any targets"
3172 " that match endianness requirement\n"));
3173 else
3174 output_target = winner->name;
3175 }
3176 }
3177 }
3178 }
3179
3180 link_info.output_bfd = bfd_openw (name, output_target);
3181
3182 if (link_info.output_bfd == NULL)
3183 {
3184 if (bfd_get_error () == bfd_error_invalid_target)
3185 einfo (_("%P%F: target %s not found\n"), output_target);
3186
3187 einfo (_("%P%F: cannot open output file %s: %E\n"), name);
3188 }
3189
3190 delete_output_file_on_failure = TRUE;
3191
3192 if (!bfd_set_format (link_info.output_bfd, bfd_object))
3193 einfo (_("%P%F:%s: can not make object file: %E\n"), name);
3194 if (!bfd_set_arch_mach (link_info.output_bfd,
3195 ldfile_output_architecture,
3196 ldfile_output_machine))
3197 einfo (_("%P%F:%s: can not set architecture: %E\n"), name);
3198
3199 link_info.hash = bfd_link_hash_table_create (link_info.output_bfd);
3200 if (link_info.hash == NULL)
3201 einfo (_("%P%F: can not create hash table: %E\n"));
3202
3203 bfd_set_gp_size (link_info.output_bfd, g_switch_value);
3204 }
3205
3206 static void
3207 ldlang_open_output (lang_statement_union_type *statement)
3208 {
3209 switch (statement->header.type)
3210 {
3211 case lang_output_statement_enum:
3212 ASSERT (link_info.output_bfd == NULL);
3213 open_output (statement->output_statement.name);
3214 ldemul_set_output_arch ();
3215 if (config.magic_demand_paged
3216 && !bfd_link_relocatable (&link_info))
3217 link_info.output_bfd->flags |= D_PAGED;
3218 else
3219 link_info.output_bfd->flags &= ~D_PAGED;
3220 if (config.text_read_only)
3221 link_info.output_bfd->flags |= WP_TEXT;
3222 else
3223 link_info.output_bfd->flags &= ~WP_TEXT;
3224 if (link_info.traditional_format)
3225 link_info.output_bfd->flags |= BFD_TRADITIONAL_FORMAT;
3226 else
3227 link_info.output_bfd->flags &= ~BFD_TRADITIONAL_FORMAT;
3228 break;
3229
3230 case lang_target_statement_enum:
3231 current_target = statement->target_statement.target;
3232 break;
3233 default:
3234 break;
3235 }
3236 }
3237
3238 static void
3239 init_opb (void)
3240 {
3241 unsigned x = bfd_arch_mach_octets_per_byte (ldfile_output_architecture,
3242 ldfile_output_machine);
3243 opb_shift = 0;
3244 if (x > 1)
3245 while ((x & 1) == 0)
3246 {
3247 x >>= 1;
3248 ++opb_shift;
3249 }
3250 ASSERT (x == 1);
3251 }
3252
3253 /* Open all the input files. */
3254
3255 enum open_bfd_mode
3256 {
3257 OPEN_BFD_NORMAL = 0,
3258 OPEN_BFD_FORCE = 1,
3259 OPEN_BFD_RESCAN = 2
3260 };
3261 #ifdef ENABLE_PLUGINS
3262 static lang_input_statement_type *plugin_insert = NULL;
3263 #endif
3264
3265 static void
3266 open_input_bfds (lang_statement_union_type *s, enum open_bfd_mode mode)
3267 {
3268 for (; s != NULL; s = s->header.next)
3269 {
3270 switch (s->header.type)
3271 {
3272 case lang_constructors_statement_enum:
3273 open_input_bfds (constructor_list.head, mode);
3274 break;
3275 case lang_output_section_statement_enum:
3276 open_input_bfds (s->output_section_statement.children.head, mode);
3277 break;
3278 case lang_wild_statement_enum:
3279 /* Maybe we should load the file's symbols. */
3280 if ((mode & OPEN_BFD_RESCAN) == 0
3281 && s->wild_statement.filename
3282 && !wildcardp (s->wild_statement.filename)
3283 && !archive_path (s->wild_statement.filename))
3284 lookup_name (s->wild_statement.filename);
3285 open_input_bfds (s->wild_statement.children.head, mode);
3286 break;
3287 case lang_group_statement_enum:
3288 {
3289 struct bfd_link_hash_entry *undefs;
3290
3291 /* We must continually search the entries in the group
3292 until no new symbols are added to the list of undefined
3293 symbols. */
3294
3295 do
3296 {
3297 undefs = link_info.hash->undefs_tail;
3298 open_input_bfds (s->group_statement.children.head,
3299 mode | OPEN_BFD_FORCE);
3300 }
3301 while (undefs != link_info.hash->undefs_tail);
3302 }
3303 break;
3304 case lang_target_statement_enum:
3305 current_target = s->target_statement.target;
3306 break;
3307 case lang_input_statement_enum:
3308 if (s->input_statement.flags.real)
3309 {
3310 lang_statement_union_type **os_tail;
3311 lang_statement_list_type add;
3312 bfd *abfd;
3313
3314 s->input_statement.target = current_target;
3315
3316 /* If we are being called from within a group, and this
3317 is an archive which has already been searched, then
3318 force it to be researched unless the whole archive
3319 has been loaded already. Do the same for a rescan.
3320 Likewise reload --as-needed shared libs. */
3321 if (mode != OPEN_BFD_NORMAL
3322 #ifdef ENABLE_PLUGINS
3323 && ((mode & OPEN_BFD_RESCAN) == 0
3324 || plugin_insert == NULL)
3325 #endif
3326 && s->input_statement.flags.loaded
3327 && (abfd = s->input_statement.the_bfd) != NULL
3328 && ((bfd_get_format (abfd) == bfd_archive
3329 && !s->input_statement.flags.whole_archive)
3330 || (bfd_get_format (abfd) == bfd_object
3331 && ((abfd->flags) & DYNAMIC) != 0
3332 && s->input_statement.flags.add_DT_NEEDED_for_regular
3333 && bfd_get_flavour (abfd) == bfd_target_elf_flavour
3334 && (elf_dyn_lib_class (abfd) & DYN_AS_NEEDED) != 0)))
3335 {
3336 s->input_statement.flags.loaded = FALSE;
3337 s->input_statement.flags.reload = TRUE;
3338 }
3339
3340 os_tail = lang_output_section_statement.tail;
3341 lang_list_init (&add);
3342
3343 if (!load_symbols (&s->input_statement, &add))
3344 config.make_executable = FALSE;
3345
3346 if (add.head != NULL)
3347 {
3348 /* If this was a script with output sections then
3349 tack any added statements on to the end of the
3350 list. This avoids having to reorder the output
3351 section statement list. Very likely the user
3352 forgot -T, and whatever we do here will not meet
3353 naive user expectations. */
3354 if (os_tail != lang_output_section_statement.tail)
3355 {
3356 einfo (_("%P: warning: %s contains output sections;"
3357 " did you forget -T?\n"),
3358 s->input_statement.filename);
3359 *stat_ptr->tail = add.head;
3360 stat_ptr->tail = add.tail;
3361 }
3362 else
3363 {
3364 *add.tail = s->header.next;
3365 s->header.next = add.head;
3366 }
3367 }
3368 }
3369 #ifdef ENABLE_PLUGINS
3370 /* If we have found the point at which a plugin added new
3371 files, clear plugin_insert to enable archive rescan. */
3372 if (&s->input_statement == plugin_insert)
3373 plugin_insert = NULL;
3374 #endif
3375 break;
3376 case lang_assignment_statement_enum:
3377 if (s->assignment_statement.exp->type.node_class != etree_assert
3378 && s->assignment_statement.exp->assign.defsym)
3379 /* This is from a --defsym on the command line. */
3380 exp_fold_tree_no_dot (s->assignment_statement.exp);
3381 break;
3382 default:
3383 break;
3384 }
3385 }
3386
3387 /* Exit if any of the files were missing. */
3388 if (input_flags.missing_file)
3389 einfo ("%F");
3390 }
3391
3392 /* Add the supplied name to the symbol table as an undefined reference.
3393 This is a two step process as the symbol table doesn't even exist at
3394 the time the ld command line is processed. First we put the name
3395 on a list, then, once the output file has been opened, transfer the
3396 name to the symbol table. */
3397
3398 typedef struct bfd_sym_chain ldlang_undef_chain_list_type;
3399
3400 #define ldlang_undef_chain_list_head entry_symbol.next
3401
3402 void
3403 ldlang_add_undef (const char *const name, bfd_boolean cmdline)
3404 {
3405 ldlang_undef_chain_list_type *new_undef;
3406
3407 undef_from_cmdline = undef_from_cmdline || cmdline;
3408 new_undef = (ldlang_undef_chain_list_type *) stat_alloc (sizeof (*new_undef));
3409 new_undef->next = ldlang_undef_chain_list_head;
3410 ldlang_undef_chain_list_head = new_undef;
3411
3412 new_undef->name = xstrdup (name);
3413
3414 if (link_info.output_bfd != NULL)
3415 insert_undefined (new_undef->name);
3416 }
3417
3418 /* Insert NAME as undefined in the symbol table. */
3419
3420 static void
3421 insert_undefined (const char *name)
3422 {
3423 struct bfd_link_hash_entry *h;
3424
3425 h = bfd_link_hash_lookup (link_info.hash, name, TRUE, FALSE, TRUE);
3426 if (h == NULL)
3427 einfo (_("%P%F: bfd_link_hash_lookup failed: %E\n"));
3428 if (h->type == bfd_link_hash_new)
3429 {
3430 h->type = bfd_link_hash_undefined;
3431 h->u.undef.abfd = NULL;
3432 bfd_link_add_undef (link_info.hash, h);
3433 }
3434 }
3435
3436 /* Run through the list of undefineds created above and place them
3437 into the linker hash table as undefined symbols belonging to the
3438 script file. */
3439
3440 static void
3441 lang_place_undefineds (void)
3442 {
3443 ldlang_undef_chain_list_type *ptr;
3444
3445 for (ptr = ldlang_undef_chain_list_head; ptr != NULL; ptr = ptr->next)
3446 insert_undefined (ptr->name);
3447 }
3448
3449 /* Structure used to build the list of symbols that the user has required
3450 be defined. */
3451
3452 struct require_defined_symbol
3453 {
3454 const char *name;
3455 struct require_defined_symbol *next;
3456 };
3457
3458 /* The list of symbols that the user has required be defined. */
3459
3460 static struct require_defined_symbol *require_defined_symbol_list;
3461
3462 /* Add a new symbol NAME to the list of symbols that are required to be
3463 defined. */
3464
3465 void
3466 ldlang_add_require_defined (const char *const name)
3467 {
3468 struct require_defined_symbol *ptr;
3469
3470 ldlang_add_undef (name, TRUE);
3471 ptr = (struct require_defined_symbol *) stat_alloc (sizeof (*ptr));
3472 ptr->next = require_defined_symbol_list;
3473 ptr->name = strdup (name);
3474 require_defined_symbol_list = ptr;
3475 }
3476
3477 /* Check that all symbols the user required to be defined, are defined,
3478 raise an error if we find a symbol that is not defined. */
3479
3480 static void
3481 ldlang_check_require_defined_symbols (void)
3482 {
3483 struct require_defined_symbol *ptr;
3484
3485 for (ptr = require_defined_symbol_list; ptr != NULL; ptr = ptr->next)
3486 {
3487 struct bfd_link_hash_entry *h;
3488
3489 h = bfd_link_hash_lookup (link_info.hash, ptr->name,
3490 FALSE, FALSE, TRUE);
3491 if (h == NULL
3492 || (h->type != bfd_link_hash_defined
3493 && h->type != bfd_link_hash_defweak))
3494 einfo(_("%P%X: required symbol `%s' not defined\n"), ptr->name);
3495 }
3496 }
3497
3498 /* Check for all readonly or some readwrite sections. */
3499
3500 static void
3501 check_input_sections
3502 (lang_statement_union_type *s,
3503 lang_output_section_statement_type *output_section_statement)
3504 {
3505 for (; s != (lang_statement_union_type *) NULL; s = s->header.next)
3506 {
3507 switch (s->header.type)
3508 {
3509 case lang_wild_statement_enum:
3510 walk_wild (&s->wild_statement, check_section_callback,
3511 output_section_statement);
3512 if (!output_section_statement->all_input_readonly)
3513 return;
3514 break;
3515 case lang_constructors_statement_enum:
3516 check_input_sections (constructor_list.head,
3517 output_section_statement);
3518 if (!output_section_statement->all_input_readonly)
3519 return;
3520 break;
3521 case lang_group_statement_enum:
3522 check_input_sections (s->group_statement.children.head,
3523 output_section_statement);
3524 if (!output_section_statement->all_input_readonly)
3525 return;
3526 break;
3527 default:
3528 break;
3529 }
3530 }
3531 }
3532
3533 /* Update wildcard statements if needed. */
3534
3535 static void
3536 update_wild_statements (lang_statement_union_type *s)
3537 {
3538 struct wildcard_list *sec;
3539
3540 switch (sort_section)
3541 {
3542 default:
3543 FAIL ();
3544
3545 case none:
3546 break;
3547
3548 case by_name:
3549 case by_alignment:
3550 for (; s != NULL; s = s->header.next)
3551 {
3552 switch (s->header.type)
3553 {
3554 default:
3555 break;
3556
3557 case lang_wild_statement_enum:
3558 for (sec = s->wild_statement.section_list; sec != NULL;
3559 sec = sec->next)
3560 {
3561 switch (sec->spec.sorted)
3562 {
3563 case none:
3564 sec->spec.sorted = sort_section;
3565 break;
3566 case by_name:
3567 if (sort_section == by_alignment)
3568 sec->spec.sorted = by_name_alignment;
3569 break;
3570 case by_alignment:
3571 if (sort_section == by_name)
3572 sec->spec.sorted = by_alignment_name;
3573 break;
3574 default:
3575 break;
3576 }
3577 }
3578 break;
3579
3580 case lang_constructors_statement_enum:
3581 update_wild_statements (constructor_list.head);
3582 break;
3583
3584 case lang_output_section_statement_enum:
3585 /* Don't sort .init/.fini sections. */
3586 if (strcmp (s->output_section_statement.name, ".init") != 0
3587 && strcmp (s->output_section_statement.name, ".fini") != 0)
3588 update_wild_statements
3589 (s->output_section_statement.children.head);
3590 break;
3591
3592 case lang_group_statement_enum:
3593 update_wild_statements (s->group_statement.children.head);
3594 break;
3595 }
3596 }
3597 break;
3598 }
3599 }
3600
3601 /* Open input files and attach to output sections. */
3602
3603 static void
3604 map_input_to_output_sections
3605 (lang_statement_union_type *s, const char *target,
3606 lang_output_section_statement_type *os)
3607 {
3608 for (; s != NULL; s = s->header.next)
3609 {
3610 lang_output_section_statement_type *tos;
3611 flagword flags;
3612
3613 switch (s->header.type)
3614 {
3615 case lang_wild_statement_enum:
3616 wild (&s->wild_statement, target, os);
3617 break;
3618 case lang_constructors_statement_enum:
3619 map_input_to_output_sections (constructor_list.head,
3620 target,
3621 os);
3622 break;
3623 case lang_output_section_statement_enum:
3624 tos = &s->output_section_statement;
3625 if (tos->constraint != 0)
3626 {
3627 if (tos->constraint != ONLY_IF_RW
3628 && tos->constraint != ONLY_IF_RO)
3629 break;
3630 tos->all_input_readonly = TRUE;
3631 check_input_sections (tos->children.head, tos);
3632 if (tos->all_input_readonly != (tos->constraint == ONLY_IF_RO))
3633 {
3634 tos->constraint = -1;
3635 break;
3636 }
3637 }
3638 map_input_to_output_sections (tos->children.head,
3639 target,
3640 tos);
3641 break;
3642 case lang_output_statement_enum:
3643 break;
3644 case lang_target_statement_enum:
3645 target = s->target_statement.target;
3646 break;
3647 case lang_group_statement_enum:
3648 map_input_to_output_sections (s->group_statement.children.head,
3649 target,
3650 os);
3651 break;
3652 case lang_data_statement_enum:
3653 /* Make sure that any sections mentioned in the expression
3654 are initialized. */
3655 exp_init_os (s->data_statement.exp);
3656 /* The output section gets CONTENTS, ALLOC and LOAD, but
3657 these may be overridden by the script. */
3658 flags = SEC_HAS_CONTENTS | SEC_ALLOC | SEC_LOAD;
3659 switch (os->sectype)
3660 {
3661 case normal_section:
3662 case overlay_section:
3663 break;
3664 case noalloc_section:
3665 flags = SEC_HAS_CONTENTS;
3666 break;
3667 case noload_section:
3668 if (bfd_get_flavour (link_info.output_bfd)
3669 == bfd_target_elf_flavour)
3670 flags = SEC_NEVER_LOAD | SEC_ALLOC;
3671 else
3672 flags = SEC_NEVER_LOAD | SEC_HAS_CONTENTS;
3673 break;
3674 }
3675 if (os->bfd_section == NULL)
3676 init_os (os, flags);
3677 else
3678 os->bfd_section->flags |= flags;
3679 break;
3680 case lang_input_section_enum:
3681 break;
3682 case lang_fill_statement_enum:
3683 case lang_object_symbols_statement_enum:
3684 case lang_reloc_statement_enum:
3685 case lang_padding_statement_enum:
3686 case lang_input_statement_enum:
3687 if (os != NULL && os->bfd_section == NULL)
3688 init_os (os, 0);
3689 break;
3690 case lang_assignment_statement_enum:
3691 if (os != NULL && os->bfd_section == NULL)
3692 init_os (os, 0);
3693
3694 /* Make sure that any sections mentioned in the assignment
3695 are initialized. */
3696 exp_init_os (s->assignment_statement.exp);
3697 break;
3698 case lang_address_statement_enum:
3699 /* Mark the specified section with the supplied address.
3700 If this section was actually a segment marker, then the
3701 directive is ignored if the linker script explicitly
3702 processed the segment marker. Originally, the linker
3703 treated segment directives (like -Ttext on the
3704 command-line) as section directives. We honor the
3705 section directive semantics for backwards compatibility;
3706 linker scripts that do not specifically check for
3707 SEGMENT_START automatically get the old semantics. */
3708 if (!s->address_statement.segment
3709 || !s->address_statement.segment->used)
3710 {
3711 const char *name = s->address_statement.section_name;
3712
3713 /* Create the output section statement here so that
3714 orphans with a set address will be placed after other
3715 script sections. If we let the orphan placement code
3716 place them in amongst other sections then the address
3717 will affect following script sections, which is
3718 likely to surprise naive users. */
3719 tos = lang_output_section_statement_lookup (name, 0, TRUE);
3720 tos->addr_tree = s->address_statement.address;
3721 if (tos->bfd_section == NULL)
3722 init_os (tos, 0);
3723 }
3724 break;
3725 case lang_insert_statement_enum:
3726 break;
3727 }
3728 }
3729 }
3730
3731 /* An insert statement snips out all the linker statements from the
3732 start of the list and places them after the output section
3733 statement specified by the insert. This operation is complicated
3734 by the fact that we keep a doubly linked list of output section
3735 statements as well as the singly linked list of all statements. */
3736
3737 static void
3738 process_insert_statements (void)
3739 {
3740 lang_statement_union_type **s;
3741 lang_output_section_statement_type *first_os = NULL;
3742 lang_output_section_statement_type *last_os = NULL;
3743 lang_output_section_statement_type *os;
3744
3745 /* "start of list" is actually the statement immediately after
3746 the special abs_section output statement, so that it isn't
3747 reordered. */
3748 s = &lang_output_section_statement.head;
3749 while (*(s = &(*s)->header.next) != NULL)
3750 {
3751 if ((*s)->header.type == lang_output_section_statement_enum)
3752 {
3753 /* Keep pointers to the first and last output section
3754 statement in the sequence we may be about to move. */
3755 os = &(*s)->output_section_statement;
3756
3757 ASSERT (last_os == NULL || last_os->next == os);
3758 last_os = os;
3759
3760 /* Set constraint negative so that lang_output_section_find
3761 won't match this output section statement. At this
3762 stage in linking constraint has values in the range
3763 [-1, ONLY_IN_RW]. */
3764 last_os->constraint = -2 - last_os->constraint;
3765 if (first_os == NULL)
3766 first_os = last_os;
3767 }
3768 else if ((*s)->header.type == lang_insert_statement_enum)
3769 {
3770 lang_insert_statement_type *i = &(*s)->insert_statement;
3771 lang_output_section_statement_type *where;
3772 lang_statement_union_type **ptr;
3773 lang_statement_union_type *first;
3774
3775 where = lang_output_section_find (i->where);
3776 if (where != NULL && i->is_before)
3777 {
3778 do
3779 where = where->prev;
3780 while (where != NULL && where->constraint < 0);
3781 }
3782 if (where == NULL)
3783 {
3784 einfo (_("%F%P: %s not found for insert\n"), i->where);
3785 return;
3786 }
3787
3788 /* Deal with reordering the output section statement list. */
3789 if (last_os != NULL)
3790 {
3791 asection *first_sec, *last_sec;
3792 struct lang_output_section_statement_struct **next;
3793
3794 /* Snip out the output sections we are moving. */
3795 first_os->prev->next = last_os->next;
3796 if (last_os->next == NULL)
3797 {
3798 next = &first_os->prev->next;
3799 lang_output_section_statement.tail
3800 = (lang_statement_union_type **) next;
3801 }
3802 else
3803 last_os->next->prev = first_os->prev;
3804 /* Add them in at the new position. */
3805 last_os->next = where->next;
3806 if (where->next == NULL)
3807 {
3808 next = &last_os->next;
3809 lang_output_section_statement.tail
3810 = (lang_statement_union_type **) next;
3811 }
3812 else
3813 where->next->prev = last_os;
3814 first_os->prev = where;
3815 where->next = first_os;
3816
3817 /* Move the bfd sections in the same way. */
3818 first_sec = NULL;
3819 last_sec = NULL;
3820 for (os = first_os; os != NULL; os = os->next)
3821 {
3822 os->constraint = -2 - os->constraint;
3823 if (os->bfd_section != NULL
3824 && os->bfd_section->owner != NULL)
3825 {
3826 last_sec = os->bfd_section;
3827 if (first_sec == NULL)
3828 first_sec = last_sec;
3829 }
3830 if (os == last_os)
3831 break;
3832 }
3833 if (last_sec != NULL)
3834 {
3835 asection *sec = where->bfd_section;
3836 if (sec == NULL)
3837 sec = output_prev_sec_find (where);
3838
3839 /* The place we want to insert must come after the
3840 sections we are moving. So if we find no
3841 section or if the section is the same as our
3842 last section, then no move is needed. */
3843 if (sec != NULL && sec != last_sec)
3844 {
3845 /* Trim them off. */
3846 if (first_sec->prev != NULL)
3847 first_sec->prev->next = last_sec->next;
3848 else
3849 link_info.output_bfd->sections = last_sec->next;
3850 if (last_sec->next != NULL)
3851 last_sec->next->prev = first_sec->prev;
3852 else
3853 link_info.output_bfd->section_last = first_sec->prev;
3854 /* Add back. */
3855 last_sec->next = sec->next;
3856 if (sec->next != NULL)
3857 sec->next->prev = last_sec;
3858 else
3859 link_info.output_bfd->section_last = last_sec;
3860 first_sec->prev = sec;
3861 sec->next = first_sec;
3862 }
3863 }
3864
3865 first_os = NULL;
3866 last_os = NULL;
3867 }
3868
3869 ptr = insert_os_after (where);
3870 /* Snip everything after the abs_section output statement we
3871 know is at the start of the list, up to and including
3872 the insert statement we are currently processing. */
3873 first = lang_output_section_statement.head->header.next;
3874 lang_output_section_statement.head->header.next = (*s)->header.next;
3875 /* Add them back where they belong. */
3876 *s = *ptr;
3877 if (*s == NULL)
3878 statement_list.tail = s;
3879 *ptr = first;
3880 s = &lang_output_section_statement.head;
3881 }
3882 }
3883
3884 /* Undo constraint twiddling. */
3885 for (os = first_os; os != NULL; os = os->next)
3886 {
3887 os->constraint = -2 - os->constraint;
3888 if (os == last_os)
3889 break;
3890 }
3891 }
3892
3893 /* An output section might have been removed after its statement was
3894 added. For example, ldemul_before_allocation can remove dynamic
3895 sections if they turn out to be not needed. Clean them up here. */
3896
3897 void
3898 strip_excluded_output_sections (void)
3899 {
3900 lang_output_section_statement_type *os;
3901
3902 /* Run lang_size_sections (if not already done). */
3903 if (expld.phase != lang_mark_phase_enum)
3904 {
3905 expld.phase = lang_mark_phase_enum;
3906 expld.dataseg.phase = exp_dataseg_none;
3907 one_lang_size_sections_pass (NULL, FALSE);
3908 lang_reset_memory_regions ();
3909 }
3910
3911 for (os = &lang_output_section_statement.head->output_section_statement;
3912 os != NULL;
3913 os = os->next)
3914 {
3915 asection *output_section;
3916 bfd_boolean exclude;
3917
3918 if (os->constraint < 0)
3919 continue;
3920
3921 output_section = os->bfd_section;
3922 if (output_section == NULL)
3923 continue;
3924
3925 exclude = (output_section->rawsize == 0
3926 && (output_section->flags & SEC_KEEP) == 0
3927 && !bfd_section_removed_from_list (link_info.output_bfd,
3928 output_section));
3929
3930 /* Some sections have not yet been sized, notably .gnu.version,
3931 .dynsym, .dynstr and .hash. These all have SEC_LINKER_CREATED
3932 input sections, so don't drop output sections that have such
3933 input sections unless they are also marked SEC_EXCLUDE. */
3934 if (exclude && output_section->map_head.s != NULL)
3935 {
3936 asection *s;
3937
3938 for (s = output_section->map_head.s; s != NULL; s = s->map_head.s)
3939 if ((s->flags & SEC_EXCLUDE) == 0
3940 && ((s->flags & SEC_LINKER_CREATED) != 0
3941 || link_info.emitrelocations))
3942 {
3943 exclude = FALSE;
3944 break;
3945 }
3946 }
3947
3948 if (exclude)
3949 {
3950 /* We don't set bfd_section to NULL since bfd_section of the
3951 removed output section statement may still be used. */
3952 if (!os->update_dot)
3953 os->ignored = TRUE;
3954 output_section->flags |= SEC_EXCLUDE;
3955 bfd_section_list_remove (link_info.output_bfd, output_section);
3956 link_info.output_bfd->section_count--;
3957 }
3958 }
3959 }
3960
3961 /* Called from ldwrite to clear out asection.map_head and
3962 asection.map_tail for use as link_orders in ldwrite.
3963 FIXME: Except for sh64elf.em which starts creating link_orders in
3964 its after_allocation routine so needs to call it early. */
3965
3966 void
3967 lang_clear_os_map (void)
3968 {
3969 lang_output_section_statement_type *os;
3970
3971 if (map_head_is_link_order)
3972 return;
3973
3974 for (os = &lang_output_section_statement.head->output_section_statement;
3975 os != NULL;
3976 os = os->next)
3977 {
3978 asection *output_section;
3979
3980 if (os->constraint < 0)
3981 continue;
3982
3983 output_section = os->bfd_section;
3984 if (output_section == NULL)
3985 continue;
3986
3987 /* TODO: Don't just junk map_head.s, turn them into link_orders. */
3988 output_section->map_head.link_order = NULL;
3989 output_section->map_tail.link_order = NULL;
3990 }
3991
3992 /* Stop future calls to lang_add_section from messing with map_head
3993 and map_tail link_order fields. */
3994 map_head_is_link_order = TRUE;
3995 }
3996
3997 static void
3998 print_output_section_statement
3999 (lang_output_section_statement_type *output_section_statement)
4000 {
4001 asection *section = output_section_statement->bfd_section;
4002 int len;
4003
4004 if (output_section_statement != abs_output_section)
4005 {
4006 minfo ("\n%s", output_section_statement->name);
4007
4008 if (section != NULL)
4009 {
4010 print_dot = section->vma;
4011
4012 len = strlen (output_section_statement->name);
4013 if (len >= SECTION_NAME_MAP_LENGTH - 1)
4014 {
4015 print_nl ();
4016 len = 0;
4017 }
4018 while (len < SECTION_NAME_MAP_LENGTH)
4019 {
4020 print_space ();
4021 ++len;
4022 }
4023
4024 minfo ("0x%V %W", section->vma, TO_ADDR (section->size));
4025
4026 if (section->vma != section->lma)
4027 minfo (_(" load address 0x%V"), section->lma);
4028
4029 if (output_section_statement->update_dot_tree != NULL)
4030 exp_fold_tree (output_section_statement->update_dot_tree,
4031 bfd_abs_section_ptr, &print_dot);
4032 }
4033
4034 print_nl ();
4035 }
4036
4037 print_statement_list (output_section_statement->children.head,
4038 output_section_statement);
4039 }
4040
4041 static void
4042 print_assignment (lang_assignment_statement_type *assignment,
4043 lang_output_section_statement_type *output_section)
4044 {
4045 unsigned int i;
4046 bfd_boolean is_dot;
4047 etree_type *tree;
4048 asection *osec;
4049
4050 for (i = 0; i < SECTION_NAME_MAP_LENGTH; i++)
4051 print_space ();
4052
4053 if (assignment->exp->type.node_class == etree_assert)
4054 {
4055 is_dot = FALSE;
4056 tree = assignment->exp->assert_s.child;
4057 }
4058 else
4059 {
4060 const char *dst = assignment->exp->assign.dst;
4061
4062 is_dot = (dst[0] == '.' && dst[1] == 0);
4063 if (!is_dot)
4064 expld.assign_name = dst;
4065 tree = assignment->exp->assign.src;
4066 }
4067
4068 osec = output_section->bfd_section;
4069 if (osec == NULL)
4070 osec = bfd_abs_section_ptr;
4071
4072 if (assignment->exp->type.node_class != etree_provide)
4073 exp_fold_tree (tree, osec, &print_dot);
4074 else
4075 expld.result.valid_p = FALSE;
4076
4077 if (expld.result.valid_p)
4078 {
4079 bfd_vma value;
4080
4081 if (assignment->exp->type.node_class == etree_assert
4082 || is_dot
4083 || expld.assign_name != NULL)
4084 {
4085 value = expld.result.value;
4086
4087 if (expld.result.section != NULL)
4088 value += expld.result.section->vma;
4089
4090 minfo ("0x%V", value);
4091 if (is_dot)
4092 print_dot = value;
4093 }
4094 else
4095 {
4096 struct bfd_link_hash_entry *h;
4097
4098 h = bfd_link_hash_lookup (link_info.hash, assignment->exp->assign.dst,
4099 FALSE, FALSE, TRUE);
4100 if (h)
4101 {
4102 value = h->u.def.value;
4103 value += h->u.def.section->output_section->vma;
4104 value += h->u.def.section->output_offset;
4105
4106 minfo ("[0x%V]", value);
4107 }
4108 else
4109 minfo ("[unresolved]");
4110 }
4111 }
4112 else
4113 {
4114 if (assignment->exp->type.node_class == etree_provide)
4115 minfo ("[!provide]");
4116 else
4117 minfo ("*undef* ");
4118 #ifdef BFD64
4119 minfo (" ");
4120 #endif
4121 }
4122 expld.assign_name = NULL;
4123
4124 minfo (" ");
4125 exp_print_tree (assignment->exp);
4126 print_nl ();
4127 }
4128
4129 static void
4130 print_input_statement (lang_input_statement_type *statm)
4131 {
4132 if (statm->filename != NULL
4133 && (statm->the_bfd == NULL
4134 || (statm->the_bfd->flags & BFD_LINKER_CREATED) == 0))
4135 fprintf (config.map_file, "LOAD %s\n", statm->filename);
4136 }
4137
4138 /* Print all symbols defined in a particular section. This is called
4139 via bfd_link_hash_traverse, or by print_all_symbols. */
4140
4141 static bfd_boolean
4142 print_one_symbol (struct bfd_link_hash_entry *hash_entry, void *ptr)
4143 {
4144 asection *sec = (asection *) ptr;
4145
4146 if ((hash_entry->type == bfd_link_hash_defined
4147 || hash_entry->type == bfd_link_hash_defweak)
4148 && sec == hash_entry->u.def.section)
4149 {
4150 int i;
4151
4152 for (i = 0; i < SECTION_NAME_MAP_LENGTH; i++)
4153 print_space ();
4154 minfo ("0x%V ",
4155 (hash_entry->u.def.value
4156 + hash_entry->u.def.section->output_offset
4157 + hash_entry->u.def.section->output_section->vma));
4158
4159 minfo (" %T\n", hash_entry->root.string);
4160 }
4161
4162 return TRUE;
4163 }
4164
4165 static int
4166 hash_entry_addr_cmp (const void *a, const void *b)
4167 {
4168 const struct bfd_link_hash_entry *l = *(const struct bfd_link_hash_entry **)a;
4169 const struct bfd_link_hash_entry *r = *(const struct bfd_link_hash_entry **)b;
4170
4171 if (l->u.def.value < r->u.def.value)
4172 return -1;
4173 else if (l->u.def.value > r->u.def.value)
4174 return 1;
4175 else
4176 return 0;
4177 }
4178
4179 static void
4180 print_all_symbols (asection *sec)
4181 {
4182 input_section_userdata_type *ud
4183 = (input_section_userdata_type *) get_userdata (sec);
4184 struct map_symbol_def *def;
4185 struct bfd_link_hash_entry **entries;
4186 unsigned int i;
4187
4188 if (!ud)
4189 return;
4190
4191 *ud->map_symbol_def_tail = 0;
4192
4193 /* Sort the symbols by address. */
4194 entries = (struct bfd_link_hash_entry **)
4195 obstack_alloc (&map_obstack,
4196 ud->map_symbol_def_count * sizeof (*entries));
4197
4198 for (i = 0, def = ud->map_symbol_def_head; def; def = def->next, i++)
4199 entries[i] = def->entry;
4200
4201 qsort (entries, ud->map_symbol_def_count, sizeof (*entries),
4202 hash_entry_addr_cmp);
4203
4204 /* Print the symbols. */
4205 for (i = 0; i < ud->map_symbol_def_count; i++)
4206 print_one_symbol (entries[i], sec);
4207
4208 obstack_free (&map_obstack, entries);
4209 }
4210
4211 /* Print information about an input section to the map file. */
4212
4213 static void
4214 print_input_section (asection *i, bfd_boolean is_discarded)
4215 {
4216 bfd_size_type size = i->size;
4217 int len;
4218 bfd_vma addr;
4219
4220 init_opb ();
4221
4222 print_space ();
4223 minfo ("%s", i->name);
4224
4225 len = 1 + strlen (i->name);
4226 if (len >= SECTION_NAME_MAP_LENGTH - 1)
4227 {
4228 print_nl ();
4229 len = 0;
4230 }
4231 while (len < SECTION_NAME_MAP_LENGTH)
4232 {
4233 print_space ();
4234 ++len;
4235 }
4236
4237 if (i->output_section != NULL
4238 && i->output_section->owner == link_info.output_bfd)
4239 addr = i->output_section->vma + i->output_offset;
4240 else
4241 {
4242 addr = print_dot;
4243 if (!is_discarded)
4244 size = 0;
4245 }
4246
4247 minfo ("0x%V %W %B\n", addr, size, i->owner);
4248
4249 if (size != i->rawsize && i->rawsize != 0)
4250 {
4251 len = SECTION_NAME_MAP_LENGTH + 3;
4252 #ifdef BFD64
4253 len += 16;
4254 #else
4255 len += 8;
4256 #endif
4257 while (len > 0)
4258 {
4259 print_space ();
4260 --len;
4261 }
4262
4263 minfo (_("%W (size before relaxing)\n"), i->rawsize);
4264 }
4265
4266 if (i->output_section != NULL
4267 && i->output_section->owner == link_info.output_bfd)
4268 {
4269 if (link_info.reduce_memory_overheads)
4270 bfd_link_hash_traverse (link_info.hash, print_one_symbol, i);
4271 else
4272 print_all_symbols (i);
4273
4274 /* Update print_dot, but make sure that we do not move it
4275 backwards - this could happen if we have overlays and a
4276 later overlay is shorter than an earier one. */
4277 if (addr + TO_ADDR (size) > print_dot)
4278 print_dot = addr + TO_ADDR (size);
4279 }
4280 }
4281
4282 static void
4283 print_fill_statement (lang_fill_statement_type *fill)
4284 {
4285 size_t size;
4286 unsigned char *p;
4287 fputs (" FILL mask 0x", config.map_file);
4288 for (p = fill->fill->data, size = fill->fill->size; size != 0; p++, size--)
4289 fprintf (config.map_file, "%02x", *p);
4290 fputs ("\n", config.map_file);
4291 }
4292
4293 static void
4294 print_data_statement (lang_data_statement_type *data)
4295 {
4296 int i;
4297 bfd_vma addr;
4298 bfd_size_type size;
4299 const char *name;
4300
4301 init_opb ();
4302 for (i = 0; i < SECTION_NAME_MAP_LENGTH; i++)
4303 print_space ();
4304
4305 addr = data->output_offset;
4306 if (data->output_section != NULL)
4307 addr += data->output_section->vma;
4308
4309 switch (data->type)
4310 {
4311 default:
4312 abort ();
4313 case BYTE:
4314 size = BYTE_SIZE;
4315 name = "BYTE";
4316 break;
4317 case SHORT:
4318 size = SHORT_SIZE;
4319 name = "SHORT";
4320 break;
4321 case LONG:
4322 size = LONG_SIZE;
4323 name = "LONG";
4324 break;
4325 case QUAD:
4326 size = QUAD_SIZE;
4327 name = "QUAD";
4328 break;
4329 case SQUAD:
4330 size = QUAD_SIZE;
4331 name = "SQUAD";
4332 break;
4333 }
4334
4335 if (size < TO_SIZE ((unsigned) 1))
4336 size = TO_SIZE ((unsigned) 1);
4337 minfo ("0x%V %W %s 0x%v", addr, TO_ADDR (size), name, data->value);
4338
4339 if (data->exp->type.node_class != etree_value)
4340 {
4341 print_space ();
4342 exp_print_tree (data->exp);
4343 }
4344
4345 print_nl ();
4346
4347 print_dot = addr + TO_ADDR (size);
4348 }
4349
4350 /* Print an address statement. These are generated by options like
4351 -Ttext. */
4352
4353 static void
4354 print_address_statement (lang_address_statement_type *address)
4355 {
4356 minfo (_("Address of section %s set to "), address->section_name);
4357 exp_print_tree (address->address);
4358 print_nl ();
4359 }
4360
4361 /* Print a reloc statement. */
4362
4363 static void
4364 print_reloc_statement (lang_reloc_statement_type *reloc)
4365 {
4366 int i;
4367 bfd_vma addr;
4368 bfd_size_type size;
4369
4370 init_opb ();
4371 for (i = 0; i < SECTION_NAME_MAP_LENGTH; i++)
4372 print_space ();
4373
4374 addr = reloc->output_offset;
4375 if (reloc->output_section != NULL)
4376 addr += reloc->output_section->vma;
4377
4378 size = bfd_get_reloc_size (reloc->howto);
4379
4380 minfo ("0x%V %W RELOC %s ", addr, TO_ADDR (size), reloc->howto->name);
4381
4382 if (reloc->name != NULL)
4383 minfo ("%s+", reloc->name);
4384 else
4385 minfo ("%s+", reloc->section->name);
4386
4387 exp_print_tree (reloc->addend_exp);
4388
4389 print_nl ();
4390
4391 print_dot = addr + TO_ADDR (size);
4392 }
4393
4394 static void
4395 print_padding_statement (lang_padding_statement_type *s)
4396 {
4397 int len;
4398 bfd_vma addr;
4399
4400 init_opb ();
4401 minfo (" *fill*");
4402
4403 len = sizeof " *fill*" - 1;
4404 while (len < SECTION_NAME_MAP_LENGTH)
4405 {
4406 print_space ();
4407 ++len;
4408 }
4409
4410 addr = s->output_offset;
4411 if (s->output_section != NULL)
4412 addr += s->output_section->vma;
4413 minfo ("0x%V %W ", addr, TO_ADDR (s->size));
4414
4415 if (s->fill->size != 0)
4416 {
4417 size_t size;
4418 unsigned char *p;
4419 for (p = s->fill->data, size = s->fill->size; size != 0; p++, size--)
4420 fprintf (config.map_file, "%02x", *p);
4421 }
4422
4423 print_nl ();
4424
4425 print_dot = addr + TO_ADDR (s->size);
4426 }
4427
4428 static void
4429 print_wild_statement (lang_wild_statement_type *w,
4430 lang_output_section_statement_type *os)
4431 {
4432 struct wildcard_list *sec;
4433
4434 print_space ();
4435
4436 if (w->exclude_name_list)
4437 {
4438 name_list *tmp;
4439 minfo ("EXCLUDE_FILE(%s", w->exclude_name_list->name);
4440 for (tmp = w->exclude_name_list->next; tmp; tmp = tmp->next)
4441 minfo (" %s", tmp->name);
4442 minfo (") ");
4443 }
4444
4445 if (w->filenames_sorted)
4446 minfo ("SORT(");
4447 if (w->filename != NULL)
4448 minfo ("%s", w->filename);
4449 else
4450 minfo ("*");
4451 if (w->filenames_sorted)
4452 minfo (")");
4453
4454 minfo ("(");
4455 for (sec = w->section_list; sec; sec = sec->next)
4456 {
4457 if (sec->spec.sorted)
4458 minfo ("SORT(");
4459 if (sec->spec.exclude_name_list != NULL)
4460 {
4461 name_list *tmp;
4462 minfo ("EXCLUDE_FILE(%s", sec->spec.exclude_name_list->name);
4463 for (tmp = sec->spec.exclude_name_list->next; tmp; tmp = tmp->next)
4464 minfo (" %s", tmp->name);
4465 minfo (") ");
4466 }
4467 if (sec->spec.name != NULL)
4468 minfo ("%s", sec->spec.name);
4469 else
4470 minfo ("*");
4471 if (sec->spec.sorted)
4472 minfo (")");
4473 if (sec->next)
4474 minfo (" ");
4475 }
4476 minfo (")");
4477
4478 print_nl ();
4479
4480 print_statement_list (w->children.head, os);
4481 }
4482
4483 /* Print a group statement. */
4484
4485 static void
4486 print_group (lang_group_statement_type *s,
4487 lang_output_section_statement_type *os)
4488 {
4489 fprintf (config.map_file, "START GROUP\n");
4490 print_statement_list (s->children.head, os);
4491 fprintf (config.map_file, "END GROUP\n");
4492 }
4493
4494 /* Print the list of statements in S.
4495 This can be called for any statement type. */
4496
4497 static void
4498 print_statement_list (lang_statement_union_type *s,
4499 lang_output_section_statement_type *os)
4500 {
4501 while (s != NULL)
4502 {
4503 print_statement (s, os);
4504 s = s->header.next;
4505 }
4506 }
4507
4508 /* Print the first statement in statement list S.
4509 This can be called for any statement type. */
4510
4511 static void
4512 print_statement (lang_statement_union_type *s,
4513 lang_output_section_statement_type *os)
4514 {
4515 switch (s->header.type)
4516 {
4517 default:
4518 fprintf (config.map_file, _("Fail with %d\n"), s->header.type);
4519 FAIL ();
4520 break;
4521 case lang_constructors_statement_enum:
4522 if (constructor_list.head != NULL)
4523 {
4524 if (constructors_sorted)
4525 minfo (" SORT (CONSTRUCTORS)\n");
4526 else
4527 minfo (" CONSTRUCTORS\n");
4528 print_statement_list (constructor_list.head, os);
4529 }
4530 break;
4531 case lang_wild_statement_enum:
4532 print_wild_statement (&s->wild_statement, os);
4533 break;
4534 case lang_address_statement_enum:
4535 print_address_statement (&s->address_statement);
4536 break;
4537 case lang_object_symbols_statement_enum:
4538 minfo (" CREATE_OBJECT_SYMBOLS\n");
4539 break;
4540 case lang_fill_statement_enum:
4541 print_fill_statement (&s->fill_statement);
4542 break;
4543 case lang_data_statement_enum:
4544 print_data_statement (&s->data_statement);
4545 break;
4546 case lang_reloc_statement_enum:
4547 print_reloc_statement (&s->reloc_statement);
4548 break;
4549 case lang_input_section_enum:
4550 print_input_section (s->input_section.section, FALSE);
4551 break;
4552 case lang_padding_statement_enum:
4553 print_padding_statement (&s->padding_statement);
4554 break;
4555 case lang_output_section_statement_enum:
4556 print_output_section_statement (&s->output_section_statement);
4557 break;
4558 case lang_assignment_statement_enum:
4559 print_assignment (&s->assignment_statement, os);
4560 break;
4561 case lang_target_statement_enum:
4562 fprintf (config.map_file, "TARGET(%s)\n", s->target_statement.target);
4563 break;
4564 case lang_output_statement_enum:
4565 minfo ("OUTPUT(%s", s->output_statement.name);
4566 if (output_target != NULL)
4567 minfo (" %s", output_target);
4568 minfo (")\n");
4569 break;
4570 case lang_input_statement_enum:
4571 print_input_statement (&s->input_statement);
4572 break;
4573 case lang_group_statement_enum:
4574 print_group (&s->group_statement, os);
4575 break;
4576 case lang_insert_statement_enum:
4577 minfo ("INSERT %s %s\n",
4578 s->insert_statement.is_before ? "BEFORE" : "AFTER",
4579 s->insert_statement.where);
4580 break;
4581 }
4582 }
4583
4584 static void
4585 print_statements (void)
4586 {
4587 print_statement_list (statement_list.head, abs_output_section);
4588 }
4589
4590 /* Print the first N statements in statement list S to STDERR.
4591 If N == 0, nothing is printed.
4592 If N < 0, the entire list is printed.
4593 Intended to be called from GDB. */
4594
4595 void
4596 dprint_statement (lang_statement_union_type *s, int n)
4597 {
4598 FILE *map_save = config.map_file;
4599
4600 config.map_file = stderr;
4601
4602 if (n < 0)
4603 print_statement_list (s, abs_output_section);
4604 else
4605 {
4606 while (s && --n >= 0)
4607 {
4608 print_statement (s, abs_output_section);
4609 s = s->header.next;
4610 }
4611 }
4612
4613 config.map_file = map_save;
4614 }
4615
4616 static void
4617 insert_pad (lang_statement_union_type **ptr,
4618 fill_type *fill,
4619 bfd_size_type alignment_needed,
4620 asection *output_section,
4621 bfd_vma dot)
4622 {
4623 static fill_type zero_fill;
4624 lang_statement_union_type *pad = NULL;
4625
4626 if (ptr != &statement_list.head)
4627 pad = ((lang_statement_union_type *)
4628 ((char *) ptr - offsetof (lang_statement_union_type, header.next)));
4629 if (pad != NULL
4630 && pad->header.type == lang_padding_statement_enum
4631 && pad->padding_statement.output_section == output_section)
4632 {
4633 /* Use the existing pad statement. */
4634 }
4635 else if ((pad = *ptr) != NULL
4636 && pad->header.type == lang_padding_statement_enum
4637 && pad->padding_statement.output_section == output_section)
4638 {
4639 /* Use the existing pad statement. */
4640 }
4641 else
4642 {
4643 /* Make a new padding statement, linked into existing chain. */
4644 pad = (lang_statement_union_type *)
4645 stat_alloc (sizeof (lang_padding_statement_type));
4646 pad->header.next = *ptr;
4647 *ptr = pad;
4648 pad->header.type = lang_padding_statement_enum;
4649 pad->padding_statement.output_section = output_section;
4650 if (fill == NULL)
4651 fill = &zero_fill;
4652 pad->padding_statement.fill = fill;
4653 }
4654 pad->padding_statement.output_offset = dot - output_section->vma;
4655 pad->padding_statement.size = alignment_needed;
4656 output_section->size = TO_SIZE (dot + TO_ADDR (alignment_needed)
4657 - output_section->vma);
4658 }
4659
4660 /* Work out how much this section will move the dot point. */
4661
4662 static bfd_vma
4663 size_input_section
4664 (lang_statement_union_type **this_ptr,
4665 lang_output_section_statement_type *output_section_statement,
4666 fill_type *fill,
4667 bfd_vma dot)
4668 {
4669 lang_input_section_type *is = &((*this_ptr)->input_section);
4670 asection *i = is->section;
4671 asection *o = output_section_statement->bfd_section;
4672
4673 if (i->sec_info_type == SEC_INFO_TYPE_JUST_SYMS)
4674 i->output_offset = i->vma - o->vma;
4675 else if (((i->flags & SEC_EXCLUDE) != 0)
4676 || output_section_statement->ignored)
4677 i->output_offset = dot - o->vma;
4678 else
4679 {
4680 bfd_size_type alignment_needed;
4681
4682 /* Align this section first to the input sections requirement,
4683 then to the output section's requirement. If this alignment
4684 is greater than any seen before, then record it too. Perform
4685 the alignment by inserting a magic 'padding' statement. */
4686
4687 if (output_section_statement->subsection_alignment != -1)
4688 i->alignment_power = output_section_statement->subsection_alignment;
4689
4690 if (o->alignment_power < i->alignment_power)
4691 o->alignment_power = i->alignment_power;
4692
4693 alignment_needed = align_power (dot, i->alignment_power) - dot;
4694
4695 if (alignment_needed != 0)
4696 {
4697 insert_pad (this_ptr, fill, TO_SIZE (alignment_needed), o, dot);
4698 dot += alignment_needed;
4699 }
4700
4701 /* Remember where in the output section this input section goes. */
4702 i->output_offset = dot - o->vma;
4703
4704 /* Mark how big the output section must be to contain this now. */
4705 dot += TO_ADDR (i->size);
4706 o->size = TO_SIZE (dot - o->vma);
4707 }
4708
4709 return dot;
4710 }
4711
4712 struct check_sec
4713 {
4714 asection *sec;
4715 bfd_boolean warned;
4716 };
4717
4718 static int
4719 sort_sections_by_lma (const void *arg1, const void *arg2)
4720 {
4721 const asection *sec1 = ((const struct check_sec *) arg1)->sec;
4722 const asection *sec2 = ((const struct check_sec *) arg2)->sec;
4723
4724 if (sec1->lma < sec2->lma)
4725 return -1;
4726 else if (sec1->lma > sec2->lma)
4727 return 1;
4728 else if (sec1->id < sec2->id)
4729 return -1;
4730 else if (sec1->id > sec2->id)
4731 return 1;
4732
4733 return 0;
4734 }
4735
4736 static int
4737 sort_sections_by_vma (const void *arg1, const void *arg2)
4738 {
4739 const asection *sec1 = ((const struct check_sec *) arg1)->sec;
4740 const asection *sec2 = ((const struct check_sec *) arg2)->sec;
4741
4742 if (sec1->vma < sec2->vma)
4743 return -1;
4744 else if (sec1->vma > sec2->vma)
4745 return 1;
4746 else if (sec1->id < sec2->id)
4747 return -1;
4748 else if (sec1->id > sec2->id)
4749 return 1;
4750
4751 return 0;
4752 }
4753
4754 #define IS_TBSS(s) \
4755 ((s->flags & (SEC_LOAD | SEC_THREAD_LOCAL)) == SEC_THREAD_LOCAL)
4756
4757 #define IGNORE_SECTION(s) \
4758 ((s->flags & SEC_ALLOC) == 0 || IS_TBSS (s))
4759
4760 /* Check to see if any allocated sections overlap with other allocated
4761 sections. This can happen if a linker script specifies the output
4762 section addresses of the two sections. Also check whether any memory
4763 region has overflowed. */
4764
4765 static void
4766 lang_check_section_addresses (void)
4767 {
4768 asection *s, *p;
4769 struct check_sec *sections;
4770 size_t i, count;
4771 bfd_vma addr_mask;
4772 bfd_vma s_start;
4773 bfd_vma s_end;
4774 bfd_vma p_start = 0;
4775 bfd_vma p_end = 0;
4776 lang_memory_region_type *m;
4777 bfd_boolean overlays;
4778
4779 /* Detect address space overflow on allocated sections. */
4780 addr_mask = ((bfd_vma) 1 <<
4781 (bfd_arch_bits_per_address (link_info.output_bfd) - 1)) - 1;
4782 addr_mask = (addr_mask << 1) + 1;
4783 for (s = link_info.output_bfd->sections; s != NULL; s = s->next)
4784 if ((s->flags & SEC_ALLOC) != 0)
4785 {
4786 s_end = (s->vma + s->size) & addr_mask;
4787 if (s_end != 0 && s_end < (s->vma & addr_mask))
4788 einfo (_("%X%P: section %s VMA wraps around address space\n"),
4789 s->name);
4790 else
4791 {
4792 s_end = (s->lma + s->size) & addr_mask;
4793 if (s_end != 0 && s_end < (s->lma & addr_mask))
4794 einfo (_("%X%P: section %s LMA wraps around address space\n"),
4795 s->name);
4796 }
4797 }
4798
4799 if (bfd_count_sections (link_info.output_bfd) <= 1)
4800 return;
4801
4802 count = bfd_count_sections (link_info.output_bfd);
4803 sections = XNEWVEC (struct check_sec, count);
4804
4805 /* Scan all sections in the output list. */
4806 count = 0;
4807 for (s = link_info.output_bfd->sections; s != NULL; s = s->next)
4808 {
4809 if (IGNORE_SECTION (s)
4810 || s->size == 0)
4811 continue;
4812
4813 sections[count].sec = s;
4814 sections[count].warned = FALSE;
4815 count++;
4816 }
4817
4818 if (count <= 1)
4819 {
4820 free (sections);
4821 return;
4822 }
4823
4824 qsort (sections, count, sizeof (*sections), sort_sections_by_lma);
4825
4826 /* First check section LMAs. There should be no overlap of LMAs on
4827 loadable sections, even with overlays. */
4828 for (p = NULL, i = 0; i < count; i++)
4829 {
4830 s = sections[i].sec;
4831 if ((s->flags & SEC_LOAD) != 0)
4832 {
4833 s_start = s->lma;
4834 s_end = s_start + TO_ADDR (s->size) - 1;
4835
4836 /* Look for an overlap. We have sorted sections by lma, so
4837 we know that s_start >= p_start. Besides the obvious
4838 case of overlap when the current section starts before
4839 the previous one ends, we also must have overlap if the
4840 previous section wraps around the address space. */
4841 if (p != NULL
4842 && (s_start <= p_end
4843 || p_end < p_start))
4844 {
4845 einfo (_("%X%P: section %s LMA [%V,%V]"
4846 " overlaps section %s LMA [%V,%V]\n"),
4847 s->name, s_start, s_end, p->name, p_start, p_end);
4848 sections[i].warned = TRUE;
4849 }
4850 p = s;
4851 p_start = s_start;
4852 p_end = s_end;
4853 }
4854 }
4855
4856 /* If any non-zero size allocated section (excluding tbss) starts at
4857 exactly the same VMA as another such section, then we have
4858 overlays. Overlays generated by the OVERLAY keyword will have
4859 this property. It is possible to intentionally generate overlays
4860 that fail this test, but it would be unusual. */
4861 qsort (sections, count, sizeof (*sections), sort_sections_by_vma);
4862 overlays = FALSE;
4863 p_start = sections[0].sec->vma;
4864 for (i = 1; i < count; i++)
4865 {
4866 s_start = sections[i].sec->vma;
4867 if (p_start == s_start)
4868 {
4869 overlays = TRUE;
4870 break;
4871 }
4872 p_start = s_start;
4873 }
4874
4875 /* Now check section VMAs if no overlays were detected. */
4876 if (!overlays)
4877 {
4878 for (p = NULL, i = 0; i < count; i++)
4879 {
4880 s = sections[i].sec;
4881 s_start = s->vma;
4882 s_end = s_start + TO_ADDR (s->size) - 1;
4883
4884 if (p != NULL
4885 && !sections[i].warned
4886 && (s_start <= p_end
4887 || p_end < p_start))
4888 einfo (_("%X%P: section %s VMA [%V,%V]"
4889 " overlaps section %s VMA [%V,%V]\n"),
4890 s->name, s_start, s_end, p->name, p_start, p_end);
4891 p = s;
4892 p_start = s_start;
4893 p_end = s_end;
4894 }
4895 }
4896
4897 free (sections);
4898
4899 /* If any memory region has overflowed, report by how much.
4900 We do not issue this diagnostic for regions that had sections
4901 explicitly placed outside their bounds; os_region_check's
4902 diagnostics are adequate for that case.
4903
4904 FIXME: It is conceivable that m->current - (m->origin + m->length)
4905 might overflow a 32-bit integer. There is, alas, no way to print
4906 a bfd_vma quantity in decimal. */
4907 for (m = lang_memory_region_list; m; m = m->next)
4908 if (m->had_full_message)
4909 einfo (_("%X%P: region `%s' overflowed by %ld bytes\n"),
4910 m->name_list.name, (long)(m->current - (m->origin + m->length)));
4911 }
4912
4913 /* Make sure the new address is within the region. We explicitly permit the
4914 current address to be at the exact end of the region when the address is
4915 non-zero, in case the region is at the end of addressable memory and the
4916 calculation wraps around. */
4917
4918 static void
4919 os_region_check (lang_output_section_statement_type *os,
4920 lang_memory_region_type *region,
4921 etree_type *tree,
4922 bfd_vma rbase)
4923 {
4924 if ((region->current < region->origin
4925 || (region->current - region->origin > region->length))
4926 && ((region->current != region->origin + region->length)
4927 || rbase == 0))
4928 {
4929 if (tree != NULL)
4930 {
4931 einfo (_("%X%P: address 0x%v of %B section `%s'"
4932 " is not within region `%s'\n"),
4933 region->current,
4934 os->bfd_section->owner,
4935 os->bfd_section->name,
4936 region->name_list.name);
4937 }
4938 else if (!region->had_full_message)
4939 {
4940 region->had_full_message = TRUE;
4941
4942 einfo (_("%X%P: %B section `%s' will not fit in region `%s'\n"),
4943 os->bfd_section->owner,
4944 os->bfd_section->name,
4945 region->name_list.name);
4946 }
4947 }
4948 }
4949
4950 /* Set the sizes for all the output sections. */
4951
4952 static bfd_vma
4953 lang_size_sections_1
4954 (lang_statement_union_type **prev,
4955 lang_output_section_statement_type *output_section_statement,
4956 fill_type *fill,
4957 bfd_vma dot,
4958 bfd_boolean *relax,
4959 bfd_boolean check_regions)
4960 {
4961 lang_statement_union_type *s;
4962
4963 /* Size up the sections from their constituent parts. */
4964 for (s = *prev; s != NULL; s = s->header.next)
4965 {
4966 switch (s->header.type)
4967 {
4968 case lang_output_section_statement_enum:
4969 {
4970 bfd_vma newdot, after, dotdelta;
4971 lang_output_section_statement_type *os;
4972 lang_memory_region_type *r;
4973 int section_alignment = 0;
4974
4975 os = &s->output_section_statement;
4976 if (os->constraint == -1)
4977 break;
4978
4979 /* FIXME: We shouldn't need to zero section vmas for ld -r
4980 here, in lang_insert_orphan, or in the default linker scripts.
4981 This is covering for coff backend linker bugs. See PR6945. */
4982 if (os->addr_tree == NULL
4983 && bfd_link_relocatable (&link_info)
4984 && (bfd_get_flavour (link_info.output_bfd)
4985 == bfd_target_coff_flavour))
4986 os->addr_tree = exp_intop (0);
4987 if (os->addr_tree != NULL)
4988 {
4989 os->processed_vma = FALSE;
4990 exp_fold_tree (os->addr_tree, bfd_abs_section_ptr, &dot);
4991
4992 if (expld.result.valid_p)
4993 {
4994 dot = expld.result.value;
4995 if (expld.result.section != NULL)
4996 dot += expld.result.section->vma;
4997 }
4998 else if (expld.phase != lang_mark_phase_enum)
4999 einfo (_("%F%S: non constant or forward reference"
5000 " address expression for section %s\n"),
5001 os->addr_tree, os->name);
5002 }
5003
5004 if (os->bfd_section == NULL)
5005 /* This section was removed or never actually created. */
5006 break;
5007
5008 /* If this is a COFF shared library section, use the size and
5009 address from the input section. FIXME: This is COFF
5010 specific; it would be cleaner if there were some other way
5011 to do this, but nothing simple comes to mind. */
5012 if (((bfd_get_flavour (link_info.output_bfd)
5013 == bfd_target_ecoff_flavour)
5014 || (bfd_get_flavour (link_info.output_bfd)
5015 == bfd_target_coff_flavour))
5016 && (os->bfd_section->flags & SEC_COFF_SHARED_LIBRARY) != 0)
5017 {
5018 asection *input;
5019
5020 if (os->children.head == NULL
5021 || os->children.head->header.next != NULL
5022 || (os->children.head->header.type
5023 != lang_input_section_enum))
5024 einfo (_("%P%X: Internal error on COFF shared library"
5025 " section %s\n"), os->name);
5026
5027 input = os->children.head->input_section.section;
5028 bfd_set_section_vma (os->bfd_section->owner,
5029 os->bfd_section,
5030 bfd_section_vma (input->owner, input));
5031 os->bfd_section->size = input->size;
5032 break;
5033 }
5034
5035 newdot = dot;
5036 dotdelta = 0;
5037 if (bfd_is_abs_section (os->bfd_section))
5038 {
5039 /* No matter what happens, an abs section starts at zero. */
5040 ASSERT (os->bfd_section->vma == 0);
5041 }
5042 else
5043 {
5044 if (os->addr_tree == NULL)
5045 {
5046 /* No address specified for this section, get one
5047 from the region specification. */
5048 if (os->region == NULL
5049 || ((os->bfd_section->flags & (SEC_ALLOC | SEC_LOAD))
5050 && os->region->name_list.name[0] == '*'
5051 && strcmp (os->region->name_list.name,
5052 DEFAULT_MEMORY_REGION) == 0))
5053 {
5054 os->region = lang_memory_default (os->bfd_section);
5055 }
5056
5057 /* If a loadable section is using the default memory
5058 region, and some non default memory regions were
5059 defined, issue an error message. */
5060 if (!os->ignored
5061 && !IGNORE_SECTION (os->bfd_section)
5062 && !bfd_link_relocatable (&link_info)
5063 && check_regions
5064 && strcmp (os->region->name_list.name,
5065 DEFAULT_MEMORY_REGION) == 0
5066 && lang_memory_region_list != NULL
5067 && (strcmp (lang_memory_region_list->name_list.name,
5068 DEFAULT_MEMORY_REGION) != 0
5069 || lang_memory_region_list->next != NULL)
5070 && expld.phase != lang_mark_phase_enum)
5071 {
5072 /* By default this is an error rather than just a
5073 warning because if we allocate the section to the
5074 default memory region we can end up creating an
5075 excessively large binary, or even seg faulting when
5076 attempting to perform a negative seek. See
5077 sources.redhat.com/ml/binutils/2003-04/msg00423.html
5078 for an example of this. This behaviour can be
5079 overridden by the using the --no-check-sections
5080 switch. */
5081 if (command_line.check_section_addresses)
5082 einfo (_("%P%F: error: no memory region specified"
5083 " for loadable section `%s'\n"),
5084 bfd_get_section_name (link_info.output_bfd,
5085 os->bfd_section));
5086 else
5087 einfo (_("%P: warning: no memory region specified"
5088 " for loadable section `%s'\n"),
5089 bfd_get_section_name (link_info.output_bfd,
5090 os->bfd_section));
5091 }
5092
5093 newdot = os->region->current;
5094 section_alignment = os->bfd_section->alignment_power;
5095 }
5096 else
5097 section_alignment = os->section_alignment;
5098
5099 /* Align to what the section needs. */
5100 if (section_alignment > 0)
5101 {
5102 bfd_vma savedot = newdot;
5103 newdot = align_power (newdot, section_alignment);
5104
5105 dotdelta = newdot - savedot;
5106 if (dotdelta != 0
5107 && (config.warn_section_align
5108 || os->addr_tree != NULL)
5109 && expld.phase != lang_mark_phase_enum)
5110 einfo (_("%P: warning: changing start of section"
5111 " %s by %lu bytes\n"),
5112 os->name, (unsigned long) dotdelta);
5113 }
5114
5115 bfd_set_section_vma (0, os->bfd_section, newdot);
5116
5117 os->bfd_section->output_offset = 0;
5118 }
5119
5120 lang_size_sections_1 (&os->children.head, os,
5121 os->fill, newdot, relax, check_regions);
5122
5123 os->processed_vma = TRUE;
5124
5125 if (bfd_is_abs_section (os->bfd_section) || os->ignored)
5126 /* Except for some special linker created sections,
5127 no output section should change from zero size
5128 after strip_excluded_output_sections. A non-zero
5129 size on an ignored section indicates that some
5130 input section was not sized early enough. */
5131 ASSERT (os->bfd_section->size == 0);
5132 else
5133 {
5134 dot = os->bfd_section->vma;
5135
5136 /* Put the section within the requested block size, or
5137 align at the block boundary. */
5138 after = ((dot
5139 + TO_ADDR (os->bfd_section->size)
5140 + os->block_value - 1)
5141 & - (bfd_vma) os->block_value);
5142
5143 os->bfd_section->size = TO_SIZE (after - os->bfd_section->vma);
5144 }
5145
5146 /* Set section lma. */
5147 r = os->region;
5148 if (r == NULL)
5149 r = lang_memory_region_lookup (DEFAULT_MEMORY_REGION, FALSE);
5150
5151 if (os->load_base)
5152 {
5153 bfd_vma lma = exp_get_abs_int (os->load_base, 0, "load base");
5154 os->bfd_section->lma = lma;
5155 }
5156 else if (os->lma_region != NULL)
5157 {
5158 bfd_vma lma = os->lma_region->current;
5159
5160 if (os->align_lma_with_input)
5161 lma += dotdelta;
5162 else
5163 {
5164 /* When LMA_REGION is the same as REGION, align the LMA
5165 as we did for the VMA, possibly including alignment
5166 from the bfd section. If a different region, then
5167 only align according to the value in the output
5168 statement. */
5169 if (os->lma_region != os->region)
5170 section_alignment = os->section_alignment;
5171 if (section_alignment > 0)
5172 lma = align_power (lma, section_alignment);
5173 }
5174 os->bfd_section->lma = lma;
5175 }
5176 else if (r->last_os != NULL
5177 && (os->bfd_section->flags & SEC_ALLOC) != 0)
5178 {
5179 bfd_vma lma;
5180 asection *last;
5181
5182 last = r->last_os->output_section_statement.bfd_section;
5183
5184 /* A backwards move of dot should be accompanied by
5185 an explicit assignment to the section LMA (ie.
5186 os->load_base set) because backwards moves can
5187 create overlapping LMAs. */
5188 if (dot < last->vma
5189 && os->bfd_section->size != 0
5190 && dot + TO_ADDR (os->bfd_section->size) <= last->vma)
5191 {
5192 /* If dot moved backwards then leave lma equal to
5193 vma. This is the old default lma, which might
5194 just happen to work when the backwards move is
5195 sufficiently large. Nag if this changes anything,
5196 so people can fix their linker scripts. */
5197
5198 if (last->vma != last->lma)
5199 einfo (_("%P: warning: dot moved backwards "
5200 "before `%s'\n"), os->name);
5201 }
5202 else
5203 {
5204 /* If this is an overlay, set the current lma to that
5205 at the end of the previous section. */
5206 if (os->sectype == overlay_section)
5207 lma = last->lma + TO_ADDR (last->size);
5208
5209 /* Otherwise, keep the same lma to vma relationship
5210 as the previous section. */
5211 else
5212 lma = dot + last->lma - last->vma;
5213
5214 if (section_alignment > 0)
5215 lma = align_power (lma, section_alignment);
5216 os->bfd_section->lma = lma;
5217 }
5218 }
5219 os->processed_lma = TRUE;
5220
5221 /* Keep track of normal sections using the default
5222 lma region. We use this to set the lma for
5223 following sections. Overlays or other linker
5224 script assignment to lma might mean that the
5225 default lma == vma is incorrect.
5226 To avoid warnings about dot moving backwards when using
5227 -Ttext, don't start tracking sections until we find one
5228 of non-zero size or with lma set differently to vma.
5229 Do this tracking before we short-cut the loop so that we
5230 track changes for the case where the section size is zero,
5231 but the lma is set differently to the vma. This is
5232 important, if an orphan section is placed after an
5233 otherwise empty output section that has an explicit lma
5234 set, we want that lma reflected in the orphans lma. */
5235 if (!IGNORE_SECTION (os->bfd_section)
5236 && (os->bfd_section->size != 0
5237 || (r->last_os == NULL
5238 && os->bfd_section->vma != os->bfd_section->lma)
5239 || (r->last_os != NULL
5240 && dot >= (r->last_os->output_section_statement
5241 .bfd_section->vma)))
5242 && os->lma_region == NULL
5243 && !bfd_link_relocatable (&link_info))
5244 r->last_os = s;
5245
5246 if (bfd_is_abs_section (os->bfd_section) || os->ignored)
5247 break;
5248
5249 /* .tbss sections effectively have zero size. */
5250 if (!IS_TBSS (os->bfd_section)
5251 || bfd_link_relocatable (&link_info))
5252 dotdelta = TO_ADDR (os->bfd_section->size);
5253 else
5254 dotdelta = 0;
5255 dot += dotdelta;
5256
5257 if (os->update_dot_tree != 0)
5258 exp_fold_tree (os->update_dot_tree, bfd_abs_section_ptr, &dot);
5259
5260 /* Update dot in the region ?
5261 We only do this if the section is going to be allocated,
5262 since unallocated sections do not contribute to the region's
5263 overall size in memory. */
5264 if (os->region != NULL
5265 && (os->bfd_section->flags & (SEC_ALLOC | SEC_LOAD)))
5266 {
5267 os->region->current = dot;
5268
5269 if (check_regions)
5270 /* Make sure the new address is within the region. */
5271 os_region_check (os, os->region, os->addr_tree,
5272 os->bfd_section->vma);
5273
5274 if (os->lma_region != NULL && os->lma_region != os->region
5275 && ((os->bfd_section->flags & SEC_LOAD)
5276 || os->align_lma_with_input))
5277 {
5278 os->lma_region->current = os->bfd_section->lma + dotdelta;
5279
5280 if (check_regions)
5281 os_region_check (os, os->lma_region, NULL,
5282 os->bfd_section->lma);
5283 }
5284 }
5285 }
5286 break;
5287
5288 case lang_constructors_statement_enum:
5289 dot = lang_size_sections_1 (&constructor_list.head,
5290 output_section_statement,
5291 fill, dot, relax, check_regions);
5292 break;
5293
5294 case lang_data_statement_enum:
5295 {
5296 unsigned int size = 0;
5297
5298 s->data_statement.output_offset =
5299 dot - output_section_statement->bfd_section->vma;
5300 s->data_statement.output_section =
5301 output_section_statement->bfd_section;
5302
5303 /* We might refer to provided symbols in the expression, and
5304 need to mark them as needed. */
5305 exp_fold_tree (s->data_statement.exp, bfd_abs_section_ptr, &dot);
5306
5307 switch (s->data_statement.type)
5308 {
5309 default:
5310 abort ();
5311 case QUAD:
5312 case SQUAD:
5313 size = QUAD_SIZE;
5314 break;
5315 case LONG:
5316 size = LONG_SIZE;
5317 break;
5318 case SHORT:
5319 size = SHORT_SIZE;
5320 break;
5321 case BYTE:
5322 size = BYTE_SIZE;
5323 break;
5324 }
5325 if (size < TO_SIZE ((unsigned) 1))
5326 size = TO_SIZE ((unsigned) 1);
5327 dot += TO_ADDR (size);
5328 output_section_statement->bfd_section->size
5329 = TO_SIZE (dot - output_section_statement->bfd_section->vma);
5330
5331 }
5332 break;
5333
5334 case lang_reloc_statement_enum:
5335 {
5336 int size;
5337
5338 s->reloc_statement.output_offset =
5339 dot - output_section_statement->bfd_section->vma;
5340 s->reloc_statement.output_section =
5341 output_section_statement->bfd_section;
5342 size = bfd_get_reloc_size (s->reloc_statement.howto);
5343 dot += TO_ADDR (size);
5344 output_section_statement->bfd_section->size
5345 = TO_SIZE (dot - output_section_statement->bfd_section->vma);
5346 }
5347 break;
5348
5349 case lang_wild_statement_enum:
5350 dot = lang_size_sections_1 (&s->wild_statement.children.head,
5351 output_section_statement,
5352 fill, dot, relax, check_regions);
5353 break;
5354
5355 case lang_object_symbols_statement_enum:
5356 link_info.create_object_symbols_section =
5357 output_section_statement->bfd_section;
5358 break;
5359
5360 case lang_output_statement_enum:
5361 case lang_target_statement_enum:
5362 break;
5363
5364 case lang_input_section_enum:
5365 {
5366 asection *i;
5367
5368 i = s->input_section.section;
5369 if (relax)
5370 {
5371 bfd_boolean again;
5372
5373 if (!bfd_relax_section (i->owner, i, &link_info, &again))
5374 einfo (_("%P%F: can't relax section: %E\n"));
5375 if (again)
5376 *relax = TRUE;
5377 }
5378 dot = size_input_section (prev, output_section_statement,
5379 fill, dot);
5380 }
5381 break;
5382
5383 case lang_input_statement_enum:
5384 break;
5385
5386 case lang_fill_statement_enum:
5387 s->fill_statement.output_section =
5388 output_section_statement->bfd_section;
5389
5390 fill = s->fill_statement.fill;
5391 break;
5392
5393 case lang_assignment_statement_enum:
5394 {
5395 bfd_vma newdot = dot;
5396 etree_type *tree = s->assignment_statement.exp;
5397
5398 expld.dataseg.relro = exp_dataseg_relro_none;
5399
5400 exp_fold_tree (tree,
5401 output_section_statement->bfd_section,
5402 &newdot);
5403
5404 if (expld.dataseg.relro == exp_dataseg_relro_start)
5405 {
5406 if (!expld.dataseg.relro_start_stat)
5407 expld.dataseg.relro_start_stat = s;
5408 else
5409 {
5410 ASSERT (expld.dataseg.relro_start_stat == s);
5411 }
5412 }
5413 else if (expld.dataseg.relro == exp_dataseg_relro_end)
5414 {
5415 if (!expld.dataseg.relro_end_stat)
5416 expld.dataseg.relro_end_stat = s;
5417 else
5418 {
5419 ASSERT (expld.dataseg.relro_end_stat == s);
5420 }
5421 }
5422 expld.dataseg.relro = exp_dataseg_relro_none;
5423
5424 /* This symbol may be relative to this section. */
5425 if ((tree->type.node_class == etree_provided
5426 || tree->type.node_class == etree_assign)
5427 && (tree->assign.dst [0] != '.'
5428 || tree->assign.dst [1] != '\0'))
5429 output_section_statement->update_dot = 1;
5430
5431 if (!output_section_statement->ignored)
5432 {
5433 if (output_section_statement == abs_output_section)
5434 {
5435 /* If we don't have an output section, then just adjust
5436 the default memory address. */
5437 lang_memory_region_lookup (DEFAULT_MEMORY_REGION,
5438 FALSE)->current = newdot;
5439 }
5440 else if (newdot != dot)
5441 {
5442 /* Insert a pad after this statement. We can't
5443 put the pad before when relaxing, in case the
5444 assignment references dot. */
5445 insert_pad (&s->header.next, fill, TO_SIZE (newdot - dot),
5446 output_section_statement->bfd_section, dot);
5447
5448 /* Don't neuter the pad below when relaxing. */
5449 s = s->header.next;
5450
5451 /* If dot is advanced, this implies that the section
5452 should have space allocated to it, unless the
5453 user has explicitly stated that the section
5454 should not be allocated. */
5455 if (output_section_statement->sectype != noalloc_section
5456 && (output_section_statement->sectype != noload_section
5457 || (bfd_get_flavour (link_info.output_bfd)
5458 == bfd_target_elf_flavour)))
5459 output_section_statement->bfd_section->flags |= SEC_ALLOC;
5460 }
5461 dot = newdot;
5462 }
5463 }
5464 break;
5465
5466 case lang_padding_statement_enum:
5467 /* If this is the first time lang_size_sections is called,
5468 we won't have any padding statements. If this is the
5469 second or later passes when relaxing, we should allow
5470 padding to shrink. If padding is needed on this pass, it
5471 will be added back in. */
5472 s->padding_statement.size = 0;
5473
5474 /* Make sure output_offset is valid. If relaxation shrinks
5475 the section and this pad isn't needed, it's possible to
5476 have output_offset larger than the final size of the
5477 section. bfd_set_section_contents will complain even for
5478 a pad size of zero. */
5479 s->padding_statement.output_offset
5480 = dot - output_section_statement->bfd_section->vma;
5481 break;
5482
5483 case lang_group_statement_enum:
5484 dot = lang_size_sections_1 (&s->group_statement.children.head,
5485 output_section_statement,
5486 fill, dot, relax, check_regions);
5487 break;
5488
5489 case lang_insert_statement_enum:
5490 break;
5491
5492 /* We can only get here when relaxing is turned on. */
5493 case lang_address_statement_enum:
5494 break;
5495
5496 default:
5497 FAIL ();
5498 break;
5499 }
5500 prev = &s->header.next;
5501 }
5502 return dot;
5503 }
5504
5505 /* Callback routine that is used in _bfd_elf_map_sections_to_segments.
5506 The BFD library has set NEW_SEGMENT to TRUE iff it thinks that
5507 CURRENT_SECTION and PREVIOUS_SECTION ought to be placed into different
5508 segments. We are allowed an opportunity to override this decision. */
5509
5510 bfd_boolean
5511 ldlang_override_segment_assignment (struct bfd_link_info *info ATTRIBUTE_UNUSED,
5512 bfd *abfd ATTRIBUTE_UNUSED,
5513 asection *current_section,
5514 asection *previous_section,
5515 bfd_boolean new_segment)
5516 {
5517 lang_output_section_statement_type *cur;
5518 lang_output_section_statement_type *prev;
5519
5520 /* The checks below are only necessary when the BFD library has decided
5521 that the two sections ought to be placed into the same segment. */
5522 if (new_segment)
5523 return TRUE;
5524
5525 /* Paranoia checks. */
5526 if (current_section == NULL || previous_section == NULL)
5527 return new_segment;
5528
5529 /* If this flag is set, the target never wants code and non-code
5530 sections comingled in the same segment. */
5531 if (config.separate_code
5532 && ((current_section->flags ^ previous_section->flags) & SEC_CODE))
5533 return TRUE;
5534
5535 /* Find the memory regions associated with the two sections.
5536 We call lang_output_section_find() here rather than scanning the list
5537 of output sections looking for a matching section pointer because if
5538 we have a large number of sections then a hash lookup is faster. */
5539 cur = lang_output_section_find (current_section->name);
5540 prev = lang_output_section_find (previous_section->name);
5541
5542 /* More paranoia. */
5543 if (cur == NULL || prev == NULL)
5544 return new_segment;
5545
5546 /* If the regions are different then force the sections to live in
5547 different segments. See the email thread starting at the following
5548 URL for the reasons why this is necessary:
5549 http://sourceware.org/ml/binutils/2007-02/msg00216.html */
5550 return cur->region != prev->region;
5551 }
5552
5553 void
5554 one_lang_size_sections_pass (bfd_boolean *relax, bfd_boolean check_regions)
5555 {
5556 lang_statement_iteration++;
5557 lang_size_sections_1 (&statement_list.head, abs_output_section,
5558 0, 0, relax, check_regions);
5559 }
5560
5561 void
5562 lang_size_sections (bfd_boolean *relax, bfd_boolean check_regions)
5563 {
5564 expld.phase = lang_allocating_phase_enum;
5565 expld.dataseg.phase = exp_dataseg_none;
5566
5567 one_lang_size_sections_pass (relax, check_regions);
5568 if (expld.dataseg.phase == exp_dataseg_end_seen
5569 && link_info.relro && expld.dataseg.relro_end)
5570 {
5571 bfd_vma initial_base, relro_end, desired_end;
5572 asection *sec;
5573
5574 /* Compute the expected PT_GNU_RELRO segment end. */
5575 relro_end = ((expld.dataseg.relro_end + expld.dataseg.pagesize - 1)
5576 & ~(expld.dataseg.pagesize - 1));
5577
5578 /* Adjust by the offset arg of DATA_SEGMENT_RELRO_END. */
5579 desired_end = relro_end - expld.dataseg.relro_offset;
5580
5581 /* For sections in the relro segment.. */
5582 for (sec = link_info.output_bfd->section_last; sec; sec = sec->prev)
5583 if ((sec->flags & SEC_ALLOC) != 0
5584 && sec->vma >= expld.dataseg.base
5585 && sec->vma < expld.dataseg.relro_end - expld.dataseg.relro_offset)
5586 {
5587 /* Where do we want to put this section so that it ends as
5588 desired? */
5589 bfd_vma start, end, bump;
5590
5591 end = start = sec->vma;
5592 if (!IS_TBSS (sec))
5593 end += TO_ADDR (sec->size);
5594 bump = desired_end - end;
5595 /* We'd like to increase START by BUMP, but we must heed
5596 alignment so the increase might be less than optimum. */
5597 start += bump;
5598 start &= ~(((bfd_vma) 1 << sec->alignment_power) - 1);
5599 /* This is now the desired end for the previous section. */
5600 desired_end = start;
5601 }
5602
5603 expld.dataseg.phase = exp_dataseg_relro_adjust;
5604 ASSERT (desired_end >= expld.dataseg.base);
5605 initial_base = expld.dataseg.base;
5606 expld.dataseg.base = desired_end;
5607 lang_reset_memory_regions ();
5608 one_lang_size_sections_pass (relax, check_regions);
5609
5610 if (expld.dataseg.relro_end > relro_end)
5611 {
5612 /* Assignments to dot, or to output section address in a
5613 user script have increased padding over the original.
5614 Revert. */
5615 expld.dataseg.base = initial_base;
5616 lang_reset_memory_regions ();
5617 one_lang_size_sections_pass (relax, check_regions);
5618 }
5619
5620 link_info.relro_start = expld.dataseg.base;
5621 link_info.relro_end = expld.dataseg.relro_end;
5622 }
5623 else if (expld.dataseg.phase == exp_dataseg_end_seen)
5624 {
5625 /* If DATA_SEGMENT_ALIGN DATA_SEGMENT_END pair was seen, check whether
5626 a page could be saved in the data segment. */
5627 bfd_vma first, last;
5628
5629 first = -expld.dataseg.base & (expld.dataseg.pagesize - 1);
5630 last = expld.dataseg.end & (expld.dataseg.pagesize - 1);
5631 if (first && last
5632 && ((expld.dataseg.base & ~(expld.dataseg.pagesize - 1))
5633 != (expld.dataseg.end & ~(expld.dataseg.pagesize - 1)))
5634 && first + last <= expld.dataseg.pagesize)
5635 {
5636 expld.dataseg.phase = exp_dataseg_adjust;
5637 lang_reset_memory_regions ();
5638 one_lang_size_sections_pass (relax, check_regions);
5639 }
5640 else
5641 expld.dataseg.phase = exp_dataseg_done;
5642 }
5643 else
5644 expld.dataseg.phase = exp_dataseg_done;
5645 }
5646
5647 static lang_output_section_statement_type *current_section;
5648 static lang_assignment_statement_type *current_assign;
5649 static bfd_boolean prefer_next_section;
5650
5651 /* Worker function for lang_do_assignments. Recursiveness goes here. */
5652
5653 static bfd_vma
5654 lang_do_assignments_1 (lang_statement_union_type *s,
5655 lang_output_section_statement_type *current_os,
5656 fill_type *fill,
5657 bfd_vma dot,
5658 bfd_boolean *found_end)
5659 {
5660 for (; s != NULL; s = s->header.next)
5661 {
5662 switch (s->header.type)
5663 {
5664 case lang_constructors_statement_enum:
5665 dot = lang_do_assignments_1 (constructor_list.head,
5666 current_os, fill, dot, found_end);
5667 break;
5668
5669 case lang_output_section_statement_enum:
5670 {
5671 lang_output_section_statement_type *os;
5672 bfd_vma newdot;
5673
5674 os = &(s->output_section_statement);
5675 os->after_end = *found_end;
5676 if (os->bfd_section != NULL && !os->ignored)
5677 {
5678 if ((os->bfd_section->flags & SEC_ALLOC) != 0)
5679 {
5680 current_section = os;
5681 prefer_next_section = FALSE;
5682 }
5683 dot = os->bfd_section->vma;
5684 }
5685 newdot = lang_do_assignments_1 (os->children.head,
5686 os, os->fill, dot, found_end);
5687 if (!os->ignored)
5688 {
5689 if (os->bfd_section != NULL)
5690 {
5691 /* .tbss sections effectively have zero size. */
5692 if (!IS_TBSS (os->bfd_section)
5693 || bfd_link_relocatable (&link_info))
5694 dot += TO_ADDR (os->bfd_section->size);
5695
5696 if (os->update_dot_tree != NULL)
5697 exp_fold_tree (os->update_dot_tree,
5698 bfd_abs_section_ptr, &dot);
5699 }
5700 else
5701 dot = newdot;
5702 }
5703 }
5704 break;
5705
5706 case lang_wild_statement_enum:
5707
5708 dot = lang_do_assignments_1 (s->wild_statement.children.head,
5709 current_os, fill, dot, found_end);
5710 break;
5711
5712 case lang_object_symbols_statement_enum:
5713 case lang_output_statement_enum:
5714 case lang_target_statement_enum:
5715 break;
5716
5717 case lang_data_statement_enum:
5718 exp_fold_tree (s->data_statement.exp, bfd_abs_section_ptr, &dot);
5719 if (expld.result.valid_p)
5720 {
5721 s->data_statement.value = expld.result.value;
5722 if (expld.result.section != NULL)
5723 s->data_statement.value += expld.result.section->vma;
5724 }
5725 else if (expld.phase == lang_final_phase_enum)
5726 einfo (_("%F%P: invalid data statement\n"));
5727 {
5728 unsigned int size;
5729 switch (s->data_statement.type)
5730 {
5731 default:
5732 abort ();
5733 case QUAD:
5734 case SQUAD:
5735 size = QUAD_SIZE;
5736 break;
5737 case LONG:
5738 size = LONG_SIZE;
5739 break;
5740 case SHORT:
5741 size = SHORT_SIZE;
5742 break;
5743 case BYTE:
5744 size = BYTE_SIZE;
5745 break;
5746 }
5747 if (size < TO_SIZE ((unsigned) 1))
5748 size = TO_SIZE ((unsigned) 1);
5749 dot += TO_ADDR (size);
5750 }
5751 break;
5752
5753 case lang_reloc_statement_enum:
5754 exp_fold_tree (s->reloc_statement.addend_exp,
5755 bfd_abs_section_ptr, &dot);
5756 if (expld.result.valid_p)
5757 s->reloc_statement.addend_value = expld.result.value;
5758 else if (expld.phase == lang_final_phase_enum)
5759 einfo (_("%F%P: invalid reloc statement\n"));
5760 dot += TO_ADDR (bfd_get_reloc_size (s->reloc_statement.howto));
5761 break;
5762
5763 case lang_input_section_enum:
5764 {
5765 asection *in = s->input_section.section;
5766
5767 if ((in->flags & SEC_EXCLUDE) == 0)
5768 dot += TO_ADDR (in->size);
5769 }
5770 break;
5771
5772 case lang_input_statement_enum:
5773 break;
5774
5775 case lang_fill_statement_enum:
5776 fill = s->fill_statement.fill;
5777 break;
5778
5779 case lang_assignment_statement_enum:
5780 current_assign = &s->assignment_statement;
5781 if (current_assign->exp->type.node_class != etree_assert)
5782 {
5783 const char *p = current_assign->exp->assign.dst;
5784
5785 if (current_os == abs_output_section && p[0] == '.' && p[1] == 0)
5786 prefer_next_section = TRUE;
5787
5788 while (*p == '_')
5789 ++p;
5790 if (strcmp (p, "end") == 0)
5791 *found_end = TRUE;
5792 }
5793 exp_fold_tree (s->assignment_statement.exp,
5794 (current_os->bfd_section != NULL
5795 ? current_os->bfd_section : bfd_und_section_ptr),
5796 &dot);
5797 break;
5798
5799 case lang_padding_statement_enum:
5800 dot += TO_ADDR (s->padding_statement.size);
5801 break;
5802
5803 case lang_group_statement_enum:
5804 dot = lang_do_assignments_1 (s->group_statement.children.head,
5805 current_os, fill, dot, found_end);
5806 break;
5807
5808 case lang_insert_statement_enum:
5809 break;
5810
5811 case lang_address_statement_enum:
5812 break;
5813
5814 default:
5815 FAIL ();
5816 break;
5817 }
5818 }
5819 return dot;
5820 }
5821
5822 void
5823 lang_do_assignments (lang_phase_type phase)
5824 {
5825 bfd_boolean found_end = FALSE;
5826
5827 current_section = NULL;
5828 prefer_next_section = FALSE;
5829 expld.phase = phase;
5830 lang_statement_iteration++;
5831 lang_do_assignments_1 (statement_list.head,
5832 abs_output_section, NULL, 0, &found_end);
5833 }
5834
5835 /* For an assignment statement outside of an output section statement,
5836 choose the best of neighbouring output sections to use for values
5837 of "dot". */
5838
5839 asection *
5840 section_for_dot (void)
5841 {
5842 asection *s;
5843
5844 /* Assignments belong to the previous output section, unless there
5845 has been an assignment to "dot", in which case following
5846 assignments belong to the next output section. (The assumption
5847 is that an assignment to "dot" is setting up the address for the
5848 next output section.) Except that past the assignment to "_end"
5849 we always associate with the previous section. This exception is
5850 for targets like SH that define an alloc .stack or other
5851 weirdness after non-alloc sections. */
5852 if (current_section == NULL || prefer_next_section)
5853 {
5854 lang_statement_union_type *stmt;
5855 lang_output_section_statement_type *os;
5856
5857 for (stmt = (lang_statement_union_type *) current_assign;
5858 stmt != NULL;
5859 stmt = stmt->header.next)
5860 if (stmt->header.type == lang_output_section_statement_enum)
5861 break;
5862
5863 os = &stmt->output_section_statement;
5864 while (os != NULL
5865 && !os->after_end
5866 && (os->bfd_section == NULL
5867 || (os->bfd_section->flags & SEC_EXCLUDE) != 0
5868 || bfd_section_removed_from_list (link_info.output_bfd,
5869 os->bfd_section)))
5870 os = os->next;
5871
5872 if (current_section == NULL || os == NULL || !os->after_end)
5873 {
5874 if (os != NULL)
5875 s = os->bfd_section;
5876 else
5877 s = link_info.output_bfd->section_last;
5878 while (s != NULL
5879 && ((s->flags & SEC_ALLOC) == 0
5880 || (s->flags & SEC_THREAD_LOCAL) != 0))
5881 s = s->prev;
5882 if (s != NULL)
5883 return s;
5884
5885 return bfd_abs_section_ptr;
5886 }
5887 }
5888
5889 s = current_section->bfd_section;
5890
5891 /* The section may have been stripped. */
5892 while (s != NULL
5893 && ((s->flags & SEC_EXCLUDE) != 0
5894 || (s->flags & SEC_ALLOC) == 0
5895 || (s->flags & SEC_THREAD_LOCAL) != 0
5896 || bfd_section_removed_from_list (link_info.output_bfd, s)))
5897 s = s->prev;
5898 if (s == NULL)
5899 s = link_info.output_bfd->sections;
5900 while (s != NULL
5901 && ((s->flags & SEC_ALLOC) == 0
5902 || (s->flags & SEC_THREAD_LOCAL) != 0))
5903 s = s->next;
5904 if (s != NULL)
5905 return s;
5906
5907 return bfd_abs_section_ptr;
5908 }
5909
5910 /* Fix any .startof. or .sizeof. symbols. When the assemblers see the
5911 operator .startof. (section_name), it produces an undefined symbol
5912 .startof.section_name. Similarly, when it sees
5913 .sizeof. (section_name), it produces an undefined symbol
5914 .sizeof.section_name. For all the output sections, we look for
5915 such symbols, and set them to the correct value. */
5916
5917 static void
5918 lang_set_startof (void)
5919 {
5920 asection *s;
5921
5922 if (bfd_link_relocatable (&link_info))
5923 return;
5924
5925 for (s = link_info.output_bfd->sections; s != NULL; s = s->next)
5926 {
5927 const char *secname;
5928 char *buf;
5929 struct bfd_link_hash_entry *h;
5930
5931 secname = bfd_get_section_name (link_info.output_bfd, s);
5932 buf = (char *) xmalloc (10 + strlen (secname));
5933
5934 sprintf (buf, ".startof.%s", secname);
5935 h = bfd_link_hash_lookup (link_info.hash, buf, FALSE, FALSE, TRUE);
5936 if (h != NULL && h->type == bfd_link_hash_undefined)
5937 {
5938 h->type = bfd_link_hash_defined;
5939 h->u.def.value = 0;
5940 h->u.def.section = s;
5941 }
5942
5943 sprintf (buf, ".sizeof.%s", secname);
5944 h = bfd_link_hash_lookup (link_info.hash, buf, FALSE, FALSE, TRUE);
5945 if (h != NULL && h->type == bfd_link_hash_undefined)
5946 {
5947 h->type = bfd_link_hash_defined;
5948 h->u.def.value = TO_ADDR (s->size);
5949 h->u.def.section = bfd_abs_section_ptr;
5950 }
5951
5952 free (buf);
5953 }
5954 }
5955
5956 static void
5957 lang_end (void)
5958 {
5959 struct bfd_link_hash_entry *h;
5960 bfd_boolean warn;
5961
5962 if ((bfd_link_relocatable (&link_info) && !link_info.gc_sections)
5963 || bfd_link_dll (&link_info))
5964 warn = entry_from_cmdline;
5965 else
5966 warn = TRUE;
5967
5968 /* Force the user to specify a root when generating a relocatable with
5969 --gc-sections. */
5970 if (link_info.gc_sections && bfd_link_relocatable (&link_info)
5971 && !(entry_from_cmdline || undef_from_cmdline))
5972 einfo (_("%P%F: gc-sections requires either an entry or "
5973 "an undefined symbol\n"));
5974
5975 if (entry_symbol.name == NULL)
5976 {
5977 /* No entry has been specified. Look for the default entry, but
5978 don't warn if we don't find it. */
5979 entry_symbol.name = entry_symbol_default;
5980 warn = FALSE;
5981 }
5982
5983 h = bfd_link_hash_lookup (link_info.hash, entry_symbol.name,
5984 FALSE, FALSE, TRUE);
5985 if (h != NULL
5986 && (h->type == bfd_link_hash_defined
5987 || h->type == bfd_link_hash_defweak)
5988 && h->u.def.section->output_section != NULL)
5989 {
5990 bfd_vma val;
5991
5992 val = (h->u.def.value
5993 + bfd_get_section_vma (link_info.output_bfd,
5994 h->u.def.section->output_section)
5995 + h->u.def.section->output_offset);
5996 if (!bfd_set_start_address (link_info.output_bfd, val))
5997 einfo (_("%P%F:%s: can't set start address\n"), entry_symbol.name);
5998 }
5999 else
6000 {
6001 bfd_vma val;
6002 const char *send;
6003
6004 /* We couldn't find the entry symbol. Try parsing it as a
6005 number. */
6006 val = bfd_scan_vma (entry_symbol.name, &send, 0);
6007 if (*send == '\0')
6008 {
6009 if (!bfd_set_start_address (link_info.output_bfd, val))
6010 einfo (_("%P%F: can't set start address\n"));
6011 }
6012 else
6013 {
6014 asection *ts;
6015
6016 /* Can't find the entry symbol, and it's not a number. Use
6017 the first address in the text section. */
6018 ts = bfd_get_section_by_name (link_info.output_bfd, entry_section);
6019 if (ts != NULL)
6020 {
6021 if (warn)
6022 einfo (_("%P: warning: cannot find entry symbol %s;"
6023 " defaulting to %V\n"),
6024 entry_symbol.name,
6025 bfd_get_section_vma (link_info.output_bfd, ts));
6026 if (!(bfd_set_start_address
6027 (link_info.output_bfd,
6028 bfd_get_section_vma (link_info.output_bfd, ts))))
6029 einfo (_("%P%F: can't set start address\n"));
6030 }
6031 else
6032 {
6033 if (warn)
6034 einfo (_("%P: warning: cannot find entry symbol %s;"
6035 " not setting start address\n"),
6036 entry_symbol.name);
6037 }
6038 }
6039 }
6040 }
6041
6042 /* This is a small function used when we want to ignore errors from
6043 BFD. */
6044
6045 static void
6046 ignore_bfd_errors (const char *fmt ATTRIBUTE_UNUSED,
6047 va_list ap ATTRIBUTE_UNUSED)
6048 {
6049 /* Don't do anything. */
6050 }
6051
6052 /* Check that the architecture of all the input files is compatible
6053 with the output file. Also call the backend to let it do any
6054 other checking that is needed. */
6055
6056 static void
6057 lang_check (void)
6058 {
6059 lang_statement_union_type *file;
6060 bfd *input_bfd;
6061 const bfd_arch_info_type *compatible;
6062
6063 for (file = file_chain.head; file != NULL; file = file->input_statement.next)
6064 {
6065 #ifdef ENABLE_PLUGINS
6066 /* Don't check format of files claimed by plugin. */
6067 if (file->input_statement.flags.claimed)
6068 continue;
6069 #endif /* ENABLE_PLUGINS */
6070 input_bfd = file->input_statement.the_bfd;
6071 compatible
6072 = bfd_arch_get_compatible (input_bfd, link_info.output_bfd,
6073 command_line.accept_unknown_input_arch);
6074
6075 /* In general it is not possible to perform a relocatable
6076 link between differing object formats when the input
6077 file has relocations, because the relocations in the
6078 input format may not have equivalent representations in
6079 the output format (and besides BFD does not translate
6080 relocs for other link purposes than a final link). */
6081 if ((bfd_link_relocatable (&link_info)
6082 || link_info.emitrelocations)
6083 && (compatible == NULL
6084 || (bfd_get_flavour (input_bfd)
6085 != bfd_get_flavour (link_info.output_bfd)))
6086 && (bfd_get_file_flags (input_bfd) & HAS_RELOC) != 0)
6087 {
6088 einfo (_("%P%F: Relocatable linking with relocations from"
6089 " format %s (%B) to format %s (%B) is not supported\n"),
6090 bfd_get_target (input_bfd), input_bfd,
6091 bfd_get_target (link_info.output_bfd), link_info.output_bfd);
6092 /* einfo with %F exits. */
6093 }
6094
6095 if (compatible == NULL)
6096 {
6097 if (command_line.warn_mismatch)
6098 einfo (_("%P%X: %s architecture of input file `%B'"
6099 " is incompatible with %s output\n"),
6100 bfd_printable_name (input_bfd), input_bfd,
6101 bfd_printable_name (link_info.output_bfd));
6102 }
6103 else if (bfd_count_sections (input_bfd))
6104 {
6105 /* If the input bfd has no contents, it shouldn't set the
6106 private data of the output bfd. */
6107
6108 bfd_error_handler_type pfn = NULL;
6109
6110 /* If we aren't supposed to warn about mismatched input
6111 files, temporarily set the BFD error handler to a
6112 function which will do nothing. We still want to call
6113 bfd_merge_private_bfd_data, since it may set up
6114 information which is needed in the output file. */
6115 if (!command_line.warn_mismatch)
6116 pfn = bfd_set_error_handler (ignore_bfd_errors);
6117 if (!bfd_merge_private_bfd_data (input_bfd, &link_info))
6118 {
6119 if (command_line.warn_mismatch)
6120 einfo (_("%P%X: failed to merge target specific data"
6121 " of file %B\n"), input_bfd);
6122 }
6123 if (!command_line.warn_mismatch)
6124 bfd_set_error_handler (pfn);
6125 }
6126 }
6127 }
6128
6129 /* Look through all the global common symbols and attach them to the
6130 correct section. The -sort-common command line switch may be used
6131 to roughly sort the entries by alignment. */
6132
6133 static void
6134 lang_common (void)
6135 {
6136 if (command_line.inhibit_common_definition)
6137 return;
6138 if (bfd_link_relocatable (&link_info)
6139 && !command_line.force_common_definition)
6140 return;
6141
6142 if (!config.sort_common)
6143 bfd_link_hash_traverse (link_info.hash, lang_one_common, NULL);
6144 else
6145 {
6146 unsigned int power;
6147
6148 if (config.sort_common == sort_descending)
6149 {
6150 for (power = 4; power > 0; power--)
6151 bfd_link_hash_traverse (link_info.hash, lang_one_common, &power);
6152
6153 power = 0;
6154 bfd_link_hash_traverse (link_info.hash, lang_one_common, &power);
6155 }
6156 else
6157 {
6158 for (power = 0; power <= 4; power++)
6159 bfd_link_hash_traverse (link_info.hash, lang_one_common, &power);
6160
6161 power = (unsigned int) -1;
6162 bfd_link_hash_traverse (link_info.hash, lang_one_common, &power);
6163 }
6164 }
6165 }
6166
6167 /* Place one common symbol in the correct section. */
6168
6169 static bfd_boolean
6170 lang_one_common (struct bfd_link_hash_entry *h, void *info)
6171 {
6172 unsigned int power_of_two;
6173 bfd_vma size;
6174 asection *section;
6175
6176 if (h->type != bfd_link_hash_common)
6177 return TRUE;
6178
6179 size = h->u.c.size;
6180 power_of_two = h->u.c.p->alignment_power;
6181
6182 if (config.sort_common == sort_descending
6183 && power_of_two < *(unsigned int *) info)
6184 return TRUE;
6185 else if (config.sort_common == sort_ascending
6186 && power_of_two > *(unsigned int *) info)
6187 return TRUE;
6188
6189 section = h->u.c.p->section;
6190 if (!bfd_define_common_symbol (link_info.output_bfd, &link_info, h))
6191 einfo (_("%P%F: Could not define common symbol `%T': %E\n"),
6192 h->root.string);
6193
6194 if (config.map_file != NULL)
6195 {
6196 static bfd_boolean header_printed;
6197 int len;
6198 char *name;
6199 char buf[50];
6200
6201 if (!header_printed)
6202 {
6203 minfo (_("\nAllocating common symbols\n"));
6204 minfo (_("Common symbol size file\n\n"));
6205 header_printed = TRUE;
6206 }
6207
6208 name = bfd_demangle (link_info.output_bfd, h->root.string,
6209 DMGL_ANSI | DMGL_PARAMS);
6210 if (name == NULL)
6211 {
6212 minfo ("%s", h->root.string);
6213 len = strlen (h->root.string);
6214 }
6215 else
6216 {
6217 minfo ("%s", name);
6218 len = strlen (name);
6219 free (name);
6220 }
6221
6222 if (len >= 19)
6223 {
6224 print_nl ();
6225 len = 0;
6226 }
6227 while (len < 20)
6228 {
6229 print_space ();
6230 ++len;
6231 }
6232
6233 minfo ("0x");
6234 if (size <= 0xffffffff)
6235 sprintf (buf, "%lx", (unsigned long) size);
6236 else
6237 sprintf_vma (buf, size);
6238 minfo ("%s", buf);
6239 len = strlen (buf);
6240
6241 while (len < 16)
6242 {
6243 print_space ();
6244 ++len;
6245 }
6246
6247 minfo ("%B\n", section->owner);
6248 }
6249
6250 return TRUE;
6251 }
6252
6253 /* Handle a single orphan section S, placing the orphan into an appropriate
6254 output section. The effects of the --orphan-handling command line
6255 option are handled here. */
6256
6257 static void
6258 ldlang_place_orphan (asection *s)
6259 {
6260 if (config.orphan_handling == orphan_handling_discard)
6261 {
6262 lang_output_section_statement_type *os;
6263 os = lang_output_section_statement_lookup (DISCARD_SECTION_NAME, 0,
6264 TRUE);
6265 if (os->addr_tree == NULL
6266 && (bfd_link_relocatable (&link_info)
6267 || (s->flags & (SEC_LOAD | SEC_ALLOC)) == 0))
6268 os->addr_tree = exp_intop (0);
6269 lang_add_section (&os->children, s, NULL, os);
6270 }
6271 else
6272 {
6273 lang_output_section_statement_type *os;
6274 const char *name = s->name;
6275 int constraint = 0;
6276
6277 if (config.orphan_handling == orphan_handling_error)
6278 einfo ("%X%P: error: unplaced orphan section `%A' from `%B'.\n",
6279 s, s->owner);
6280
6281 if (config.unique_orphan_sections || unique_section_p (s, NULL))
6282 constraint = SPECIAL;
6283
6284 os = ldemul_place_orphan (s, name, constraint);
6285 if (os == NULL)
6286 {
6287 os = lang_output_section_statement_lookup (name, constraint, TRUE);
6288 if (os->addr_tree == NULL
6289 && (bfd_link_relocatable (&link_info)
6290 || (s->flags & (SEC_LOAD | SEC_ALLOC)) == 0))
6291 os->addr_tree = exp_intop (0);
6292 lang_add_section (&os->children, s, NULL, os);
6293 }
6294
6295 if (config.orphan_handling == orphan_handling_warn)
6296 einfo ("%P: warning: orphan section `%A' from `%B' being "
6297 "placed in section `%s'.\n",
6298 s, s->owner, os->name);
6299 }
6300 }
6301
6302 /* Run through the input files and ensure that every input section has
6303 somewhere to go. If one is found without a destination then create
6304 an input request and place it into the statement tree. */
6305
6306 static void
6307 lang_place_orphans (void)
6308 {
6309 LANG_FOR_EACH_INPUT_STATEMENT (file)
6310 {
6311 asection *s;
6312
6313 for (s = file->the_bfd->sections; s != NULL; s = s->next)
6314 {
6315 if (s->output_section == NULL)
6316 {
6317 /* This section of the file is not attached, root
6318 around for a sensible place for it to go. */
6319
6320 if (file->flags.just_syms)
6321 bfd_link_just_syms (file->the_bfd, s, &link_info);
6322 else if ((s->flags & SEC_EXCLUDE) != 0)
6323 s->output_section = bfd_abs_section_ptr;
6324 else if (strcmp (s->name, "COMMON") == 0)
6325 {
6326 /* This is a lonely common section which must have
6327 come from an archive. We attach to the section
6328 with the wildcard. */
6329 if (!bfd_link_relocatable (&link_info)
6330 || command_line.force_common_definition)
6331 {
6332 if (default_common_section == NULL)
6333 default_common_section
6334 = lang_output_section_statement_lookup (".bss", 0,
6335 TRUE);
6336 lang_add_section (&default_common_section->children, s,
6337 NULL, default_common_section);
6338 }
6339 }
6340 else
6341 ldlang_place_orphan (s);
6342 }
6343 }
6344 }
6345 }
6346
6347 void
6348 lang_set_flags (lang_memory_region_type *ptr, const char *flags, int invert)
6349 {
6350 flagword *ptr_flags;
6351
6352 ptr_flags = invert ? &ptr->not_flags : &ptr->flags;
6353
6354 while (*flags)
6355 {
6356 switch (*flags)
6357 {
6358 /* PR 17900: An exclamation mark in the attributes reverses
6359 the sense of any of the attributes that follow. */
6360 case '!':
6361 invert = !invert;
6362 ptr_flags = invert ? &ptr->not_flags : &ptr->flags;
6363 break;
6364
6365 case 'A': case 'a':
6366 *ptr_flags |= SEC_ALLOC;
6367 break;
6368
6369 case 'R': case 'r':
6370 *ptr_flags |= SEC_READONLY;
6371 break;
6372
6373 case 'W': case 'w':
6374 *ptr_flags |= SEC_DATA;
6375 break;
6376
6377 case 'X': case 'x':
6378 *ptr_flags |= SEC_CODE;
6379 break;
6380
6381 case 'L': case 'l':
6382 case 'I': case 'i':
6383 *ptr_flags |= SEC_LOAD;
6384 break;
6385
6386 default:
6387 einfo (_("%P%F: invalid character %c (%d) in flags\n"),
6388 *flags, *flags);
6389 break;
6390 }
6391 flags++;
6392 }
6393 }
6394
6395 /* Call a function on each input file. This function will be called
6396 on an archive, but not on the elements. */
6397
6398 void
6399 lang_for_each_input_file (void (*func) (lang_input_statement_type *))
6400 {
6401 lang_input_statement_type *f;
6402
6403 for (f = (lang_input_statement_type *) input_file_chain.head;
6404 f != NULL;
6405 f = (lang_input_statement_type *) f->next_real_file)
6406 func (f);
6407 }
6408
6409 /* Call a function on each file. The function will be called on all
6410 the elements of an archive which are included in the link, but will
6411 not be called on the archive file itself. */
6412
6413 void
6414 lang_for_each_file (void (*func) (lang_input_statement_type *))
6415 {
6416 LANG_FOR_EACH_INPUT_STATEMENT (f)
6417 {
6418 func (f);
6419 }
6420 }
6421
6422 void
6423 ldlang_add_file (lang_input_statement_type *entry)
6424 {
6425 lang_statement_append (&file_chain,
6426 (lang_statement_union_type *) entry,
6427 &entry->next);
6428
6429 /* The BFD linker needs to have a list of all input BFDs involved in
6430 a link. */
6431 ASSERT (entry->the_bfd->link.next == NULL);
6432 ASSERT (entry->the_bfd != link_info.output_bfd);
6433
6434 *link_info.input_bfds_tail = entry->the_bfd;
6435 link_info.input_bfds_tail = &entry->the_bfd->link.next;
6436 entry->the_bfd->usrdata = entry;
6437 bfd_set_gp_size (entry->the_bfd, g_switch_value);
6438
6439 /* Look through the sections and check for any which should not be
6440 included in the link. We need to do this now, so that we can
6441 notice when the backend linker tries to report multiple
6442 definition errors for symbols which are in sections we aren't
6443 going to link. FIXME: It might be better to entirely ignore
6444 symbols which are defined in sections which are going to be
6445 discarded. This would require modifying the backend linker for
6446 each backend which might set the SEC_LINK_ONCE flag. If we do
6447 this, we should probably handle SEC_EXCLUDE in the same way. */
6448
6449 bfd_map_over_sections (entry->the_bfd, section_already_linked, entry);
6450 }
6451
6452 void
6453 lang_add_output (const char *name, int from_script)
6454 {
6455 /* Make -o on command line override OUTPUT in script. */
6456 if (!had_output_filename || !from_script)
6457 {
6458 output_filename = name;
6459 had_output_filename = TRUE;
6460 }
6461 }
6462
6463 static int
6464 topower (int x)
6465 {
6466 unsigned int i = 1;
6467 int l;
6468
6469 if (x < 0)
6470 return -1;
6471
6472 for (l = 0; l < 32; l++)
6473 {
6474 if (i >= (unsigned int) x)
6475 return l;
6476 i <<= 1;
6477 }
6478
6479 return 0;
6480 }
6481
6482 lang_output_section_statement_type *
6483 lang_enter_output_section_statement (const char *output_section_statement_name,
6484 etree_type *address_exp,
6485 enum section_type sectype,
6486 etree_type *align,
6487 etree_type *subalign,
6488 etree_type *ebase,
6489 int constraint,
6490 int align_with_input)
6491 {
6492 lang_output_section_statement_type *os;
6493
6494 os = lang_output_section_statement_lookup (output_section_statement_name,
6495 constraint, TRUE);
6496 current_section = os;
6497
6498 if (os->addr_tree == NULL)
6499 {
6500 os->addr_tree = address_exp;
6501 }
6502 os->sectype = sectype;
6503 if (sectype != noload_section)
6504 os->flags = SEC_NO_FLAGS;
6505 else
6506 os->flags = SEC_NEVER_LOAD;
6507 os->block_value = 1;
6508
6509 /* Make next things chain into subchain of this. */
6510 push_stat_ptr (&os->children);
6511
6512 os->align_lma_with_input = align_with_input == ALIGN_WITH_INPUT;
6513 if (os->align_lma_with_input && align != NULL)
6514 einfo (_("%F%P:%S: error: align with input and explicit align specified\n"),
6515 NULL);
6516
6517 os->subsection_alignment =
6518 topower (exp_get_value_int (subalign, -1, "subsection alignment"));
6519 os->section_alignment =
6520 topower (exp_get_value_int (align, -1, "section alignment"));
6521
6522 os->load_base = ebase;
6523 return os;
6524 }
6525
6526 void
6527 lang_final (void)
6528 {
6529 lang_output_statement_type *new_stmt;
6530
6531 new_stmt = new_stat (lang_output_statement, stat_ptr);
6532 new_stmt->name = output_filename;
6533 }
6534
6535 /* Reset the current counters in the regions. */
6536
6537 void
6538 lang_reset_memory_regions (void)
6539 {
6540 lang_memory_region_type *p = lang_memory_region_list;
6541 asection *o;
6542 lang_output_section_statement_type *os;
6543
6544 for (p = lang_memory_region_list; p != NULL; p = p->next)
6545 {
6546 p->current = p->origin;
6547 p->last_os = NULL;
6548 }
6549
6550 for (os = &lang_output_section_statement.head->output_section_statement;
6551 os != NULL;
6552 os = os->next)
6553 {
6554 os->processed_vma = FALSE;
6555 os->processed_lma = FALSE;
6556 }
6557
6558 for (o = link_info.output_bfd->sections; o != NULL; o = o->next)
6559 {
6560 /* Save the last size for possible use by bfd_relax_section. */
6561 o->rawsize = o->size;
6562 o->size = 0;
6563 }
6564 }
6565
6566 /* Worker for lang_gc_sections_1. */
6567
6568 static void
6569 gc_section_callback (lang_wild_statement_type *ptr,
6570 struct wildcard_list *sec ATTRIBUTE_UNUSED,
6571 asection *section,
6572 struct flag_info *sflag_info ATTRIBUTE_UNUSED,
6573 lang_input_statement_type *file ATTRIBUTE_UNUSED,
6574 void *data ATTRIBUTE_UNUSED)
6575 {
6576 /* If the wild pattern was marked KEEP, the member sections
6577 should be as well. */
6578 if (ptr->keep_sections)
6579 section->flags |= SEC_KEEP;
6580 }
6581
6582 /* Iterate over sections marking them against GC. */
6583
6584 static void
6585 lang_gc_sections_1 (lang_statement_union_type *s)
6586 {
6587 for (; s != NULL; s = s->header.next)
6588 {
6589 switch (s->header.type)
6590 {
6591 case lang_wild_statement_enum:
6592 walk_wild (&s->wild_statement, gc_section_callback, NULL);
6593 break;
6594 case lang_constructors_statement_enum:
6595 lang_gc_sections_1 (constructor_list.head);
6596 break;
6597 case lang_output_section_statement_enum:
6598 lang_gc_sections_1 (s->output_section_statement.children.head);
6599 break;
6600 case lang_group_statement_enum:
6601 lang_gc_sections_1 (s->group_statement.children.head);
6602 break;
6603 default:
6604 break;
6605 }
6606 }
6607 }
6608
6609 static void
6610 lang_gc_sections (void)
6611 {
6612 /* Keep all sections so marked in the link script. */
6613 lang_gc_sections_1 (statement_list.head);
6614
6615 /* SEC_EXCLUDE is ignored when doing a relocatable link, except in
6616 the special case of debug info. (See bfd/stabs.c)
6617 Twiddle the flag here, to simplify later linker code. */
6618 if (bfd_link_relocatable (&link_info))
6619 {
6620 LANG_FOR_EACH_INPUT_STATEMENT (f)
6621 {
6622 asection *sec;
6623 #ifdef ENABLE_PLUGINS
6624 if (f->flags.claimed)
6625 continue;
6626 #endif
6627 for (sec = f->the_bfd->sections; sec != NULL; sec = sec->next)
6628 if ((sec->flags & SEC_DEBUGGING) == 0)
6629 sec->flags &= ~SEC_EXCLUDE;
6630 }
6631 }
6632
6633 if (link_info.gc_sections)
6634 bfd_gc_sections (link_info.output_bfd, &link_info);
6635 }
6636
6637 /* Worker for lang_find_relro_sections_1. */
6638
6639 static void
6640 find_relro_section_callback (lang_wild_statement_type *ptr ATTRIBUTE_UNUSED,
6641 struct wildcard_list *sec ATTRIBUTE_UNUSED,
6642 asection *section,
6643 struct flag_info *sflag_info ATTRIBUTE_UNUSED,
6644 lang_input_statement_type *file ATTRIBUTE_UNUSED,
6645 void *data)
6646 {
6647 /* Discarded, excluded and ignored sections effectively have zero
6648 size. */
6649 if (section->output_section != NULL
6650 && section->output_section->owner == link_info.output_bfd
6651 && (section->output_section->flags & SEC_EXCLUDE) == 0
6652 && !IGNORE_SECTION (section)
6653 && section->size != 0)
6654 {
6655 bfd_boolean *has_relro_section = (bfd_boolean *) data;
6656 *has_relro_section = TRUE;
6657 }
6658 }
6659
6660 /* Iterate over sections for relro sections. */
6661
6662 static void
6663 lang_find_relro_sections_1 (lang_statement_union_type *s,
6664 bfd_boolean *has_relro_section)
6665 {
6666 if (*has_relro_section)
6667 return;
6668
6669 for (; s != NULL; s = s->header.next)
6670 {
6671 if (s == expld.dataseg.relro_end_stat)
6672 break;
6673
6674 switch (s->header.type)
6675 {
6676 case lang_wild_statement_enum:
6677 walk_wild (&s->wild_statement,
6678 find_relro_section_callback,
6679 has_relro_section);
6680 break;
6681 case lang_constructors_statement_enum:
6682 lang_find_relro_sections_1 (constructor_list.head,
6683 has_relro_section);
6684 break;
6685 case lang_output_section_statement_enum:
6686 lang_find_relro_sections_1 (s->output_section_statement.children.head,
6687 has_relro_section);
6688 break;
6689 case lang_group_statement_enum:
6690 lang_find_relro_sections_1 (s->group_statement.children.head,
6691 has_relro_section);
6692 break;
6693 default:
6694 break;
6695 }
6696 }
6697 }
6698
6699 static void
6700 lang_find_relro_sections (void)
6701 {
6702 bfd_boolean has_relro_section = FALSE;
6703
6704 /* Check all sections in the link script. */
6705
6706 lang_find_relro_sections_1 (expld.dataseg.relro_start_stat,
6707 &has_relro_section);
6708
6709 if (!has_relro_section)
6710 link_info.relro = FALSE;
6711 }
6712
6713 /* Relax all sections until bfd_relax_section gives up. */
6714
6715 void
6716 lang_relax_sections (bfd_boolean need_layout)
6717 {
6718 if (RELAXATION_ENABLED)
6719 {
6720 /* We may need more than one relaxation pass. */
6721 int i = link_info.relax_pass;
6722
6723 /* The backend can use it to determine the current pass. */
6724 link_info.relax_pass = 0;
6725
6726 while (i--)
6727 {
6728 /* Keep relaxing until bfd_relax_section gives up. */
6729 bfd_boolean relax_again;
6730
6731 link_info.relax_trip = -1;
6732 do
6733 {
6734 link_info.relax_trip++;
6735
6736 /* Note: pe-dll.c does something like this also. If you find
6737 you need to change this code, you probably need to change
6738 pe-dll.c also. DJ */
6739
6740 /* Do all the assignments with our current guesses as to
6741 section sizes. */
6742 lang_do_assignments (lang_assigning_phase_enum);
6743
6744 /* We must do this after lang_do_assignments, because it uses
6745 size. */
6746 lang_reset_memory_regions ();
6747
6748 /* Perform another relax pass - this time we know where the
6749 globals are, so can make a better guess. */
6750 relax_again = FALSE;
6751 lang_size_sections (&relax_again, FALSE);
6752 }
6753 while (relax_again);
6754
6755 link_info.relax_pass++;
6756 }
6757 need_layout = TRUE;
6758 }
6759
6760 if (need_layout)
6761 {
6762 /* Final extra sizing to report errors. */
6763 lang_do_assignments (lang_assigning_phase_enum);
6764 lang_reset_memory_regions ();
6765 lang_size_sections (NULL, TRUE);
6766 }
6767 }
6768
6769 #ifdef ENABLE_PLUGINS
6770 /* Find the insert point for the plugin's replacement files. We
6771 place them after the first claimed real object file, or if the
6772 first claimed object is an archive member, after the last real
6773 object file immediately preceding the archive. In the event
6774 no objects have been claimed at all, we return the first dummy
6775 object file on the list as the insert point; that works, but
6776 the callee must be careful when relinking the file_chain as it
6777 is not actually on that chain, only the statement_list and the
6778 input_file list; in that case, the replacement files must be
6779 inserted at the head of the file_chain. */
6780
6781 static lang_input_statement_type *
6782 find_replacements_insert_point (void)
6783 {
6784 lang_input_statement_type *claim1, *lastobject;
6785 lastobject = &input_file_chain.head->input_statement;
6786 for (claim1 = &file_chain.head->input_statement;
6787 claim1 != NULL;
6788 claim1 = &claim1->next->input_statement)
6789 {
6790 if (claim1->flags.claimed)
6791 return claim1->flags.claim_archive ? lastobject : claim1;
6792 /* Update lastobject if this is a real object file. */
6793 if (claim1->the_bfd != NULL && claim1->the_bfd->my_archive == NULL)
6794 lastobject = claim1;
6795 }
6796 /* No files were claimed by the plugin. Choose the last object
6797 file found on the list (maybe the first, dummy entry) as the
6798 insert point. */
6799 return lastobject;
6800 }
6801
6802 /* Insert SRCLIST into DESTLIST after given element by chaining
6803 on FIELD as the next-pointer. (Counterintuitively does not need
6804 a pointer to the actual after-node itself, just its chain field.) */
6805
6806 static void
6807 lang_list_insert_after (lang_statement_list_type *destlist,
6808 lang_statement_list_type *srclist,
6809 lang_statement_union_type **field)
6810 {
6811 *(srclist->tail) = *field;
6812 *field = srclist->head;
6813 if (destlist->tail == field)
6814 destlist->tail = srclist->tail;
6815 }
6816
6817 /* Detach new nodes added to DESTLIST since the time ORIGLIST
6818 was taken as a copy of it and leave them in ORIGLIST. */
6819
6820 static void
6821 lang_list_remove_tail (lang_statement_list_type *destlist,
6822 lang_statement_list_type *origlist)
6823 {
6824 union lang_statement_union **savetail;
6825 /* Check that ORIGLIST really is an earlier state of DESTLIST. */
6826 ASSERT (origlist->head == destlist->head);
6827 savetail = origlist->tail;
6828 origlist->head = *(savetail);
6829 origlist->tail = destlist->tail;
6830 destlist->tail = savetail;
6831 *savetail = NULL;
6832 }
6833 #endif /* ENABLE_PLUGINS */
6834
6835 /* Add NAME to the list of garbage collection entry points. */
6836
6837 void
6838 lang_add_gc_name (const char *name)
6839 {
6840 struct bfd_sym_chain *sym;
6841
6842 if (name == NULL)
6843 return;
6844
6845 sym = (struct bfd_sym_chain *) stat_alloc (sizeof (*sym));
6846
6847 sym->next = link_info.gc_sym_list;
6848 sym->name = name;
6849 link_info.gc_sym_list = sym;
6850 }
6851
6852 /* Check relocations. */
6853
6854 static void
6855 lang_check_relocs (void)
6856 {
6857 if (link_info.check_relocs_after_open_input)
6858 {
6859 bfd *abfd;
6860
6861 for (abfd = link_info.input_bfds;
6862 abfd != (bfd *) NULL; abfd = abfd->link.next)
6863 if (!bfd_link_check_relocs (abfd, &link_info))
6864 {
6865 /* No object output, fail return. */
6866 config.make_executable = FALSE;
6867 /* Note: we do not abort the loop, but rather
6868 continue the scan in case there are other
6869 bad relocations to report. */
6870 }
6871 }
6872 }
6873
6874 /* Look through all output sections looking for places where we can
6875 propagate forward the lma region. */
6876
6877 static void
6878 lang_propagate_lma_regions (void)
6879 {
6880 lang_output_section_statement_type *os;
6881
6882 for (os = &lang_output_section_statement.head->output_section_statement;
6883 os != NULL;
6884 os = os->next)
6885 {
6886 if (os->prev != NULL
6887 && os->lma_region == NULL
6888 && os->load_base == NULL
6889 && os->addr_tree == NULL
6890 && os->region == os->prev->region)
6891 os->lma_region = os->prev->lma_region;
6892 }
6893 }
6894
6895 void
6896 lang_process (void)
6897 {
6898 /* Finalize dynamic list. */
6899 if (link_info.dynamic_list)
6900 lang_finalize_version_expr_head (&link_info.dynamic_list->head);
6901
6902 current_target = default_target;
6903
6904 /* Open the output file. */
6905 lang_for_each_statement (ldlang_open_output);
6906 init_opb ();
6907
6908 ldemul_create_output_section_statements ();
6909
6910 /* Add to the hash table all undefineds on the command line. */
6911 lang_place_undefineds ();
6912
6913 if (!bfd_section_already_linked_table_init ())
6914 einfo (_("%P%F: Failed to create hash table\n"));
6915
6916 /* Create a bfd for each input file. */
6917 current_target = default_target;
6918 open_input_bfds (statement_list.head, OPEN_BFD_NORMAL);
6919
6920 #ifdef ENABLE_PLUGINS
6921 if (link_info.lto_plugin_active)
6922 {
6923 lang_statement_list_type added;
6924 lang_statement_list_type files, inputfiles;
6925
6926 /* Now all files are read, let the plugin(s) decide if there
6927 are any more to be added to the link before we call the
6928 emulation's after_open hook. We create a private list of
6929 input statements for this purpose, which we will eventually
6930 insert into the global statement list after the first claimed
6931 file. */
6932 added = *stat_ptr;
6933 /* We need to manipulate all three chains in synchrony. */
6934 files = file_chain;
6935 inputfiles = input_file_chain;
6936 if (plugin_call_all_symbols_read ())
6937 einfo (_("%P%F: %s: plugin reported error after all symbols read\n"),
6938 plugin_error_plugin ());
6939 /* Open any newly added files, updating the file chains. */
6940 open_input_bfds (*added.tail, OPEN_BFD_NORMAL);
6941 /* Restore the global list pointer now they have all been added. */
6942 lang_list_remove_tail (stat_ptr, &added);
6943 /* And detach the fresh ends of the file lists. */
6944 lang_list_remove_tail (&file_chain, &files);
6945 lang_list_remove_tail (&input_file_chain, &inputfiles);
6946 /* Were any new files added? */
6947 if (added.head != NULL)
6948 {
6949 /* If so, we will insert them into the statement list immediately
6950 after the first input file that was claimed by the plugin. */
6951 plugin_insert = find_replacements_insert_point ();
6952 /* If a plugin adds input files without having claimed any, we
6953 don't really have a good idea where to place them. Just putting
6954 them at the start or end of the list is liable to leave them
6955 outside the crtbegin...crtend range. */
6956 ASSERT (plugin_insert != NULL);
6957 /* Splice the new statement list into the old one. */
6958 lang_list_insert_after (stat_ptr, &added,
6959 &plugin_insert->header.next);
6960 /* Likewise for the file chains. */
6961 lang_list_insert_after (&input_file_chain, &inputfiles,
6962 &plugin_insert->next_real_file);
6963 /* We must be careful when relinking file_chain; we may need to
6964 insert the new files at the head of the list if the insert
6965 point chosen is the dummy first input file. */
6966 if (plugin_insert->filename)
6967 lang_list_insert_after (&file_chain, &files, &plugin_insert->next);
6968 else
6969 lang_list_insert_after (&file_chain, &files, &file_chain.head);
6970
6971 /* Rescan archives in case new undefined symbols have appeared. */
6972 open_input_bfds (statement_list.head, OPEN_BFD_RESCAN);
6973 }
6974 }
6975 #endif /* ENABLE_PLUGINS */
6976
6977 /* Make sure that nobody has tried to add a symbol to this list
6978 before now. */
6979 ASSERT (link_info.gc_sym_list == NULL);
6980
6981 link_info.gc_sym_list = &entry_symbol;
6982
6983 if (entry_symbol.name == NULL)
6984 {
6985 link_info.gc_sym_list = ldlang_undef_chain_list_head;
6986
6987 /* entry_symbol is normally initialied by a ENTRY definition in the
6988 linker script or the -e command line option. But if neither of
6989 these have been used, the target specific backend may still have
6990 provided an entry symbol via a call to lang_default_entry().
6991 Unfortunately this value will not be processed until lang_end()
6992 is called, long after this function has finished. So detect this
6993 case here and add the target's entry symbol to the list of starting
6994 points for garbage collection resolution. */
6995 lang_add_gc_name (entry_symbol_default);
6996 }
6997
6998 lang_add_gc_name (link_info.init_function);
6999 lang_add_gc_name (link_info.fini_function);
7000
7001 ldemul_after_open ();
7002 if (config.map_file != NULL)
7003 lang_print_asneeded ();
7004
7005 bfd_section_already_linked_table_free ();
7006
7007 /* Make sure that we're not mixing architectures. We call this
7008 after all the input files have been opened, but before we do any
7009 other processing, so that any operations merge_private_bfd_data
7010 does on the output file will be known during the rest of the
7011 link. */
7012 lang_check ();
7013
7014 /* Handle .exports instead of a version script if we're told to do so. */
7015 if (command_line.version_exports_section)
7016 lang_do_version_exports_section ();
7017
7018 /* Build all sets based on the information gathered from the input
7019 files. */
7020 ldctor_build_sets ();
7021
7022 /* PR 13683: We must rerun the assignments prior to running garbage
7023 collection in order to make sure that all symbol aliases are resolved. */
7024 lang_do_assignments (lang_mark_phase_enum);
7025
7026 lang_do_memory_regions();
7027 expld.phase = lang_first_phase_enum;
7028
7029 /* Size up the common data. */
7030 lang_common ();
7031
7032 /* Remove unreferenced sections if asked to. */
7033 lang_gc_sections ();
7034
7035 /* Check relocations. */
7036 lang_check_relocs ();
7037
7038 /* Update wild statements. */
7039 update_wild_statements (statement_list.head);
7040
7041 /* Run through the contours of the script and attach input sections
7042 to the correct output sections. */
7043 lang_statement_iteration++;
7044 map_input_to_output_sections (statement_list.head, NULL, NULL);
7045
7046 process_insert_statements ();
7047
7048 /* Find any sections not attached explicitly and handle them. */
7049 lang_place_orphans ();
7050
7051 if (!bfd_link_relocatable (&link_info))
7052 {
7053 asection *found;
7054
7055 /* Merge SEC_MERGE sections. This has to be done after GC of
7056 sections, so that GCed sections are not merged, but before
7057 assigning dynamic symbols, since removing whole input sections
7058 is hard then. */
7059 bfd_merge_sections (link_info.output_bfd, &link_info);
7060
7061 /* Look for a text section and set the readonly attribute in it. */
7062 found = bfd_get_section_by_name (link_info.output_bfd, ".text");
7063
7064 if (found != NULL)
7065 {
7066 if (config.text_read_only)
7067 found->flags |= SEC_READONLY;
7068 else
7069 found->flags &= ~SEC_READONLY;
7070 }
7071 }
7072
7073 /* Copy forward lma regions for output sections in same lma region. */
7074 lang_propagate_lma_regions ();
7075
7076 /* Do anything special before sizing sections. This is where ELF
7077 and other back-ends size dynamic sections. */
7078 ldemul_before_allocation ();
7079
7080 /* We must record the program headers before we try to fix the
7081 section positions, since they will affect SIZEOF_HEADERS. */
7082 lang_record_phdrs ();
7083
7084 /* Check relro sections. */
7085 if (link_info.relro && !bfd_link_relocatable (&link_info))
7086 lang_find_relro_sections ();
7087
7088 /* Size up the sections. */
7089 lang_size_sections (NULL, !RELAXATION_ENABLED);
7090
7091 /* See if anything special should be done now we know how big
7092 everything is. This is where relaxation is done. */
7093 ldemul_after_allocation ();
7094
7095 /* Fix any .startof. or .sizeof. symbols. */
7096 lang_set_startof ();
7097
7098 /* Do all the assignments, now that we know the final resting places
7099 of all the symbols. */
7100 lang_do_assignments (lang_final_phase_enum);
7101
7102 ldemul_finish ();
7103
7104 /* Convert absolute symbols to section relative. */
7105 ldexp_finalize_syms ();
7106
7107 /* Make sure that the section addresses make sense. */
7108 if (command_line.check_section_addresses)
7109 lang_check_section_addresses ();
7110
7111 /* Check any required symbols are known. */
7112 ldlang_check_require_defined_symbols ();
7113
7114 lang_end ();
7115 }
7116
7117 /* EXPORTED TO YACC */
7118
7119 void
7120 lang_add_wild (struct wildcard_spec *filespec,
7121 struct wildcard_list *section_list,
7122 bfd_boolean keep_sections)
7123 {
7124 struct wildcard_list *curr, *next;
7125 lang_wild_statement_type *new_stmt;
7126
7127 /* Reverse the list as the parser puts it back to front. */
7128 for (curr = section_list, section_list = NULL;
7129 curr != NULL;
7130 section_list = curr, curr = next)
7131 {
7132 if (curr->spec.name != NULL && strcmp (curr->spec.name, "COMMON") == 0)
7133 placed_commons = TRUE;
7134
7135 next = curr->next;
7136 curr->next = section_list;
7137 }
7138
7139 if (filespec != NULL && filespec->name != NULL)
7140 {
7141 if (strcmp (filespec->name, "*") == 0)
7142 filespec->name = NULL;
7143 else if (!wildcardp (filespec->name))
7144 lang_has_input_file = TRUE;
7145 }
7146
7147 new_stmt = new_stat (lang_wild_statement, stat_ptr);
7148 new_stmt->filename = NULL;
7149 new_stmt->filenames_sorted = FALSE;
7150 new_stmt->section_flag_list = NULL;
7151 new_stmt->exclude_name_list = NULL;
7152 if (filespec != NULL)
7153 {
7154 new_stmt->filename = filespec->name;
7155 new_stmt->filenames_sorted = filespec->sorted == by_name;
7156 new_stmt->section_flag_list = filespec->section_flag_list;
7157 new_stmt->exclude_name_list = filespec->exclude_name_list;
7158 }
7159 new_stmt->section_list = section_list;
7160 new_stmt->keep_sections = keep_sections;
7161 lang_list_init (&new_stmt->children);
7162 analyze_walk_wild_section_handler (new_stmt);
7163 }
7164
7165 void
7166 lang_section_start (const char *name, etree_type *address,
7167 const segment_type *segment)
7168 {
7169 lang_address_statement_type *ad;
7170
7171 ad = new_stat (lang_address_statement, stat_ptr);
7172 ad->section_name = name;
7173 ad->address = address;
7174 ad->segment = segment;
7175 }
7176
7177 /* Set the start symbol to NAME. CMDLINE is nonzero if this is called
7178 because of a -e argument on the command line, or zero if this is
7179 called by ENTRY in a linker script. Command line arguments take
7180 precedence. */
7181
7182 void
7183 lang_add_entry (const char *name, bfd_boolean cmdline)
7184 {
7185 if (entry_symbol.name == NULL
7186 || cmdline
7187 || !entry_from_cmdline)
7188 {
7189 entry_symbol.name = name;
7190 entry_from_cmdline = cmdline;
7191 }
7192 }
7193
7194 /* Set the default start symbol to NAME. .em files should use this,
7195 not lang_add_entry, to override the use of "start" if neither the
7196 linker script nor the command line specifies an entry point. NAME
7197 must be permanently allocated. */
7198 void
7199 lang_default_entry (const char *name)
7200 {
7201 entry_symbol_default = name;
7202 }
7203
7204 void
7205 lang_add_target (const char *name)
7206 {
7207 lang_target_statement_type *new_stmt;
7208
7209 new_stmt = new_stat (lang_target_statement, stat_ptr);
7210 new_stmt->target = name;
7211 }
7212
7213 void
7214 lang_add_map (const char *name)
7215 {
7216 while (*name)
7217 {
7218 switch (*name)
7219 {
7220 case 'F':
7221 map_option_f = TRUE;
7222 break;
7223 }
7224 name++;
7225 }
7226 }
7227
7228 void
7229 lang_add_fill (fill_type *fill)
7230 {
7231 lang_fill_statement_type *new_stmt;
7232
7233 new_stmt = new_stat (lang_fill_statement, stat_ptr);
7234 new_stmt->fill = fill;
7235 }
7236
7237 void
7238 lang_add_data (int type, union etree_union *exp)
7239 {
7240 lang_data_statement_type *new_stmt;
7241
7242 new_stmt = new_stat (lang_data_statement, stat_ptr);
7243 new_stmt->exp = exp;
7244 new_stmt->type = type;
7245 }
7246
7247 /* Create a new reloc statement. RELOC is the BFD relocation type to
7248 generate. HOWTO is the corresponding howto structure (we could
7249 look this up, but the caller has already done so). SECTION is the
7250 section to generate a reloc against, or NAME is the name of the
7251 symbol to generate a reloc against. Exactly one of SECTION and
7252 NAME must be NULL. ADDEND is an expression for the addend. */
7253
7254 void
7255 lang_add_reloc (bfd_reloc_code_real_type reloc,
7256 reloc_howto_type *howto,
7257 asection *section,
7258 const char *name,
7259 union etree_union *addend)
7260 {
7261 lang_reloc_statement_type *p = new_stat (lang_reloc_statement, stat_ptr);
7262
7263 p->reloc = reloc;
7264 p->howto = howto;
7265 p->section = section;
7266 p->name = name;
7267 p->addend_exp = addend;
7268
7269 p->addend_value = 0;
7270 p->output_section = NULL;
7271 p->output_offset = 0;
7272 }
7273
7274 lang_assignment_statement_type *
7275 lang_add_assignment (etree_type *exp)
7276 {
7277 lang_assignment_statement_type *new_stmt;
7278
7279 new_stmt = new_stat (lang_assignment_statement, stat_ptr);
7280 new_stmt->exp = exp;
7281 return new_stmt;
7282 }
7283
7284 void
7285 lang_add_attribute (enum statement_enum attribute)
7286 {
7287 new_statement (attribute, sizeof (lang_statement_header_type), stat_ptr);
7288 }
7289
7290 void
7291 lang_startup (const char *name)
7292 {
7293 if (first_file->filename != NULL)
7294 {
7295 einfo (_("%P%F: multiple STARTUP files\n"));
7296 }
7297 first_file->filename = name;
7298 first_file->local_sym_name = name;
7299 first_file->flags.real = TRUE;
7300 }
7301
7302 void
7303 lang_float (bfd_boolean maybe)
7304 {
7305 lang_float_flag = maybe;
7306 }
7307
7308
7309 /* Work out the load- and run-time regions from a script statement, and
7310 store them in *LMA_REGION and *REGION respectively.
7311
7312 MEMSPEC is the name of the run-time region, or the value of
7313 DEFAULT_MEMORY_REGION if the statement didn't specify one.
7314 LMA_MEMSPEC is the name of the load-time region, or null if the
7315 statement didn't specify one.HAVE_LMA_P is TRUE if the statement
7316 had an explicit load address.
7317
7318 It is an error to specify both a load region and a load address. */
7319
7320 static void
7321 lang_get_regions (lang_memory_region_type **region,
7322 lang_memory_region_type **lma_region,
7323 const char *memspec,
7324 const char *lma_memspec,
7325 bfd_boolean have_lma,
7326 bfd_boolean have_vma)
7327 {
7328 *lma_region = lang_memory_region_lookup (lma_memspec, FALSE);
7329
7330 /* If no runtime region or VMA has been specified, but the load region
7331 has been specified, then use the load region for the runtime region
7332 as well. */
7333 if (lma_memspec != NULL
7334 && !have_vma
7335 && strcmp (memspec, DEFAULT_MEMORY_REGION) == 0)
7336 *region = *lma_region;
7337 else
7338 *region = lang_memory_region_lookup (memspec, FALSE);
7339
7340 if (have_lma && lma_memspec != 0)
7341 einfo (_("%X%P:%S: section has both a load address and a load region\n"),
7342 NULL);
7343 }
7344
7345 void
7346 lang_leave_output_section_statement (fill_type *fill, const char *memspec,
7347 lang_output_section_phdr_list *phdrs,
7348 const char *lma_memspec)
7349 {
7350 lang_get_regions (&current_section->region,
7351 &current_section->lma_region,
7352 memspec, lma_memspec,
7353 current_section->load_base != NULL,
7354 current_section->addr_tree != NULL);
7355
7356 current_section->fill = fill;
7357 current_section->phdrs = phdrs;
7358 pop_stat_ptr ();
7359 }
7360
7361 void
7362 lang_statement_append (lang_statement_list_type *list,
7363 lang_statement_union_type *element,
7364 lang_statement_union_type **field)
7365 {
7366 *(list->tail) = element;
7367 list->tail = field;
7368 }
7369
7370 /* Set the output format type. -oformat overrides scripts. */
7371
7372 void
7373 lang_add_output_format (const char *format,
7374 const char *big,
7375 const char *little,
7376 int from_script)
7377 {
7378 if (output_target == NULL || !from_script)
7379 {
7380 if (command_line.endian == ENDIAN_BIG
7381 && big != NULL)
7382 format = big;
7383 else if (command_line.endian == ENDIAN_LITTLE
7384 && little != NULL)
7385 format = little;
7386
7387 output_target = format;
7388 }
7389 }
7390
7391 void
7392 lang_add_insert (const char *where, int is_before)
7393 {
7394 lang_insert_statement_type *new_stmt;
7395
7396 new_stmt = new_stat (lang_insert_statement, stat_ptr);
7397 new_stmt->where = where;
7398 new_stmt->is_before = is_before;
7399 saved_script_handle = previous_script_handle;
7400 }
7401
7402 /* Enter a group. This creates a new lang_group_statement, and sets
7403 stat_ptr to build new statements within the group. */
7404
7405 void
7406 lang_enter_group (void)
7407 {
7408 lang_group_statement_type *g;
7409
7410 g = new_stat (lang_group_statement, stat_ptr);
7411 lang_list_init (&g->children);
7412 push_stat_ptr (&g->children);
7413 }
7414
7415 /* Leave a group. This just resets stat_ptr to start writing to the
7416 regular list of statements again. Note that this will not work if
7417 groups can occur inside anything else which can adjust stat_ptr,
7418 but currently they can't. */
7419
7420 void
7421 lang_leave_group (void)
7422 {
7423 pop_stat_ptr ();
7424 }
7425
7426 /* Add a new program header. This is called for each entry in a PHDRS
7427 command in a linker script. */
7428
7429 void
7430 lang_new_phdr (const char *name,
7431 etree_type *type,
7432 bfd_boolean filehdr,
7433 bfd_boolean phdrs,
7434 etree_type *at,
7435 etree_type *flags)
7436 {
7437 struct lang_phdr *n, **pp;
7438 bfd_boolean hdrs;
7439
7440 n = (struct lang_phdr *) stat_alloc (sizeof (struct lang_phdr));
7441 n->next = NULL;
7442 n->name = name;
7443 n->type = exp_get_value_int (type, 0, "program header type");
7444 n->filehdr = filehdr;
7445 n->phdrs = phdrs;
7446 n->at = at;
7447 n->flags = flags;
7448
7449 hdrs = n->type == 1 && (phdrs || filehdr);
7450
7451 for (pp = &lang_phdr_list; *pp != NULL; pp = &(*pp)->next)
7452 if (hdrs
7453 && (*pp)->type == 1
7454 && !((*pp)->filehdr || (*pp)->phdrs))
7455 {
7456 einfo (_("%X%P:%S: PHDRS and FILEHDR are not supported"
7457 " when prior PT_LOAD headers lack them\n"), NULL);
7458 hdrs = FALSE;
7459 }
7460
7461 *pp = n;
7462 }
7463
7464 /* Record the program header information in the output BFD. FIXME: We
7465 should not be calling an ELF specific function here. */
7466
7467 static void
7468 lang_record_phdrs (void)
7469 {
7470 unsigned int alc;
7471 asection **secs;
7472 lang_output_section_phdr_list *last;
7473 struct lang_phdr *l;
7474 lang_output_section_statement_type *os;
7475
7476 alc = 10;
7477 secs = (asection **) xmalloc (alc * sizeof (asection *));
7478 last = NULL;
7479
7480 for (l = lang_phdr_list; l != NULL; l = l->next)
7481 {
7482 unsigned int c;
7483 flagword flags;
7484 bfd_vma at;
7485
7486 c = 0;
7487 for (os = &lang_output_section_statement.head->output_section_statement;
7488 os != NULL;
7489 os = os->next)
7490 {
7491 lang_output_section_phdr_list *pl;
7492
7493 if (os->constraint < 0)
7494 continue;
7495
7496 pl = os->phdrs;
7497 if (pl != NULL)
7498 last = pl;
7499 else
7500 {
7501 if (os->sectype == noload_section
7502 || os->bfd_section == NULL
7503 || (os->bfd_section->flags & SEC_ALLOC) == 0)
7504 continue;
7505
7506 /* Don't add orphans to PT_INTERP header. */
7507 if (l->type == 3)
7508 continue;
7509
7510 if (last == NULL)
7511 {
7512 lang_output_section_statement_type *tmp_os;
7513
7514 /* If we have not run across a section with a program
7515 header assigned to it yet, then scan forwards to find
7516 one. This prevents inconsistencies in the linker's
7517 behaviour when a script has specified just a single
7518 header and there are sections in that script which are
7519 not assigned to it, and which occur before the first
7520 use of that header. See here for more details:
7521 http://sourceware.org/ml/binutils/2007-02/msg00291.html */
7522 for (tmp_os = os; tmp_os; tmp_os = tmp_os->next)
7523 if (tmp_os->phdrs)
7524 {
7525 last = tmp_os->phdrs;
7526 break;
7527 }
7528 if (last == NULL)
7529 einfo (_("%F%P: no sections assigned to phdrs\n"));
7530 }
7531 pl = last;
7532 }
7533
7534 if (os->bfd_section == NULL)
7535 continue;
7536
7537 for (; pl != NULL; pl = pl->next)
7538 {
7539 if (strcmp (pl->name, l->name) == 0)
7540 {
7541 if (c >= alc)
7542 {
7543 alc *= 2;
7544 secs = (asection **) xrealloc (secs,
7545 alc * sizeof (asection *));
7546 }
7547 secs[c] = os->bfd_section;
7548 ++c;
7549 pl->used = TRUE;
7550 }
7551 }
7552 }
7553
7554 if (l->flags == NULL)
7555 flags = 0;
7556 else
7557 flags = exp_get_vma (l->flags, 0, "phdr flags");
7558
7559 if (l->at == NULL)
7560 at = 0;
7561 else
7562 at = exp_get_vma (l->at, 0, "phdr load address");
7563
7564 if (!bfd_record_phdr (link_info.output_bfd, l->type,
7565 l->flags != NULL, flags, l->at != NULL,
7566 at, l->filehdr, l->phdrs, c, secs))
7567 einfo (_("%F%P: bfd_record_phdr failed: %E\n"));
7568 }
7569
7570 free (secs);
7571
7572 /* Make sure all the phdr assignments succeeded. */
7573 for (os = &lang_output_section_statement.head->output_section_statement;
7574 os != NULL;
7575 os = os->next)
7576 {
7577 lang_output_section_phdr_list *pl;
7578
7579 if (os->constraint < 0
7580 || os->bfd_section == NULL)
7581 continue;
7582
7583 for (pl = os->phdrs;
7584 pl != NULL;
7585 pl = pl->next)
7586 if (!pl->used && strcmp (pl->name, "NONE") != 0)
7587 einfo (_("%X%P: section `%s' assigned to non-existent phdr `%s'\n"),
7588 os->name, pl->name);
7589 }
7590 }
7591
7592 /* Record a list of sections which may not be cross referenced. */
7593
7594 void
7595 lang_add_nocrossref (lang_nocrossref_type *l)
7596 {
7597 struct lang_nocrossrefs *n;
7598
7599 n = (struct lang_nocrossrefs *) xmalloc (sizeof *n);
7600 n->next = nocrossref_list;
7601 n->list = l;
7602 n->onlyfirst = FALSE;
7603 nocrossref_list = n;
7604
7605 /* Set notice_all so that we get informed about all symbols. */
7606 link_info.notice_all = TRUE;
7607 }
7608
7609 /* Record a section that cannot be referenced from a list of sections. */
7610
7611 void
7612 lang_add_nocrossref_to (lang_nocrossref_type *l)
7613 {
7614 lang_add_nocrossref (l);
7615 nocrossref_list->onlyfirst = TRUE;
7616 }
7617 \f
7618 /* Overlay handling. We handle overlays with some static variables. */
7619
7620 /* The overlay virtual address. */
7621 static etree_type *overlay_vma;
7622 /* And subsection alignment. */
7623 static etree_type *overlay_subalign;
7624
7625 /* An expression for the maximum section size seen so far. */
7626 static etree_type *overlay_max;
7627
7628 /* A list of all the sections in this overlay. */
7629
7630 struct overlay_list {
7631 struct overlay_list *next;
7632 lang_output_section_statement_type *os;
7633 };
7634
7635 static struct overlay_list *overlay_list;
7636
7637 /* Start handling an overlay. */
7638
7639 void
7640 lang_enter_overlay (etree_type *vma_expr, etree_type *subalign)
7641 {
7642 /* The grammar should prevent nested overlays from occurring. */
7643 ASSERT (overlay_vma == NULL
7644 && overlay_subalign == NULL
7645 && overlay_max == NULL);
7646
7647 overlay_vma = vma_expr;
7648 overlay_subalign = subalign;
7649 }
7650
7651 /* Start a section in an overlay. We handle this by calling
7652 lang_enter_output_section_statement with the correct VMA.
7653 lang_leave_overlay sets up the LMA and memory regions. */
7654
7655 void
7656 lang_enter_overlay_section (const char *name)
7657 {
7658 struct overlay_list *n;
7659 etree_type *size;
7660
7661 lang_enter_output_section_statement (name, overlay_vma, overlay_section,
7662 0, overlay_subalign, 0, 0, 0);
7663
7664 /* If this is the first section, then base the VMA of future
7665 sections on this one. This will work correctly even if `.' is
7666 used in the addresses. */
7667 if (overlay_list == NULL)
7668 overlay_vma = exp_nameop (ADDR, name);
7669
7670 /* Remember the section. */
7671 n = (struct overlay_list *) xmalloc (sizeof *n);
7672 n->os = current_section;
7673 n->next = overlay_list;
7674 overlay_list = n;
7675
7676 size = exp_nameop (SIZEOF, name);
7677
7678 /* Arrange to work out the maximum section end address. */
7679 if (overlay_max == NULL)
7680 overlay_max = size;
7681 else
7682 overlay_max = exp_binop (MAX_K, overlay_max, size);
7683 }
7684
7685 /* Finish a section in an overlay. There isn't any special to do
7686 here. */
7687
7688 void
7689 lang_leave_overlay_section (fill_type *fill,
7690 lang_output_section_phdr_list *phdrs)
7691 {
7692 const char *name;
7693 char *clean, *s2;
7694 const char *s1;
7695 char *buf;
7696
7697 name = current_section->name;
7698
7699 /* For now, assume that DEFAULT_MEMORY_REGION is the run-time memory
7700 region and that no load-time region has been specified. It doesn't
7701 really matter what we say here, since lang_leave_overlay will
7702 override it. */
7703 lang_leave_output_section_statement (fill, DEFAULT_MEMORY_REGION, phdrs, 0);
7704
7705 /* Define the magic symbols. */
7706
7707 clean = (char *) xmalloc (strlen (name) + 1);
7708 s2 = clean;
7709 for (s1 = name; *s1 != '\0'; s1++)
7710 if (ISALNUM (*s1) || *s1 == '_')
7711 *s2++ = *s1;
7712 *s2 = '\0';
7713
7714 buf = (char *) xmalloc (strlen (clean) + sizeof "__load_start_");
7715 sprintf (buf, "__load_start_%s", clean);
7716 lang_add_assignment (exp_provide (buf,
7717 exp_nameop (LOADADDR, name),
7718 FALSE));
7719
7720 buf = (char *) xmalloc (strlen (clean) + sizeof "__load_stop_");
7721 sprintf (buf, "__load_stop_%s", clean);
7722 lang_add_assignment (exp_provide (buf,
7723 exp_binop ('+',
7724 exp_nameop (LOADADDR, name),
7725 exp_nameop (SIZEOF, name)),
7726 FALSE));
7727
7728 free (clean);
7729 }
7730
7731 /* Finish an overlay. If there are any overlay wide settings, this
7732 looks through all the sections in the overlay and sets them. */
7733
7734 void
7735 lang_leave_overlay (etree_type *lma_expr,
7736 int nocrossrefs,
7737 fill_type *fill,
7738 const char *memspec,
7739 lang_output_section_phdr_list *phdrs,
7740 const char *lma_memspec)
7741 {
7742 lang_memory_region_type *region;
7743 lang_memory_region_type *lma_region;
7744 struct overlay_list *l;
7745 lang_nocrossref_type *nocrossref;
7746
7747 lang_get_regions (&region, &lma_region,
7748 memspec, lma_memspec,
7749 lma_expr != NULL, FALSE);
7750
7751 nocrossref = NULL;
7752
7753 /* After setting the size of the last section, set '.' to end of the
7754 overlay region. */
7755 if (overlay_list != NULL)
7756 {
7757 overlay_list->os->update_dot = 1;
7758 overlay_list->os->update_dot_tree
7759 = exp_assign (".", exp_binop ('+', overlay_vma, overlay_max), FALSE);
7760 }
7761
7762 l = overlay_list;
7763 while (l != NULL)
7764 {
7765 struct overlay_list *next;
7766
7767 if (fill != NULL && l->os->fill == NULL)
7768 l->os->fill = fill;
7769
7770 l->os->region = region;
7771 l->os->lma_region = lma_region;
7772
7773 /* The first section has the load address specified in the
7774 OVERLAY statement. The rest are worked out from that.
7775 The base address is not needed (and should be null) if
7776 an LMA region was specified. */
7777 if (l->next == 0)
7778 {
7779 l->os->load_base = lma_expr;
7780 l->os->sectype = normal_section;
7781 }
7782 if (phdrs != NULL && l->os->phdrs == NULL)
7783 l->os->phdrs = phdrs;
7784
7785 if (nocrossrefs)
7786 {
7787 lang_nocrossref_type *nc;
7788
7789 nc = (lang_nocrossref_type *) xmalloc (sizeof *nc);
7790 nc->name = l->os->name;
7791 nc->next = nocrossref;
7792 nocrossref = nc;
7793 }
7794
7795 next = l->next;
7796 free (l);
7797 l = next;
7798 }
7799
7800 if (nocrossref != NULL)
7801 lang_add_nocrossref (nocrossref);
7802
7803 overlay_vma = NULL;
7804 overlay_list = NULL;
7805 overlay_max = NULL;
7806 }
7807 \f
7808 /* Version handling. This is only useful for ELF. */
7809
7810 /* If PREV is NULL, return first version pattern matching particular symbol.
7811 If PREV is non-NULL, return first version pattern matching particular
7812 symbol after PREV (previously returned by lang_vers_match). */
7813
7814 static struct bfd_elf_version_expr *
7815 lang_vers_match (struct bfd_elf_version_expr_head *head,
7816 struct bfd_elf_version_expr *prev,
7817 const char *sym)
7818 {
7819 const char *c_sym;
7820 const char *cxx_sym = sym;
7821 const char *java_sym = sym;
7822 struct bfd_elf_version_expr *expr = NULL;
7823 enum demangling_styles curr_style;
7824
7825 curr_style = CURRENT_DEMANGLING_STYLE;
7826 cplus_demangle_set_style (no_demangling);
7827 c_sym = bfd_demangle (link_info.output_bfd, sym, DMGL_NO_OPTS);
7828 if (!c_sym)
7829 c_sym = sym;
7830 cplus_demangle_set_style (curr_style);
7831
7832 if (head->mask & BFD_ELF_VERSION_CXX_TYPE)
7833 {
7834 cxx_sym = bfd_demangle (link_info.output_bfd, sym,
7835 DMGL_PARAMS | DMGL_ANSI);
7836 if (!cxx_sym)
7837 cxx_sym = sym;
7838 }
7839 if (head->mask & BFD_ELF_VERSION_JAVA_TYPE)
7840 {
7841 java_sym = bfd_demangle (link_info.output_bfd, sym, DMGL_JAVA);
7842 if (!java_sym)
7843 java_sym = sym;
7844 }
7845
7846 if (head->htab && (prev == NULL || prev->literal))
7847 {
7848 struct bfd_elf_version_expr e;
7849
7850 switch (prev ? prev->mask : 0)
7851 {
7852 case 0:
7853 if (head->mask & BFD_ELF_VERSION_C_TYPE)
7854 {
7855 e.pattern = c_sym;
7856 expr = (struct bfd_elf_version_expr *)
7857 htab_find ((htab_t) head->htab, &e);
7858 while (expr && strcmp (expr->pattern, c_sym) == 0)
7859 if (expr->mask == BFD_ELF_VERSION_C_TYPE)
7860 goto out_ret;
7861 else
7862 expr = expr->next;
7863 }
7864 /* Fallthrough */
7865 case BFD_ELF_VERSION_C_TYPE:
7866 if (head->mask & BFD_ELF_VERSION_CXX_TYPE)
7867 {
7868 e.pattern = cxx_sym;
7869 expr = (struct bfd_elf_version_expr *)
7870 htab_find ((htab_t) head->htab, &e);
7871 while (expr && strcmp (expr->pattern, cxx_sym) == 0)
7872 if (expr->mask == BFD_ELF_VERSION_CXX_TYPE)
7873 goto out_ret;
7874 else
7875 expr = expr->next;
7876 }
7877 /* Fallthrough */
7878 case BFD_ELF_VERSION_CXX_TYPE:
7879 if (head->mask & BFD_ELF_VERSION_JAVA_TYPE)
7880 {
7881 e.pattern = java_sym;
7882 expr = (struct bfd_elf_version_expr *)
7883 htab_find ((htab_t) head->htab, &e);
7884 while (expr && strcmp (expr->pattern, java_sym) == 0)
7885 if (expr->mask == BFD_ELF_VERSION_JAVA_TYPE)
7886 goto out_ret;
7887 else
7888 expr = expr->next;
7889 }
7890 /* Fallthrough */
7891 default:
7892 break;
7893 }
7894 }
7895
7896 /* Finally, try the wildcards. */
7897 if (prev == NULL || prev->literal)
7898 expr = head->remaining;
7899 else
7900 expr = prev->next;
7901 for (; expr; expr = expr->next)
7902 {
7903 const char *s;
7904
7905 if (!expr->pattern)
7906 continue;
7907
7908 if (expr->pattern[0] == '*' && expr->pattern[1] == '\0')
7909 break;
7910
7911 if (expr->mask == BFD_ELF_VERSION_JAVA_TYPE)
7912 s = java_sym;
7913 else if (expr->mask == BFD_ELF_VERSION_CXX_TYPE)
7914 s = cxx_sym;
7915 else
7916 s = c_sym;
7917 if (fnmatch (expr->pattern, s, 0) == 0)
7918 break;
7919 }
7920
7921 out_ret:
7922 if (c_sym != sym)
7923 free ((char *) c_sym);
7924 if (cxx_sym != sym)
7925 free ((char *) cxx_sym);
7926 if (java_sym != sym)
7927 free ((char *) java_sym);
7928 return expr;
7929 }
7930
7931 /* Return NULL if the PATTERN argument is a glob pattern, otherwise,
7932 return a pointer to the symbol name with any backslash quotes removed. */
7933
7934 static const char *
7935 realsymbol (const char *pattern)
7936 {
7937 const char *p;
7938 bfd_boolean changed = FALSE, backslash = FALSE;
7939 char *s, *symbol = (char *) xmalloc (strlen (pattern) + 1);
7940
7941 for (p = pattern, s = symbol; *p != '\0'; ++p)
7942 {
7943 /* It is a glob pattern only if there is no preceding
7944 backslash. */
7945 if (backslash)
7946 {
7947 /* Remove the preceding backslash. */
7948 *(s - 1) = *p;
7949 backslash = FALSE;
7950 changed = TRUE;
7951 }
7952 else
7953 {
7954 if (*p == '?' || *p == '*' || *p == '[')
7955 {
7956 free (symbol);
7957 return NULL;
7958 }
7959
7960 *s++ = *p;
7961 backslash = *p == '\\';
7962 }
7963 }
7964
7965 if (changed)
7966 {
7967 *s = '\0';
7968 return symbol;
7969 }
7970 else
7971 {
7972 free (symbol);
7973 return pattern;
7974 }
7975 }
7976
7977 /* This is called for each variable name or match expression. NEW_NAME is
7978 the name of the symbol to match, or, if LITERAL_P is FALSE, a glob
7979 pattern to be matched against symbol names. */
7980
7981 struct bfd_elf_version_expr *
7982 lang_new_vers_pattern (struct bfd_elf_version_expr *orig,
7983 const char *new_name,
7984 const char *lang,
7985 bfd_boolean literal_p)
7986 {
7987 struct bfd_elf_version_expr *ret;
7988
7989 ret = (struct bfd_elf_version_expr *) xmalloc (sizeof *ret);
7990 ret->next = orig;
7991 ret->symver = 0;
7992 ret->script = 0;
7993 ret->literal = TRUE;
7994 ret->pattern = literal_p ? new_name : realsymbol (new_name);
7995 if (ret->pattern == NULL)
7996 {
7997 ret->pattern = new_name;
7998 ret->literal = FALSE;
7999 }
8000
8001 if (lang == NULL || strcasecmp (lang, "C") == 0)
8002 ret->mask = BFD_ELF_VERSION_C_TYPE;
8003 else if (strcasecmp (lang, "C++") == 0)
8004 ret->mask = BFD_ELF_VERSION_CXX_TYPE;
8005 else if (strcasecmp (lang, "Java") == 0)
8006 ret->mask = BFD_ELF_VERSION_JAVA_TYPE;
8007 else
8008 {
8009 einfo (_("%X%P: unknown language `%s' in version information\n"),
8010 lang);
8011 ret->mask = BFD_ELF_VERSION_C_TYPE;
8012 }
8013
8014 return ldemul_new_vers_pattern (ret);
8015 }
8016
8017 /* This is called for each set of variable names and match
8018 expressions. */
8019
8020 struct bfd_elf_version_tree *
8021 lang_new_vers_node (struct bfd_elf_version_expr *globals,
8022 struct bfd_elf_version_expr *locals)
8023 {
8024 struct bfd_elf_version_tree *ret;
8025
8026 ret = (struct bfd_elf_version_tree *) xcalloc (1, sizeof *ret);
8027 ret->globals.list = globals;
8028 ret->locals.list = locals;
8029 ret->match = lang_vers_match;
8030 ret->name_indx = (unsigned int) -1;
8031 return ret;
8032 }
8033
8034 /* This static variable keeps track of version indices. */
8035
8036 static int version_index;
8037
8038 static hashval_t
8039 version_expr_head_hash (const void *p)
8040 {
8041 const struct bfd_elf_version_expr *e =
8042 (const struct bfd_elf_version_expr *) p;
8043
8044 return htab_hash_string (e->pattern);
8045 }
8046
8047 static int
8048 version_expr_head_eq (const void *p1, const void *p2)
8049 {
8050 const struct bfd_elf_version_expr *e1 =
8051 (const struct bfd_elf_version_expr *) p1;
8052 const struct bfd_elf_version_expr *e2 =
8053 (const struct bfd_elf_version_expr *) p2;
8054
8055 return strcmp (e1->pattern, e2->pattern) == 0;
8056 }
8057
8058 static void
8059 lang_finalize_version_expr_head (struct bfd_elf_version_expr_head *head)
8060 {
8061 size_t count = 0;
8062 struct bfd_elf_version_expr *e, *next;
8063 struct bfd_elf_version_expr **list_loc, **remaining_loc;
8064
8065 for (e = head->list; e; e = e->next)
8066 {
8067 if (e->literal)
8068 count++;
8069 head->mask |= e->mask;
8070 }
8071
8072 if (count)
8073 {
8074 head->htab = htab_create (count * 2, version_expr_head_hash,
8075 version_expr_head_eq, NULL);
8076 list_loc = &head->list;
8077 remaining_loc = &head->remaining;
8078 for (e = head->list; e; e = next)
8079 {
8080 next = e->next;
8081 if (!e->literal)
8082 {
8083 *remaining_loc = e;
8084 remaining_loc = &e->next;
8085 }
8086 else
8087 {
8088 void **loc = htab_find_slot ((htab_t) head->htab, e, INSERT);
8089
8090 if (*loc)
8091 {
8092 struct bfd_elf_version_expr *e1, *last;
8093
8094 e1 = (struct bfd_elf_version_expr *) *loc;
8095 last = NULL;
8096 do
8097 {
8098 if (e1->mask == e->mask)
8099 {
8100 last = NULL;
8101 break;
8102 }
8103 last = e1;
8104 e1 = e1->next;
8105 }
8106 while (e1 && strcmp (e1->pattern, e->pattern) == 0);
8107
8108 if (last == NULL)
8109 {
8110 /* This is a duplicate. */
8111 /* FIXME: Memory leak. Sometimes pattern is not
8112 xmalloced alone, but in larger chunk of memory. */
8113 /* free (e->pattern); */
8114 free (e);
8115 }
8116 else
8117 {
8118 e->next = last->next;
8119 last->next = e;
8120 }
8121 }
8122 else
8123 {
8124 *loc = e;
8125 *list_loc = e;
8126 list_loc = &e->next;
8127 }
8128 }
8129 }
8130 *remaining_loc = NULL;
8131 *list_loc = head->remaining;
8132 }
8133 else
8134 head->remaining = head->list;
8135 }
8136
8137 /* This is called when we know the name and dependencies of the
8138 version. */
8139
8140 void
8141 lang_register_vers_node (const char *name,
8142 struct bfd_elf_version_tree *version,
8143 struct bfd_elf_version_deps *deps)
8144 {
8145 struct bfd_elf_version_tree *t, **pp;
8146 struct bfd_elf_version_expr *e1;
8147
8148 if (name == NULL)
8149 name = "";
8150
8151 if (link_info.version_info != NULL
8152 && (name[0] == '\0' || link_info.version_info->name[0] == '\0'))
8153 {
8154 einfo (_("%X%P: anonymous version tag cannot be combined"
8155 " with other version tags\n"));
8156 free (version);
8157 return;
8158 }
8159
8160 /* Make sure this node has a unique name. */
8161 for (t = link_info.version_info; t != NULL; t = t->next)
8162 if (strcmp (t->name, name) == 0)
8163 einfo (_("%X%P: duplicate version tag `%s'\n"), name);
8164
8165 lang_finalize_version_expr_head (&version->globals);
8166 lang_finalize_version_expr_head (&version->locals);
8167
8168 /* Check the global and local match names, and make sure there
8169 aren't any duplicates. */
8170
8171 for (e1 = version->globals.list; e1 != NULL; e1 = e1->next)
8172 {
8173 for (t = link_info.version_info; t != NULL; t = t->next)
8174 {
8175 struct bfd_elf_version_expr *e2;
8176
8177 if (t->locals.htab && e1->literal)
8178 {
8179 e2 = (struct bfd_elf_version_expr *)
8180 htab_find ((htab_t) t->locals.htab, e1);
8181 while (e2 && strcmp (e1->pattern, e2->pattern) == 0)
8182 {
8183 if (e1->mask == e2->mask)
8184 einfo (_("%X%P: duplicate expression `%s'"
8185 " in version information\n"), e1->pattern);
8186 e2 = e2->next;
8187 }
8188 }
8189 else if (!e1->literal)
8190 for (e2 = t->locals.remaining; e2 != NULL; e2 = e2->next)
8191 if (strcmp (e1->pattern, e2->pattern) == 0
8192 && e1->mask == e2->mask)
8193 einfo (_("%X%P: duplicate expression `%s'"
8194 " in version information\n"), e1->pattern);
8195 }
8196 }
8197
8198 for (e1 = version->locals.list; e1 != NULL; e1 = e1->next)
8199 {
8200 for (t = link_info.version_info; t != NULL; t = t->next)
8201 {
8202 struct bfd_elf_version_expr *e2;
8203
8204 if (t->globals.htab && e1->literal)
8205 {
8206 e2 = (struct bfd_elf_version_expr *)
8207 htab_find ((htab_t) t->globals.htab, e1);
8208 while (e2 && strcmp (e1->pattern, e2->pattern) == 0)
8209 {
8210 if (e1->mask == e2->mask)
8211 einfo (_("%X%P: duplicate expression `%s'"
8212 " in version information\n"),
8213 e1->pattern);
8214 e2 = e2->next;
8215 }
8216 }
8217 else if (!e1->literal)
8218 for (e2 = t->globals.remaining; e2 != NULL; e2 = e2->next)
8219 if (strcmp (e1->pattern, e2->pattern) == 0
8220 && e1->mask == e2->mask)
8221 einfo (_("%X%P: duplicate expression `%s'"
8222 " in version information\n"), e1->pattern);
8223 }
8224 }
8225
8226 version->deps = deps;
8227 version->name = name;
8228 if (name[0] != '\0')
8229 {
8230 ++version_index;
8231 version->vernum = version_index;
8232 }
8233 else
8234 version->vernum = 0;
8235
8236 for (pp = &link_info.version_info; *pp != NULL; pp = &(*pp)->next)
8237 ;
8238 *pp = version;
8239 }
8240
8241 /* This is called when we see a version dependency. */
8242
8243 struct bfd_elf_version_deps *
8244 lang_add_vers_depend (struct bfd_elf_version_deps *list, const char *name)
8245 {
8246 struct bfd_elf_version_deps *ret;
8247 struct bfd_elf_version_tree *t;
8248
8249 ret = (struct bfd_elf_version_deps *) xmalloc (sizeof *ret);
8250 ret->next = list;
8251
8252 for (t = link_info.version_info; t != NULL; t = t->next)
8253 {
8254 if (strcmp (t->name, name) == 0)
8255 {
8256 ret->version_needed = t;
8257 return ret;
8258 }
8259 }
8260
8261 einfo (_("%X%P: unable to find version dependency `%s'\n"), name);
8262
8263 ret->version_needed = NULL;
8264 return ret;
8265 }
8266
8267 static void
8268 lang_do_version_exports_section (void)
8269 {
8270 struct bfd_elf_version_expr *greg = NULL, *lreg;
8271
8272 LANG_FOR_EACH_INPUT_STATEMENT (is)
8273 {
8274 asection *sec = bfd_get_section_by_name (is->the_bfd, ".exports");
8275 char *contents, *p;
8276 bfd_size_type len;
8277
8278 if (sec == NULL)
8279 continue;
8280
8281 len = sec->size;
8282 contents = (char *) xmalloc (len);
8283 if (!bfd_get_section_contents (is->the_bfd, sec, contents, 0, len))
8284 einfo (_("%X%P: unable to read .exports section contents\n"), sec);
8285
8286 p = contents;
8287 while (p < contents + len)
8288 {
8289 greg = lang_new_vers_pattern (greg, p, NULL, FALSE);
8290 p = strchr (p, '\0') + 1;
8291 }
8292
8293 /* Do not free the contents, as we used them creating the regex. */
8294
8295 /* Do not include this section in the link. */
8296 sec->flags |= SEC_EXCLUDE | SEC_KEEP;
8297 }
8298
8299 lreg = lang_new_vers_pattern (NULL, "*", NULL, FALSE);
8300 lang_register_vers_node (command_line.version_exports_section,
8301 lang_new_vers_node (greg, lreg), NULL);
8302 }
8303
8304 /* Evaluate LENGTH and ORIGIN parts of MEMORY spec */
8305
8306 static void
8307 lang_do_memory_regions (void)
8308 {
8309 lang_memory_region_type *r = lang_memory_region_list;
8310
8311 for (; r != NULL; r = r->next)
8312 {
8313 if (r->origin_exp)
8314 {
8315 exp_fold_tree_no_dot (r->origin_exp);
8316 if (expld.result.valid_p)
8317 {
8318 r->origin = expld.result.value;
8319 r->current = r->origin;
8320 }
8321 else
8322 einfo (_("%F%P: invalid origin for memory region %s\n"),
8323 r->name_list.name);
8324 }
8325 if (r->length_exp)
8326 {
8327 exp_fold_tree_no_dot (r->length_exp);
8328 if (expld.result.valid_p)
8329 r->length = expld.result.value;
8330 else
8331 einfo (_("%F%P: invalid length for memory region %s\n"),
8332 r->name_list.name);
8333 }
8334 }
8335 }
8336
8337 void
8338 lang_add_unique (const char *name)
8339 {
8340 struct unique_sections *ent;
8341
8342 for (ent = unique_section_list; ent; ent = ent->next)
8343 if (strcmp (ent->name, name) == 0)
8344 return;
8345
8346 ent = (struct unique_sections *) xmalloc (sizeof *ent);
8347 ent->name = xstrdup (name);
8348 ent->next = unique_section_list;
8349 unique_section_list = ent;
8350 }
8351
8352 /* Append the list of dynamic symbols to the existing one. */
8353
8354 void
8355 lang_append_dynamic_list (struct bfd_elf_version_expr *dynamic)
8356 {
8357 if (link_info.dynamic_list)
8358 {
8359 struct bfd_elf_version_expr *tail;
8360 for (tail = dynamic; tail->next != NULL; tail = tail->next)
8361 ;
8362 tail->next = link_info.dynamic_list->head.list;
8363 link_info.dynamic_list->head.list = dynamic;
8364 }
8365 else
8366 {
8367 struct bfd_elf_dynamic_list *d;
8368
8369 d = (struct bfd_elf_dynamic_list *) xcalloc (1, sizeof *d);
8370 d->head.list = dynamic;
8371 d->match = lang_vers_match;
8372 link_info.dynamic_list = d;
8373 }
8374 }
8375
8376 /* Append the list of C++ typeinfo dynamic symbols to the existing
8377 one. */
8378
8379 void
8380 lang_append_dynamic_list_cpp_typeinfo (void)
8381 {
8382 const char *symbols[] =
8383 {
8384 "typeinfo name for*",
8385 "typeinfo for*"
8386 };
8387 struct bfd_elf_version_expr *dynamic = NULL;
8388 unsigned int i;
8389
8390 for (i = 0; i < ARRAY_SIZE (symbols); i++)
8391 dynamic = lang_new_vers_pattern (dynamic, symbols [i], "C++",
8392 FALSE);
8393
8394 lang_append_dynamic_list (dynamic);
8395 }
8396
8397 /* Append the list of C++ operator new and delete dynamic symbols to the
8398 existing one. */
8399
8400 void
8401 lang_append_dynamic_list_cpp_new (void)
8402 {
8403 const char *symbols[] =
8404 {
8405 "operator new*",
8406 "operator delete*"
8407 };
8408 struct bfd_elf_version_expr *dynamic = NULL;
8409 unsigned int i;
8410
8411 for (i = 0; i < ARRAY_SIZE (symbols); i++)
8412 dynamic = lang_new_vers_pattern (dynamic, symbols [i], "C++",
8413 FALSE);
8414
8415 lang_append_dynamic_list (dynamic);
8416 }
8417
8418 /* Scan a space and/or comma separated string of features. */
8419
8420 void
8421 lang_ld_feature (char *str)
8422 {
8423 char *p, *q;
8424
8425 p = str;
8426 while (*p)
8427 {
8428 char sep;
8429 while (*p == ',' || ISSPACE (*p))
8430 ++p;
8431 if (!*p)
8432 break;
8433 q = p + 1;
8434 while (*q && *q != ',' && !ISSPACE (*q))
8435 ++q;
8436 sep = *q;
8437 *q = 0;
8438 if (strcasecmp (p, "SANE_EXPR") == 0)
8439 config.sane_expr = TRUE;
8440 else
8441 einfo (_("%X%P: unknown feature `%s'\n"), p);
8442 *q = sep;
8443 p = q;
8444 }
8445 }
8446
8447 /* Pretty print memory amount. */
8448
8449 static void
8450 lang_print_memory_size (bfd_vma sz)
8451 {
8452 if ((sz & 0x3fffffff) == 0)
8453 printf ("%10" BFD_VMA_FMT "u GB", sz >> 30);
8454 else if ((sz & 0xfffff) == 0)
8455 printf ("%10" BFD_VMA_FMT "u MB", sz >> 20);
8456 else if ((sz & 0x3ff) == 0)
8457 printf ("%10" BFD_VMA_FMT "u KB", sz >> 10);
8458 else
8459 printf (" %10" BFD_VMA_FMT "u B", sz);
8460 }
8461
8462 /* Implement --print-memory-usage: disply per region memory usage. */
8463
8464 void
8465 lang_print_memory_usage (void)
8466 {
8467 lang_memory_region_type *r;
8468
8469 printf ("Memory region Used Size Region Size %%age Used\n");
8470 for (r = lang_memory_region_list; r->next != NULL; r = r->next)
8471 {
8472 bfd_vma used_length = r->current - r->origin;
8473 double percent;
8474
8475 printf ("%16s: ",r->name_list.name);
8476 lang_print_memory_size (used_length);
8477 lang_print_memory_size ((bfd_vma) r->length);
8478
8479 percent = used_length * 100.0 / r->length;
8480
8481 printf (" %6.2f%%\n", percent);
8482 }
8483 }
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