x86/Linux: disable all-stop on top of non-stop
[deliverable/binutils-gdb.git] / bfd / elf-eh-frame.c
CommitLineData
65765700 1/* .eh_frame section optimization.
b90efa5b 2 Copyright (C) 2001-2015 Free Software Foundation, Inc.
65765700
JJ
3 Written by Jakub Jelinek <jakub@redhat.com>.
4
5ed6aba4 5 This file is part of BFD, the Binary File Descriptor library.
65765700 6
5ed6aba4
NC
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
cd123cb7 9 the Free Software Foundation; either version 3 of the License, or
5ed6aba4 10 (at your option) any later version.
65765700 11
5ed6aba4
NC
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
65765700 16
5ed6aba4
NC
17 You should have received a copy of the GNU General Public License
18 along with this program; if not, write to the Free Software
cd123cb7
NC
19 Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
20 MA 02110-1301, USA. */
65765700 21
65765700 22#include "sysdep.h"
3db64b00 23#include "bfd.h"
65765700
JJ
24#include "libbfd.h"
25#include "elf-bfd.h"
fa8f86ff 26#include "dwarf2.h"
65765700
JJ
27
28#define EH_FRAME_HDR_SIZE 8
29
bce613b9
JJ
30struct cie
31{
32 unsigned int length;
33 unsigned int hash;
34 unsigned char version;
f137a54e 35 unsigned char local_personality;
bce613b9
JJ
36 char augmentation[20];
37 bfd_vma code_align;
38 bfd_signed_vma data_align;
39 bfd_vma ra_column;
40 bfd_vma augmentation_size;
f137a54e
AM
41 union {
42 struct elf_link_hash_entry *h;
5087d529
AM
43 struct {
44 unsigned int bfd_id;
45 unsigned int index;
46 } sym;
184d07da 47 unsigned int reloc_index;
f137a54e 48 } personality;
bce613b9
JJ
49 struct eh_cie_fde *cie_inf;
50 unsigned char per_encoding;
51 unsigned char lsda_encoding;
52 unsigned char fde_encoding;
53 unsigned char initial_insn_length;
9f4b847e 54 unsigned char can_make_lsda_relative;
bce613b9
JJ
55 unsigned char initial_instructions[50];
56};
57
58
59
2c42be65
RS
60/* If *ITER hasn't reached END yet, read the next byte into *RESULT and
61 move onto the next byte. Return true on success. */
62
63static inline bfd_boolean
64read_byte (bfd_byte **iter, bfd_byte *end, unsigned char *result)
65{
66 if (*iter >= end)
67 return FALSE;
68 *result = *((*iter)++);
69 return TRUE;
70}
71
72/* Move *ITER over LENGTH bytes, or up to END, whichever is closer.
73 Return true it was possible to move LENGTH bytes. */
74
75static inline bfd_boolean
76skip_bytes (bfd_byte **iter, bfd_byte *end, bfd_size_type length)
77{
78 if ((bfd_size_type) (end - *iter) < length)
79 {
80 *iter = end;
81 return FALSE;
82 }
83 *iter += length;
84 return TRUE;
85}
86
87/* Move *ITER over an leb128, stopping at END. Return true if the end
88 of the leb128 was found. */
89
90static bfd_boolean
91skip_leb128 (bfd_byte **iter, bfd_byte *end)
92{
93 unsigned char byte;
94 do
95 if (!read_byte (iter, end, &byte))
96 return FALSE;
97 while (byte & 0x80);
98 return TRUE;
99}
100
101/* Like skip_leb128, but treat the leb128 as an unsigned value and
102 store it in *VALUE. */
103
104static bfd_boolean
105read_uleb128 (bfd_byte **iter, bfd_byte *end, bfd_vma *value)
106{
107 bfd_byte *start, *p;
108
109 start = *iter;
110 if (!skip_leb128 (iter, end))
111 return FALSE;
112
113 p = *iter;
114 *value = *--p;
115 while (p > start)
116 *value = (*value << 7) | (*--p & 0x7f);
117
118 return TRUE;
119}
120
121/* Like read_uleb128, but for signed values. */
122
123static bfd_boolean
124read_sleb128 (bfd_byte **iter, bfd_byte *end, bfd_signed_vma *value)
125{
126 bfd_byte *start, *p;
127
128 start = *iter;
129 if (!skip_leb128 (iter, end))
130 return FALSE;
131
132 p = *iter;
133 *value = ((*--p & 0x7f) ^ 0x40) - 0x40;
134 while (p > start)
135 *value = (*value << 7) | (*--p & 0x7f);
136
137 return TRUE;
138}
65765700
JJ
139
140/* Return 0 if either encoding is variable width, or not yet known to bfd. */
141
142static
c39a58e6 143int get_DW_EH_PE_width (int encoding, int ptr_size)
65765700
JJ
144{
145 /* DW_EH_PE_ values of 0x60 and 0x70 weren't defined at the time .eh_frame
146 was added to bfd. */
147 if ((encoding & 0x60) == 0x60)
148 return 0;
149
150 switch (encoding & 7)
151 {
152 case DW_EH_PE_udata2: return 2;
153 case DW_EH_PE_udata4: return 4;
154 case DW_EH_PE_udata8: return 8;
155 case DW_EH_PE_absptr: return ptr_size;
156 default:
157 break;
158 }
159
160 return 0;
161}
162
84f97cb6
AS
163#define get_DW_EH_PE_signed(encoding) (((encoding) & DW_EH_PE_signed) != 0)
164
9e2a4898
JJ
165/* Read a width sized value from memory. */
166
167static bfd_vma
c39a58e6 168read_value (bfd *abfd, bfd_byte *buf, int width, int is_signed)
9e2a4898
JJ
169{
170 bfd_vma value;
171
172 switch (width)
173 {
84f97cb6
AS
174 case 2:
175 if (is_signed)
176 value = bfd_get_signed_16 (abfd, buf);
177 else
178 value = bfd_get_16 (abfd, buf);
179 break;
180 case 4:
181 if (is_signed)
182 value = bfd_get_signed_32 (abfd, buf);
183 else
184 value = bfd_get_32 (abfd, buf);
185 break;
186 case 8:
187 if (is_signed)
188 value = bfd_get_signed_64 (abfd, buf);
189 else
190 value = bfd_get_64 (abfd, buf);
191 break;
192 default:
193 BFD_FAIL ();
194 return 0;
9e2a4898
JJ
195 }
196
197 return value;
198}
b34976b6 199
9e2a4898
JJ
200/* Store a width sized value to memory. */
201
202static void
c39a58e6 203write_value (bfd *abfd, bfd_byte *buf, bfd_vma value, int width)
9e2a4898
JJ
204{
205 switch (width)
206 {
207 case 2: bfd_put_16 (abfd, value, buf); break;
208 case 4: bfd_put_32 (abfd, value, buf); break;
209 case 8: bfd_put_64 (abfd, value, buf); break;
210 default: BFD_FAIL ();
211 }
212}
213
bce613b9 214/* Return one if C1 and C2 CIEs can be merged. */
65765700 215
bce613b9
JJ
216static int
217cie_eq (const void *e1, const void *e2)
65765700 218{
a50b1753
NC
219 const struct cie *c1 = (const struct cie *) e1;
220 const struct cie *c2 = (const struct cie *) e2;
bce613b9
JJ
221
222 if (c1->hash == c2->hash
223 && c1->length == c2->length
65765700 224 && c1->version == c2->version
f137a54e 225 && c1->local_personality == c2->local_personality
65765700
JJ
226 && strcmp (c1->augmentation, c2->augmentation) == 0
227 && strcmp (c1->augmentation, "eh") != 0
228 && c1->code_align == c2->code_align
229 && c1->data_align == c2->data_align
230 && c1->ra_column == c2->ra_column
231 && c1->augmentation_size == c2->augmentation_size
f137a54e
AM
232 && memcmp (&c1->personality, &c2->personality,
233 sizeof (c1->personality)) == 0
4564fb94
AM
234 && (c1->cie_inf->u.cie.u.sec->output_section
235 == c2->cie_inf->u.cie.u.sec->output_section)
65765700
JJ
236 && c1->per_encoding == c2->per_encoding
237 && c1->lsda_encoding == c2->lsda_encoding
238 && c1->fde_encoding == c2->fde_encoding
c39a58e6 239 && c1->initial_insn_length == c2->initial_insn_length
99d190fa 240 && c1->initial_insn_length <= sizeof (c1->initial_instructions)
65765700
JJ
241 && memcmp (c1->initial_instructions,
242 c2->initial_instructions,
243 c1->initial_insn_length) == 0)
bce613b9 244 return 1;
65765700 245
bce613b9
JJ
246 return 0;
247}
248
249static hashval_t
250cie_hash (const void *e)
251{
a50b1753 252 const struct cie *c = (const struct cie *) e;
bce613b9
JJ
253 return c->hash;
254}
255
256static hashval_t
257cie_compute_hash (struct cie *c)
258{
259 hashval_t h = 0;
99d190fa 260 size_t len;
bce613b9
JJ
261 h = iterative_hash_object (c->length, h);
262 h = iterative_hash_object (c->version, h);
263 h = iterative_hash (c->augmentation, strlen (c->augmentation) + 1, h);
264 h = iterative_hash_object (c->code_align, h);
265 h = iterative_hash_object (c->data_align, h);
266 h = iterative_hash_object (c->ra_column, h);
267 h = iterative_hash_object (c->augmentation_size, h);
268 h = iterative_hash_object (c->personality, h);
4564fb94 269 h = iterative_hash_object (c->cie_inf->u.cie.u.sec->output_section, h);
bce613b9
JJ
270 h = iterative_hash_object (c->per_encoding, h);
271 h = iterative_hash_object (c->lsda_encoding, h);
272 h = iterative_hash_object (c->fde_encoding, h);
273 h = iterative_hash_object (c->initial_insn_length, h);
99d190fa
AM
274 len = c->initial_insn_length;
275 if (len > sizeof (c->initial_instructions))
276 len = sizeof (c->initial_instructions);
277 h = iterative_hash (c->initial_instructions, len, h);
bce613b9
JJ
278 c->hash = h;
279 return h;
65765700
JJ
280}
281
353057a5
RS
282/* Return the number of extra bytes that we'll be inserting into
283 ENTRY's augmentation string. */
284
285static INLINE unsigned int
286extra_augmentation_string_bytes (struct eh_cie_fde *entry)
287{
288 unsigned int size = 0;
289 if (entry->cie)
290 {
291 if (entry->add_augmentation_size)
292 size++;
6b2cc140 293 if (entry->u.cie.add_fde_encoding)
353057a5
RS
294 size++;
295 }
296 return size;
297}
298
299/* Likewise ENTRY's augmentation data. */
300
301static INLINE unsigned int
302extra_augmentation_data_bytes (struct eh_cie_fde *entry)
303{
304 unsigned int size = 0;
6b2cc140
RS
305 if (entry->add_augmentation_size)
306 size++;
307 if (entry->cie && entry->u.cie.add_fde_encoding)
308 size++;
353057a5
RS
309 return size;
310}
311
312/* Return the size that ENTRY will have in the output. ALIGNMENT is the
313 required alignment of ENTRY in bytes. */
314
315static unsigned int
316size_of_output_cie_fde (struct eh_cie_fde *entry, unsigned int alignment)
317{
318 if (entry->removed)
319 return 0;
320 if (entry->size == 4)
321 return 4;
322 return (entry->size
323 + extra_augmentation_string_bytes (entry)
324 + extra_augmentation_data_bytes (entry)
325 + alignment - 1) & -alignment;
326}
327
dcf507a6
RS
328/* Assume that the bytes between *ITER and END are CFA instructions.
329 Try to move *ITER past the first instruction and return true on
330 success. ENCODED_PTR_WIDTH gives the width of pointer entries. */
331
332static bfd_boolean
333skip_cfa_op (bfd_byte **iter, bfd_byte *end, unsigned int encoded_ptr_width)
334{
335 bfd_byte op;
336 bfd_vma length;
337
338 if (!read_byte (iter, end, &op))
339 return FALSE;
340
ac685e6a 341 switch (op & 0xc0 ? op & 0xc0 : op)
dcf507a6
RS
342 {
343 case DW_CFA_nop:
344 case DW_CFA_advance_loc:
345 case DW_CFA_restore:
ac685e6a
JJ
346 case DW_CFA_remember_state:
347 case DW_CFA_restore_state:
348 case DW_CFA_GNU_window_save:
dcf507a6
RS
349 /* No arguments. */
350 return TRUE;
351
352 case DW_CFA_offset:
353 case DW_CFA_restore_extended:
354 case DW_CFA_undefined:
355 case DW_CFA_same_value:
356 case DW_CFA_def_cfa_register:
357 case DW_CFA_def_cfa_offset:
358 case DW_CFA_def_cfa_offset_sf:
359 case DW_CFA_GNU_args_size:
360 /* One leb128 argument. */
361 return skip_leb128 (iter, end);
362
ac685e6a
JJ
363 case DW_CFA_val_offset:
364 case DW_CFA_val_offset_sf:
dcf507a6
RS
365 case DW_CFA_offset_extended:
366 case DW_CFA_register:
367 case DW_CFA_def_cfa:
368 case DW_CFA_offset_extended_sf:
369 case DW_CFA_GNU_negative_offset_extended:
370 case DW_CFA_def_cfa_sf:
371 /* Two leb128 arguments. */
372 return (skip_leb128 (iter, end)
373 && skip_leb128 (iter, end));
374
375 case DW_CFA_def_cfa_expression:
376 /* A variable-length argument. */
377 return (read_uleb128 (iter, end, &length)
378 && skip_bytes (iter, end, length));
379
380 case DW_CFA_expression:
ac685e6a 381 case DW_CFA_val_expression:
dcf507a6
RS
382 /* A leb128 followed by a variable-length argument. */
383 return (skip_leb128 (iter, end)
384 && read_uleb128 (iter, end, &length)
385 && skip_bytes (iter, end, length));
386
387 case DW_CFA_set_loc:
388 return skip_bytes (iter, end, encoded_ptr_width);
389
390 case DW_CFA_advance_loc1:
391 return skip_bytes (iter, end, 1);
392
393 case DW_CFA_advance_loc2:
394 return skip_bytes (iter, end, 2);
395
396 case DW_CFA_advance_loc4:
397 return skip_bytes (iter, end, 4);
398
399 case DW_CFA_MIPS_advance_loc8:
400 return skip_bytes (iter, end, 8);
401
402 default:
403 return FALSE;
404 }
405}
406
407/* Try to interpret the bytes between BUF and END as CFA instructions.
408 If every byte makes sense, return a pointer to the first DW_CFA_nop
409 padding byte, or END if there is no padding. Return null otherwise.
410 ENCODED_PTR_WIDTH is as for skip_cfa_op. */
411
412static bfd_byte *
ac685e6a
JJ
413skip_non_nops (bfd_byte *buf, bfd_byte *end, unsigned int encoded_ptr_width,
414 unsigned int *set_loc_count)
dcf507a6
RS
415{
416 bfd_byte *last;
417
418 last = buf;
419 while (buf < end)
420 if (*buf == DW_CFA_nop)
421 buf++;
422 else
423 {
ac685e6a
JJ
424 if (*buf == DW_CFA_set_loc)
425 ++*set_loc_count;
dcf507a6
RS
426 if (!skip_cfa_op (&buf, end, encoded_ptr_width))
427 return 0;
428 last = buf;
429 }
430 return last;
431}
432
30af5962
RS
433/* Convert absolute encoding ENCODING into PC-relative form.
434 SIZE is the size of a pointer. */
435
436static unsigned char
437make_pc_relative (unsigned char encoding, unsigned int ptr_size)
438{
439 if ((encoding & 0x7f) == DW_EH_PE_absptr)
440 switch (ptr_size)
441 {
442 case 2:
443 encoding |= DW_EH_PE_sdata2;
444 break;
445 case 4:
446 encoding |= DW_EH_PE_sdata4;
447 break;
448 case 8:
449 encoding |= DW_EH_PE_sdata8;
450 break;
451 }
452 return encoding | DW_EH_PE_pcrel;
453}
454
2f0c68f2
CM
455/* Examine each .eh_frame_entry section and discard those
456 those that are marked SEC_EXCLUDE. */
457
458static void
459bfd_elf_discard_eh_frame_entry (struct eh_frame_hdr_info *hdr_info)
460{
461 unsigned int i;
462 for (i = 0; i < hdr_info->array_count; i++)
463 {
464 if (hdr_info->u.compact.entries[i]->flags & SEC_EXCLUDE)
465 {
466 unsigned int j;
467 for (j = i + 1; j < hdr_info->array_count; j++)
468 hdr_info->u.compact.entries[j-1] = hdr_info->u.compact.entries[j];
469
470 hdr_info->array_count--;
471 hdr_info->u.compact.entries[hdr_info->array_count] = NULL;
472 i--;
473 }
474 }
475}
476
477/* Add a .eh_frame_entry section. */
478
479static void
480bfd_elf_record_eh_frame_entry (struct eh_frame_hdr_info *hdr_info,
481 asection *sec)
482{
483 if (hdr_info->array_count == hdr_info->u.compact.allocated_entries)
484 {
485 if (hdr_info->u.compact.allocated_entries == 0)
486 {
487 hdr_info->frame_hdr_is_compact = TRUE;
488 hdr_info->u.compact.allocated_entries = 2;
489 hdr_info->u.compact.entries =
490 bfd_malloc (hdr_info->u.compact.allocated_entries
491 * sizeof (hdr_info->u.compact.entries[0]));
492 }
493 else
494 {
495 hdr_info->u.compact.allocated_entries *= 2;
496 hdr_info->u.compact.entries =
497 bfd_realloc (hdr_info->u.compact.entries,
498 hdr_info->u.compact.allocated_entries
499 * sizeof (hdr_info->u.compact.entries[0]));
500 }
501
502 BFD_ASSERT (hdr_info->u.compact.entries);
503 }
504
505 hdr_info->u.compact.entries[hdr_info->array_count++] = sec;
506}
507
508/* Parse a .eh_frame_entry section. Figure out which text section it
509 references. */
510
511bfd_boolean
512_bfd_elf_parse_eh_frame_entry (struct bfd_link_info *info,
513 asection *sec, struct elf_reloc_cookie *cookie)
514{
515 struct elf_link_hash_table *htab;
516 struct eh_frame_hdr_info *hdr_info;
517 unsigned long r_symndx;
518 asection *text_sec;
519
520 htab = elf_hash_table (info);
521 hdr_info = &htab->eh_info;
522
523 if (sec->size == 0
524 || sec->sec_info_type != SEC_INFO_TYPE_NONE)
525 {
526 return TRUE;
527 }
528
529 if (sec->output_section && bfd_is_abs_section (sec->output_section))
530 {
531 /* At least one of the sections is being discarded from the
532 link, so we should just ignore them. */
533 return TRUE;
534 }
535
536 if (cookie->rel == cookie->relend)
537 return FALSE;
538
539 /* The first relocation is the function start. */
540 r_symndx = cookie->rel->r_info >> cookie->r_sym_shift;
541 if (r_symndx == STN_UNDEF)
542 return FALSE;
543
544 text_sec = _bfd_elf_section_for_symbol (cookie, r_symndx, FALSE);
545
546 if (text_sec == NULL)
547 return FALSE;
548
549 elf_section_eh_frame_entry (text_sec) = sec;
550 if (text_sec->output_section
551 && bfd_is_abs_section (text_sec->output_section))
552 sec->flags |= SEC_EXCLUDE;
553
554 sec->sec_info_type = SEC_INFO_TYPE_EH_FRAME_ENTRY;
555 elf_section_data (sec)->sec_info = text_sec;
556 bfd_elf_record_eh_frame_entry (hdr_info, sec);
557 return TRUE;
558}
559
ca92cecb
RS
560/* Try to parse .eh_frame section SEC, which belongs to ABFD. Store the
561 information in the section's sec_info field on success. COOKIE
562 describes the relocations in SEC. */
563
564void
565_bfd_elf_parse_eh_frame (bfd *abfd, struct bfd_link_info *info,
566 asection *sec, struct elf_reloc_cookie *cookie)
65765700 567{
acfe5567
RS
568#define REQUIRE(COND) \
569 do \
570 if (!(COND)) \
571 goto free_no_table; \
572 while (0)
573
ca92cecb 574 bfd_byte *ehbuf = NULL, *buf, *end;
bce613b9 575 bfd_byte *last_fde;
ca92cecb 576 struct eh_cie_fde *this_inf;
bce613b9 577 unsigned int hdr_length, hdr_id;
184d07da
RS
578 unsigned int cie_count;
579 struct cie *cie, *local_cies = NULL;
126495ed 580 struct elf_link_hash_table *htab;
65765700 581 struct eh_frame_hdr_info *hdr_info;
68f69152 582 struct eh_frame_sec_info *sec_info = NULL;
65765700 583 unsigned int ptr_size;
ca92cecb
RS
584 unsigned int num_cies;
585 unsigned int num_entries;
9d0a14d3 586 elf_gc_mark_hook_fn gc_mark_hook;
ca92cecb
RS
587
588 htab = elf_hash_table (info);
589 hdr_info = &htab->eh_info;
65765700 590
4d16d575 591 if (sec->size == 0
dbaa2011 592 || sec->sec_info_type != SEC_INFO_TYPE_NONE)
65765700
JJ
593 {
594 /* This file does not contain .eh_frame information. */
ca92cecb 595 return;
65765700
JJ
596 }
597
e460dd0d 598 if (bfd_is_abs_section (sec->output_section))
65765700
JJ
599 {
600 /* At least one of the sections is being discarded from the
3472e2e9 601 link, so we should just ignore them. */
ca92cecb 602 return;
65765700
JJ
603 }
604
605 /* Read the frame unwind information from abfd. */
606
acfe5567 607 REQUIRE (bfd_malloc_and_get_section (abfd, sec, &ehbuf));
68f69152 608
eea6121a 609 if (sec->size >= 4
65765700
JJ
610 && bfd_get_32 (abfd, ehbuf) == 0
611 && cookie->rel == cookie->relend)
612 {
613 /* Empty .eh_frame section. */
614 free (ehbuf);
ca92cecb 615 return;
65765700
JJ
616 }
617
65765700
JJ
618 /* If .eh_frame section size doesn't fit into int, we cannot handle
619 it (it would need to use 64-bit .eh_frame format anyway). */
acfe5567 620 REQUIRE (sec->size == (unsigned int) sec->size);
65765700 621
8c946ed5
RS
622 ptr_size = (get_elf_backend_data (abfd)
623 ->elf_backend_eh_frame_address_size (abfd, sec));
624 REQUIRE (ptr_size != 0);
625
ca92cecb
RS
626 /* Go through the section contents and work out how many FDEs and
627 CIEs there are. */
65765700 628 buf = ehbuf;
ca92cecb
RS
629 end = ehbuf + sec->size;
630 num_cies = 0;
631 num_entries = 0;
632 while (buf != end)
633 {
634 num_entries++;
635
636 /* Read the length of the entry. */
637 REQUIRE (skip_bytes (&buf, end, 4));
638 hdr_length = bfd_get_32 (abfd, buf - 4);
639
640 /* 64-bit .eh_frame is not supported. */
641 REQUIRE (hdr_length != 0xffffffff);
642 if (hdr_length == 0)
643 break;
644
645 REQUIRE (skip_bytes (&buf, end, 4));
646 hdr_id = bfd_get_32 (abfd, buf - 4);
647 if (hdr_id == 0)
648 num_cies++;
649
650 REQUIRE (skip_bytes (&buf, end, hdr_length - 4));
651 }
652
a50b1753
NC
653 sec_info = (struct eh_frame_sec_info *)
654 bfd_zmalloc (sizeof (struct eh_frame_sec_info)
655 + (num_entries - 1) * sizeof (struct eh_cie_fde));
acfe5567 656 REQUIRE (sec_info);
eea6121a 657
184d07da 658 /* We need to have a "struct cie" for each CIE in this section. */
a50b1753 659 local_cies = (struct cie *) bfd_zmalloc (num_cies * sizeof (*local_cies));
184d07da 660 REQUIRE (local_cies);
65765700 661
5dabe785 662 /* FIXME: octets_per_byte. */
65765700 663#define ENSURE_NO_RELOCS(buf) \
5b69e357
AM
664 while (cookie->rel < cookie->relend \
665 && (cookie->rel->r_offset \
666 < (bfd_size_type) ((buf) - ehbuf))) \
667 { \
668 REQUIRE (cookie->rel->r_info == 0); \
669 cookie->rel++; \
670 }
65765700 671
5dabe785 672 /* FIXME: octets_per_byte. */
65765700
JJ
673#define SKIP_RELOCS(buf) \
674 while (cookie->rel < cookie->relend \
3472e2e9 675 && (cookie->rel->r_offset \
65765700
JJ
676 < (bfd_size_type) ((buf) - ehbuf))) \
677 cookie->rel++
678
5dabe785 679 /* FIXME: octets_per_byte. */
65765700
JJ
680#define GET_RELOC(buf) \
681 ((cookie->rel < cookie->relend \
682 && (cookie->rel->r_offset \
3472e2e9 683 == (bfd_size_type) ((buf) - ehbuf))) \
65765700
JJ
684 ? cookie->rel : NULL)
685
ca92cecb 686 buf = ehbuf;
184d07da 687 cie_count = 0;
9d0a14d3 688 gc_mark_hook = get_elf_backend_data (abfd)->gc_mark_hook;
ca92cecb 689 while ((bfd_size_type) (buf - ehbuf) != sec->size)
65765700 690 {
f075ee0c 691 char *aug;
ca92cecb 692 bfd_byte *start, *insns, *insns_end;
2c42be65 693 bfd_size_type length;
ac685e6a 694 unsigned int set_loc_count;
65765700 695
fda3ecf2 696 this_inf = sec_info->entry + sec_info->count;
65765700 697 last_fde = buf;
bce613b9 698
bce613b9
JJ
699 /* Read the length of the entry. */
700 REQUIRE (skip_bytes (&buf, ehbuf + sec->size, 4));
701 hdr_length = bfd_get_32 (abfd, buf - 4);
acfe5567 702
bce613b9
JJ
703 /* The CIE/FDE must be fully contained in this input section. */
704 REQUIRE ((bfd_size_type) (buf - ehbuf) + hdr_length <= sec->size);
705 end = buf + hdr_length;
65765700 706
bce613b9
JJ
707 this_inf->offset = last_fde - ehbuf;
708 this_inf->size = 4 + hdr_length;
155eaaa0 709 this_inf->reloc_index = cookie->rel - cookie->rels;
bce613b9
JJ
710
711 if (hdr_length == 0)
712 {
713 /* A zero-length CIE should only be found at the end of
714 the section. */
715 REQUIRE ((bfd_size_type) (buf - ehbuf) == sec->size);
716 ENSURE_NO_RELOCS (buf);
717 sec_info->count++;
718 break;
65765700
JJ
719 }
720
bce613b9
JJ
721 REQUIRE (skip_bytes (&buf, end, 4));
722 hdr_id = bfd_get_32 (abfd, buf - 4);
723
724 if (hdr_id == 0)
65765700
JJ
725 {
726 unsigned int initial_insn_length;
727
728 /* CIE */
bce613b9
JJ
729 this_inf->cie = 1;
730
184d07da
RS
731 /* Point CIE to one of the section-local cie structures. */
732 cie = local_cies + cie_count++;
733
ca92cecb 734 cie->cie_inf = this_inf;
bce613b9 735 cie->length = hdr_length;
ac685e6a 736 start = buf;
bce613b9 737 REQUIRE (read_byte (&buf, end, &cie->version));
65765700
JJ
738
739 /* Cannot handle unknown versions. */
604282a7
JJ
740 REQUIRE (cie->version == 1
741 || cie->version == 3
742 || cie->version == 4);
bce613b9 743 REQUIRE (strlen ((char *) buf) < sizeof (cie->augmentation));
65765700 744
bce613b9 745 strcpy (cie->augmentation, (char *) buf);
f075ee0c 746 buf = (bfd_byte *) strchr ((char *) buf, '\0') + 1;
65765700
JJ
747 ENSURE_NO_RELOCS (buf);
748 if (buf[0] == 'e' && buf[1] == 'h')
749 {
750 /* GCC < 3.0 .eh_frame CIE */
751 /* We cannot merge "eh" CIEs because __EXCEPTION_TABLE__
752 is private to each CIE, so we don't need it for anything.
753 Just skip it. */
2c42be65 754 REQUIRE (skip_bytes (&buf, end, ptr_size));
65765700
JJ
755 SKIP_RELOCS (buf);
756 }
604282a7
JJ
757 if (cie->version >= 4)
758 {
759 REQUIRE (buf + 1 < end);
760 REQUIRE (buf[0] == ptr_size);
761 REQUIRE (buf[1] == 0);
762 buf += 2;
763 }
bce613b9
JJ
764 REQUIRE (read_uleb128 (&buf, end, &cie->code_align));
765 REQUIRE (read_sleb128 (&buf, end, &cie->data_align));
766 if (cie->version == 1)
2c42be65
RS
767 {
768 REQUIRE (buf < end);
bce613b9 769 cie->ra_column = *buf++;
2c42be65 770 }
0da76f83 771 else
bce613b9 772 REQUIRE (read_uleb128 (&buf, end, &cie->ra_column));
65765700 773 ENSURE_NO_RELOCS (buf);
bce613b9
JJ
774 cie->lsda_encoding = DW_EH_PE_omit;
775 cie->fde_encoding = DW_EH_PE_omit;
776 cie->per_encoding = DW_EH_PE_omit;
777 aug = cie->augmentation;
65765700
JJ
778 if (aug[0] != 'e' || aug[1] != 'h')
779 {
780 if (*aug == 'z')
781 {
782 aug++;
bce613b9 783 REQUIRE (read_uleb128 (&buf, end, &cie->augmentation_size));
65765700
JJ
784 ENSURE_NO_RELOCS (buf);
785 }
786
787 while (*aug != '\0')
788 switch (*aug++)
789 {
790 case 'L':
bce613b9 791 REQUIRE (read_byte (&buf, end, &cie->lsda_encoding));
65765700 792 ENSURE_NO_RELOCS (buf);
bce613b9 793 REQUIRE (get_DW_EH_PE_width (cie->lsda_encoding, ptr_size));
65765700
JJ
794 break;
795 case 'R':
bce613b9 796 REQUIRE (read_byte (&buf, end, &cie->fde_encoding));
65765700 797 ENSURE_NO_RELOCS (buf);
bce613b9 798 REQUIRE (get_DW_EH_PE_width (cie->fde_encoding, ptr_size));
65765700 799 break;
63752a75
JJ
800 case 'S':
801 break;
65765700
JJ
802 case 'P':
803 {
804 int per_width;
805
bce613b9
JJ
806 REQUIRE (read_byte (&buf, end, &cie->per_encoding));
807 per_width = get_DW_EH_PE_width (cie->per_encoding,
65765700 808 ptr_size);
acfe5567 809 REQUIRE (per_width);
18e04883 810 if ((cie->per_encoding & 0x70) == DW_EH_PE_aligned)
2c42be65
RS
811 {
812 length = -(buf - ehbuf) & (per_width - 1);
813 REQUIRE (skip_bytes (&buf, end, length));
814 }
18e04883 815 this_inf->u.cie.personality_offset = buf - start;
65765700 816 ENSURE_NO_RELOCS (buf);
f137a54e 817 /* Ensure we have a reloc here. */
184d07da
RS
818 REQUIRE (GET_RELOC (buf));
819 cie->personality.reloc_index
820 = cookie->rel - cookie->rels;
821 /* Cope with MIPS-style composite relocations. */
822 do
823 cookie->rel++;
824 while (GET_RELOC (buf) != NULL);
2c42be65 825 REQUIRE (skip_bytes (&buf, end, per_width));
65765700
JJ
826 }
827 break;
828 default:
829 /* Unrecognized augmentation. Better bail out. */
830 goto free_no_table;
831 }
832 }
833
834 /* For shared libraries, try to get rid of as many RELATIVE relocs
0bb2d96a 835 as possible. */
3472e2e9 836 if (info->shared
5b69e357 837 && !info->relocatable
ec3391e7
AO
838 && (get_elf_backend_data (abfd)
839 ->elf_backend_can_make_relative_eh_frame
353057a5
RS
840 (abfd, info, sec)))
841 {
18e04883 842 if ((cie->fde_encoding & 0x70) == DW_EH_PE_absptr)
6b2cc140 843 this_inf->make_relative = 1;
353057a5
RS
844 /* If the CIE doesn't already have an 'R' entry, it's fairly
845 easy to add one, provided that there's no aligned data
846 after the augmentation string. */
bce613b9 847 else if (cie->fde_encoding == DW_EH_PE_omit
18e04883 848 && (cie->per_encoding & 0x70) != DW_EH_PE_aligned)
353057a5 849 {
bce613b9 850 if (*cie->augmentation == 0)
353057a5 851 this_inf->add_augmentation_size = 1;
6b2cc140
RS
852 this_inf->u.cie.add_fde_encoding = 1;
853 this_inf->make_relative = 1;
353057a5 854 }
65765700 855
18e04883
RS
856 if ((cie->lsda_encoding & 0x70) == DW_EH_PE_absptr)
857 cie->can_make_lsda_relative = 1;
858 }
9e2a4898 859
65765700
JJ
860 /* If FDE encoding was not specified, it defaults to
861 DW_EH_absptr. */
bce613b9
JJ
862 if (cie->fde_encoding == DW_EH_PE_omit)
863 cie->fde_encoding = DW_EH_PE_absptr;
65765700 864
dcf507a6 865 initial_insn_length = end - buf;
99d190fa
AM
866 cie->initial_insn_length = initial_insn_length;
867 memcpy (cie->initial_instructions, buf,
868 initial_insn_length <= sizeof (cie->initial_instructions)
869 ? initial_insn_length : sizeof (cie->initial_instructions));
dcf507a6 870 insns = buf;
65765700
JJ
871 buf += initial_insn_length;
872 ENSURE_NO_RELOCS (buf);
ca92cecb 873
da44f4e5 874 if (!info->relocatable)
5b69e357
AM
875 {
876 /* Keep info for merging cies. */
877 this_inf->u.cie.u.full_cie = cie;
878 this_inf->u.cie.per_encoding_relative
879 = (cie->per_encoding & 0x70) == DW_EH_PE_pcrel;
880 }
65765700
JJ
881 }
882 else
883 {
bce613b9
JJ
884 /* Find the corresponding CIE. */
885 unsigned int cie_offset = this_inf->offset + 4 - hdr_id;
184d07da
RS
886 for (cie = local_cies; cie < local_cies + cie_count; cie++)
887 if (cie_offset == cie->cie_inf->offset)
bce613b9
JJ
888 break;
889
890 /* Ensure this FDE references one of the CIEs in this input
891 section. */
184d07da
RS
892 REQUIRE (cie != local_cies + cie_count);
893 this_inf->u.fde.cie_inf = cie->cie_inf;
894 this_inf->make_relative = cie->cie_inf->make_relative;
6b2cc140 895 this_inf->add_augmentation_size
184d07da 896 = cie->cie_inf->add_augmentation_size;
65765700
JJ
897
898 ENSURE_NO_RELOCS (buf);
e41b3a13 899 if ((sec->flags & SEC_LINKER_CREATED) == 0 || cookie->rels != NULL)
2a7b2e88 900 {
e41b3a13
JJ
901 asection *rsec;
902
903 REQUIRE (GET_RELOC (buf));
904
905 /* Chain together the FDEs for each section. */
906 rsec = _bfd_elf_gc_mark_rsec (info, sec, gc_mark_hook, cookie);
907 /* RSEC will be NULL if FDE was cleared out as it was belonging to
908 a discarded SHT_GROUP. */
909 if (rsec)
910 {
911 REQUIRE (rsec->owner == abfd);
912 this_inf->u.fde.next_for_section = elf_fde_list (rsec);
913 elf_fde_list (rsec) = this_inf;
914 }
2a7b2e88 915 }
9d0a14d3 916
2c42be65
RS
917 /* Skip the initial location and address range. */
918 start = buf;
bce613b9 919 length = get_DW_EH_PE_width (cie->fde_encoding, ptr_size);
2c42be65
RS
920 REQUIRE (skip_bytes (&buf, end, 2 * length));
921
c2aaac08
AM
922 SKIP_RELOCS (buf - length);
923 if (!GET_RELOC (buf - length)
924 && read_value (abfd, buf - length, length, FALSE) == 0)
925 {
926 (*info->callbacks->minfo)
927 (_("discarding zero address range FDE in %B(%A).\n"),
928 abfd, sec);
929 this_inf->u.fde.cie_inf = NULL;
930 }
931
2c42be65 932 /* Skip the augmentation size, if present. */
bce613b9 933 if (cie->augmentation[0] == 'z')
dcf507a6
RS
934 REQUIRE (read_uleb128 (&buf, end, &length));
935 else
936 length = 0;
2c42be65
RS
937
938 /* Of the supported augmentation characters above, only 'L'
939 adds augmentation data to the FDE. This code would need to
940 be adjusted if any future augmentations do the same thing. */
bce613b9 941 if (cie->lsda_encoding != DW_EH_PE_omit)
dcf507a6 942 {
9f4b847e
RS
943 SKIP_RELOCS (buf);
944 if (cie->can_make_lsda_relative && GET_RELOC (buf))
945 cie->cie_inf->u.cie.make_lsda_relative = 1;
dcf507a6
RS
946 this_inf->lsda_offset = buf - start;
947 /* If there's no 'z' augmentation, we don't know where the
948 CFA insns begin. Assume no padding. */
bce613b9 949 if (cie->augmentation[0] != 'z')
dcf507a6
RS
950 length = end - buf;
951 }
952
953 /* Skip over the augmentation data. */
954 REQUIRE (skip_bytes (&buf, end, length));
955 insns = buf;
9e2a4898 956
bce613b9 957 buf = last_fde + 4 + hdr_length;
2a7b2e88 958
273f4430
JK
959 /* For NULL RSEC (cleared FDE belonging to a discarded section)
960 the relocations are commonly cleared. We do not sanity check if
961 all these relocations are cleared as (1) relocations to
962 .gcc_except_table will remain uncleared (they will get dropped
963 with the drop of this unused FDE) and (2) BFD already safely drops
964 relocations of any type to .eh_frame by
965 elf_section_ignore_discarded_relocs.
966 TODO: The .gcc_except_table entries should be also filtered as
967 .eh_frame entries; or GCC could rather use COMDAT for them. */
968 SKIP_RELOCS (buf);
65765700
JJ
969 }
970
dcf507a6
RS
971 /* Try to interpret the CFA instructions and find the first
972 padding nop. Shrink this_inf's size so that it doesn't
ac685e6a 973 include the padding. */
bce613b9 974 length = get_DW_EH_PE_width (cie->fde_encoding, ptr_size);
ac685e6a
JJ
975 set_loc_count = 0;
976 insns_end = skip_non_nops (insns, end, length, &set_loc_count);
977 /* If we don't understand the CFA instructions, we can't know
978 what needs to be adjusted there. */
979 if (insns_end == NULL
980 /* For the time being we don't support DW_CFA_set_loc in
981 CIE instructions. */
982 || (set_loc_count && this_inf->cie))
983 goto free_no_table;
984 this_inf->size -= end - insns_end;
bce613b9
JJ
985 if (insns_end != end && this_inf->cie)
986 {
987 cie->initial_insn_length -= end - insns_end;
988 cie->length -= end - insns_end;
989 }
ac685e6a 990 if (set_loc_count
18e04883 991 && ((cie->fde_encoding & 0x70) == DW_EH_PE_pcrel
6b2cc140 992 || this_inf->make_relative))
ac685e6a
JJ
993 {
994 unsigned int cnt;
995 bfd_byte *p;
996
a50b1753
NC
997 this_inf->set_loc = (unsigned int *)
998 bfd_malloc ((set_loc_count + 1) * sizeof (unsigned int));
ac685e6a
JJ
999 REQUIRE (this_inf->set_loc);
1000 this_inf->set_loc[0] = set_loc_count;
1001 p = insns;
1002 cnt = 0;
1003 while (p < end)
1004 {
1005 if (*p == DW_CFA_set_loc)
1006 this_inf->set_loc[++cnt] = p + 1 - start;
1007 REQUIRE (skip_cfa_op (&p, end, length));
1008 }
1009 }
dcf507a6 1010
ca92cecb 1011 this_inf->removed = 1;
bce613b9
JJ
1012 this_inf->fde_encoding = cie->fde_encoding;
1013 this_inf->lsda_encoding = cie->lsda_encoding;
65765700
JJ
1014 sec_info->count++;
1015 }
ca92cecb 1016 BFD_ASSERT (sec_info->count == num_entries);
184d07da 1017 BFD_ASSERT (cie_count == num_cies);
65765700
JJ
1018
1019 elf_section_data (sec)->sec_info = sec_info;
dbaa2011 1020 sec->sec_info_type = SEC_INFO_TYPE_EH_FRAME;
da44f4e5 1021 if (!info->relocatable)
184d07da 1022 {
da44f4e5 1023 /* Keep info for merging cies. */
184d07da
RS
1024 sec_info->cies = local_cies;
1025 local_cies = NULL;
1026 }
ca92cecb 1027 goto success;
65765700 1028
ca92cecb
RS
1029 free_no_table:
1030 (*info->callbacks->einfo)
1031 (_("%P: error in %B(%A); no .eh_frame_hdr table will be created.\n"),
1032 abfd, sec);
2f0c68f2 1033 hdr_info->u.dwarf.table = FALSE;
ca92cecb
RS
1034 if (sec_info)
1035 free (sec_info);
1036 success:
1037 if (ehbuf)
1038 free (ehbuf);
ca92cecb
RS
1039 if (local_cies)
1040 free (local_cies);
1041#undef REQUIRE
1042}
bce613b9 1043
2f0c68f2
CM
1044/* Order eh_frame_hdr entries by the VMA of their text section. */
1045
1046static int
1047cmp_eh_frame_hdr (const void *a, const void *b)
1048{
1049 bfd_vma text_a;
1050 bfd_vma text_b;
1051 asection *sec;
1052
1053 sec = *(asection *const *)a;
1054 sec = (asection *) elf_section_data (sec)->sec_info;
1055 text_a = sec->output_section->vma + sec->output_offset;
1056 sec = *(asection *const *)b;
1057 sec = (asection *) elf_section_data (sec)->sec_info;
1058 text_b = sec->output_section->vma + sec->output_offset;
1059
1060 if (text_a < text_b)
1061 return -1;
1062 return text_a > text_b;
1063
1064}
1065
1066/* Add space for a CANTUNWIND terminator to SEC if the text sections
1067 referenced by it and NEXT are not contiguous, or NEXT is NULL. */
1068
1069static void
1070add_eh_frame_hdr_terminator (asection *sec,
1071 asection *next)
1072{
1073 bfd_vma end;
1074 bfd_vma next_start;
1075 asection *text_sec;
1076
1077 if (next)
1078 {
1079 /* See if there is a gap (presumably a text section without unwind info)
1080 between these two entries. */
1081 text_sec = (asection *) elf_section_data (sec)->sec_info;
1082 end = text_sec->output_section->vma + text_sec->output_offset
1083 + text_sec->size;
1084 text_sec = (asection *) elf_section_data (next)->sec_info;
1085 next_start = text_sec->output_section->vma + text_sec->output_offset;
1086 if (end == next_start)
1087 return;
1088 }
1089
1090 /* Add space for a CANTUNWIND terminator. */
1091 if (!sec->rawsize)
1092 sec->rawsize = sec->size;
1093
1094 bfd_set_section_size (sec->owner, sec, sec->size + 8);
1095}
1096
1097/* Finish a pass over all .eh_frame_entry sections. */
1098
1099bfd_boolean
1100_bfd_elf_end_eh_frame_parsing (struct bfd_link_info *info)
1101{
1102 struct eh_frame_hdr_info *hdr_info;
1103 unsigned int i;
1104
1105 hdr_info = &elf_hash_table (info)->eh_info;
1106
1107 if (info->eh_frame_hdr_type != COMPACT_EH_HDR
1108 || hdr_info->array_count == 0)
1109 return FALSE;
1110
1111 bfd_elf_discard_eh_frame_entry (hdr_info);
1112
1113 qsort (hdr_info->u.compact.entries, hdr_info->array_count,
1114 sizeof (asection *), cmp_eh_frame_hdr);
1115
1116 for (i = 0; i < hdr_info->array_count - 1; i++)
1117 {
1118 add_eh_frame_hdr_terminator (hdr_info->u.compact.entries[i],
1119 hdr_info->u.compact.entries[i + 1]);
1120 }
1121
1122 /* Add a CANTUNWIND terminator after the last entry. */
1123 add_eh_frame_hdr_terminator (hdr_info->u.compact.entries[i], NULL);
1124 return TRUE;
1125}
1126
9d0a14d3
RS
1127/* Mark all relocations against CIE or FDE ENT, which occurs in
1128 .eh_frame section SEC. COOKIE describes the relocations in SEC;
1129 its "rel" field can be changed freely. */
1130
1131static bfd_boolean
1132mark_entry (struct bfd_link_info *info, asection *sec,
1133 struct eh_cie_fde *ent, elf_gc_mark_hook_fn gc_mark_hook,
1134 struct elf_reloc_cookie *cookie)
1135{
5dabe785 1136 /* FIXME: octets_per_byte. */
9d0a14d3
RS
1137 for (cookie->rel = cookie->rels + ent->reloc_index;
1138 cookie->rel < cookie->relend
1139 && cookie->rel->r_offset < ent->offset + ent->size;
1140 cookie->rel++)
1141 if (!_bfd_elf_gc_mark_reloc (info, sec, gc_mark_hook, cookie))
1142 return FALSE;
1143
1144 return TRUE;
1145}
1146
1147/* Mark all the relocations against FDEs that relate to code in input
1148 section SEC. The FDEs belong to .eh_frame section EH_FRAME, whose
1149 relocations are described by COOKIE. */
1150
1151bfd_boolean
1152_bfd_elf_gc_mark_fdes (struct bfd_link_info *info, asection *sec,
1153 asection *eh_frame, elf_gc_mark_hook_fn gc_mark_hook,
1154 struct elf_reloc_cookie *cookie)
1155{
184d07da 1156 struct eh_cie_fde *fde, *cie;
9d0a14d3
RS
1157
1158 for (fde = elf_fde_list (sec); fde; fde = fde->u.fde.next_for_section)
1159 {
1160 if (!mark_entry (info, eh_frame, fde, gc_mark_hook, cookie))
1161 return FALSE;
1162
1163 /* At this stage, all cie_inf fields point to local CIEs, so we
1164 can use the same cookie to refer to them. */
1165 cie = fde->u.fde.cie_inf;
c2aaac08 1166 if (cie != NULL && !cie->u.cie.gc_mark)
9d0a14d3 1167 {
184d07da 1168 cie->u.cie.gc_mark = 1;
9d0a14d3
RS
1169 if (!mark_entry (info, eh_frame, cie, gc_mark_hook, cookie))
1170 return FALSE;
1171 }
1172 }
1173 return TRUE;
1174}
1175
184d07da
RS
1176/* Input section SEC of ABFD is an .eh_frame section that contains the
1177 CIE described by CIE_INF. Return a version of CIE_INF that is going
1178 to be kept in the output, adding CIE_INF to the output if necessary.
1179
1180 HDR_INFO is the .eh_frame_hdr information and COOKIE describes the
1181 relocations in REL. */
1182
1183static struct eh_cie_fde *
18e04883 1184find_merged_cie (bfd *abfd, struct bfd_link_info *info, asection *sec,
184d07da
RS
1185 struct eh_frame_hdr_info *hdr_info,
1186 struct elf_reloc_cookie *cookie,
1187 struct eh_cie_fde *cie_inf)
1188{
1189 unsigned long r_symndx;
1190 struct cie *cie, *new_cie;
1191 Elf_Internal_Rela *rel;
1192 void **loc;
1193
1194 /* Use CIE_INF if we have already decided to keep it. */
1195 if (!cie_inf->removed)
1196 return cie_inf;
1197
1198 /* If we have merged CIE_INF with another CIE, use that CIE instead. */
1199 if (cie_inf->u.cie.merged)
1200 return cie_inf->u.cie.u.merged_with;
1201
1202 cie = cie_inf->u.cie.u.full_cie;
1203
1204 /* Assume we will need to keep CIE_INF. */
1205 cie_inf->removed = 0;
1206 cie_inf->u.cie.u.sec = sec;
1207
1208 /* If we are not merging CIEs, use CIE_INF. */
1209 if (cie == NULL)
1210 return cie_inf;
1211
1212 if (cie->per_encoding != DW_EH_PE_omit)
1213 {
18e04883
RS
1214 bfd_boolean per_binds_local;
1215
5087d529
AM
1216 /* Work out the address of personality routine, or at least
1217 enough info that we could calculate the address had we made a
1218 final section layout. The symbol on the reloc is enough,
1219 either the hash for a global, or (bfd id, index) pair for a
1220 local. The assumption here is that no one uses addends on
1221 the reloc. */
184d07da
RS
1222 rel = cookie->rels + cie->personality.reloc_index;
1223 memset (&cie->personality, 0, sizeof (cie->personality));
1224#ifdef BFD64
1225 if (elf_elfheader (abfd)->e_ident[EI_CLASS] == ELFCLASS64)
1226 r_symndx = ELF64_R_SYM (rel->r_info);
1227 else
1228#endif
1229 r_symndx = ELF32_R_SYM (rel->r_info);
1230 if (r_symndx >= cookie->locsymcount
1231 || ELF_ST_BIND (cookie->locsyms[r_symndx].st_info) != STB_LOCAL)
1232 {
1233 struct elf_link_hash_entry *h;
1234
1235 r_symndx -= cookie->extsymoff;
1236 h = cookie->sym_hashes[r_symndx];
1237
1238 while (h->root.type == bfd_link_hash_indirect
1239 || h->root.type == bfd_link_hash_warning)
1240 h = (struct elf_link_hash_entry *) h->root.u.i.link;
1241
1242 cie->personality.h = h;
18e04883 1243 per_binds_local = SYMBOL_REFERENCES_LOCAL (info, h);
184d07da
RS
1244 }
1245 else
1246 {
1247 Elf_Internal_Sym *sym;
1248 asection *sym_sec;
1249
1250 sym = &cookie->locsyms[r_symndx];
1251 sym_sec = bfd_section_from_elf_index (abfd, sym->st_shndx);
1252 if (sym_sec == NULL)
1253 return cie_inf;
1254
1255 if (sym_sec->kept_section != NULL)
1256 sym_sec = sym_sec->kept_section;
1257 if (sym_sec->output_section == NULL)
1258 return cie_inf;
1259
1260 cie->local_personality = 1;
5087d529
AM
1261 cie->personality.sym.bfd_id = abfd->id;
1262 cie->personality.sym.index = r_symndx;
18e04883
RS
1263 per_binds_local = TRUE;
1264 }
1265
1266 if (per_binds_local
1267 && info->shared
5b69e357 1268 && !info->relocatable
18e04883
RS
1269 && (cie->per_encoding & 0x70) == DW_EH_PE_absptr
1270 && (get_elf_backend_data (abfd)
1271 ->elf_backend_can_make_relative_eh_frame (abfd, info, sec)))
1272 {
1273 cie_inf->u.cie.make_per_encoding_relative = 1;
1274 cie_inf->u.cie.per_encoding_relative = 1;
184d07da
RS
1275 }
1276 }
1277
1278 /* See if we can merge this CIE with an earlier one. */
184d07da 1279 cie_compute_hash (cie);
2f0c68f2 1280 if (hdr_info->u.dwarf.cies == NULL)
184d07da 1281 {
2f0c68f2
CM
1282 hdr_info->u.dwarf.cies = htab_try_create (1, cie_hash, cie_eq, free);
1283 if (hdr_info->u.dwarf.cies == NULL)
184d07da
RS
1284 return cie_inf;
1285 }
2f0c68f2
CM
1286 loc = htab_find_slot_with_hash (hdr_info->u.dwarf.cies, cie,
1287 cie->hash, INSERT);
184d07da
RS
1288 if (loc == NULL)
1289 return cie_inf;
1290
1291 new_cie = (struct cie *) *loc;
1292 if (new_cie == NULL)
1293 {
1294 /* Keep CIE_INF and record it in the hash table. */
a50b1753 1295 new_cie = (struct cie *) malloc (sizeof (struct cie));
184d07da
RS
1296 if (new_cie == NULL)
1297 return cie_inf;
1298
1299 memcpy (new_cie, cie, sizeof (struct cie));
1300 *loc = new_cie;
1301 }
1302 else
1303 {
1304 /* Merge CIE_INF with NEW_CIE->CIE_INF. */
1305 cie_inf->removed = 1;
1306 cie_inf->u.cie.merged = 1;
1307 cie_inf->u.cie.u.merged_with = new_cie->cie_inf;
1308 if (cie_inf->u.cie.make_lsda_relative)
1309 new_cie->cie_inf->u.cie.make_lsda_relative = 1;
1310 }
1311 return new_cie->cie_inf;
1312}
1313
ca92cecb
RS
1314/* This function is called for each input file before the .eh_frame
1315 section is relocated. It discards duplicate CIEs and FDEs for discarded
1316 functions. The function returns TRUE iff any entries have been
1317 deleted. */
1318
1319bfd_boolean
1320_bfd_elf_discard_section_eh_frame
1321 (bfd *abfd, struct bfd_link_info *info, asection *sec,
1322 bfd_boolean (*reloc_symbol_deleted_p) (bfd_vma, void *),
1323 struct elf_reloc_cookie *cookie)
1324{
184d07da 1325 struct eh_cie_fde *ent;
ca92cecb
RS
1326 struct eh_frame_sec_info *sec_info;
1327 struct eh_frame_hdr_info *hdr_info;
1328 unsigned int ptr_size, offset;
1329
dbaa2011 1330 if (sec->sec_info_type != SEC_INFO_TYPE_EH_FRAME)
4d16d575
AM
1331 return FALSE;
1332
ca92cecb
RS
1333 sec_info = (struct eh_frame_sec_info *) elf_section_data (sec)->sec_info;
1334 if (sec_info == NULL)
1335 return FALSE;
1336
e41b3a13
JJ
1337 ptr_size = (get_elf_backend_data (sec->owner)
1338 ->elf_backend_eh_frame_address_size (sec->owner, sec));
1339
ca92cecb 1340 hdr_info = &elf_hash_table (info)->eh_info;
fda3ecf2 1341 for (ent = sec_info->entry; ent < sec_info->entry + sec_info->count; ++ent)
f60e73e9
AM
1342 if (ent->size == 4)
1343 /* There should only be one zero terminator, on the last input
1344 file supplying .eh_frame (crtend.o). Remove any others. */
1345 ent->removed = sec->map_head.s != NULL;
c2aaac08 1346 else if (!ent->cie && ent->u.fde.cie_inf != NULL)
fda3ecf2 1347 {
e41b3a13
JJ
1348 bfd_boolean keep;
1349 if ((sec->flags & SEC_LINKER_CREATED) != 0 && cookie->rels == NULL)
1350 {
1351 unsigned int width
1352 = get_DW_EH_PE_width (ent->fde_encoding, ptr_size);
1353 bfd_vma value
1354 = read_value (abfd, sec->contents + ent->offset + 8 + width,
1355 width, get_DW_EH_PE_signed (ent->fde_encoding));
1356 keep = value != 0;
1357 }
1358 else
1359 {
1360 cookie->rel = cookie->rels + ent->reloc_index;
1361 /* FIXME: octets_per_byte. */
1362 BFD_ASSERT (cookie->rel < cookie->relend
1363 && cookie->rel->r_offset == ent->offset + 8);
1364 keep = !(*reloc_symbol_deleted_p) (ent->offset + 8, cookie);
1365 }
1366 if (keep)
bce613b9 1367 {
ca92cecb 1368 if (info->shared
18e04883 1369 && (((ent->fde_encoding & 0x70) == DW_EH_PE_absptr
6b2cc140 1370 && ent->make_relative == 0)
18e04883 1371 || (ent->fde_encoding & 0x70) == DW_EH_PE_aligned))
ca92cecb
RS
1372 {
1373 /* If a shared library uses absolute pointers
1374 which we cannot turn into PC relative,
1375 don't create the binary search table,
1376 since it is affected by runtime relocations. */
2f0c68f2 1377 hdr_info->u.dwarf.table = FALSE;
ca92cecb 1378 (*info->callbacks->einfo)
c2aaac08 1379 (_("%P: FDE encoding in %B(%A) prevents .eh_frame_hdr"
ca92cecb
RS
1380 " table being created.\n"), abfd, sec);
1381 }
1382 ent->removed = 0;
2f0c68f2 1383 hdr_info->u.dwarf.fde_count++;
18e04883
RS
1384 ent->u.fde.cie_inf = find_merged_cie (abfd, info, sec, hdr_info,
1385 cookie, ent->u.fde.cie_inf);
bce613b9 1386 }
ca92cecb
RS
1387 }
1388
184d07da
RS
1389 if (sec_info->cies)
1390 {
1391 free (sec_info->cies);
1392 sec_info->cies = NULL;
1393 }
1394
ca92cecb
RS
1395 offset = 0;
1396 for (ent = sec_info->entry; ent < sec_info->entry + sec_info->count; ++ent)
1397 if (!ent->removed)
1398 {
353057a5
RS
1399 ent->new_offset = offset;
1400 offset += size_of_output_cie_fde (ent, ptr_size);
fda3ecf2 1401 }
65765700 1402
eea6121a 1403 sec->rawsize = sec->size;
353057a5 1404 sec->size = offset;
353057a5 1405 return offset != sec->rawsize;
65765700
JJ
1406}
1407
1408/* This function is called for .eh_frame_hdr section after
1409 _bfd_elf_discard_section_eh_frame has been called on all .eh_frame
1410 input sections. It finalizes the size of .eh_frame_hdr section. */
1411
b34976b6 1412bfd_boolean
c39a58e6 1413_bfd_elf_discard_section_eh_frame_hdr (bfd *abfd, struct bfd_link_info *info)
65765700 1414{
126495ed 1415 struct elf_link_hash_table *htab;
65765700 1416 struct eh_frame_hdr_info *hdr_info;
126495ed 1417 asection *sec;
65765700 1418
126495ed
AM
1419 htab = elf_hash_table (info);
1420 hdr_info = &htab->eh_info;
bce613b9 1421
2f0c68f2 1422 if (!hdr_info->frame_hdr_is_compact && hdr_info->u.dwarf.cies != NULL)
184d07da 1423 {
2f0c68f2
CM
1424 htab_delete (hdr_info->u.dwarf.cies);
1425 hdr_info->u.dwarf.cies = NULL;
184d07da
RS
1426 }
1427
126495ed
AM
1428 sec = hdr_info->hdr_sec;
1429 if (sec == NULL)
b34976b6 1430 return FALSE;
126495ed 1431
2f0c68f2
CM
1432 if (info->eh_frame_hdr_type == COMPACT_EH_HDR)
1433 {
1434 /* For compact frames we only add the header. The actual table comes
1435 from the .eh_frame_entry sections. */
1436 sec->size = 8;
1437 }
1438 else
1439 {
1440 sec->size = EH_FRAME_HDR_SIZE;
1441 if (hdr_info->u.dwarf.table)
1442 sec->size += 4 + hdr_info->u.dwarf.fde_count * 8;
1443 }
65765700 1444
12bd6957 1445 elf_eh_frame_hdr (abfd) = sec;
b34976b6 1446 return TRUE;
65765700
JJ
1447}
1448
9a2a56cc
AM
1449/* Return true if there is at least one non-empty .eh_frame section in
1450 input files. Can only be called after ld has mapped input to
1451 output sections, and before sections are stripped. */
2f0c68f2 1452
9a2a56cc
AM
1453bfd_boolean
1454_bfd_elf_eh_frame_present (struct bfd_link_info *info)
1455{
1456 asection *eh = bfd_get_section_by_name (info->output_bfd, ".eh_frame");
1457
1458 if (eh == NULL)
1459 return FALSE;
1460
1461 /* Count only sections which have at least a single CIE or FDE.
1462 There cannot be any CIE or FDE <= 8 bytes. */
1463 for (eh = eh->map_head.s; eh != NULL; eh = eh->map_head.s)
1464 if (eh->size > 8)
1465 return TRUE;
1466
1467 return FALSE;
1468}
1469
2f0c68f2
CM
1470/* Return true if there is at least one .eh_frame_entry section in
1471 input files. */
1472
1473bfd_boolean
1474_bfd_elf_eh_frame_entry_present (struct bfd_link_info *info)
1475{
1476 asection *o;
1477 bfd *abfd;
1478
1479 for (abfd = info->input_bfds; abfd != NULL; abfd = abfd->link.next)
1480 {
1481 for (o = abfd->sections; o; o = o->next)
1482 {
1483 const char *name = bfd_get_section_name (abfd, o);
1484
1485 if (strcmp (name, ".eh_frame_entry")
1486 && !bfd_is_abs_section (o->output_section))
1487 return TRUE;
1488 }
1489 }
1490 return FALSE;
1491}
1492
68f69152
JJ
1493/* This function is called from size_dynamic_sections.
1494 It needs to decide whether .eh_frame_hdr should be output or not,
8423293d
AM
1495 because when the dynamic symbol table has been sized it is too late
1496 to strip sections. */
68f69152 1497
b34976b6 1498bfd_boolean
c39a58e6 1499_bfd_elf_maybe_strip_eh_frame_hdr (struct bfd_link_info *info)
68f69152 1500{
126495ed 1501 struct elf_link_hash_table *htab;
68f69152 1502 struct eh_frame_hdr_info *hdr_info;
2f0c68f2
CM
1503 struct bfd_link_hash_entry *bh = NULL;
1504 struct elf_link_hash_entry *h;
68f69152 1505
126495ed
AM
1506 htab = elf_hash_table (info);
1507 hdr_info = &htab->eh_info;
1508 if (hdr_info->hdr_sec == NULL)
b34976b6 1509 return TRUE;
68f69152 1510
9a2a56cc 1511 if (bfd_is_abs_section (hdr_info->hdr_sec->output_section)
2f0c68f2
CM
1512 || info->eh_frame_hdr_type == 0
1513 || (info->eh_frame_hdr_type == DWARF2_EH_HDR
1514 && !_bfd_elf_eh_frame_present (info))
1515 || (info->eh_frame_hdr_type == COMPACT_EH_HDR
1516 && !_bfd_elf_eh_frame_entry_present (info)))
68f69152 1517 {
8423293d 1518 hdr_info->hdr_sec->flags |= SEC_EXCLUDE;
126495ed 1519 hdr_info->hdr_sec = NULL;
b34976b6 1520 return TRUE;
68f69152 1521 }
126495ed 1522
2f0c68f2
CM
1523 /* Add a hidden symbol so that systems without access to PHDRs can
1524 find the table. */
1525 if (! (_bfd_generic_link_add_one_symbol
1526 (info, info->output_bfd, "__GNU_EH_FRAME_HDR", BSF_LOCAL,
1527 hdr_info->hdr_sec, 0, NULL, FALSE, FALSE, &bh)))
1528 return FALSE;
1529
1530 h = (struct elf_link_hash_entry *) bh;
1531 h->def_regular = 1;
1532 h->other = STV_HIDDEN;
1533 get_elf_backend_data
1534 (info->output_bfd)->elf_backend_hide_symbol (info, h, TRUE);
1535
1536 if (!hdr_info->frame_hdr_is_compact)
1537 hdr_info->u.dwarf.table = TRUE;
b34976b6 1538 return TRUE;
68f69152
JJ
1539}
1540
65765700
JJ
1541/* Adjust an address in the .eh_frame section. Given OFFSET within
1542 SEC, this returns the new offset in the adjusted .eh_frame section,
1543 or -1 if the address refers to a CIE/FDE which has been removed
1544 or to offset with dynamic relocation which is no longer needed. */
1545
1546bfd_vma
c39a58e6 1547_bfd_elf_eh_frame_section_offset (bfd *output_bfd ATTRIBUTE_UNUSED,
3d540e93 1548 struct bfd_link_info *info ATTRIBUTE_UNUSED,
c39a58e6
AM
1549 asection *sec,
1550 bfd_vma offset)
65765700
JJ
1551{
1552 struct eh_frame_sec_info *sec_info;
1553 unsigned int lo, hi, mid;
1554
dbaa2011 1555 if (sec->sec_info_type != SEC_INFO_TYPE_EH_FRAME)
65765700 1556 return offset;
a50b1753 1557 sec_info = (struct eh_frame_sec_info *) elf_section_data (sec)->sec_info;
65765700 1558
eea6121a
AM
1559 if (offset >= sec->rawsize)
1560 return offset - sec->rawsize + sec->size;
65765700
JJ
1561
1562 lo = 0;
1563 hi = sec_info->count;
1564 mid = 0;
1565 while (lo < hi)
1566 {
1567 mid = (lo + hi) / 2;
1568 if (offset < sec_info->entry[mid].offset)
1569 hi = mid;
1570 else if (offset
1571 >= sec_info->entry[mid].offset + sec_info->entry[mid].size)
1572 lo = mid + 1;
1573 else
1574 break;
1575 }
1576
1577 BFD_ASSERT (lo < hi);
1578
1579 /* FDE or CIE was removed. */
1580 if (sec_info->entry[mid].removed)
1581 return (bfd_vma) -1;
1582
18e04883
RS
1583 /* If converting personality pointers to DW_EH_PE_pcrel, there will be
1584 no need for run-time relocation against the personality field. */
1585 if (sec_info->entry[mid].cie
1586 && sec_info->entry[mid].u.cie.make_per_encoding_relative
1587 && offset == (sec_info->entry[mid].offset + 8
1588 + sec_info->entry[mid].u.cie.personality_offset))
1589 return (bfd_vma) -2;
1590
65765700
JJ
1591 /* If converting to DW_EH_PE_pcrel, there will be no need for run-time
1592 relocation against FDE's initial_location field. */
fda3ecf2 1593 if (!sec_info->entry[mid].cie
6b2cc140 1594 && sec_info->entry[mid].make_relative
353057a5
RS
1595 && offset == sec_info->entry[mid].offset + 8)
1596 return (bfd_vma) -2;
65765700 1597
9e2a4898
JJ
1598 /* If converting LSDA pointers to DW_EH_PE_pcrel, there will be no need
1599 for run-time relocation against LSDA field. */
fda3ecf2 1600 if (!sec_info->entry[mid].cie
9f4b847e
RS
1601 && sec_info->entry[mid].u.fde.cie_inf->u.cie.make_lsda_relative
1602 && offset == (sec_info->entry[mid].offset + 8
1603 + sec_info->entry[mid].lsda_offset))
1604 return (bfd_vma) -2;
9e2a4898 1605
ac685e6a
JJ
1606 /* If converting to DW_EH_PE_pcrel, there will be no need for run-time
1607 relocation against DW_CFA_set_loc's arguments. */
1608 if (sec_info->entry[mid].set_loc
6b2cc140 1609 && sec_info->entry[mid].make_relative
ac685e6a
JJ
1610 && (offset >= sec_info->entry[mid].offset + 8
1611 + sec_info->entry[mid].set_loc[1]))
1612 {
1613 unsigned int cnt;
1614
1615 for (cnt = 1; cnt <= sec_info->entry[mid].set_loc[0]; cnt++)
1616 if (offset == sec_info->entry[mid].offset + 8
1617 + sec_info->entry[mid].set_loc[cnt])
1618 return (bfd_vma) -2;
1619 }
1620
353057a5 1621 /* Any new augmentation bytes go before the first relocation. */
c68836a9 1622 return (offset + sec_info->entry[mid].new_offset
353057a5
RS
1623 - sec_info->entry[mid].offset
1624 + extra_augmentation_string_bytes (sec_info->entry + mid)
1625 + extra_augmentation_data_bytes (sec_info->entry + mid));
65765700
JJ
1626}
1627
2f0c68f2
CM
1628/* Write out .eh_frame_entry section. Add CANTUNWIND terminator if needed.
1629 Also check that the contents look sane. */
1630
1631bfd_boolean
1632_bfd_elf_write_section_eh_frame_entry (bfd *abfd, struct bfd_link_info *info,
1633 asection *sec, bfd_byte *contents)
1634{
1635 const struct elf_backend_data *bed;
1636 bfd_byte cantunwind[8];
1637 bfd_vma addr;
1638 bfd_vma last_addr;
1639 bfd_vma offset;
1640 asection *text_sec = (asection *) elf_section_data (sec)->sec_info;
1641
1642 if (!sec->rawsize)
1643 sec->rawsize = sec->size;
1644
1645 BFD_ASSERT (sec->sec_info_type == SEC_INFO_TYPE_EH_FRAME_ENTRY);
1646
1647 /* Check to make sure that the text section corresponding to this eh_frame_entry
1648 section has not been excluded. In particular, mips16 stub entries will be
1649 excluded outside of the normal process. */
1650 if (sec->flags & SEC_EXCLUDE
1651 || text_sec->flags & SEC_EXCLUDE)
1652 return TRUE;
1653
1654 if (!bfd_set_section_contents (abfd, sec->output_section, contents,
1655 sec->output_offset, sec->rawsize))
1656 return FALSE;
1657
1658 last_addr = bfd_get_signed_32 (abfd, contents);
1659 /* Check that all the entries are in order. */
1660 for (offset = 8; offset < sec->rawsize; offset += 8)
1661 {
1662 addr = bfd_get_signed_32 (abfd, contents + offset) + offset;
1663 if (addr <= last_addr)
1664 {
1665 (*_bfd_error_handler) (_("%B: %s not in order"), sec->owner, sec->name);
1666 return FALSE;
1667 }
1668
1669 last_addr = addr;
1670 }
1671
1672 addr = text_sec->output_section->vma + text_sec->output_offset
1673 + text_sec->size;
1674 addr &= ~1;
1675 addr -= (sec->output_section->vma + sec->output_offset + sec->rawsize);
1676 if (addr & 1)
1677 {
1678 (*_bfd_error_handler) (_("%B: %s invalid input section size"),
1679 sec->owner, sec->name);
1680 bfd_set_error (bfd_error_bad_value);
1681 return FALSE;
1682 }
1683 if (last_addr >= addr + sec->rawsize)
1684 {
1685 (*_bfd_error_handler) (_("%B: %s points past end of text section"),
1686 sec->owner, sec->name);
1687 bfd_set_error (bfd_error_bad_value);
1688 return FALSE;
1689 }
1690
1691 if (sec->size == sec->rawsize)
1692 return TRUE;
1693
1694 bed = get_elf_backend_data (abfd);
1695 BFD_ASSERT (sec->size == sec->rawsize + 8);
1696 BFD_ASSERT ((addr & 1) == 0);
1697 BFD_ASSERT (bed->cant_unwind_opcode);
1698
1699 bfd_put_32 (abfd, addr, cantunwind);
1700 bfd_put_32 (abfd, (*bed->cant_unwind_opcode) (info), cantunwind + 4);
1701 return bfd_set_section_contents (abfd, sec->output_section, cantunwind,
1702 sec->output_offset + sec->rawsize, 8);
1703}
1704
65765700
JJ
1705/* Write out .eh_frame section. This is called with the relocated
1706 contents. */
1707
b34976b6 1708bfd_boolean
c39a58e6
AM
1709_bfd_elf_write_section_eh_frame (bfd *abfd,
1710 struct bfd_link_info *info,
1711 asection *sec,
1712 bfd_byte *contents)
65765700
JJ
1713{
1714 struct eh_frame_sec_info *sec_info;
126495ed 1715 struct elf_link_hash_table *htab;
65765700 1716 struct eh_frame_hdr_info *hdr_info;
65765700 1717 unsigned int ptr_size;
fda3ecf2 1718 struct eh_cie_fde *ent;
4de1599b 1719 bfd_size_type sec_size;
65765700 1720
dbaa2011 1721 if (sec->sec_info_type != SEC_INFO_TYPE_EH_FRAME)
5dabe785 1722 /* FIXME: octets_per_byte. */
c39a58e6 1723 return bfd_set_section_contents (abfd, sec->output_section, contents,
eea6121a 1724 sec->output_offset, sec->size);
8c946ed5
RS
1725
1726 ptr_size = (get_elf_backend_data (abfd)
1727 ->elf_backend_eh_frame_address_size (abfd, sec));
1728 BFD_ASSERT (ptr_size != 0);
1729
a50b1753 1730 sec_info = (struct eh_frame_sec_info *) elf_section_data (sec)->sec_info;
126495ed
AM
1731 htab = elf_hash_table (info);
1732 hdr_info = &htab->eh_info;
3472e2e9 1733
2f0c68f2
CM
1734 if (hdr_info->u.dwarf.table && hdr_info->u.dwarf.array == NULL)
1735 {
1736 hdr_info->frame_hdr_is_compact = FALSE;
1737 hdr_info->u.dwarf.array = (struct eh_frame_array_ent *)
1738 bfd_malloc (hdr_info->u.dwarf.fde_count
1739 * sizeof (*hdr_info->u.dwarf.array));
1740 }
1741 if (hdr_info->u.dwarf.array == NULL)
126495ed 1742 hdr_info = NULL;
65765700 1743
353057a5
RS
1744 /* The new offsets can be bigger or smaller than the original offsets.
1745 We therefore need to make two passes over the section: one backward
1746 pass to move entries up and one forward pass to move entries down.
1747 The two passes won't interfere with each other because entries are
1748 not reordered */
1749 for (ent = sec_info->entry + sec_info->count; ent-- != sec_info->entry;)
1750 if (!ent->removed && ent->new_offset > ent->offset)
fc802241 1751 memmove (contents + ent->new_offset, contents + ent->offset, ent->size);
353057a5
RS
1752
1753 for (ent = sec_info->entry; ent < sec_info->entry + sec_info->count; ++ent)
1754 if (!ent->removed && ent->new_offset < ent->offset)
fc802241 1755 memmove (contents + ent->new_offset, contents + ent->offset, ent->size);
353057a5 1756
fda3ecf2 1757 for (ent = sec_info->entry; ent < sec_info->entry + sec_info->count; ++ent)
65765700 1758 {
353057a5
RS
1759 unsigned char *buf, *end;
1760 unsigned int new_size;
1761
fda3ecf2
AM
1762 if (ent->removed)
1763 continue;
1764
353057a5
RS
1765 if (ent->size == 4)
1766 {
1767 /* Any terminating FDE must be at the end of the section. */
1768 BFD_ASSERT (ent == sec_info->entry + sec_info->count - 1);
1769 continue;
1770 }
1771
fc802241 1772 buf = contents + ent->new_offset;
353057a5
RS
1773 end = buf + ent->size;
1774 new_size = size_of_output_cie_fde (ent, ptr_size);
1775
a34a056a
L
1776 /* Update the size. It may be shrinked. */
1777 bfd_put_32 (abfd, new_size - 4, buf);
1778
1779 /* Filling the extra bytes with DW_CFA_nops. */
353057a5 1780 if (new_size != ent->size)
a34a056a 1781 memset (end, 0, new_size - ent->size);
353057a5 1782
fda3ecf2 1783 if (ent->cie)
65765700
JJ
1784 {
1785 /* CIE */
353057a5 1786 if (ent->make_relative
9f4b847e 1787 || ent->u.cie.make_lsda_relative
6b2cc140 1788 || ent->u.cie.per_encoding_relative)
65765700 1789 {
f075ee0c 1790 char *aug;
353057a5 1791 unsigned int action, extra_string, extra_data;
2c42be65 1792 unsigned int per_width, per_encoding;
65765700 1793
9e2a4898 1794 /* Need to find 'R' or 'L' augmentation's argument and modify
65765700 1795 DW_EH_PE_* value. */
353057a5 1796 action = ((ent->make_relative ? 1 : 0)
9f4b847e 1797 | (ent->u.cie.make_lsda_relative ? 2 : 0)
6b2cc140 1798 | (ent->u.cie.per_encoding_relative ? 4 : 0));
353057a5
RS
1799 extra_string = extra_augmentation_string_bytes (ent);
1800 extra_data = extra_augmentation_data_bytes (ent);
1801
65765700
JJ
1802 /* Skip length, id and version. */
1803 buf += 9;
f075ee0c
AM
1804 aug = (char *) buf;
1805 buf += strlen (aug) + 1;
2c42be65
RS
1806 skip_leb128 (&buf, end);
1807 skip_leb128 (&buf, end);
1808 skip_leb128 (&buf, end);
65765700
JJ
1809 if (*aug == 'z')
1810 {
353057a5
RS
1811 /* The uleb128 will always be a single byte for the kind
1812 of augmentation strings that we're prepared to handle. */
1813 *buf++ += extra_data;
65765700
JJ
1814 aug++;
1815 }
1816
353057a5
RS
1817 /* Make room for the new augmentation string and data bytes. */
1818 memmove (buf + extra_string + extra_data, buf, end - buf);
f075ee0c 1819 memmove (aug + extra_string, aug, buf - (bfd_byte *) aug);
353057a5 1820 buf += extra_string;
2c42be65 1821 end += extra_string + extra_data;
353057a5
RS
1822
1823 if (ent->add_augmentation_size)
1824 {
1825 *aug++ = 'z';
1826 *buf++ = extra_data - 1;
1827 }
6b2cc140 1828 if (ent->u.cie.add_fde_encoding)
353057a5
RS
1829 {
1830 BFD_ASSERT (action & 1);
1831 *aug++ = 'R';
30af5962 1832 *buf++ = make_pc_relative (DW_EH_PE_absptr, ptr_size);
353057a5
RS
1833 action &= ~1;
1834 }
1835
9e2a4898 1836 while (action)
65765700
JJ
1837 switch (*aug++)
1838 {
1839 case 'L':
9e2a4898
JJ
1840 if (action & 2)
1841 {
fda3ecf2 1842 BFD_ASSERT (*buf == ent->lsda_encoding);
30af5962 1843 *buf = make_pc_relative (*buf, ptr_size);
9e2a4898
JJ
1844 action &= ~2;
1845 }
65765700
JJ
1846 buf++;
1847 break;
1848 case 'P':
18e04883 1849 if (ent->u.cie.make_per_encoding_relative)
a10917ef 1850 *buf = make_pc_relative (*buf, ptr_size);
65765700 1851 per_encoding = *buf++;
3472e2e9 1852 per_width = get_DW_EH_PE_width (per_encoding, ptr_size);
65765700 1853 BFD_ASSERT (per_width != 0);
09ae86c2 1854 BFD_ASSERT (((per_encoding & 0x70) == DW_EH_PE_pcrel)
6b2cc140 1855 == ent->u.cie.per_encoding_relative);
18e04883 1856 if ((per_encoding & 0x70) == DW_EH_PE_aligned)
65765700
JJ
1857 buf = (contents
1858 + ((buf - contents + per_width - 1)
1859 & ~((bfd_size_type) per_width - 1)));
09ae86c2
JJ
1860 if (action & 4)
1861 {
fda3ecf2
AM
1862 bfd_vma val;
1863
1864 val = read_value (abfd, buf, per_width,
1865 get_DW_EH_PE_signed (per_encoding));
18e04883
RS
1866 if (ent->u.cie.make_per_encoding_relative)
1867 val -= (sec->output_section->vma
1868 + sec->output_offset
1869 + (buf - contents));
1870 else
1871 {
1872 val += (bfd_vma) ent->offset - ent->new_offset;
1873 val -= extra_string + extra_data;
1874 }
fda3ecf2 1875 write_value (abfd, buf, val, per_width);
09ae86c2
JJ
1876 action &= ~4;
1877 }
65765700
JJ
1878 buf += per_width;
1879 break;
9e2a4898
JJ
1880 case 'R':
1881 if (action & 1)
1882 {
fda3ecf2 1883 BFD_ASSERT (*buf == ent->fde_encoding);
30af5962 1884 *buf = make_pc_relative (*buf, ptr_size);
9e2a4898
JJ
1885 action &= ~1;
1886 }
1887 buf++;
1888 break;
63752a75
JJ
1889 case 'S':
1890 break;
65765700
JJ
1891 default:
1892 BFD_FAIL ();
1893 }
65765700
JJ
1894 }
1895 }
353057a5 1896 else
65765700
JJ
1897 {
1898 /* FDE */
fda3ecf2 1899 bfd_vma value, address;
9e2a4898 1900 unsigned int width;
ac685e6a 1901 bfd_byte *start;
155eaaa0 1902 struct eh_cie_fde *cie;
65765700 1903
b34976b6 1904 /* Skip length. */
155eaaa0 1905 cie = ent->u.fde.cie_inf;
65765700 1906 buf += 4;
fc802241
RS
1907 value = ((ent->new_offset + sec->output_offset + 4)
1908 - (cie->new_offset + cie->u.cie.u.sec->output_offset));
fda3ecf2 1909 bfd_put_32 (abfd, value, buf);
5b69e357
AM
1910 if (info->relocatable)
1911 continue;
65765700 1912 buf += 4;
fda3ecf2
AM
1913 width = get_DW_EH_PE_width (ent->fde_encoding, ptr_size);
1914 value = read_value (abfd, buf, width,
1915 get_DW_EH_PE_signed (ent->fde_encoding));
1916 address = value;
9e2a4898 1917 if (value)
65765700 1918 {
18e04883 1919 switch (ent->fde_encoding & 0x70)
9e2a4898 1920 {
9e2a4898
JJ
1921 case DW_EH_PE_textrel:
1922 BFD_ASSERT (hdr_info == NULL);
1923 break;
1924 case DW_EH_PE_datarel:
1925 {
cd9e734e
AM
1926 switch (abfd->arch_info->arch)
1927 {
1928 case bfd_arch_ia64:
1929 BFD_ASSERT (elf_gp (abfd) != 0);
1930 address += elf_gp (abfd);
1931 break;
1932 default:
1933 (*info->callbacks->einfo)
1934 (_("%P: DW_EH_PE_datarel unspecified"
1935 " for this architecture.\n"));
1936 /* Fall thru */
1937 case bfd_arch_frv:
1938 case bfd_arch_i386:
1939 BFD_ASSERT (htab->hgot != NULL
1940 && ((htab->hgot->root.type
1941 == bfd_link_hash_defined)
1942 || (htab->hgot->root.type
1943 == bfd_link_hash_defweak)));
1944 address
1945 += (htab->hgot->root.u.def.value
1946 + htab->hgot->root.u.def.section->output_offset
1947 + (htab->hgot->root.u.def.section->output_section
1948 ->vma));
1949 break;
1950 }
9e2a4898
JJ
1951 }
1952 break;
1953 case DW_EH_PE_pcrel:
9c47c4c1 1954 value += (bfd_vma) ent->offset - ent->new_offset;
fc802241
RS
1955 address += (sec->output_section->vma
1956 + sec->output_offset
1957 + ent->offset + 8);
9e2a4898
JJ
1958 break;
1959 }
6b2cc140 1960 if (ent->make_relative)
fc802241
RS
1961 value -= (sec->output_section->vma
1962 + sec->output_offset
1963 + ent->new_offset + 8);
9e2a4898 1964 write_value (abfd, buf, value, width);
65765700
JJ
1965 }
1966
ac685e6a
JJ
1967 start = buf;
1968
65765700
JJ
1969 if (hdr_info)
1970 {
cd9e734e
AM
1971 /* The address calculation may overflow, giving us a
1972 value greater than 4G on a 32-bit target when
1973 dwarf_vma is 64-bit. */
1974 if (sizeof (address) > 4 && ptr_size == 4)
1975 address &= 0xffffffff;
2f0c68f2
CM
1976 hdr_info->u.dwarf.array[hdr_info->array_count].initial_loc
1977 = address;
1978 hdr_info->u.dwarf.array[hdr_info->array_count].range
ae6c7e33 1979 = read_value (abfd, buf + width, width, FALSE);
2f0c68f2 1980 hdr_info->u.dwarf.array[hdr_info->array_count++].fde
fc802241
RS
1981 = (sec->output_section->vma
1982 + sec->output_offset
1983 + ent->new_offset);
65765700 1984 }
9e2a4898 1985
18e04883 1986 if ((ent->lsda_encoding & 0x70) == DW_EH_PE_pcrel
9f4b847e 1987 || cie->u.cie.make_lsda_relative)
9e2a4898 1988 {
fda3ecf2
AM
1989 buf += ent->lsda_offset;
1990 width = get_DW_EH_PE_width (ent->lsda_encoding, ptr_size);
84f97cb6 1991 value = read_value (abfd, buf, width,
fda3ecf2 1992 get_DW_EH_PE_signed (ent->lsda_encoding));
9e2a4898
JJ
1993 if (value)
1994 {
18e04883 1995 if ((ent->lsda_encoding & 0x70) == DW_EH_PE_pcrel)
9c47c4c1 1996 value += (bfd_vma) ent->offset - ent->new_offset;
9f4b847e 1997 else if (cie->u.cie.make_lsda_relative)
fc802241
RS
1998 value -= (sec->output_section->vma
1999 + sec->output_offset
2000 + ent->new_offset + 8 + ent->lsda_offset);
9e2a4898
JJ
2001 write_value (abfd, buf, value, width);
2002 }
2003 }
6b2cc140 2004 else if (ent->add_augmentation_size)
353057a5
RS
2005 {
2006 /* Skip the PC and length and insert a zero byte for the
2007 augmentation size. */
2008 buf += width * 2;
2009 memmove (buf + 1, buf, end - buf);
2010 *buf = 0;
2011 }
ac685e6a
JJ
2012
2013 if (ent->set_loc)
2014 {
2015 /* Adjust DW_CFA_set_loc. */
91d6fa6a 2016 unsigned int cnt;
ac685e6a
JJ
2017 bfd_vma new_offset;
2018
2019 width = get_DW_EH_PE_width (ent->fde_encoding, ptr_size);
2020 new_offset = ent->new_offset + 8
2021 + extra_augmentation_string_bytes (ent)
2022 + extra_augmentation_data_bytes (ent);
2023
2024 for (cnt = 1; cnt <= ent->set_loc[0]; cnt++)
2025 {
ac685e6a
JJ
2026 buf = start + ent->set_loc[cnt];
2027
2028 value = read_value (abfd, buf, width,
2029 get_DW_EH_PE_signed (ent->fde_encoding));
2030 if (!value)
2031 continue;
2032
18e04883 2033 if ((ent->fde_encoding & 0x70) == DW_EH_PE_pcrel)
9c47c4c1 2034 value += (bfd_vma) ent->offset + 8 - new_offset;
6b2cc140 2035 if (ent->make_relative)
fc802241
RS
2036 value -= (sec->output_section->vma
2037 + sec->output_offset
2038 + new_offset + ent->set_loc[cnt]);
ac685e6a
JJ
2039 write_value (abfd, buf, value, width);
2040 }
2041 }
65765700 2042 }
65765700
JJ
2043 }
2044
a34a056a
L
2045 /* We don't align the section to its section alignment since the
2046 runtime library only expects all CIE/FDE records aligned at
4e591bc1 2047 the pointer size. _bfd_elf_discard_section_eh_frame should
a34a056a
L
2048 have padded CIE/FDE records to multiple of pointer size with
2049 size_of_output_cie_fde. */
4de1599b
AM
2050 sec_size = sec->size;
2051 if (sec_info->count != 0
2052 && sec_info->entry[sec_info->count - 1].size == 4)
2053 sec_size -= 4;
2054 if ((sec_size % ptr_size) != 0)
a34a056a 2055 abort ();
a5eb27e6 2056
5dabe785 2057 /* FIXME: octets_per_byte. */
65765700 2058 return bfd_set_section_contents (abfd, sec->output_section,
3472e2e9
AM
2059 contents, (file_ptr) sec->output_offset,
2060 sec->size);
65765700
JJ
2061}
2062
2063/* Helper function used to sort .eh_frame_hdr search table by increasing
2064 VMA of FDE initial location. */
2065
2066static int
c39a58e6 2067vma_compare (const void *a, const void *b)
65765700 2068{
a50b1753
NC
2069 const struct eh_frame_array_ent *p = (const struct eh_frame_array_ent *) a;
2070 const struct eh_frame_array_ent *q = (const struct eh_frame_array_ent *) b;
65765700
JJ
2071 if (p->initial_loc > q->initial_loc)
2072 return 1;
2073 if (p->initial_loc < q->initial_loc)
2074 return -1;
c2aaac08
AM
2075 if (p->range > q->range)
2076 return 1;
2077 if (p->range < q->range)
2078 return -1;
65765700
JJ
2079 return 0;
2080}
2081
2f0c68f2
CM
2082/* Reorder .eh_frame_entry sections to match the associated text sections.
2083 This routine is called during the final linking step, just before writing
2084 the contents. At this stage, sections in the eh_frame_hdr_info are already
2085 sorted in order of increasing text section address and so we simply need
2086 to make the .eh_frame_entrys follow that same order. Note that it is
2087 invalid for a linker script to try to force a particular order of
2088 .eh_frame_entry sections. */
2089
2090bfd_boolean
2091_bfd_elf_fixup_eh_frame_hdr (struct bfd_link_info *info)
2092{
2093 asection *sec = NULL;
2094 asection *osec;
2095 struct eh_frame_hdr_info *hdr_info;
2096 unsigned int i;
2097 bfd_vma offset;
2098 struct bfd_link_order *p;
2099
2100 hdr_info = &elf_hash_table (info)->eh_info;
2101
2102 if (hdr_info->hdr_sec == NULL
2103 || info->eh_frame_hdr_type != COMPACT_EH_HDR
2104 || hdr_info->array_count == 0)
2105 return TRUE;
2106
2107 /* Change section output offsets to be in text section order. */
2108 offset = 8;
2109 osec = hdr_info->u.compact.entries[0]->output_section;
2110 for (i = 0; i < hdr_info->array_count; i++)
2111 {
2112 sec = hdr_info->u.compact.entries[i];
2113 if (sec->output_section != osec)
2114 {
2115 (*_bfd_error_handler)
2116 (_("Invalid output section for .eh_frame_entry: %s"),
2117 sec->output_section->name);
2118 return FALSE;
2119 }
2120 sec->output_offset = offset;
2121 offset += sec->size;
2122 }
2123
2124
2125 /* Fix the link_order to match. */
2126 for (p = sec->output_section->map_head.link_order; p != NULL; p = p->next)
2127 {
2128 if (p->type != bfd_indirect_link_order)
2129 abort();
2130
2131 p->offset = p->u.indirect.section->output_offset;
2132 if (p->next != NULL)
2133 i--;
2134 }
2135
2136 if (i != 0)
2137 {
2138 (*_bfd_error_handler)
2139 (_("Invalid contents in %s section"), osec->name);
2140 return FALSE;
2141 }
2142
2143 return TRUE;
2144}
2145
2146/* The .eh_frame_hdr format for Compact EH frames:
2147 ubyte version (2)
2148 ubyte eh_ref_enc (DW_EH_PE_* encoding of typinfo references)
2149 uint32_t count (Number of entries in table)
2150 [array from .eh_frame_entry sections] */
2151
2152static bfd_boolean
2153write_compact_eh_frame_hdr (bfd *abfd, struct bfd_link_info *info)
2154{
2155 struct elf_link_hash_table *htab;
2156 struct eh_frame_hdr_info *hdr_info;
2157 asection *sec;
2158 const struct elf_backend_data *bed;
2159 bfd_vma count;
2160 bfd_byte contents[8];
2161 unsigned int i;
2162
2163 htab = elf_hash_table (info);
2164 hdr_info = &htab->eh_info;
2165 sec = hdr_info->hdr_sec;
2166
2167 if (sec->size != 8)
2168 abort();
2169
2170 for (i = 0; i < sizeof (contents); i++)
2171 contents[i] = 0;
2172
2173 contents[0] = COMPACT_EH_HDR;
2174 bed = get_elf_backend_data (abfd);
2175
2176 BFD_ASSERT (bed->compact_eh_encoding);
2177 contents[1] = (*bed->compact_eh_encoding) (info);
2178
2179 count = (sec->output_section->size - 8) / 8;
2180 bfd_put_32 (abfd, count, contents + 4);
2181 return bfd_set_section_contents (abfd, sec->output_section, contents,
2182 (file_ptr) sec->output_offset, sec->size);
2183}
2184
2185/* The .eh_frame_hdr format for DWARF frames:
2186
65765700
JJ
2187 ubyte version (currently 1)
2188 ubyte eh_frame_ptr_enc (DW_EH_PE_* encoding of pointer to start of
2189 .eh_frame section)
2190 ubyte fde_count_enc (DW_EH_PE_* encoding of total FDE count
2191 number (or DW_EH_PE_omit if there is no
2192 binary search table computed))
2193 ubyte table_enc (DW_EH_PE_* encoding of binary search table,
2194 or DW_EH_PE_omit if not present.
2195 DW_EH_PE_datarel is using address of
2196 .eh_frame_hdr section start as base)
2197 [encoded] eh_frame_ptr (pointer to start of .eh_frame section)
2198 optionally followed by:
2199 [encoded] fde_count (total number of FDEs in .eh_frame section)
2200 fde_count x [encoded] initial_loc, fde
2201 (array of encoded pairs containing
2202 FDE initial_location field and FDE address,
5ed6aba4 2203 sorted by increasing initial_loc). */
65765700 2204
2f0c68f2
CM
2205static bfd_boolean
2206write_dwarf_eh_frame_hdr (bfd *abfd, struct bfd_link_info *info)
65765700 2207{
126495ed 2208 struct elf_link_hash_table *htab;
65765700 2209 struct eh_frame_hdr_info *hdr_info;
126495ed 2210 asection *sec;
9f7c3e5e 2211 bfd_boolean retval = TRUE;
65765700 2212
126495ed
AM
2213 htab = elf_hash_table (info);
2214 hdr_info = &htab->eh_info;
2215 sec = hdr_info->hdr_sec;
2f0c68f2
CM
2216 bfd_byte *contents;
2217 asection *eh_frame_sec;
2218 bfd_size_type size;
2219 bfd_vma encoded_eh_frame;
2220
2221 size = EH_FRAME_HDR_SIZE;
2222 if (hdr_info->u.dwarf.array
2223 && hdr_info->array_count == hdr_info->u.dwarf.fde_count)
2224 size += 4 + hdr_info->u.dwarf.fde_count * 8;
2225 contents = (bfd_byte *) bfd_malloc (size);
2226 if (contents == NULL)
2227 return FALSE;
65765700 2228
2f0c68f2
CM
2229 eh_frame_sec = bfd_get_section_by_name (abfd, ".eh_frame");
2230 if (eh_frame_sec == NULL)
5ed6aba4 2231 {
2f0c68f2
CM
2232 free (contents);
2233 return FALSE;
2234 }
65765700 2235
2f0c68f2
CM
2236 memset (contents, 0, EH_FRAME_HDR_SIZE);
2237 /* Version. */
2238 contents[0] = 1;
2239 /* .eh_frame offset. */
2240 contents[1] = get_elf_backend_data (abfd)->elf_backend_encode_eh_address
2241 (abfd, info, eh_frame_sec, 0, sec, 4, &encoded_eh_frame);
ec3391e7 2242
2f0c68f2
CM
2243 if (hdr_info->u.dwarf.array
2244 && hdr_info->array_count == hdr_info->u.dwarf.fde_count)
2245 {
2246 /* FDE count encoding. */
2247 contents[2] = DW_EH_PE_udata4;
2248 /* Search table encoding. */
2249 contents[3] = DW_EH_PE_datarel | DW_EH_PE_sdata4;
2250 }
2251 else
2252 {
2253 contents[2] = DW_EH_PE_omit;
2254 contents[3] = DW_EH_PE_omit;
2255 }
2256 bfd_put_32 (abfd, encoded_eh_frame, contents + 4);
ec3391e7 2257
2f0c68f2
CM
2258 if (contents[2] != DW_EH_PE_omit)
2259 {
2260 unsigned int i;
2261 bfd_boolean overlap, overflow;
2262
2263 bfd_put_32 (abfd, hdr_info->u.dwarf.fde_count,
2264 contents + EH_FRAME_HDR_SIZE);
2265 qsort (hdr_info->u.dwarf.array, hdr_info->u.dwarf.fde_count,
2266 sizeof (*hdr_info->u.dwarf.array), vma_compare);
2267 overlap = FALSE;
2268 overflow = FALSE;
2269 for (i = 0; i < hdr_info->u.dwarf.fde_count; i++)
9f7c3e5e 2270 {
2f0c68f2
CM
2271 bfd_vma val;
2272
2273 val = hdr_info->u.dwarf.array[i].initial_loc
2274 - sec->output_section->vma;
2275 val = ((val & 0xffffffff) ^ 0x80000000) - 0x80000000;
2276 if (elf_elfheader (abfd)->e_ident[EI_CLASS] == ELFCLASS64
2277 && (hdr_info->u.dwarf.array[i].initial_loc
2278 != sec->output_section->vma + val))
2279 overflow = TRUE;
2280 bfd_put_32 (abfd, val, contents + EH_FRAME_HDR_SIZE + i * 8 + 4);
2281 val = hdr_info->u.dwarf.array[i].fde - sec->output_section->vma;
2282 val = ((val & 0xffffffff) ^ 0x80000000) - 0x80000000;
2283 if (elf_elfheader (abfd)->e_ident[EI_CLASS] == ELFCLASS64
2284 && (hdr_info->u.dwarf.array[i].fde
2285 != sec->output_section->vma + val))
2286 overflow = TRUE;
2287 bfd_put_32 (abfd, val, contents + EH_FRAME_HDR_SIZE + i * 8 + 8);
2288 if (i != 0
2289 && (hdr_info->u.dwarf.array[i].initial_loc
2290 < (hdr_info->u.dwarf.array[i - 1].initial_loc
2291 + hdr_info->u.dwarf.array[i - 1].range)))
2292 overlap = TRUE;
9f7c3e5e 2293 }
2f0c68f2
CM
2294 if (overflow)
2295 (*info->callbacks->einfo) (_("%P: .eh_frame_hdr entry overflow.\n"));
2296 if (overlap)
2297 (*info->callbacks->einfo)
2298 (_("%P: .eh_frame_hdr refers to overlapping FDEs.\n"));
2299 if (overflow || overlap)
9f7c3e5e 2300 {
2f0c68f2
CM
2301 bfd_set_error (bfd_error_bad_value);
2302 retval = FALSE;
9f7c3e5e 2303 }
2f0c68f2 2304 }
65765700 2305
2f0c68f2
CM
2306 /* FIXME: octets_per_byte. */
2307 if (!bfd_set_section_contents (abfd, sec->output_section, contents,
2308 (file_ptr) sec->output_offset,
2309 sec->size))
2310 retval = FALSE;
2311 free (contents);
2312
2313 if (hdr_info->u.dwarf.array != NULL)
2314 free (hdr_info->u.dwarf.array);
2315 return retval;
2316}
9f7c3e5e 2317
2f0c68f2
CM
2318/* Write out .eh_frame_hdr section. This must be called after
2319 _bfd_elf_write_section_eh_frame has been called on all input
2320 .eh_frame sections. */
ae6c7e33 2321
2f0c68f2
CM
2322bfd_boolean
2323_bfd_elf_write_section_eh_frame_hdr (bfd *abfd, struct bfd_link_info *info)
2324{
2325 struct elf_link_hash_table *htab;
2326 struct eh_frame_hdr_info *hdr_info;
2327 asection *sec;
aa8f4d1e 2328
2f0c68f2
CM
2329 htab = elf_hash_table (info);
2330 hdr_info = &htab->eh_info;
2331 sec = hdr_info->hdr_sec;
65765700 2332
2f0c68f2
CM
2333 if (info->eh_frame_hdr_type == 0 || sec == NULL)
2334 return TRUE;
2335
2336 if (info->eh_frame_hdr_type == COMPACT_EH_HDR)
2337 return write_compact_eh_frame_hdr (abfd, info);
2338 else
2339 return write_dwarf_eh_frame_hdr (abfd, info);
65765700 2340}
ec3391e7 2341
8c946ed5
RS
2342/* Return the width of FDE addresses. This is the default implementation. */
2343
2344unsigned int
2345_bfd_elf_eh_frame_address_size (bfd *abfd, asection *sec ATTRIBUTE_UNUSED)
2346{
2347 return elf_elfheader (abfd)->e_ident[EI_CLASS] == ELFCLASS64 ? 8 : 4;
2348}
2349
ec3391e7
AO
2350/* Decide whether we can use a PC-relative encoding within the given
2351 EH frame section. This is the default implementation. */
2352
2353bfd_boolean
2354_bfd_elf_can_make_relative (bfd *input_bfd ATTRIBUTE_UNUSED,
2355 struct bfd_link_info *info ATTRIBUTE_UNUSED,
2356 asection *eh_frame_section ATTRIBUTE_UNUSED)
2357{
2358 return TRUE;
2359}
2360
2361/* Select an encoding for the given address. Preference is given to
2362 PC-relative addressing modes. */
2363
2364bfd_byte
2365_bfd_elf_encode_eh_address (bfd *abfd ATTRIBUTE_UNUSED,
2366 struct bfd_link_info *info ATTRIBUTE_UNUSED,
2367 asection *osec, bfd_vma offset,
2368 asection *loc_sec, bfd_vma loc_offset,
2369 bfd_vma *encoded)
2370{
2371 *encoded = osec->vma + offset -
2372 (loc_sec->output_section->vma + loc_sec->output_offset + loc_offset);
2373 return DW_EH_PE_pcrel | DW_EH_PE_sdata4;
2374}
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