/src/binutils-gdb/bfd/elf.c
Line | Count | Source (jump to first uncovered line) |
1 | | /* ELF executable support for BFD. |
2 | | |
3 | | Copyright (C) 1993-2023 Free Software Foundation, Inc. |
4 | | |
5 | | This file is part of BFD, the Binary File Descriptor library. |
6 | | |
7 | | This program is free software; you can redistribute it and/or modify |
8 | | it under the terms of the GNU General Public License as published by |
9 | | the Free Software Foundation; either version 3 of the License, or |
10 | | (at your option) any later version. |
11 | | |
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. |
16 | | |
17 | | You should have received a copy of the GNU General Public License |
18 | | along with this program; if not, write to the Free Software |
19 | | Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston, |
20 | | MA 02110-1301, USA. */ |
21 | | |
22 | | |
23 | | /* |
24 | | SECTION |
25 | | ELF backends |
26 | | |
27 | | BFD support for ELF formats is being worked on. |
28 | | Currently, the best supported back ends are for sparc and i386 |
29 | | (running svr4 or Solaris 2). |
30 | | |
31 | | Documentation of the internals of the support code still needs |
32 | | to be written. The code is changing quickly enough that we |
33 | | haven't bothered yet. */ |
34 | | |
35 | | /* For sparc64-cross-sparc32. */ |
36 | | #define _SYSCALL32 |
37 | | #include "sysdep.h" |
38 | | #include <limits.h> |
39 | | #include "bfd.h" |
40 | | #include "bfdlink.h" |
41 | | #include "libbfd.h" |
42 | | #define ARCH_SIZE 0 |
43 | | #include "elf-bfd.h" |
44 | | #include "libiberty.h" |
45 | | #include "safe-ctype.h" |
46 | | #include "elf-linux-core.h" |
47 | | |
48 | | #ifdef CORE_HEADER |
49 | | #include CORE_HEADER |
50 | | #endif |
51 | | |
52 | | static int elf_sort_sections (const void *, const void *); |
53 | | static bool assign_file_positions_except_relocs (bfd *, struct bfd_link_info *); |
54 | | static bool swap_out_syms (bfd *, struct elf_strtab_hash **, int, |
55 | | struct bfd_link_info *); |
56 | | static bool elf_parse_notes (bfd *abfd, char *buf, size_t size, |
57 | | file_ptr offset, size_t align); |
58 | | |
59 | | /* Swap version information in and out. The version information is |
60 | | currently size independent. If that ever changes, this code will |
61 | | need to move into elfcode.h. */ |
62 | | |
63 | | /* Swap in a Verdef structure. */ |
64 | | |
65 | | void |
66 | | _bfd_elf_swap_verdef_in (bfd *abfd, |
67 | | const Elf_External_Verdef *src, |
68 | | Elf_Internal_Verdef *dst) |
69 | 0 | { |
70 | 0 | dst->vd_version = H_GET_16 (abfd, src->vd_version); |
71 | 0 | dst->vd_flags = H_GET_16 (abfd, src->vd_flags); |
72 | 0 | dst->vd_ndx = H_GET_16 (abfd, src->vd_ndx); |
73 | 0 | dst->vd_cnt = H_GET_16 (abfd, src->vd_cnt); |
74 | 0 | dst->vd_hash = H_GET_32 (abfd, src->vd_hash); |
75 | 0 | dst->vd_aux = H_GET_32 (abfd, src->vd_aux); |
76 | 0 | dst->vd_next = H_GET_32 (abfd, src->vd_next); |
77 | 0 | } |
78 | | |
79 | | /* Swap out a Verdef structure. */ |
80 | | |
81 | | void |
82 | | _bfd_elf_swap_verdef_out (bfd *abfd, |
83 | | const Elf_Internal_Verdef *src, |
84 | | Elf_External_Verdef *dst) |
85 | 0 | { |
86 | 0 | H_PUT_16 (abfd, src->vd_version, dst->vd_version); |
87 | 0 | H_PUT_16 (abfd, src->vd_flags, dst->vd_flags); |
88 | 0 | H_PUT_16 (abfd, src->vd_ndx, dst->vd_ndx); |
89 | 0 | H_PUT_16 (abfd, src->vd_cnt, dst->vd_cnt); |
90 | 0 | H_PUT_32 (abfd, src->vd_hash, dst->vd_hash); |
91 | 0 | H_PUT_32 (abfd, src->vd_aux, dst->vd_aux); |
92 | 0 | H_PUT_32 (abfd, src->vd_next, dst->vd_next); |
93 | 0 | } |
94 | | |
95 | | /* Swap in a Verdaux structure. */ |
96 | | |
97 | | void |
98 | | _bfd_elf_swap_verdaux_in (bfd *abfd, |
99 | | const Elf_External_Verdaux *src, |
100 | | Elf_Internal_Verdaux *dst) |
101 | 0 | { |
102 | 0 | dst->vda_name = H_GET_32 (abfd, src->vda_name); |
103 | 0 | dst->vda_next = H_GET_32 (abfd, src->vda_next); |
104 | 0 | } |
105 | | |
106 | | /* Swap out a Verdaux structure. */ |
107 | | |
108 | | void |
109 | | _bfd_elf_swap_verdaux_out (bfd *abfd, |
110 | | const Elf_Internal_Verdaux *src, |
111 | | Elf_External_Verdaux *dst) |
112 | 0 | { |
113 | 0 | H_PUT_32 (abfd, src->vda_name, dst->vda_name); |
114 | 0 | H_PUT_32 (abfd, src->vda_next, dst->vda_next); |
115 | 0 | } |
116 | | |
117 | | /* Swap in a Verneed structure. */ |
118 | | |
119 | | void |
120 | | _bfd_elf_swap_verneed_in (bfd *abfd, |
121 | | const Elf_External_Verneed *src, |
122 | | Elf_Internal_Verneed *dst) |
123 | 0 | { |
124 | 0 | dst->vn_version = H_GET_16 (abfd, src->vn_version); |
125 | 0 | dst->vn_cnt = H_GET_16 (abfd, src->vn_cnt); |
126 | 0 | dst->vn_file = H_GET_32 (abfd, src->vn_file); |
127 | 0 | dst->vn_aux = H_GET_32 (abfd, src->vn_aux); |
128 | 0 | dst->vn_next = H_GET_32 (abfd, src->vn_next); |
129 | 0 | } |
130 | | |
131 | | /* Swap out a Verneed structure. */ |
132 | | |
133 | | void |
134 | | _bfd_elf_swap_verneed_out (bfd *abfd, |
135 | | const Elf_Internal_Verneed *src, |
136 | | Elf_External_Verneed *dst) |
137 | 0 | { |
138 | 0 | H_PUT_16 (abfd, src->vn_version, dst->vn_version); |
139 | 0 | H_PUT_16 (abfd, src->vn_cnt, dst->vn_cnt); |
140 | 0 | H_PUT_32 (abfd, src->vn_file, dst->vn_file); |
141 | 0 | H_PUT_32 (abfd, src->vn_aux, dst->vn_aux); |
142 | 0 | H_PUT_32 (abfd, src->vn_next, dst->vn_next); |
143 | 0 | } |
144 | | |
145 | | /* Swap in a Vernaux structure. */ |
146 | | |
147 | | void |
148 | | _bfd_elf_swap_vernaux_in (bfd *abfd, |
149 | | const Elf_External_Vernaux *src, |
150 | | Elf_Internal_Vernaux *dst) |
151 | 0 | { |
152 | 0 | dst->vna_hash = H_GET_32 (abfd, src->vna_hash); |
153 | 0 | dst->vna_flags = H_GET_16 (abfd, src->vna_flags); |
154 | 0 | dst->vna_other = H_GET_16 (abfd, src->vna_other); |
155 | 0 | dst->vna_name = H_GET_32 (abfd, src->vna_name); |
156 | 0 | dst->vna_next = H_GET_32 (abfd, src->vna_next); |
157 | 0 | } |
158 | | |
159 | | /* Swap out a Vernaux structure. */ |
160 | | |
161 | | void |
162 | | _bfd_elf_swap_vernaux_out (bfd *abfd, |
163 | | const Elf_Internal_Vernaux *src, |
164 | | Elf_External_Vernaux *dst) |
165 | 0 | { |
166 | 0 | H_PUT_32 (abfd, src->vna_hash, dst->vna_hash); |
167 | 0 | H_PUT_16 (abfd, src->vna_flags, dst->vna_flags); |
168 | 0 | H_PUT_16 (abfd, src->vna_other, dst->vna_other); |
169 | 0 | H_PUT_32 (abfd, src->vna_name, dst->vna_name); |
170 | 0 | H_PUT_32 (abfd, src->vna_next, dst->vna_next); |
171 | 0 | } |
172 | | |
173 | | /* Swap in a Versym structure. */ |
174 | | |
175 | | void |
176 | | _bfd_elf_swap_versym_in (bfd *abfd, |
177 | | const Elf_External_Versym *src, |
178 | | Elf_Internal_Versym *dst) |
179 | 0 | { |
180 | 0 | dst->vs_vers = H_GET_16 (abfd, src->vs_vers); |
181 | 0 | } |
182 | | |
183 | | /* Swap out a Versym structure. */ |
184 | | |
185 | | void |
186 | | _bfd_elf_swap_versym_out (bfd *abfd, |
187 | | const Elf_Internal_Versym *src, |
188 | | Elf_External_Versym *dst) |
189 | 0 | { |
190 | 0 | H_PUT_16 (abfd, src->vs_vers, dst->vs_vers); |
191 | 0 | } |
192 | | |
193 | | /* Standard ELF hash function. Do not change this function; you will |
194 | | cause invalid hash tables to be generated. */ |
195 | | |
196 | | unsigned long |
197 | | bfd_elf_hash (const char *namearg) |
198 | 0 | { |
199 | 0 | uint32_t h = 0; |
200 | |
|
201 | 0 | for (const unsigned char *name = (const unsigned char *) namearg; |
202 | 0 | *name; name++) |
203 | 0 | { |
204 | 0 | h = (h << 4) + *name; |
205 | 0 | h ^= (h >> 24) & 0xf0; |
206 | 0 | } |
207 | 0 | return h & 0x0fffffff; |
208 | 0 | } |
209 | | |
210 | | /* DT_GNU_HASH hash function. Do not change this function; you will |
211 | | cause invalid hash tables to be generated. */ |
212 | | |
213 | | unsigned long |
214 | | bfd_elf_gnu_hash (const char *namearg) |
215 | 0 | { |
216 | 0 | uint32_t h = 5381; |
217 | |
|
218 | 0 | for (const unsigned char *name = (const unsigned char *) namearg; |
219 | 0 | *name; name++) |
220 | 0 | h = (h << 5) + h + *name; |
221 | 0 | return h; |
222 | 0 | } |
223 | | |
224 | | /* Create a tdata field OBJECT_SIZE bytes in length, zeroed out and with |
225 | | the object_id field of an elf_obj_tdata field set to OBJECT_ID. */ |
226 | | bool |
227 | | bfd_elf_allocate_object (bfd *abfd, |
228 | | size_t object_size, |
229 | | enum elf_target_id object_id) |
230 | 0 | { |
231 | 0 | BFD_ASSERT (object_size >= sizeof (struct elf_obj_tdata)); |
232 | 0 | abfd->tdata.any = bfd_zalloc (abfd, object_size); |
233 | 0 | if (abfd->tdata.any == NULL) |
234 | 0 | return false; |
235 | | |
236 | 0 | elf_object_id (abfd) = object_id; |
237 | 0 | if (abfd->direction != read_direction) |
238 | 0 | { |
239 | 0 | struct output_elf_obj_tdata *o = bfd_zalloc (abfd, sizeof *o); |
240 | 0 | if (o == NULL) |
241 | 0 | return false; |
242 | 0 | elf_tdata (abfd)->o = o; |
243 | 0 | elf_program_header_size (abfd) = (bfd_size_type) -1; |
244 | 0 | } |
245 | 0 | return true; |
246 | 0 | } |
247 | | |
248 | | |
249 | | bool |
250 | | bfd_elf_make_object (bfd *abfd) |
251 | 0 | { |
252 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
253 | 0 | return bfd_elf_allocate_object (abfd, sizeof (struct elf_obj_tdata), |
254 | 0 | bed->target_id); |
255 | 0 | } |
256 | | |
257 | | bool |
258 | | bfd_elf_mkcorefile (bfd *abfd) |
259 | 0 | { |
260 | | /* I think this can be done just like an object file. */ |
261 | 0 | if (!abfd->xvec->_bfd_set_format[(int) bfd_object] (abfd)) |
262 | 0 | return false; |
263 | 0 | elf_tdata (abfd)->core = bfd_zalloc (abfd, sizeof (*elf_tdata (abfd)->core)); |
264 | 0 | return elf_tdata (abfd)->core != NULL; |
265 | 0 | } |
266 | | |
267 | | char * |
268 | | bfd_elf_get_str_section (bfd *abfd, unsigned int shindex) |
269 | 0 | { |
270 | 0 | Elf_Internal_Shdr **i_shdrp; |
271 | 0 | bfd_byte *shstrtab = NULL; |
272 | 0 | file_ptr offset; |
273 | 0 | bfd_size_type shstrtabsize; |
274 | |
|
275 | 0 | i_shdrp = elf_elfsections (abfd); |
276 | 0 | if (i_shdrp == 0 |
277 | 0 | || shindex >= elf_numsections (abfd) |
278 | 0 | || i_shdrp[shindex] == 0) |
279 | 0 | return NULL; |
280 | | |
281 | 0 | shstrtab = i_shdrp[shindex]->contents; |
282 | 0 | if (shstrtab == NULL) |
283 | 0 | { |
284 | | /* No cached one, attempt to read, and cache what we read. */ |
285 | 0 | offset = i_shdrp[shindex]->sh_offset; |
286 | 0 | shstrtabsize = i_shdrp[shindex]->sh_size; |
287 | | |
288 | | /* Allocate and clear an extra byte at the end, to prevent crashes |
289 | | in case the string table is not terminated. */ |
290 | 0 | if (shstrtabsize + 1 <= 1 |
291 | 0 | || bfd_seek (abfd, offset, SEEK_SET) != 0 |
292 | 0 | || (shstrtab = _bfd_alloc_and_read (abfd, shstrtabsize + 1, |
293 | 0 | shstrtabsize)) == NULL) |
294 | 0 | { |
295 | | /* Once we've failed to read it, make sure we don't keep |
296 | | trying. Otherwise, we'll keep allocating space for |
297 | | the string table over and over. */ |
298 | 0 | i_shdrp[shindex]->sh_size = 0; |
299 | 0 | } |
300 | 0 | else |
301 | 0 | shstrtab[shstrtabsize] = '\0'; |
302 | 0 | i_shdrp[shindex]->contents = shstrtab; |
303 | 0 | } |
304 | 0 | return (char *) shstrtab; |
305 | 0 | } |
306 | | |
307 | | char * |
308 | | bfd_elf_string_from_elf_section (bfd *abfd, |
309 | | unsigned int shindex, |
310 | | unsigned int strindex) |
311 | 0 | { |
312 | 0 | Elf_Internal_Shdr *hdr; |
313 | |
|
314 | 0 | if (strindex == 0) |
315 | 0 | return ""; |
316 | | |
317 | 0 | if (elf_elfsections (abfd) == NULL || shindex >= elf_numsections (abfd)) |
318 | 0 | return NULL; |
319 | | |
320 | 0 | hdr = elf_elfsections (abfd)[shindex]; |
321 | |
|
322 | 0 | if (hdr->contents == NULL) |
323 | 0 | { |
324 | 0 | if (hdr->sh_type != SHT_STRTAB && hdr->sh_type < SHT_LOOS) |
325 | 0 | { |
326 | | /* PR 17512: file: f057ec89. */ |
327 | | /* xgettext:c-format */ |
328 | 0 | _bfd_error_handler (_("%pB: attempt to load strings from" |
329 | 0 | " a non-string section (number %d)"), |
330 | 0 | abfd, shindex); |
331 | 0 | return NULL; |
332 | 0 | } |
333 | | |
334 | 0 | if (bfd_elf_get_str_section (abfd, shindex) == NULL) |
335 | 0 | return NULL; |
336 | 0 | } |
337 | 0 | else |
338 | 0 | { |
339 | | /* PR 24273: The string section's contents may have already |
340 | | been loaded elsewhere, eg because a corrupt file has the |
341 | | string section index in the ELF header pointing at a group |
342 | | section. So be paranoid, and test that the last byte of |
343 | | the section is zero. */ |
344 | 0 | if (hdr->sh_size == 0 || hdr->contents[hdr->sh_size - 1] != 0) |
345 | 0 | return NULL; |
346 | 0 | } |
347 | | |
348 | 0 | if (strindex >= hdr->sh_size) |
349 | 0 | { |
350 | 0 | unsigned int shstrndx = elf_elfheader(abfd)->e_shstrndx; |
351 | 0 | _bfd_error_handler |
352 | | /* xgettext:c-format */ |
353 | 0 | (_("%pB: invalid string offset %u >= %" PRIu64 " for section `%s'"), |
354 | 0 | abfd, strindex, (uint64_t) hdr->sh_size, |
355 | 0 | (shindex == shstrndx && strindex == hdr->sh_name |
356 | 0 | ? ".shstrtab" |
357 | 0 | : bfd_elf_string_from_elf_section (abfd, shstrndx, hdr->sh_name))); |
358 | 0 | return NULL; |
359 | 0 | } |
360 | | |
361 | 0 | return ((char *) hdr->contents) + strindex; |
362 | 0 | } |
363 | | |
364 | | /* Read and convert symbols to internal format. |
365 | | SYMCOUNT specifies the number of symbols to read, starting from |
366 | | symbol SYMOFFSET. If any of INTSYM_BUF, EXTSYM_BUF or EXTSHNDX_BUF |
367 | | are non-NULL, they are used to store the internal symbols, external |
368 | | symbols, and symbol section index extensions, respectively. |
369 | | Returns a pointer to the internal symbol buffer (malloced if necessary) |
370 | | or NULL if there were no symbols or some kind of problem. */ |
371 | | |
372 | | Elf_Internal_Sym * |
373 | | bfd_elf_get_elf_syms (bfd *ibfd, |
374 | | Elf_Internal_Shdr *symtab_hdr, |
375 | | size_t symcount, |
376 | | size_t symoffset, |
377 | | Elf_Internal_Sym *intsym_buf, |
378 | | void *extsym_buf, |
379 | | Elf_External_Sym_Shndx *extshndx_buf) |
380 | 0 | { |
381 | 0 | Elf_Internal_Shdr *shndx_hdr; |
382 | 0 | void *alloc_ext; |
383 | 0 | const bfd_byte *esym; |
384 | 0 | Elf_External_Sym_Shndx *alloc_extshndx; |
385 | 0 | Elf_External_Sym_Shndx *shndx; |
386 | 0 | Elf_Internal_Sym *alloc_intsym; |
387 | 0 | Elf_Internal_Sym *isym; |
388 | 0 | Elf_Internal_Sym *isymend; |
389 | 0 | const struct elf_backend_data *bed; |
390 | 0 | size_t extsym_size; |
391 | 0 | size_t amt; |
392 | 0 | file_ptr pos; |
393 | |
|
394 | 0 | if (bfd_get_flavour (ibfd) != bfd_target_elf_flavour) |
395 | 0 | abort (); |
396 | | |
397 | 0 | if (symcount == 0) |
398 | 0 | return intsym_buf; |
399 | | |
400 | | /* Normal syms might have section extension entries. */ |
401 | 0 | shndx_hdr = NULL; |
402 | 0 | if (elf_symtab_shndx_list (ibfd) != NULL) |
403 | 0 | { |
404 | 0 | elf_section_list * entry; |
405 | 0 | Elf_Internal_Shdr **sections = elf_elfsections (ibfd); |
406 | | |
407 | | /* Find an index section that is linked to this symtab section. */ |
408 | 0 | for (entry = elf_symtab_shndx_list (ibfd); entry != NULL; entry = entry->next) |
409 | 0 | { |
410 | | /* PR 20063. */ |
411 | 0 | if (entry->hdr.sh_link >= elf_numsections (ibfd)) |
412 | 0 | continue; |
413 | | |
414 | 0 | if (sections[entry->hdr.sh_link] == symtab_hdr) |
415 | 0 | { |
416 | 0 | shndx_hdr = & entry->hdr; |
417 | 0 | break; |
418 | 0 | }; |
419 | 0 | } |
420 | |
|
421 | 0 | if (shndx_hdr == NULL) |
422 | 0 | { |
423 | 0 | if (symtab_hdr == &elf_symtab_hdr (ibfd)) |
424 | | /* Not really accurate, but this was how the old code used |
425 | | to work. */ |
426 | 0 | shndx_hdr = &elf_symtab_shndx_list (ibfd)->hdr; |
427 | | /* Otherwise we do nothing. The assumption is that |
428 | | the index table will not be needed. */ |
429 | 0 | } |
430 | 0 | } |
431 | | |
432 | | /* Read the symbols. */ |
433 | 0 | alloc_ext = NULL; |
434 | 0 | alloc_extshndx = NULL; |
435 | 0 | alloc_intsym = NULL; |
436 | 0 | bed = get_elf_backend_data (ibfd); |
437 | 0 | extsym_size = bed->s->sizeof_sym; |
438 | 0 | if (_bfd_mul_overflow (symcount, extsym_size, &amt)) |
439 | 0 | { |
440 | 0 | bfd_set_error (bfd_error_file_too_big); |
441 | 0 | intsym_buf = NULL; |
442 | 0 | goto out; |
443 | 0 | } |
444 | 0 | pos = symtab_hdr->sh_offset + symoffset * extsym_size; |
445 | 0 | if (extsym_buf == NULL) |
446 | 0 | { |
447 | 0 | alloc_ext = bfd_malloc (amt); |
448 | 0 | extsym_buf = alloc_ext; |
449 | 0 | } |
450 | 0 | if (extsym_buf == NULL |
451 | 0 | || bfd_seek (ibfd, pos, SEEK_SET) != 0 |
452 | 0 | || bfd_bread (extsym_buf, amt, ibfd) != amt) |
453 | 0 | { |
454 | 0 | intsym_buf = NULL; |
455 | 0 | goto out; |
456 | 0 | } |
457 | | |
458 | 0 | if (shndx_hdr == NULL || shndx_hdr->sh_size == 0) |
459 | 0 | extshndx_buf = NULL; |
460 | 0 | else |
461 | 0 | { |
462 | 0 | if (_bfd_mul_overflow (symcount, sizeof (Elf_External_Sym_Shndx), &amt)) |
463 | 0 | { |
464 | 0 | bfd_set_error (bfd_error_file_too_big); |
465 | 0 | intsym_buf = NULL; |
466 | 0 | goto out; |
467 | 0 | } |
468 | 0 | pos = shndx_hdr->sh_offset + symoffset * sizeof (Elf_External_Sym_Shndx); |
469 | 0 | if (extshndx_buf == NULL) |
470 | 0 | { |
471 | 0 | alloc_extshndx = (Elf_External_Sym_Shndx *) bfd_malloc (amt); |
472 | 0 | extshndx_buf = alloc_extshndx; |
473 | 0 | } |
474 | 0 | if (extshndx_buf == NULL |
475 | 0 | || bfd_seek (ibfd, pos, SEEK_SET) != 0 |
476 | 0 | || bfd_bread (extshndx_buf, amt, ibfd) != amt) |
477 | 0 | { |
478 | 0 | intsym_buf = NULL; |
479 | 0 | goto out; |
480 | 0 | } |
481 | 0 | } |
482 | | |
483 | 0 | if (intsym_buf == NULL) |
484 | 0 | { |
485 | 0 | if (_bfd_mul_overflow (symcount, sizeof (Elf_Internal_Sym), &amt)) |
486 | 0 | { |
487 | 0 | bfd_set_error (bfd_error_file_too_big); |
488 | 0 | goto out; |
489 | 0 | } |
490 | 0 | alloc_intsym = (Elf_Internal_Sym *) bfd_malloc (amt); |
491 | 0 | intsym_buf = alloc_intsym; |
492 | 0 | if (intsym_buf == NULL) |
493 | 0 | goto out; |
494 | 0 | } |
495 | | |
496 | | /* Convert the symbols to internal form. */ |
497 | 0 | isymend = intsym_buf + symcount; |
498 | 0 | for (esym = (const bfd_byte *) extsym_buf, isym = intsym_buf, |
499 | 0 | shndx = extshndx_buf; |
500 | 0 | isym < isymend; |
501 | 0 | esym += extsym_size, isym++, shndx = shndx != NULL ? shndx + 1 : NULL) |
502 | 0 | if (!(*bed->s->swap_symbol_in) (ibfd, esym, shndx, isym)) |
503 | 0 | { |
504 | 0 | symoffset += (esym - (bfd_byte *) extsym_buf) / extsym_size; |
505 | | /* xgettext:c-format */ |
506 | 0 | _bfd_error_handler (_("%pB symbol number %lu references" |
507 | 0 | " nonexistent SHT_SYMTAB_SHNDX section"), |
508 | 0 | ibfd, (unsigned long) symoffset); |
509 | 0 | free (alloc_intsym); |
510 | 0 | intsym_buf = NULL; |
511 | 0 | goto out; |
512 | 0 | } |
513 | | |
514 | 0 | out: |
515 | 0 | free (alloc_ext); |
516 | 0 | free (alloc_extshndx); |
517 | |
|
518 | 0 | return intsym_buf; |
519 | 0 | } |
520 | | |
521 | | /* Look up a symbol name. */ |
522 | | const char * |
523 | | bfd_elf_sym_name (bfd *abfd, |
524 | | Elf_Internal_Shdr *symtab_hdr, |
525 | | Elf_Internal_Sym *isym, |
526 | | asection *sym_sec) |
527 | 0 | { |
528 | 0 | const char *name; |
529 | 0 | unsigned int iname = isym->st_name; |
530 | 0 | unsigned int shindex = symtab_hdr->sh_link; |
531 | |
|
532 | 0 | if (iname == 0 && ELF_ST_TYPE (isym->st_info) == STT_SECTION |
533 | | /* Check for a bogus st_shndx to avoid crashing. */ |
534 | 0 | && isym->st_shndx < elf_numsections (abfd)) |
535 | 0 | { |
536 | 0 | iname = elf_elfsections (abfd)[isym->st_shndx]->sh_name; |
537 | 0 | shindex = elf_elfheader (abfd)->e_shstrndx; |
538 | 0 | } |
539 | |
|
540 | 0 | name = bfd_elf_string_from_elf_section (abfd, shindex, iname); |
541 | 0 | if (name == NULL) |
542 | 0 | name = "(null)"; |
543 | 0 | else if (sym_sec && *name == '\0') |
544 | 0 | name = bfd_section_name (sym_sec); |
545 | |
|
546 | 0 | return name; |
547 | 0 | } |
548 | | |
549 | | /* Elf_Internal_Shdr->contents is an array of these for SHT_GROUP |
550 | | sections. The first element is the flags, the rest are section |
551 | | pointers. */ |
552 | | |
553 | | typedef union elf_internal_group { |
554 | | Elf_Internal_Shdr *shdr; |
555 | | unsigned int flags; |
556 | | } Elf_Internal_Group; |
557 | | |
558 | | /* Return the name of the group signature symbol. Why isn't the |
559 | | signature just a string? */ |
560 | | |
561 | | static const char * |
562 | | group_signature (bfd *abfd, Elf_Internal_Shdr *ghdr) |
563 | 0 | { |
564 | 0 | Elf_Internal_Shdr *hdr; |
565 | 0 | unsigned char esym[sizeof (Elf64_External_Sym)]; |
566 | 0 | Elf_External_Sym_Shndx eshndx; |
567 | 0 | Elf_Internal_Sym isym; |
568 | | |
569 | | /* First we need to ensure the symbol table is available. Make sure |
570 | | that it is a symbol table section. */ |
571 | 0 | if (ghdr->sh_link >= elf_numsections (abfd)) |
572 | 0 | return NULL; |
573 | 0 | hdr = elf_elfsections (abfd) [ghdr->sh_link]; |
574 | 0 | if (hdr->sh_type != SHT_SYMTAB |
575 | 0 | || ! bfd_section_from_shdr (abfd, ghdr->sh_link)) |
576 | 0 | return NULL; |
577 | | |
578 | | /* Go read the symbol. */ |
579 | 0 | hdr = &elf_tdata (abfd)->symtab_hdr; |
580 | 0 | if (bfd_elf_get_elf_syms (abfd, hdr, 1, ghdr->sh_info, |
581 | 0 | &isym, esym, &eshndx) == NULL) |
582 | 0 | return NULL; |
583 | | |
584 | 0 | return bfd_elf_sym_name (abfd, hdr, &isym, NULL); |
585 | 0 | } |
586 | | |
587 | | /* Set next_in_group list pointer, and group name for NEWSECT. */ |
588 | | |
589 | | static bool |
590 | | setup_group (bfd *abfd, Elf_Internal_Shdr *hdr, asection *newsect) |
591 | 0 | { |
592 | 0 | unsigned int num_group = elf_tdata (abfd)->num_group; |
593 | | |
594 | | /* If num_group is zero, read in all SHT_GROUP sections. The count |
595 | | is set to -1 if there are no SHT_GROUP sections. */ |
596 | 0 | if (num_group == 0) |
597 | 0 | { |
598 | 0 | unsigned int i, shnum; |
599 | | |
600 | | /* First count the number of groups. If we have a SHT_GROUP |
601 | | section with just a flag word (ie. sh_size is 4), ignore it. */ |
602 | 0 | shnum = elf_numsections (abfd); |
603 | 0 | num_group = 0; |
604 | |
|
605 | 0 | #define IS_VALID_GROUP_SECTION_HEADER(shdr, minsize) \ |
606 | 0 | ( (shdr)->sh_type == SHT_GROUP \ |
607 | 0 | && (shdr)->sh_size >= minsize \ |
608 | 0 | && (shdr)->sh_entsize == GRP_ENTRY_SIZE \ |
609 | 0 | && ((shdr)->sh_size % GRP_ENTRY_SIZE) == 0) |
610 | |
|
611 | 0 | for (i = 0; i < shnum; i++) |
612 | 0 | { |
613 | 0 | Elf_Internal_Shdr *shdr = elf_elfsections (abfd)[i]; |
614 | |
|
615 | 0 | if (IS_VALID_GROUP_SECTION_HEADER (shdr, 2 * GRP_ENTRY_SIZE)) |
616 | 0 | num_group += 1; |
617 | 0 | } |
618 | |
|
619 | 0 | if (num_group == 0) |
620 | 0 | { |
621 | 0 | num_group = (unsigned) -1; |
622 | 0 | elf_tdata (abfd)->num_group = num_group; |
623 | 0 | elf_tdata (abfd)->group_sect_ptr = NULL; |
624 | 0 | } |
625 | 0 | else |
626 | 0 | { |
627 | | /* We keep a list of elf section headers for group sections, |
628 | | so we can find them quickly. */ |
629 | 0 | size_t amt; |
630 | |
|
631 | 0 | elf_tdata (abfd)->num_group = num_group; |
632 | 0 | amt = num_group * sizeof (Elf_Internal_Shdr *); |
633 | 0 | elf_tdata (abfd)->group_sect_ptr |
634 | 0 | = (Elf_Internal_Shdr **) bfd_zalloc (abfd, amt); |
635 | 0 | if (elf_tdata (abfd)->group_sect_ptr == NULL) |
636 | 0 | return false; |
637 | 0 | num_group = 0; |
638 | |
|
639 | 0 | for (i = 0; i < shnum; i++) |
640 | 0 | { |
641 | 0 | Elf_Internal_Shdr *shdr = elf_elfsections (abfd)[i]; |
642 | |
|
643 | 0 | if (IS_VALID_GROUP_SECTION_HEADER (shdr, 2 * GRP_ENTRY_SIZE)) |
644 | 0 | { |
645 | 0 | unsigned char *src; |
646 | 0 | Elf_Internal_Group *dest; |
647 | | |
648 | | /* Make sure the group section has a BFD section |
649 | | attached to it. */ |
650 | 0 | if (!bfd_section_from_shdr (abfd, i)) |
651 | 0 | return false; |
652 | | |
653 | | /* Add to list of sections. */ |
654 | 0 | elf_tdata (abfd)->group_sect_ptr[num_group] = shdr; |
655 | 0 | num_group += 1; |
656 | | |
657 | | /* Read the raw contents. */ |
658 | 0 | BFD_ASSERT (sizeof (*dest) >= 4 && sizeof (*dest) % 4 == 0); |
659 | 0 | shdr->contents = NULL; |
660 | 0 | if (_bfd_mul_overflow (shdr->sh_size, |
661 | 0 | sizeof (*dest) / 4, &amt) |
662 | 0 | || bfd_seek (abfd, shdr->sh_offset, SEEK_SET) != 0 |
663 | 0 | || !(shdr->contents |
664 | 0 | = _bfd_alloc_and_read (abfd, amt, shdr->sh_size))) |
665 | 0 | { |
666 | 0 | _bfd_error_handler |
667 | | /* xgettext:c-format */ |
668 | 0 | (_("%pB: invalid size field in group section" |
669 | 0 | " header: %#" PRIx64 ""), |
670 | 0 | abfd, (uint64_t) shdr->sh_size); |
671 | 0 | bfd_set_error (bfd_error_bad_value); |
672 | 0 | -- num_group; |
673 | 0 | continue; |
674 | 0 | } |
675 | | |
676 | | /* Translate raw contents, a flag word followed by an |
677 | | array of elf section indices all in target byte order, |
678 | | to the flag word followed by an array of elf section |
679 | | pointers. */ |
680 | 0 | src = shdr->contents + shdr->sh_size; |
681 | 0 | dest = (Elf_Internal_Group *) (shdr->contents + amt); |
682 | |
|
683 | 0 | while (1) |
684 | 0 | { |
685 | 0 | unsigned int idx; |
686 | |
|
687 | 0 | src -= 4; |
688 | 0 | --dest; |
689 | 0 | idx = H_GET_32 (abfd, src); |
690 | 0 | if (src == shdr->contents) |
691 | 0 | { |
692 | 0 | dest->shdr = NULL; |
693 | 0 | dest->flags = idx; |
694 | 0 | if (shdr->bfd_section != NULL && (idx & GRP_COMDAT)) |
695 | 0 | shdr->bfd_section->flags |
696 | 0 | |= SEC_LINK_ONCE | SEC_LINK_DUPLICATES_DISCARD; |
697 | 0 | break; |
698 | 0 | } |
699 | 0 | if (idx < shnum) |
700 | 0 | { |
701 | 0 | dest->shdr = elf_elfsections (abfd)[idx]; |
702 | | /* PR binutils/23199: All sections in a |
703 | | section group should be marked with |
704 | | SHF_GROUP. But some tools generate |
705 | | broken objects without SHF_GROUP. Fix |
706 | | them up here. */ |
707 | 0 | dest->shdr->sh_flags |= SHF_GROUP; |
708 | 0 | } |
709 | 0 | if (idx >= shnum |
710 | 0 | || dest->shdr->sh_type == SHT_GROUP) |
711 | 0 | { |
712 | 0 | _bfd_error_handler |
713 | 0 | (_("%pB: invalid entry in SHT_GROUP section [%u]"), |
714 | 0 | abfd, i); |
715 | 0 | dest->shdr = NULL; |
716 | 0 | } |
717 | 0 | } |
718 | 0 | } |
719 | 0 | } |
720 | | |
721 | | /* PR 17510: Corrupt binaries might contain invalid groups. */ |
722 | 0 | if (num_group != (unsigned) elf_tdata (abfd)->num_group) |
723 | 0 | { |
724 | 0 | elf_tdata (abfd)->num_group = num_group; |
725 | | |
726 | | /* If all groups are invalid then fail. */ |
727 | 0 | if (num_group == 0) |
728 | 0 | { |
729 | 0 | elf_tdata (abfd)->group_sect_ptr = NULL; |
730 | 0 | elf_tdata (abfd)->num_group = num_group = -1; |
731 | 0 | _bfd_error_handler |
732 | 0 | (_("%pB: no valid group sections found"), abfd); |
733 | 0 | bfd_set_error (bfd_error_bad_value); |
734 | 0 | } |
735 | 0 | } |
736 | 0 | } |
737 | 0 | } |
738 | | |
739 | 0 | if (num_group != (unsigned) -1) |
740 | 0 | { |
741 | 0 | unsigned int search_offset = elf_tdata (abfd)->group_search_offset; |
742 | 0 | unsigned int j; |
743 | |
|
744 | 0 | for (j = 0; j < num_group; j++) |
745 | 0 | { |
746 | | /* Begin search from previous found group. */ |
747 | 0 | unsigned i = (j + search_offset) % num_group; |
748 | |
|
749 | 0 | Elf_Internal_Shdr *shdr = elf_tdata (abfd)->group_sect_ptr[i]; |
750 | 0 | Elf_Internal_Group *idx; |
751 | 0 | bfd_size_type n_elt; |
752 | |
|
753 | 0 | if (shdr == NULL) |
754 | 0 | continue; |
755 | | |
756 | 0 | idx = (Elf_Internal_Group *) shdr->contents; |
757 | 0 | if (idx == NULL || shdr->sh_size < 4) |
758 | 0 | { |
759 | | /* See PR 21957 for a reproducer. */ |
760 | | /* xgettext:c-format */ |
761 | 0 | _bfd_error_handler (_("%pB: group section '%pA' has no contents"), |
762 | 0 | abfd, shdr->bfd_section); |
763 | 0 | elf_tdata (abfd)->group_sect_ptr[i] = NULL; |
764 | 0 | bfd_set_error (bfd_error_bad_value); |
765 | 0 | return false; |
766 | 0 | } |
767 | 0 | n_elt = shdr->sh_size / 4; |
768 | | |
769 | | /* Look through this group's sections to see if current |
770 | | section is a member. */ |
771 | 0 | while (--n_elt != 0) |
772 | 0 | if ((++idx)->shdr == hdr) |
773 | 0 | { |
774 | 0 | asection *s = NULL; |
775 | | |
776 | | /* We are a member of this group. Go looking through |
777 | | other members to see if any others are linked via |
778 | | next_in_group. */ |
779 | 0 | idx = (Elf_Internal_Group *) shdr->contents; |
780 | 0 | n_elt = shdr->sh_size / 4; |
781 | 0 | while (--n_elt != 0) |
782 | 0 | if ((++idx)->shdr != NULL |
783 | 0 | && (s = idx->shdr->bfd_section) != NULL |
784 | 0 | && elf_next_in_group (s) != NULL) |
785 | 0 | break; |
786 | 0 | if (n_elt != 0) |
787 | 0 | { |
788 | | /* Snarf the group name from other member, and |
789 | | insert current section in circular list. */ |
790 | 0 | elf_group_name (newsect) = elf_group_name (s); |
791 | 0 | elf_next_in_group (newsect) = elf_next_in_group (s); |
792 | 0 | elf_next_in_group (s) = newsect; |
793 | 0 | } |
794 | 0 | else |
795 | 0 | { |
796 | 0 | const char *gname; |
797 | |
|
798 | 0 | gname = group_signature (abfd, shdr); |
799 | 0 | if (gname == NULL) |
800 | 0 | return false; |
801 | 0 | elf_group_name (newsect) = gname; |
802 | | |
803 | | /* Start a circular list with one element. */ |
804 | 0 | elf_next_in_group (newsect) = newsect; |
805 | 0 | } |
806 | | |
807 | | /* If the group section has been created, point to the |
808 | | new member. */ |
809 | 0 | if (shdr->bfd_section != NULL) |
810 | 0 | elf_next_in_group (shdr->bfd_section) = newsect; |
811 | |
|
812 | 0 | elf_tdata (abfd)->group_search_offset = i; |
813 | 0 | j = num_group - 1; |
814 | 0 | break; |
815 | 0 | } |
816 | 0 | } |
817 | 0 | } |
818 | | |
819 | 0 | if (elf_group_name (newsect) == NULL) |
820 | 0 | { |
821 | | /* xgettext:c-format */ |
822 | 0 | _bfd_error_handler (_("%pB: no group info for section '%pA'"), |
823 | 0 | abfd, newsect); |
824 | | /* PR 29532: Return true here, even though the group info has not been |
825 | | read. Separate debug info files can have empty group sections, but |
826 | | we do not want this to prevent them from being loaded as otherwise |
827 | | GDB will not be able to use them. */ |
828 | 0 | return true; |
829 | 0 | } |
830 | 0 | return true; |
831 | 0 | } |
832 | | |
833 | | bool |
834 | | _bfd_elf_setup_sections (bfd *abfd) |
835 | 0 | { |
836 | 0 | unsigned int i; |
837 | 0 | unsigned int num_group = elf_tdata (abfd)->num_group; |
838 | 0 | bool result = true; |
839 | 0 | asection *s; |
840 | | |
841 | | /* Process SHF_LINK_ORDER. */ |
842 | 0 | for (s = abfd->sections; s != NULL; s = s->next) |
843 | 0 | { |
844 | 0 | Elf_Internal_Shdr *this_hdr = &elf_section_data (s)->this_hdr; |
845 | 0 | if ((this_hdr->sh_flags & SHF_LINK_ORDER) != 0) |
846 | 0 | { |
847 | 0 | unsigned int elfsec = this_hdr->sh_link; |
848 | | /* An sh_link value of 0 is now allowed. It indicates that linked |
849 | | to section has already been discarded, but that the current |
850 | | section has been retained for some other reason. This linking |
851 | | section is still a candidate for later garbage collection |
852 | | however. */ |
853 | 0 | if (elfsec == 0) |
854 | 0 | { |
855 | 0 | elf_linked_to_section (s) = NULL; |
856 | 0 | } |
857 | 0 | else |
858 | 0 | { |
859 | 0 | asection *linksec = NULL; |
860 | |
|
861 | 0 | if (elfsec < elf_numsections (abfd)) |
862 | 0 | { |
863 | 0 | this_hdr = elf_elfsections (abfd)[elfsec]; |
864 | 0 | linksec = this_hdr->bfd_section; |
865 | 0 | } |
866 | | |
867 | | /* PR 1991, 2008: |
868 | | Some strip/objcopy may leave an incorrect value in |
869 | | sh_link. We don't want to proceed. */ |
870 | 0 | if (linksec == NULL) |
871 | 0 | { |
872 | 0 | _bfd_error_handler |
873 | | /* xgettext:c-format */ |
874 | 0 | (_("%pB: sh_link [%d] in section `%pA' is incorrect"), |
875 | 0 | s->owner, elfsec, s); |
876 | 0 | result = false; |
877 | 0 | } |
878 | |
|
879 | 0 | elf_linked_to_section (s) = linksec; |
880 | 0 | } |
881 | 0 | } |
882 | 0 | else if (this_hdr->sh_type == SHT_GROUP |
883 | 0 | && elf_next_in_group (s) == NULL) |
884 | 0 | { |
885 | 0 | _bfd_error_handler |
886 | | /* xgettext:c-format */ |
887 | 0 | (_("%pB: SHT_GROUP section [index %d] has no SHF_GROUP sections"), |
888 | 0 | abfd, elf_section_data (s)->this_idx); |
889 | 0 | result = false; |
890 | 0 | } |
891 | 0 | } |
892 | | |
893 | | /* Process section groups. */ |
894 | 0 | if (num_group == (unsigned) -1) |
895 | 0 | return result; |
896 | | |
897 | 0 | for (i = 0; i < num_group; i++) |
898 | 0 | { |
899 | 0 | Elf_Internal_Shdr *shdr = elf_tdata (abfd)->group_sect_ptr[i]; |
900 | 0 | Elf_Internal_Group *idx; |
901 | 0 | unsigned int n_elt; |
902 | | |
903 | | /* PR binutils/18758: Beware of corrupt binaries with invalid |
904 | | group data. */ |
905 | 0 | if (shdr == NULL || shdr->bfd_section == NULL || shdr->contents == NULL) |
906 | 0 | { |
907 | 0 | _bfd_error_handler |
908 | | /* xgettext:c-format */ |
909 | 0 | (_("%pB: section group entry number %u is corrupt"), |
910 | 0 | abfd, i); |
911 | 0 | result = false; |
912 | 0 | continue; |
913 | 0 | } |
914 | | |
915 | 0 | idx = (Elf_Internal_Group *) shdr->contents; |
916 | 0 | n_elt = shdr->sh_size / 4; |
917 | |
|
918 | 0 | while (--n_elt != 0) |
919 | 0 | { |
920 | 0 | ++ idx; |
921 | |
|
922 | 0 | if (idx->shdr == NULL) |
923 | 0 | continue; |
924 | 0 | else if (idx->shdr->bfd_section) |
925 | 0 | elf_sec_group (idx->shdr->bfd_section) = shdr->bfd_section; |
926 | 0 | else if (idx->shdr->sh_type != SHT_RELA |
927 | 0 | && idx->shdr->sh_type != SHT_REL) |
928 | 0 | { |
929 | | /* There are some unknown sections in the group. */ |
930 | 0 | _bfd_error_handler |
931 | | /* xgettext:c-format */ |
932 | 0 | (_("%pB: unknown type [%#x] section `%s' in group [%pA]"), |
933 | 0 | abfd, |
934 | 0 | idx->shdr->sh_type, |
935 | 0 | bfd_elf_string_from_elf_section (abfd, |
936 | 0 | (elf_elfheader (abfd) |
937 | 0 | ->e_shstrndx), |
938 | 0 | idx->shdr->sh_name), |
939 | 0 | shdr->bfd_section); |
940 | 0 | result = false; |
941 | 0 | } |
942 | 0 | } |
943 | 0 | } |
944 | |
|
945 | 0 | return result; |
946 | 0 | } |
947 | | |
948 | | bool |
949 | | bfd_elf_is_group_section (bfd *abfd ATTRIBUTE_UNUSED, const asection *sec) |
950 | 0 | { |
951 | 0 | return elf_next_in_group (sec) != NULL; |
952 | 0 | } |
953 | | |
954 | | const char * |
955 | | bfd_elf_group_name (bfd *abfd ATTRIBUTE_UNUSED, const asection *sec) |
956 | 0 | { |
957 | 0 | if (elf_sec_group (sec) != NULL) |
958 | 0 | return elf_group_name (sec); |
959 | 0 | return NULL; |
960 | 0 | } |
961 | | |
962 | | /* This a copy of lto_section defined in GCC (lto-streamer.h). */ |
963 | | |
964 | | struct lto_section |
965 | | { |
966 | | int16_t major_version; |
967 | | int16_t minor_version; |
968 | | unsigned char slim_object; |
969 | | |
970 | | /* Flags is a private field that is not defined publicly. */ |
971 | | uint16_t flags; |
972 | | }; |
973 | | |
974 | | /* Make a BFD section from an ELF section. We store a pointer to the |
975 | | BFD section in the bfd_section field of the header. */ |
976 | | |
977 | | bool |
978 | | _bfd_elf_make_section_from_shdr (bfd *abfd, |
979 | | Elf_Internal_Shdr *hdr, |
980 | | const char *name, |
981 | | int shindex) |
982 | 0 | { |
983 | 0 | asection *newsect; |
984 | 0 | flagword flags; |
985 | 0 | const struct elf_backend_data *bed; |
986 | 0 | unsigned int opb = bfd_octets_per_byte (abfd, NULL); |
987 | |
|
988 | 0 | if (hdr->bfd_section != NULL) |
989 | 0 | return true; |
990 | | |
991 | 0 | newsect = bfd_make_section_anyway (abfd, name); |
992 | 0 | if (newsect == NULL) |
993 | 0 | return false; |
994 | | |
995 | 0 | hdr->bfd_section = newsect; |
996 | 0 | elf_section_data (newsect)->this_hdr = *hdr; |
997 | 0 | elf_section_data (newsect)->this_idx = shindex; |
998 | | |
999 | | /* Always use the real type/flags. */ |
1000 | 0 | elf_section_type (newsect) = hdr->sh_type; |
1001 | 0 | elf_section_flags (newsect) = hdr->sh_flags; |
1002 | |
|
1003 | 0 | newsect->filepos = hdr->sh_offset; |
1004 | |
|
1005 | 0 | flags = SEC_NO_FLAGS; |
1006 | 0 | if (hdr->sh_type != SHT_NOBITS) |
1007 | 0 | flags |= SEC_HAS_CONTENTS; |
1008 | 0 | if (hdr->sh_type == SHT_GROUP) |
1009 | 0 | flags |= SEC_GROUP; |
1010 | 0 | if ((hdr->sh_flags & SHF_ALLOC) != 0) |
1011 | 0 | { |
1012 | 0 | flags |= SEC_ALLOC; |
1013 | 0 | if (hdr->sh_type != SHT_NOBITS) |
1014 | 0 | flags |= SEC_LOAD; |
1015 | 0 | } |
1016 | 0 | if ((hdr->sh_flags & SHF_WRITE) == 0) |
1017 | 0 | flags |= SEC_READONLY; |
1018 | 0 | if ((hdr->sh_flags & SHF_EXECINSTR) != 0) |
1019 | 0 | flags |= SEC_CODE; |
1020 | 0 | else if ((flags & SEC_LOAD) != 0) |
1021 | 0 | flags |= SEC_DATA; |
1022 | 0 | if ((hdr->sh_flags & SHF_MERGE) != 0) |
1023 | 0 | { |
1024 | 0 | flags |= SEC_MERGE; |
1025 | 0 | newsect->entsize = hdr->sh_entsize; |
1026 | 0 | } |
1027 | 0 | if ((hdr->sh_flags & SHF_STRINGS) != 0) |
1028 | 0 | flags |= SEC_STRINGS; |
1029 | 0 | if (hdr->sh_flags & SHF_GROUP) |
1030 | 0 | if (!setup_group (abfd, hdr, newsect)) |
1031 | 0 | return false; |
1032 | 0 | if ((hdr->sh_flags & SHF_TLS) != 0) |
1033 | 0 | flags |= SEC_THREAD_LOCAL; |
1034 | 0 | if ((hdr->sh_flags & SHF_EXCLUDE) != 0) |
1035 | 0 | flags |= SEC_EXCLUDE; |
1036 | |
|
1037 | 0 | switch (elf_elfheader (abfd)->e_ident[EI_OSABI]) |
1038 | 0 | { |
1039 | | /* FIXME: We should not recognize SHF_GNU_MBIND for ELFOSABI_NONE, |
1040 | | but binutils as of 2019-07-23 did not set the EI_OSABI header |
1041 | | byte. */ |
1042 | 0 | case ELFOSABI_GNU: |
1043 | 0 | case ELFOSABI_FREEBSD: |
1044 | 0 | if ((hdr->sh_flags & SHF_GNU_RETAIN) != 0) |
1045 | 0 | elf_tdata (abfd)->has_gnu_osabi |= elf_gnu_osabi_retain; |
1046 | | /* Fall through */ |
1047 | 0 | case ELFOSABI_NONE: |
1048 | 0 | if ((hdr->sh_flags & SHF_GNU_MBIND) != 0) |
1049 | 0 | elf_tdata (abfd)->has_gnu_osabi |= elf_gnu_osabi_mbind; |
1050 | 0 | break; |
1051 | 0 | } |
1052 | | |
1053 | 0 | if ((flags & SEC_ALLOC) == 0) |
1054 | 0 | { |
1055 | | /* The debugging sections appear to be recognized only by name, |
1056 | | not any sort of flag. Their SEC_ALLOC bits are cleared. */ |
1057 | 0 | if (name [0] == '.') |
1058 | 0 | { |
1059 | 0 | if (startswith (name, ".debug") |
1060 | 0 | || startswith (name, ".gnu.debuglto_.debug_") |
1061 | 0 | || startswith (name, ".gnu.linkonce.wi.") |
1062 | 0 | || startswith (name, ".zdebug")) |
1063 | 0 | flags |= SEC_DEBUGGING | SEC_ELF_OCTETS; |
1064 | 0 | else if (startswith (name, GNU_BUILD_ATTRS_SECTION_NAME) |
1065 | 0 | || startswith (name, ".note.gnu")) |
1066 | 0 | { |
1067 | 0 | flags |= SEC_ELF_OCTETS; |
1068 | 0 | opb = 1; |
1069 | 0 | } |
1070 | 0 | else if (startswith (name, ".line") |
1071 | 0 | || startswith (name, ".stab") |
1072 | 0 | || strcmp (name, ".gdb_index") == 0) |
1073 | 0 | flags |= SEC_DEBUGGING; |
1074 | 0 | } |
1075 | 0 | } |
1076 | |
|
1077 | 0 | if (!bfd_set_section_vma (newsect, hdr->sh_addr / opb) |
1078 | 0 | || !bfd_set_section_size (newsect, hdr->sh_size) |
1079 | 0 | || !bfd_set_section_alignment (newsect, bfd_log2 (hdr->sh_addralign |
1080 | 0 | & -hdr->sh_addralign))) |
1081 | 0 | return false; |
1082 | | |
1083 | | /* As a GNU extension, if the name begins with .gnu.linkonce, we |
1084 | | only link a single copy of the section. This is used to support |
1085 | | g++. g++ will emit each template expansion in its own section. |
1086 | | The symbols will be defined as weak, so that multiple definitions |
1087 | | are permitted. The GNU linker extension is to actually discard |
1088 | | all but one of the sections. */ |
1089 | 0 | if (startswith (name, ".gnu.linkonce") |
1090 | 0 | && elf_next_in_group (newsect) == NULL) |
1091 | 0 | flags |= SEC_LINK_ONCE | SEC_LINK_DUPLICATES_DISCARD; |
1092 | |
|
1093 | 0 | if (!bfd_set_section_flags (newsect, flags)) |
1094 | 0 | return false; |
1095 | | |
1096 | 0 | bed = get_elf_backend_data (abfd); |
1097 | 0 | if (bed->elf_backend_section_flags) |
1098 | 0 | if (!bed->elf_backend_section_flags (hdr)) |
1099 | 0 | return false; |
1100 | | |
1101 | | /* We do not parse the PT_NOTE segments as we are interested even in the |
1102 | | separate debug info files which may have the segments offsets corrupted. |
1103 | | PT_NOTEs from the core files are currently not parsed using BFD. */ |
1104 | 0 | if (hdr->sh_type == SHT_NOTE && hdr->sh_size != 0) |
1105 | 0 | { |
1106 | 0 | bfd_byte *contents; |
1107 | |
|
1108 | 0 | if (!bfd_malloc_and_get_section (abfd, newsect, &contents)) |
1109 | 0 | return false; |
1110 | | |
1111 | 0 | elf_parse_notes (abfd, (char *) contents, hdr->sh_size, |
1112 | 0 | hdr->sh_offset, hdr->sh_addralign); |
1113 | 0 | free (contents); |
1114 | 0 | } |
1115 | | |
1116 | 0 | if ((newsect->flags & SEC_ALLOC) != 0) |
1117 | 0 | { |
1118 | 0 | Elf_Internal_Phdr *phdr; |
1119 | 0 | unsigned int i, nload; |
1120 | | |
1121 | | /* Some ELF linkers produce binaries with all the program header |
1122 | | p_paddr fields zero. If we have such a binary with more than |
1123 | | one PT_LOAD header, then leave the section lma equal to vma |
1124 | | so that we don't create sections with overlapping lma. */ |
1125 | 0 | phdr = elf_tdata (abfd)->phdr; |
1126 | 0 | for (nload = 0, i = 0; i < elf_elfheader (abfd)->e_phnum; i++, phdr++) |
1127 | 0 | if (phdr->p_paddr != 0) |
1128 | 0 | break; |
1129 | 0 | else if (phdr->p_type == PT_LOAD && phdr->p_memsz != 0) |
1130 | 0 | ++nload; |
1131 | 0 | if (i >= elf_elfheader (abfd)->e_phnum && nload > 1) |
1132 | 0 | return true; |
1133 | | |
1134 | 0 | phdr = elf_tdata (abfd)->phdr; |
1135 | 0 | for (i = 0; i < elf_elfheader (abfd)->e_phnum; i++, phdr++) |
1136 | 0 | { |
1137 | 0 | if (((phdr->p_type == PT_LOAD |
1138 | 0 | && (hdr->sh_flags & SHF_TLS) == 0) |
1139 | 0 | || phdr->p_type == PT_TLS) |
1140 | 0 | && ELF_SECTION_IN_SEGMENT (hdr, phdr)) |
1141 | 0 | { |
1142 | 0 | if ((newsect->flags & SEC_LOAD) == 0) |
1143 | 0 | newsect->lma = (phdr->p_paddr |
1144 | 0 | + hdr->sh_addr - phdr->p_vaddr) / opb; |
1145 | 0 | else |
1146 | | /* We used to use the same adjustment for SEC_LOAD |
1147 | | sections, but that doesn't work if the segment |
1148 | | is packed with code from multiple VMAs. |
1149 | | Instead we calculate the section LMA based on |
1150 | | the segment LMA. It is assumed that the |
1151 | | segment will contain sections with contiguous |
1152 | | LMAs, even if the VMAs are not. */ |
1153 | 0 | newsect->lma = (phdr->p_paddr |
1154 | 0 | + hdr->sh_offset - phdr->p_offset) / opb; |
1155 | | |
1156 | | /* With contiguous segments, we can't tell from file |
1157 | | offsets whether a section with zero size should |
1158 | | be placed at the end of one segment or the |
1159 | | beginning of the next. Decide based on vaddr. */ |
1160 | 0 | if (hdr->sh_addr >= phdr->p_vaddr |
1161 | 0 | && (hdr->sh_addr + hdr->sh_size |
1162 | 0 | <= phdr->p_vaddr + phdr->p_memsz)) |
1163 | 0 | break; |
1164 | 0 | } |
1165 | 0 | } |
1166 | 0 | } |
1167 | | |
1168 | | /* Compress/decompress DWARF debug sections with names: .debug_*, |
1169 | | .zdebug_*, .gnu.debuglto_.debug_, after the section flags is set. */ |
1170 | 0 | if ((newsect->flags & SEC_DEBUGGING) != 0 |
1171 | 0 | && (newsect->flags & SEC_HAS_CONTENTS) != 0 |
1172 | 0 | && (newsect->flags & SEC_ELF_OCTETS) != 0) |
1173 | 0 | { |
1174 | 0 | enum { nothing, compress, decompress } action = nothing; |
1175 | 0 | int compression_header_size; |
1176 | 0 | bfd_size_type uncompressed_size; |
1177 | 0 | unsigned int uncompressed_align_power; |
1178 | 0 | enum compression_type ch_type = ch_none; |
1179 | 0 | bool compressed |
1180 | 0 | = bfd_is_section_compressed_info (abfd, newsect, |
1181 | 0 | &compression_header_size, |
1182 | 0 | &uncompressed_size, |
1183 | 0 | &uncompressed_align_power, |
1184 | 0 | &ch_type); |
1185 | | |
1186 | | /* Should we decompress? */ |
1187 | 0 | if ((abfd->flags & BFD_DECOMPRESS) != 0 && compressed) |
1188 | 0 | action = decompress; |
1189 | | |
1190 | | /* Should we compress? Or convert to a different compression? */ |
1191 | 0 | else if ((abfd->flags & BFD_COMPRESS) != 0 |
1192 | 0 | && newsect->size != 0 |
1193 | 0 | && compression_header_size >= 0 |
1194 | 0 | && uncompressed_size > 0) |
1195 | 0 | { |
1196 | 0 | if (!compressed) |
1197 | 0 | action = compress; |
1198 | 0 | else |
1199 | 0 | { |
1200 | 0 | enum compression_type new_ch_type = ch_none; |
1201 | 0 | if ((abfd->flags & BFD_COMPRESS_GABI) != 0) |
1202 | 0 | new_ch_type = ((abfd->flags & BFD_COMPRESS_ZSTD) != 0 |
1203 | 0 | ? ch_compress_zstd : ch_compress_zlib); |
1204 | 0 | if (new_ch_type != ch_type) |
1205 | 0 | action = compress; |
1206 | 0 | } |
1207 | 0 | } |
1208 | |
|
1209 | 0 | if (action == compress) |
1210 | 0 | { |
1211 | 0 | if (!bfd_init_section_compress_status (abfd, newsect)) |
1212 | 0 | { |
1213 | 0 | _bfd_error_handler |
1214 | | /* xgettext:c-format */ |
1215 | 0 | (_("%pB: unable to compress section %s"), abfd, name); |
1216 | 0 | return false; |
1217 | 0 | } |
1218 | 0 | } |
1219 | 0 | else if (action == decompress) |
1220 | 0 | { |
1221 | 0 | if (!bfd_init_section_decompress_status (abfd, newsect)) |
1222 | 0 | { |
1223 | 0 | _bfd_error_handler |
1224 | | /* xgettext:c-format */ |
1225 | 0 | (_("%pB: unable to decompress section %s"), abfd, name); |
1226 | 0 | return false; |
1227 | 0 | } |
1228 | 0 | #ifndef HAVE_ZSTD |
1229 | 0 | if (newsect->compress_status == DECOMPRESS_SECTION_ZSTD) |
1230 | 0 | { |
1231 | 0 | _bfd_error_handler |
1232 | | /* xgettext:c-format */ |
1233 | 0 | (_ ("%pB: section %s is compressed with zstd, but BFD " |
1234 | 0 | "is not built with zstd support"), |
1235 | 0 | abfd, name); |
1236 | 0 | newsect->compress_status = COMPRESS_SECTION_NONE; |
1237 | 0 | return false; |
1238 | 0 | } |
1239 | 0 | #endif |
1240 | 0 | if (abfd->is_linker_input |
1241 | 0 | && name[1] == 'z') |
1242 | 0 | { |
1243 | | /* Rename section from .zdebug_* to .debug_* so that ld |
1244 | | scripts will see this section as a debug section. */ |
1245 | 0 | char *new_name = bfd_zdebug_name_to_debug (abfd, name); |
1246 | 0 | if (new_name == NULL) |
1247 | 0 | return false; |
1248 | 0 | bfd_rename_section (newsect, new_name); |
1249 | 0 | } |
1250 | 0 | } |
1251 | 0 | } |
1252 | | |
1253 | | /* GCC uses .gnu.lto_.lto.<some_hash> as a LTO bytecode information |
1254 | | section. */ |
1255 | 0 | if (startswith (name, ".gnu.lto_.lto.")) |
1256 | 0 | { |
1257 | 0 | struct lto_section lsection; |
1258 | 0 | if (bfd_get_section_contents (abfd, newsect, &lsection, 0, |
1259 | 0 | sizeof (struct lto_section))) |
1260 | 0 | abfd->lto_slim_object = lsection.slim_object; |
1261 | 0 | } |
1262 | |
|
1263 | 0 | return true; |
1264 | 0 | } |
1265 | | |
1266 | | const char *const bfd_elf_section_type_names[] = |
1267 | | { |
1268 | | "SHT_NULL", "SHT_PROGBITS", "SHT_SYMTAB", "SHT_STRTAB", |
1269 | | "SHT_RELA", "SHT_HASH", "SHT_DYNAMIC", "SHT_NOTE", |
1270 | | "SHT_NOBITS", "SHT_REL", "SHT_SHLIB", "SHT_DYNSYM", |
1271 | | }; |
1272 | | |
1273 | | /* ELF relocs are against symbols. If we are producing relocatable |
1274 | | output, and the reloc is against an external symbol, and nothing |
1275 | | has given us any additional addend, the resulting reloc will also |
1276 | | be against the same symbol. In such a case, we don't want to |
1277 | | change anything about the way the reloc is handled, since it will |
1278 | | all be done at final link time. Rather than put special case code |
1279 | | into bfd_perform_relocation, all the reloc types use this howto |
1280 | | function, or should call this function for relocatable output. */ |
1281 | | |
1282 | | bfd_reloc_status_type |
1283 | | bfd_elf_generic_reloc (bfd *abfd ATTRIBUTE_UNUSED, |
1284 | | arelent *reloc_entry, |
1285 | | asymbol *symbol, |
1286 | | void *data ATTRIBUTE_UNUSED, |
1287 | | asection *input_section, |
1288 | | bfd *output_bfd, |
1289 | | char **error_message ATTRIBUTE_UNUSED) |
1290 | 0 | { |
1291 | 0 | if (output_bfd != NULL |
1292 | 0 | && (symbol->flags & BSF_SECTION_SYM) == 0 |
1293 | 0 | && (! reloc_entry->howto->partial_inplace |
1294 | 0 | || reloc_entry->addend == 0)) |
1295 | 0 | { |
1296 | 0 | reloc_entry->address += input_section->output_offset; |
1297 | 0 | return bfd_reloc_ok; |
1298 | 0 | } |
1299 | | |
1300 | | /* In some cases the relocation should be treated as output section |
1301 | | relative, as when linking ELF DWARF into PE COFF. Many ELF |
1302 | | targets lack section relative relocations and instead use |
1303 | | ordinary absolute relocations for references between DWARF |
1304 | | sections. That is arguably a bug in those targets but it happens |
1305 | | to work for the usual case of linking to non-loaded ELF debug |
1306 | | sections with VMAs forced to zero. PE COFF on the other hand |
1307 | | doesn't allow a section VMA of zero. */ |
1308 | 0 | if (output_bfd == NULL |
1309 | 0 | && !reloc_entry->howto->pc_relative |
1310 | 0 | && (symbol->section->flags & SEC_DEBUGGING) != 0 |
1311 | 0 | && (input_section->flags & SEC_DEBUGGING) != 0) |
1312 | 0 | reloc_entry->addend -= symbol->section->output_section->vma; |
1313 | |
|
1314 | 0 | return bfd_reloc_continue; |
1315 | 0 | } |
1316 | | |
1317 | | /* Returns TRUE if section A matches section B. |
1318 | | Names, addresses and links may be different, but everything else |
1319 | | should be the same. */ |
1320 | | |
1321 | | static bool |
1322 | | section_match (const Elf_Internal_Shdr * a, |
1323 | | const Elf_Internal_Shdr * b) |
1324 | 0 | { |
1325 | 0 | if (a->sh_type != b->sh_type |
1326 | 0 | || ((a->sh_flags ^ b->sh_flags) & ~SHF_INFO_LINK) != 0 |
1327 | 0 | || a->sh_addralign != b->sh_addralign |
1328 | 0 | || a->sh_entsize != b->sh_entsize) |
1329 | 0 | return false; |
1330 | 0 | if (a->sh_type == SHT_SYMTAB |
1331 | 0 | || a->sh_type == SHT_STRTAB) |
1332 | 0 | return true; |
1333 | 0 | return a->sh_size == b->sh_size; |
1334 | 0 | } |
1335 | | |
1336 | | /* Find a section in OBFD that has the same characteristics |
1337 | | as IHEADER. Return the index of this section or SHN_UNDEF if |
1338 | | none can be found. Check's section HINT first, as this is likely |
1339 | | to be the correct section. */ |
1340 | | |
1341 | | static unsigned int |
1342 | | find_link (const bfd *obfd, const Elf_Internal_Shdr *iheader, |
1343 | | const unsigned int hint) |
1344 | 0 | { |
1345 | 0 | Elf_Internal_Shdr ** oheaders = elf_elfsections (obfd); |
1346 | 0 | unsigned int i; |
1347 | |
|
1348 | 0 | BFD_ASSERT (iheader != NULL); |
1349 | | |
1350 | | /* See PR 20922 for a reproducer of the NULL test. */ |
1351 | 0 | if (hint < elf_numsections (obfd) |
1352 | 0 | && oheaders[hint] != NULL |
1353 | 0 | && section_match (oheaders[hint], iheader)) |
1354 | 0 | return hint; |
1355 | | |
1356 | 0 | for (i = 1; i < elf_numsections (obfd); i++) |
1357 | 0 | { |
1358 | 0 | Elf_Internal_Shdr * oheader = oheaders[i]; |
1359 | |
|
1360 | 0 | if (oheader == NULL) |
1361 | 0 | continue; |
1362 | 0 | if (section_match (oheader, iheader)) |
1363 | | /* FIXME: Do we care if there is a potential for |
1364 | | multiple matches ? */ |
1365 | 0 | return i; |
1366 | 0 | } |
1367 | | |
1368 | 0 | return SHN_UNDEF; |
1369 | 0 | } |
1370 | | |
1371 | | /* PR 19938: Attempt to set the ELF section header fields of an OS or |
1372 | | Processor specific section, based upon a matching input section. |
1373 | | Returns TRUE upon success, FALSE otherwise. */ |
1374 | | |
1375 | | static bool |
1376 | | copy_special_section_fields (const bfd *ibfd, |
1377 | | bfd *obfd, |
1378 | | const Elf_Internal_Shdr *iheader, |
1379 | | Elf_Internal_Shdr *oheader, |
1380 | | const unsigned int secnum) |
1381 | 0 | { |
1382 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (obfd); |
1383 | 0 | const Elf_Internal_Shdr **iheaders |
1384 | 0 | = (const Elf_Internal_Shdr **) elf_elfsections (ibfd); |
1385 | 0 | bool changed = false; |
1386 | 0 | unsigned int sh_link; |
1387 | |
|
1388 | 0 | if (oheader->sh_type == SHT_NOBITS) |
1389 | 0 | { |
1390 | | /* This is a feature for objcopy --only-keep-debug: |
1391 | | When a section's type is changed to NOBITS, we preserve |
1392 | | the sh_link and sh_info fields so that they can be |
1393 | | matched up with the original. |
1394 | | |
1395 | | Note: Strictly speaking these assignments are wrong. |
1396 | | The sh_link and sh_info fields should point to the |
1397 | | relevent sections in the output BFD, which may not be in |
1398 | | the same location as they were in the input BFD. But |
1399 | | the whole point of this action is to preserve the |
1400 | | original values of the sh_link and sh_info fields, so |
1401 | | that they can be matched up with the section headers in |
1402 | | the original file. So strictly speaking we may be |
1403 | | creating an invalid ELF file, but it is only for a file |
1404 | | that just contains debug info and only for sections |
1405 | | without any contents. */ |
1406 | 0 | if (oheader->sh_link == 0) |
1407 | 0 | oheader->sh_link = iheader->sh_link; |
1408 | 0 | if (oheader->sh_info == 0) |
1409 | 0 | oheader->sh_info = iheader->sh_info; |
1410 | 0 | return true; |
1411 | 0 | } |
1412 | | |
1413 | | /* Allow the target a chance to decide how these fields should be set. */ |
1414 | 0 | if (bed->elf_backend_copy_special_section_fields (ibfd, obfd, |
1415 | 0 | iheader, oheader)) |
1416 | 0 | return true; |
1417 | | |
1418 | | /* We have an iheader which might match oheader, and which has non-zero |
1419 | | sh_info and/or sh_link fields. Attempt to follow those links and find |
1420 | | the section in the output bfd which corresponds to the linked section |
1421 | | in the input bfd. */ |
1422 | 0 | if (iheader->sh_link != SHN_UNDEF) |
1423 | 0 | { |
1424 | | /* See PR 20931 for a reproducer. */ |
1425 | 0 | if (iheader->sh_link >= elf_numsections (ibfd)) |
1426 | 0 | { |
1427 | 0 | _bfd_error_handler |
1428 | | /* xgettext:c-format */ |
1429 | 0 | (_("%pB: invalid sh_link field (%d) in section number %d"), |
1430 | 0 | ibfd, iheader->sh_link, secnum); |
1431 | 0 | return false; |
1432 | 0 | } |
1433 | | |
1434 | 0 | sh_link = find_link (obfd, iheaders[iheader->sh_link], iheader->sh_link); |
1435 | 0 | if (sh_link != SHN_UNDEF) |
1436 | 0 | { |
1437 | 0 | oheader->sh_link = sh_link; |
1438 | 0 | changed = true; |
1439 | 0 | } |
1440 | 0 | else |
1441 | | /* FIXME: Should we install iheader->sh_link |
1442 | | if we could not find a match ? */ |
1443 | 0 | _bfd_error_handler |
1444 | | /* xgettext:c-format */ |
1445 | 0 | (_("%pB: failed to find link section for section %d"), obfd, secnum); |
1446 | 0 | } |
1447 | | |
1448 | 0 | if (iheader->sh_info) |
1449 | 0 | { |
1450 | | /* The sh_info field can hold arbitrary information, but if the |
1451 | | SHF_LINK_INFO flag is set then it should be interpreted as a |
1452 | | section index. */ |
1453 | 0 | if (iheader->sh_flags & SHF_INFO_LINK) |
1454 | 0 | { |
1455 | 0 | sh_link = find_link (obfd, iheaders[iheader->sh_info], |
1456 | 0 | iheader->sh_info); |
1457 | 0 | if (sh_link != SHN_UNDEF) |
1458 | 0 | oheader->sh_flags |= SHF_INFO_LINK; |
1459 | 0 | } |
1460 | 0 | else |
1461 | | /* No idea what it means - just copy it. */ |
1462 | 0 | sh_link = iheader->sh_info; |
1463 | |
|
1464 | 0 | if (sh_link != SHN_UNDEF) |
1465 | 0 | { |
1466 | 0 | oheader->sh_info = sh_link; |
1467 | 0 | changed = true; |
1468 | 0 | } |
1469 | 0 | else |
1470 | 0 | _bfd_error_handler |
1471 | | /* xgettext:c-format */ |
1472 | 0 | (_("%pB: failed to find info section for section %d"), obfd, secnum); |
1473 | 0 | } |
1474 | |
|
1475 | 0 | return changed; |
1476 | 0 | } |
1477 | | |
1478 | | /* Copy the program header and other data from one object module to |
1479 | | another. */ |
1480 | | |
1481 | | bool |
1482 | | _bfd_elf_copy_private_bfd_data (bfd *ibfd, bfd *obfd) |
1483 | 0 | { |
1484 | 0 | const Elf_Internal_Shdr **iheaders |
1485 | 0 | = (const Elf_Internal_Shdr **) elf_elfsections (ibfd); |
1486 | 0 | Elf_Internal_Shdr **oheaders = elf_elfsections (obfd); |
1487 | 0 | const struct elf_backend_data *bed; |
1488 | 0 | unsigned int i; |
1489 | |
|
1490 | 0 | if (bfd_get_flavour (ibfd) != bfd_target_elf_flavour |
1491 | 0 | || bfd_get_flavour (obfd) != bfd_target_elf_flavour) |
1492 | 0 | return true; |
1493 | | |
1494 | 0 | if (!elf_flags_init (obfd)) |
1495 | 0 | { |
1496 | 0 | elf_elfheader (obfd)->e_flags = elf_elfheader (ibfd)->e_flags; |
1497 | 0 | elf_flags_init (obfd) = true; |
1498 | 0 | } |
1499 | |
|
1500 | 0 | elf_gp (obfd) = elf_gp (ibfd); |
1501 | | |
1502 | | /* Also copy the EI_OSABI field. */ |
1503 | 0 | elf_elfheader (obfd)->e_ident[EI_OSABI] = |
1504 | 0 | elf_elfheader (ibfd)->e_ident[EI_OSABI]; |
1505 | | |
1506 | | /* If set, copy the EI_ABIVERSION field. */ |
1507 | 0 | if (elf_elfheader (ibfd)->e_ident[EI_ABIVERSION]) |
1508 | 0 | elf_elfheader (obfd)->e_ident[EI_ABIVERSION] |
1509 | 0 | = elf_elfheader (ibfd)->e_ident[EI_ABIVERSION]; |
1510 | | |
1511 | | /* Copy object attributes. */ |
1512 | 0 | _bfd_elf_copy_obj_attributes (ibfd, obfd); |
1513 | |
|
1514 | 0 | if (iheaders == NULL || oheaders == NULL) |
1515 | 0 | return true; |
1516 | | |
1517 | 0 | bed = get_elf_backend_data (obfd); |
1518 | | |
1519 | | /* Possibly copy other fields in the section header. */ |
1520 | 0 | for (i = 1; i < elf_numsections (obfd); i++) |
1521 | 0 | { |
1522 | 0 | unsigned int j; |
1523 | 0 | Elf_Internal_Shdr * oheader = oheaders[i]; |
1524 | | |
1525 | | /* Ignore ordinary sections. SHT_NOBITS sections are considered however |
1526 | | because of a special case need for generating separate debug info |
1527 | | files. See below for more details. */ |
1528 | 0 | if (oheader == NULL |
1529 | 0 | || (oheader->sh_type != SHT_NOBITS |
1530 | 0 | && oheader->sh_type < SHT_LOOS)) |
1531 | 0 | continue; |
1532 | | |
1533 | | /* Ignore empty sections, and sections whose |
1534 | | fields have already been initialised. */ |
1535 | 0 | if (oheader->sh_size == 0 |
1536 | 0 | || (oheader->sh_info != 0 && oheader->sh_link != 0)) |
1537 | 0 | continue; |
1538 | | |
1539 | | /* Scan for the matching section in the input bfd. |
1540 | | First we try for a direct mapping between the input and |
1541 | | output sections. */ |
1542 | 0 | for (j = 1; j < elf_numsections (ibfd); j++) |
1543 | 0 | { |
1544 | 0 | const Elf_Internal_Shdr * iheader = iheaders[j]; |
1545 | |
|
1546 | 0 | if (iheader == NULL) |
1547 | 0 | continue; |
1548 | | |
1549 | 0 | if (oheader->bfd_section != NULL |
1550 | 0 | && iheader->bfd_section != NULL |
1551 | 0 | && iheader->bfd_section->output_section != NULL |
1552 | 0 | && iheader->bfd_section->output_section == oheader->bfd_section) |
1553 | 0 | { |
1554 | | /* We have found a connection from the input section to |
1555 | | the output section. Attempt to copy the header fields. |
1556 | | If this fails then do not try any further sections - |
1557 | | there should only be a one-to-one mapping between |
1558 | | input and output. */ |
1559 | 0 | if (!copy_special_section_fields (ibfd, obfd, |
1560 | 0 | iheader, oheader, i)) |
1561 | 0 | j = elf_numsections (ibfd); |
1562 | 0 | break; |
1563 | 0 | } |
1564 | 0 | } |
1565 | |
|
1566 | 0 | if (j < elf_numsections (ibfd)) |
1567 | 0 | continue; |
1568 | | |
1569 | | /* That failed. So try to deduce the corresponding input section. |
1570 | | Unfortunately we cannot compare names as the output string table |
1571 | | is empty, so instead we check size, address and type. */ |
1572 | 0 | for (j = 1; j < elf_numsections (ibfd); j++) |
1573 | 0 | { |
1574 | 0 | const Elf_Internal_Shdr * iheader = iheaders[j]; |
1575 | |
|
1576 | 0 | if (iheader == NULL) |
1577 | 0 | continue; |
1578 | | |
1579 | | /* Try matching fields in the input section's header. |
1580 | | Since --only-keep-debug turns all non-debug sections into |
1581 | | SHT_NOBITS sections, the output SHT_NOBITS type matches any |
1582 | | input type. */ |
1583 | 0 | if ((oheader->sh_type == SHT_NOBITS |
1584 | 0 | || iheader->sh_type == oheader->sh_type) |
1585 | 0 | && (iheader->sh_flags & ~ SHF_INFO_LINK) |
1586 | 0 | == (oheader->sh_flags & ~ SHF_INFO_LINK) |
1587 | 0 | && iheader->sh_addralign == oheader->sh_addralign |
1588 | 0 | && iheader->sh_entsize == oheader->sh_entsize |
1589 | 0 | && iheader->sh_size == oheader->sh_size |
1590 | 0 | && iheader->sh_addr == oheader->sh_addr |
1591 | 0 | && (iheader->sh_info != oheader->sh_info |
1592 | 0 | || iheader->sh_link != oheader->sh_link)) |
1593 | 0 | { |
1594 | 0 | if (copy_special_section_fields (ibfd, obfd, iheader, oheader, i)) |
1595 | 0 | break; |
1596 | 0 | } |
1597 | 0 | } |
1598 | |
|
1599 | 0 | if (j == elf_numsections (ibfd) && oheader->sh_type >= SHT_LOOS) |
1600 | 0 | { |
1601 | | /* Final attempt. Call the backend copy function |
1602 | | with a NULL input section. */ |
1603 | 0 | (void) bed->elf_backend_copy_special_section_fields (ibfd, obfd, |
1604 | 0 | NULL, oheader); |
1605 | 0 | } |
1606 | 0 | } |
1607 | |
|
1608 | 0 | return true; |
1609 | 0 | } |
1610 | | |
1611 | | static const char * |
1612 | | get_segment_type (unsigned int p_type) |
1613 | 0 | { |
1614 | 0 | const char *pt; |
1615 | 0 | switch (p_type) |
1616 | 0 | { |
1617 | 0 | case PT_NULL: pt = "NULL"; break; |
1618 | 0 | case PT_LOAD: pt = "LOAD"; break; |
1619 | 0 | case PT_DYNAMIC: pt = "DYNAMIC"; break; |
1620 | 0 | case PT_INTERP: pt = "INTERP"; break; |
1621 | 0 | case PT_NOTE: pt = "NOTE"; break; |
1622 | 0 | case PT_SHLIB: pt = "SHLIB"; break; |
1623 | 0 | case PT_PHDR: pt = "PHDR"; break; |
1624 | 0 | case PT_TLS: pt = "TLS"; break; |
1625 | 0 | case PT_GNU_EH_FRAME: pt = "EH_FRAME"; break; |
1626 | 0 | case PT_GNU_STACK: pt = "STACK"; break; |
1627 | 0 | case PT_GNU_RELRO: pt = "RELRO"; break; |
1628 | 0 | case PT_GNU_SFRAME: pt = "SFRAME"; break; |
1629 | 0 | default: pt = NULL; break; |
1630 | 0 | } |
1631 | 0 | return pt; |
1632 | 0 | } |
1633 | | |
1634 | | /* Print out the program headers. */ |
1635 | | |
1636 | | bool |
1637 | | _bfd_elf_print_private_bfd_data (bfd *abfd, void *farg) |
1638 | 0 | { |
1639 | 0 | FILE *f = (FILE *) farg; |
1640 | 0 | Elf_Internal_Phdr *p; |
1641 | 0 | asection *s; |
1642 | 0 | bfd_byte *dynbuf = NULL; |
1643 | |
|
1644 | 0 | p = elf_tdata (abfd)->phdr; |
1645 | 0 | if (p != NULL) |
1646 | 0 | { |
1647 | 0 | unsigned int i, c; |
1648 | |
|
1649 | 0 | fprintf (f, _("\nProgram Header:\n")); |
1650 | 0 | c = elf_elfheader (abfd)->e_phnum; |
1651 | 0 | for (i = 0; i < c; i++, p++) |
1652 | 0 | { |
1653 | 0 | const char *pt = get_segment_type (p->p_type); |
1654 | 0 | char buf[20]; |
1655 | |
|
1656 | 0 | if (pt == NULL) |
1657 | 0 | { |
1658 | 0 | sprintf (buf, "0x%lx", p->p_type); |
1659 | 0 | pt = buf; |
1660 | 0 | } |
1661 | 0 | fprintf (f, "%8s off 0x", pt); |
1662 | 0 | bfd_fprintf_vma (abfd, f, p->p_offset); |
1663 | 0 | fprintf (f, " vaddr 0x"); |
1664 | 0 | bfd_fprintf_vma (abfd, f, p->p_vaddr); |
1665 | 0 | fprintf (f, " paddr 0x"); |
1666 | 0 | bfd_fprintf_vma (abfd, f, p->p_paddr); |
1667 | 0 | fprintf (f, " align 2**%u\n", bfd_log2 (p->p_align)); |
1668 | 0 | fprintf (f, " filesz 0x"); |
1669 | 0 | bfd_fprintf_vma (abfd, f, p->p_filesz); |
1670 | 0 | fprintf (f, " memsz 0x"); |
1671 | 0 | bfd_fprintf_vma (abfd, f, p->p_memsz); |
1672 | 0 | fprintf (f, " flags %c%c%c", |
1673 | 0 | (p->p_flags & PF_R) != 0 ? 'r' : '-', |
1674 | 0 | (p->p_flags & PF_W) != 0 ? 'w' : '-', |
1675 | 0 | (p->p_flags & PF_X) != 0 ? 'x' : '-'); |
1676 | 0 | if ((p->p_flags &~ (unsigned) (PF_R | PF_W | PF_X)) != 0) |
1677 | 0 | fprintf (f, " %lx", p->p_flags &~ (unsigned) (PF_R | PF_W | PF_X)); |
1678 | 0 | fprintf (f, "\n"); |
1679 | 0 | } |
1680 | 0 | } |
1681 | |
|
1682 | 0 | s = bfd_get_section_by_name (abfd, ".dynamic"); |
1683 | 0 | if (s != NULL && (s->flags & SEC_HAS_CONTENTS) != 0) |
1684 | 0 | { |
1685 | 0 | unsigned int elfsec; |
1686 | 0 | unsigned long shlink; |
1687 | 0 | bfd_byte *extdyn, *extdynend; |
1688 | 0 | size_t extdynsize; |
1689 | 0 | void (*swap_dyn_in) (bfd *, const void *, Elf_Internal_Dyn *); |
1690 | |
|
1691 | 0 | fprintf (f, _("\nDynamic Section:\n")); |
1692 | |
|
1693 | 0 | if (!bfd_malloc_and_get_section (abfd, s, &dynbuf)) |
1694 | 0 | goto error_return; |
1695 | | |
1696 | 0 | elfsec = _bfd_elf_section_from_bfd_section (abfd, s); |
1697 | 0 | if (elfsec == SHN_BAD) |
1698 | 0 | goto error_return; |
1699 | 0 | shlink = elf_elfsections (abfd)[elfsec]->sh_link; |
1700 | |
|
1701 | 0 | extdynsize = get_elf_backend_data (abfd)->s->sizeof_dyn; |
1702 | 0 | swap_dyn_in = get_elf_backend_data (abfd)->s->swap_dyn_in; |
1703 | |
|
1704 | 0 | for (extdyn = dynbuf, extdynend = dynbuf + s->size; |
1705 | 0 | (size_t) (extdynend - extdyn) >= extdynsize; |
1706 | 0 | extdyn += extdynsize) |
1707 | 0 | { |
1708 | 0 | Elf_Internal_Dyn dyn; |
1709 | 0 | const char *name = ""; |
1710 | 0 | char ab[20]; |
1711 | 0 | bool stringp; |
1712 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
1713 | |
|
1714 | 0 | (*swap_dyn_in) (abfd, extdyn, &dyn); |
1715 | |
|
1716 | 0 | if (dyn.d_tag == DT_NULL) |
1717 | 0 | break; |
1718 | | |
1719 | 0 | stringp = false; |
1720 | 0 | switch (dyn.d_tag) |
1721 | 0 | { |
1722 | 0 | default: |
1723 | 0 | if (bed->elf_backend_get_target_dtag) |
1724 | 0 | name = (*bed->elf_backend_get_target_dtag) (dyn.d_tag); |
1725 | |
|
1726 | 0 | if (!strcmp (name, "")) |
1727 | 0 | { |
1728 | 0 | sprintf (ab, "%#" PRIx64, (uint64_t) dyn.d_tag); |
1729 | 0 | name = ab; |
1730 | 0 | } |
1731 | 0 | break; |
1732 | | |
1733 | 0 | case DT_NEEDED: name = "NEEDED"; stringp = true; break; |
1734 | 0 | case DT_PLTRELSZ: name = "PLTRELSZ"; break; |
1735 | 0 | case DT_PLTGOT: name = "PLTGOT"; break; |
1736 | 0 | case DT_HASH: name = "HASH"; break; |
1737 | 0 | case DT_STRTAB: name = "STRTAB"; break; |
1738 | 0 | case DT_SYMTAB: name = "SYMTAB"; break; |
1739 | 0 | case DT_RELA: name = "RELA"; break; |
1740 | 0 | case DT_RELASZ: name = "RELASZ"; break; |
1741 | 0 | case DT_RELAENT: name = "RELAENT"; break; |
1742 | 0 | case DT_STRSZ: name = "STRSZ"; break; |
1743 | 0 | case DT_SYMENT: name = "SYMENT"; break; |
1744 | 0 | case DT_INIT: name = "INIT"; break; |
1745 | 0 | case DT_FINI: name = "FINI"; break; |
1746 | 0 | case DT_SONAME: name = "SONAME"; stringp = true; break; |
1747 | 0 | case DT_RPATH: name = "RPATH"; stringp = true; break; |
1748 | 0 | case DT_SYMBOLIC: name = "SYMBOLIC"; break; |
1749 | 0 | case DT_REL: name = "REL"; break; |
1750 | 0 | case DT_RELSZ: name = "RELSZ"; break; |
1751 | 0 | case DT_RELENT: name = "RELENT"; break; |
1752 | 0 | case DT_RELR: name = "RELR"; break; |
1753 | 0 | case DT_RELRSZ: name = "RELRSZ"; break; |
1754 | 0 | case DT_RELRENT: name = "RELRENT"; break; |
1755 | 0 | case DT_PLTREL: name = "PLTREL"; break; |
1756 | 0 | case DT_DEBUG: name = "DEBUG"; break; |
1757 | 0 | case DT_TEXTREL: name = "TEXTREL"; break; |
1758 | 0 | case DT_JMPREL: name = "JMPREL"; break; |
1759 | 0 | case DT_BIND_NOW: name = "BIND_NOW"; break; |
1760 | 0 | case DT_INIT_ARRAY: name = "INIT_ARRAY"; break; |
1761 | 0 | case DT_FINI_ARRAY: name = "FINI_ARRAY"; break; |
1762 | 0 | case DT_INIT_ARRAYSZ: name = "INIT_ARRAYSZ"; break; |
1763 | 0 | case DT_FINI_ARRAYSZ: name = "FINI_ARRAYSZ"; break; |
1764 | 0 | case DT_RUNPATH: name = "RUNPATH"; stringp = true; break; |
1765 | 0 | case DT_FLAGS: name = "FLAGS"; break; |
1766 | 0 | case DT_PREINIT_ARRAY: name = "PREINIT_ARRAY"; break; |
1767 | 0 | case DT_PREINIT_ARRAYSZ: name = "PREINIT_ARRAYSZ"; break; |
1768 | 0 | case DT_CHECKSUM: name = "CHECKSUM"; break; |
1769 | 0 | case DT_PLTPADSZ: name = "PLTPADSZ"; break; |
1770 | 0 | case DT_MOVEENT: name = "MOVEENT"; break; |
1771 | 0 | case DT_MOVESZ: name = "MOVESZ"; break; |
1772 | 0 | case DT_FEATURE: name = "FEATURE"; break; |
1773 | 0 | case DT_POSFLAG_1: name = "POSFLAG_1"; break; |
1774 | 0 | case DT_SYMINSZ: name = "SYMINSZ"; break; |
1775 | 0 | case DT_SYMINENT: name = "SYMINENT"; break; |
1776 | 0 | case DT_CONFIG: name = "CONFIG"; stringp = true; break; |
1777 | 0 | case DT_DEPAUDIT: name = "DEPAUDIT"; stringp = true; break; |
1778 | 0 | case DT_AUDIT: name = "AUDIT"; stringp = true; break; |
1779 | 0 | case DT_PLTPAD: name = "PLTPAD"; break; |
1780 | 0 | case DT_MOVETAB: name = "MOVETAB"; break; |
1781 | 0 | case DT_SYMINFO: name = "SYMINFO"; break; |
1782 | 0 | case DT_RELACOUNT: name = "RELACOUNT"; break; |
1783 | 0 | case DT_RELCOUNT: name = "RELCOUNT"; break; |
1784 | 0 | case DT_FLAGS_1: name = "FLAGS_1"; break; |
1785 | 0 | case DT_VERSYM: name = "VERSYM"; break; |
1786 | 0 | case DT_VERDEF: name = "VERDEF"; break; |
1787 | 0 | case DT_VERDEFNUM: name = "VERDEFNUM"; break; |
1788 | 0 | case DT_VERNEED: name = "VERNEED"; break; |
1789 | 0 | case DT_VERNEEDNUM: name = "VERNEEDNUM"; break; |
1790 | 0 | case DT_AUXILIARY: name = "AUXILIARY"; stringp = true; break; |
1791 | 0 | case DT_USED: name = "USED"; break; |
1792 | 0 | case DT_FILTER: name = "FILTER"; stringp = true; break; |
1793 | 0 | case DT_GNU_HASH: name = "GNU_HASH"; break; |
1794 | 0 | } |
1795 | | |
1796 | 0 | fprintf (f, " %-20s ", name); |
1797 | 0 | if (! stringp) |
1798 | 0 | { |
1799 | 0 | fprintf (f, "0x"); |
1800 | 0 | bfd_fprintf_vma (abfd, f, dyn.d_un.d_val); |
1801 | 0 | } |
1802 | 0 | else |
1803 | 0 | { |
1804 | 0 | const char *string; |
1805 | 0 | unsigned int tagv = dyn.d_un.d_val; |
1806 | |
|
1807 | 0 | string = bfd_elf_string_from_elf_section (abfd, shlink, tagv); |
1808 | 0 | if (string == NULL) |
1809 | 0 | goto error_return; |
1810 | 0 | fprintf (f, "%s", string); |
1811 | 0 | } |
1812 | 0 | fprintf (f, "\n"); |
1813 | 0 | } |
1814 | | |
1815 | 0 | free (dynbuf); |
1816 | 0 | dynbuf = NULL; |
1817 | 0 | } |
1818 | | |
1819 | 0 | if ((elf_dynverdef (abfd) != 0 && elf_tdata (abfd)->verdef == NULL) |
1820 | 0 | || (elf_dynverref (abfd) != 0 && elf_tdata (abfd)->verref == NULL)) |
1821 | 0 | { |
1822 | 0 | if (! _bfd_elf_slurp_version_tables (abfd, false)) |
1823 | 0 | return false; |
1824 | 0 | } |
1825 | | |
1826 | 0 | if (elf_dynverdef (abfd) != 0) |
1827 | 0 | { |
1828 | 0 | Elf_Internal_Verdef *t; |
1829 | |
|
1830 | 0 | fprintf (f, _("\nVersion definitions:\n")); |
1831 | 0 | for (t = elf_tdata (abfd)->verdef; t != NULL; t = t->vd_nextdef) |
1832 | 0 | { |
1833 | 0 | fprintf (f, "%d 0x%2.2x 0x%8.8lx %s\n", t->vd_ndx, |
1834 | 0 | t->vd_flags, t->vd_hash, |
1835 | 0 | t->vd_nodename ? t->vd_nodename : "<corrupt>"); |
1836 | 0 | if (t->vd_auxptr != NULL && t->vd_auxptr->vda_nextptr != NULL) |
1837 | 0 | { |
1838 | 0 | Elf_Internal_Verdaux *a; |
1839 | |
|
1840 | 0 | fprintf (f, "\t"); |
1841 | 0 | for (a = t->vd_auxptr->vda_nextptr; |
1842 | 0 | a != NULL; |
1843 | 0 | a = a->vda_nextptr) |
1844 | 0 | fprintf (f, "%s ", |
1845 | 0 | a->vda_nodename ? a->vda_nodename : "<corrupt>"); |
1846 | 0 | fprintf (f, "\n"); |
1847 | 0 | } |
1848 | 0 | } |
1849 | 0 | } |
1850 | |
|
1851 | 0 | if (elf_dynverref (abfd) != 0) |
1852 | 0 | { |
1853 | 0 | Elf_Internal_Verneed *t; |
1854 | |
|
1855 | 0 | fprintf (f, _("\nVersion References:\n")); |
1856 | 0 | for (t = elf_tdata (abfd)->verref; t != NULL; t = t->vn_nextref) |
1857 | 0 | { |
1858 | 0 | Elf_Internal_Vernaux *a; |
1859 | |
|
1860 | 0 | fprintf (f, _(" required from %s:\n"), |
1861 | 0 | t->vn_filename ? t->vn_filename : "<corrupt>"); |
1862 | 0 | for (a = t->vn_auxptr; a != NULL; a = a->vna_nextptr) |
1863 | 0 | fprintf (f, " 0x%8.8lx 0x%2.2x %2.2d %s\n", a->vna_hash, |
1864 | 0 | a->vna_flags, a->vna_other, |
1865 | 0 | a->vna_nodename ? a->vna_nodename : "<corrupt>"); |
1866 | 0 | } |
1867 | 0 | } |
1868 | |
|
1869 | 0 | return true; |
1870 | | |
1871 | 0 | error_return: |
1872 | 0 | free (dynbuf); |
1873 | 0 | return false; |
1874 | 0 | } |
1875 | | |
1876 | | /* Get version name. If BASE_P is TRUE, return "Base" for VER_FLG_BASE |
1877 | | and return symbol version for symbol version itself. */ |
1878 | | |
1879 | | const char * |
1880 | | _bfd_elf_get_symbol_version_string (bfd *abfd, asymbol *symbol, |
1881 | | bool base_p, |
1882 | | bool *hidden) |
1883 | 0 | { |
1884 | 0 | const char *version_string = NULL; |
1885 | 0 | if (elf_dynversym (abfd) != 0 |
1886 | 0 | && (elf_dynverdef (abfd) != 0 || elf_dynverref (abfd) != 0)) |
1887 | 0 | { |
1888 | 0 | unsigned int vernum = ((elf_symbol_type *) symbol)->version; |
1889 | |
|
1890 | 0 | *hidden = (vernum & VERSYM_HIDDEN) != 0; |
1891 | 0 | vernum &= VERSYM_VERSION; |
1892 | |
|
1893 | 0 | if (vernum == 0) |
1894 | 0 | version_string = ""; |
1895 | 0 | else if (vernum == 1 |
1896 | 0 | && (vernum > elf_tdata (abfd)->cverdefs |
1897 | 0 | || (elf_tdata (abfd)->verdef[0].vd_flags |
1898 | 0 | == VER_FLG_BASE))) |
1899 | 0 | version_string = base_p ? "Base" : ""; |
1900 | 0 | else if (vernum <= elf_tdata (abfd)->cverdefs) |
1901 | 0 | { |
1902 | 0 | const char *nodename |
1903 | 0 | = elf_tdata (abfd)->verdef[vernum - 1].vd_nodename; |
1904 | 0 | version_string = ""; |
1905 | 0 | if (base_p |
1906 | 0 | || nodename == NULL |
1907 | 0 | || symbol->name == NULL |
1908 | 0 | || strcmp (symbol->name, nodename) != 0) |
1909 | 0 | version_string = nodename; |
1910 | 0 | } |
1911 | 0 | else |
1912 | 0 | { |
1913 | 0 | Elf_Internal_Verneed *t; |
1914 | |
|
1915 | 0 | version_string = _("<corrupt>"); |
1916 | 0 | for (t = elf_tdata (abfd)->verref; |
1917 | 0 | t != NULL; |
1918 | 0 | t = t->vn_nextref) |
1919 | 0 | { |
1920 | 0 | Elf_Internal_Vernaux *a; |
1921 | |
|
1922 | 0 | for (a = t->vn_auxptr; a != NULL; a = a->vna_nextptr) |
1923 | 0 | { |
1924 | 0 | if (a->vna_other == vernum) |
1925 | 0 | { |
1926 | 0 | *hidden = true; |
1927 | 0 | version_string = a->vna_nodename; |
1928 | 0 | break; |
1929 | 0 | } |
1930 | 0 | } |
1931 | 0 | } |
1932 | 0 | } |
1933 | 0 | } |
1934 | 0 | return version_string; |
1935 | 0 | } |
1936 | | |
1937 | | /* Display ELF-specific fields of a symbol. */ |
1938 | | |
1939 | | void |
1940 | | bfd_elf_print_symbol (bfd *abfd, |
1941 | | void *filep, |
1942 | | asymbol *symbol, |
1943 | | bfd_print_symbol_type how) |
1944 | 0 | { |
1945 | 0 | FILE *file = (FILE *) filep; |
1946 | 0 | switch (how) |
1947 | 0 | { |
1948 | 0 | case bfd_print_symbol_name: |
1949 | 0 | fprintf (file, "%s", symbol->name); |
1950 | 0 | break; |
1951 | 0 | case bfd_print_symbol_more: |
1952 | 0 | fprintf (file, "elf "); |
1953 | 0 | bfd_fprintf_vma (abfd, file, symbol->value); |
1954 | 0 | fprintf (file, " %x", symbol->flags); |
1955 | 0 | break; |
1956 | 0 | case bfd_print_symbol_all: |
1957 | 0 | { |
1958 | 0 | const char *section_name; |
1959 | 0 | const char *name = NULL; |
1960 | 0 | const struct elf_backend_data *bed; |
1961 | 0 | unsigned char st_other; |
1962 | 0 | bfd_vma val; |
1963 | 0 | const char *version_string; |
1964 | 0 | bool hidden; |
1965 | |
|
1966 | 0 | section_name = symbol->section ? symbol->section->name : "(*none*)"; |
1967 | |
|
1968 | 0 | bed = get_elf_backend_data (abfd); |
1969 | 0 | if (bed->elf_backend_print_symbol_all) |
1970 | 0 | name = (*bed->elf_backend_print_symbol_all) (abfd, filep, symbol); |
1971 | |
|
1972 | 0 | if (name == NULL) |
1973 | 0 | { |
1974 | 0 | name = symbol->name; |
1975 | 0 | bfd_print_symbol_vandf (abfd, file, symbol); |
1976 | 0 | } |
1977 | |
|
1978 | 0 | fprintf (file, " %s\t", section_name); |
1979 | | /* Print the "other" value for a symbol. For common symbols, |
1980 | | we've already printed the size; now print the alignment. |
1981 | | For other symbols, we have no specified alignment, and |
1982 | | we've printed the address; now print the size. */ |
1983 | 0 | if (symbol->section && bfd_is_com_section (symbol->section)) |
1984 | 0 | val = ((elf_symbol_type *) symbol)->internal_elf_sym.st_value; |
1985 | 0 | else |
1986 | 0 | val = ((elf_symbol_type *) symbol)->internal_elf_sym.st_size; |
1987 | 0 | bfd_fprintf_vma (abfd, file, val); |
1988 | | |
1989 | | /* If we have version information, print it. */ |
1990 | 0 | version_string = _bfd_elf_get_symbol_version_string (abfd, |
1991 | 0 | symbol, |
1992 | 0 | true, |
1993 | 0 | &hidden); |
1994 | 0 | if (version_string) |
1995 | 0 | { |
1996 | 0 | if (!hidden) |
1997 | 0 | fprintf (file, " %-11s", version_string); |
1998 | 0 | else |
1999 | 0 | { |
2000 | 0 | int i; |
2001 | |
|
2002 | 0 | fprintf (file, " (%s)", version_string); |
2003 | 0 | for (i = 10 - strlen (version_string); i > 0; --i) |
2004 | 0 | putc (' ', file); |
2005 | 0 | } |
2006 | 0 | } |
2007 | | |
2008 | | /* If the st_other field is not zero, print it. */ |
2009 | 0 | st_other = ((elf_symbol_type *) symbol)->internal_elf_sym.st_other; |
2010 | |
|
2011 | 0 | switch (st_other) |
2012 | 0 | { |
2013 | 0 | case 0: break; |
2014 | 0 | case STV_INTERNAL: fprintf (file, " .internal"); break; |
2015 | 0 | case STV_HIDDEN: fprintf (file, " .hidden"); break; |
2016 | 0 | case STV_PROTECTED: fprintf (file, " .protected"); break; |
2017 | 0 | default: |
2018 | | /* Some other non-defined flags are also present, so print |
2019 | | everything hex. */ |
2020 | 0 | fprintf (file, " 0x%02x", (unsigned int) st_other); |
2021 | 0 | } |
2022 | | |
2023 | 0 | fprintf (file, " %s", name); |
2024 | 0 | } |
2025 | 0 | break; |
2026 | 0 | } |
2027 | 0 | } |
2028 | | |
2029 | | /* ELF .o/exec file reading */ |
2030 | | |
2031 | | /* Create a new bfd section from an ELF section header. */ |
2032 | | |
2033 | | bool |
2034 | | bfd_section_from_shdr (bfd *abfd, unsigned int shindex) |
2035 | 0 | { |
2036 | 0 | Elf_Internal_Shdr *hdr; |
2037 | 0 | Elf_Internal_Ehdr *ehdr; |
2038 | 0 | const struct elf_backend_data *bed; |
2039 | 0 | const char *name; |
2040 | 0 | bool ret = true; |
2041 | |
|
2042 | 0 | if (shindex >= elf_numsections (abfd)) |
2043 | 0 | return false; |
2044 | | |
2045 | | /* PR17512: A corrupt ELF binary might contain a loop of sections via |
2046 | | sh_link or sh_info. Detect this here, by refusing to load a |
2047 | | section that we are already in the process of loading. */ |
2048 | 0 | if (elf_tdata (abfd)->being_created[shindex]) |
2049 | 0 | { |
2050 | 0 | _bfd_error_handler |
2051 | 0 | (_("%pB: warning: loop in section dependencies detected"), abfd); |
2052 | 0 | return false; |
2053 | 0 | } |
2054 | 0 | elf_tdata (abfd)->being_created[shindex] = true; |
2055 | |
|
2056 | 0 | hdr = elf_elfsections (abfd)[shindex]; |
2057 | 0 | ehdr = elf_elfheader (abfd); |
2058 | 0 | name = bfd_elf_string_from_elf_section (abfd, ehdr->e_shstrndx, |
2059 | 0 | hdr->sh_name); |
2060 | 0 | if (name == NULL) |
2061 | 0 | goto fail; |
2062 | | |
2063 | 0 | bed = get_elf_backend_data (abfd); |
2064 | 0 | switch (hdr->sh_type) |
2065 | 0 | { |
2066 | 0 | case SHT_NULL: |
2067 | | /* Inactive section. Throw it away. */ |
2068 | 0 | goto success; |
2069 | | |
2070 | 0 | case SHT_PROGBITS: /* Normal section with contents. */ |
2071 | 0 | case SHT_NOBITS: /* .bss section. */ |
2072 | 0 | case SHT_HASH: /* .hash section. */ |
2073 | 0 | case SHT_NOTE: /* .note section. */ |
2074 | 0 | case SHT_INIT_ARRAY: /* .init_array section. */ |
2075 | 0 | case SHT_FINI_ARRAY: /* .fini_array section. */ |
2076 | 0 | case SHT_PREINIT_ARRAY: /* .preinit_array section. */ |
2077 | 0 | case SHT_GNU_LIBLIST: /* .gnu.liblist section. */ |
2078 | 0 | case SHT_GNU_HASH: /* .gnu.hash section. */ |
2079 | 0 | ret = _bfd_elf_make_section_from_shdr (abfd, hdr, name, shindex); |
2080 | 0 | goto success; |
2081 | | |
2082 | 0 | case SHT_DYNAMIC: /* Dynamic linking information. */ |
2083 | 0 | if (! _bfd_elf_make_section_from_shdr (abfd, hdr, name, shindex)) |
2084 | 0 | goto fail; |
2085 | | |
2086 | 0 | if (hdr->sh_link > elf_numsections (abfd)) |
2087 | 0 | { |
2088 | | /* PR 10478: Accept Solaris binaries with a sh_link field |
2089 | | set to SHN_BEFORE (LORESERVE) or SHN_AFTER (LORESERVE+1). */ |
2090 | 0 | switch (bfd_get_arch (abfd)) |
2091 | 0 | { |
2092 | 0 | case bfd_arch_i386: |
2093 | 0 | case bfd_arch_sparc: |
2094 | 0 | if (hdr->sh_link == (SHN_LORESERVE & 0xffff) |
2095 | 0 | || hdr->sh_link == ((SHN_LORESERVE + 1) & 0xffff)) |
2096 | 0 | break; |
2097 | | /* Otherwise fall through. */ |
2098 | 0 | default: |
2099 | 0 | goto fail; |
2100 | 0 | } |
2101 | 0 | } |
2102 | 0 | else if (elf_elfsections (abfd)[hdr->sh_link] == NULL) |
2103 | 0 | goto fail; |
2104 | 0 | else if (elf_elfsections (abfd)[hdr->sh_link]->sh_type != SHT_STRTAB) |
2105 | 0 | { |
2106 | 0 | Elf_Internal_Shdr *dynsymhdr; |
2107 | | |
2108 | | /* The shared libraries distributed with hpux11 have a bogus |
2109 | | sh_link field for the ".dynamic" section. Find the |
2110 | | string table for the ".dynsym" section instead. */ |
2111 | 0 | if (elf_dynsymtab (abfd) != 0) |
2112 | 0 | { |
2113 | 0 | dynsymhdr = elf_elfsections (abfd)[elf_dynsymtab (abfd)]; |
2114 | 0 | hdr->sh_link = dynsymhdr->sh_link; |
2115 | 0 | } |
2116 | 0 | else |
2117 | 0 | { |
2118 | 0 | unsigned int i, num_sec; |
2119 | |
|
2120 | 0 | num_sec = elf_numsections (abfd); |
2121 | 0 | for (i = 1; i < num_sec; i++) |
2122 | 0 | { |
2123 | 0 | dynsymhdr = elf_elfsections (abfd)[i]; |
2124 | 0 | if (dynsymhdr->sh_type == SHT_DYNSYM) |
2125 | 0 | { |
2126 | 0 | hdr->sh_link = dynsymhdr->sh_link; |
2127 | 0 | break; |
2128 | 0 | } |
2129 | 0 | } |
2130 | 0 | } |
2131 | 0 | } |
2132 | 0 | goto success; |
2133 | | |
2134 | 0 | case SHT_SYMTAB: /* A symbol table. */ |
2135 | 0 | if (elf_onesymtab (abfd) == shindex) |
2136 | 0 | goto success; |
2137 | | |
2138 | 0 | if (hdr->sh_entsize != bed->s->sizeof_sym) |
2139 | 0 | goto fail; |
2140 | | |
2141 | 0 | if (hdr->sh_info * hdr->sh_entsize > hdr->sh_size) |
2142 | 0 | { |
2143 | 0 | if (hdr->sh_size != 0) |
2144 | 0 | goto fail; |
2145 | | /* Some assemblers erroneously set sh_info to one with a |
2146 | | zero sh_size. ld sees this as a global symbol count |
2147 | | of (unsigned) -1. Fix it here. */ |
2148 | 0 | hdr->sh_info = 0; |
2149 | 0 | goto success; |
2150 | 0 | } |
2151 | | |
2152 | | /* PR 18854: A binary might contain more than one symbol table. |
2153 | | Unusual, but possible. Warn, but continue. */ |
2154 | 0 | if (elf_onesymtab (abfd) != 0) |
2155 | 0 | { |
2156 | 0 | _bfd_error_handler |
2157 | | /* xgettext:c-format */ |
2158 | 0 | (_("%pB: warning: multiple symbol tables detected" |
2159 | 0 | " - ignoring the table in section %u"), |
2160 | 0 | abfd, shindex); |
2161 | 0 | goto success; |
2162 | 0 | } |
2163 | 0 | elf_onesymtab (abfd) = shindex; |
2164 | 0 | elf_symtab_hdr (abfd) = *hdr; |
2165 | 0 | elf_elfsections (abfd)[shindex] = hdr = & elf_symtab_hdr (abfd); |
2166 | 0 | abfd->flags |= HAS_SYMS; |
2167 | | |
2168 | | /* Sometimes a shared object will map in the symbol table. If |
2169 | | SHF_ALLOC is set, and this is a shared object, then we also |
2170 | | treat this section as a BFD section. We can not base the |
2171 | | decision purely on SHF_ALLOC, because that flag is sometimes |
2172 | | set in a relocatable object file, which would confuse the |
2173 | | linker. */ |
2174 | 0 | if ((hdr->sh_flags & SHF_ALLOC) != 0 |
2175 | 0 | && (abfd->flags & DYNAMIC) != 0 |
2176 | 0 | && ! _bfd_elf_make_section_from_shdr (abfd, hdr, name, |
2177 | 0 | shindex)) |
2178 | 0 | goto fail; |
2179 | | |
2180 | | /* Go looking for SHT_SYMTAB_SHNDX too, since if there is one we |
2181 | | can't read symbols without that section loaded as well. It |
2182 | | is most likely specified by the next section header. */ |
2183 | 0 | { |
2184 | 0 | elf_section_list * entry; |
2185 | 0 | unsigned int i, num_sec; |
2186 | |
|
2187 | 0 | for (entry = elf_symtab_shndx_list (abfd); entry; entry = entry->next) |
2188 | 0 | if (entry->hdr.sh_link == shindex) |
2189 | 0 | goto success; |
2190 | | |
2191 | 0 | num_sec = elf_numsections (abfd); |
2192 | 0 | for (i = shindex + 1; i < num_sec; i++) |
2193 | 0 | { |
2194 | 0 | Elf_Internal_Shdr *hdr2 = elf_elfsections (abfd)[i]; |
2195 | |
|
2196 | 0 | if (hdr2->sh_type == SHT_SYMTAB_SHNDX |
2197 | 0 | && hdr2->sh_link == shindex) |
2198 | 0 | break; |
2199 | 0 | } |
2200 | |
|
2201 | 0 | if (i == num_sec) |
2202 | 0 | for (i = 1; i < shindex; i++) |
2203 | 0 | { |
2204 | 0 | Elf_Internal_Shdr *hdr2 = elf_elfsections (abfd)[i]; |
2205 | |
|
2206 | 0 | if (hdr2->sh_type == SHT_SYMTAB_SHNDX |
2207 | 0 | && hdr2->sh_link == shindex) |
2208 | 0 | break; |
2209 | 0 | } |
2210 | |
|
2211 | 0 | if (i != shindex) |
2212 | 0 | ret = bfd_section_from_shdr (abfd, i); |
2213 | | /* else FIXME: we have failed to find the symbol table. |
2214 | | Should we issue an error? */ |
2215 | 0 | goto success; |
2216 | 0 | } |
2217 | | |
2218 | 0 | case SHT_DYNSYM: /* A dynamic symbol table. */ |
2219 | 0 | if (elf_dynsymtab (abfd) == shindex) |
2220 | 0 | goto success; |
2221 | | |
2222 | 0 | if (hdr->sh_entsize != bed->s->sizeof_sym) |
2223 | 0 | goto fail; |
2224 | | |
2225 | 0 | if (hdr->sh_info * hdr->sh_entsize > hdr->sh_size) |
2226 | 0 | { |
2227 | 0 | if (hdr->sh_size != 0) |
2228 | 0 | goto fail; |
2229 | | |
2230 | | /* Some linkers erroneously set sh_info to one with a |
2231 | | zero sh_size. ld sees this as a global symbol count |
2232 | | of (unsigned) -1. Fix it here. */ |
2233 | 0 | hdr->sh_info = 0; |
2234 | 0 | goto success; |
2235 | 0 | } |
2236 | | |
2237 | | /* PR 18854: A binary might contain more than one dynamic symbol table. |
2238 | | Unusual, but possible. Warn, but continue. */ |
2239 | 0 | if (elf_dynsymtab (abfd) != 0) |
2240 | 0 | { |
2241 | 0 | _bfd_error_handler |
2242 | | /* xgettext:c-format */ |
2243 | 0 | (_("%pB: warning: multiple dynamic symbol tables detected" |
2244 | 0 | " - ignoring the table in section %u"), |
2245 | 0 | abfd, shindex); |
2246 | 0 | goto success; |
2247 | 0 | } |
2248 | 0 | elf_dynsymtab (abfd) = shindex; |
2249 | 0 | elf_tdata (abfd)->dynsymtab_hdr = *hdr; |
2250 | 0 | elf_elfsections (abfd)[shindex] = hdr = &elf_tdata (abfd)->dynsymtab_hdr; |
2251 | 0 | abfd->flags |= HAS_SYMS; |
2252 | | |
2253 | | /* Besides being a symbol table, we also treat this as a regular |
2254 | | section, so that objcopy can handle it. */ |
2255 | 0 | ret = _bfd_elf_make_section_from_shdr (abfd, hdr, name, shindex); |
2256 | 0 | goto success; |
2257 | | |
2258 | 0 | case SHT_SYMTAB_SHNDX: /* Symbol section indices when >64k sections. */ |
2259 | 0 | { |
2260 | 0 | elf_section_list * entry; |
2261 | |
|
2262 | 0 | for (entry = elf_symtab_shndx_list (abfd); entry; entry = entry->next) |
2263 | 0 | if (entry->ndx == shindex) |
2264 | 0 | goto success; |
2265 | | |
2266 | 0 | entry = bfd_alloc (abfd, sizeof (*entry)); |
2267 | 0 | if (entry == NULL) |
2268 | 0 | goto fail; |
2269 | 0 | entry->ndx = shindex; |
2270 | 0 | entry->hdr = * hdr; |
2271 | 0 | entry->next = elf_symtab_shndx_list (abfd); |
2272 | 0 | elf_symtab_shndx_list (abfd) = entry; |
2273 | 0 | elf_elfsections (abfd)[shindex] = & entry->hdr; |
2274 | 0 | goto success; |
2275 | 0 | } |
2276 | | |
2277 | 0 | case SHT_STRTAB: /* A string table. */ |
2278 | 0 | if (hdr->bfd_section != NULL) |
2279 | 0 | goto success; |
2280 | | |
2281 | 0 | if (ehdr->e_shstrndx == shindex) |
2282 | 0 | { |
2283 | 0 | elf_tdata (abfd)->shstrtab_hdr = *hdr; |
2284 | 0 | elf_elfsections (abfd)[shindex] = &elf_tdata (abfd)->shstrtab_hdr; |
2285 | 0 | goto success; |
2286 | 0 | } |
2287 | | |
2288 | 0 | if (elf_elfsections (abfd)[elf_onesymtab (abfd)]->sh_link == shindex) |
2289 | 0 | { |
2290 | 0 | symtab_strtab: |
2291 | 0 | elf_tdata (abfd)->strtab_hdr = *hdr; |
2292 | 0 | elf_elfsections (abfd)[shindex] = &elf_tdata (abfd)->strtab_hdr; |
2293 | 0 | goto success; |
2294 | 0 | } |
2295 | | |
2296 | 0 | if (elf_elfsections (abfd)[elf_dynsymtab (abfd)]->sh_link == shindex) |
2297 | 0 | { |
2298 | 0 | dynsymtab_strtab: |
2299 | 0 | elf_tdata (abfd)->dynstrtab_hdr = *hdr; |
2300 | 0 | hdr = &elf_tdata (abfd)->dynstrtab_hdr; |
2301 | 0 | elf_elfsections (abfd)[shindex] = hdr; |
2302 | | /* We also treat this as a regular section, so that objcopy |
2303 | | can handle it. */ |
2304 | 0 | ret = _bfd_elf_make_section_from_shdr (abfd, hdr, name, |
2305 | 0 | shindex); |
2306 | 0 | goto success; |
2307 | 0 | } |
2308 | | |
2309 | | /* If the string table isn't one of the above, then treat it as a |
2310 | | regular section. We need to scan all the headers to be sure, |
2311 | | just in case this strtab section appeared before the above. */ |
2312 | 0 | if (elf_onesymtab (abfd) == 0 || elf_dynsymtab (abfd) == 0) |
2313 | 0 | { |
2314 | 0 | unsigned int i, num_sec; |
2315 | |
|
2316 | 0 | num_sec = elf_numsections (abfd); |
2317 | 0 | for (i = 1; i < num_sec; i++) |
2318 | 0 | { |
2319 | 0 | Elf_Internal_Shdr *hdr2 = elf_elfsections (abfd)[i]; |
2320 | 0 | if (hdr2->sh_link == shindex) |
2321 | 0 | { |
2322 | | /* Prevent endless recursion on broken objects. */ |
2323 | 0 | if (i == shindex) |
2324 | 0 | goto fail; |
2325 | 0 | if (! bfd_section_from_shdr (abfd, i)) |
2326 | 0 | goto fail; |
2327 | 0 | if (elf_onesymtab (abfd) == i) |
2328 | 0 | goto symtab_strtab; |
2329 | 0 | if (elf_dynsymtab (abfd) == i) |
2330 | 0 | goto dynsymtab_strtab; |
2331 | 0 | } |
2332 | 0 | } |
2333 | 0 | } |
2334 | 0 | ret = _bfd_elf_make_section_from_shdr (abfd, hdr, name, shindex); |
2335 | 0 | goto success; |
2336 | | |
2337 | 0 | case SHT_REL: |
2338 | 0 | case SHT_RELA: |
2339 | 0 | case SHT_RELR: |
2340 | | /* *These* do a lot of work -- but build no sections! */ |
2341 | 0 | { |
2342 | 0 | asection *target_sect; |
2343 | 0 | Elf_Internal_Shdr *hdr2, **p_hdr; |
2344 | 0 | unsigned int num_sec = elf_numsections (abfd); |
2345 | 0 | struct bfd_elf_section_data *esdt; |
2346 | 0 | bfd_size_type size; |
2347 | |
|
2348 | 0 | if (hdr->sh_type == SHT_REL) |
2349 | 0 | size = bed->s->sizeof_rel; |
2350 | 0 | else if (hdr->sh_type == SHT_RELA) |
2351 | 0 | size = bed->s->sizeof_rela; |
2352 | 0 | else |
2353 | 0 | size = bed->s->arch_size / 8; |
2354 | 0 | if (hdr->sh_entsize != size) |
2355 | 0 | goto fail; |
2356 | | |
2357 | | /* Check for a bogus link to avoid crashing. */ |
2358 | 0 | if (hdr->sh_link >= num_sec) |
2359 | 0 | { |
2360 | 0 | _bfd_error_handler |
2361 | | /* xgettext:c-format */ |
2362 | 0 | (_("%pB: invalid link %u for reloc section %s (index %u)"), |
2363 | 0 | abfd, hdr->sh_link, name, shindex); |
2364 | 0 | ret = _bfd_elf_make_section_from_shdr (abfd, hdr, name, shindex); |
2365 | 0 | goto success; |
2366 | 0 | } |
2367 | | |
2368 | | /* Get the symbol table. */ |
2369 | 0 | if ((elf_elfsections (abfd)[hdr->sh_link]->sh_type == SHT_SYMTAB |
2370 | 0 | || elf_elfsections (abfd)[hdr->sh_link]->sh_type == SHT_DYNSYM) |
2371 | 0 | && ! bfd_section_from_shdr (abfd, hdr->sh_link)) |
2372 | 0 | goto fail; |
2373 | | |
2374 | | /* If this is an alloc section in an executable or shared |
2375 | | library, or the reloc section does not use the main symbol |
2376 | | table we don't treat it as a reloc section. BFD can't |
2377 | | adequately represent such a section, so at least for now, |
2378 | | we don't try. We just present it as a normal section. We |
2379 | | also can't use it as a reloc section if it points to the |
2380 | | null section, an invalid section, another reloc section, or |
2381 | | its sh_link points to the null section. */ |
2382 | 0 | if (((abfd->flags & (DYNAMIC | EXEC_P)) != 0 |
2383 | 0 | && (hdr->sh_flags & SHF_ALLOC) != 0) |
2384 | 0 | || (hdr->sh_flags & SHF_COMPRESSED) != 0 |
2385 | 0 | || hdr->sh_type == SHT_RELR |
2386 | 0 | || hdr->sh_link == SHN_UNDEF |
2387 | 0 | || hdr->sh_link != elf_onesymtab (abfd) |
2388 | 0 | || hdr->sh_info == SHN_UNDEF |
2389 | 0 | || hdr->sh_info >= num_sec |
2390 | 0 | || elf_elfsections (abfd)[hdr->sh_info]->sh_type == SHT_REL |
2391 | 0 | || elf_elfsections (abfd)[hdr->sh_info]->sh_type == SHT_RELA) |
2392 | 0 | { |
2393 | 0 | ret = _bfd_elf_make_section_from_shdr (abfd, hdr, name, shindex); |
2394 | 0 | goto success; |
2395 | 0 | } |
2396 | | |
2397 | 0 | if (! bfd_section_from_shdr (abfd, hdr->sh_info)) |
2398 | 0 | goto fail; |
2399 | | |
2400 | 0 | target_sect = bfd_section_from_elf_index (abfd, hdr->sh_info); |
2401 | 0 | if (target_sect == NULL) |
2402 | 0 | goto fail; |
2403 | | |
2404 | 0 | esdt = elf_section_data (target_sect); |
2405 | 0 | if (hdr->sh_type == SHT_RELA) |
2406 | 0 | p_hdr = &esdt->rela.hdr; |
2407 | 0 | else |
2408 | 0 | p_hdr = &esdt->rel.hdr; |
2409 | | |
2410 | | /* PR 17512: file: 0b4f81b7. |
2411 | | Also see PR 24456, for a file which deliberately has two reloc |
2412 | | sections. */ |
2413 | 0 | if (*p_hdr != NULL) |
2414 | 0 | { |
2415 | 0 | if (!bed->init_secondary_reloc_section (abfd, hdr, name, shindex)) |
2416 | 0 | { |
2417 | 0 | _bfd_error_handler |
2418 | | /* xgettext:c-format */ |
2419 | 0 | (_("%pB: warning: secondary relocation section '%s' " |
2420 | 0 | "for section %pA found - ignoring"), |
2421 | 0 | abfd, name, target_sect); |
2422 | 0 | } |
2423 | 0 | else |
2424 | 0 | esdt->has_secondary_relocs = true; |
2425 | 0 | goto success; |
2426 | 0 | } |
2427 | | |
2428 | 0 | hdr2 = (Elf_Internal_Shdr *) bfd_alloc (abfd, sizeof (*hdr2)); |
2429 | 0 | if (hdr2 == NULL) |
2430 | 0 | goto fail; |
2431 | 0 | *hdr2 = *hdr; |
2432 | 0 | *p_hdr = hdr2; |
2433 | 0 | elf_elfsections (abfd)[shindex] = hdr2; |
2434 | 0 | target_sect->reloc_count += (NUM_SHDR_ENTRIES (hdr) |
2435 | 0 | * bed->s->int_rels_per_ext_rel); |
2436 | 0 | target_sect->flags |= SEC_RELOC; |
2437 | 0 | target_sect->relocation = NULL; |
2438 | 0 | target_sect->rel_filepos = hdr->sh_offset; |
2439 | | /* In the section to which the relocations apply, mark whether |
2440 | | its relocations are of the REL or RELA variety. */ |
2441 | 0 | if (hdr->sh_size != 0) |
2442 | 0 | { |
2443 | 0 | if (hdr->sh_type == SHT_RELA) |
2444 | 0 | target_sect->use_rela_p = 1; |
2445 | 0 | } |
2446 | 0 | abfd->flags |= HAS_RELOC; |
2447 | 0 | goto success; |
2448 | 0 | } |
2449 | | |
2450 | 0 | case SHT_GNU_verdef: |
2451 | 0 | if (hdr->sh_info != 0) |
2452 | 0 | elf_dynverdef (abfd) = shindex; |
2453 | 0 | elf_tdata (abfd)->dynverdef_hdr = *hdr; |
2454 | 0 | ret = _bfd_elf_make_section_from_shdr (abfd, hdr, name, shindex); |
2455 | 0 | goto success; |
2456 | | |
2457 | 0 | case SHT_GNU_versym: |
2458 | 0 | if (hdr->sh_entsize != sizeof (Elf_External_Versym)) |
2459 | 0 | goto fail; |
2460 | | |
2461 | 0 | elf_dynversym (abfd) = shindex; |
2462 | 0 | elf_tdata (abfd)->dynversym_hdr = *hdr; |
2463 | 0 | ret = _bfd_elf_make_section_from_shdr (abfd, hdr, name, shindex); |
2464 | 0 | goto success; |
2465 | | |
2466 | 0 | case SHT_GNU_verneed: |
2467 | 0 | if (hdr->sh_info != 0) |
2468 | 0 | elf_dynverref (abfd) = shindex; |
2469 | 0 | elf_tdata (abfd)->dynverref_hdr = *hdr; |
2470 | 0 | ret = _bfd_elf_make_section_from_shdr (abfd, hdr, name, shindex); |
2471 | 0 | goto success; |
2472 | | |
2473 | 0 | case SHT_SHLIB: |
2474 | 0 | goto success; |
2475 | | |
2476 | 0 | case SHT_GROUP: |
2477 | 0 | if (! IS_VALID_GROUP_SECTION_HEADER (hdr, GRP_ENTRY_SIZE)) |
2478 | 0 | goto fail; |
2479 | | |
2480 | 0 | if (!_bfd_elf_make_section_from_shdr (abfd, hdr, name, shindex)) |
2481 | 0 | goto fail; |
2482 | | |
2483 | 0 | goto success; |
2484 | | |
2485 | 0 | default: |
2486 | | /* Possibly an attributes section. */ |
2487 | 0 | if (hdr->sh_type == SHT_GNU_ATTRIBUTES |
2488 | 0 | || hdr->sh_type == bed->obj_attrs_section_type) |
2489 | 0 | { |
2490 | 0 | if (! _bfd_elf_make_section_from_shdr (abfd, hdr, name, shindex)) |
2491 | 0 | goto fail; |
2492 | 0 | _bfd_elf_parse_attributes (abfd, hdr); |
2493 | 0 | goto success; |
2494 | 0 | } |
2495 | | |
2496 | | /* Check for any processor-specific section types. */ |
2497 | 0 | if (bed->elf_backend_section_from_shdr (abfd, hdr, name, shindex)) |
2498 | 0 | goto success; |
2499 | | |
2500 | 0 | if (hdr->sh_type >= SHT_LOUSER && hdr->sh_type <= SHT_HIUSER) |
2501 | 0 | { |
2502 | 0 | if ((hdr->sh_flags & SHF_ALLOC) != 0) |
2503 | | /* FIXME: How to properly handle allocated section reserved |
2504 | | for applications? */ |
2505 | 0 | _bfd_error_handler |
2506 | | /* xgettext:c-format */ |
2507 | 0 | (_("%pB: unknown type [%#x] section `%s'"), |
2508 | 0 | abfd, hdr->sh_type, name); |
2509 | 0 | else |
2510 | 0 | { |
2511 | | /* Allow sections reserved for applications. */ |
2512 | 0 | ret = _bfd_elf_make_section_from_shdr (abfd, hdr, name, shindex); |
2513 | 0 | goto success; |
2514 | 0 | } |
2515 | 0 | } |
2516 | 0 | else if (hdr->sh_type >= SHT_LOPROC |
2517 | 0 | && hdr->sh_type <= SHT_HIPROC) |
2518 | | /* FIXME: We should handle this section. */ |
2519 | 0 | _bfd_error_handler |
2520 | | /* xgettext:c-format */ |
2521 | 0 | (_("%pB: unknown type [%#x] section `%s'"), |
2522 | 0 | abfd, hdr->sh_type, name); |
2523 | 0 | else if (hdr->sh_type >= SHT_LOOS && hdr->sh_type <= SHT_HIOS) |
2524 | 0 | { |
2525 | | /* Unrecognised OS-specific sections. */ |
2526 | 0 | if ((hdr->sh_flags & SHF_OS_NONCONFORMING) != 0) |
2527 | | /* SHF_OS_NONCONFORMING indicates that special knowledge is |
2528 | | required to correctly process the section and the file should |
2529 | | be rejected with an error message. */ |
2530 | 0 | _bfd_error_handler |
2531 | | /* xgettext:c-format */ |
2532 | 0 | (_("%pB: unknown type [%#x] section `%s'"), |
2533 | 0 | abfd, hdr->sh_type, name); |
2534 | 0 | else |
2535 | 0 | { |
2536 | | /* Otherwise it should be processed. */ |
2537 | 0 | ret = _bfd_elf_make_section_from_shdr (abfd, hdr, name, shindex); |
2538 | 0 | goto success; |
2539 | 0 | } |
2540 | 0 | } |
2541 | 0 | else |
2542 | | /* FIXME: We should handle this section. */ |
2543 | 0 | _bfd_error_handler |
2544 | | /* xgettext:c-format */ |
2545 | 0 | (_("%pB: unknown type [%#x] section `%s'"), |
2546 | 0 | abfd, hdr->sh_type, name); |
2547 | | |
2548 | 0 | goto fail; |
2549 | 0 | } |
2550 | | |
2551 | 0 | fail: |
2552 | 0 | ret = false; |
2553 | 0 | success: |
2554 | 0 | elf_tdata (abfd)->being_created[shindex] = false; |
2555 | 0 | return ret; |
2556 | 0 | } |
2557 | | |
2558 | | /* Return the local symbol specified by ABFD, R_SYMNDX. */ |
2559 | | |
2560 | | Elf_Internal_Sym * |
2561 | | bfd_sym_from_r_symndx (struct sym_cache *cache, |
2562 | | bfd *abfd, |
2563 | | unsigned long r_symndx) |
2564 | 0 | { |
2565 | 0 | unsigned int ent = r_symndx % LOCAL_SYM_CACHE_SIZE; |
2566 | |
|
2567 | 0 | if (cache->abfd != abfd || cache->indx[ent] != r_symndx) |
2568 | 0 | { |
2569 | 0 | Elf_Internal_Shdr *symtab_hdr; |
2570 | 0 | unsigned char esym[sizeof (Elf64_External_Sym)]; |
2571 | 0 | Elf_External_Sym_Shndx eshndx; |
2572 | |
|
2573 | 0 | symtab_hdr = &elf_tdata (abfd)->symtab_hdr; |
2574 | 0 | if (bfd_elf_get_elf_syms (abfd, symtab_hdr, 1, r_symndx, |
2575 | 0 | &cache->sym[ent], esym, &eshndx) == NULL) |
2576 | 0 | return NULL; |
2577 | | |
2578 | 0 | if (cache->abfd != abfd) |
2579 | 0 | { |
2580 | 0 | memset (cache->indx, -1, sizeof (cache->indx)); |
2581 | 0 | cache->abfd = abfd; |
2582 | 0 | } |
2583 | 0 | cache->indx[ent] = r_symndx; |
2584 | 0 | } |
2585 | | |
2586 | 0 | return &cache->sym[ent]; |
2587 | 0 | } |
2588 | | |
2589 | | /* Given an ELF section number, retrieve the corresponding BFD |
2590 | | section. */ |
2591 | | |
2592 | | asection * |
2593 | | bfd_section_from_elf_index (bfd *abfd, unsigned int sec_index) |
2594 | 0 | { |
2595 | 0 | if (sec_index >= elf_numsections (abfd)) |
2596 | 0 | return NULL; |
2597 | 0 | return elf_elfsections (abfd)[sec_index]->bfd_section; |
2598 | 0 | } |
2599 | | |
2600 | | static const struct bfd_elf_special_section special_sections_b[] = |
2601 | | { |
2602 | | { STRING_COMMA_LEN (".bss"), -2, SHT_NOBITS, SHF_ALLOC + SHF_WRITE }, |
2603 | | { NULL, 0, 0, 0, 0 } |
2604 | | }; |
2605 | | |
2606 | | static const struct bfd_elf_special_section special_sections_c[] = |
2607 | | { |
2608 | | { STRING_COMMA_LEN (".comment"), 0, SHT_PROGBITS, 0 }, |
2609 | | { STRING_COMMA_LEN (".ctf"), 0, SHT_PROGBITS, 0 }, |
2610 | | { NULL, 0, 0, 0, 0 } |
2611 | | }; |
2612 | | |
2613 | | static const struct bfd_elf_special_section special_sections_d[] = |
2614 | | { |
2615 | | { STRING_COMMA_LEN (".data"), -2, SHT_PROGBITS, SHF_ALLOC + SHF_WRITE }, |
2616 | | { STRING_COMMA_LEN (".data1"), 0, SHT_PROGBITS, SHF_ALLOC + SHF_WRITE }, |
2617 | | /* There are more DWARF sections than these, but they needn't be added here |
2618 | | unless you have to cope with broken compilers that don't emit section |
2619 | | attributes or you want to help the user writing assembler. */ |
2620 | | { STRING_COMMA_LEN (".debug"), 0, SHT_PROGBITS, 0 }, |
2621 | | { STRING_COMMA_LEN (".debug_line"), 0, SHT_PROGBITS, 0 }, |
2622 | | { STRING_COMMA_LEN (".debug_info"), 0, SHT_PROGBITS, 0 }, |
2623 | | { STRING_COMMA_LEN (".debug_abbrev"), 0, SHT_PROGBITS, 0 }, |
2624 | | { STRING_COMMA_LEN (".debug_aranges"), 0, SHT_PROGBITS, 0 }, |
2625 | | { STRING_COMMA_LEN (".dynamic"), 0, SHT_DYNAMIC, SHF_ALLOC }, |
2626 | | { STRING_COMMA_LEN (".dynstr"), 0, SHT_STRTAB, SHF_ALLOC }, |
2627 | | { STRING_COMMA_LEN (".dynsym"), 0, SHT_DYNSYM, SHF_ALLOC }, |
2628 | | { NULL, 0, 0, 0, 0 } |
2629 | | }; |
2630 | | |
2631 | | static const struct bfd_elf_special_section special_sections_f[] = |
2632 | | { |
2633 | | { STRING_COMMA_LEN (".fini"), 0, SHT_PROGBITS, SHF_ALLOC + SHF_EXECINSTR }, |
2634 | | { STRING_COMMA_LEN (".fini_array"), -2, SHT_FINI_ARRAY, SHF_ALLOC + SHF_WRITE }, |
2635 | | { NULL, 0 , 0, 0, 0 } |
2636 | | }; |
2637 | | |
2638 | | static const struct bfd_elf_special_section special_sections_g[] = |
2639 | | { |
2640 | | { STRING_COMMA_LEN (".gnu.linkonce.b"), -2, SHT_NOBITS, SHF_ALLOC + SHF_WRITE }, |
2641 | | { STRING_COMMA_LEN (".gnu.linkonce.n"), -2, SHT_NOBITS, SHF_ALLOC + SHF_WRITE }, |
2642 | | { STRING_COMMA_LEN (".gnu.linkonce.p"), -2, SHT_PROGBITS, SHF_ALLOC + SHF_WRITE }, |
2643 | | { STRING_COMMA_LEN (".gnu.lto_"), -1, SHT_PROGBITS, SHF_EXCLUDE }, |
2644 | | { STRING_COMMA_LEN (".got"), 0, SHT_PROGBITS, SHF_ALLOC + SHF_WRITE }, |
2645 | | { STRING_COMMA_LEN (".gnu.version"), 0, SHT_GNU_versym, 0 }, |
2646 | | { STRING_COMMA_LEN (".gnu.version_d"), 0, SHT_GNU_verdef, 0 }, |
2647 | | { STRING_COMMA_LEN (".gnu.version_r"), 0, SHT_GNU_verneed, 0 }, |
2648 | | { STRING_COMMA_LEN (".gnu.liblist"), 0, SHT_GNU_LIBLIST, SHF_ALLOC }, |
2649 | | { STRING_COMMA_LEN (".gnu.conflict"), 0, SHT_RELA, SHF_ALLOC }, |
2650 | | { STRING_COMMA_LEN (".gnu.hash"), 0, SHT_GNU_HASH, SHF_ALLOC }, |
2651 | | { NULL, 0, 0, 0, 0 } |
2652 | | }; |
2653 | | |
2654 | | static const struct bfd_elf_special_section special_sections_h[] = |
2655 | | { |
2656 | | { STRING_COMMA_LEN (".hash"), 0, SHT_HASH, SHF_ALLOC }, |
2657 | | { NULL, 0, 0, 0, 0 } |
2658 | | }; |
2659 | | |
2660 | | static const struct bfd_elf_special_section special_sections_i[] = |
2661 | | { |
2662 | | { STRING_COMMA_LEN (".init"), 0, SHT_PROGBITS, SHF_ALLOC + SHF_EXECINSTR }, |
2663 | | { STRING_COMMA_LEN (".init_array"), -2, SHT_INIT_ARRAY, SHF_ALLOC + SHF_WRITE }, |
2664 | | { STRING_COMMA_LEN (".interp"), 0, SHT_PROGBITS, 0 }, |
2665 | | { NULL, 0, 0, 0, 0 } |
2666 | | }; |
2667 | | |
2668 | | static const struct bfd_elf_special_section special_sections_l[] = |
2669 | | { |
2670 | | { STRING_COMMA_LEN (".line"), 0, SHT_PROGBITS, 0 }, |
2671 | | { NULL, 0, 0, 0, 0 } |
2672 | | }; |
2673 | | |
2674 | | static const struct bfd_elf_special_section special_sections_n[] = |
2675 | | { |
2676 | | { STRING_COMMA_LEN (".noinit"), -2, SHT_NOBITS, SHF_ALLOC + SHF_WRITE }, |
2677 | | { STRING_COMMA_LEN (".note.GNU-stack"), 0, SHT_PROGBITS, 0 }, |
2678 | | { STRING_COMMA_LEN (".note"), -1, SHT_NOTE, 0 }, |
2679 | | { NULL, 0, 0, 0, 0 } |
2680 | | }; |
2681 | | |
2682 | | static const struct bfd_elf_special_section special_sections_p[] = |
2683 | | { |
2684 | | { STRING_COMMA_LEN (".persistent.bss"), 0, SHT_NOBITS, SHF_ALLOC + SHF_WRITE }, |
2685 | | { STRING_COMMA_LEN (".persistent"), -2, SHT_PROGBITS, SHF_ALLOC + SHF_WRITE }, |
2686 | | { STRING_COMMA_LEN (".preinit_array"), -2, SHT_PREINIT_ARRAY, SHF_ALLOC + SHF_WRITE }, |
2687 | | { STRING_COMMA_LEN (".plt"), 0, SHT_PROGBITS, SHF_ALLOC + SHF_EXECINSTR }, |
2688 | | { NULL, 0, 0, 0, 0 } |
2689 | | }; |
2690 | | |
2691 | | static const struct bfd_elf_special_section special_sections_r[] = |
2692 | | { |
2693 | | { STRING_COMMA_LEN (".rodata"), -2, SHT_PROGBITS, SHF_ALLOC }, |
2694 | | { STRING_COMMA_LEN (".rodata1"), 0, SHT_PROGBITS, SHF_ALLOC }, |
2695 | | { STRING_COMMA_LEN (".relr.dyn"), 0, SHT_RELR, SHF_ALLOC }, |
2696 | | { STRING_COMMA_LEN (".rela"), -1, SHT_RELA, 0 }, |
2697 | | { STRING_COMMA_LEN (".rel"), -1, SHT_REL, 0 }, |
2698 | | { NULL, 0, 0, 0, 0 } |
2699 | | }; |
2700 | | |
2701 | | static const struct bfd_elf_special_section special_sections_s[] = |
2702 | | { |
2703 | | { STRING_COMMA_LEN (".shstrtab"), 0, SHT_STRTAB, 0 }, |
2704 | | { STRING_COMMA_LEN (".strtab"), 0, SHT_STRTAB, 0 }, |
2705 | | { STRING_COMMA_LEN (".symtab"), 0, SHT_SYMTAB, 0 }, |
2706 | | /* See struct bfd_elf_special_section declaration for the semantics of |
2707 | | this special case where .prefix_length != strlen (.prefix). */ |
2708 | | { ".stabstr", 5, 3, SHT_STRTAB, 0 }, |
2709 | | { NULL, 0, 0, 0, 0 } |
2710 | | }; |
2711 | | |
2712 | | static const struct bfd_elf_special_section special_sections_t[] = |
2713 | | { |
2714 | | { STRING_COMMA_LEN (".text"), -2, SHT_PROGBITS, SHF_ALLOC + SHF_EXECINSTR }, |
2715 | | { STRING_COMMA_LEN (".tbss"), -2, SHT_NOBITS, SHF_ALLOC + SHF_WRITE + SHF_TLS }, |
2716 | | { STRING_COMMA_LEN (".tdata"), -2, SHT_PROGBITS, SHF_ALLOC + SHF_WRITE + SHF_TLS }, |
2717 | | { NULL, 0, 0, 0, 0 } |
2718 | | }; |
2719 | | |
2720 | | static const struct bfd_elf_special_section special_sections_z[] = |
2721 | | { |
2722 | | { STRING_COMMA_LEN (".zdebug_line"), 0, SHT_PROGBITS, 0 }, |
2723 | | { STRING_COMMA_LEN (".zdebug_info"), 0, SHT_PROGBITS, 0 }, |
2724 | | { STRING_COMMA_LEN (".zdebug_abbrev"), 0, SHT_PROGBITS, 0 }, |
2725 | | { STRING_COMMA_LEN (".zdebug_aranges"), 0, SHT_PROGBITS, 0 }, |
2726 | | { NULL, 0, 0, 0, 0 } |
2727 | | }; |
2728 | | |
2729 | | static const struct bfd_elf_special_section * const special_sections[] = |
2730 | | { |
2731 | | special_sections_b, /* 'b' */ |
2732 | | special_sections_c, /* 'c' */ |
2733 | | special_sections_d, /* 'd' */ |
2734 | | NULL, /* 'e' */ |
2735 | | special_sections_f, /* 'f' */ |
2736 | | special_sections_g, /* 'g' */ |
2737 | | special_sections_h, /* 'h' */ |
2738 | | special_sections_i, /* 'i' */ |
2739 | | NULL, /* 'j' */ |
2740 | | NULL, /* 'k' */ |
2741 | | special_sections_l, /* 'l' */ |
2742 | | NULL, /* 'm' */ |
2743 | | special_sections_n, /* 'n' */ |
2744 | | NULL, /* 'o' */ |
2745 | | special_sections_p, /* 'p' */ |
2746 | | NULL, /* 'q' */ |
2747 | | special_sections_r, /* 'r' */ |
2748 | | special_sections_s, /* 's' */ |
2749 | | special_sections_t, /* 't' */ |
2750 | | NULL, /* 'u' */ |
2751 | | NULL, /* 'v' */ |
2752 | | NULL, /* 'w' */ |
2753 | | NULL, /* 'x' */ |
2754 | | NULL, /* 'y' */ |
2755 | | special_sections_z /* 'z' */ |
2756 | | }; |
2757 | | |
2758 | | const struct bfd_elf_special_section * |
2759 | | _bfd_elf_get_special_section (const char *name, |
2760 | | const struct bfd_elf_special_section *spec, |
2761 | | unsigned int rela) |
2762 | 0 | { |
2763 | 0 | int i; |
2764 | 0 | int len; |
2765 | |
|
2766 | 0 | len = strlen (name); |
2767 | |
|
2768 | 0 | for (i = 0; spec[i].prefix != NULL; i++) |
2769 | 0 | { |
2770 | 0 | int suffix_len; |
2771 | 0 | int prefix_len = spec[i].prefix_length; |
2772 | |
|
2773 | 0 | if (len < prefix_len) |
2774 | 0 | continue; |
2775 | 0 | if (memcmp (name, spec[i].prefix, prefix_len) != 0) |
2776 | 0 | continue; |
2777 | | |
2778 | 0 | suffix_len = spec[i].suffix_length; |
2779 | 0 | if (suffix_len <= 0) |
2780 | 0 | { |
2781 | 0 | if (name[prefix_len] != 0) |
2782 | 0 | { |
2783 | 0 | if (suffix_len == 0) |
2784 | 0 | continue; |
2785 | 0 | if (name[prefix_len] != '.' |
2786 | 0 | && (suffix_len == -2 |
2787 | 0 | || (rela && spec[i].type == SHT_REL))) |
2788 | 0 | continue; |
2789 | 0 | } |
2790 | 0 | } |
2791 | 0 | else |
2792 | 0 | { |
2793 | 0 | if (len < prefix_len + suffix_len) |
2794 | 0 | continue; |
2795 | 0 | if (memcmp (name + len - suffix_len, |
2796 | 0 | spec[i].prefix + prefix_len, |
2797 | 0 | suffix_len) != 0) |
2798 | 0 | continue; |
2799 | 0 | } |
2800 | 0 | return &spec[i]; |
2801 | 0 | } |
2802 | | |
2803 | 0 | return NULL; |
2804 | 0 | } |
2805 | | |
2806 | | const struct bfd_elf_special_section * |
2807 | | _bfd_elf_get_sec_type_attr (bfd *abfd, asection *sec) |
2808 | 0 | { |
2809 | 0 | int i; |
2810 | 0 | const struct bfd_elf_special_section *spec; |
2811 | 0 | const struct elf_backend_data *bed; |
2812 | | |
2813 | | /* See if this is one of the special sections. */ |
2814 | 0 | if (sec->name == NULL) |
2815 | 0 | return NULL; |
2816 | | |
2817 | 0 | bed = get_elf_backend_data (abfd); |
2818 | 0 | spec = bed->special_sections; |
2819 | 0 | if (spec) |
2820 | 0 | { |
2821 | 0 | spec = _bfd_elf_get_special_section (sec->name, |
2822 | 0 | bed->special_sections, |
2823 | 0 | sec->use_rela_p); |
2824 | 0 | if (spec != NULL) |
2825 | 0 | return spec; |
2826 | 0 | } |
2827 | | |
2828 | 0 | if (sec->name[0] != '.') |
2829 | 0 | return NULL; |
2830 | | |
2831 | 0 | i = sec->name[1] - 'b'; |
2832 | 0 | if (i < 0 || i > 'z' - 'b') |
2833 | 0 | return NULL; |
2834 | | |
2835 | 0 | spec = special_sections[i]; |
2836 | |
|
2837 | 0 | if (spec == NULL) |
2838 | 0 | return NULL; |
2839 | | |
2840 | 0 | return _bfd_elf_get_special_section (sec->name, spec, sec->use_rela_p); |
2841 | 0 | } |
2842 | | |
2843 | | bool |
2844 | | _bfd_elf_new_section_hook (bfd *abfd, asection *sec) |
2845 | 0 | { |
2846 | 0 | struct bfd_elf_section_data *sdata; |
2847 | 0 | const struct elf_backend_data *bed; |
2848 | 0 | const struct bfd_elf_special_section *ssect; |
2849 | |
|
2850 | 0 | sdata = (struct bfd_elf_section_data *) sec->used_by_bfd; |
2851 | 0 | if (sdata == NULL) |
2852 | 0 | { |
2853 | 0 | sdata = (struct bfd_elf_section_data *) bfd_zalloc (abfd, |
2854 | 0 | sizeof (*sdata)); |
2855 | 0 | if (sdata == NULL) |
2856 | 0 | return false; |
2857 | 0 | sec->used_by_bfd = sdata; |
2858 | 0 | } |
2859 | | |
2860 | | /* Indicate whether or not this section should use RELA relocations. */ |
2861 | 0 | bed = get_elf_backend_data (abfd); |
2862 | 0 | sec->use_rela_p = bed->default_use_rela_p; |
2863 | | |
2864 | | /* Set up ELF section type and flags for newly created sections, if |
2865 | | there is an ABI mandated section. */ |
2866 | 0 | ssect = (*bed->get_sec_type_attr) (abfd, sec); |
2867 | 0 | if (ssect != NULL) |
2868 | 0 | { |
2869 | 0 | elf_section_type (sec) = ssect->type; |
2870 | 0 | elf_section_flags (sec) = ssect->attr; |
2871 | 0 | } |
2872 | |
|
2873 | 0 | return _bfd_generic_new_section_hook (abfd, sec); |
2874 | 0 | } |
2875 | | |
2876 | | /* Create a new bfd section from an ELF program header. |
2877 | | |
2878 | | Since program segments have no names, we generate a synthetic name |
2879 | | of the form segment<NUM>, where NUM is generally the index in the |
2880 | | program header table. For segments that are split (see below) we |
2881 | | generate the names segment<NUM>a and segment<NUM>b. |
2882 | | |
2883 | | Note that some program segments may have a file size that is different than |
2884 | | (less than) the memory size. All this means is that at execution the |
2885 | | system must allocate the amount of memory specified by the memory size, |
2886 | | but only initialize it with the first "file size" bytes read from the |
2887 | | file. This would occur for example, with program segments consisting |
2888 | | of combined data+bss. |
2889 | | |
2890 | | To handle the above situation, this routine generates TWO bfd sections |
2891 | | for the single program segment. The first has the length specified by |
2892 | | the file size of the segment, and the second has the length specified |
2893 | | by the difference between the two sizes. In effect, the segment is split |
2894 | | into its initialized and uninitialized parts. */ |
2895 | | |
2896 | | bool |
2897 | | _bfd_elf_make_section_from_phdr (bfd *abfd, |
2898 | | Elf_Internal_Phdr *hdr, |
2899 | | int hdr_index, |
2900 | | const char *type_name) |
2901 | 0 | { |
2902 | 0 | asection *newsect; |
2903 | 0 | char *name; |
2904 | 0 | char namebuf[64]; |
2905 | 0 | size_t len; |
2906 | 0 | int split; |
2907 | 0 | unsigned int opb = bfd_octets_per_byte (abfd, NULL); |
2908 | |
|
2909 | 0 | split = ((hdr->p_memsz > 0) |
2910 | 0 | && (hdr->p_filesz > 0) |
2911 | 0 | && (hdr->p_memsz > hdr->p_filesz)); |
2912 | |
|
2913 | 0 | if (hdr->p_filesz > 0) |
2914 | 0 | { |
2915 | 0 | sprintf (namebuf, "%s%d%s", type_name, hdr_index, split ? "a" : ""); |
2916 | 0 | len = strlen (namebuf) + 1; |
2917 | 0 | name = (char *) bfd_alloc (abfd, len); |
2918 | 0 | if (!name) |
2919 | 0 | return false; |
2920 | 0 | memcpy (name, namebuf, len); |
2921 | 0 | newsect = bfd_make_section (abfd, name); |
2922 | 0 | if (newsect == NULL) |
2923 | 0 | return false; |
2924 | 0 | newsect->vma = hdr->p_vaddr / opb; |
2925 | 0 | newsect->lma = hdr->p_paddr / opb; |
2926 | 0 | newsect->size = hdr->p_filesz; |
2927 | 0 | newsect->filepos = hdr->p_offset; |
2928 | 0 | newsect->flags |= SEC_HAS_CONTENTS; |
2929 | 0 | newsect->alignment_power = bfd_log2 (hdr->p_align); |
2930 | 0 | if (hdr->p_type == PT_LOAD) |
2931 | 0 | { |
2932 | 0 | newsect->flags |= SEC_ALLOC; |
2933 | 0 | newsect->flags |= SEC_LOAD; |
2934 | 0 | if (hdr->p_flags & PF_X) |
2935 | 0 | { |
2936 | | /* FIXME: all we known is that it has execute PERMISSION, |
2937 | | may be data. */ |
2938 | 0 | newsect->flags |= SEC_CODE; |
2939 | 0 | } |
2940 | 0 | } |
2941 | 0 | if (!(hdr->p_flags & PF_W)) |
2942 | 0 | { |
2943 | 0 | newsect->flags |= SEC_READONLY; |
2944 | 0 | } |
2945 | 0 | } |
2946 | | |
2947 | 0 | if (hdr->p_memsz > hdr->p_filesz) |
2948 | 0 | { |
2949 | 0 | bfd_vma align; |
2950 | |
|
2951 | 0 | sprintf (namebuf, "%s%d%s", type_name, hdr_index, split ? "b" : ""); |
2952 | 0 | len = strlen (namebuf) + 1; |
2953 | 0 | name = (char *) bfd_alloc (abfd, len); |
2954 | 0 | if (!name) |
2955 | 0 | return false; |
2956 | 0 | memcpy (name, namebuf, len); |
2957 | 0 | newsect = bfd_make_section (abfd, name); |
2958 | 0 | if (newsect == NULL) |
2959 | 0 | return false; |
2960 | 0 | newsect->vma = (hdr->p_vaddr + hdr->p_filesz) / opb; |
2961 | 0 | newsect->lma = (hdr->p_paddr + hdr->p_filesz) / opb; |
2962 | 0 | newsect->size = hdr->p_memsz - hdr->p_filesz; |
2963 | 0 | newsect->filepos = hdr->p_offset + hdr->p_filesz; |
2964 | 0 | align = newsect->vma & -newsect->vma; |
2965 | 0 | if (align == 0 || align > hdr->p_align) |
2966 | 0 | align = hdr->p_align; |
2967 | 0 | newsect->alignment_power = bfd_log2 (align); |
2968 | 0 | if (hdr->p_type == PT_LOAD) |
2969 | 0 | { |
2970 | 0 | newsect->flags |= SEC_ALLOC; |
2971 | 0 | if (hdr->p_flags & PF_X) |
2972 | 0 | newsect->flags |= SEC_CODE; |
2973 | 0 | } |
2974 | 0 | if (!(hdr->p_flags & PF_W)) |
2975 | 0 | newsect->flags |= SEC_READONLY; |
2976 | 0 | } |
2977 | | |
2978 | 0 | return true; |
2979 | 0 | } |
2980 | | |
2981 | | static bool |
2982 | | _bfd_elf_core_find_build_id (bfd *templ, bfd_vma offset) |
2983 | 0 | { |
2984 | | /* The return value is ignored. Build-ids are considered optional. */ |
2985 | 0 | if (templ->xvec->flavour == bfd_target_elf_flavour) |
2986 | 0 | return (*get_elf_backend_data (templ)->elf_backend_core_find_build_id) |
2987 | 0 | (templ, offset); |
2988 | 0 | return false; |
2989 | 0 | } |
2990 | | |
2991 | | bool |
2992 | | bfd_section_from_phdr (bfd *abfd, Elf_Internal_Phdr *hdr, int hdr_index) |
2993 | 0 | { |
2994 | 0 | const struct elf_backend_data *bed; |
2995 | |
|
2996 | 0 | switch (hdr->p_type) |
2997 | 0 | { |
2998 | 0 | case PT_NULL: |
2999 | 0 | return _bfd_elf_make_section_from_phdr (abfd, hdr, hdr_index, "null"); |
3000 | | |
3001 | 0 | case PT_LOAD: |
3002 | 0 | if (! _bfd_elf_make_section_from_phdr (abfd, hdr, hdr_index, "load")) |
3003 | 0 | return false; |
3004 | 0 | if (bfd_get_format (abfd) == bfd_core && abfd->build_id == NULL) |
3005 | 0 | _bfd_elf_core_find_build_id (abfd, hdr->p_offset); |
3006 | 0 | return true; |
3007 | | |
3008 | 0 | case PT_DYNAMIC: |
3009 | 0 | return _bfd_elf_make_section_from_phdr (abfd, hdr, hdr_index, "dynamic"); |
3010 | | |
3011 | 0 | case PT_INTERP: |
3012 | 0 | return _bfd_elf_make_section_from_phdr (abfd, hdr, hdr_index, "interp"); |
3013 | | |
3014 | 0 | case PT_NOTE: |
3015 | 0 | if (! _bfd_elf_make_section_from_phdr (abfd, hdr, hdr_index, "note")) |
3016 | 0 | return false; |
3017 | 0 | if (! elf_read_notes (abfd, hdr->p_offset, hdr->p_filesz, |
3018 | 0 | hdr->p_align)) |
3019 | 0 | return false; |
3020 | 0 | return true; |
3021 | | |
3022 | 0 | case PT_SHLIB: |
3023 | 0 | return _bfd_elf_make_section_from_phdr (abfd, hdr, hdr_index, "shlib"); |
3024 | | |
3025 | 0 | case PT_PHDR: |
3026 | 0 | return _bfd_elf_make_section_from_phdr (abfd, hdr, hdr_index, "phdr"); |
3027 | | |
3028 | 0 | case PT_GNU_EH_FRAME: |
3029 | 0 | return _bfd_elf_make_section_from_phdr (abfd, hdr, hdr_index, |
3030 | 0 | "eh_frame_hdr"); |
3031 | | |
3032 | 0 | case PT_GNU_STACK: |
3033 | 0 | return _bfd_elf_make_section_from_phdr (abfd, hdr, hdr_index, "stack"); |
3034 | | |
3035 | 0 | case PT_GNU_RELRO: |
3036 | 0 | return _bfd_elf_make_section_from_phdr (abfd, hdr, hdr_index, "relro"); |
3037 | | |
3038 | 0 | case PT_GNU_SFRAME: |
3039 | 0 | return _bfd_elf_make_section_from_phdr (abfd, hdr, hdr_index, |
3040 | 0 | "sframe"); |
3041 | | |
3042 | 0 | default: |
3043 | | /* Check for any processor-specific program segment types. */ |
3044 | 0 | bed = get_elf_backend_data (abfd); |
3045 | 0 | return bed->elf_backend_section_from_phdr (abfd, hdr, hdr_index, "proc"); |
3046 | 0 | } |
3047 | 0 | } |
3048 | | |
3049 | | /* Return the REL_HDR for SEC, assuming there is only a single one, either |
3050 | | REL or RELA. */ |
3051 | | |
3052 | | Elf_Internal_Shdr * |
3053 | | _bfd_elf_single_rel_hdr (asection *sec) |
3054 | 0 | { |
3055 | 0 | if (elf_section_data (sec)->rel.hdr) |
3056 | 0 | { |
3057 | 0 | BFD_ASSERT (elf_section_data (sec)->rela.hdr == NULL); |
3058 | 0 | return elf_section_data (sec)->rel.hdr; |
3059 | 0 | } |
3060 | 0 | else |
3061 | 0 | return elf_section_data (sec)->rela.hdr; |
3062 | 0 | } |
3063 | | |
3064 | | static bool |
3065 | | _bfd_elf_set_reloc_sh_name (bfd *abfd, |
3066 | | Elf_Internal_Shdr *rel_hdr, |
3067 | | const char *sec_name, |
3068 | | bool use_rela_p) |
3069 | 0 | { |
3070 | 0 | char *name = (char *) bfd_alloc (abfd, |
3071 | 0 | sizeof ".rela" + strlen (sec_name)); |
3072 | 0 | if (name == NULL) |
3073 | 0 | return false; |
3074 | | |
3075 | 0 | sprintf (name, "%s%s", use_rela_p ? ".rela" : ".rel", sec_name); |
3076 | 0 | rel_hdr->sh_name = |
3077 | 0 | (unsigned int) _bfd_elf_strtab_add (elf_shstrtab (abfd), name, |
3078 | 0 | false); |
3079 | 0 | if (rel_hdr->sh_name == (unsigned int) -1) |
3080 | 0 | return false; |
3081 | | |
3082 | 0 | return true; |
3083 | 0 | } |
3084 | | |
3085 | | /* Allocate and initialize a section-header for a new reloc section, |
3086 | | containing relocations against ASECT. It is stored in RELDATA. If |
3087 | | USE_RELA_P is TRUE, we use RELA relocations; otherwise, we use REL |
3088 | | relocations. */ |
3089 | | |
3090 | | static bool |
3091 | | _bfd_elf_init_reloc_shdr (bfd *abfd, |
3092 | | struct bfd_elf_section_reloc_data *reldata, |
3093 | | const char *sec_name, |
3094 | | bool use_rela_p, |
3095 | | bool delay_st_name_p) |
3096 | 0 | { |
3097 | 0 | Elf_Internal_Shdr *rel_hdr; |
3098 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
3099 | |
|
3100 | 0 | BFD_ASSERT (reldata->hdr == NULL); |
3101 | 0 | rel_hdr = bfd_zalloc (abfd, sizeof (*rel_hdr)); |
3102 | 0 | reldata->hdr = rel_hdr; |
3103 | |
|
3104 | 0 | if (delay_st_name_p) |
3105 | 0 | rel_hdr->sh_name = (unsigned int) -1; |
3106 | 0 | else if (!_bfd_elf_set_reloc_sh_name (abfd, rel_hdr, sec_name, |
3107 | 0 | use_rela_p)) |
3108 | 0 | return false; |
3109 | 0 | rel_hdr->sh_type = use_rela_p ? SHT_RELA : SHT_REL; |
3110 | 0 | rel_hdr->sh_entsize = (use_rela_p |
3111 | 0 | ? bed->s->sizeof_rela |
3112 | 0 | : bed->s->sizeof_rel); |
3113 | 0 | rel_hdr->sh_addralign = (bfd_vma) 1 << bed->s->log_file_align; |
3114 | 0 | rel_hdr->sh_flags = 0; |
3115 | 0 | rel_hdr->sh_addr = 0; |
3116 | 0 | rel_hdr->sh_size = 0; |
3117 | 0 | rel_hdr->sh_offset = 0; |
3118 | |
|
3119 | 0 | return true; |
3120 | 0 | } |
3121 | | |
3122 | | /* Return the default section type based on the passed in section flags. */ |
3123 | | |
3124 | | int |
3125 | | bfd_elf_get_default_section_type (flagword flags) |
3126 | 0 | { |
3127 | 0 | if ((flags & (SEC_ALLOC | SEC_IS_COMMON)) != 0 |
3128 | 0 | && (flags & (SEC_LOAD | SEC_HAS_CONTENTS)) == 0) |
3129 | 0 | return SHT_NOBITS; |
3130 | 0 | return SHT_PROGBITS; |
3131 | 0 | } |
3132 | | |
3133 | | struct fake_section_arg |
3134 | | { |
3135 | | struct bfd_link_info *link_info; |
3136 | | bool failed; |
3137 | | }; |
3138 | | |
3139 | | /* Set up an ELF internal section header for a section. */ |
3140 | | |
3141 | | static void |
3142 | | elf_fake_sections (bfd *abfd, asection *asect, void *fsarg) |
3143 | 0 | { |
3144 | 0 | struct fake_section_arg *arg = (struct fake_section_arg *)fsarg; |
3145 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
3146 | 0 | struct bfd_elf_section_data *esd = elf_section_data (asect); |
3147 | 0 | Elf_Internal_Shdr *this_hdr; |
3148 | 0 | unsigned int sh_type; |
3149 | 0 | const char *name = asect->name; |
3150 | 0 | bool delay_st_name_p = false; |
3151 | 0 | bfd_vma mask; |
3152 | |
|
3153 | 0 | if (arg->failed) |
3154 | 0 | { |
3155 | | /* We already failed; just get out of the bfd_map_over_sections |
3156 | | loop. */ |
3157 | 0 | return; |
3158 | 0 | } |
3159 | | |
3160 | 0 | this_hdr = &esd->this_hdr; |
3161 | | |
3162 | | /* ld: compress DWARF debug sections with names: .debug_*. */ |
3163 | 0 | if (arg->link_info |
3164 | 0 | && (abfd->flags & BFD_COMPRESS) != 0 |
3165 | 0 | && (asect->flags & SEC_DEBUGGING) != 0 |
3166 | 0 | && name[1] == 'd' |
3167 | 0 | && name[6] == '_') |
3168 | 0 | { |
3169 | | /* If this section will be compressed, delay adding section |
3170 | | name to section name section after it is compressed in |
3171 | | _bfd_elf_assign_file_positions_for_non_load. */ |
3172 | 0 | delay_st_name_p = true; |
3173 | 0 | } |
3174 | |
|
3175 | 0 | if (delay_st_name_p) |
3176 | 0 | this_hdr->sh_name = (unsigned int) -1; |
3177 | 0 | else |
3178 | 0 | { |
3179 | 0 | this_hdr->sh_name |
3180 | 0 | = (unsigned int) _bfd_elf_strtab_add (elf_shstrtab (abfd), |
3181 | 0 | name, false); |
3182 | 0 | if (this_hdr->sh_name == (unsigned int) -1) |
3183 | 0 | { |
3184 | 0 | arg->failed = true; |
3185 | 0 | return; |
3186 | 0 | } |
3187 | 0 | } |
3188 | | |
3189 | | /* Don't clear sh_flags. Assembler may set additional bits. */ |
3190 | | |
3191 | 0 | if ((asect->flags & SEC_ALLOC) != 0 |
3192 | 0 | || asect->user_set_vma) |
3193 | 0 | this_hdr->sh_addr = asect->vma * bfd_octets_per_byte (abfd, asect); |
3194 | 0 | else |
3195 | 0 | this_hdr->sh_addr = 0; |
3196 | |
|
3197 | 0 | this_hdr->sh_offset = 0; |
3198 | 0 | this_hdr->sh_size = asect->size; |
3199 | 0 | this_hdr->sh_link = 0; |
3200 | | /* PR 17512: file: 0eb809fe, 8b0535ee. */ |
3201 | 0 | if (asect->alignment_power >= (sizeof (bfd_vma) * 8) - 1) |
3202 | 0 | { |
3203 | 0 | _bfd_error_handler |
3204 | | /* xgettext:c-format */ |
3205 | 0 | (_("%pB: error: alignment power %d of section `%pA' is too big"), |
3206 | 0 | abfd, asect->alignment_power, asect); |
3207 | 0 | arg->failed = true; |
3208 | 0 | return; |
3209 | 0 | } |
3210 | | /* Set sh_addralign to the highest power of two given by alignment |
3211 | | consistent with the section VMA. Linker scripts can force VMA. */ |
3212 | 0 | mask = ((bfd_vma) 1 << asect->alignment_power) | this_hdr->sh_addr; |
3213 | 0 | this_hdr->sh_addralign = mask & -mask; |
3214 | | /* The sh_entsize and sh_info fields may have been set already by |
3215 | | copy_private_section_data. */ |
3216 | |
|
3217 | 0 | this_hdr->bfd_section = asect; |
3218 | 0 | this_hdr->contents = NULL; |
3219 | | |
3220 | | /* If the section type is unspecified, we set it based on |
3221 | | asect->flags. */ |
3222 | 0 | if (asect->type != 0) |
3223 | 0 | sh_type = asect->type; |
3224 | 0 | else if ((asect->flags & SEC_GROUP) != 0) |
3225 | 0 | sh_type = SHT_GROUP; |
3226 | 0 | else |
3227 | 0 | sh_type = bfd_elf_get_default_section_type (asect->flags); |
3228 | |
|
3229 | 0 | if (this_hdr->sh_type == SHT_NULL) |
3230 | 0 | this_hdr->sh_type = sh_type; |
3231 | 0 | else if (this_hdr->sh_type == SHT_NOBITS |
3232 | 0 | && sh_type == SHT_PROGBITS |
3233 | 0 | && (asect->flags & SEC_ALLOC) != 0) |
3234 | 0 | { |
3235 | | /* Warn if we are changing a NOBITS section to PROGBITS, but |
3236 | | allow the link to proceed. This can happen when users link |
3237 | | non-bss input sections to bss output sections, or emit data |
3238 | | to a bss output section via a linker script. */ |
3239 | 0 | _bfd_error_handler |
3240 | 0 | (_("warning: section `%pA' type changed to PROGBITS"), asect); |
3241 | 0 | this_hdr->sh_type = sh_type; |
3242 | 0 | } |
3243 | |
|
3244 | 0 | switch (this_hdr->sh_type) |
3245 | 0 | { |
3246 | 0 | default: |
3247 | 0 | break; |
3248 | | |
3249 | 0 | case SHT_STRTAB: |
3250 | 0 | case SHT_NOTE: |
3251 | 0 | case SHT_NOBITS: |
3252 | 0 | case SHT_PROGBITS: |
3253 | 0 | break; |
3254 | | |
3255 | 0 | case SHT_INIT_ARRAY: |
3256 | 0 | case SHT_FINI_ARRAY: |
3257 | 0 | case SHT_PREINIT_ARRAY: |
3258 | 0 | this_hdr->sh_entsize = bed->s->arch_size / 8; |
3259 | 0 | break; |
3260 | | |
3261 | 0 | case SHT_HASH: |
3262 | 0 | this_hdr->sh_entsize = bed->s->sizeof_hash_entry; |
3263 | 0 | break; |
3264 | | |
3265 | 0 | case SHT_DYNSYM: |
3266 | 0 | this_hdr->sh_entsize = bed->s->sizeof_sym; |
3267 | 0 | break; |
3268 | | |
3269 | 0 | case SHT_DYNAMIC: |
3270 | 0 | this_hdr->sh_entsize = bed->s->sizeof_dyn; |
3271 | 0 | break; |
3272 | | |
3273 | 0 | case SHT_RELA: |
3274 | 0 | if (get_elf_backend_data (abfd)->may_use_rela_p) |
3275 | 0 | this_hdr->sh_entsize = bed->s->sizeof_rela; |
3276 | 0 | break; |
3277 | | |
3278 | 0 | case SHT_REL: |
3279 | 0 | if (get_elf_backend_data (abfd)->may_use_rel_p) |
3280 | 0 | this_hdr->sh_entsize = bed->s->sizeof_rel; |
3281 | 0 | break; |
3282 | | |
3283 | 0 | case SHT_GNU_versym: |
3284 | 0 | this_hdr->sh_entsize = sizeof (Elf_External_Versym); |
3285 | 0 | break; |
3286 | | |
3287 | 0 | case SHT_GNU_verdef: |
3288 | 0 | this_hdr->sh_entsize = 0; |
3289 | | /* objcopy or strip will copy over sh_info, but may not set |
3290 | | cverdefs. The linker will set cverdefs, but sh_info will be |
3291 | | zero. */ |
3292 | 0 | if (this_hdr->sh_info == 0) |
3293 | 0 | this_hdr->sh_info = elf_tdata (abfd)->cverdefs; |
3294 | 0 | else |
3295 | 0 | BFD_ASSERT (elf_tdata (abfd)->cverdefs == 0 |
3296 | 0 | || this_hdr->sh_info == elf_tdata (abfd)->cverdefs); |
3297 | 0 | break; |
3298 | | |
3299 | 0 | case SHT_GNU_verneed: |
3300 | 0 | this_hdr->sh_entsize = 0; |
3301 | | /* objcopy or strip will copy over sh_info, but may not set |
3302 | | cverrefs. The linker will set cverrefs, but sh_info will be |
3303 | | zero. */ |
3304 | 0 | if (this_hdr->sh_info == 0) |
3305 | 0 | this_hdr->sh_info = elf_tdata (abfd)->cverrefs; |
3306 | 0 | else |
3307 | 0 | BFD_ASSERT (elf_tdata (abfd)->cverrefs == 0 |
3308 | 0 | || this_hdr->sh_info == elf_tdata (abfd)->cverrefs); |
3309 | 0 | break; |
3310 | | |
3311 | 0 | case SHT_GROUP: |
3312 | 0 | this_hdr->sh_entsize = GRP_ENTRY_SIZE; |
3313 | 0 | break; |
3314 | | |
3315 | 0 | case SHT_GNU_HASH: |
3316 | 0 | this_hdr->sh_entsize = bed->s->arch_size == 64 ? 0 : 4; |
3317 | 0 | break; |
3318 | 0 | } |
3319 | | |
3320 | 0 | if ((asect->flags & SEC_ALLOC) != 0) |
3321 | 0 | this_hdr->sh_flags |= SHF_ALLOC; |
3322 | 0 | if ((asect->flags & SEC_READONLY) == 0) |
3323 | 0 | this_hdr->sh_flags |= SHF_WRITE; |
3324 | 0 | if ((asect->flags & SEC_CODE) != 0) |
3325 | 0 | this_hdr->sh_flags |= SHF_EXECINSTR; |
3326 | 0 | if ((asect->flags & SEC_MERGE) != 0) |
3327 | 0 | { |
3328 | 0 | this_hdr->sh_flags |= SHF_MERGE; |
3329 | 0 | this_hdr->sh_entsize = asect->entsize; |
3330 | 0 | } |
3331 | 0 | if ((asect->flags & SEC_STRINGS) != 0) |
3332 | 0 | this_hdr->sh_flags |= SHF_STRINGS; |
3333 | 0 | if ((asect->flags & SEC_GROUP) == 0 && elf_group_name (asect) != NULL) |
3334 | 0 | this_hdr->sh_flags |= SHF_GROUP; |
3335 | 0 | if ((asect->flags & SEC_THREAD_LOCAL) != 0) |
3336 | 0 | { |
3337 | 0 | this_hdr->sh_flags |= SHF_TLS; |
3338 | 0 | if (asect->size == 0 |
3339 | 0 | && (asect->flags & SEC_HAS_CONTENTS) == 0) |
3340 | 0 | { |
3341 | 0 | struct bfd_link_order *o = asect->map_tail.link_order; |
3342 | |
|
3343 | 0 | this_hdr->sh_size = 0; |
3344 | 0 | if (o != NULL) |
3345 | 0 | { |
3346 | 0 | this_hdr->sh_size = o->offset + o->size; |
3347 | 0 | if (this_hdr->sh_size != 0) |
3348 | 0 | this_hdr->sh_type = SHT_NOBITS; |
3349 | 0 | } |
3350 | 0 | } |
3351 | 0 | } |
3352 | 0 | if ((asect->flags & (SEC_GROUP | SEC_EXCLUDE)) == SEC_EXCLUDE) |
3353 | 0 | this_hdr->sh_flags |= SHF_EXCLUDE; |
3354 | | |
3355 | | /* If the section has relocs, set up a section header for the |
3356 | | SHT_REL[A] section. If two relocation sections are required for |
3357 | | this section, it is up to the processor-specific back-end to |
3358 | | create the other. */ |
3359 | 0 | if ((asect->flags & SEC_RELOC) != 0) |
3360 | 0 | { |
3361 | | /* When doing a relocatable link, create both REL and RELA sections if |
3362 | | needed. */ |
3363 | 0 | if (arg->link_info |
3364 | | /* Do the normal setup if we wouldn't create any sections here. */ |
3365 | 0 | && esd->rel.count + esd->rela.count > 0 |
3366 | 0 | && (bfd_link_relocatable (arg->link_info) |
3367 | 0 | || arg->link_info->emitrelocations)) |
3368 | 0 | { |
3369 | 0 | if (esd->rel.count && esd->rel.hdr == NULL |
3370 | 0 | && !_bfd_elf_init_reloc_shdr (abfd, &esd->rel, name, |
3371 | 0 | false, delay_st_name_p)) |
3372 | 0 | { |
3373 | 0 | arg->failed = true; |
3374 | 0 | return; |
3375 | 0 | } |
3376 | 0 | if (esd->rela.count && esd->rela.hdr == NULL |
3377 | 0 | && !_bfd_elf_init_reloc_shdr (abfd, &esd->rela, name, |
3378 | 0 | true, delay_st_name_p)) |
3379 | 0 | { |
3380 | 0 | arg->failed = true; |
3381 | 0 | return; |
3382 | 0 | } |
3383 | 0 | } |
3384 | 0 | else if (!_bfd_elf_init_reloc_shdr (abfd, |
3385 | 0 | (asect->use_rela_p |
3386 | 0 | ? &esd->rela : &esd->rel), |
3387 | 0 | name, |
3388 | 0 | asect->use_rela_p, |
3389 | 0 | delay_st_name_p)) |
3390 | 0 | { |
3391 | 0 | arg->failed = true; |
3392 | 0 | return; |
3393 | 0 | } |
3394 | 0 | } |
3395 | | |
3396 | | /* Check for processor-specific section types. */ |
3397 | 0 | sh_type = this_hdr->sh_type; |
3398 | 0 | if (bed->elf_backend_fake_sections |
3399 | 0 | && !(*bed->elf_backend_fake_sections) (abfd, this_hdr, asect)) |
3400 | 0 | { |
3401 | 0 | arg->failed = true; |
3402 | 0 | return; |
3403 | 0 | } |
3404 | | |
3405 | 0 | if (sh_type == SHT_NOBITS && asect->size != 0) |
3406 | 0 | { |
3407 | | /* Don't change the header type from NOBITS if we are being |
3408 | | called for objcopy --only-keep-debug. */ |
3409 | 0 | this_hdr->sh_type = sh_type; |
3410 | 0 | } |
3411 | 0 | } |
3412 | | |
3413 | | /* Fill in the contents of a SHT_GROUP section. Called from |
3414 | | _bfd_elf_compute_section_file_positions for gas, objcopy, and |
3415 | | when ELF targets use the generic linker, ld. Called for ld -r |
3416 | | from bfd_elf_final_link. */ |
3417 | | |
3418 | | void |
3419 | | bfd_elf_set_group_contents (bfd *abfd, asection *sec, void *failedptrarg) |
3420 | 0 | { |
3421 | 0 | bool *failedptr = (bool *) failedptrarg; |
3422 | 0 | asection *elt, *first; |
3423 | 0 | unsigned char *loc; |
3424 | 0 | bool gas; |
3425 | | |
3426 | | /* Ignore linker created group section. See elfNN_ia64_object_p in |
3427 | | elfxx-ia64.c. */ |
3428 | 0 | if ((sec->flags & (SEC_GROUP | SEC_LINKER_CREATED)) != SEC_GROUP |
3429 | 0 | || sec->size == 0 |
3430 | 0 | || *failedptr) |
3431 | 0 | return; |
3432 | | |
3433 | 0 | if (elf_section_data (sec)->this_hdr.sh_info == 0) |
3434 | 0 | { |
3435 | 0 | unsigned long symindx = 0; |
3436 | | |
3437 | | /* elf_group_id will have been set up by objcopy and the |
3438 | | generic linker. */ |
3439 | 0 | if (elf_group_id (sec) != NULL) |
3440 | 0 | symindx = elf_group_id (sec)->udata.i; |
3441 | |
|
3442 | 0 | if (symindx == 0) |
3443 | 0 | { |
3444 | | /* If called from the assembler, swap_out_syms will have set up |
3445 | | elf_section_syms. |
3446 | | PR 25699: A corrupt input file could contain bogus group info. */ |
3447 | 0 | if (sec->index >= elf_num_section_syms (abfd) |
3448 | 0 | || elf_section_syms (abfd)[sec->index] == NULL) |
3449 | 0 | { |
3450 | 0 | *failedptr = true; |
3451 | 0 | return; |
3452 | 0 | } |
3453 | 0 | symindx = elf_section_syms (abfd)[sec->index]->udata.i; |
3454 | 0 | } |
3455 | 0 | elf_section_data (sec)->this_hdr.sh_info = symindx; |
3456 | 0 | } |
3457 | 0 | else if (elf_section_data (sec)->this_hdr.sh_info == (unsigned int) -2) |
3458 | 0 | { |
3459 | | /* The ELF backend linker sets sh_info to -2 when the group |
3460 | | signature symbol is global, and thus the index can't be |
3461 | | set until all local symbols are output. */ |
3462 | 0 | asection *igroup; |
3463 | 0 | struct bfd_elf_section_data *sec_data; |
3464 | 0 | unsigned long symndx; |
3465 | 0 | unsigned long extsymoff; |
3466 | 0 | struct elf_link_hash_entry *h; |
3467 | | |
3468 | | /* The point of this little dance to the first SHF_GROUP section |
3469 | | then back to the SHT_GROUP section is that this gets us to |
3470 | | the SHT_GROUP in the input object. */ |
3471 | 0 | igroup = elf_sec_group (elf_next_in_group (sec)); |
3472 | 0 | sec_data = elf_section_data (igroup); |
3473 | 0 | symndx = sec_data->this_hdr.sh_info; |
3474 | 0 | extsymoff = 0; |
3475 | 0 | if (!elf_bad_symtab (igroup->owner)) |
3476 | 0 | { |
3477 | 0 | Elf_Internal_Shdr *symtab_hdr; |
3478 | |
|
3479 | 0 | symtab_hdr = &elf_tdata (igroup->owner)->symtab_hdr; |
3480 | 0 | extsymoff = symtab_hdr->sh_info; |
3481 | 0 | } |
3482 | 0 | h = elf_sym_hashes (igroup->owner)[symndx - extsymoff]; |
3483 | 0 | while (h->root.type == bfd_link_hash_indirect |
3484 | 0 | || h->root.type == bfd_link_hash_warning) |
3485 | 0 | h = (struct elf_link_hash_entry *) h->root.u.i.link; |
3486 | |
|
3487 | 0 | elf_section_data (sec)->this_hdr.sh_info = h->indx; |
3488 | 0 | } |
3489 | | |
3490 | | /* The contents won't be allocated for "ld -r" or objcopy. */ |
3491 | 0 | gas = true; |
3492 | 0 | if (sec->contents == NULL) |
3493 | 0 | { |
3494 | 0 | gas = false; |
3495 | 0 | sec->contents = (unsigned char *) bfd_alloc (abfd, sec->size); |
3496 | | |
3497 | | /* Arrange for the section to be written out. */ |
3498 | 0 | elf_section_data (sec)->this_hdr.contents = sec->contents; |
3499 | 0 | if (sec->contents == NULL) |
3500 | 0 | { |
3501 | 0 | *failedptr = true; |
3502 | 0 | return; |
3503 | 0 | } |
3504 | 0 | } |
3505 | | |
3506 | 0 | loc = sec->contents + sec->size; |
3507 | | |
3508 | | /* Get the pointer to the first section in the group that gas |
3509 | | squirreled away here. objcopy arranges for this to be set to the |
3510 | | start of the input section group. */ |
3511 | 0 | first = elt = elf_next_in_group (sec); |
3512 | | |
3513 | | /* First element is a flag word. Rest of section is elf section |
3514 | | indices for all the sections of the group. Write them backwards |
3515 | | just to keep the group in the same order as given in .section |
3516 | | directives, not that it matters. */ |
3517 | 0 | while (elt != NULL) |
3518 | 0 | { |
3519 | 0 | asection *s; |
3520 | |
|
3521 | 0 | s = elt; |
3522 | 0 | if (!gas) |
3523 | 0 | s = s->output_section; |
3524 | 0 | if (s != NULL |
3525 | 0 | && !bfd_is_abs_section (s)) |
3526 | 0 | { |
3527 | 0 | struct bfd_elf_section_data *elf_sec = elf_section_data (s); |
3528 | 0 | struct bfd_elf_section_data *input_elf_sec = elf_section_data (elt); |
3529 | |
|
3530 | 0 | if (elf_sec->rel.hdr != NULL |
3531 | 0 | && (gas |
3532 | 0 | || (input_elf_sec->rel.hdr != NULL |
3533 | 0 | && input_elf_sec->rel.hdr->sh_flags & SHF_GROUP) != 0)) |
3534 | 0 | { |
3535 | 0 | elf_sec->rel.hdr->sh_flags |= SHF_GROUP; |
3536 | 0 | loc -= 4; |
3537 | 0 | if (loc == sec->contents) |
3538 | 0 | break; |
3539 | 0 | H_PUT_32 (abfd, elf_sec->rel.idx, loc); |
3540 | 0 | } |
3541 | 0 | if (elf_sec->rela.hdr != NULL |
3542 | 0 | && (gas |
3543 | 0 | || (input_elf_sec->rela.hdr != NULL |
3544 | 0 | && input_elf_sec->rela.hdr->sh_flags & SHF_GROUP) != 0)) |
3545 | 0 | { |
3546 | 0 | elf_sec->rela.hdr->sh_flags |= SHF_GROUP; |
3547 | 0 | loc -= 4; |
3548 | 0 | if (loc == sec->contents) |
3549 | 0 | break; |
3550 | 0 | H_PUT_32 (abfd, elf_sec->rela.idx, loc); |
3551 | 0 | } |
3552 | 0 | loc -= 4; |
3553 | 0 | if (loc == sec->contents) |
3554 | 0 | break; |
3555 | 0 | H_PUT_32 (abfd, elf_sec->this_idx, loc); |
3556 | 0 | } |
3557 | 0 | elt = elf_next_in_group (elt); |
3558 | 0 | if (elt == first) |
3559 | 0 | break; |
3560 | 0 | } |
3561 | | |
3562 | | /* We should always get here with loc == sec->contents + 4, but it is |
3563 | | possible to craft bogus SHT_GROUP sections that will cause segfaults |
3564 | | in objcopy without checking loc here and in the loop above. */ |
3565 | 0 | if (loc == sec->contents) |
3566 | 0 | BFD_ASSERT (0); |
3567 | 0 | else |
3568 | 0 | { |
3569 | 0 | loc -= 4; |
3570 | 0 | if (loc != sec->contents) |
3571 | 0 | { |
3572 | 0 | BFD_ASSERT (0); |
3573 | 0 | memset (sec->contents + 4, 0, loc - sec->contents); |
3574 | 0 | loc = sec->contents; |
3575 | 0 | } |
3576 | 0 | } |
3577 | |
|
3578 | 0 | H_PUT_32 (abfd, sec->flags & SEC_LINK_ONCE ? GRP_COMDAT : 0, loc); |
3579 | 0 | } |
3580 | | |
3581 | | /* Given NAME, the name of a relocation section stripped of its |
3582 | | .rel/.rela prefix, return the section in ABFD to which the |
3583 | | relocations apply. */ |
3584 | | |
3585 | | asection * |
3586 | | _bfd_elf_plt_get_reloc_section (bfd *abfd, const char *name) |
3587 | 0 | { |
3588 | | /* If a target needs .got.plt section, relocations in rela.plt/rel.plt |
3589 | | section likely apply to .got.plt or .got section. */ |
3590 | 0 | if (get_elf_backend_data (abfd)->want_got_plt |
3591 | 0 | && strcmp (name, ".plt") == 0) |
3592 | 0 | { |
3593 | 0 | asection *sec; |
3594 | |
|
3595 | 0 | name = ".got.plt"; |
3596 | 0 | sec = bfd_get_section_by_name (abfd, name); |
3597 | 0 | if (sec != NULL) |
3598 | 0 | return sec; |
3599 | 0 | name = ".got"; |
3600 | 0 | } |
3601 | | |
3602 | 0 | return bfd_get_section_by_name (abfd, name); |
3603 | 0 | } |
3604 | | |
3605 | | /* Return the section to which RELOC_SEC applies. */ |
3606 | | |
3607 | | static asection * |
3608 | | elf_get_reloc_section (asection *reloc_sec) |
3609 | 0 | { |
3610 | 0 | const char *name; |
3611 | 0 | unsigned int type; |
3612 | 0 | bfd *abfd; |
3613 | 0 | const struct elf_backend_data *bed; |
3614 | |
|
3615 | 0 | type = elf_section_data (reloc_sec)->this_hdr.sh_type; |
3616 | 0 | if (type != SHT_REL && type != SHT_RELA) |
3617 | 0 | return NULL; |
3618 | | |
3619 | | /* We look up the section the relocs apply to by name. */ |
3620 | 0 | name = reloc_sec->name; |
3621 | 0 | if (!startswith (name, ".rel")) |
3622 | 0 | return NULL; |
3623 | 0 | name += 4; |
3624 | 0 | if (type == SHT_RELA && *name++ != 'a') |
3625 | 0 | return NULL; |
3626 | | |
3627 | 0 | abfd = reloc_sec->owner; |
3628 | 0 | bed = get_elf_backend_data (abfd); |
3629 | 0 | return bed->get_reloc_section (abfd, name); |
3630 | 0 | } |
3631 | | |
3632 | | /* Assign all ELF section numbers. The dummy first section is handled here |
3633 | | too. The link/info pointers for the standard section types are filled |
3634 | | in here too, while we're at it. LINK_INFO will be 0 when arriving |
3635 | | here for gas, objcopy, and when using the generic ELF linker. */ |
3636 | | |
3637 | | static bool |
3638 | | assign_section_numbers (bfd *abfd, struct bfd_link_info *link_info) |
3639 | 0 | { |
3640 | 0 | struct elf_obj_tdata *t = elf_tdata (abfd); |
3641 | 0 | asection *sec; |
3642 | 0 | unsigned int section_number; |
3643 | 0 | Elf_Internal_Shdr **i_shdrp; |
3644 | 0 | struct bfd_elf_section_data *d; |
3645 | 0 | bool need_symtab; |
3646 | 0 | size_t amt; |
3647 | |
|
3648 | 0 | section_number = 1; |
3649 | |
|
3650 | 0 | _bfd_elf_strtab_clear_all_refs (elf_shstrtab (abfd)); |
3651 | | |
3652 | | /* SHT_GROUP sections are in relocatable files only. */ |
3653 | 0 | if (link_info == NULL || !link_info->resolve_section_groups) |
3654 | 0 | { |
3655 | 0 | size_t reloc_count = 0; |
3656 | | |
3657 | | /* Put SHT_GROUP sections first. */ |
3658 | 0 | for (sec = abfd->sections; sec != NULL; sec = sec->next) |
3659 | 0 | { |
3660 | 0 | d = elf_section_data (sec); |
3661 | |
|
3662 | 0 | if (d->this_hdr.sh_type == SHT_GROUP) |
3663 | 0 | { |
3664 | 0 | if (sec->flags & SEC_LINKER_CREATED) |
3665 | 0 | { |
3666 | | /* Remove the linker created SHT_GROUP sections. */ |
3667 | 0 | bfd_section_list_remove (abfd, sec); |
3668 | 0 | abfd->section_count--; |
3669 | 0 | } |
3670 | 0 | else |
3671 | 0 | d->this_idx = section_number++; |
3672 | 0 | } |
3673 | | |
3674 | | /* Count relocations. */ |
3675 | 0 | reloc_count += sec->reloc_count; |
3676 | 0 | } |
3677 | | |
3678 | | /* Set/clear HAS_RELOC depending on whether there are relocations. */ |
3679 | 0 | if (reloc_count == 0) |
3680 | 0 | abfd->flags &= ~HAS_RELOC; |
3681 | 0 | else |
3682 | 0 | abfd->flags |= HAS_RELOC; |
3683 | 0 | } |
3684 | |
|
3685 | 0 | for (sec = abfd->sections; sec; sec = sec->next) |
3686 | 0 | { |
3687 | 0 | d = elf_section_data (sec); |
3688 | |
|
3689 | 0 | if (d->this_hdr.sh_type != SHT_GROUP) |
3690 | 0 | d->this_idx = section_number++; |
3691 | 0 | if (d->this_hdr.sh_name != (unsigned int) -1) |
3692 | 0 | _bfd_elf_strtab_addref (elf_shstrtab (abfd), d->this_hdr.sh_name); |
3693 | 0 | if (d->rel.hdr) |
3694 | 0 | { |
3695 | 0 | d->rel.idx = section_number++; |
3696 | 0 | if (d->rel.hdr->sh_name != (unsigned int) -1) |
3697 | 0 | _bfd_elf_strtab_addref (elf_shstrtab (abfd), d->rel.hdr->sh_name); |
3698 | 0 | } |
3699 | 0 | else |
3700 | 0 | d->rel.idx = 0; |
3701 | |
|
3702 | 0 | if (d->rela.hdr) |
3703 | 0 | { |
3704 | 0 | d->rela.idx = section_number++; |
3705 | 0 | if (d->rela.hdr->sh_name != (unsigned int) -1) |
3706 | 0 | _bfd_elf_strtab_addref (elf_shstrtab (abfd), d->rela.hdr->sh_name); |
3707 | 0 | } |
3708 | 0 | else |
3709 | 0 | d->rela.idx = 0; |
3710 | 0 | } |
3711 | |
|
3712 | 0 | need_symtab = (bfd_get_symcount (abfd) > 0 |
3713 | 0 | || (link_info == NULL |
3714 | 0 | && ((abfd->flags & (EXEC_P | DYNAMIC | HAS_RELOC)) |
3715 | 0 | == HAS_RELOC))); |
3716 | 0 | if (need_symtab) |
3717 | 0 | { |
3718 | 0 | elf_onesymtab (abfd) = section_number++; |
3719 | 0 | _bfd_elf_strtab_addref (elf_shstrtab (abfd), t->symtab_hdr.sh_name); |
3720 | 0 | if (section_number > ((SHN_LORESERVE - 2) & 0xFFFF)) |
3721 | 0 | { |
3722 | 0 | elf_section_list *entry; |
3723 | |
|
3724 | 0 | BFD_ASSERT (elf_symtab_shndx_list (abfd) == NULL); |
3725 | |
|
3726 | 0 | entry = bfd_zalloc (abfd, sizeof (*entry)); |
3727 | 0 | entry->ndx = section_number++; |
3728 | 0 | elf_symtab_shndx_list (abfd) = entry; |
3729 | 0 | entry->hdr.sh_name |
3730 | 0 | = (unsigned int) _bfd_elf_strtab_add (elf_shstrtab (abfd), |
3731 | 0 | ".symtab_shndx", false); |
3732 | 0 | if (entry->hdr.sh_name == (unsigned int) -1) |
3733 | 0 | return false; |
3734 | 0 | } |
3735 | 0 | elf_strtab_sec (abfd) = section_number++; |
3736 | 0 | _bfd_elf_strtab_addref (elf_shstrtab (abfd), t->strtab_hdr.sh_name); |
3737 | 0 | } |
3738 | | |
3739 | 0 | elf_shstrtab_sec (abfd) = section_number++; |
3740 | 0 | _bfd_elf_strtab_addref (elf_shstrtab (abfd), t->shstrtab_hdr.sh_name); |
3741 | 0 | elf_elfheader (abfd)->e_shstrndx = elf_shstrtab_sec (abfd); |
3742 | |
|
3743 | 0 | if (section_number >= SHN_LORESERVE) |
3744 | 0 | { |
3745 | | /* xgettext:c-format */ |
3746 | 0 | _bfd_error_handler (_("%pB: too many sections: %u"), |
3747 | 0 | abfd, section_number); |
3748 | 0 | return false; |
3749 | 0 | } |
3750 | | |
3751 | 0 | elf_numsections (abfd) = section_number; |
3752 | 0 | elf_elfheader (abfd)->e_shnum = section_number; |
3753 | | |
3754 | | /* Set up the list of section header pointers, in agreement with the |
3755 | | indices. */ |
3756 | 0 | amt = section_number * sizeof (Elf_Internal_Shdr *); |
3757 | 0 | i_shdrp = (Elf_Internal_Shdr **) bfd_zalloc (abfd, amt); |
3758 | 0 | if (i_shdrp == NULL) |
3759 | 0 | return false; |
3760 | | |
3761 | 0 | i_shdrp[0] = (Elf_Internal_Shdr *) bfd_zalloc (abfd, |
3762 | 0 | sizeof (Elf_Internal_Shdr)); |
3763 | 0 | if (i_shdrp[0] == NULL) |
3764 | 0 | { |
3765 | 0 | bfd_release (abfd, i_shdrp); |
3766 | 0 | return false; |
3767 | 0 | } |
3768 | | |
3769 | 0 | elf_elfsections (abfd) = i_shdrp; |
3770 | |
|
3771 | 0 | i_shdrp[elf_shstrtab_sec (abfd)] = &t->shstrtab_hdr; |
3772 | 0 | if (need_symtab) |
3773 | 0 | { |
3774 | 0 | i_shdrp[elf_onesymtab (abfd)] = &t->symtab_hdr; |
3775 | 0 | if (elf_numsections (abfd) > (SHN_LORESERVE & 0xFFFF)) |
3776 | 0 | { |
3777 | 0 | elf_section_list * entry = elf_symtab_shndx_list (abfd); |
3778 | 0 | BFD_ASSERT (entry != NULL); |
3779 | 0 | i_shdrp[entry->ndx] = & entry->hdr; |
3780 | 0 | entry->hdr.sh_link = elf_onesymtab (abfd); |
3781 | 0 | } |
3782 | 0 | i_shdrp[elf_strtab_sec (abfd)] = &t->strtab_hdr; |
3783 | 0 | t->symtab_hdr.sh_link = elf_strtab_sec (abfd); |
3784 | 0 | } |
3785 | |
|
3786 | 0 | for (sec = abfd->sections; sec; sec = sec->next) |
3787 | 0 | { |
3788 | 0 | asection *s; |
3789 | |
|
3790 | 0 | d = elf_section_data (sec); |
3791 | |
|
3792 | 0 | i_shdrp[d->this_idx] = &d->this_hdr; |
3793 | 0 | if (d->rel.idx != 0) |
3794 | 0 | i_shdrp[d->rel.idx] = d->rel.hdr; |
3795 | 0 | if (d->rela.idx != 0) |
3796 | 0 | i_shdrp[d->rela.idx] = d->rela.hdr; |
3797 | | |
3798 | | /* Fill in the sh_link and sh_info fields while we're at it. */ |
3799 | | |
3800 | | /* sh_link of a reloc section is the section index of the symbol |
3801 | | table. sh_info is the section index of the section to which |
3802 | | the relocation entries apply. */ |
3803 | 0 | if (d->rel.idx != 0) |
3804 | 0 | { |
3805 | 0 | d->rel.hdr->sh_link = elf_onesymtab (abfd); |
3806 | 0 | d->rel.hdr->sh_info = d->this_idx; |
3807 | 0 | d->rel.hdr->sh_flags |= SHF_INFO_LINK; |
3808 | 0 | } |
3809 | 0 | if (d->rela.idx != 0) |
3810 | 0 | { |
3811 | 0 | d->rela.hdr->sh_link = elf_onesymtab (abfd); |
3812 | 0 | d->rela.hdr->sh_info = d->this_idx; |
3813 | 0 | d->rela.hdr->sh_flags |= SHF_INFO_LINK; |
3814 | 0 | } |
3815 | | |
3816 | | /* We need to set up sh_link for SHF_LINK_ORDER. */ |
3817 | 0 | if ((d->this_hdr.sh_flags & SHF_LINK_ORDER) != 0) |
3818 | 0 | { |
3819 | 0 | s = elf_linked_to_section (sec); |
3820 | | /* We can now have a NULL linked section pointer. |
3821 | | This happens when the sh_link field is 0, which is done |
3822 | | when a linked to section is discarded but the linking |
3823 | | section has been retained for some reason. */ |
3824 | 0 | if (s) |
3825 | 0 | { |
3826 | | /* Check discarded linkonce section. */ |
3827 | 0 | if (discarded_section (s)) |
3828 | 0 | { |
3829 | 0 | asection *kept; |
3830 | 0 | _bfd_error_handler |
3831 | | /* xgettext:c-format */ |
3832 | 0 | (_("%pB: sh_link of section `%pA' points to" |
3833 | 0 | " discarded section `%pA' of `%pB'"), |
3834 | 0 | abfd, d->this_hdr.bfd_section, s, s->owner); |
3835 | | /* Point to the kept section if it has the same |
3836 | | size as the discarded one. */ |
3837 | 0 | kept = _bfd_elf_check_kept_section (s, link_info); |
3838 | 0 | if (kept == NULL) |
3839 | 0 | { |
3840 | 0 | bfd_set_error (bfd_error_bad_value); |
3841 | 0 | return false; |
3842 | 0 | } |
3843 | 0 | s = kept; |
3844 | 0 | } |
3845 | | /* Handle objcopy. */ |
3846 | 0 | else if (s->output_section == NULL) |
3847 | 0 | { |
3848 | 0 | _bfd_error_handler |
3849 | | /* xgettext:c-format */ |
3850 | 0 | (_("%pB: sh_link of section `%pA' points to" |
3851 | 0 | " removed section `%pA' of `%pB'"), |
3852 | 0 | abfd, d->this_hdr.bfd_section, s, s->owner); |
3853 | 0 | bfd_set_error (bfd_error_bad_value); |
3854 | 0 | return false; |
3855 | 0 | } |
3856 | 0 | s = s->output_section; |
3857 | 0 | d->this_hdr.sh_link = elf_section_data (s)->this_idx; |
3858 | 0 | } |
3859 | 0 | } |
3860 | | |
3861 | 0 | switch (d->this_hdr.sh_type) |
3862 | 0 | { |
3863 | 0 | case SHT_REL: |
3864 | 0 | case SHT_RELA: |
3865 | | /* sh_link is the section index of the symbol table. |
3866 | | sh_info is the section index of the section to which the |
3867 | | relocation entries apply. */ |
3868 | 0 | if (d->this_hdr.sh_link == 0) |
3869 | 0 | { |
3870 | | /* FIXME maybe: If this is a reloc section which we are |
3871 | | treating as a normal section then we likely should |
3872 | | not be assuming its sh_link is .dynsym or .symtab. */ |
3873 | 0 | if ((sec->flags & SEC_ALLOC) != 0) |
3874 | 0 | { |
3875 | 0 | s = bfd_get_section_by_name (abfd, ".dynsym"); |
3876 | 0 | if (s != NULL) |
3877 | 0 | d->this_hdr.sh_link = elf_section_data (s)->this_idx; |
3878 | 0 | } |
3879 | 0 | else |
3880 | 0 | d->this_hdr.sh_link = elf_onesymtab (abfd); |
3881 | 0 | } |
3882 | |
|
3883 | 0 | s = elf_get_reloc_section (sec); |
3884 | 0 | if (s != NULL) |
3885 | 0 | { |
3886 | 0 | d->this_hdr.sh_info = elf_section_data (s)->this_idx; |
3887 | 0 | d->this_hdr.sh_flags |= SHF_INFO_LINK; |
3888 | 0 | } |
3889 | 0 | break; |
3890 | | |
3891 | 0 | case SHT_STRTAB: |
3892 | | /* We assume that a section named .stab*str is a stabs |
3893 | | string section. We look for a section with the same name |
3894 | | but without the trailing ``str'', and set its sh_link |
3895 | | field to point to this section. */ |
3896 | 0 | if (startswith (sec->name, ".stab") |
3897 | 0 | && strcmp (sec->name + strlen (sec->name) - 3, "str") == 0) |
3898 | 0 | { |
3899 | 0 | size_t len; |
3900 | 0 | char *alc; |
3901 | |
|
3902 | 0 | len = strlen (sec->name); |
3903 | 0 | alc = (char *) bfd_malloc (len - 2); |
3904 | 0 | if (alc == NULL) |
3905 | 0 | return false; |
3906 | 0 | memcpy (alc, sec->name, len - 3); |
3907 | 0 | alc[len - 3] = '\0'; |
3908 | 0 | s = bfd_get_section_by_name (abfd, alc); |
3909 | 0 | free (alc); |
3910 | 0 | if (s != NULL) |
3911 | 0 | { |
3912 | 0 | elf_section_data (s)->this_hdr.sh_link = d->this_idx; |
3913 | | |
3914 | | /* This is a .stab section. */ |
3915 | 0 | elf_section_data (s)->this_hdr.sh_entsize = 12; |
3916 | 0 | } |
3917 | 0 | } |
3918 | 0 | break; |
3919 | | |
3920 | 0 | case SHT_DYNAMIC: |
3921 | 0 | case SHT_DYNSYM: |
3922 | 0 | case SHT_GNU_verneed: |
3923 | 0 | case SHT_GNU_verdef: |
3924 | | /* sh_link is the section header index of the string table |
3925 | | used for the dynamic entries, or the symbol table, or the |
3926 | | version strings. */ |
3927 | 0 | s = bfd_get_section_by_name (abfd, ".dynstr"); |
3928 | 0 | if (s != NULL) |
3929 | 0 | d->this_hdr.sh_link = elf_section_data (s)->this_idx; |
3930 | 0 | break; |
3931 | | |
3932 | 0 | case SHT_GNU_LIBLIST: |
3933 | | /* sh_link is the section header index of the prelink library |
3934 | | list used for the dynamic entries, or the symbol table, or |
3935 | | the version strings. */ |
3936 | 0 | s = bfd_get_section_by_name (abfd, ((sec->flags & SEC_ALLOC) |
3937 | 0 | ? ".dynstr" : ".gnu.libstr")); |
3938 | 0 | if (s != NULL) |
3939 | 0 | d->this_hdr.sh_link = elf_section_data (s)->this_idx; |
3940 | 0 | break; |
3941 | | |
3942 | 0 | case SHT_HASH: |
3943 | 0 | case SHT_GNU_HASH: |
3944 | 0 | case SHT_GNU_versym: |
3945 | | /* sh_link is the section header index of the symbol table |
3946 | | this hash table or version table is for. */ |
3947 | 0 | s = bfd_get_section_by_name (abfd, ".dynsym"); |
3948 | 0 | if (s != NULL) |
3949 | 0 | d->this_hdr.sh_link = elf_section_data (s)->this_idx; |
3950 | 0 | break; |
3951 | | |
3952 | 0 | case SHT_GROUP: |
3953 | 0 | d->this_hdr.sh_link = elf_onesymtab (abfd); |
3954 | 0 | } |
3955 | 0 | } |
3956 | | |
3957 | | /* Delay setting sh_name to _bfd_elf_write_object_contents so that |
3958 | | _bfd_elf_assign_file_positions_for_non_load can convert DWARF |
3959 | | debug section name from .debug_* to .zdebug_* if needed. */ |
3960 | | |
3961 | 0 | return true; |
3962 | 0 | } |
3963 | | |
3964 | | static bool |
3965 | | sym_is_global (bfd *abfd, asymbol *sym) |
3966 | 0 | { |
3967 | | /* If the backend has a special mapping, use it. */ |
3968 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
3969 | 0 | if (bed->elf_backend_sym_is_global) |
3970 | 0 | return (*bed->elf_backend_sym_is_global) (abfd, sym); |
3971 | | |
3972 | 0 | return ((sym->flags & (BSF_GLOBAL | BSF_WEAK | BSF_GNU_UNIQUE)) != 0 |
3973 | 0 | || bfd_is_und_section (bfd_asymbol_section (sym)) |
3974 | 0 | || bfd_is_com_section (bfd_asymbol_section (sym))); |
3975 | 0 | } |
3976 | | |
3977 | | /* Filter global symbols of ABFD to include in the import library. All |
3978 | | SYMCOUNT symbols of ABFD can be examined from their pointers in |
3979 | | SYMS. Pointers of symbols to keep should be stored contiguously at |
3980 | | the beginning of that array. |
3981 | | |
3982 | | Returns the number of symbols to keep. */ |
3983 | | |
3984 | | unsigned int |
3985 | | _bfd_elf_filter_global_symbols (bfd *abfd, struct bfd_link_info *info, |
3986 | | asymbol **syms, long symcount) |
3987 | 0 | { |
3988 | 0 | long src_count, dst_count = 0; |
3989 | |
|
3990 | 0 | for (src_count = 0; src_count < symcount; src_count++) |
3991 | 0 | { |
3992 | 0 | asymbol *sym = syms[src_count]; |
3993 | 0 | char *name = (char *) bfd_asymbol_name (sym); |
3994 | 0 | struct bfd_link_hash_entry *h; |
3995 | |
|
3996 | 0 | if (!sym_is_global (abfd, sym)) |
3997 | 0 | continue; |
3998 | | |
3999 | 0 | h = bfd_link_hash_lookup (info->hash, name, false, false, false); |
4000 | 0 | if (h == NULL) |
4001 | 0 | continue; |
4002 | 0 | if (h->type != bfd_link_hash_defined && h->type != bfd_link_hash_defweak) |
4003 | 0 | continue; |
4004 | 0 | if (h->linker_def || h->ldscript_def) |
4005 | 0 | continue; |
4006 | | |
4007 | 0 | syms[dst_count++] = sym; |
4008 | 0 | } |
4009 | |
|
4010 | 0 | syms[dst_count] = NULL; |
4011 | |
|
4012 | 0 | return dst_count; |
4013 | 0 | } |
4014 | | |
4015 | | /* Don't output section symbols for sections that are not going to be |
4016 | | output, that are duplicates or there is no BFD section. */ |
4017 | | |
4018 | | static bool |
4019 | | ignore_section_sym (bfd *abfd, asymbol *sym) |
4020 | 0 | { |
4021 | 0 | elf_symbol_type *type_ptr; |
4022 | |
|
4023 | 0 | if (sym == NULL) |
4024 | 0 | return false; |
4025 | | |
4026 | 0 | if ((sym->flags & BSF_SECTION_SYM) == 0) |
4027 | 0 | return false; |
4028 | | |
4029 | | /* Ignore the section symbol if it isn't used. */ |
4030 | 0 | if ((sym->flags & BSF_SECTION_SYM_USED) == 0) |
4031 | 0 | return true; |
4032 | | |
4033 | 0 | if (sym->section == NULL) |
4034 | 0 | return true; |
4035 | | |
4036 | 0 | type_ptr = elf_symbol_from (sym); |
4037 | 0 | return ((type_ptr != NULL |
4038 | 0 | && type_ptr->internal_elf_sym.st_shndx != 0 |
4039 | 0 | && bfd_is_abs_section (sym->section)) |
4040 | 0 | || !(sym->section->owner == abfd |
4041 | 0 | || (sym->section->output_section != NULL |
4042 | 0 | && sym->section->output_section->owner == abfd |
4043 | 0 | && sym->section->output_offset == 0) |
4044 | 0 | || bfd_is_abs_section (sym->section))); |
4045 | 0 | } |
4046 | | |
4047 | | /* Map symbol from it's internal number to the external number, moving |
4048 | | all local symbols to be at the head of the list. */ |
4049 | | |
4050 | | static bool |
4051 | | elf_map_symbols (bfd *abfd, unsigned int *pnum_locals) |
4052 | 0 | { |
4053 | 0 | unsigned int symcount = bfd_get_symcount (abfd); |
4054 | 0 | asymbol **syms = bfd_get_outsymbols (abfd); |
4055 | 0 | asymbol **sect_syms; |
4056 | 0 | unsigned int num_locals = 0; |
4057 | 0 | unsigned int num_globals = 0; |
4058 | 0 | unsigned int num_locals2 = 0; |
4059 | 0 | unsigned int num_globals2 = 0; |
4060 | 0 | unsigned int max_index = 0; |
4061 | 0 | unsigned int idx; |
4062 | 0 | asection *asect; |
4063 | 0 | asymbol **new_syms; |
4064 | 0 | size_t amt; |
4065 | |
|
4066 | | #ifdef DEBUG |
4067 | | fprintf (stderr, "elf_map_symbols\n"); |
4068 | | fflush (stderr); |
4069 | | #endif |
4070 | |
|
4071 | 0 | for (asect = abfd->sections; asect; asect = asect->next) |
4072 | 0 | { |
4073 | 0 | if (max_index < asect->index) |
4074 | 0 | max_index = asect->index; |
4075 | 0 | } |
4076 | |
|
4077 | 0 | max_index++; |
4078 | 0 | amt = max_index * sizeof (asymbol *); |
4079 | 0 | sect_syms = (asymbol **) bfd_zalloc (abfd, amt); |
4080 | 0 | if (sect_syms == NULL) |
4081 | 0 | return false; |
4082 | 0 | elf_section_syms (abfd) = sect_syms; |
4083 | 0 | elf_num_section_syms (abfd) = max_index; |
4084 | | |
4085 | | /* Init sect_syms entries for any section symbols we have already |
4086 | | decided to output. */ |
4087 | 0 | for (idx = 0; idx < symcount; idx++) |
4088 | 0 | { |
4089 | 0 | asymbol *sym = syms[idx]; |
4090 | |
|
4091 | 0 | if ((sym->flags & BSF_SECTION_SYM) != 0 |
4092 | 0 | && sym->value == 0 |
4093 | 0 | && !ignore_section_sym (abfd, sym) |
4094 | 0 | && !bfd_is_abs_section (sym->section)) |
4095 | 0 | { |
4096 | 0 | asection *sec = sym->section; |
4097 | |
|
4098 | 0 | if (sec->owner != abfd) |
4099 | 0 | sec = sec->output_section; |
4100 | |
|
4101 | 0 | sect_syms[sec->index] = syms[idx]; |
4102 | 0 | } |
4103 | 0 | } |
4104 | | |
4105 | | /* Classify all of the symbols. */ |
4106 | 0 | for (idx = 0; idx < symcount; idx++) |
4107 | 0 | { |
4108 | 0 | if (sym_is_global (abfd, syms[idx])) |
4109 | 0 | num_globals++; |
4110 | 0 | else if (!ignore_section_sym (abfd, syms[idx])) |
4111 | 0 | num_locals++; |
4112 | 0 | } |
4113 | | |
4114 | | /* We will be adding a section symbol for each normal BFD section. Most |
4115 | | sections will already have a section symbol in outsymbols, but |
4116 | | eg. SHT_GROUP sections will not, and we need the section symbol mapped |
4117 | | at least in that case. */ |
4118 | 0 | for (asect = abfd->sections; asect; asect = asect->next) |
4119 | 0 | { |
4120 | 0 | asymbol *sym = asect->symbol; |
4121 | | /* Don't include ignored section symbols. */ |
4122 | 0 | if (!ignore_section_sym (abfd, sym) |
4123 | 0 | && sect_syms[asect->index] == NULL) |
4124 | 0 | { |
4125 | 0 | if (!sym_is_global (abfd, asect->symbol)) |
4126 | 0 | num_locals++; |
4127 | 0 | else |
4128 | 0 | num_globals++; |
4129 | 0 | } |
4130 | 0 | } |
4131 | | |
4132 | | /* Now sort the symbols so the local symbols are first. */ |
4133 | 0 | amt = (num_locals + num_globals) * sizeof (asymbol *); |
4134 | 0 | new_syms = (asymbol **) bfd_alloc (abfd, amt); |
4135 | 0 | if (new_syms == NULL) |
4136 | 0 | return false; |
4137 | | |
4138 | 0 | for (idx = 0; idx < symcount; idx++) |
4139 | 0 | { |
4140 | 0 | asymbol *sym = syms[idx]; |
4141 | 0 | unsigned int i; |
4142 | |
|
4143 | 0 | if (sym_is_global (abfd, sym)) |
4144 | 0 | i = num_locals + num_globals2++; |
4145 | | /* Don't include ignored section symbols. */ |
4146 | 0 | else if (!ignore_section_sym (abfd, sym)) |
4147 | 0 | i = num_locals2++; |
4148 | 0 | else |
4149 | 0 | continue; |
4150 | 0 | new_syms[i] = sym; |
4151 | 0 | sym->udata.i = i + 1; |
4152 | 0 | } |
4153 | 0 | for (asect = abfd->sections; asect; asect = asect->next) |
4154 | 0 | { |
4155 | 0 | asymbol *sym = asect->symbol; |
4156 | 0 | if (!ignore_section_sym (abfd, sym) |
4157 | 0 | && sect_syms[asect->index] == NULL) |
4158 | 0 | { |
4159 | 0 | unsigned int i; |
4160 | |
|
4161 | 0 | sect_syms[asect->index] = sym; |
4162 | 0 | if (!sym_is_global (abfd, sym)) |
4163 | 0 | i = num_locals2++; |
4164 | 0 | else |
4165 | 0 | i = num_locals + num_globals2++; |
4166 | 0 | new_syms[i] = sym; |
4167 | 0 | sym->udata.i = i + 1; |
4168 | 0 | } |
4169 | 0 | } |
4170 | |
|
4171 | 0 | bfd_set_symtab (abfd, new_syms, num_locals + num_globals); |
4172 | |
|
4173 | 0 | *pnum_locals = num_locals; |
4174 | 0 | return true; |
4175 | 0 | } |
4176 | | |
4177 | | /* Align to the maximum file alignment that could be required for any |
4178 | | ELF data structure. */ |
4179 | | |
4180 | | static inline file_ptr |
4181 | | align_file_position (file_ptr off, int align) |
4182 | 0 | { |
4183 | 0 | return (off + align - 1) & ~(align - 1); |
4184 | 0 | } |
4185 | | |
4186 | | /* Assign a file position to a section, optionally aligning to the |
4187 | | required section alignment. */ |
4188 | | |
4189 | | file_ptr |
4190 | | _bfd_elf_assign_file_position_for_section (Elf_Internal_Shdr *i_shdrp, |
4191 | | file_ptr offset, |
4192 | | bool align) |
4193 | 0 | { |
4194 | 0 | if (align && i_shdrp->sh_addralign > 1) |
4195 | 0 | offset = BFD_ALIGN (offset, i_shdrp->sh_addralign & -i_shdrp->sh_addralign); |
4196 | 0 | i_shdrp->sh_offset = offset; |
4197 | 0 | if (i_shdrp->bfd_section != NULL) |
4198 | 0 | i_shdrp->bfd_section->filepos = offset; |
4199 | 0 | if (i_shdrp->sh_type != SHT_NOBITS) |
4200 | 0 | offset += i_shdrp->sh_size; |
4201 | 0 | return offset; |
4202 | 0 | } |
4203 | | |
4204 | | /* Compute the file positions we are going to put the sections at, and |
4205 | | otherwise prepare to begin writing out the ELF file. If LINK_INFO |
4206 | | is not NULL, this is being called by the ELF backend linker. */ |
4207 | | |
4208 | | bool |
4209 | | _bfd_elf_compute_section_file_positions (bfd *abfd, |
4210 | | struct bfd_link_info *link_info) |
4211 | 0 | { |
4212 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
4213 | 0 | struct fake_section_arg fsargs; |
4214 | 0 | bool failed; |
4215 | 0 | struct elf_strtab_hash *strtab = NULL; |
4216 | 0 | Elf_Internal_Shdr *shstrtab_hdr; |
4217 | 0 | bool need_symtab; |
4218 | |
|
4219 | 0 | if (abfd->output_has_begun) |
4220 | 0 | return true; |
4221 | | |
4222 | | /* Do any elf backend specific processing first. */ |
4223 | 0 | if (bed->elf_backend_begin_write_processing) |
4224 | 0 | (*bed->elf_backend_begin_write_processing) (abfd, link_info); |
4225 | |
|
4226 | 0 | if (!(*bed->elf_backend_init_file_header) (abfd, link_info)) |
4227 | 0 | return false; |
4228 | | |
4229 | 0 | fsargs.failed = false; |
4230 | 0 | fsargs.link_info = link_info; |
4231 | 0 | bfd_map_over_sections (abfd, elf_fake_sections, &fsargs); |
4232 | 0 | if (fsargs.failed) |
4233 | 0 | return false; |
4234 | | |
4235 | 0 | if (!assign_section_numbers (abfd, link_info)) |
4236 | 0 | return false; |
4237 | | |
4238 | | /* The backend linker builds symbol table information itself. */ |
4239 | 0 | need_symtab = (link_info == NULL |
4240 | 0 | && (bfd_get_symcount (abfd) > 0 |
4241 | 0 | || ((abfd->flags & (EXEC_P | DYNAMIC | HAS_RELOC)) |
4242 | 0 | == HAS_RELOC))); |
4243 | 0 | if (need_symtab) |
4244 | 0 | { |
4245 | | /* Non-zero if doing a relocatable link. */ |
4246 | 0 | int relocatable_p = ! (abfd->flags & (EXEC_P | DYNAMIC)); |
4247 | |
|
4248 | 0 | if (! swap_out_syms (abfd, &strtab, relocatable_p, link_info)) |
4249 | 0 | return false; |
4250 | 0 | } |
4251 | | |
4252 | 0 | failed = false; |
4253 | 0 | if (link_info == NULL) |
4254 | 0 | { |
4255 | 0 | bfd_map_over_sections (abfd, bfd_elf_set_group_contents, &failed); |
4256 | 0 | if (failed) |
4257 | 0 | goto err_free_strtab; |
4258 | 0 | } |
4259 | | |
4260 | 0 | shstrtab_hdr = &elf_tdata (abfd)->shstrtab_hdr; |
4261 | | /* sh_name was set in init_file_header. */ |
4262 | 0 | shstrtab_hdr->sh_type = SHT_STRTAB; |
4263 | 0 | shstrtab_hdr->sh_flags = bed->elf_strtab_flags; |
4264 | 0 | shstrtab_hdr->sh_addr = 0; |
4265 | | /* sh_size is set in _bfd_elf_assign_file_positions_for_non_load. */ |
4266 | 0 | shstrtab_hdr->sh_entsize = 0; |
4267 | 0 | shstrtab_hdr->sh_link = 0; |
4268 | 0 | shstrtab_hdr->sh_info = 0; |
4269 | | /* sh_offset is set in _bfd_elf_assign_file_positions_for_non_load. */ |
4270 | 0 | shstrtab_hdr->sh_addralign = 1; |
4271 | |
|
4272 | 0 | if (!assign_file_positions_except_relocs (abfd, link_info)) |
4273 | 0 | goto err_free_strtab; |
4274 | | |
4275 | 0 | if (strtab != NULL) |
4276 | 0 | { |
4277 | 0 | file_ptr off; |
4278 | 0 | Elf_Internal_Shdr *hdr; |
4279 | |
|
4280 | 0 | off = elf_next_file_pos (abfd); |
4281 | |
|
4282 | 0 | hdr = & elf_symtab_hdr (abfd); |
4283 | 0 | off = _bfd_elf_assign_file_position_for_section (hdr, off, true); |
4284 | |
|
4285 | 0 | if (elf_symtab_shndx_list (abfd) != NULL) |
4286 | 0 | { |
4287 | 0 | hdr = & elf_symtab_shndx_list (abfd)->hdr; |
4288 | 0 | if (hdr->sh_size != 0) |
4289 | 0 | off = _bfd_elf_assign_file_position_for_section (hdr, off, true); |
4290 | | /* FIXME: What about other symtab_shndx sections in the list ? */ |
4291 | 0 | } |
4292 | |
|
4293 | 0 | hdr = &elf_tdata (abfd)->strtab_hdr; |
4294 | 0 | off = _bfd_elf_assign_file_position_for_section (hdr, off, true); |
4295 | |
|
4296 | 0 | elf_next_file_pos (abfd) = off; |
4297 | | |
4298 | | /* Now that we know where the .strtab section goes, write it |
4299 | | out. */ |
4300 | 0 | if (bfd_seek (abfd, hdr->sh_offset, SEEK_SET) != 0 |
4301 | 0 | || ! _bfd_elf_strtab_emit (abfd, strtab)) |
4302 | 0 | goto err_free_strtab; |
4303 | 0 | _bfd_elf_strtab_free (strtab); |
4304 | 0 | } |
4305 | | |
4306 | 0 | abfd->output_has_begun = true; |
4307 | 0 | return true; |
4308 | | |
4309 | 0 | err_free_strtab: |
4310 | 0 | if (strtab != NULL) |
4311 | 0 | _bfd_elf_strtab_free (strtab); |
4312 | 0 | return false; |
4313 | 0 | } |
4314 | | |
4315 | | /* Retrieve .eh_frame_hdr. Prior to size_dynamic_sections the |
4316 | | function effectively returns whether --eh-frame-hdr is given on the |
4317 | | command line. After size_dynamic_sections the result reflects |
4318 | | whether .eh_frame_hdr will actually be output (sizing isn't done |
4319 | | until ldemul_after_allocation). */ |
4320 | | |
4321 | | static asection * |
4322 | | elf_eh_frame_hdr (const struct bfd_link_info *info) |
4323 | 0 | { |
4324 | 0 | if (info != NULL && is_elf_hash_table (info->hash)) |
4325 | 0 | return elf_hash_table (info)->eh_info.hdr_sec; |
4326 | 0 | return NULL; |
4327 | 0 | } |
4328 | | |
4329 | | /* Make an initial estimate of the size of the program header. If we |
4330 | | get the number wrong here, we'll redo section placement. */ |
4331 | | |
4332 | | static bfd_size_type |
4333 | | get_program_header_size (bfd *abfd, struct bfd_link_info *info) |
4334 | 0 | { |
4335 | 0 | size_t segs; |
4336 | 0 | asection *s; |
4337 | 0 | const struct elf_backend_data *bed; |
4338 | | |
4339 | | /* Assume we will need exactly two PT_LOAD segments: one for text |
4340 | | and one for data. */ |
4341 | 0 | segs = 2; |
4342 | |
|
4343 | 0 | s = bfd_get_section_by_name (abfd, ".interp"); |
4344 | 0 | if (s != NULL && (s->flags & SEC_LOAD) != 0 && s->size != 0) |
4345 | 0 | { |
4346 | | /* If we have a loadable interpreter section, we need a |
4347 | | PT_INTERP segment. In this case, assume we also need a |
4348 | | PT_PHDR segment, although that may not be true for all |
4349 | | targets. */ |
4350 | 0 | segs += 2; |
4351 | 0 | } |
4352 | |
|
4353 | 0 | if (bfd_get_section_by_name (abfd, ".dynamic") != NULL) |
4354 | 0 | { |
4355 | | /* We need a PT_DYNAMIC segment. */ |
4356 | 0 | ++segs; |
4357 | 0 | } |
4358 | |
|
4359 | 0 | if (info != NULL && info->relro) |
4360 | 0 | { |
4361 | | /* We need a PT_GNU_RELRO segment. */ |
4362 | 0 | ++segs; |
4363 | 0 | } |
4364 | |
|
4365 | 0 | if (elf_eh_frame_hdr (info)) |
4366 | 0 | { |
4367 | | /* We need a PT_GNU_EH_FRAME segment. */ |
4368 | 0 | ++segs; |
4369 | 0 | } |
4370 | |
|
4371 | 0 | if (elf_stack_flags (abfd)) |
4372 | 0 | { |
4373 | | /* We need a PT_GNU_STACK segment. */ |
4374 | 0 | ++segs; |
4375 | 0 | } |
4376 | |
|
4377 | 0 | if (elf_sframe (abfd)) |
4378 | 0 | { |
4379 | | /* We need a PT_GNU_SFRAME segment. */ |
4380 | 0 | ++segs; |
4381 | 0 | } |
4382 | |
|
4383 | 0 | s = bfd_get_section_by_name (abfd, |
4384 | 0 | NOTE_GNU_PROPERTY_SECTION_NAME); |
4385 | 0 | if (s != NULL && s->size != 0) |
4386 | 0 | { |
4387 | | /* We need a PT_GNU_PROPERTY segment. */ |
4388 | 0 | ++segs; |
4389 | 0 | } |
4390 | |
|
4391 | 0 | for (s = abfd->sections; s != NULL; s = s->next) |
4392 | 0 | { |
4393 | 0 | if ((s->flags & SEC_LOAD) != 0 |
4394 | 0 | && elf_section_type (s) == SHT_NOTE) |
4395 | 0 | { |
4396 | 0 | unsigned int alignment_power; |
4397 | | /* We need a PT_NOTE segment. */ |
4398 | 0 | ++segs; |
4399 | | /* Try to create just one PT_NOTE segment for all adjacent |
4400 | | loadable SHT_NOTE sections. gABI requires that within a |
4401 | | PT_NOTE segment (and also inside of each SHT_NOTE section) |
4402 | | each note should have the same alignment. So we check |
4403 | | whether the sections are correctly aligned. */ |
4404 | 0 | alignment_power = s->alignment_power; |
4405 | 0 | while (s->next != NULL |
4406 | 0 | && s->next->alignment_power == alignment_power |
4407 | 0 | && (s->next->flags & SEC_LOAD) != 0 |
4408 | 0 | && elf_section_type (s->next) == SHT_NOTE) |
4409 | 0 | s = s->next; |
4410 | 0 | } |
4411 | 0 | } |
4412 | |
|
4413 | 0 | for (s = abfd->sections; s != NULL; s = s->next) |
4414 | 0 | { |
4415 | 0 | if (s->flags & SEC_THREAD_LOCAL) |
4416 | 0 | { |
4417 | | /* We need a PT_TLS segment. */ |
4418 | 0 | ++segs; |
4419 | 0 | break; |
4420 | 0 | } |
4421 | 0 | } |
4422 | |
|
4423 | 0 | bed = get_elf_backend_data (abfd); |
4424 | |
|
4425 | 0 | if ((abfd->flags & D_PAGED) != 0 |
4426 | 0 | && (elf_tdata (abfd)->has_gnu_osabi & elf_gnu_osabi_mbind) != 0) |
4427 | 0 | { |
4428 | | /* Add a PT_GNU_MBIND segment for each mbind section. */ |
4429 | 0 | bfd_vma commonpagesize; |
4430 | 0 | unsigned int page_align_power; |
4431 | |
|
4432 | 0 | if (info != NULL) |
4433 | 0 | commonpagesize = info->commonpagesize; |
4434 | 0 | else |
4435 | 0 | commonpagesize = bed->commonpagesize; |
4436 | 0 | page_align_power = bfd_log2 (commonpagesize); |
4437 | 0 | for (s = abfd->sections; s != NULL; s = s->next) |
4438 | 0 | if (elf_section_flags (s) & SHF_GNU_MBIND) |
4439 | 0 | { |
4440 | 0 | if (elf_section_data (s)->this_hdr.sh_info > PT_GNU_MBIND_NUM) |
4441 | 0 | { |
4442 | 0 | _bfd_error_handler |
4443 | | /* xgettext:c-format */ |
4444 | 0 | (_("%pB: GNU_MBIND section `%pA' has invalid " |
4445 | 0 | "sh_info field: %d"), |
4446 | 0 | abfd, s, elf_section_data (s)->this_hdr.sh_info); |
4447 | 0 | continue; |
4448 | 0 | } |
4449 | | /* Align mbind section to page size. */ |
4450 | 0 | if (s->alignment_power < page_align_power) |
4451 | 0 | s->alignment_power = page_align_power; |
4452 | 0 | segs ++; |
4453 | 0 | } |
4454 | 0 | } |
4455 | | |
4456 | | /* Let the backend count up any program headers it might need. */ |
4457 | 0 | if (bed->elf_backend_additional_program_headers) |
4458 | 0 | { |
4459 | 0 | int a; |
4460 | |
|
4461 | 0 | a = (*bed->elf_backend_additional_program_headers) (abfd, info); |
4462 | 0 | if (a == -1) |
4463 | 0 | abort (); |
4464 | 0 | segs += a; |
4465 | 0 | } |
4466 | | |
4467 | 0 | return segs * bed->s->sizeof_phdr; |
4468 | 0 | } |
4469 | | |
4470 | | /* Find the segment that contains the output_section of section. */ |
4471 | | |
4472 | | Elf_Internal_Phdr * |
4473 | | _bfd_elf_find_segment_containing_section (bfd * abfd, asection * section) |
4474 | 0 | { |
4475 | 0 | struct elf_segment_map *m; |
4476 | 0 | Elf_Internal_Phdr *p; |
4477 | |
|
4478 | 0 | for (m = elf_seg_map (abfd), p = elf_tdata (abfd)->phdr; |
4479 | 0 | m != NULL; |
4480 | 0 | m = m->next, p++) |
4481 | 0 | { |
4482 | 0 | int i; |
4483 | |
|
4484 | 0 | for (i = m->count - 1; i >= 0; i--) |
4485 | 0 | if (m->sections[i] == section) |
4486 | 0 | return p; |
4487 | 0 | } |
4488 | | |
4489 | 0 | return NULL; |
4490 | 0 | } |
4491 | | |
4492 | | /* Create a mapping from a set of sections to a program segment. */ |
4493 | | |
4494 | | static struct elf_segment_map * |
4495 | | make_mapping (bfd *abfd, |
4496 | | asection **sections, |
4497 | | unsigned int from, |
4498 | | unsigned int to, |
4499 | | bool phdr) |
4500 | 0 | { |
4501 | 0 | struct elf_segment_map *m; |
4502 | 0 | unsigned int i; |
4503 | 0 | asection **hdrpp; |
4504 | 0 | size_t amt; |
4505 | |
|
4506 | 0 | amt = sizeof (struct elf_segment_map) - sizeof (asection *); |
4507 | 0 | amt += (to - from) * sizeof (asection *); |
4508 | 0 | m = (struct elf_segment_map *) bfd_zalloc (abfd, amt); |
4509 | 0 | if (m == NULL) |
4510 | 0 | return NULL; |
4511 | 0 | m->next = NULL; |
4512 | 0 | m->p_type = PT_LOAD; |
4513 | 0 | for (i = from, hdrpp = sections + from; i < to; i++, hdrpp++) |
4514 | 0 | m->sections[i - from] = *hdrpp; |
4515 | 0 | m->count = to - from; |
4516 | |
|
4517 | 0 | if (from == 0 && phdr) |
4518 | 0 | { |
4519 | | /* Include the headers in the first PT_LOAD segment. */ |
4520 | 0 | m->includes_filehdr = 1; |
4521 | 0 | m->includes_phdrs = 1; |
4522 | 0 | } |
4523 | |
|
4524 | 0 | return m; |
4525 | 0 | } |
4526 | | |
4527 | | /* Create the PT_DYNAMIC segment, which includes DYNSEC. Returns NULL |
4528 | | on failure. */ |
4529 | | |
4530 | | struct elf_segment_map * |
4531 | | _bfd_elf_make_dynamic_segment (bfd *abfd, asection *dynsec) |
4532 | 0 | { |
4533 | 0 | struct elf_segment_map *m; |
4534 | |
|
4535 | 0 | m = (struct elf_segment_map *) bfd_zalloc (abfd, |
4536 | 0 | sizeof (struct elf_segment_map)); |
4537 | 0 | if (m == NULL) |
4538 | 0 | return NULL; |
4539 | 0 | m->next = NULL; |
4540 | 0 | m->p_type = PT_DYNAMIC; |
4541 | 0 | m->count = 1; |
4542 | 0 | m->sections[0] = dynsec; |
4543 | |
|
4544 | 0 | return m; |
4545 | 0 | } |
4546 | | |
4547 | | /* Possibly add or remove segments from the segment map. */ |
4548 | | |
4549 | | static bool |
4550 | | elf_modify_segment_map (bfd *abfd, |
4551 | | struct bfd_link_info *info, |
4552 | | bool remove_empty_load) |
4553 | 0 | { |
4554 | 0 | struct elf_segment_map **m; |
4555 | 0 | const struct elf_backend_data *bed; |
4556 | | |
4557 | | /* The placement algorithm assumes that non allocated sections are |
4558 | | not in PT_LOAD segments. We ensure this here by removing such |
4559 | | sections from the segment map. We also remove excluded |
4560 | | sections. Finally, any PT_LOAD segment without sections is |
4561 | | removed. */ |
4562 | 0 | m = &elf_seg_map (abfd); |
4563 | 0 | while (*m) |
4564 | 0 | { |
4565 | 0 | unsigned int i, new_count; |
4566 | |
|
4567 | 0 | for (new_count = 0, i = 0; i < (*m)->count; i++) |
4568 | 0 | { |
4569 | 0 | if (((*m)->sections[i]->flags & SEC_EXCLUDE) == 0 |
4570 | 0 | && (((*m)->sections[i]->flags & SEC_ALLOC) != 0 |
4571 | 0 | || (*m)->p_type != PT_LOAD)) |
4572 | 0 | { |
4573 | 0 | (*m)->sections[new_count] = (*m)->sections[i]; |
4574 | 0 | new_count++; |
4575 | 0 | } |
4576 | 0 | } |
4577 | 0 | (*m)->count = new_count; |
4578 | |
|
4579 | 0 | if (remove_empty_load |
4580 | 0 | && (*m)->p_type == PT_LOAD |
4581 | 0 | && (*m)->count == 0 |
4582 | 0 | && !(*m)->includes_phdrs) |
4583 | 0 | *m = (*m)->next; |
4584 | 0 | else |
4585 | 0 | m = &(*m)->next; |
4586 | 0 | } |
4587 | |
|
4588 | 0 | bed = get_elf_backend_data (abfd); |
4589 | 0 | if (bed->elf_backend_modify_segment_map != NULL) |
4590 | 0 | { |
4591 | 0 | if (!(*bed->elf_backend_modify_segment_map) (abfd, info)) |
4592 | 0 | return false; |
4593 | 0 | } |
4594 | | |
4595 | 0 | return true; |
4596 | 0 | } |
4597 | | |
4598 | | #define IS_TBSS(s) \ |
4599 | 0 | ((s->flags & (SEC_THREAD_LOCAL | SEC_LOAD)) == SEC_THREAD_LOCAL) |
4600 | | |
4601 | | /* Set up a mapping from BFD sections to program segments. Update |
4602 | | NEED_LAYOUT if the section layout is changed. */ |
4603 | | |
4604 | | bool |
4605 | | _bfd_elf_map_sections_to_segments (bfd *abfd, |
4606 | | struct bfd_link_info *info, |
4607 | | bool *need_layout) |
4608 | 0 | { |
4609 | 0 | unsigned int count; |
4610 | 0 | struct elf_segment_map *m; |
4611 | 0 | asection **sections = NULL; |
4612 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
4613 | 0 | bool no_user_phdrs; |
4614 | |
|
4615 | 0 | no_user_phdrs = elf_seg_map (abfd) == NULL; |
4616 | |
|
4617 | 0 | if (info != NULL) |
4618 | 0 | { |
4619 | 0 | info->user_phdrs = !no_user_phdrs; |
4620 | | |
4621 | | /* Size the relative relocations if DT_RELR is enabled. */ |
4622 | 0 | if (info->enable_dt_relr |
4623 | 0 | && need_layout != NULL |
4624 | 0 | && bed->size_relative_relocs |
4625 | 0 | && !bed->size_relative_relocs (info, need_layout)) |
4626 | 0 | info->callbacks->einfo |
4627 | 0 | (_("%F%P: failed to size relative relocations\n")); |
4628 | 0 | } |
4629 | |
|
4630 | 0 | if (no_user_phdrs && bfd_count_sections (abfd) != 0) |
4631 | 0 | { |
4632 | 0 | asection *s; |
4633 | 0 | unsigned int i; |
4634 | 0 | struct elf_segment_map *mfirst; |
4635 | 0 | struct elf_segment_map **pm; |
4636 | 0 | asection *last_hdr; |
4637 | 0 | bfd_vma last_size; |
4638 | 0 | unsigned int hdr_index; |
4639 | 0 | bfd_vma maxpagesize; |
4640 | 0 | asection **hdrpp; |
4641 | 0 | bool phdr_in_segment; |
4642 | 0 | bool writable; |
4643 | 0 | bool executable; |
4644 | 0 | unsigned int tls_count = 0; |
4645 | 0 | asection *first_tls = NULL; |
4646 | 0 | asection *first_mbind = NULL; |
4647 | 0 | asection *dynsec, *eh_frame_hdr; |
4648 | 0 | asection *sframe; |
4649 | 0 | size_t amt; |
4650 | 0 | bfd_vma addr_mask, wrap_to = 0; /* Bytes. */ |
4651 | 0 | bfd_size_type phdr_size; /* Octets/bytes. */ |
4652 | 0 | unsigned int opb = bfd_octets_per_byte (abfd, NULL); |
4653 | | |
4654 | | /* Select the allocated sections, and sort them. */ |
4655 | |
|
4656 | 0 | amt = bfd_count_sections (abfd) * sizeof (asection *); |
4657 | 0 | sections = (asection **) bfd_malloc (amt); |
4658 | 0 | if (sections == NULL) |
4659 | 0 | goto error_return; |
4660 | | |
4661 | | /* Calculate top address, avoiding undefined behaviour of shift |
4662 | | left operator when shift count is equal to size of type |
4663 | | being shifted. */ |
4664 | 0 | addr_mask = ((bfd_vma) 1 << (bfd_arch_bits_per_address (abfd) - 1)) - 1; |
4665 | 0 | addr_mask = (addr_mask << 1) + 1; |
4666 | |
|
4667 | 0 | i = 0; |
4668 | 0 | for (s = abfd->sections; s != NULL; s = s->next) |
4669 | 0 | { |
4670 | 0 | if ((s->flags & SEC_ALLOC) != 0) |
4671 | 0 | { |
4672 | | /* target_index is unused until bfd_elf_final_link |
4673 | | starts output of section symbols. Use it to make |
4674 | | qsort stable. */ |
4675 | 0 | s->target_index = i; |
4676 | 0 | sections[i] = s; |
4677 | 0 | ++i; |
4678 | | /* A wrapping section potentially clashes with header. */ |
4679 | 0 | if (((s->lma + s->size / opb) & addr_mask) < (s->lma & addr_mask)) |
4680 | 0 | wrap_to = (s->lma + s->size / opb) & addr_mask; |
4681 | 0 | } |
4682 | 0 | } |
4683 | 0 | BFD_ASSERT (i <= bfd_count_sections (abfd)); |
4684 | 0 | count = i; |
4685 | |
|
4686 | 0 | qsort (sections, (size_t) count, sizeof (asection *), elf_sort_sections); |
4687 | |
|
4688 | 0 | phdr_size = elf_program_header_size (abfd); |
4689 | 0 | if (phdr_size == (bfd_size_type) -1) |
4690 | 0 | phdr_size = get_program_header_size (abfd, info); |
4691 | 0 | phdr_size += bed->s->sizeof_ehdr; |
4692 | | /* phdr_size is compared to LMA values which are in bytes. */ |
4693 | 0 | phdr_size /= opb; |
4694 | 0 | if (info != NULL) |
4695 | 0 | maxpagesize = info->maxpagesize; |
4696 | 0 | else |
4697 | 0 | maxpagesize = bed->maxpagesize; |
4698 | 0 | if (maxpagesize == 0) |
4699 | 0 | maxpagesize = 1; |
4700 | 0 | phdr_in_segment = info != NULL && info->load_phdrs; |
4701 | 0 | if (count != 0 |
4702 | 0 | && (((sections[0]->lma & addr_mask) & (maxpagesize - 1)) |
4703 | 0 | >= (phdr_size & (maxpagesize - 1)))) |
4704 | | /* For compatibility with old scripts that may not be using |
4705 | | SIZEOF_HEADERS, add headers when it looks like space has |
4706 | | been left for them. */ |
4707 | 0 | phdr_in_segment = true; |
4708 | | |
4709 | | /* Build the mapping. */ |
4710 | 0 | mfirst = NULL; |
4711 | 0 | pm = &mfirst; |
4712 | | |
4713 | | /* If we have a .interp section, then create a PT_PHDR segment for |
4714 | | the program headers and a PT_INTERP segment for the .interp |
4715 | | section. */ |
4716 | 0 | s = bfd_get_section_by_name (abfd, ".interp"); |
4717 | 0 | if (s != NULL && (s->flags & SEC_LOAD) != 0 && s->size != 0) |
4718 | 0 | { |
4719 | 0 | amt = sizeof (struct elf_segment_map); |
4720 | 0 | m = (struct elf_segment_map *) bfd_zalloc (abfd, amt); |
4721 | 0 | if (m == NULL) |
4722 | 0 | goto error_return; |
4723 | 0 | m->next = NULL; |
4724 | 0 | m->p_type = PT_PHDR; |
4725 | 0 | m->p_flags = PF_R; |
4726 | 0 | m->p_flags_valid = 1; |
4727 | 0 | m->includes_phdrs = 1; |
4728 | 0 | phdr_in_segment = true; |
4729 | 0 | *pm = m; |
4730 | 0 | pm = &m->next; |
4731 | |
|
4732 | 0 | amt = sizeof (struct elf_segment_map); |
4733 | 0 | m = (struct elf_segment_map *) bfd_zalloc (abfd, amt); |
4734 | 0 | if (m == NULL) |
4735 | 0 | goto error_return; |
4736 | 0 | m->next = NULL; |
4737 | 0 | m->p_type = PT_INTERP; |
4738 | 0 | m->count = 1; |
4739 | 0 | m->sections[0] = s; |
4740 | |
|
4741 | 0 | *pm = m; |
4742 | 0 | pm = &m->next; |
4743 | 0 | } |
4744 | | |
4745 | | /* Look through the sections. We put sections in the same program |
4746 | | segment when the start of the second section can be placed within |
4747 | | a few bytes of the end of the first section. */ |
4748 | 0 | last_hdr = NULL; |
4749 | 0 | last_size = 0; |
4750 | 0 | hdr_index = 0; |
4751 | 0 | writable = false; |
4752 | 0 | executable = false; |
4753 | 0 | dynsec = bfd_get_section_by_name (abfd, ".dynamic"); |
4754 | 0 | if (dynsec != NULL |
4755 | 0 | && (dynsec->flags & SEC_LOAD) == 0) |
4756 | 0 | dynsec = NULL; |
4757 | |
|
4758 | 0 | if ((abfd->flags & D_PAGED) == 0) |
4759 | 0 | phdr_in_segment = false; |
4760 | | |
4761 | | /* Deal with -Ttext or something similar such that the first section |
4762 | | is not adjacent to the program headers. This is an |
4763 | | approximation, since at this point we don't know exactly how many |
4764 | | program headers we will need. */ |
4765 | 0 | if (phdr_in_segment && count > 0) |
4766 | 0 | { |
4767 | 0 | bfd_vma phdr_lma; /* Bytes. */ |
4768 | 0 | bool separate_phdr = false; |
4769 | |
|
4770 | 0 | phdr_lma = (sections[0]->lma - phdr_size) & addr_mask & -maxpagesize; |
4771 | 0 | if (info != NULL |
4772 | 0 | && info->separate_code |
4773 | 0 | && (sections[0]->flags & SEC_CODE) != 0) |
4774 | 0 | { |
4775 | | /* If data sections should be separate from code and |
4776 | | thus not executable, and the first section is |
4777 | | executable then put the file and program headers in |
4778 | | their own PT_LOAD. */ |
4779 | 0 | separate_phdr = true; |
4780 | 0 | if ((((phdr_lma + phdr_size - 1) & addr_mask & -maxpagesize) |
4781 | 0 | == (sections[0]->lma & addr_mask & -maxpagesize))) |
4782 | 0 | { |
4783 | | /* The file and program headers are currently on the |
4784 | | same page as the first section. Put them on the |
4785 | | previous page if we can. */ |
4786 | 0 | if (phdr_lma >= maxpagesize) |
4787 | 0 | phdr_lma -= maxpagesize; |
4788 | 0 | else |
4789 | 0 | separate_phdr = false; |
4790 | 0 | } |
4791 | 0 | } |
4792 | 0 | if ((sections[0]->lma & addr_mask) < phdr_lma |
4793 | 0 | || (sections[0]->lma & addr_mask) < phdr_size) |
4794 | | /* If file and program headers would be placed at the end |
4795 | | of memory then it's probably better to omit them. */ |
4796 | 0 | phdr_in_segment = false; |
4797 | 0 | else if (phdr_lma < wrap_to) |
4798 | | /* If a section wraps around to where we'll be placing |
4799 | | file and program headers, then the headers will be |
4800 | | overwritten. */ |
4801 | 0 | phdr_in_segment = false; |
4802 | 0 | else if (separate_phdr) |
4803 | 0 | { |
4804 | 0 | m = make_mapping (abfd, sections, 0, 0, phdr_in_segment); |
4805 | 0 | if (m == NULL) |
4806 | 0 | goto error_return; |
4807 | 0 | m->p_paddr = phdr_lma * opb; |
4808 | 0 | m->p_vaddr_offset |
4809 | 0 | = (sections[0]->vma - phdr_size) & addr_mask & -maxpagesize; |
4810 | 0 | m->p_paddr_valid = 1; |
4811 | 0 | *pm = m; |
4812 | 0 | pm = &m->next; |
4813 | 0 | phdr_in_segment = false; |
4814 | 0 | } |
4815 | 0 | } |
4816 | | |
4817 | 0 | for (i = 0, hdrpp = sections; i < count; i++, hdrpp++) |
4818 | 0 | { |
4819 | 0 | asection *hdr; |
4820 | 0 | bool new_segment; |
4821 | |
|
4822 | 0 | hdr = *hdrpp; |
4823 | | |
4824 | | /* See if this section and the last one will fit in the same |
4825 | | segment. */ |
4826 | |
|
4827 | 0 | if (last_hdr == NULL) |
4828 | 0 | { |
4829 | | /* If we don't have a segment yet, then we don't need a new |
4830 | | one (we build the last one after this loop). */ |
4831 | 0 | new_segment = false; |
4832 | 0 | } |
4833 | 0 | else if (last_hdr->lma - last_hdr->vma != hdr->lma - hdr->vma) |
4834 | 0 | { |
4835 | | /* If this section has a different relation between the |
4836 | | virtual address and the load address, then we need a new |
4837 | | segment. */ |
4838 | 0 | new_segment = true; |
4839 | 0 | } |
4840 | 0 | else if (hdr->lma < last_hdr->lma + last_size |
4841 | 0 | || last_hdr->lma + last_size < last_hdr->lma) |
4842 | 0 | { |
4843 | | /* If this section has a load address that makes it overlap |
4844 | | the previous section, then we need a new segment. */ |
4845 | 0 | new_segment = true; |
4846 | 0 | } |
4847 | 0 | else if ((abfd->flags & D_PAGED) != 0 |
4848 | 0 | && (((last_hdr->lma + last_size - 1) & -maxpagesize) |
4849 | 0 | == (hdr->lma & -maxpagesize))) |
4850 | 0 | { |
4851 | | /* If we are demand paged then we can't map two disk |
4852 | | pages onto the same memory page. */ |
4853 | 0 | new_segment = false; |
4854 | 0 | } |
4855 | | /* In the next test we have to be careful when last_hdr->lma is close |
4856 | | to the end of the address space. If the aligned address wraps |
4857 | | around to the start of the address space, then there are no more |
4858 | | pages left in memory and it is OK to assume that the current |
4859 | | section can be included in the current segment. */ |
4860 | 0 | else if ((BFD_ALIGN (last_hdr->lma + last_size, maxpagesize) |
4861 | 0 | + maxpagesize > last_hdr->lma) |
4862 | 0 | && (BFD_ALIGN (last_hdr->lma + last_size, maxpagesize) |
4863 | 0 | + maxpagesize <= hdr->lma)) |
4864 | 0 | { |
4865 | | /* If putting this section in this segment would force us to |
4866 | | skip a page in the segment, then we need a new segment. */ |
4867 | 0 | new_segment = true; |
4868 | 0 | } |
4869 | 0 | else if ((last_hdr->flags & (SEC_LOAD | SEC_THREAD_LOCAL)) == 0 |
4870 | 0 | && (hdr->flags & (SEC_LOAD | SEC_THREAD_LOCAL)) != 0) |
4871 | 0 | { |
4872 | | /* We don't want to put a loaded section after a |
4873 | | nonloaded (ie. bss style) section in the same segment |
4874 | | as that will force the non-loaded section to be loaded. |
4875 | | Consider .tbss sections as loaded for this purpose. */ |
4876 | 0 | new_segment = true; |
4877 | 0 | } |
4878 | 0 | else if ((abfd->flags & D_PAGED) == 0) |
4879 | 0 | { |
4880 | | /* If the file is not demand paged, which means that we |
4881 | | don't require the sections to be correctly aligned in the |
4882 | | file, then there is no other reason for a new segment. */ |
4883 | 0 | new_segment = false; |
4884 | 0 | } |
4885 | 0 | else if (info != NULL |
4886 | 0 | && info->separate_code |
4887 | 0 | && executable != ((hdr->flags & SEC_CODE) != 0)) |
4888 | 0 | { |
4889 | 0 | new_segment = true; |
4890 | 0 | } |
4891 | 0 | else if (! writable |
4892 | 0 | && (hdr->flags & SEC_READONLY) == 0) |
4893 | 0 | { |
4894 | | /* We don't want to put a writable section in a read only |
4895 | | segment. */ |
4896 | 0 | new_segment = true; |
4897 | 0 | } |
4898 | 0 | else |
4899 | 0 | { |
4900 | | /* Otherwise, we can use the same segment. */ |
4901 | 0 | new_segment = false; |
4902 | 0 | } |
4903 | | |
4904 | | /* Allow interested parties a chance to override our decision. */ |
4905 | 0 | if (last_hdr != NULL |
4906 | 0 | && info != NULL |
4907 | 0 | && info->callbacks->override_segment_assignment != NULL) |
4908 | 0 | new_segment |
4909 | 0 | = info->callbacks->override_segment_assignment (info, abfd, hdr, |
4910 | 0 | last_hdr, |
4911 | 0 | new_segment); |
4912 | |
|
4913 | 0 | if (! new_segment) |
4914 | 0 | { |
4915 | 0 | if ((hdr->flags & SEC_READONLY) == 0) |
4916 | 0 | writable = true; |
4917 | 0 | if ((hdr->flags & SEC_CODE) != 0) |
4918 | 0 | executable = true; |
4919 | 0 | last_hdr = hdr; |
4920 | | /* .tbss sections effectively have zero size. */ |
4921 | 0 | last_size = (!IS_TBSS (hdr) ? hdr->size : 0) / opb; |
4922 | 0 | continue; |
4923 | 0 | } |
4924 | | |
4925 | | /* We need a new program segment. We must create a new program |
4926 | | header holding all the sections from hdr_index until hdr. */ |
4927 | | |
4928 | 0 | m = make_mapping (abfd, sections, hdr_index, i, phdr_in_segment); |
4929 | 0 | if (m == NULL) |
4930 | 0 | goto error_return; |
4931 | | |
4932 | 0 | *pm = m; |
4933 | 0 | pm = &m->next; |
4934 | |
|
4935 | 0 | if ((hdr->flags & SEC_READONLY) == 0) |
4936 | 0 | writable = true; |
4937 | 0 | else |
4938 | 0 | writable = false; |
4939 | |
|
4940 | 0 | if ((hdr->flags & SEC_CODE) == 0) |
4941 | 0 | executable = false; |
4942 | 0 | else |
4943 | 0 | executable = true; |
4944 | |
|
4945 | 0 | last_hdr = hdr; |
4946 | | /* .tbss sections effectively have zero size. */ |
4947 | 0 | last_size = (!IS_TBSS (hdr) ? hdr->size : 0) / opb; |
4948 | 0 | hdr_index = i; |
4949 | 0 | phdr_in_segment = false; |
4950 | 0 | } |
4951 | | |
4952 | | /* Create a final PT_LOAD program segment, but not if it's just |
4953 | | for .tbss. */ |
4954 | 0 | if (last_hdr != NULL |
4955 | 0 | && (i - hdr_index != 1 |
4956 | 0 | || !IS_TBSS (last_hdr))) |
4957 | 0 | { |
4958 | 0 | m = make_mapping (abfd, sections, hdr_index, i, phdr_in_segment); |
4959 | 0 | if (m == NULL) |
4960 | 0 | goto error_return; |
4961 | | |
4962 | 0 | *pm = m; |
4963 | 0 | pm = &m->next; |
4964 | 0 | } |
4965 | | |
4966 | | /* If there is a .dynamic section, throw in a PT_DYNAMIC segment. */ |
4967 | 0 | if (dynsec != NULL) |
4968 | 0 | { |
4969 | 0 | m = _bfd_elf_make_dynamic_segment (abfd, dynsec); |
4970 | 0 | if (m == NULL) |
4971 | 0 | goto error_return; |
4972 | 0 | *pm = m; |
4973 | 0 | pm = &m->next; |
4974 | 0 | } |
4975 | | |
4976 | | /* For each batch of consecutive loadable SHT_NOTE sections, |
4977 | | add a PT_NOTE segment. We don't use bfd_get_section_by_name, |
4978 | | because if we link together nonloadable .note sections and |
4979 | | loadable .note sections, we will generate two .note sections |
4980 | | in the output file. */ |
4981 | 0 | for (s = abfd->sections; s != NULL; s = s->next) |
4982 | 0 | { |
4983 | 0 | if ((s->flags & SEC_LOAD) != 0 |
4984 | 0 | && elf_section_type (s) == SHT_NOTE) |
4985 | 0 | { |
4986 | 0 | asection *s2; |
4987 | 0 | unsigned int alignment_power = s->alignment_power; |
4988 | |
|
4989 | 0 | count = 1; |
4990 | 0 | for (s2 = s; s2->next != NULL; s2 = s2->next) |
4991 | 0 | { |
4992 | 0 | if (s2->next->alignment_power == alignment_power |
4993 | 0 | && (s2->next->flags & SEC_LOAD) != 0 |
4994 | 0 | && elf_section_type (s2->next) == SHT_NOTE |
4995 | 0 | && align_power (s2->lma + s2->size / opb, |
4996 | 0 | alignment_power) |
4997 | 0 | == s2->next->lma) |
4998 | 0 | count++; |
4999 | 0 | else |
5000 | 0 | break; |
5001 | 0 | } |
5002 | 0 | amt = sizeof (struct elf_segment_map) - sizeof (asection *); |
5003 | 0 | amt += count * sizeof (asection *); |
5004 | 0 | m = (struct elf_segment_map *) bfd_zalloc (abfd, amt); |
5005 | 0 | if (m == NULL) |
5006 | 0 | goto error_return; |
5007 | 0 | m->next = NULL; |
5008 | 0 | m->p_type = PT_NOTE; |
5009 | 0 | m->count = count; |
5010 | 0 | while (count > 1) |
5011 | 0 | { |
5012 | 0 | m->sections[m->count - count--] = s; |
5013 | 0 | BFD_ASSERT ((s->flags & SEC_THREAD_LOCAL) == 0); |
5014 | 0 | s = s->next; |
5015 | 0 | } |
5016 | 0 | m->sections[m->count - 1] = s; |
5017 | 0 | BFD_ASSERT ((s->flags & SEC_THREAD_LOCAL) == 0); |
5018 | 0 | *pm = m; |
5019 | 0 | pm = &m->next; |
5020 | 0 | } |
5021 | 0 | if (s->flags & SEC_THREAD_LOCAL) |
5022 | 0 | { |
5023 | 0 | if (! tls_count) |
5024 | 0 | first_tls = s; |
5025 | 0 | tls_count++; |
5026 | 0 | } |
5027 | 0 | if (first_mbind == NULL |
5028 | 0 | && (elf_section_flags (s) & SHF_GNU_MBIND) != 0) |
5029 | 0 | first_mbind = s; |
5030 | 0 | } |
5031 | | |
5032 | | /* If there are any SHF_TLS output sections, add PT_TLS segment. */ |
5033 | 0 | if (tls_count > 0) |
5034 | 0 | { |
5035 | 0 | amt = sizeof (struct elf_segment_map) - sizeof (asection *); |
5036 | 0 | amt += tls_count * sizeof (asection *); |
5037 | 0 | m = (struct elf_segment_map *) bfd_zalloc (abfd, amt); |
5038 | 0 | if (m == NULL) |
5039 | 0 | goto error_return; |
5040 | 0 | m->next = NULL; |
5041 | 0 | m->p_type = PT_TLS; |
5042 | 0 | m->count = tls_count; |
5043 | | /* Mandated PF_R. */ |
5044 | 0 | m->p_flags = PF_R; |
5045 | 0 | m->p_flags_valid = 1; |
5046 | 0 | s = first_tls; |
5047 | 0 | for (i = 0; i < tls_count; ++i) |
5048 | 0 | { |
5049 | 0 | if ((s->flags & SEC_THREAD_LOCAL) == 0) |
5050 | 0 | { |
5051 | 0 | _bfd_error_handler |
5052 | 0 | (_("%pB: TLS sections are not adjacent:"), abfd); |
5053 | 0 | s = first_tls; |
5054 | 0 | i = 0; |
5055 | 0 | while (i < tls_count) |
5056 | 0 | { |
5057 | 0 | if ((s->flags & SEC_THREAD_LOCAL) != 0) |
5058 | 0 | { |
5059 | 0 | _bfd_error_handler (_(" TLS: %pA"), s); |
5060 | 0 | i++; |
5061 | 0 | } |
5062 | 0 | else |
5063 | 0 | _bfd_error_handler (_(" non-TLS: %pA"), s); |
5064 | 0 | s = s->next; |
5065 | 0 | } |
5066 | 0 | bfd_set_error (bfd_error_bad_value); |
5067 | 0 | goto error_return; |
5068 | 0 | } |
5069 | 0 | m->sections[i] = s; |
5070 | 0 | s = s->next; |
5071 | 0 | } |
5072 | | |
5073 | 0 | *pm = m; |
5074 | 0 | pm = &m->next; |
5075 | 0 | } |
5076 | | |
5077 | 0 | if (first_mbind |
5078 | 0 | && (abfd->flags & D_PAGED) != 0 |
5079 | 0 | && (elf_tdata (abfd)->has_gnu_osabi & elf_gnu_osabi_mbind) != 0) |
5080 | 0 | for (s = first_mbind; s != NULL; s = s->next) |
5081 | 0 | if ((elf_section_flags (s) & SHF_GNU_MBIND) != 0 |
5082 | 0 | && elf_section_data (s)->this_hdr.sh_info <= PT_GNU_MBIND_NUM) |
5083 | 0 | { |
5084 | | /* Mandated PF_R. */ |
5085 | 0 | unsigned long p_flags = PF_R; |
5086 | 0 | if ((s->flags & SEC_READONLY) == 0) |
5087 | 0 | p_flags |= PF_W; |
5088 | 0 | if ((s->flags & SEC_CODE) != 0) |
5089 | 0 | p_flags |= PF_X; |
5090 | |
|
5091 | 0 | amt = sizeof (struct elf_segment_map) + sizeof (asection *); |
5092 | 0 | m = bfd_zalloc (abfd, amt); |
5093 | 0 | if (m == NULL) |
5094 | 0 | goto error_return; |
5095 | 0 | m->next = NULL; |
5096 | 0 | m->p_type = (PT_GNU_MBIND_LO |
5097 | 0 | + elf_section_data (s)->this_hdr.sh_info); |
5098 | 0 | m->count = 1; |
5099 | 0 | m->p_flags_valid = 1; |
5100 | 0 | m->sections[0] = s; |
5101 | 0 | m->p_flags = p_flags; |
5102 | |
|
5103 | 0 | *pm = m; |
5104 | 0 | pm = &m->next; |
5105 | 0 | } |
5106 | | |
5107 | 0 | s = bfd_get_section_by_name (abfd, |
5108 | 0 | NOTE_GNU_PROPERTY_SECTION_NAME); |
5109 | 0 | if (s != NULL && s->size != 0) |
5110 | 0 | { |
5111 | 0 | amt = sizeof (struct elf_segment_map) + sizeof (asection *); |
5112 | 0 | m = bfd_zalloc (abfd, amt); |
5113 | 0 | if (m == NULL) |
5114 | 0 | goto error_return; |
5115 | 0 | m->next = NULL; |
5116 | 0 | m->p_type = PT_GNU_PROPERTY; |
5117 | 0 | m->count = 1; |
5118 | 0 | m->p_flags_valid = 1; |
5119 | 0 | m->sections[0] = s; |
5120 | 0 | m->p_flags = PF_R; |
5121 | 0 | *pm = m; |
5122 | 0 | pm = &m->next; |
5123 | 0 | } |
5124 | | |
5125 | | /* If there is a .eh_frame_hdr section, throw in a PT_GNU_EH_FRAME |
5126 | | segment. */ |
5127 | 0 | eh_frame_hdr = elf_eh_frame_hdr (info); |
5128 | 0 | if (eh_frame_hdr != NULL |
5129 | 0 | && (eh_frame_hdr->output_section->flags & SEC_LOAD) != 0) |
5130 | 0 | { |
5131 | 0 | amt = sizeof (struct elf_segment_map); |
5132 | 0 | m = (struct elf_segment_map *) bfd_zalloc (abfd, amt); |
5133 | 0 | if (m == NULL) |
5134 | 0 | goto error_return; |
5135 | 0 | m->next = NULL; |
5136 | 0 | m->p_type = PT_GNU_EH_FRAME; |
5137 | 0 | m->count = 1; |
5138 | 0 | m->sections[0] = eh_frame_hdr->output_section; |
5139 | |
|
5140 | 0 | *pm = m; |
5141 | 0 | pm = &m->next; |
5142 | 0 | } |
5143 | | |
5144 | | /* If there is a .sframe section, throw in a PT_GNU_SFRAME |
5145 | | segment. */ |
5146 | 0 | sframe = elf_sframe (abfd); |
5147 | 0 | if (sframe != NULL |
5148 | 0 | && (sframe->output_section->flags & SEC_LOAD) != 0 |
5149 | 0 | && sframe->size != 0) |
5150 | 0 | { |
5151 | 0 | amt = sizeof (struct elf_segment_map); |
5152 | 0 | m = (struct elf_segment_map *) bfd_zalloc (abfd, amt); |
5153 | 0 | if (m == NULL) |
5154 | 0 | goto error_return; |
5155 | 0 | m->next = NULL; |
5156 | 0 | m->p_type = PT_GNU_SFRAME; |
5157 | 0 | m->count = 1; |
5158 | 0 | m->sections[0] = sframe->output_section; |
5159 | |
|
5160 | 0 | *pm = m; |
5161 | 0 | pm = &m->next; |
5162 | 0 | } |
5163 | | |
5164 | 0 | if (elf_stack_flags (abfd)) |
5165 | 0 | { |
5166 | 0 | amt = sizeof (struct elf_segment_map); |
5167 | 0 | m = (struct elf_segment_map *) bfd_zalloc (abfd, amt); |
5168 | 0 | if (m == NULL) |
5169 | 0 | goto error_return; |
5170 | 0 | m->next = NULL; |
5171 | 0 | m->p_type = PT_GNU_STACK; |
5172 | 0 | m->p_flags = elf_stack_flags (abfd); |
5173 | 0 | m->p_align = bed->stack_align; |
5174 | 0 | m->p_flags_valid = 1; |
5175 | 0 | m->p_align_valid = m->p_align != 0; |
5176 | 0 | if (info->stacksize > 0) |
5177 | 0 | { |
5178 | 0 | m->p_size = info->stacksize; |
5179 | 0 | m->p_size_valid = 1; |
5180 | 0 | } |
5181 | |
|
5182 | 0 | *pm = m; |
5183 | 0 | pm = &m->next; |
5184 | 0 | } |
5185 | | |
5186 | 0 | if (info != NULL && info->relro) |
5187 | 0 | { |
5188 | 0 | for (m = mfirst; m != NULL; m = m->next) |
5189 | 0 | { |
5190 | 0 | if (m->p_type == PT_LOAD |
5191 | 0 | && m->count != 0 |
5192 | 0 | && m->sections[0]->vma >= info->relro_start |
5193 | 0 | && m->sections[0]->vma < info->relro_end) |
5194 | 0 | { |
5195 | 0 | i = m->count; |
5196 | 0 | while (--i != (unsigned) -1) |
5197 | 0 | { |
5198 | 0 | if (m->sections[i]->size > 0 |
5199 | 0 | && (m->sections[i]->flags & SEC_LOAD) != 0 |
5200 | 0 | && (m->sections[i]->flags & SEC_HAS_CONTENTS) != 0) |
5201 | 0 | break; |
5202 | 0 | } |
5203 | |
|
5204 | 0 | if (i != (unsigned) -1) |
5205 | 0 | break; |
5206 | 0 | } |
5207 | 0 | } |
5208 | | |
5209 | | /* Make a PT_GNU_RELRO segment only when it isn't empty. */ |
5210 | 0 | if (m != NULL) |
5211 | 0 | { |
5212 | 0 | amt = sizeof (struct elf_segment_map); |
5213 | 0 | m = (struct elf_segment_map *) bfd_zalloc (abfd, amt); |
5214 | 0 | if (m == NULL) |
5215 | 0 | goto error_return; |
5216 | 0 | m->next = NULL; |
5217 | 0 | m->p_type = PT_GNU_RELRO; |
5218 | 0 | *pm = m; |
5219 | 0 | pm = &m->next; |
5220 | 0 | } |
5221 | 0 | } |
5222 | | |
5223 | 0 | free (sections); |
5224 | 0 | elf_seg_map (abfd) = mfirst; |
5225 | 0 | } |
5226 | | |
5227 | 0 | if (!elf_modify_segment_map (abfd, info, no_user_phdrs)) |
5228 | 0 | return false; |
5229 | | |
5230 | 0 | for (count = 0, m = elf_seg_map (abfd); m != NULL; m = m->next) |
5231 | 0 | ++count; |
5232 | 0 | elf_program_header_size (abfd) = count * bed->s->sizeof_phdr; |
5233 | |
|
5234 | 0 | return true; |
5235 | | |
5236 | 0 | error_return: |
5237 | 0 | free (sections); |
5238 | 0 | return false; |
5239 | 0 | } |
5240 | | |
5241 | | /* Sort sections by address. */ |
5242 | | |
5243 | | static int |
5244 | | elf_sort_sections (const void *arg1, const void *arg2) |
5245 | 0 | { |
5246 | 0 | const asection *sec1 = *(const asection **) arg1; |
5247 | 0 | const asection *sec2 = *(const asection **) arg2; |
5248 | 0 | bfd_size_type size1, size2; |
5249 | | |
5250 | | /* Sort by LMA first, since this is the address used to |
5251 | | place the section into a segment. */ |
5252 | 0 | if (sec1->lma < sec2->lma) |
5253 | 0 | return -1; |
5254 | 0 | else if (sec1->lma > sec2->lma) |
5255 | 0 | return 1; |
5256 | | |
5257 | | /* Then sort by VMA. Normally the LMA and the VMA will be |
5258 | | the same, and this will do nothing. */ |
5259 | 0 | if (sec1->vma < sec2->vma) |
5260 | 0 | return -1; |
5261 | 0 | else if (sec1->vma > sec2->vma) |
5262 | 0 | return 1; |
5263 | | |
5264 | | /* Put !SEC_LOAD sections after SEC_LOAD ones. */ |
5265 | | |
5266 | 0 | #define TOEND(x) (((x)->flags & (SEC_LOAD | SEC_THREAD_LOCAL)) == 0 \ |
5267 | 0 | && (x)->size != 0) |
5268 | | |
5269 | 0 | if (TOEND (sec1)) |
5270 | 0 | { |
5271 | 0 | if (!TOEND (sec2)) |
5272 | 0 | return 1; |
5273 | 0 | } |
5274 | 0 | else if (TOEND (sec2)) |
5275 | 0 | return -1; |
5276 | | |
5277 | 0 | #undef TOEND |
5278 | | |
5279 | | /* Sort by size, to put zero sized sections |
5280 | | before others at the same address. */ |
5281 | | |
5282 | 0 | size1 = (sec1->flags & SEC_LOAD) ? sec1->size : 0; |
5283 | 0 | size2 = (sec2->flags & SEC_LOAD) ? sec2->size : 0; |
5284 | |
|
5285 | 0 | if (size1 < size2) |
5286 | 0 | return -1; |
5287 | 0 | if (size1 > size2) |
5288 | 0 | return 1; |
5289 | | |
5290 | 0 | return sec1->target_index - sec2->target_index; |
5291 | 0 | } |
5292 | | |
5293 | | /* This qsort comparison functions sorts PT_LOAD segments first and |
5294 | | by p_paddr, for assign_file_positions_for_load_sections. */ |
5295 | | |
5296 | | static int |
5297 | | elf_sort_segments (const void *arg1, const void *arg2) |
5298 | 0 | { |
5299 | 0 | const struct elf_segment_map *m1 = *(const struct elf_segment_map **) arg1; |
5300 | 0 | const struct elf_segment_map *m2 = *(const struct elf_segment_map **) arg2; |
5301 | |
|
5302 | 0 | if (m1->p_type != m2->p_type) |
5303 | 0 | { |
5304 | 0 | if (m1->p_type == PT_NULL) |
5305 | 0 | return 1; |
5306 | 0 | if (m2->p_type == PT_NULL) |
5307 | 0 | return -1; |
5308 | 0 | return m1->p_type < m2->p_type ? -1 : 1; |
5309 | 0 | } |
5310 | 0 | if (m1->includes_filehdr != m2->includes_filehdr) |
5311 | 0 | return m1->includes_filehdr ? -1 : 1; |
5312 | 0 | if (m1->no_sort_lma != m2->no_sort_lma) |
5313 | 0 | return m1->no_sort_lma ? -1 : 1; |
5314 | 0 | if (m1->p_type == PT_LOAD && !m1->no_sort_lma) |
5315 | 0 | { |
5316 | 0 | bfd_vma lma1, lma2; /* Octets. */ |
5317 | 0 | lma1 = 0; |
5318 | 0 | if (m1->p_paddr_valid) |
5319 | 0 | lma1 = m1->p_paddr; |
5320 | 0 | else if (m1->count != 0) |
5321 | 0 | { |
5322 | 0 | unsigned int opb = bfd_octets_per_byte (m1->sections[0]->owner, |
5323 | 0 | m1->sections[0]); |
5324 | 0 | lma1 = (m1->sections[0]->lma + m1->p_vaddr_offset) * opb; |
5325 | 0 | } |
5326 | 0 | lma2 = 0; |
5327 | 0 | if (m2->p_paddr_valid) |
5328 | 0 | lma2 = m2->p_paddr; |
5329 | 0 | else if (m2->count != 0) |
5330 | 0 | { |
5331 | 0 | unsigned int opb = bfd_octets_per_byte (m2->sections[0]->owner, |
5332 | 0 | m2->sections[0]); |
5333 | 0 | lma2 = (m2->sections[0]->lma + m2->p_vaddr_offset) * opb; |
5334 | 0 | } |
5335 | 0 | if (lma1 != lma2) |
5336 | 0 | return lma1 < lma2 ? -1 : 1; |
5337 | 0 | } |
5338 | 0 | if (m1->idx != m2->idx) |
5339 | 0 | return m1->idx < m2->idx ? -1 : 1; |
5340 | 0 | return 0; |
5341 | 0 | } |
5342 | | |
5343 | | /* Ian Lance Taylor writes: |
5344 | | |
5345 | | We shouldn't be using % with a negative signed number. That's just |
5346 | | not good. We have to make sure either that the number is not |
5347 | | negative, or that the number has an unsigned type. When the types |
5348 | | are all the same size they wind up as unsigned. When file_ptr is a |
5349 | | larger signed type, the arithmetic winds up as signed long long, |
5350 | | which is wrong. |
5351 | | |
5352 | | What we're trying to say here is something like ``increase OFF by |
5353 | | the least amount that will cause it to be equal to the VMA modulo |
5354 | | the page size.'' */ |
5355 | | /* In other words, something like: |
5356 | | |
5357 | | vma_offset = m->sections[0]->vma % bed->maxpagesize; |
5358 | | off_offset = off % bed->maxpagesize; |
5359 | | if (vma_offset < off_offset) |
5360 | | adjustment = vma_offset + bed->maxpagesize - off_offset; |
5361 | | else |
5362 | | adjustment = vma_offset - off_offset; |
5363 | | |
5364 | | which can be collapsed into the expression below. */ |
5365 | | |
5366 | | static file_ptr |
5367 | | vma_page_aligned_bias (bfd_vma vma, ufile_ptr off, bfd_vma maxpagesize) |
5368 | 0 | { |
5369 | | /* PR binutils/16199: Handle an alignment of zero. */ |
5370 | 0 | if (maxpagesize == 0) |
5371 | 0 | maxpagesize = 1; |
5372 | 0 | return ((vma - off) % maxpagesize); |
5373 | 0 | } |
5374 | | |
5375 | | static void |
5376 | | print_segment_map (const struct elf_segment_map *m) |
5377 | 0 | { |
5378 | 0 | unsigned int j; |
5379 | 0 | const char *pt = get_segment_type (m->p_type); |
5380 | 0 | char buf[32]; |
5381 | |
|
5382 | 0 | if (pt == NULL) |
5383 | 0 | { |
5384 | 0 | if (m->p_type >= PT_LOPROC && m->p_type <= PT_HIPROC) |
5385 | 0 | sprintf (buf, "LOPROC+%7.7x", |
5386 | 0 | (unsigned int) (m->p_type - PT_LOPROC)); |
5387 | 0 | else if (m->p_type >= PT_LOOS && m->p_type <= PT_HIOS) |
5388 | 0 | sprintf (buf, "LOOS+%7.7x", |
5389 | 0 | (unsigned int) (m->p_type - PT_LOOS)); |
5390 | 0 | else |
5391 | 0 | snprintf (buf, sizeof (buf), "%8.8x", |
5392 | 0 | (unsigned int) m->p_type); |
5393 | 0 | pt = buf; |
5394 | 0 | } |
5395 | 0 | fflush (stdout); |
5396 | 0 | fprintf (stderr, "%s:", pt); |
5397 | 0 | for (j = 0; j < m->count; j++) |
5398 | 0 | fprintf (stderr, " %s", m->sections [j]->name); |
5399 | 0 | putc ('\n',stderr); |
5400 | 0 | fflush (stderr); |
5401 | 0 | } |
5402 | | |
5403 | | /* Assign file positions to the sections based on the mapping from |
5404 | | sections to segments. This function also sets up some fields in |
5405 | | the file header. */ |
5406 | | |
5407 | | static bool |
5408 | | assign_file_positions_for_load_sections (bfd *abfd, |
5409 | | struct bfd_link_info *link_info) |
5410 | 0 | { |
5411 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
5412 | 0 | struct elf_segment_map *m; |
5413 | 0 | struct elf_segment_map *phdr_load_seg; |
5414 | 0 | Elf_Internal_Phdr *phdrs; |
5415 | 0 | Elf_Internal_Phdr *p; |
5416 | 0 | file_ptr off; /* Octets. */ |
5417 | 0 | bfd_size_type maxpagesize; |
5418 | 0 | unsigned int alloc, actual; |
5419 | 0 | unsigned int i, j; |
5420 | 0 | struct elf_segment_map **sorted_seg_map; |
5421 | 0 | unsigned int opb = bfd_octets_per_byte (abfd, NULL); |
5422 | |
|
5423 | 0 | if (link_info == NULL |
5424 | 0 | && !_bfd_elf_map_sections_to_segments (abfd, link_info, NULL)) |
5425 | 0 | return false; |
5426 | | |
5427 | 0 | alloc = 0; |
5428 | 0 | for (m = elf_seg_map (abfd); m != NULL; m = m->next) |
5429 | 0 | m->idx = alloc++; |
5430 | |
|
5431 | 0 | if (alloc) |
5432 | 0 | { |
5433 | 0 | elf_elfheader (abfd)->e_phoff = bed->s->sizeof_ehdr; |
5434 | 0 | elf_elfheader (abfd)->e_phentsize = bed->s->sizeof_phdr; |
5435 | 0 | } |
5436 | 0 | else |
5437 | 0 | { |
5438 | | /* PR binutils/12467. */ |
5439 | 0 | elf_elfheader (abfd)->e_phoff = 0; |
5440 | 0 | elf_elfheader (abfd)->e_phentsize = 0; |
5441 | 0 | } |
5442 | |
|
5443 | 0 | elf_elfheader (abfd)->e_phnum = alloc; |
5444 | |
|
5445 | 0 | if (elf_program_header_size (abfd) == (bfd_size_type) -1) |
5446 | 0 | { |
5447 | 0 | actual = alloc; |
5448 | 0 | elf_program_header_size (abfd) = alloc * bed->s->sizeof_phdr; |
5449 | 0 | } |
5450 | 0 | else |
5451 | 0 | { |
5452 | 0 | actual = elf_program_header_size (abfd) / bed->s->sizeof_phdr; |
5453 | 0 | BFD_ASSERT (elf_program_header_size (abfd) |
5454 | 0 | == actual * bed->s->sizeof_phdr); |
5455 | 0 | BFD_ASSERT (actual >= alloc); |
5456 | 0 | } |
5457 | |
|
5458 | 0 | if (alloc == 0) |
5459 | 0 | { |
5460 | 0 | elf_next_file_pos (abfd) = bed->s->sizeof_ehdr; |
5461 | 0 | return true; |
5462 | 0 | } |
5463 | | |
5464 | | /* We're writing the size in elf_program_header_size (abfd), |
5465 | | see assign_file_positions_except_relocs, so make sure we have |
5466 | | that amount allocated, with trailing space cleared. |
5467 | | The variable alloc contains the computed need, while |
5468 | | elf_program_header_size (abfd) contains the size used for the |
5469 | | layout. |
5470 | | See ld/emultempl/elf-generic.em:gld${EMULATION_NAME}_map_segments |
5471 | | where the layout is forced to according to a larger size in the |
5472 | | last iterations for the testcase ld-elf/header. */ |
5473 | 0 | phdrs = bfd_zalloc (abfd, (actual * sizeof (*phdrs) |
5474 | 0 | + alloc * sizeof (*sorted_seg_map))); |
5475 | 0 | sorted_seg_map = (struct elf_segment_map **) (phdrs + actual); |
5476 | 0 | elf_tdata (abfd)->phdr = phdrs; |
5477 | 0 | if (phdrs == NULL) |
5478 | 0 | return false; |
5479 | | |
5480 | 0 | for (m = elf_seg_map (abfd), j = 0; m != NULL; m = m->next, j++) |
5481 | 0 | { |
5482 | 0 | sorted_seg_map[j] = m; |
5483 | | /* If elf_segment_map is not from map_sections_to_segments, the |
5484 | | sections may not be correctly ordered. NOTE: sorting should |
5485 | | not be done to the PT_NOTE section of a corefile, which may |
5486 | | contain several pseudo-sections artificially created by bfd. |
5487 | | Sorting these pseudo-sections breaks things badly. */ |
5488 | 0 | if (m->count > 1 |
5489 | 0 | && !(elf_elfheader (abfd)->e_type == ET_CORE |
5490 | 0 | && m->p_type == PT_NOTE)) |
5491 | 0 | { |
5492 | 0 | for (i = 0; i < m->count; i++) |
5493 | 0 | m->sections[i]->target_index = i; |
5494 | 0 | qsort (m->sections, (size_t) m->count, sizeof (asection *), |
5495 | 0 | elf_sort_sections); |
5496 | 0 | } |
5497 | 0 | } |
5498 | 0 | if (alloc > 1) |
5499 | 0 | qsort (sorted_seg_map, alloc, sizeof (*sorted_seg_map), |
5500 | 0 | elf_sort_segments); |
5501 | |
|
5502 | 0 | maxpagesize = 1; |
5503 | 0 | if ((abfd->flags & D_PAGED) != 0) |
5504 | 0 | { |
5505 | 0 | if (link_info != NULL) |
5506 | 0 | maxpagesize = link_info->maxpagesize; |
5507 | 0 | else |
5508 | 0 | maxpagesize = bed->maxpagesize; |
5509 | 0 | } |
5510 | | |
5511 | | /* Sections must map to file offsets past the ELF file header. */ |
5512 | 0 | off = bed->s->sizeof_ehdr; |
5513 | | /* And if one of the PT_LOAD headers doesn't include the program |
5514 | | headers then we'll be mapping program headers in the usual |
5515 | | position after the ELF file header. */ |
5516 | 0 | phdr_load_seg = NULL; |
5517 | 0 | for (j = 0; j < alloc; j++) |
5518 | 0 | { |
5519 | 0 | m = sorted_seg_map[j]; |
5520 | 0 | if (m->p_type != PT_LOAD) |
5521 | 0 | break; |
5522 | 0 | if (m->includes_phdrs) |
5523 | 0 | { |
5524 | 0 | phdr_load_seg = m; |
5525 | 0 | break; |
5526 | 0 | } |
5527 | 0 | } |
5528 | 0 | if (phdr_load_seg == NULL) |
5529 | 0 | off += actual * bed->s->sizeof_phdr; |
5530 | |
|
5531 | 0 | for (j = 0; j < alloc; j++) |
5532 | 0 | { |
5533 | 0 | asection **secpp; |
5534 | 0 | bfd_vma off_adjust; /* Octets. */ |
5535 | 0 | bool no_contents; |
5536 | 0 | bfd_size_type p_align; |
5537 | 0 | bool p_align_p; |
5538 | | |
5539 | | /* An ELF segment (described by Elf_Internal_Phdr) may contain a |
5540 | | number of sections with contents contributing to both p_filesz |
5541 | | and p_memsz, followed by a number of sections with no contents |
5542 | | that just contribute to p_memsz. In this loop, OFF tracks next |
5543 | | available file offset for PT_LOAD and PT_NOTE segments. */ |
5544 | 0 | m = sorted_seg_map[j]; |
5545 | 0 | p = phdrs + m->idx; |
5546 | 0 | p->p_type = m->p_type; |
5547 | 0 | p->p_flags = m->p_flags; |
5548 | 0 | p_align = bed->p_align; |
5549 | 0 | p_align_p = false; |
5550 | |
|
5551 | 0 | if (m->count == 0) |
5552 | 0 | p->p_vaddr = m->p_vaddr_offset * opb; |
5553 | 0 | else |
5554 | 0 | p->p_vaddr = (m->sections[0]->vma + m->p_vaddr_offset) * opb; |
5555 | |
|
5556 | 0 | if (m->p_paddr_valid) |
5557 | 0 | p->p_paddr = m->p_paddr; |
5558 | 0 | else if (m->count == 0) |
5559 | 0 | p->p_paddr = 0; |
5560 | 0 | else |
5561 | 0 | p->p_paddr = (m->sections[0]->lma + m->p_vaddr_offset) * opb; |
5562 | |
|
5563 | 0 | if (p->p_type == PT_LOAD |
5564 | 0 | && (abfd->flags & D_PAGED) != 0) |
5565 | 0 | { |
5566 | | /* p_align in demand paged PT_LOAD segments effectively stores |
5567 | | the maximum page size. When copying an executable with |
5568 | | objcopy, we set m->p_align from the input file. Use this |
5569 | | value for maxpagesize rather than bed->maxpagesize, which |
5570 | | may be different. Note that we use maxpagesize for PT_TLS |
5571 | | segment alignment later in this function, so we are relying |
5572 | | on at least one PT_LOAD segment appearing before a PT_TLS |
5573 | | segment. */ |
5574 | 0 | if (m->p_align_valid) |
5575 | 0 | maxpagesize = m->p_align; |
5576 | 0 | else if (p_align != 0 |
5577 | 0 | && (link_info == NULL |
5578 | 0 | || !link_info->maxpagesize_is_set)) |
5579 | | /* Set p_align to the default p_align value while laying |
5580 | | out segments aligning to the maximum page size or the |
5581 | | largest section alignment. The run-time loader can |
5582 | | align segments to the default p_align value or the |
5583 | | maximum page size, depending on system page size. */ |
5584 | 0 | p_align_p = true; |
5585 | |
|
5586 | 0 | p->p_align = maxpagesize; |
5587 | 0 | } |
5588 | 0 | else if (m->p_align_valid) |
5589 | 0 | p->p_align = m->p_align; |
5590 | 0 | else if (m->count == 0) |
5591 | 0 | p->p_align = 1 << bed->s->log_file_align; |
5592 | |
|
5593 | 0 | if (m == phdr_load_seg) |
5594 | 0 | { |
5595 | 0 | if (!m->includes_filehdr) |
5596 | 0 | p->p_offset = off; |
5597 | 0 | off += actual * bed->s->sizeof_phdr; |
5598 | 0 | } |
5599 | |
|
5600 | 0 | no_contents = false; |
5601 | 0 | off_adjust = 0; |
5602 | 0 | if (p->p_type == PT_LOAD |
5603 | 0 | && m->count > 0) |
5604 | 0 | { |
5605 | 0 | bfd_size_type align; /* Bytes. */ |
5606 | 0 | unsigned int align_power = 0; |
5607 | |
|
5608 | 0 | if (m->p_align_valid) |
5609 | 0 | align = p->p_align; |
5610 | 0 | else |
5611 | 0 | { |
5612 | 0 | for (i = 0, secpp = m->sections; i < m->count; i++, secpp++) |
5613 | 0 | { |
5614 | 0 | unsigned int secalign; |
5615 | |
|
5616 | 0 | secalign = bfd_section_alignment (*secpp); |
5617 | 0 | if (secalign > align_power) |
5618 | 0 | align_power = secalign; |
5619 | 0 | } |
5620 | 0 | align = (bfd_size_type) 1 << align_power; |
5621 | 0 | if (align < maxpagesize) |
5622 | 0 | { |
5623 | | /* If a section requires alignment higher than the |
5624 | | default p_align value, don't set p_align to the |
5625 | | default p_align value. */ |
5626 | 0 | if (align > p_align) |
5627 | 0 | p_align_p = false; |
5628 | 0 | align = maxpagesize; |
5629 | 0 | } |
5630 | 0 | else |
5631 | 0 | { |
5632 | | /* If a section requires alignment higher than the |
5633 | | maximum page size, set p_align to the section |
5634 | | alignment. */ |
5635 | 0 | p_align_p = true; |
5636 | 0 | p_align = align; |
5637 | 0 | } |
5638 | 0 | } |
5639 | |
|
5640 | 0 | for (i = 0; i < m->count; i++) |
5641 | 0 | if ((m->sections[i]->flags & (SEC_LOAD | SEC_HAS_CONTENTS)) == 0) |
5642 | | /* If we aren't making room for this section, then |
5643 | | it must be SHT_NOBITS regardless of what we've |
5644 | | set via struct bfd_elf_special_section. */ |
5645 | 0 | elf_section_type (m->sections[i]) = SHT_NOBITS; |
5646 | | |
5647 | | /* Find out whether this segment contains any loadable |
5648 | | sections. */ |
5649 | 0 | no_contents = true; |
5650 | 0 | for (i = 0; i < m->count; i++) |
5651 | 0 | if (elf_section_type (m->sections[i]) != SHT_NOBITS) |
5652 | 0 | { |
5653 | 0 | no_contents = false; |
5654 | 0 | break; |
5655 | 0 | } |
5656 | |
|
5657 | 0 | off_adjust = vma_page_aligned_bias (p->p_vaddr, off, align * opb); |
5658 | | |
5659 | | /* Broken hardware and/or kernel require that files do not |
5660 | | map the same page with different permissions on some hppa |
5661 | | processors. */ |
5662 | 0 | if (j != 0 |
5663 | 0 | && (abfd->flags & D_PAGED) != 0 |
5664 | 0 | && bed->no_page_alias |
5665 | 0 | && (off & (maxpagesize - 1)) != 0 |
5666 | 0 | && ((off & -maxpagesize) |
5667 | 0 | == ((off + off_adjust) & -maxpagesize))) |
5668 | 0 | off_adjust += maxpagesize; |
5669 | 0 | off += off_adjust; |
5670 | 0 | if (no_contents) |
5671 | 0 | { |
5672 | | /* We shouldn't need to align the segment on disk since |
5673 | | the segment doesn't need file space, but the gABI |
5674 | | arguably requires the alignment and glibc ld.so |
5675 | | checks it. So to comply with the alignment |
5676 | | requirement but not waste file space, we adjust |
5677 | | p_offset for just this segment. (OFF_ADJUST is |
5678 | | subtracted from OFF later.) This may put p_offset |
5679 | | past the end of file, but that shouldn't matter. */ |
5680 | 0 | } |
5681 | 0 | else |
5682 | 0 | off_adjust = 0; |
5683 | 0 | } |
5684 | | /* Make sure the .dynamic section is the first section in the |
5685 | | PT_DYNAMIC segment. */ |
5686 | 0 | else if (p->p_type == PT_DYNAMIC |
5687 | 0 | && m->count > 1 |
5688 | 0 | && strcmp (m->sections[0]->name, ".dynamic") != 0) |
5689 | 0 | { |
5690 | 0 | _bfd_error_handler |
5691 | 0 | (_("%pB: The first section in the PT_DYNAMIC segment" |
5692 | 0 | " is not the .dynamic section"), |
5693 | 0 | abfd); |
5694 | 0 | bfd_set_error (bfd_error_bad_value); |
5695 | 0 | return false; |
5696 | 0 | } |
5697 | | /* Set the note section type to SHT_NOTE. */ |
5698 | 0 | else if (p->p_type == PT_NOTE) |
5699 | 0 | for (i = 0; i < m->count; i++) |
5700 | 0 | elf_section_type (m->sections[i]) = SHT_NOTE; |
5701 | | |
5702 | 0 | if (m->includes_filehdr) |
5703 | 0 | { |
5704 | 0 | if (!m->p_flags_valid) |
5705 | 0 | p->p_flags |= PF_R; |
5706 | 0 | p->p_filesz = bed->s->sizeof_ehdr; |
5707 | 0 | p->p_memsz = bed->s->sizeof_ehdr; |
5708 | 0 | if (p->p_type == PT_LOAD) |
5709 | 0 | { |
5710 | 0 | if (m->count > 0) |
5711 | 0 | { |
5712 | 0 | if (p->p_vaddr < (bfd_vma) off |
5713 | 0 | || (!m->p_paddr_valid |
5714 | 0 | && p->p_paddr < (bfd_vma) off)) |
5715 | 0 | { |
5716 | 0 | _bfd_error_handler |
5717 | 0 | (_("%pB: not enough room for program headers," |
5718 | 0 | " try linking with -N"), |
5719 | 0 | abfd); |
5720 | 0 | bfd_set_error (bfd_error_bad_value); |
5721 | 0 | return false; |
5722 | 0 | } |
5723 | 0 | p->p_vaddr -= off; |
5724 | 0 | if (!m->p_paddr_valid) |
5725 | 0 | p->p_paddr -= off; |
5726 | 0 | } |
5727 | 0 | } |
5728 | 0 | else if (sorted_seg_map[0]->includes_filehdr) |
5729 | 0 | { |
5730 | 0 | Elf_Internal_Phdr *filehdr = phdrs + sorted_seg_map[0]->idx; |
5731 | 0 | p->p_vaddr = filehdr->p_vaddr; |
5732 | 0 | if (!m->p_paddr_valid) |
5733 | 0 | p->p_paddr = filehdr->p_paddr; |
5734 | 0 | } |
5735 | 0 | } |
5736 | | |
5737 | 0 | if (m->includes_phdrs) |
5738 | 0 | { |
5739 | 0 | if (!m->p_flags_valid) |
5740 | 0 | p->p_flags |= PF_R; |
5741 | 0 | p->p_filesz += actual * bed->s->sizeof_phdr; |
5742 | 0 | p->p_memsz += actual * bed->s->sizeof_phdr; |
5743 | 0 | if (!m->includes_filehdr) |
5744 | 0 | { |
5745 | 0 | if (p->p_type == PT_LOAD) |
5746 | 0 | { |
5747 | 0 | elf_elfheader (abfd)->e_phoff = p->p_offset; |
5748 | 0 | if (m->count > 0) |
5749 | 0 | { |
5750 | 0 | p->p_vaddr -= off - p->p_offset; |
5751 | 0 | if (!m->p_paddr_valid) |
5752 | 0 | p->p_paddr -= off - p->p_offset; |
5753 | 0 | } |
5754 | 0 | } |
5755 | 0 | else if (phdr_load_seg != NULL) |
5756 | 0 | { |
5757 | 0 | Elf_Internal_Phdr *phdr = phdrs + phdr_load_seg->idx; |
5758 | 0 | bfd_vma phdr_off = 0; /* Octets. */ |
5759 | 0 | if (phdr_load_seg->includes_filehdr) |
5760 | 0 | phdr_off = bed->s->sizeof_ehdr; |
5761 | 0 | p->p_vaddr = phdr->p_vaddr + phdr_off; |
5762 | 0 | if (!m->p_paddr_valid) |
5763 | 0 | p->p_paddr = phdr->p_paddr + phdr_off; |
5764 | 0 | p->p_offset = phdr->p_offset + phdr_off; |
5765 | 0 | } |
5766 | 0 | else |
5767 | 0 | p->p_offset = bed->s->sizeof_ehdr; |
5768 | 0 | } |
5769 | 0 | } |
5770 | |
|
5771 | 0 | if (p->p_type == PT_LOAD |
5772 | 0 | || (p->p_type == PT_NOTE && bfd_get_format (abfd) == bfd_core)) |
5773 | 0 | { |
5774 | 0 | if (!m->includes_filehdr && !m->includes_phdrs) |
5775 | 0 | { |
5776 | 0 | p->p_offset = off; |
5777 | 0 | if (no_contents) |
5778 | 0 | { |
5779 | | /* Put meaningless p_offset for PT_LOAD segments |
5780 | | without file contents somewhere within the first |
5781 | | page, in an attempt to not point past EOF. */ |
5782 | 0 | bfd_size_type align = maxpagesize; |
5783 | 0 | if (align < p->p_align) |
5784 | 0 | align = p->p_align; |
5785 | 0 | if (align < 1) |
5786 | 0 | align = 1; |
5787 | 0 | p->p_offset = off % align; |
5788 | 0 | } |
5789 | 0 | } |
5790 | 0 | else |
5791 | 0 | { |
5792 | 0 | file_ptr adjust; /* Octets. */ |
5793 | |
|
5794 | 0 | adjust = off - (p->p_offset + p->p_filesz); |
5795 | 0 | if (!no_contents) |
5796 | 0 | p->p_filesz += adjust; |
5797 | 0 | p->p_memsz += adjust; |
5798 | 0 | } |
5799 | 0 | } |
5800 | | |
5801 | | /* Set up p_filesz, p_memsz, p_align and p_flags from the section |
5802 | | maps. Set filepos for sections in PT_LOAD segments, and in |
5803 | | core files, for sections in PT_NOTE segments. |
5804 | | assign_file_positions_for_non_load_sections will set filepos |
5805 | | for other sections and update p_filesz for other segments. */ |
5806 | 0 | for (i = 0, secpp = m->sections; i < m->count; i++, secpp++) |
5807 | 0 | { |
5808 | 0 | asection *sec; |
5809 | 0 | bfd_size_type align; |
5810 | 0 | Elf_Internal_Shdr *this_hdr; |
5811 | |
|
5812 | 0 | sec = *secpp; |
5813 | 0 | this_hdr = &elf_section_data (sec)->this_hdr; |
5814 | 0 | align = (bfd_size_type) 1 << bfd_section_alignment (sec); |
5815 | |
|
5816 | 0 | if ((p->p_type == PT_LOAD |
5817 | 0 | || p->p_type == PT_TLS) |
5818 | 0 | && (this_hdr->sh_type != SHT_NOBITS |
5819 | 0 | || ((this_hdr->sh_flags & SHF_ALLOC) != 0 |
5820 | 0 | && ((this_hdr->sh_flags & SHF_TLS) == 0 |
5821 | 0 | || p->p_type == PT_TLS)))) |
5822 | 0 | { |
5823 | 0 | bfd_vma p_start = p->p_paddr; /* Octets. */ |
5824 | 0 | bfd_vma p_end = p_start + p->p_memsz; /* Octets. */ |
5825 | 0 | bfd_vma s_start = sec->lma * opb; /* Octets. */ |
5826 | 0 | bfd_vma adjust = s_start - p_end; /* Octets. */ |
5827 | |
|
5828 | 0 | if (adjust != 0 |
5829 | 0 | && (s_start < p_end |
5830 | 0 | || p_end < p_start)) |
5831 | 0 | { |
5832 | 0 | _bfd_error_handler |
5833 | | /* xgettext:c-format */ |
5834 | 0 | (_("%pB: section %pA lma %#" PRIx64 |
5835 | 0 | " adjusted to %#" PRIx64), |
5836 | 0 | abfd, sec, (uint64_t) s_start / opb, |
5837 | 0 | (uint64_t) p_end / opb); |
5838 | 0 | adjust = 0; |
5839 | 0 | sec->lma = p_end / opb; |
5840 | 0 | } |
5841 | 0 | p->p_memsz += adjust; |
5842 | |
|
5843 | 0 | if (p->p_type == PT_LOAD) |
5844 | 0 | { |
5845 | 0 | if (this_hdr->sh_type != SHT_NOBITS) |
5846 | 0 | { |
5847 | 0 | off_adjust = 0; |
5848 | 0 | if (p->p_filesz + adjust < p->p_memsz) |
5849 | 0 | { |
5850 | | /* We have a PROGBITS section following NOBITS ones. |
5851 | | Allocate file space for the NOBITS section(s). |
5852 | | We don't need to write out the zeros, posix |
5853 | | fseek past the end of data already written |
5854 | | followed by a write at that location is |
5855 | | guaranteed to result in zeros being read |
5856 | | from the gap. */ |
5857 | 0 | adjust = p->p_memsz - p->p_filesz; |
5858 | 0 | } |
5859 | 0 | } |
5860 | | /* We only adjust sh_offset in SHT_NOBITS sections |
5861 | | as would seem proper for their address when the |
5862 | | section is first in the segment. sh_offset |
5863 | | doesn't really have any significance for |
5864 | | SHT_NOBITS anyway, apart from a notional position |
5865 | | relative to other sections. Historically we |
5866 | | didn't bother with adjusting sh_offset and some |
5867 | | programs depend on it not being adjusted. See |
5868 | | pr12921 and pr25662. */ |
5869 | 0 | if (this_hdr->sh_type != SHT_NOBITS || i == 0) |
5870 | 0 | { |
5871 | 0 | off += adjust; |
5872 | 0 | if (this_hdr->sh_type == SHT_NOBITS) |
5873 | 0 | off_adjust += adjust; |
5874 | 0 | } |
5875 | 0 | } |
5876 | 0 | if (this_hdr->sh_type != SHT_NOBITS) |
5877 | 0 | p->p_filesz += adjust; |
5878 | 0 | } |
5879 | |
|
5880 | 0 | if (p->p_type == PT_NOTE && bfd_get_format (abfd) == bfd_core) |
5881 | 0 | { |
5882 | | /* The section at i == 0 is the one that actually contains |
5883 | | everything. */ |
5884 | 0 | if (i == 0) |
5885 | 0 | { |
5886 | 0 | this_hdr->sh_offset = sec->filepos = off; |
5887 | 0 | off += this_hdr->sh_size; |
5888 | 0 | p->p_filesz = this_hdr->sh_size; |
5889 | 0 | p->p_memsz = 0; |
5890 | 0 | p->p_align = 1; |
5891 | 0 | } |
5892 | 0 | else |
5893 | 0 | { |
5894 | | /* The rest are fake sections that shouldn't be written. */ |
5895 | 0 | sec->filepos = 0; |
5896 | 0 | sec->size = 0; |
5897 | 0 | sec->flags = 0; |
5898 | 0 | continue; |
5899 | 0 | } |
5900 | 0 | } |
5901 | 0 | else |
5902 | 0 | { |
5903 | 0 | if (p->p_type == PT_LOAD) |
5904 | 0 | { |
5905 | 0 | this_hdr->sh_offset = sec->filepos = off; |
5906 | 0 | if (this_hdr->sh_type != SHT_NOBITS) |
5907 | 0 | off += this_hdr->sh_size; |
5908 | 0 | } |
5909 | 0 | else if (this_hdr->sh_type == SHT_NOBITS |
5910 | 0 | && (this_hdr->sh_flags & SHF_TLS) != 0 |
5911 | 0 | && this_hdr->sh_offset == 0) |
5912 | 0 | { |
5913 | | /* This is a .tbss section that didn't get a PT_LOAD. |
5914 | | (See _bfd_elf_map_sections_to_segments "Create a |
5915 | | final PT_LOAD".) Set sh_offset to the value it |
5916 | | would have if we had created a zero p_filesz and |
5917 | | p_memsz PT_LOAD header for the section. This |
5918 | | also makes the PT_TLS header have the same |
5919 | | p_offset value. */ |
5920 | 0 | bfd_vma adjust = vma_page_aligned_bias (this_hdr->sh_addr, |
5921 | 0 | off, align); |
5922 | 0 | this_hdr->sh_offset = sec->filepos = off + adjust; |
5923 | 0 | } |
5924 | |
|
5925 | 0 | if (this_hdr->sh_type != SHT_NOBITS) |
5926 | 0 | { |
5927 | 0 | p->p_filesz += this_hdr->sh_size; |
5928 | | /* A load section without SHF_ALLOC is something like |
5929 | | a note section in a PT_NOTE segment. These take |
5930 | | file space but are not loaded into memory. */ |
5931 | 0 | if ((this_hdr->sh_flags & SHF_ALLOC) != 0) |
5932 | 0 | p->p_memsz += this_hdr->sh_size; |
5933 | 0 | } |
5934 | 0 | else if ((this_hdr->sh_flags & SHF_ALLOC) != 0) |
5935 | 0 | { |
5936 | 0 | if (p->p_type == PT_TLS) |
5937 | 0 | p->p_memsz += this_hdr->sh_size; |
5938 | | |
5939 | | /* .tbss is special. It doesn't contribute to p_memsz of |
5940 | | normal segments. */ |
5941 | 0 | else if ((this_hdr->sh_flags & SHF_TLS) == 0) |
5942 | 0 | p->p_memsz += this_hdr->sh_size; |
5943 | 0 | } |
5944 | |
|
5945 | 0 | if (align > p->p_align |
5946 | 0 | && !m->p_align_valid |
5947 | 0 | && (p->p_type != PT_LOAD |
5948 | 0 | || (abfd->flags & D_PAGED) == 0)) |
5949 | 0 | p->p_align = align; |
5950 | 0 | } |
5951 | | |
5952 | 0 | if (!m->p_flags_valid) |
5953 | 0 | { |
5954 | 0 | p->p_flags |= PF_R; |
5955 | 0 | if ((this_hdr->sh_flags & SHF_EXECINSTR) != 0) |
5956 | 0 | p->p_flags |= PF_X; |
5957 | 0 | if ((this_hdr->sh_flags & SHF_WRITE) != 0) |
5958 | 0 | p->p_flags |= PF_W; |
5959 | 0 | } |
5960 | 0 | } |
5961 | |
|
5962 | 0 | off -= off_adjust; |
5963 | | |
5964 | | /* PR ld/20815 - Check that the program header segment, if |
5965 | | present, will be loaded into memory. */ |
5966 | 0 | if (p->p_type == PT_PHDR |
5967 | 0 | && phdr_load_seg == NULL |
5968 | 0 | && !(bed->elf_backend_allow_non_load_phdr != NULL |
5969 | 0 | && bed->elf_backend_allow_non_load_phdr (abfd, phdrs, alloc))) |
5970 | 0 | { |
5971 | | /* The fix for this error is usually to edit the linker script being |
5972 | | used and set up the program headers manually. Either that or |
5973 | | leave room for the headers at the start of the SECTIONS. */ |
5974 | 0 | _bfd_error_handler (_("%pB: error: PHDR segment not covered" |
5975 | 0 | " by LOAD segment"), |
5976 | 0 | abfd); |
5977 | 0 | if (link_info == NULL) |
5978 | 0 | return false; |
5979 | | /* Arrange for the linker to exit with an error, deleting |
5980 | | the output file unless --noinhibit-exec is given. */ |
5981 | 0 | link_info->callbacks->info ("%X"); |
5982 | 0 | } |
5983 | | |
5984 | | /* Check that all sections are in a PT_LOAD segment. |
5985 | | Don't check funky gdb generated core files. */ |
5986 | 0 | if (p->p_type == PT_LOAD && bfd_get_format (abfd) != bfd_core) |
5987 | 0 | { |
5988 | 0 | bool check_vma = true; |
5989 | |
|
5990 | 0 | for (i = 1; i < m->count; i++) |
5991 | 0 | if (m->sections[i]->vma == m->sections[i - 1]->vma |
5992 | 0 | && ELF_SECTION_SIZE (&(elf_section_data (m->sections[i]) |
5993 | 0 | ->this_hdr), p) != 0 |
5994 | 0 | && ELF_SECTION_SIZE (&(elf_section_data (m->sections[i - 1]) |
5995 | 0 | ->this_hdr), p) != 0) |
5996 | 0 | { |
5997 | | /* Looks like we have overlays packed into the segment. */ |
5998 | 0 | check_vma = false; |
5999 | 0 | break; |
6000 | 0 | } |
6001 | |
|
6002 | 0 | for (i = 0; i < m->count; i++) |
6003 | 0 | { |
6004 | 0 | Elf_Internal_Shdr *this_hdr; |
6005 | 0 | asection *sec; |
6006 | |
|
6007 | 0 | sec = m->sections[i]; |
6008 | 0 | this_hdr = &(elf_section_data(sec)->this_hdr); |
6009 | 0 | if (!ELF_SECTION_IN_SEGMENT_1 (this_hdr, p, check_vma, 0) |
6010 | 0 | && !ELF_TBSS_SPECIAL (this_hdr, p)) |
6011 | 0 | { |
6012 | 0 | _bfd_error_handler |
6013 | | /* xgettext:c-format */ |
6014 | 0 | (_("%pB: section `%pA' can't be allocated in segment %d"), |
6015 | 0 | abfd, sec, j); |
6016 | 0 | print_segment_map (m); |
6017 | 0 | } |
6018 | 0 | } |
6019 | |
|
6020 | 0 | if (p_align_p) |
6021 | 0 | p->p_align = p_align; |
6022 | 0 | } |
6023 | 0 | } |
6024 | | |
6025 | 0 | elf_next_file_pos (abfd) = off; |
6026 | |
|
6027 | 0 | if (link_info != NULL |
6028 | 0 | && phdr_load_seg != NULL |
6029 | 0 | && phdr_load_seg->includes_filehdr) |
6030 | 0 | { |
6031 | | /* There is a segment that contains both the file headers and the |
6032 | | program headers, so provide a symbol __ehdr_start pointing there. |
6033 | | A program can use this to examine itself robustly. */ |
6034 | |
|
6035 | 0 | struct elf_link_hash_entry *hash |
6036 | 0 | = elf_link_hash_lookup (elf_hash_table (link_info), "__ehdr_start", |
6037 | 0 | false, false, true); |
6038 | | /* If the symbol was referenced and not defined, define it. */ |
6039 | 0 | if (hash != NULL |
6040 | 0 | && (hash->root.type == bfd_link_hash_new |
6041 | 0 | || hash->root.type == bfd_link_hash_undefined |
6042 | 0 | || hash->root.type == bfd_link_hash_undefweak |
6043 | 0 | || hash->root.type == bfd_link_hash_common)) |
6044 | 0 | { |
6045 | 0 | asection *s = NULL; |
6046 | 0 | bfd_vma filehdr_vaddr = phdrs[phdr_load_seg->idx].p_vaddr / opb; |
6047 | |
|
6048 | 0 | if (phdr_load_seg->count != 0) |
6049 | | /* The segment contains sections, so use the first one. */ |
6050 | 0 | s = phdr_load_seg->sections[0]; |
6051 | 0 | else |
6052 | | /* Use the first (i.e. lowest-addressed) section in any segment. */ |
6053 | 0 | for (m = elf_seg_map (abfd); m != NULL; m = m->next) |
6054 | 0 | if (m->p_type == PT_LOAD && m->count != 0) |
6055 | 0 | { |
6056 | 0 | s = m->sections[0]; |
6057 | 0 | break; |
6058 | 0 | } |
6059 | |
|
6060 | 0 | if (s != NULL) |
6061 | 0 | { |
6062 | 0 | hash->root.u.def.value = filehdr_vaddr - s->vma; |
6063 | 0 | hash->root.u.def.section = s; |
6064 | 0 | } |
6065 | 0 | else |
6066 | 0 | { |
6067 | 0 | hash->root.u.def.value = filehdr_vaddr; |
6068 | 0 | hash->root.u.def.section = bfd_abs_section_ptr; |
6069 | 0 | } |
6070 | |
|
6071 | 0 | hash->root.type = bfd_link_hash_defined; |
6072 | 0 | hash->def_regular = 1; |
6073 | 0 | hash->non_elf = 0; |
6074 | 0 | } |
6075 | 0 | } |
6076 | |
|
6077 | 0 | return true; |
6078 | 0 | } |
6079 | | |
6080 | | /* Determine if a bfd is a debuginfo file. Unfortunately there |
6081 | | is no defined method for detecting such files, so we have to |
6082 | | use heuristics instead. */ |
6083 | | |
6084 | | bool |
6085 | | is_debuginfo_file (bfd *abfd) |
6086 | 0 | { |
6087 | 0 | if (abfd == NULL || bfd_get_flavour (abfd) != bfd_target_elf_flavour) |
6088 | 0 | return false; |
6089 | | |
6090 | 0 | Elf_Internal_Shdr **start_headers = elf_elfsections (abfd); |
6091 | 0 | Elf_Internal_Shdr **end_headers = start_headers + elf_numsections (abfd); |
6092 | 0 | Elf_Internal_Shdr **headerp; |
6093 | |
|
6094 | 0 | for (headerp = start_headers; headerp < end_headers; headerp ++) |
6095 | 0 | { |
6096 | 0 | Elf_Internal_Shdr *header = * headerp; |
6097 | | |
6098 | | /* Debuginfo files do not have any allocated SHT_PROGBITS sections. |
6099 | | The only allocated sections are SHT_NOBITS or SHT_NOTES. */ |
6100 | 0 | if ((header->sh_flags & SHF_ALLOC) == SHF_ALLOC |
6101 | 0 | && header->sh_type != SHT_NOBITS |
6102 | 0 | && header->sh_type != SHT_NOTE) |
6103 | 0 | return false; |
6104 | 0 | } |
6105 | | |
6106 | 0 | return true; |
6107 | 0 | } |
6108 | | |
6109 | | /* Assign file positions for other sections, except for compressed debug |
6110 | | and sections assigned in _bfd_elf_assign_file_positions_for_non_load. */ |
6111 | | |
6112 | | static bool |
6113 | | assign_file_positions_for_non_load_sections (bfd *abfd, |
6114 | | struct bfd_link_info *link_info) |
6115 | 0 | { |
6116 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
6117 | 0 | Elf_Internal_Shdr **i_shdrpp; |
6118 | 0 | Elf_Internal_Shdr **hdrpp, **end_hdrpp; |
6119 | 0 | Elf_Internal_Phdr *phdrs; |
6120 | 0 | Elf_Internal_Phdr *p; |
6121 | 0 | struct elf_segment_map *m; |
6122 | 0 | file_ptr off; |
6123 | 0 | unsigned int opb = bfd_octets_per_byte (abfd, NULL); |
6124 | 0 | bfd_vma maxpagesize; |
6125 | |
|
6126 | 0 | if (link_info != NULL) |
6127 | 0 | maxpagesize = link_info->maxpagesize; |
6128 | 0 | else |
6129 | 0 | maxpagesize = bed->maxpagesize; |
6130 | 0 | i_shdrpp = elf_elfsections (abfd); |
6131 | 0 | end_hdrpp = i_shdrpp + elf_numsections (abfd); |
6132 | 0 | off = elf_next_file_pos (abfd); |
6133 | 0 | for (hdrpp = i_shdrpp + 1; hdrpp < end_hdrpp; hdrpp++) |
6134 | 0 | { |
6135 | 0 | Elf_Internal_Shdr *hdr; |
6136 | 0 | bfd_vma align; |
6137 | |
|
6138 | 0 | hdr = *hdrpp; |
6139 | 0 | if (hdr->bfd_section != NULL |
6140 | 0 | && (hdr->bfd_section->filepos != 0 |
6141 | 0 | || (hdr->sh_type == SHT_NOBITS |
6142 | 0 | && hdr->contents == NULL))) |
6143 | 0 | BFD_ASSERT (hdr->sh_offset == hdr->bfd_section->filepos); |
6144 | 0 | else if ((hdr->sh_flags & SHF_ALLOC) != 0) |
6145 | 0 | { |
6146 | 0 | if (hdr->sh_size != 0 |
6147 | | /* PR 24717 - debuginfo files are known to be not strictly |
6148 | | compliant with the ELF standard. In particular they often |
6149 | | have .note.gnu.property sections that are outside of any |
6150 | | loadable segment. This is not a problem for such files, |
6151 | | so do not warn about them. */ |
6152 | 0 | && ! is_debuginfo_file (abfd)) |
6153 | 0 | _bfd_error_handler |
6154 | | /* xgettext:c-format */ |
6155 | 0 | (_("%pB: warning: allocated section `%s' not in segment"), |
6156 | 0 | abfd, |
6157 | 0 | (hdr->bfd_section == NULL |
6158 | 0 | ? "*unknown*" |
6159 | 0 | : hdr->bfd_section->name)); |
6160 | | /* We don't need to page align empty sections. */ |
6161 | 0 | if ((abfd->flags & D_PAGED) != 0 && hdr->sh_size != 0) |
6162 | 0 | align = maxpagesize; |
6163 | 0 | else |
6164 | 0 | align = hdr->sh_addralign & -hdr->sh_addralign; |
6165 | 0 | off += vma_page_aligned_bias (hdr->sh_addr, off, align); |
6166 | 0 | off = _bfd_elf_assign_file_position_for_section (hdr, off, |
6167 | 0 | false); |
6168 | 0 | } |
6169 | 0 | else if (((hdr->sh_type == SHT_REL || hdr->sh_type == SHT_RELA) |
6170 | 0 | && hdr->bfd_section == NULL) |
6171 | | /* We don't know the offset of these sections yet: |
6172 | | their size has not been decided. */ |
6173 | 0 | || (abfd->is_linker_output |
6174 | 0 | && hdr->bfd_section != NULL |
6175 | 0 | && (hdr->sh_name == -1u |
6176 | 0 | || bfd_section_is_ctf (hdr->bfd_section))) |
6177 | 0 | || hdr == i_shdrpp[elf_onesymtab (abfd)] |
6178 | 0 | || (elf_symtab_shndx_list (abfd) != NULL |
6179 | 0 | && hdr == i_shdrpp[elf_symtab_shndx_list (abfd)->ndx]) |
6180 | 0 | || hdr == i_shdrpp[elf_strtab_sec (abfd)] |
6181 | 0 | || hdr == i_shdrpp[elf_shstrtab_sec (abfd)]) |
6182 | 0 | hdr->sh_offset = -1; |
6183 | 0 | else |
6184 | 0 | off = _bfd_elf_assign_file_position_for_section (hdr, off, true); |
6185 | 0 | } |
6186 | 0 | elf_next_file_pos (abfd) = off; |
6187 | | |
6188 | | /* Now that we have set the section file positions, we can set up |
6189 | | the file positions for the non PT_LOAD segments. */ |
6190 | 0 | phdrs = elf_tdata (abfd)->phdr; |
6191 | 0 | for (m = elf_seg_map (abfd), p = phdrs; m != NULL; m = m->next, p++) |
6192 | 0 | { |
6193 | 0 | if (p->p_type == PT_GNU_RELRO) |
6194 | 0 | { |
6195 | 0 | bfd_vma start, end; /* Bytes. */ |
6196 | 0 | bool ok; |
6197 | |
|
6198 | 0 | if (link_info != NULL) |
6199 | 0 | { |
6200 | | /* During linking the range of the RELRO segment is passed |
6201 | | in link_info. Note that there may be padding between |
6202 | | relro_start and the first RELRO section. */ |
6203 | 0 | start = link_info->relro_start; |
6204 | 0 | end = link_info->relro_end; |
6205 | 0 | } |
6206 | 0 | else if (m->count != 0) |
6207 | 0 | { |
6208 | 0 | if (!m->p_size_valid) |
6209 | 0 | abort (); |
6210 | 0 | start = m->sections[0]->vma; |
6211 | 0 | end = start + m->p_size / opb; |
6212 | 0 | } |
6213 | 0 | else |
6214 | 0 | { |
6215 | 0 | start = 0; |
6216 | 0 | end = 0; |
6217 | 0 | } |
6218 | | |
6219 | 0 | ok = false; |
6220 | 0 | if (start < end) |
6221 | 0 | { |
6222 | 0 | struct elf_segment_map *lm; |
6223 | 0 | const Elf_Internal_Phdr *lp; |
6224 | 0 | unsigned int i; |
6225 | | |
6226 | | /* Find a LOAD segment containing a section in the RELRO |
6227 | | segment. */ |
6228 | 0 | for (lm = elf_seg_map (abfd), lp = phdrs; |
6229 | 0 | lm != NULL; |
6230 | 0 | lm = lm->next, lp++) |
6231 | 0 | { |
6232 | 0 | if (lp->p_type == PT_LOAD |
6233 | 0 | && lm->count != 0 |
6234 | 0 | && (lm->sections[lm->count - 1]->vma |
6235 | 0 | + (!IS_TBSS (lm->sections[lm->count - 1]) |
6236 | 0 | ? lm->sections[lm->count - 1]->size / opb |
6237 | 0 | : 0)) > start |
6238 | 0 | && lm->sections[0]->vma < end) |
6239 | 0 | break; |
6240 | 0 | } |
6241 | |
|
6242 | 0 | if (lm != NULL) |
6243 | 0 | { |
6244 | | /* Find the section starting the RELRO segment. */ |
6245 | 0 | for (i = 0; i < lm->count; i++) |
6246 | 0 | { |
6247 | 0 | asection *s = lm->sections[i]; |
6248 | 0 | if (s->vma >= start |
6249 | 0 | && s->vma < end |
6250 | 0 | && s->size != 0) |
6251 | 0 | break; |
6252 | 0 | } |
6253 | |
|
6254 | 0 | if (i < lm->count) |
6255 | 0 | { |
6256 | 0 | p->p_vaddr = lm->sections[i]->vma * opb; |
6257 | 0 | p->p_paddr = lm->sections[i]->lma * opb; |
6258 | 0 | p->p_offset = lm->sections[i]->filepos; |
6259 | 0 | p->p_memsz = end * opb - p->p_vaddr; |
6260 | 0 | p->p_filesz = p->p_memsz; |
6261 | | |
6262 | | /* The RELRO segment typically ends a few bytes |
6263 | | into .got.plt but other layouts are possible. |
6264 | | In cases where the end does not match any |
6265 | | loaded section (for instance is in file |
6266 | | padding), trim p_filesz back to correspond to |
6267 | | the end of loaded section contents. */ |
6268 | 0 | if (p->p_filesz > lp->p_vaddr + lp->p_filesz - p->p_vaddr) |
6269 | 0 | p->p_filesz = lp->p_vaddr + lp->p_filesz - p->p_vaddr; |
6270 | | |
6271 | | /* Preserve the alignment and flags if they are |
6272 | | valid. The gold linker generates RW/4 for |
6273 | | the PT_GNU_RELRO section. It is better for |
6274 | | objcopy/strip to honor these attributes |
6275 | | otherwise gdb will choke when using separate |
6276 | | debug files. */ |
6277 | 0 | if (!m->p_align_valid) |
6278 | 0 | p->p_align = 1; |
6279 | 0 | if (!m->p_flags_valid) |
6280 | 0 | p->p_flags = PF_R; |
6281 | 0 | ok = true; |
6282 | 0 | } |
6283 | 0 | } |
6284 | 0 | } |
6285 | |
|
6286 | 0 | if (!ok) |
6287 | 0 | { |
6288 | 0 | if (link_info != NULL) |
6289 | 0 | _bfd_error_handler |
6290 | 0 | (_("%pB: warning: unable to allocate any sections" |
6291 | 0 | " to PT_GNU_RELRO segment"), |
6292 | 0 | abfd); |
6293 | 0 | memset (p, 0, sizeof *p); |
6294 | 0 | } |
6295 | 0 | } |
6296 | 0 | else if (p->p_type == PT_GNU_STACK) |
6297 | 0 | { |
6298 | 0 | if (m->p_size_valid) |
6299 | 0 | p->p_memsz = m->p_size; |
6300 | 0 | } |
6301 | 0 | else if (m->count != 0) |
6302 | 0 | { |
6303 | 0 | unsigned int i; |
6304 | |
|
6305 | 0 | if (p->p_type != PT_LOAD |
6306 | 0 | && (p->p_type != PT_NOTE |
6307 | 0 | || bfd_get_format (abfd) != bfd_core)) |
6308 | 0 | { |
6309 | | /* A user specified segment layout may include a PHDR |
6310 | | segment that overlaps with a LOAD segment... */ |
6311 | 0 | if (p->p_type == PT_PHDR) |
6312 | 0 | { |
6313 | 0 | m->count = 0; |
6314 | 0 | continue; |
6315 | 0 | } |
6316 | | |
6317 | 0 | if (m->includes_filehdr || m->includes_phdrs) |
6318 | 0 | { |
6319 | | /* PR 17512: file: 2195325e. */ |
6320 | 0 | _bfd_error_handler |
6321 | 0 | (_("%pB: error: non-load segment %d includes file header " |
6322 | 0 | "and/or program header"), |
6323 | 0 | abfd, (int) (p - phdrs)); |
6324 | 0 | return false; |
6325 | 0 | } |
6326 | | |
6327 | 0 | p->p_filesz = 0; |
6328 | 0 | p->p_offset = m->sections[0]->filepos; |
6329 | 0 | for (i = m->count; i-- != 0;) |
6330 | 0 | { |
6331 | 0 | asection *sect = m->sections[i]; |
6332 | 0 | Elf_Internal_Shdr *hdr = &elf_section_data (sect)->this_hdr; |
6333 | 0 | if (hdr->sh_type != SHT_NOBITS) |
6334 | 0 | { |
6335 | 0 | p->p_filesz = sect->filepos - p->p_offset + hdr->sh_size; |
6336 | | /* NB: p_memsz of the loadable PT_NOTE segment |
6337 | | should be the same as p_filesz. */ |
6338 | 0 | if (p->p_type == PT_NOTE |
6339 | 0 | && (hdr->sh_flags & SHF_ALLOC) != 0) |
6340 | 0 | p->p_memsz = p->p_filesz; |
6341 | 0 | break; |
6342 | 0 | } |
6343 | 0 | } |
6344 | 0 | } |
6345 | 0 | } |
6346 | 0 | } |
6347 | | |
6348 | 0 | return true; |
6349 | 0 | } |
6350 | | |
6351 | | static elf_section_list * |
6352 | | find_section_in_list (unsigned int i, elf_section_list * list) |
6353 | 0 | { |
6354 | 0 | for (;list != NULL; list = list->next) |
6355 | 0 | if (list->ndx == i) |
6356 | 0 | break; |
6357 | 0 | return list; |
6358 | 0 | } |
6359 | | |
6360 | | /* Work out the file positions of all the sections. This is called by |
6361 | | _bfd_elf_compute_section_file_positions. All the section sizes and |
6362 | | VMAs must be known before this is called. |
6363 | | |
6364 | | Reloc sections come in two flavours: Those processed specially as |
6365 | | "side-channel" data attached to a section to which they apply, and |
6366 | | those that bfd doesn't process as relocations. The latter sort are |
6367 | | stored in a normal bfd section by bfd_section_from_shdr. We don't |
6368 | | consider the former sort here, unless they form part of the loadable |
6369 | | image. Reloc sections not assigned here (and compressed debugging |
6370 | | sections and CTF sections which nothing else in the file can rely |
6371 | | upon) will be handled later by assign_file_positions_for_relocs. |
6372 | | |
6373 | | We also don't set the positions of the .symtab and .strtab here. */ |
6374 | | |
6375 | | static bool |
6376 | | assign_file_positions_except_relocs (bfd *abfd, |
6377 | | struct bfd_link_info *link_info) |
6378 | 0 | { |
6379 | 0 | struct elf_obj_tdata *tdata = elf_tdata (abfd); |
6380 | 0 | Elf_Internal_Ehdr *i_ehdrp = elf_elfheader (abfd); |
6381 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
6382 | 0 | unsigned int alloc; |
6383 | |
|
6384 | 0 | if ((abfd->flags & (EXEC_P | DYNAMIC)) == 0 |
6385 | 0 | && bfd_get_format (abfd) != bfd_core) |
6386 | 0 | { |
6387 | 0 | Elf_Internal_Shdr ** const i_shdrpp = elf_elfsections (abfd); |
6388 | 0 | unsigned int num_sec = elf_numsections (abfd); |
6389 | 0 | Elf_Internal_Shdr **hdrpp; |
6390 | 0 | unsigned int i; |
6391 | 0 | file_ptr off; |
6392 | | |
6393 | | /* Start after the ELF header. */ |
6394 | 0 | off = i_ehdrp->e_ehsize; |
6395 | | |
6396 | | /* We are not creating an executable, which means that we are |
6397 | | not creating a program header, and that the actual order of |
6398 | | the sections in the file is unimportant. */ |
6399 | 0 | for (i = 1, hdrpp = i_shdrpp + 1; i < num_sec; i++, hdrpp++) |
6400 | 0 | { |
6401 | 0 | Elf_Internal_Shdr *hdr; |
6402 | |
|
6403 | 0 | hdr = *hdrpp; |
6404 | 0 | if (((hdr->sh_type == SHT_REL || hdr->sh_type == SHT_RELA) |
6405 | 0 | && hdr->bfd_section == NULL) |
6406 | | /* Do not assign offsets for these sections yet: we don't know |
6407 | | their sizes. */ |
6408 | 0 | || (abfd->is_linker_output |
6409 | 0 | && hdr->bfd_section != NULL |
6410 | 0 | && (hdr->sh_name == -1u |
6411 | 0 | || bfd_section_is_ctf (hdr->bfd_section))) |
6412 | 0 | || i == elf_onesymtab (abfd) |
6413 | 0 | || (elf_symtab_shndx_list (abfd) != NULL |
6414 | 0 | && hdr == i_shdrpp[elf_symtab_shndx_list (abfd)->ndx]) |
6415 | 0 | || i == elf_strtab_sec (abfd) |
6416 | 0 | || i == elf_shstrtab_sec (abfd)) |
6417 | 0 | { |
6418 | 0 | hdr->sh_offset = -1; |
6419 | 0 | } |
6420 | 0 | else |
6421 | 0 | off = _bfd_elf_assign_file_position_for_section (hdr, off, true); |
6422 | 0 | } |
6423 | |
|
6424 | 0 | elf_next_file_pos (abfd) = off; |
6425 | 0 | elf_program_header_size (abfd) = 0; |
6426 | 0 | } |
6427 | 0 | else |
6428 | 0 | { |
6429 | | /* Assign file positions for the loaded sections based on the |
6430 | | assignment of sections to segments. */ |
6431 | 0 | if (!assign_file_positions_for_load_sections (abfd, link_info)) |
6432 | 0 | return false; |
6433 | | |
6434 | | /* And for non-load sections. */ |
6435 | 0 | if (!assign_file_positions_for_non_load_sections (abfd, link_info)) |
6436 | 0 | return false; |
6437 | 0 | } |
6438 | | |
6439 | 0 | if (!(*bed->elf_backend_modify_headers) (abfd, link_info)) |
6440 | 0 | return false; |
6441 | | |
6442 | | /* Write out the program headers. */ |
6443 | 0 | alloc = i_ehdrp->e_phnum; |
6444 | 0 | if (alloc != 0) |
6445 | 0 | { |
6446 | 0 | if (link_info != NULL && ! link_info->no_warn_rwx_segments) |
6447 | 0 | { |
6448 | | /* Memory resident segments with non-zero size and RWX |
6449 | | permissions are a security risk, so we generate a warning |
6450 | | here if we are creating any. */ |
6451 | 0 | unsigned int i; |
6452 | |
|
6453 | 0 | for (i = 0; i < alloc; i++) |
6454 | 0 | { |
6455 | 0 | const Elf_Internal_Phdr * phdr = tdata->phdr + i; |
6456 | |
|
6457 | 0 | if (phdr->p_memsz == 0) |
6458 | 0 | continue; |
6459 | | |
6460 | 0 | if (phdr->p_type == PT_TLS && (phdr->p_flags & PF_X)) |
6461 | 0 | _bfd_error_handler (_("warning: %pB has a TLS segment" |
6462 | 0 | " with execute permission"), |
6463 | 0 | abfd); |
6464 | 0 | else if (phdr->p_type == PT_LOAD |
6465 | 0 | && ((phdr->p_flags & (PF_R | PF_W | PF_X)) |
6466 | 0 | == (PF_R | PF_W | PF_X))) |
6467 | 0 | _bfd_error_handler (_("warning: %pB has a LOAD segment" |
6468 | 0 | " with RWX permissions"), |
6469 | 0 | abfd); |
6470 | 0 | } |
6471 | 0 | } |
6472 | |
|
6473 | 0 | if (bfd_seek (abfd, i_ehdrp->e_phoff, SEEK_SET) != 0 |
6474 | 0 | || bed->s->write_out_phdrs (abfd, tdata->phdr, alloc) != 0) |
6475 | 0 | return false; |
6476 | 0 | } |
6477 | | |
6478 | 0 | return true; |
6479 | 0 | } |
6480 | | |
6481 | | bool |
6482 | | _bfd_elf_init_file_header (bfd *abfd, |
6483 | | struct bfd_link_info *info ATTRIBUTE_UNUSED) |
6484 | 0 | { |
6485 | 0 | Elf_Internal_Ehdr *i_ehdrp; /* Elf file header, internal form. */ |
6486 | 0 | struct elf_strtab_hash *shstrtab; |
6487 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
6488 | |
|
6489 | 0 | i_ehdrp = elf_elfheader (abfd); |
6490 | |
|
6491 | 0 | shstrtab = _bfd_elf_strtab_init (); |
6492 | 0 | if (shstrtab == NULL) |
6493 | 0 | return false; |
6494 | | |
6495 | 0 | elf_shstrtab (abfd) = shstrtab; |
6496 | |
|
6497 | 0 | i_ehdrp->e_ident[EI_MAG0] = ELFMAG0; |
6498 | 0 | i_ehdrp->e_ident[EI_MAG1] = ELFMAG1; |
6499 | 0 | i_ehdrp->e_ident[EI_MAG2] = ELFMAG2; |
6500 | 0 | i_ehdrp->e_ident[EI_MAG3] = ELFMAG3; |
6501 | |
|
6502 | 0 | i_ehdrp->e_ident[EI_CLASS] = bed->s->elfclass; |
6503 | 0 | i_ehdrp->e_ident[EI_DATA] = |
6504 | 0 | bfd_big_endian (abfd) ? ELFDATA2MSB : ELFDATA2LSB; |
6505 | 0 | i_ehdrp->e_ident[EI_VERSION] = bed->s->ev_current; |
6506 | |
|
6507 | 0 | if ((abfd->flags & DYNAMIC) != 0) |
6508 | 0 | i_ehdrp->e_type = ET_DYN; |
6509 | 0 | else if ((abfd->flags & EXEC_P) != 0) |
6510 | 0 | i_ehdrp->e_type = ET_EXEC; |
6511 | 0 | else if (bfd_get_format (abfd) == bfd_core) |
6512 | 0 | i_ehdrp->e_type = ET_CORE; |
6513 | 0 | else |
6514 | 0 | i_ehdrp->e_type = ET_REL; |
6515 | |
|
6516 | 0 | switch (bfd_get_arch (abfd)) |
6517 | 0 | { |
6518 | 0 | case bfd_arch_unknown: |
6519 | 0 | i_ehdrp->e_machine = EM_NONE; |
6520 | 0 | break; |
6521 | | |
6522 | | /* There used to be a long list of cases here, each one setting |
6523 | | e_machine to the same EM_* macro #defined as ELF_MACHINE_CODE |
6524 | | in the corresponding bfd definition. To avoid duplication, |
6525 | | the switch was removed. Machines that need special handling |
6526 | | can generally do it in elf_backend_final_write_processing(), |
6527 | | unless they need the information earlier than the final write. |
6528 | | Such need can generally be supplied by replacing the tests for |
6529 | | e_machine with the conditions used to determine it. */ |
6530 | 0 | default: |
6531 | 0 | i_ehdrp->e_machine = bed->elf_machine_code; |
6532 | 0 | } |
6533 | | |
6534 | 0 | i_ehdrp->e_version = bed->s->ev_current; |
6535 | 0 | i_ehdrp->e_ehsize = bed->s->sizeof_ehdr; |
6536 | | |
6537 | | /* No program header, for now. */ |
6538 | 0 | i_ehdrp->e_phoff = 0; |
6539 | 0 | i_ehdrp->e_phentsize = 0; |
6540 | 0 | i_ehdrp->e_phnum = 0; |
6541 | | |
6542 | | /* Each bfd section is section header entry. */ |
6543 | 0 | i_ehdrp->e_entry = bfd_get_start_address (abfd); |
6544 | 0 | i_ehdrp->e_shentsize = bed->s->sizeof_shdr; |
6545 | |
|
6546 | 0 | elf_tdata (abfd)->symtab_hdr.sh_name = |
6547 | 0 | (unsigned int) _bfd_elf_strtab_add (shstrtab, ".symtab", false); |
6548 | 0 | elf_tdata (abfd)->strtab_hdr.sh_name = |
6549 | 0 | (unsigned int) _bfd_elf_strtab_add (shstrtab, ".strtab", false); |
6550 | 0 | elf_tdata (abfd)->shstrtab_hdr.sh_name = |
6551 | 0 | (unsigned int) _bfd_elf_strtab_add (shstrtab, ".shstrtab", false); |
6552 | 0 | if (elf_tdata (abfd)->symtab_hdr.sh_name == (unsigned int) -1 |
6553 | 0 | || elf_tdata (abfd)->strtab_hdr.sh_name == (unsigned int) -1 |
6554 | 0 | || elf_tdata (abfd)->shstrtab_hdr.sh_name == (unsigned int) -1) |
6555 | 0 | return false; |
6556 | | |
6557 | 0 | return true; |
6558 | 0 | } |
6559 | | |
6560 | | /* Set e_type in ELF header to ET_EXEC for -pie -Ttext-segment=. |
6561 | | |
6562 | | FIXME: We used to have code here to sort the PT_LOAD segments into |
6563 | | ascending order, as per the ELF spec. But this breaks some programs, |
6564 | | including the Linux kernel. But really either the spec should be |
6565 | | changed or the programs updated. */ |
6566 | | |
6567 | | bool |
6568 | | _bfd_elf_modify_headers (bfd *obfd, struct bfd_link_info *link_info) |
6569 | 0 | { |
6570 | 0 | if (link_info != NULL && bfd_link_pie (link_info)) |
6571 | 0 | { |
6572 | 0 | Elf_Internal_Ehdr *i_ehdrp = elf_elfheader (obfd); |
6573 | 0 | unsigned int num_segments = i_ehdrp->e_phnum; |
6574 | 0 | struct elf_obj_tdata *tdata = elf_tdata (obfd); |
6575 | 0 | Elf_Internal_Phdr *segment = tdata->phdr; |
6576 | 0 | Elf_Internal_Phdr *end_segment = &segment[num_segments]; |
6577 | | |
6578 | | /* Find the lowest p_vaddr in PT_LOAD segments. */ |
6579 | 0 | bfd_vma p_vaddr = (bfd_vma) -1; |
6580 | 0 | for (; segment < end_segment; segment++) |
6581 | 0 | if (segment->p_type == PT_LOAD && p_vaddr > segment->p_vaddr) |
6582 | 0 | p_vaddr = segment->p_vaddr; |
6583 | | |
6584 | | /* Set e_type to ET_EXEC if the lowest p_vaddr in PT_LOAD |
6585 | | segments is non-zero. */ |
6586 | 0 | if (p_vaddr) |
6587 | 0 | i_ehdrp->e_type = ET_EXEC; |
6588 | 0 | } |
6589 | 0 | return true; |
6590 | 0 | } |
6591 | | |
6592 | | /* Assign file positions for all the reloc sections which are not part |
6593 | | of the loadable file image, and the file position of section headers. */ |
6594 | | |
6595 | | static bool |
6596 | | _bfd_elf_assign_file_positions_for_non_load (bfd *abfd) |
6597 | 0 | { |
6598 | 0 | file_ptr off; |
6599 | 0 | Elf_Internal_Shdr **shdrpp, **end_shdrpp; |
6600 | 0 | Elf_Internal_Shdr *shdrp; |
6601 | 0 | Elf_Internal_Ehdr *i_ehdrp; |
6602 | 0 | const struct elf_backend_data *bed; |
6603 | |
|
6604 | 0 | off = elf_next_file_pos (abfd); |
6605 | |
|
6606 | 0 | shdrpp = elf_elfsections (abfd); |
6607 | 0 | end_shdrpp = shdrpp + elf_numsections (abfd); |
6608 | 0 | for (shdrpp++; shdrpp < end_shdrpp; shdrpp++) |
6609 | 0 | { |
6610 | 0 | shdrp = *shdrpp; |
6611 | 0 | if (shdrp->sh_offset == -1) |
6612 | 0 | { |
6613 | 0 | asection *sec = shdrp->bfd_section; |
6614 | 0 | if (sec == NULL |
6615 | 0 | || shdrp->sh_type == SHT_REL |
6616 | 0 | || shdrp->sh_type == SHT_RELA) |
6617 | 0 | ; |
6618 | 0 | else if (bfd_section_is_ctf (sec)) |
6619 | 0 | { |
6620 | | /* Update section size and contents. */ |
6621 | 0 | shdrp->sh_size = sec->size; |
6622 | 0 | shdrp->contents = sec->contents; |
6623 | 0 | } |
6624 | 0 | else if (shdrp->sh_name == -1u) |
6625 | 0 | { |
6626 | 0 | const char *name = sec->name; |
6627 | 0 | struct bfd_elf_section_data *d; |
6628 | | |
6629 | | /* Compress DWARF debug sections. */ |
6630 | 0 | if (!bfd_compress_section (abfd, sec, shdrp->contents)) |
6631 | 0 | return false; |
6632 | | |
6633 | 0 | if (sec->compress_status == COMPRESS_SECTION_DONE |
6634 | 0 | && (abfd->flags & BFD_COMPRESS_GABI) == 0 |
6635 | 0 | && name[1] == 'd') |
6636 | 0 | { |
6637 | | /* If section is compressed with zlib-gnu, convert |
6638 | | section name from .debug_* to .zdebug_*. */ |
6639 | 0 | char *new_name = bfd_debug_name_to_zdebug (abfd, name); |
6640 | 0 | if (new_name == NULL) |
6641 | 0 | return false; |
6642 | 0 | name = new_name; |
6643 | 0 | } |
6644 | | /* Add section name to section name section. */ |
6645 | 0 | shdrp->sh_name |
6646 | 0 | = (unsigned int) _bfd_elf_strtab_add (elf_shstrtab (abfd), |
6647 | 0 | name, false); |
6648 | 0 | d = elf_section_data (sec); |
6649 | | |
6650 | | /* Add reloc section name to section name section. */ |
6651 | 0 | if (d->rel.hdr |
6652 | 0 | && !_bfd_elf_set_reloc_sh_name (abfd, d->rel.hdr, |
6653 | 0 | name, false)) |
6654 | 0 | return false; |
6655 | 0 | if (d->rela.hdr |
6656 | 0 | && !_bfd_elf_set_reloc_sh_name (abfd, d->rela.hdr, |
6657 | 0 | name, true)) |
6658 | 0 | return false; |
6659 | | |
6660 | | /* Update section size and contents. */ |
6661 | 0 | shdrp->sh_size = sec->size; |
6662 | 0 | shdrp->contents = sec->contents; |
6663 | 0 | sec->contents = NULL; |
6664 | 0 | } |
6665 | | |
6666 | 0 | off = _bfd_elf_assign_file_position_for_section (shdrp, off, true); |
6667 | 0 | } |
6668 | 0 | } |
6669 | | |
6670 | | /* Place section name section after DWARF debug sections have been |
6671 | | compressed. */ |
6672 | 0 | _bfd_elf_strtab_finalize (elf_shstrtab (abfd)); |
6673 | 0 | shdrp = &elf_tdata (abfd)->shstrtab_hdr; |
6674 | 0 | shdrp->sh_size = _bfd_elf_strtab_size (elf_shstrtab (abfd)); |
6675 | 0 | off = _bfd_elf_assign_file_position_for_section (shdrp, off, true); |
6676 | | |
6677 | | /* Place the section headers. */ |
6678 | 0 | i_ehdrp = elf_elfheader (abfd); |
6679 | 0 | bed = get_elf_backend_data (abfd); |
6680 | 0 | off = align_file_position (off, 1 << bed->s->log_file_align); |
6681 | 0 | i_ehdrp->e_shoff = off; |
6682 | 0 | off += i_ehdrp->e_shnum * i_ehdrp->e_shentsize; |
6683 | 0 | elf_next_file_pos (abfd) = off; |
6684 | |
|
6685 | 0 | return true; |
6686 | 0 | } |
6687 | | |
6688 | | bool |
6689 | | _bfd_elf_write_object_contents (bfd *abfd) |
6690 | 0 | { |
6691 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
6692 | 0 | Elf_Internal_Shdr **i_shdrp; |
6693 | 0 | bool failed; |
6694 | 0 | unsigned int count, num_sec; |
6695 | 0 | struct elf_obj_tdata *t; |
6696 | |
|
6697 | 0 | if (! abfd->output_has_begun |
6698 | 0 | && ! _bfd_elf_compute_section_file_positions (abfd, NULL)) |
6699 | 0 | return false; |
6700 | | /* Do not rewrite ELF data when the BFD has been opened for update. |
6701 | | abfd->output_has_begun was set to TRUE on opening, so creation of |
6702 | | new sections, and modification of existing section sizes was |
6703 | | restricted. This means the ELF header, program headers and |
6704 | | section headers can't have changed. If the contents of any |
6705 | | sections has been modified, then those changes have already been |
6706 | | written to the BFD. */ |
6707 | 0 | else if (abfd->direction == both_direction) |
6708 | 0 | { |
6709 | 0 | BFD_ASSERT (abfd->output_has_begun); |
6710 | 0 | return true; |
6711 | 0 | } |
6712 | | |
6713 | 0 | i_shdrp = elf_elfsections (abfd); |
6714 | |
|
6715 | 0 | failed = false; |
6716 | 0 | bfd_map_over_sections (abfd, bed->s->write_relocs, &failed); |
6717 | 0 | if (failed) |
6718 | 0 | return false; |
6719 | | |
6720 | 0 | if (!_bfd_elf_assign_file_positions_for_non_load (abfd)) |
6721 | 0 | return false; |
6722 | | |
6723 | | /* After writing the headers, we need to write the sections too... */ |
6724 | 0 | num_sec = elf_numsections (abfd); |
6725 | 0 | for (count = 1; count < num_sec; count++) |
6726 | 0 | { |
6727 | 0 | i_shdrp[count]->sh_name |
6728 | 0 | = _bfd_elf_strtab_offset (elf_shstrtab (abfd), |
6729 | 0 | i_shdrp[count]->sh_name); |
6730 | 0 | if (bed->elf_backend_section_processing) |
6731 | 0 | if (!(*bed->elf_backend_section_processing) (abfd, i_shdrp[count])) |
6732 | 0 | return false; |
6733 | 0 | if (i_shdrp[count]->contents) |
6734 | 0 | { |
6735 | 0 | bfd_size_type amt = i_shdrp[count]->sh_size; |
6736 | |
|
6737 | 0 | if (bfd_seek (abfd, i_shdrp[count]->sh_offset, SEEK_SET) != 0 |
6738 | 0 | || bfd_bwrite (i_shdrp[count]->contents, amt, abfd) != amt) |
6739 | 0 | return false; |
6740 | 0 | } |
6741 | 0 | } |
6742 | | |
6743 | | /* Write out the section header names. */ |
6744 | 0 | t = elf_tdata (abfd); |
6745 | 0 | if (elf_shstrtab (abfd) != NULL |
6746 | 0 | && (bfd_seek (abfd, t->shstrtab_hdr.sh_offset, SEEK_SET) != 0 |
6747 | 0 | || !_bfd_elf_strtab_emit (abfd, elf_shstrtab (abfd)))) |
6748 | 0 | return false; |
6749 | | |
6750 | 0 | if (!(*bed->elf_backend_final_write_processing) (abfd)) |
6751 | 0 | return false; |
6752 | | |
6753 | 0 | if (!bed->s->write_shdrs_and_ehdr (abfd)) |
6754 | 0 | return false; |
6755 | | |
6756 | | /* This is last since write_shdrs_and_ehdr can touch i_shdrp[0]. */ |
6757 | 0 | if (t->o->build_id.after_write_object_contents != NULL |
6758 | 0 | && !(*t->o->build_id.after_write_object_contents) (abfd)) |
6759 | 0 | return false; |
6760 | 0 | if (t->o->package_metadata.after_write_object_contents != NULL |
6761 | 0 | && !(*t->o->package_metadata.after_write_object_contents) (abfd)) |
6762 | 0 | return false; |
6763 | | |
6764 | 0 | return true; |
6765 | 0 | } |
6766 | | |
6767 | | bool |
6768 | | _bfd_elf_write_corefile_contents (bfd *abfd) |
6769 | 0 | { |
6770 | | /* Hopefully this can be done just like an object file. */ |
6771 | 0 | return _bfd_elf_write_object_contents (abfd); |
6772 | 0 | } |
6773 | | |
6774 | | /* Given a section, search the header to find them. */ |
6775 | | |
6776 | | unsigned int |
6777 | | _bfd_elf_section_from_bfd_section (bfd *abfd, struct bfd_section *asect) |
6778 | 0 | { |
6779 | 0 | const struct elf_backend_data *bed; |
6780 | 0 | unsigned int sec_index; |
6781 | |
|
6782 | 0 | if (elf_section_data (asect) != NULL |
6783 | 0 | && elf_section_data (asect)->this_idx != 0) |
6784 | 0 | return elf_section_data (asect)->this_idx; |
6785 | | |
6786 | 0 | if (bfd_is_abs_section (asect)) |
6787 | 0 | sec_index = SHN_ABS; |
6788 | 0 | else if (bfd_is_com_section (asect)) |
6789 | 0 | sec_index = SHN_COMMON; |
6790 | 0 | else if (bfd_is_und_section (asect)) |
6791 | 0 | sec_index = SHN_UNDEF; |
6792 | 0 | else |
6793 | 0 | sec_index = SHN_BAD; |
6794 | |
|
6795 | 0 | bed = get_elf_backend_data (abfd); |
6796 | 0 | if (bed->elf_backend_section_from_bfd_section) |
6797 | 0 | { |
6798 | 0 | int retval = sec_index; |
6799 | |
|
6800 | 0 | if ((*bed->elf_backend_section_from_bfd_section) (abfd, asect, &retval)) |
6801 | 0 | return retval; |
6802 | 0 | } |
6803 | | |
6804 | 0 | if (sec_index == SHN_BAD) |
6805 | 0 | bfd_set_error (bfd_error_nonrepresentable_section); |
6806 | |
|
6807 | 0 | return sec_index; |
6808 | 0 | } |
6809 | | |
6810 | | /* Given a BFD symbol, return the index in the ELF symbol table, or -1 |
6811 | | on error. */ |
6812 | | |
6813 | | int |
6814 | | _bfd_elf_symbol_from_bfd_symbol (bfd *abfd, asymbol **asym_ptr_ptr) |
6815 | 0 | { |
6816 | 0 | asymbol *asym_ptr = *asym_ptr_ptr; |
6817 | 0 | int idx; |
6818 | 0 | flagword flags = asym_ptr->flags; |
6819 | | |
6820 | | /* When gas creates relocations against local labels, it creates its |
6821 | | own symbol for the section, but does put the symbol into the |
6822 | | symbol chain, so udata is 0. When the linker is generating |
6823 | | relocatable output, this section symbol may be for one of the |
6824 | | input sections rather than the output section. */ |
6825 | 0 | if (asym_ptr->udata.i == 0 |
6826 | 0 | && (flags & BSF_SECTION_SYM) |
6827 | 0 | && asym_ptr->section) |
6828 | 0 | { |
6829 | 0 | asection *sec; |
6830 | |
|
6831 | 0 | sec = asym_ptr->section; |
6832 | 0 | if (sec->owner != abfd && sec->output_section != NULL) |
6833 | 0 | sec = sec->output_section; |
6834 | 0 | if (sec->owner == abfd |
6835 | 0 | && sec->index < elf_num_section_syms (abfd) |
6836 | 0 | && elf_section_syms (abfd)[sec->index] != NULL) |
6837 | 0 | asym_ptr->udata.i = elf_section_syms (abfd)[sec->index]->udata.i; |
6838 | 0 | } |
6839 | |
|
6840 | 0 | idx = asym_ptr->udata.i; |
6841 | |
|
6842 | 0 | if (idx == 0) |
6843 | 0 | { |
6844 | | /* This case can occur when using --strip-symbol on a symbol |
6845 | | which is used in a relocation entry. */ |
6846 | 0 | _bfd_error_handler |
6847 | | /* xgettext:c-format */ |
6848 | 0 | (_("%pB: symbol `%s' required but not present"), |
6849 | 0 | abfd, bfd_asymbol_name (asym_ptr)); |
6850 | 0 | bfd_set_error (bfd_error_no_symbols); |
6851 | 0 | return -1; |
6852 | 0 | } |
6853 | | |
6854 | | #if DEBUG & 4 |
6855 | | { |
6856 | | fprintf (stderr, |
6857 | | "elf_symbol_from_bfd_symbol 0x%.8lx, name = %s, sym num = %d," |
6858 | | " flags = 0x%.8x\n", |
6859 | | (long) asym_ptr, asym_ptr->name, idx, flags); |
6860 | | fflush (stderr); |
6861 | | } |
6862 | | #endif |
6863 | | |
6864 | 0 | return idx; |
6865 | 0 | } |
6866 | | |
6867 | | static inline bfd_vma |
6868 | | segment_size (Elf_Internal_Phdr *segment) |
6869 | 0 | { |
6870 | 0 | return (segment->p_memsz > segment->p_filesz |
6871 | 0 | ? segment->p_memsz : segment->p_filesz); |
6872 | 0 | } |
6873 | | |
6874 | | |
6875 | | /* Returns the end address of the segment + 1. */ |
6876 | | static inline bfd_vma |
6877 | | segment_end (Elf_Internal_Phdr *segment, bfd_vma start) |
6878 | 0 | { |
6879 | 0 | return start + segment_size (segment); |
6880 | 0 | } |
6881 | | |
6882 | | static inline bfd_size_type |
6883 | | section_size (asection *section, Elf_Internal_Phdr *segment) |
6884 | 0 | { |
6885 | 0 | if ((section->flags & SEC_HAS_CONTENTS) != 0 |
6886 | 0 | || (section->flags & SEC_THREAD_LOCAL) == 0 |
6887 | 0 | || segment->p_type == PT_TLS) |
6888 | 0 | return section->size; |
6889 | 0 | return 0; |
6890 | 0 | } |
6891 | | |
6892 | | /* Returns TRUE if the given section is contained within the given |
6893 | | segment. LMA addresses are compared against PADDR when |
6894 | | USE_VADDR is false, VMA against VADDR when true. */ |
6895 | | static bool |
6896 | | is_contained_by (asection *section, Elf_Internal_Phdr *segment, |
6897 | | bfd_vma paddr, bfd_vma vaddr, unsigned int opb, |
6898 | | bool use_vaddr) |
6899 | 0 | { |
6900 | 0 | bfd_vma seg_addr = !use_vaddr ? paddr : vaddr; |
6901 | 0 | bfd_vma addr = !use_vaddr ? section->lma : section->vma; |
6902 | 0 | bfd_vma octet; |
6903 | 0 | if (_bfd_mul_overflow (addr, opb, &octet)) |
6904 | 0 | return false; |
6905 | | /* The third and fourth lines below are testing that the section end |
6906 | | address is within the segment. It's written this way to avoid |
6907 | | overflow. Add seg_addr + section_size to both sides of the |
6908 | | inequality to make it obvious. */ |
6909 | 0 | return (octet >= seg_addr |
6910 | 0 | && segment_size (segment) >= section_size (section, segment) |
6911 | 0 | && (octet - seg_addr |
6912 | 0 | <= segment_size (segment) - section_size (section, segment))); |
6913 | 0 | } |
6914 | | |
6915 | | /* Handle PT_NOTE segment. */ |
6916 | | static bool |
6917 | | is_note (asection *s, Elf_Internal_Phdr *p) |
6918 | 0 | { |
6919 | 0 | return (p->p_type == PT_NOTE |
6920 | 0 | && elf_section_type (s) == SHT_NOTE |
6921 | 0 | && (ufile_ptr) s->filepos >= p->p_offset |
6922 | 0 | && p->p_filesz >= s->size |
6923 | 0 | && (ufile_ptr) s->filepos - p->p_offset <= p->p_filesz - s->size); |
6924 | 0 | } |
6925 | | |
6926 | | /* Rewrite program header information. */ |
6927 | | |
6928 | | static bool |
6929 | | rewrite_elf_program_header (bfd *ibfd, bfd *obfd, bfd_vma maxpagesize) |
6930 | 0 | { |
6931 | 0 | Elf_Internal_Ehdr *iehdr; |
6932 | 0 | struct elf_segment_map *map; |
6933 | 0 | struct elf_segment_map *map_first; |
6934 | 0 | struct elf_segment_map **pointer_to_map; |
6935 | 0 | Elf_Internal_Phdr *segment; |
6936 | 0 | asection *section; |
6937 | 0 | unsigned int i; |
6938 | 0 | unsigned int num_segments; |
6939 | 0 | bool phdr_included = false; |
6940 | 0 | bool p_paddr_valid; |
6941 | 0 | struct elf_segment_map *phdr_adjust_seg = NULL; |
6942 | 0 | unsigned int phdr_adjust_num = 0; |
6943 | 0 | const struct elf_backend_data *bed; |
6944 | 0 | unsigned int opb = bfd_octets_per_byte (ibfd, NULL); |
6945 | |
|
6946 | 0 | bed = get_elf_backend_data (ibfd); |
6947 | 0 | iehdr = elf_elfheader (ibfd); |
6948 | |
|
6949 | 0 | map_first = NULL; |
6950 | 0 | pointer_to_map = &map_first; |
6951 | |
|
6952 | 0 | num_segments = elf_elfheader (ibfd)->e_phnum; |
6953 | | |
6954 | | /* The complicated case when p_vaddr is 0 is to handle the Solaris |
6955 | | linker, which generates a PT_INTERP section with p_vaddr and |
6956 | | p_memsz set to 0. */ |
6957 | 0 | #define IS_SOLARIS_PT_INTERP(p, s) \ |
6958 | 0 | (p->p_vaddr == 0 \ |
6959 | 0 | && p->p_paddr == 0 \ |
6960 | 0 | && p->p_memsz == 0 \ |
6961 | 0 | && p->p_filesz > 0 \ |
6962 | 0 | && (s->flags & SEC_HAS_CONTENTS) != 0 \ |
6963 | 0 | && s->size > 0 \ |
6964 | 0 | && (bfd_vma) s->filepos >= p->p_offset \ |
6965 | 0 | && ((bfd_vma) s->filepos + s->size \ |
6966 | 0 | <= p->p_offset + p->p_filesz)) |
6967 | | |
6968 | | /* Decide if the given section should be included in the given segment. |
6969 | | A section will be included if: |
6970 | | 1. It is within the address space of the segment -- we use the LMA |
6971 | | if that is set for the segment and the VMA otherwise, |
6972 | | 2. It is an allocated section or a NOTE section in a PT_NOTE |
6973 | | segment. |
6974 | | 3. There is an output section associated with it, |
6975 | | 4. The section has not already been allocated to a previous segment. |
6976 | | 5. PT_GNU_STACK segments do not include any sections. |
6977 | | 6. PT_TLS segment includes only SHF_TLS sections. |
6978 | | 7. SHF_TLS sections are only in PT_TLS or PT_LOAD segments. |
6979 | | 8. PT_DYNAMIC should not contain empty sections at the beginning |
6980 | | (with the possible exception of .dynamic). */ |
6981 | 0 | #define IS_SECTION_IN_INPUT_SEGMENT(section, segment, bed, opb) \ |
6982 | 0 | (((is_contained_by (section, segment, segment->p_paddr, \ |
6983 | 0 | segment->p_vaddr, opb, \ |
6984 | 0 | bed->want_p_paddr_set_to_zero) \ |
6985 | 0 | && (section->flags & SEC_ALLOC) != 0) \ |
6986 | 0 | || is_note (section, segment)) \ |
6987 | 0 | && segment->p_type != PT_GNU_STACK \ |
6988 | 0 | && (segment->p_type != PT_TLS \ |
6989 | 0 | || (section->flags & SEC_THREAD_LOCAL)) \ |
6990 | 0 | && (segment->p_type == PT_LOAD \ |
6991 | 0 | || segment->p_type == PT_TLS \ |
6992 | 0 | || (section->flags & SEC_THREAD_LOCAL) == 0) \ |
6993 | 0 | && (segment->p_type != PT_DYNAMIC \ |
6994 | 0 | || section_size (section, segment) > 0 \ |
6995 | 0 | || (segment->p_paddr \ |
6996 | 0 | ? segment->p_paddr != section->lma * (opb) \ |
6997 | 0 | : segment->p_vaddr != section->vma * (opb)) \ |
6998 | 0 | || (strcmp (bfd_section_name (section), ".dynamic") == 0)) \ |
6999 | 0 | && (segment->p_type != PT_LOAD || !section->segment_mark)) |
7000 | | |
7001 | | /* If the output section of a section in the input segment is NULL, |
7002 | | it is removed from the corresponding output segment. */ |
7003 | 0 | #define INCLUDE_SECTION_IN_SEGMENT(section, segment, bed, opb) \ |
7004 | 0 | (IS_SECTION_IN_INPUT_SEGMENT (section, segment, bed, opb) \ |
7005 | 0 | && section->output_section != NULL) |
7006 | | |
7007 | | /* Returns TRUE iff seg1 starts after the end of seg2. */ |
7008 | 0 | #define SEGMENT_AFTER_SEGMENT(seg1, seg2, field) \ |
7009 | 0 | (seg1->field >= segment_end (seg2, seg2->field)) |
7010 | | |
7011 | | /* Returns TRUE iff seg1 and seg2 overlap. Segments overlap iff both |
7012 | | their VMA address ranges and their LMA address ranges overlap. |
7013 | | It is possible to have overlapping VMA ranges without overlapping LMA |
7014 | | ranges. RedBoot images for example can have both .data and .bss mapped |
7015 | | to the same VMA range, but with the .data section mapped to a different |
7016 | | LMA. */ |
7017 | 0 | #define SEGMENT_OVERLAPS(seg1, seg2) \ |
7018 | 0 | ( !(SEGMENT_AFTER_SEGMENT (seg1, seg2, p_vaddr) \ |
7019 | 0 | || SEGMENT_AFTER_SEGMENT (seg2, seg1, p_vaddr)) \ |
7020 | 0 | && !(SEGMENT_AFTER_SEGMENT (seg1, seg2, p_paddr) \ |
7021 | 0 | || SEGMENT_AFTER_SEGMENT (seg2, seg1, p_paddr))) |
7022 | | |
7023 | | /* Initialise the segment mark field, and discard stupid alignment. */ |
7024 | 0 | for (section = ibfd->sections; section != NULL; section = section->next) |
7025 | 0 | { |
7026 | 0 | asection *o = section->output_section; |
7027 | 0 | if (o != NULL && o->alignment_power >= (sizeof (bfd_vma) * 8) - 1) |
7028 | 0 | o->alignment_power = 0; |
7029 | 0 | section->segment_mark = false; |
7030 | 0 | } |
7031 | | |
7032 | | /* The Solaris linker creates program headers in which all the |
7033 | | p_paddr fields are zero. When we try to objcopy or strip such a |
7034 | | file, we get confused. Check for this case, and if we find it |
7035 | | don't set the p_paddr_valid fields. */ |
7036 | 0 | p_paddr_valid = false; |
7037 | 0 | for (i = 0, segment = elf_tdata (ibfd)->phdr; |
7038 | 0 | i < num_segments; |
7039 | 0 | i++, segment++) |
7040 | 0 | if (segment->p_paddr != 0) |
7041 | 0 | { |
7042 | 0 | p_paddr_valid = true; |
7043 | 0 | break; |
7044 | 0 | } |
7045 | | |
7046 | | /* Scan through the segments specified in the program header |
7047 | | of the input BFD. For this first scan we look for overlaps |
7048 | | in the loadable segments. These can be created by weird |
7049 | | parameters to objcopy. Also, fix some solaris weirdness. */ |
7050 | 0 | for (i = 0, segment = elf_tdata (ibfd)->phdr; |
7051 | 0 | i < num_segments; |
7052 | 0 | i++, segment++) |
7053 | 0 | { |
7054 | 0 | unsigned int j; |
7055 | 0 | Elf_Internal_Phdr *segment2; |
7056 | |
|
7057 | 0 | if (segment->p_type == PT_INTERP) |
7058 | 0 | for (section = ibfd->sections; section; section = section->next) |
7059 | 0 | if (IS_SOLARIS_PT_INTERP (segment, section)) |
7060 | 0 | { |
7061 | | /* Mininal change so that the normal section to segment |
7062 | | assignment code will work. */ |
7063 | 0 | segment->p_vaddr = section->vma * opb; |
7064 | 0 | break; |
7065 | 0 | } |
7066 | |
|
7067 | 0 | if (segment->p_type != PT_LOAD) |
7068 | 0 | { |
7069 | | /* Remove PT_GNU_RELRO segment. */ |
7070 | 0 | if (segment->p_type == PT_GNU_RELRO) |
7071 | 0 | segment->p_type = PT_NULL; |
7072 | 0 | continue; |
7073 | 0 | } |
7074 | | |
7075 | | /* Determine if this segment overlaps any previous segments. */ |
7076 | 0 | for (j = 0, segment2 = elf_tdata (ibfd)->phdr; j < i; j++, segment2++) |
7077 | 0 | { |
7078 | 0 | bfd_signed_vma extra_length; |
7079 | |
|
7080 | 0 | if (segment2->p_type != PT_LOAD |
7081 | 0 | || !SEGMENT_OVERLAPS (segment, segment2)) |
7082 | 0 | continue; |
7083 | | |
7084 | | /* Merge the two segments together. */ |
7085 | 0 | if (segment2->p_vaddr < segment->p_vaddr) |
7086 | 0 | { |
7087 | | /* Extend SEGMENT2 to include SEGMENT and then delete |
7088 | | SEGMENT. */ |
7089 | 0 | extra_length = (segment_end (segment, segment->p_vaddr) |
7090 | 0 | - segment_end (segment2, segment2->p_vaddr)); |
7091 | |
|
7092 | 0 | if (extra_length > 0) |
7093 | 0 | { |
7094 | 0 | segment2->p_memsz += extra_length; |
7095 | 0 | segment2->p_filesz += extra_length; |
7096 | 0 | } |
7097 | |
|
7098 | 0 | segment->p_type = PT_NULL; |
7099 | | |
7100 | | /* Since we have deleted P we must restart the outer loop. */ |
7101 | 0 | i = 0; |
7102 | 0 | segment = elf_tdata (ibfd)->phdr; |
7103 | 0 | break; |
7104 | 0 | } |
7105 | 0 | else |
7106 | 0 | { |
7107 | | /* Extend SEGMENT to include SEGMENT2 and then delete |
7108 | | SEGMENT2. */ |
7109 | 0 | extra_length = (segment_end (segment2, segment2->p_vaddr) |
7110 | 0 | - segment_end (segment, segment->p_vaddr)); |
7111 | |
|
7112 | 0 | if (extra_length > 0) |
7113 | 0 | { |
7114 | 0 | segment->p_memsz += extra_length; |
7115 | 0 | segment->p_filesz += extra_length; |
7116 | 0 | } |
7117 | |
|
7118 | 0 | segment2->p_type = PT_NULL; |
7119 | 0 | } |
7120 | 0 | } |
7121 | 0 | } |
7122 | | |
7123 | | /* The second scan attempts to assign sections to segments. */ |
7124 | 0 | for (i = 0, segment = elf_tdata (ibfd)->phdr; |
7125 | 0 | i < num_segments; |
7126 | 0 | i++, segment++) |
7127 | 0 | { |
7128 | 0 | unsigned int section_count; |
7129 | 0 | asection **sections; |
7130 | 0 | asection *output_section; |
7131 | 0 | unsigned int isec; |
7132 | 0 | asection *matching_lma; |
7133 | 0 | asection *suggested_lma; |
7134 | 0 | unsigned int j; |
7135 | 0 | size_t amt; |
7136 | 0 | asection *first_section; |
7137 | |
|
7138 | 0 | if (segment->p_type == PT_NULL) |
7139 | 0 | continue; |
7140 | | |
7141 | 0 | first_section = NULL; |
7142 | | /* Compute how many sections might be placed into this segment. */ |
7143 | 0 | for (section = ibfd->sections, section_count = 0; |
7144 | 0 | section != NULL; |
7145 | 0 | section = section->next) |
7146 | 0 | { |
7147 | | /* Find the first section in the input segment, which may be |
7148 | | removed from the corresponding output segment. */ |
7149 | 0 | if (IS_SECTION_IN_INPUT_SEGMENT (section, segment, bed, opb)) |
7150 | 0 | { |
7151 | 0 | if (first_section == NULL) |
7152 | 0 | first_section = section; |
7153 | 0 | if (section->output_section != NULL) |
7154 | 0 | ++section_count; |
7155 | 0 | } |
7156 | 0 | } |
7157 | | |
7158 | | /* Allocate a segment map big enough to contain |
7159 | | all of the sections we have selected. */ |
7160 | 0 | amt = sizeof (struct elf_segment_map) - sizeof (asection *); |
7161 | 0 | amt += section_count * sizeof (asection *); |
7162 | 0 | map = (struct elf_segment_map *) bfd_zalloc (obfd, amt); |
7163 | 0 | if (map == NULL) |
7164 | 0 | return false; |
7165 | | |
7166 | | /* Initialise the fields of the segment map. Default to |
7167 | | using the physical address of the segment in the input BFD. */ |
7168 | 0 | map->next = NULL; |
7169 | 0 | map->p_type = segment->p_type; |
7170 | 0 | map->p_flags = segment->p_flags; |
7171 | 0 | map->p_flags_valid = 1; |
7172 | |
|
7173 | 0 | if (map->p_type == PT_LOAD |
7174 | 0 | && (ibfd->flags & D_PAGED) != 0 |
7175 | 0 | && maxpagesize > 1 |
7176 | 0 | && segment->p_align > 1) |
7177 | 0 | { |
7178 | 0 | map->p_align = segment->p_align; |
7179 | 0 | if (segment->p_align > maxpagesize) |
7180 | 0 | map->p_align = maxpagesize; |
7181 | 0 | map->p_align_valid = 1; |
7182 | 0 | } |
7183 | | |
7184 | | /* If the first section in the input segment is removed, there is |
7185 | | no need to preserve segment physical address in the corresponding |
7186 | | output segment. */ |
7187 | 0 | if (!first_section || first_section->output_section != NULL) |
7188 | 0 | { |
7189 | 0 | map->p_paddr = segment->p_paddr; |
7190 | 0 | map->p_paddr_valid = p_paddr_valid; |
7191 | 0 | } |
7192 | | |
7193 | | /* Determine if this segment contains the ELF file header |
7194 | | and if it contains the program headers themselves. */ |
7195 | 0 | map->includes_filehdr = (segment->p_offset == 0 |
7196 | 0 | && segment->p_filesz >= iehdr->e_ehsize); |
7197 | 0 | map->includes_phdrs = 0; |
7198 | |
|
7199 | 0 | if (!phdr_included || segment->p_type != PT_LOAD) |
7200 | 0 | { |
7201 | 0 | map->includes_phdrs = |
7202 | 0 | (segment->p_offset <= (bfd_vma) iehdr->e_phoff |
7203 | 0 | && (segment->p_offset + segment->p_filesz |
7204 | 0 | >= ((bfd_vma) iehdr->e_phoff |
7205 | 0 | + iehdr->e_phnum * iehdr->e_phentsize))); |
7206 | |
|
7207 | 0 | if (segment->p_type == PT_LOAD && map->includes_phdrs) |
7208 | 0 | phdr_included = true; |
7209 | 0 | } |
7210 | |
|
7211 | 0 | if (section_count == 0) |
7212 | 0 | { |
7213 | | /* Special segments, such as the PT_PHDR segment, may contain |
7214 | | no sections, but ordinary, loadable segments should contain |
7215 | | something. They are allowed by the ELF spec however, so only |
7216 | | a warning is produced. |
7217 | | Don't warn if an empty PT_LOAD contains the program headers. |
7218 | | There is however the valid use case of embedded systems which |
7219 | | have segments with p_filesz of 0 and a p_memsz > 0 to initialize |
7220 | | flash memory with zeros. No warning is shown for that case. */ |
7221 | 0 | if (segment->p_type == PT_LOAD |
7222 | 0 | && !map->includes_phdrs |
7223 | 0 | && (segment->p_filesz > 0 || segment->p_memsz == 0)) |
7224 | | /* xgettext:c-format */ |
7225 | 0 | _bfd_error_handler |
7226 | 0 | (_("%pB: warning: empty loadable segment detected" |
7227 | 0 | " at vaddr=%#" PRIx64 ", is this intentional?"), |
7228 | 0 | ibfd, (uint64_t) segment->p_vaddr); |
7229 | |
|
7230 | 0 | map->p_vaddr_offset = segment->p_vaddr / opb; |
7231 | 0 | map->count = 0; |
7232 | 0 | *pointer_to_map = map; |
7233 | 0 | pointer_to_map = &map->next; |
7234 | |
|
7235 | 0 | continue; |
7236 | 0 | } |
7237 | | |
7238 | | /* Now scan the sections in the input BFD again and attempt |
7239 | | to add their corresponding output sections to the segment map. |
7240 | | The problem here is how to handle an output section which has |
7241 | | been moved (ie had its LMA changed). There are four possibilities: |
7242 | | |
7243 | | 1. None of the sections have been moved. |
7244 | | In this case we can continue to use the segment LMA from the |
7245 | | input BFD. |
7246 | | |
7247 | | 2. All of the sections have been moved by the same amount. |
7248 | | In this case we can change the segment's LMA to match the LMA |
7249 | | of the first section. |
7250 | | |
7251 | | 3. Some of the sections have been moved, others have not. |
7252 | | In this case those sections which have not been moved can be |
7253 | | placed in the current segment which will have to have its size, |
7254 | | and possibly its LMA changed, and a new segment or segments will |
7255 | | have to be created to contain the other sections. |
7256 | | |
7257 | | 4. The sections have been moved, but not by the same amount. |
7258 | | In this case we can change the segment's LMA to match the LMA |
7259 | | of the first section and we will have to create a new segment |
7260 | | or segments to contain the other sections. |
7261 | | |
7262 | | In order to save time, we allocate an array to hold the section |
7263 | | pointers that we are interested in. As these sections get assigned |
7264 | | to a segment, they are removed from this array. */ |
7265 | | |
7266 | 0 | amt = section_count * sizeof (asection *); |
7267 | 0 | sections = (asection **) bfd_malloc (amt); |
7268 | 0 | if (sections == NULL) |
7269 | 0 | return false; |
7270 | | |
7271 | | /* Step One: Scan for segment vs section LMA conflicts. |
7272 | | Also add the sections to the section array allocated above. |
7273 | | Also add the sections to the current segment. In the common |
7274 | | case, where the sections have not been moved, this means that |
7275 | | we have completely filled the segment, and there is nothing |
7276 | | more to do. */ |
7277 | 0 | isec = 0; |
7278 | 0 | matching_lma = NULL; |
7279 | 0 | suggested_lma = NULL; |
7280 | |
|
7281 | 0 | for (section = first_section, j = 0; |
7282 | 0 | section != NULL; |
7283 | 0 | section = section->next) |
7284 | 0 | { |
7285 | 0 | if (INCLUDE_SECTION_IN_SEGMENT (section, segment, bed, opb)) |
7286 | 0 | { |
7287 | 0 | output_section = section->output_section; |
7288 | |
|
7289 | 0 | sections[j++] = section; |
7290 | | |
7291 | | /* The Solaris native linker always sets p_paddr to 0. |
7292 | | We try to catch that case here, and set it to the |
7293 | | correct value. Note - some backends require that |
7294 | | p_paddr be left as zero. */ |
7295 | 0 | if (!p_paddr_valid |
7296 | 0 | && segment->p_vaddr != 0 |
7297 | 0 | && !bed->want_p_paddr_set_to_zero |
7298 | 0 | && isec == 0 |
7299 | 0 | && output_section->lma != 0 |
7300 | 0 | && (align_power (segment->p_vaddr |
7301 | 0 | + (map->includes_filehdr |
7302 | 0 | ? iehdr->e_ehsize : 0) |
7303 | 0 | + (map->includes_phdrs |
7304 | 0 | ? iehdr->e_phnum * iehdr->e_phentsize |
7305 | 0 | : 0), |
7306 | 0 | output_section->alignment_power * opb) |
7307 | 0 | == (output_section->vma * opb))) |
7308 | 0 | map->p_paddr = segment->p_vaddr; |
7309 | | |
7310 | | /* Match up the physical address of the segment with the |
7311 | | LMA address of the output section. */ |
7312 | 0 | if (is_contained_by (output_section, segment, map->p_paddr, |
7313 | 0 | 0, opb, false) |
7314 | 0 | || is_note (section, segment)) |
7315 | 0 | { |
7316 | 0 | if (matching_lma == NULL |
7317 | 0 | || output_section->lma < matching_lma->lma) |
7318 | 0 | matching_lma = output_section; |
7319 | | |
7320 | | /* We assume that if the section fits within the segment |
7321 | | then it does not overlap any other section within that |
7322 | | segment. */ |
7323 | 0 | map->sections[isec++] = output_section; |
7324 | 0 | } |
7325 | 0 | else if (suggested_lma == NULL) |
7326 | 0 | suggested_lma = output_section; |
7327 | |
|
7328 | 0 | if (j == section_count) |
7329 | 0 | break; |
7330 | 0 | } |
7331 | 0 | } |
7332 | |
|
7333 | 0 | BFD_ASSERT (j == section_count); |
7334 | | |
7335 | | /* Step Two: Adjust the physical address of the current segment, |
7336 | | if necessary. */ |
7337 | 0 | if (isec == section_count) |
7338 | 0 | { |
7339 | | /* All of the sections fitted within the segment as currently |
7340 | | specified. This is the default case. Add the segment to |
7341 | | the list of built segments and carry on to process the next |
7342 | | program header in the input BFD. */ |
7343 | 0 | map->count = section_count; |
7344 | 0 | *pointer_to_map = map; |
7345 | 0 | pointer_to_map = &map->next; |
7346 | |
|
7347 | 0 | if (p_paddr_valid |
7348 | 0 | && !bed->want_p_paddr_set_to_zero) |
7349 | 0 | { |
7350 | 0 | bfd_vma hdr_size = 0; |
7351 | 0 | if (map->includes_filehdr) |
7352 | 0 | hdr_size = iehdr->e_ehsize; |
7353 | 0 | if (map->includes_phdrs) |
7354 | 0 | hdr_size += iehdr->e_phnum * iehdr->e_phentsize; |
7355 | | |
7356 | | /* Account for padding before the first section in the |
7357 | | segment. */ |
7358 | 0 | map->p_vaddr_offset = ((map->p_paddr + hdr_size) / opb |
7359 | 0 | - matching_lma->lma); |
7360 | 0 | } |
7361 | |
|
7362 | 0 | free (sections); |
7363 | 0 | continue; |
7364 | 0 | } |
7365 | 0 | else |
7366 | 0 | { |
7367 | | /* Change the current segment's physical address to match |
7368 | | the LMA of the first section that fitted, or if no |
7369 | | section fitted, the first section. */ |
7370 | 0 | if (matching_lma == NULL) |
7371 | 0 | matching_lma = suggested_lma; |
7372 | |
|
7373 | 0 | map->p_paddr = matching_lma->lma * opb; |
7374 | | |
7375 | | /* Offset the segment physical address from the lma |
7376 | | to allow for space taken up by elf headers. */ |
7377 | 0 | if (map->includes_phdrs) |
7378 | 0 | { |
7379 | 0 | map->p_paddr -= iehdr->e_phnum * iehdr->e_phentsize; |
7380 | | |
7381 | | /* iehdr->e_phnum is just an estimate of the number |
7382 | | of program headers that we will need. Make a note |
7383 | | here of the number we used and the segment we chose |
7384 | | to hold these headers, so that we can adjust the |
7385 | | offset when we know the correct value. */ |
7386 | 0 | phdr_adjust_num = iehdr->e_phnum; |
7387 | 0 | phdr_adjust_seg = map; |
7388 | 0 | } |
7389 | |
|
7390 | 0 | if (map->includes_filehdr) |
7391 | 0 | { |
7392 | 0 | bfd_vma align = (bfd_vma) 1 << matching_lma->alignment_power; |
7393 | 0 | map->p_paddr -= iehdr->e_ehsize; |
7394 | | /* We've subtracted off the size of headers from the |
7395 | | first section lma, but there may have been some |
7396 | | alignment padding before that section too. Try to |
7397 | | account for that by adjusting the segment lma down to |
7398 | | the same alignment. */ |
7399 | 0 | if (segment->p_align != 0 && segment->p_align < align) |
7400 | 0 | align = segment->p_align; |
7401 | 0 | map->p_paddr &= -(align * opb); |
7402 | 0 | } |
7403 | 0 | } |
7404 | | |
7405 | | /* Step Three: Loop over the sections again, this time assigning |
7406 | | those that fit to the current segment and removing them from the |
7407 | | sections array; but making sure not to leave large gaps. Once all |
7408 | | possible sections have been assigned to the current segment it is |
7409 | | added to the list of built segments and if sections still remain |
7410 | | to be assigned, a new segment is constructed before repeating |
7411 | | the loop. */ |
7412 | 0 | isec = 0; |
7413 | 0 | do |
7414 | 0 | { |
7415 | 0 | map->count = 0; |
7416 | 0 | suggested_lma = NULL; |
7417 | | |
7418 | | /* Fill the current segment with sections that fit. */ |
7419 | 0 | for (j = 0; j < section_count; j++) |
7420 | 0 | { |
7421 | 0 | section = sections[j]; |
7422 | |
|
7423 | 0 | if (section == NULL) |
7424 | 0 | continue; |
7425 | | |
7426 | 0 | output_section = section->output_section; |
7427 | |
|
7428 | 0 | BFD_ASSERT (output_section != NULL); |
7429 | |
|
7430 | 0 | if (is_contained_by (output_section, segment, map->p_paddr, |
7431 | 0 | 0, opb, false) |
7432 | 0 | || is_note (section, segment)) |
7433 | 0 | { |
7434 | 0 | if (map->count == 0) |
7435 | 0 | { |
7436 | | /* If the first section in a segment does not start at |
7437 | | the beginning of the segment, then something is |
7438 | | wrong. */ |
7439 | 0 | if (align_power (map->p_paddr |
7440 | 0 | + (map->includes_filehdr |
7441 | 0 | ? iehdr->e_ehsize : 0) |
7442 | 0 | + (map->includes_phdrs |
7443 | 0 | ? iehdr->e_phnum * iehdr->e_phentsize |
7444 | 0 | : 0), |
7445 | 0 | output_section->alignment_power * opb) |
7446 | 0 | != output_section->lma * opb) |
7447 | 0 | goto sorry; |
7448 | 0 | } |
7449 | 0 | else |
7450 | 0 | { |
7451 | 0 | asection *prev_sec; |
7452 | |
|
7453 | 0 | prev_sec = map->sections[map->count - 1]; |
7454 | | |
7455 | | /* If the gap between the end of the previous section |
7456 | | and the start of this section is more than |
7457 | | maxpagesize then we need to start a new segment. */ |
7458 | 0 | if ((BFD_ALIGN (prev_sec->lma + prev_sec->size, |
7459 | 0 | maxpagesize) |
7460 | 0 | < BFD_ALIGN (output_section->lma, maxpagesize)) |
7461 | 0 | || (prev_sec->lma + prev_sec->size |
7462 | 0 | > output_section->lma)) |
7463 | 0 | { |
7464 | 0 | if (suggested_lma == NULL) |
7465 | 0 | suggested_lma = output_section; |
7466 | |
|
7467 | 0 | continue; |
7468 | 0 | } |
7469 | 0 | } |
7470 | | |
7471 | 0 | map->sections[map->count++] = output_section; |
7472 | 0 | ++isec; |
7473 | 0 | sections[j] = NULL; |
7474 | 0 | if (segment->p_type == PT_LOAD) |
7475 | 0 | section->segment_mark = true; |
7476 | 0 | } |
7477 | 0 | else if (suggested_lma == NULL) |
7478 | 0 | suggested_lma = output_section; |
7479 | 0 | } |
7480 | | |
7481 | | /* PR 23932. A corrupt input file may contain sections that cannot |
7482 | | be assigned to any segment - because for example they have a |
7483 | | negative size - or segments that do not contain any sections. |
7484 | | But there are also valid reasons why a segment can be empty. |
7485 | | So allow a count of zero. */ |
7486 | | |
7487 | | /* Add the current segment to the list of built segments. */ |
7488 | 0 | *pointer_to_map = map; |
7489 | 0 | pointer_to_map = &map->next; |
7490 | |
|
7491 | 0 | if (isec < section_count) |
7492 | 0 | { |
7493 | | /* We still have not allocated all of the sections to |
7494 | | segments. Create a new segment here, initialise it |
7495 | | and carry on looping. */ |
7496 | 0 | amt = sizeof (struct elf_segment_map) - sizeof (asection *); |
7497 | 0 | amt += section_count * sizeof (asection *); |
7498 | 0 | map = (struct elf_segment_map *) bfd_zalloc (obfd, amt); |
7499 | 0 | if (map == NULL) |
7500 | 0 | { |
7501 | 0 | free (sections); |
7502 | 0 | return false; |
7503 | 0 | } |
7504 | | |
7505 | | /* Initialise the fields of the segment map. Set the physical |
7506 | | physical address to the LMA of the first section that has |
7507 | | not yet been assigned. */ |
7508 | 0 | map->next = NULL; |
7509 | 0 | map->p_type = segment->p_type; |
7510 | 0 | map->p_flags = segment->p_flags; |
7511 | 0 | map->p_flags_valid = 1; |
7512 | 0 | map->p_paddr = suggested_lma->lma * opb; |
7513 | 0 | map->p_paddr_valid = p_paddr_valid; |
7514 | 0 | map->includes_filehdr = 0; |
7515 | 0 | map->includes_phdrs = 0; |
7516 | 0 | } |
7517 | | |
7518 | 0 | continue; |
7519 | 0 | sorry: |
7520 | 0 | bfd_set_error (bfd_error_sorry); |
7521 | 0 | free (sections); |
7522 | 0 | return false; |
7523 | 0 | } |
7524 | 0 | while (isec < section_count); |
7525 | | |
7526 | 0 | free (sections); |
7527 | 0 | } |
7528 | | |
7529 | 0 | elf_seg_map (obfd) = map_first; |
7530 | | |
7531 | | /* If we had to estimate the number of program headers that were |
7532 | | going to be needed, then check our estimate now and adjust |
7533 | | the offset if necessary. */ |
7534 | 0 | if (phdr_adjust_seg != NULL) |
7535 | 0 | { |
7536 | 0 | unsigned int count; |
7537 | |
|
7538 | 0 | for (count = 0, map = map_first; map != NULL; map = map->next) |
7539 | 0 | count++; |
7540 | |
|
7541 | 0 | if (count > phdr_adjust_num) |
7542 | 0 | phdr_adjust_seg->p_paddr |
7543 | 0 | -= (count - phdr_adjust_num) * iehdr->e_phentsize; |
7544 | |
|
7545 | 0 | for (map = map_first; map != NULL; map = map->next) |
7546 | 0 | if (map->p_type == PT_PHDR) |
7547 | 0 | { |
7548 | 0 | bfd_vma adjust |
7549 | 0 | = phdr_adjust_seg->includes_filehdr ? iehdr->e_ehsize : 0; |
7550 | 0 | map->p_paddr = phdr_adjust_seg->p_paddr + adjust; |
7551 | 0 | break; |
7552 | 0 | } |
7553 | 0 | } |
7554 | |
|
7555 | 0 | #undef IS_SOLARIS_PT_INTERP |
7556 | 0 | #undef IS_SECTION_IN_INPUT_SEGMENT |
7557 | 0 | #undef INCLUDE_SECTION_IN_SEGMENT |
7558 | 0 | #undef SEGMENT_AFTER_SEGMENT |
7559 | 0 | #undef SEGMENT_OVERLAPS |
7560 | 0 | return true; |
7561 | 0 | } |
7562 | | |
7563 | | /* Return true if p_align in the ELF program header in ABFD is valid. */ |
7564 | | |
7565 | | static bool |
7566 | | elf_is_p_align_valid (bfd *abfd) |
7567 | 0 | { |
7568 | 0 | unsigned int i; |
7569 | 0 | Elf_Internal_Phdr *segment; |
7570 | 0 | unsigned int num_segments; |
7571 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
7572 | 0 | bfd_size_type maxpagesize = bed->maxpagesize; |
7573 | 0 | bfd_size_type p_align = bed->p_align; |
7574 | | |
7575 | | /* Return true if the default p_align value isn't set or the maximum |
7576 | | page size is the same as the minimum page size. */ |
7577 | 0 | if (p_align == 0 || maxpagesize == bed->minpagesize) |
7578 | 0 | return true; |
7579 | | |
7580 | | /* When the default p_align value is set, p_align may be set to the |
7581 | | default p_align value while segments are aligned to the maximum |
7582 | | page size. In this case, the input p_align will be ignored and |
7583 | | the maximum page size will be used to align the output segments. */ |
7584 | 0 | segment = elf_tdata (abfd)->phdr; |
7585 | 0 | num_segments = elf_elfheader (abfd)->e_phnum; |
7586 | 0 | for (i = 0; i < num_segments; i++, segment++) |
7587 | 0 | if (segment->p_type == PT_LOAD |
7588 | 0 | && (segment->p_align != p_align |
7589 | 0 | || vma_page_aligned_bias (segment->p_vaddr, |
7590 | 0 | segment->p_offset, |
7591 | 0 | maxpagesize) != 0)) |
7592 | 0 | return true; |
7593 | | |
7594 | 0 | return false; |
7595 | 0 | } |
7596 | | |
7597 | | /* Copy ELF program header information. */ |
7598 | | |
7599 | | static bool |
7600 | | copy_elf_program_header (bfd *ibfd, bfd *obfd) |
7601 | 0 | { |
7602 | 0 | Elf_Internal_Ehdr *iehdr; |
7603 | 0 | struct elf_segment_map *map; |
7604 | 0 | struct elf_segment_map *map_first; |
7605 | 0 | struct elf_segment_map **pointer_to_map; |
7606 | 0 | Elf_Internal_Phdr *segment; |
7607 | 0 | unsigned int i; |
7608 | 0 | unsigned int num_segments; |
7609 | 0 | bool phdr_included = false; |
7610 | 0 | bool p_paddr_valid; |
7611 | 0 | bool p_palign_valid; |
7612 | 0 | unsigned int opb = bfd_octets_per_byte (ibfd, NULL); |
7613 | |
|
7614 | 0 | iehdr = elf_elfheader (ibfd); |
7615 | |
|
7616 | 0 | map_first = NULL; |
7617 | 0 | pointer_to_map = &map_first; |
7618 | | |
7619 | | /* If all the segment p_paddr fields are zero, don't set |
7620 | | map->p_paddr_valid. */ |
7621 | 0 | p_paddr_valid = false; |
7622 | 0 | num_segments = elf_elfheader (ibfd)->e_phnum; |
7623 | 0 | for (i = 0, segment = elf_tdata (ibfd)->phdr; |
7624 | 0 | i < num_segments; |
7625 | 0 | i++, segment++) |
7626 | 0 | if (segment->p_paddr != 0) |
7627 | 0 | { |
7628 | 0 | p_paddr_valid = true; |
7629 | 0 | break; |
7630 | 0 | } |
7631 | |
|
7632 | 0 | p_palign_valid = elf_is_p_align_valid (ibfd); |
7633 | |
|
7634 | 0 | for (i = 0, segment = elf_tdata (ibfd)->phdr; |
7635 | 0 | i < num_segments; |
7636 | 0 | i++, segment++) |
7637 | 0 | { |
7638 | 0 | asection *section; |
7639 | 0 | unsigned int section_count; |
7640 | 0 | size_t amt; |
7641 | 0 | Elf_Internal_Shdr *this_hdr; |
7642 | 0 | asection *first_section = NULL; |
7643 | 0 | asection *lowest_section; |
7644 | | |
7645 | | /* Compute how many sections are in this segment. */ |
7646 | 0 | for (section = ibfd->sections, section_count = 0; |
7647 | 0 | section != NULL; |
7648 | 0 | section = section->next) |
7649 | 0 | { |
7650 | 0 | this_hdr = &(elf_section_data(section)->this_hdr); |
7651 | 0 | if (ELF_SECTION_IN_SEGMENT (this_hdr, segment)) |
7652 | 0 | { |
7653 | 0 | if (first_section == NULL) |
7654 | 0 | first_section = section; |
7655 | 0 | section_count++; |
7656 | 0 | } |
7657 | 0 | } |
7658 | | |
7659 | | /* Allocate a segment map big enough to contain |
7660 | | all of the sections we have selected. */ |
7661 | 0 | amt = sizeof (struct elf_segment_map) - sizeof (asection *); |
7662 | 0 | amt += section_count * sizeof (asection *); |
7663 | 0 | map = (struct elf_segment_map *) bfd_zalloc (obfd, amt); |
7664 | 0 | if (map == NULL) |
7665 | 0 | return false; |
7666 | | |
7667 | | /* Initialize the fields of the output segment map with the |
7668 | | input segment. */ |
7669 | 0 | map->next = NULL; |
7670 | 0 | map->p_type = segment->p_type; |
7671 | 0 | map->p_flags = segment->p_flags; |
7672 | 0 | map->p_flags_valid = 1; |
7673 | 0 | map->p_paddr = segment->p_paddr; |
7674 | 0 | map->p_paddr_valid = p_paddr_valid; |
7675 | 0 | map->p_align = segment->p_align; |
7676 | | /* Keep p_align of PT_GNU_STACK for stack alignment. */ |
7677 | 0 | map->p_align_valid = (map->p_type == PT_GNU_STACK |
7678 | 0 | || p_palign_valid); |
7679 | 0 | map->p_vaddr_offset = 0; |
7680 | |
|
7681 | 0 | if (map->p_type == PT_GNU_RELRO |
7682 | 0 | || map->p_type == PT_GNU_STACK) |
7683 | 0 | { |
7684 | | /* The PT_GNU_RELRO segment may contain the first a few |
7685 | | bytes in the .got.plt section even if the whole .got.plt |
7686 | | section isn't in the PT_GNU_RELRO segment. We won't |
7687 | | change the size of the PT_GNU_RELRO segment. |
7688 | | Similarly, PT_GNU_STACK size is significant on uclinux |
7689 | | systems. */ |
7690 | 0 | map->p_size = segment->p_memsz; |
7691 | 0 | map->p_size_valid = 1; |
7692 | 0 | } |
7693 | | |
7694 | | /* Determine if this segment contains the ELF file header |
7695 | | and if it contains the program headers themselves. */ |
7696 | 0 | map->includes_filehdr = (segment->p_offset == 0 |
7697 | 0 | && segment->p_filesz >= iehdr->e_ehsize); |
7698 | |
|
7699 | 0 | map->includes_phdrs = 0; |
7700 | 0 | if (! phdr_included || segment->p_type != PT_LOAD) |
7701 | 0 | { |
7702 | 0 | map->includes_phdrs = |
7703 | 0 | (segment->p_offset <= (bfd_vma) iehdr->e_phoff |
7704 | 0 | && (segment->p_offset + segment->p_filesz |
7705 | 0 | >= ((bfd_vma) iehdr->e_phoff |
7706 | 0 | + iehdr->e_phnum * iehdr->e_phentsize))); |
7707 | |
|
7708 | 0 | if (segment->p_type == PT_LOAD && map->includes_phdrs) |
7709 | 0 | phdr_included = true; |
7710 | 0 | } |
7711 | |
|
7712 | 0 | lowest_section = NULL; |
7713 | 0 | if (section_count != 0) |
7714 | 0 | { |
7715 | 0 | unsigned int isec = 0; |
7716 | |
|
7717 | 0 | for (section = first_section; |
7718 | 0 | section != NULL; |
7719 | 0 | section = section->next) |
7720 | 0 | { |
7721 | 0 | this_hdr = &(elf_section_data(section)->this_hdr); |
7722 | 0 | if (ELF_SECTION_IN_SEGMENT (this_hdr, segment)) |
7723 | 0 | { |
7724 | 0 | map->sections[isec++] = section->output_section; |
7725 | 0 | if ((section->flags & SEC_ALLOC) != 0) |
7726 | 0 | { |
7727 | 0 | bfd_vma seg_off; |
7728 | |
|
7729 | 0 | if (lowest_section == NULL |
7730 | 0 | || section->lma < lowest_section->lma) |
7731 | 0 | lowest_section = section; |
7732 | | |
7733 | | /* Section lmas are set up from PT_LOAD header |
7734 | | p_paddr in _bfd_elf_make_section_from_shdr. |
7735 | | If this header has a p_paddr that disagrees |
7736 | | with the section lma, flag the p_paddr as |
7737 | | invalid. */ |
7738 | 0 | if ((section->flags & SEC_LOAD) != 0) |
7739 | 0 | seg_off = this_hdr->sh_offset - segment->p_offset; |
7740 | 0 | else |
7741 | 0 | seg_off = this_hdr->sh_addr - segment->p_vaddr; |
7742 | 0 | if (section->lma * opb - segment->p_paddr != seg_off) |
7743 | 0 | map->p_paddr_valid = false; |
7744 | 0 | } |
7745 | 0 | if (isec == section_count) |
7746 | 0 | break; |
7747 | 0 | } |
7748 | 0 | } |
7749 | 0 | } |
7750 | |
|
7751 | 0 | if (section_count == 0) |
7752 | 0 | map->p_vaddr_offset = segment->p_vaddr / opb; |
7753 | 0 | else if (map->p_paddr_valid) |
7754 | 0 | { |
7755 | | /* Account for padding before the first section in the segment. */ |
7756 | 0 | bfd_vma hdr_size = 0; |
7757 | 0 | if (map->includes_filehdr) |
7758 | 0 | hdr_size = iehdr->e_ehsize; |
7759 | 0 | if (map->includes_phdrs) |
7760 | 0 | hdr_size += iehdr->e_phnum * iehdr->e_phentsize; |
7761 | |
|
7762 | 0 | map->p_vaddr_offset = ((map->p_paddr + hdr_size) / opb |
7763 | 0 | - (lowest_section ? lowest_section->lma : 0)); |
7764 | 0 | } |
7765 | |
|
7766 | 0 | map->count = section_count; |
7767 | 0 | *pointer_to_map = map; |
7768 | 0 | pointer_to_map = &map->next; |
7769 | 0 | } |
7770 | | |
7771 | 0 | elf_seg_map (obfd) = map_first; |
7772 | 0 | return true; |
7773 | 0 | } |
7774 | | |
7775 | | /* Copy private BFD data. This copies or rewrites ELF program header |
7776 | | information. */ |
7777 | | |
7778 | | static bool |
7779 | | copy_private_bfd_data (bfd *ibfd, bfd *obfd) |
7780 | 0 | { |
7781 | 0 | bfd_vma maxpagesize; |
7782 | |
|
7783 | 0 | if (bfd_get_flavour (ibfd) != bfd_target_elf_flavour |
7784 | 0 | || bfd_get_flavour (obfd) != bfd_target_elf_flavour) |
7785 | 0 | return true; |
7786 | | |
7787 | 0 | if (elf_tdata (ibfd)->phdr == NULL) |
7788 | 0 | return true; |
7789 | | |
7790 | 0 | if (ibfd->xvec == obfd->xvec) |
7791 | 0 | { |
7792 | | /* Check to see if any sections in the input BFD |
7793 | | covered by ELF program header have changed. */ |
7794 | 0 | Elf_Internal_Phdr *segment; |
7795 | 0 | asection *section, *osec; |
7796 | 0 | unsigned int i, num_segments; |
7797 | 0 | Elf_Internal_Shdr *this_hdr; |
7798 | 0 | const struct elf_backend_data *bed; |
7799 | |
|
7800 | 0 | bed = get_elf_backend_data (ibfd); |
7801 | | |
7802 | | /* Regenerate the segment map if p_paddr is set to 0. */ |
7803 | 0 | if (bed->want_p_paddr_set_to_zero) |
7804 | 0 | goto rewrite; |
7805 | | |
7806 | | /* Initialize the segment mark field. */ |
7807 | 0 | for (section = obfd->sections; section != NULL; |
7808 | 0 | section = section->next) |
7809 | 0 | section->segment_mark = false; |
7810 | |
|
7811 | 0 | num_segments = elf_elfheader (ibfd)->e_phnum; |
7812 | 0 | for (i = 0, segment = elf_tdata (ibfd)->phdr; |
7813 | 0 | i < num_segments; |
7814 | 0 | i++, segment++) |
7815 | 0 | { |
7816 | | /* PR binutils/3535. The Solaris linker always sets the p_paddr |
7817 | | and p_memsz fields of special segments (DYNAMIC, INTERP) to 0 |
7818 | | which severly confuses things, so always regenerate the segment |
7819 | | map in this case. */ |
7820 | 0 | if (segment->p_paddr == 0 |
7821 | 0 | && segment->p_memsz == 0 |
7822 | 0 | && (segment->p_type == PT_INTERP |
7823 | 0 | || segment->p_type == PT_DYNAMIC)) |
7824 | 0 | goto rewrite; |
7825 | | |
7826 | 0 | for (section = ibfd->sections; |
7827 | 0 | section != NULL; section = section->next) |
7828 | 0 | { |
7829 | | /* We mark the output section so that we know it comes |
7830 | | from the input BFD. */ |
7831 | 0 | osec = section->output_section; |
7832 | 0 | if (osec) |
7833 | 0 | osec->segment_mark = true; |
7834 | | |
7835 | | /* Check if this section is covered by the segment. */ |
7836 | 0 | this_hdr = &(elf_section_data(section)->this_hdr); |
7837 | 0 | if (ELF_SECTION_IN_SEGMENT (this_hdr, segment)) |
7838 | 0 | { |
7839 | | /* FIXME: Check if its output section is changed or |
7840 | | removed. What else do we need to check? */ |
7841 | 0 | if (osec == NULL |
7842 | 0 | || section->flags != osec->flags |
7843 | 0 | || section->lma != osec->lma |
7844 | 0 | || section->vma != osec->vma |
7845 | 0 | || section->size != osec->size |
7846 | 0 | || section->rawsize != osec->rawsize |
7847 | 0 | || section->alignment_power != osec->alignment_power) |
7848 | 0 | goto rewrite; |
7849 | 0 | } |
7850 | 0 | } |
7851 | 0 | } |
7852 | | |
7853 | | /* Check to see if any output section do not come from the |
7854 | | input BFD. */ |
7855 | 0 | for (section = obfd->sections; section != NULL; |
7856 | 0 | section = section->next) |
7857 | 0 | { |
7858 | 0 | if (!section->segment_mark) |
7859 | 0 | goto rewrite; |
7860 | 0 | else |
7861 | 0 | section->segment_mark = false; |
7862 | 0 | } |
7863 | | |
7864 | 0 | return copy_elf_program_header (ibfd, obfd); |
7865 | 0 | } |
7866 | | |
7867 | 0 | rewrite: |
7868 | 0 | maxpagesize = 0; |
7869 | 0 | if (ibfd->xvec == obfd->xvec) |
7870 | 0 | { |
7871 | | /* When rewriting program header, set the output maxpagesize to |
7872 | | the maximum alignment of input PT_LOAD segments. */ |
7873 | 0 | Elf_Internal_Phdr *segment; |
7874 | 0 | unsigned int i; |
7875 | 0 | unsigned int num_segments = elf_elfheader (ibfd)->e_phnum; |
7876 | |
|
7877 | 0 | for (i = 0, segment = elf_tdata (ibfd)->phdr; |
7878 | 0 | i < num_segments; |
7879 | 0 | i++, segment++) |
7880 | 0 | if (segment->p_type == PT_LOAD |
7881 | 0 | && maxpagesize < segment->p_align) |
7882 | 0 | { |
7883 | | /* PR 17512: file: f17299af. */ |
7884 | 0 | if (segment->p_align > (bfd_vma) 1 << ((sizeof (bfd_vma) * 8) - 2)) |
7885 | | /* xgettext:c-format */ |
7886 | 0 | _bfd_error_handler (_("%pB: warning: segment alignment of %#" |
7887 | 0 | PRIx64 " is too large"), |
7888 | 0 | ibfd, (uint64_t) segment->p_align); |
7889 | 0 | else |
7890 | 0 | maxpagesize = segment->p_align; |
7891 | 0 | } |
7892 | 0 | } |
7893 | 0 | if (maxpagesize == 0) |
7894 | 0 | maxpagesize = get_elf_backend_data (obfd)->maxpagesize; |
7895 | |
|
7896 | 0 | return rewrite_elf_program_header (ibfd, obfd, maxpagesize); |
7897 | 0 | } |
7898 | | |
7899 | | /* Initialize private output section information from input section. */ |
7900 | | |
7901 | | bool |
7902 | | _bfd_elf_init_private_section_data (bfd *ibfd, |
7903 | | asection *isec, |
7904 | | bfd *obfd, |
7905 | | asection *osec, |
7906 | | struct bfd_link_info *link_info) |
7907 | | |
7908 | 0 | { |
7909 | 0 | Elf_Internal_Shdr *ihdr, *ohdr; |
7910 | 0 | bool final_link = (link_info != NULL |
7911 | 0 | && !bfd_link_relocatable (link_info)); |
7912 | |
|
7913 | 0 | if (ibfd->xvec->flavour != bfd_target_elf_flavour |
7914 | 0 | || obfd->xvec->flavour != bfd_target_elf_flavour) |
7915 | 0 | return true; |
7916 | | |
7917 | 0 | BFD_ASSERT (elf_section_data (osec) != NULL); |
7918 | | |
7919 | | /* If this is a known ABI section, ELF section type and flags may |
7920 | | have been set up when OSEC was created. For normal sections we |
7921 | | allow the user to override the type and flags other than |
7922 | | SHF_MASKOS and SHF_MASKPROC. */ |
7923 | 0 | if (elf_section_type (osec) == SHT_PROGBITS |
7924 | 0 | || elf_section_type (osec) == SHT_NOTE |
7925 | 0 | || elf_section_type (osec) == SHT_NOBITS) |
7926 | 0 | elf_section_type (osec) = SHT_NULL; |
7927 | | /* For objcopy and relocatable link, copy the ELF section type from |
7928 | | the input file if the BFD section flags are the same. (If they |
7929 | | are different the user may be doing something like |
7930 | | "objcopy --set-section-flags .text=alloc,data".) For a final |
7931 | | link allow some flags that the linker clears to differ. */ |
7932 | 0 | if (elf_section_type (osec) == SHT_NULL |
7933 | 0 | && (osec->flags == isec->flags |
7934 | 0 | || (final_link |
7935 | 0 | && ((osec->flags ^ isec->flags) |
7936 | 0 | & ~(SEC_LINK_ONCE | SEC_LINK_DUPLICATES | SEC_RELOC)) == 0))) |
7937 | 0 | elf_section_type (osec) = elf_section_type (isec); |
7938 | | |
7939 | | /* FIXME: Is this correct for all OS/PROC specific flags? */ |
7940 | 0 | elf_section_flags (osec) = (elf_section_flags (isec) |
7941 | 0 | & (SHF_MASKOS | SHF_MASKPROC)); |
7942 | | |
7943 | | /* Copy sh_info from input for mbind section. */ |
7944 | 0 | if ((elf_tdata (ibfd)->has_gnu_osabi & elf_gnu_osabi_mbind) != 0 |
7945 | 0 | && elf_section_flags (isec) & SHF_GNU_MBIND) |
7946 | 0 | elf_section_data (osec)->this_hdr.sh_info |
7947 | 0 | = elf_section_data (isec)->this_hdr.sh_info; |
7948 | | |
7949 | | /* Set things up for objcopy and relocatable link. The output |
7950 | | SHT_GROUP section will have its elf_next_in_group pointing back |
7951 | | to the input group members. Ignore linker created group section. |
7952 | | See elfNN_ia64_object_p in elfxx-ia64.c. */ |
7953 | 0 | if ((link_info == NULL |
7954 | 0 | || !link_info->resolve_section_groups) |
7955 | 0 | && (elf_sec_group (isec) == NULL |
7956 | 0 | || (elf_sec_group (isec)->flags & SEC_LINKER_CREATED) == 0)) |
7957 | 0 | { |
7958 | 0 | if (elf_section_flags (isec) & SHF_GROUP) |
7959 | 0 | elf_section_flags (osec) |= SHF_GROUP; |
7960 | 0 | elf_next_in_group (osec) = elf_next_in_group (isec); |
7961 | 0 | elf_section_data (osec)->group = elf_section_data (isec)->group; |
7962 | 0 | } |
7963 | | |
7964 | | /* If not decompress, preserve SHF_COMPRESSED. */ |
7965 | 0 | if (!final_link && (ibfd->flags & BFD_DECOMPRESS) == 0) |
7966 | 0 | elf_section_flags (osec) |= (elf_section_flags (isec) |
7967 | 0 | & SHF_COMPRESSED); |
7968 | |
|
7969 | 0 | ihdr = &elf_section_data (isec)->this_hdr; |
7970 | | |
7971 | | /* We need to handle elf_linked_to_section for SHF_LINK_ORDER. We |
7972 | | don't use the output section of the linked-to section since it |
7973 | | may be NULL at this point. */ |
7974 | 0 | if ((ihdr->sh_flags & SHF_LINK_ORDER) != 0) |
7975 | 0 | { |
7976 | 0 | ohdr = &elf_section_data (osec)->this_hdr; |
7977 | 0 | ohdr->sh_flags |= SHF_LINK_ORDER; |
7978 | 0 | elf_linked_to_section (osec) = elf_linked_to_section (isec); |
7979 | 0 | } |
7980 | |
|
7981 | 0 | osec->use_rela_p = isec->use_rela_p; |
7982 | |
|
7983 | 0 | return true; |
7984 | 0 | } |
7985 | | |
7986 | | /* Copy private section information. This copies over the entsize |
7987 | | field, and sometimes the info field. */ |
7988 | | |
7989 | | bool |
7990 | | _bfd_elf_copy_private_section_data (bfd *ibfd, |
7991 | | asection *isec, |
7992 | | bfd *obfd, |
7993 | | asection *osec) |
7994 | 0 | { |
7995 | 0 | Elf_Internal_Shdr *ihdr, *ohdr; |
7996 | |
|
7997 | 0 | if (ibfd->xvec->flavour != bfd_target_elf_flavour |
7998 | 0 | || obfd->xvec->flavour != bfd_target_elf_flavour) |
7999 | 0 | return true; |
8000 | | |
8001 | 0 | ihdr = &elf_section_data (isec)->this_hdr; |
8002 | 0 | ohdr = &elf_section_data (osec)->this_hdr; |
8003 | |
|
8004 | 0 | ohdr->sh_entsize = ihdr->sh_entsize; |
8005 | |
|
8006 | 0 | if (ihdr->sh_type == SHT_SYMTAB |
8007 | 0 | || ihdr->sh_type == SHT_DYNSYM |
8008 | 0 | || ihdr->sh_type == SHT_GNU_verneed |
8009 | 0 | || ihdr->sh_type == SHT_GNU_verdef) |
8010 | 0 | ohdr->sh_info = ihdr->sh_info; |
8011 | |
|
8012 | 0 | return _bfd_elf_init_private_section_data (ibfd, isec, obfd, osec, |
8013 | 0 | NULL); |
8014 | 0 | } |
8015 | | |
8016 | | /* Look at all the SHT_GROUP sections in IBFD, making any adjustments |
8017 | | necessary if we are removing either the SHT_GROUP section or any of |
8018 | | the group member sections. DISCARDED is the value that a section's |
8019 | | output_section has if the section will be discarded, NULL when this |
8020 | | function is called from objcopy, bfd_abs_section_ptr when called |
8021 | | from the linker. */ |
8022 | | |
8023 | | bool |
8024 | | _bfd_elf_fixup_group_sections (bfd *ibfd, asection *discarded) |
8025 | 0 | { |
8026 | 0 | asection *isec; |
8027 | |
|
8028 | 0 | for (isec = ibfd->sections; isec != NULL; isec = isec->next) |
8029 | 0 | if (elf_section_type (isec) == SHT_GROUP) |
8030 | 0 | { |
8031 | 0 | asection *first = elf_next_in_group (isec); |
8032 | 0 | asection *s = first; |
8033 | 0 | bfd_size_type removed = 0; |
8034 | |
|
8035 | 0 | while (s != NULL) |
8036 | 0 | { |
8037 | | /* If this member section is being output but the |
8038 | | SHT_GROUP section is not, then clear the group info |
8039 | | set up by _bfd_elf_copy_private_section_data. */ |
8040 | 0 | if (s->output_section != discarded |
8041 | 0 | && isec->output_section == discarded) |
8042 | 0 | { |
8043 | 0 | elf_section_flags (s->output_section) &= ~SHF_GROUP; |
8044 | 0 | elf_group_name (s->output_section) = NULL; |
8045 | 0 | } |
8046 | 0 | else |
8047 | 0 | { |
8048 | 0 | struct bfd_elf_section_data *elf_sec = elf_section_data (s); |
8049 | 0 | if (s->output_section == discarded |
8050 | 0 | && isec->output_section != discarded) |
8051 | 0 | { |
8052 | | /* Conversely, if the member section is not being |
8053 | | output but the SHT_GROUP section is, then adjust |
8054 | | its size. */ |
8055 | 0 | removed += 4; |
8056 | 0 | if (elf_sec->rel.hdr != NULL |
8057 | 0 | && (elf_sec->rel.hdr->sh_flags & SHF_GROUP) != 0) |
8058 | 0 | removed += 4; |
8059 | 0 | if (elf_sec->rela.hdr != NULL |
8060 | 0 | && (elf_sec->rela.hdr->sh_flags & SHF_GROUP) != 0) |
8061 | 0 | removed += 4; |
8062 | 0 | } |
8063 | 0 | else |
8064 | 0 | { |
8065 | | /* Also adjust for zero-sized relocation member |
8066 | | section. */ |
8067 | 0 | if (elf_sec->rel.hdr != NULL |
8068 | 0 | && elf_sec->rel.hdr->sh_size == 0) |
8069 | 0 | removed += 4; |
8070 | 0 | if (elf_sec->rela.hdr != NULL |
8071 | 0 | && elf_sec->rela.hdr->sh_size == 0) |
8072 | 0 | removed += 4; |
8073 | 0 | } |
8074 | 0 | } |
8075 | 0 | s = elf_next_in_group (s); |
8076 | 0 | if (s == first) |
8077 | 0 | break; |
8078 | 0 | } |
8079 | 0 | if (removed != 0) |
8080 | 0 | { |
8081 | 0 | if (discarded != NULL) |
8082 | 0 | { |
8083 | | /* If we've been called for ld -r, then we need to |
8084 | | adjust the input section size. */ |
8085 | 0 | if (isec->rawsize == 0) |
8086 | 0 | isec->rawsize = isec->size; |
8087 | 0 | isec->size = isec->rawsize - removed; |
8088 | 0 | if (isec->size <= 4) |
8089 | 0 | { |
8090 | 0 | isec->size = 0; |
8091 | 0 | isec->flags |= SEC_EXCLUDE; |
8092 | 0 | } |
8093 | 0 | } |
8094 | 0 | else if (isec->output_section != NULL) |
8095 | 0 | { |
8096 | | /* Adjust the output section size when called from |
8097 | | objcopy. */ |
8098 | 0 | isec->output_section->size -= removed; |
8099 | 0 | if (isec->output_section->size <= 4) |
8100 | 0 | { |
8101 | 0 | isec->output_section->size = 0; |
8102 | 0 | isec->output_section->flags |= SEC_EXCLUDE; |
8103 | 0 | } |
8104 | 0 | } |
8105 | 0 | } |
8106 | 0 | } |
8107 | |
|
8108 | 0 | return true; |
8109 | 0 | } |
8110 | | |
8111 | | /* Copy private header information. */ |
8112 | | |
8113 | | bool |
8114 | | _bfd_elf_copy_private_header_data (bfd *ibfd, bfd *obfd) |
8115 | 0 | { |
8116 | 0 | if (bfd_get_flavour (ibfd) != bfd_target_elf_flavour |
8117 | 0 | || bfd_get_flavour (obfd) != bfd_target_elf_flavour) |
8118 | 0 | return true; |
8119 | | |
8120 | | /* Copy over private BFD data if it has not already been copied. |
8121 | | This must be done here, rather than in the copy_private_bfd_data |
8122 | | entry point, because the latter is called after the section |
8123 | | contents have been set, which means that the program headers have |
8124 | | already been worked out. */ |
8125 | 0 | if (elf_seg_map (obfd) == NULL && elf_tdata (ibfd)->phdr != NULL) |
8126 | 0 | { |
8127 | 0 | if (! copy_private_bfd_data (ibfd, obfd)) |
8128 | 0 | return false; |
8129 | 0 | } |
8130 | | |
8131 | 0 | return _bfd_elf_fixup_group_sections (ibfd, NULL); |
8132 | 0 | } |
8133 | | |
8134 | | /* Copy private symbol information. If this symbol is in a section |
8135 | | which we did not map into a BFD section, try to map the section |
8136 | | index correctly. We use special macro definitions for the mapped |
8137 | | section indices; these definitions are interpreted by the |
8138 | | swap_out_syms function. */ |
8139 | | |
8140 | 0 | #define MAP_ONESYMTAB (SHN_HIOS + 1) |
8141 | 0 | #define MAP_DYNSYMTAB (SHN_HIOS + 2) |
8142 | 0 | #define MAP_STRTAB (SHN_HIOS + 3) |
8143 | 0 | #define MAP_SHSTRTAB (SHN_HIOS + 4) |
8144 | 0 | #define MAP_SYM_SHNDX (SHN_HIOS + 5) |
8145 | | |
8146 | | bool |
8147 | | _bfd_elf_copy_private_symbol_data (bfd *ibfd, |
8148 | | asymbol *isymarg, |
8149 | | bfd *obfd, |
8150 | | asymbol *osymarg) |
8151 | 0 | { |
8152 | 0 | elf_symbol_type *isym, *osym; |
8153 | |
|
8154 | 0 | if (bfd_get_flavour (ibfd) != bfd_target_elf_flavour |
8155 | 0 | || bfd_get_flavour (obfd) != bfd_target_elf_flavour) |
8156 | 0 | return true; |
8157 | | |
8158 | 0 | isym = elf_symbol_from (isymarg); |
8159 | 0 | osym = elf_symbol_from (osymarg); |
8160 | |
|
8161 | 0 | if (isym != NULL |
8162 | 0 | && isym->internal_elf_sym.st_shndx != 0 |
8163 | 0 | && osym != NULL |
8164 | 0 | && bfd_is_abs_section (isym->symbol.section)) |
8165 | 0 | { |
8166 | 0 | unsigned int shndx; |
8167 | |
|
8168 | 0 | shndx = isym->internal_elf_sym.st_shndx; |
8169 | 0 | if (shndx == elf_onesymtab (ibfd)) |
8170 | 0 | shndx = MAP_ONESYMTAB; |
8171 | 0 | else if (shndx == elf_dynsymtab (ibfd)) |
8172 | 0 | shndx = MAP_DYNSYMTAB; |
8173 | 0 | else if (shndx == elf_strtab_sec (ibfd)) |
8174 | 0 | shndx = MAP_STRTAB; |
8175 | 0 | else if (shndx == elf_shstrtab_sec (ibfd)) |
8176 | 0 | shndx = MAP_SHSTRTAB; |
8177 | 0 | else if (find_section_in_list (shndx, elf_symtab_shndx_list (ibfd))) |
8178 | 0 | shndx = MAP_SYM_SHNDX; |
8179 | 0 | osym->internal_elf_sym.st_shndx = shndx; |
8180 | 0 | } |
8181 | |
|
8182 | 0 | return true; |
8183 | 0 | } |
8184 | | |
8185 | | /* Swap out the symbols. */ |
8186 | | |
8187 | | static bool |
8188 | | swap_out_syms (bfd *abfd, |
8189 | | struct elf_strtab_hash **sttp, |
8190 | | int relocatable_p, |
8191 | | struct bfd_link_info *info) |
8192 | 0 | { |
8193 | 0 | const struct elf_backend_data *bed; |
8194 | 0 | unsigned int symcount; |
8195 | 0 | asymbol **syms; |
8196 | 0 | struct elf_strtab_hash *stt; |
8197 | 0 | Elf_Internal_Shdr *symtab_hdr; |
8198 | 0 | Elf_Internal_Shdr *symtab_shndx_hdr; |
8199 | 0 | Elf_Internal_Shdr *symstrtab_hdr; |
8200 | 0 | struct elf_sym_strtab *symstrtab; |
8201 | 0 | bfd_byte *outbound_syms; |
8202 | 0 | bfd_byte *outbound_shndx; |
8203 | 0 | unsigned long outbound_syms_index; |
8204 | 0 | unsigned int idx; |
8205 | 0 | unsigned int num_locals; |
8206 | 0 | size_t amt; |
8207 | 0 | bool name_local_sections; |
8208 | |
|
8209 | 0 | if (!elf_map_symbols (abfd, &num_locals)) |
8210 | 0 | return false; |
8211 | | |
8212 | | /* Dump out the symtabs. */ |
8213 | 0 | stt = _bfd_elf_strtab_init (); |
8214 | 0 | if (stt == NULL) |
8215 | 0 | return false; |
8216 | | |
8217 | 0 | bed = get_elf_backend_data (abfd); |
8218 | 0 | symcount = bfd_get_symcount (abfd); |
8219 | 0 | symtab_hdr = &elf_tdata (abfd)->symtab_hdr; |
8220 | 0 | symtab_hdr->sh_type = SHT_SYMTAB; |
8221 | 0 | symtab_hdr->sh_entsize = bed->s->sizeof_sym; |
8222 | 0 | symtab_hdr->sh_size = symtab_hdr->sh_entsize * (symcount + 1); |
8223 | 0 | symtab_hdr->sh_info = num_locals + 1; |
8224 | 0 | symtab_hdr->sh_addralign = (bfd_vma) 1 << bed->s->log_file_align; |
8225 | |
|
8226 | 0 | symstrtab_hdr = &elf_tdata (abfd)->strtab_hdr; |
8227 | 0 | symstrtab_hdr->sh_type = SHT_STRTAB; |
8228 | | |
8229 | | /* Allocate buffer to swap out the .strtab section. */ |
8230 | 0 | if (_bfd_mul_overflow (symcount + 1, sizeof (*symstrtab), &amt) |
8231 | 0 | || (symstrtab = (struct elf_sym_strtab *) bfd_malloc (amt)) == NULL) |
8232 | 0 | { |
8233 | 0 | bfd_set_error (bfd_error_no_memory); |
8234 | 0 | _bfd_elf_strtab_free (stt); |
8235 | 0 | return false; |
8236 | 0 | } |
8237 | | |
8238 | 0 | if (_bfd_mul_overflow (symcount + 1, bed->s->sizeof_sym, &amt) |
8239 | 0 | || (outbound_syms = (bfd_byte *) bfd_alloc (abfd, amt)) == NULL) |
8240 | 0 | { |
8241 | 0 | error_no_mem: |
8242 | 0 | bfd_set_error (bfd_error_no_memory); |
8243 | 0 | error_return: |
8244 | 0 | free (symstrtab); |
8245 | 0 | _bfd_elf_strtab_free (stt); |
8246 | 0 | return false; |
8247 | 0 | } |
8248 | 0 | symtab_hdr->contents = outbound_syms; |
8249 | 0 | outbound_syms_index = 0; |
8250 | |
|
8251 | 0 | outbound_shndx = NULL; |
8252 | |
|
8253 | 0 | if (elf_symtab_shndx_list (abfd)) |
8254 | 0 | { |
8255 | 0 | symtab_shndx_hdr = & elf_symtab_shndx_list (abfd)->hdr; |
8256 | 0 | if (symtab_shndx_hdr->sh_name != 0) |
8257 | 0 | { |
8258 | 0 | if (_bfd_mul_overflow (symcount + 1, |
8259 | 0 | sizeof (Elf_External_Sym_Shndx), &amt)) |
8260 | 0 | goto error_no_mem; |
8261 | 0 | outbound_shndx = (bfd_byte *) bfd_zalloc (abfd, amt); |
8262 | 0 | if (outbound_shndx == NULL) |
8263 | 0 | goto error_return; |
8264 | | |
8265 | 0 | symtab_shndx_hdr->contents = outbound_shndx; |
8266 | 0 | symtab_shndx_hdr->sh_type = SHT_SYMTAB_SHNDX; |
8267 | 0 | symtab_shndx_hdr->sh_size = amt; |
8268 | 0 | symtab_shndx_hdr->sh_addralign = sizeof (Elf_External_Sym_Shndx); |
8269 | 0 | symtab_shndx_hdr->sh_entsize = sizeof (Elf_External_Sym_Shndx); |
8270 | 0 | } |
8271 | | /* FIXME: What about any other headers in the list ? */ |
8272 | 0 | } |
8273 | | |
8274 | | /* Now generate the data (for "contents"). */ |
8275 | 0 | { |
8276 | | /* Fill in zeroth symbol and swap it out. */ |
8277 | 0 | Elf_Internal_Sym sym; |
8278 | 0 | sym.st_name = 0; |
8279 | 0 | sym.st_value = 0; |
8280 | 0 | sym.st_size = 0; |
8281 | 0 | sym.st_info = 0; |
8282 | 0 | sym.st_other = 0; |
8283 | 0 | sym.st_shndx = SHN_UNDEF; |
8284 | 0 | sym.st_target_internal = 0; |
8285 | 0 | symstrtab[0].sym = sym; |
8286 | 0 | symstrtab[0].dest_index = outbound_syms_index; |
8287 | 0 | outbound_syms_index++; |
8288 | 0 | } |
8289 | |
|
8290 | 0 | name_local_sections |
8291 | 0 | = (bed->elf_backend_name_local_section_symbols |
8292 | 0 | && bed->elf_backend_name_local_section_symbols (abfd)); |
8293 | |
|
8294 | 0 | syms = bfd_get_outsymbols (abfd); |
8295 | 0 | for (idx = 0; idx < symcount;) |
8296 | 0 | { |
8297 | 0 | Elf_Internal_Sym sym; |
8298 | 0 | bfd_vma value = syms[idx]->value; |
8299 | 0 | elf_symbol_type *type_ptr; |
8300 | 0 | flagword flags = syms[idx]->flags; |
8301 | 0 | int type; |
8302 | |
|
8303 | 0 | if (!name_local_sections |
8304 | 0 | && (flags & (BSF_SECTION_SYM | BSF_GLOBAL)) == BSF_SECTION_SYM) |
8305 | 0 | { |
8306 | | /* Local section symbols have no name. */ |
8307 | 0 | sym.st_name = (unsigned long) -1; |
8308 | 0 | } |
8309 | 0 | else |
8310 | 0 | { |
8311 | | /* Call _bfd_elf_strtab_offset after _bfd_elf_strtab_finalize |
8312 | | to get the final offset for st_name. */ |
8313 | 0 | sym.st_name |
8314 | 0 | = (unsigned long) _bfd_elf_strtab_add (stt, syms[idx]->name, |
8315 | 0 | false); |
8316 | 0 | if (sym.st_name == (unsigned long) -1) |
8317 | 0 | goto error_return; |
8318 | 0 | } |
8319 | | |
8320 | 0 | type_ptr = elf_symbol_from (syms[idx]); |
8321 | |
|
8322 | 0 | if ((flags & BSF_SECTION_SYM) == 0 |
8323 | 0 | && bfd_is_com_section (syms[idx]->section)) |
8324 | 0 | { |
8325 | | /* ELF common symbols put the alignment into the `value' field, |
8326 | | and the size into the `size' field. This is backwards from |
8327 | | how BFD handles it, so reverse it here. */ |
8328 | 0 | sym.st_size = value; |
8329 | 0 | if (type_ptr == NULL |
8330 | 0 | || type_ptr->internal_elf_sym.st_value == 0) |
8331 | 0 | sym.st_value = value >= 16 ? 16 : (1 << bfd_log2 (value)); |
8332 | 0 | else |
8333 | 0 | sym.st_value = type_ptr->internal_elf_sym.st_value; |
8334 | 0 | sym.st_shndx = _bfd_elf_section_from_bfd_section |
8335 | 0 | (abfd, syms[idx]->section); |
8336 | 0 | } |
8337 | 0 | else |
8338 | 0 | { |
8339 | 0 | asection *sec = syms[idx]->section; |
8340 | 0 | unsigned int shndx; |
8341 | |
|
8342 | 0 | if (sec->output_section) |
8343 | 0 | { |
8344 | 0 | value += sec->output_offset; |
8345 | 0 | sec = sec->output_section; |
8346 | 0 | } |
8347 | | |
8348 | | /* Don't add in the section vma for relocatable output. */ |
8349 | 0 | if (! relocatable_p) |
8350 | 0 | value += sec->vma; |
8351 | 0 | sym.st_value = value; |
8352 | 0 | sym.st_size = type_ptr ? type_ptr->internal_elf_sym.st_size : 0; |
8353 | |
|
8354 | 0 | if (bfd_is_abs_section (sec) |
8355 | 0 | && type_ptr != NULL |
8356 | 0 | && type_ptr->internal_elf_sym.st_shndx != 0) |
8357 | 0 | { |
8358 | | /* This symbol is in a real ELF section which we did |
8359 | | not create as a BFD section. Undo the mapping done |
8360 | | by copy_private_symbol_data. */ |
8361 | 0 | shndx = type_ptr->internal_elf_sym.st_shndx; |
8362 | 0 | switch (shndx) |
8363 | 0 | { |
8364 | 0 | case MAP_ONESYMTAB: |
8365 | 0 | shndx = elf_onesymtab (abfd); |
8366 | 0 | break; |
8367 | 0 | case MAP_DYNSYMTAB: |
8368 | 0 | shndx = elf_dynsymtab (abfd); |
8369 | 0 | break; |
8370 | 0 | case MAP_STRTAB: |
8371 | 0 | shndx = elf_strtab_sec (abfd); |
8372 | 0 | break; |
8373 | 0 | case MAP_SHSTRTAB: |
8374 | 0 | shndx = elf_shstrtab_sec (abfd); |
8375 | 0 | break; |
8376 | 0 | case MAP_SYM_SHNDX: |
8377 | 0 | if (elf_symtab_shndx_list (abfd)) |
8378 | 0 | shndx = elf_symtab_shndx_list (abfd)->ndx; |
8379 | 0 | break; |
8380 | 0 | case SHN_COMMON: |
8381 | 0 | case SHN_ABS: |
8382 | 0 | shndx = SHN_ABS; |
8383 | 0 | break; |
8384 | 0 | default: |
8385 | 0 | if (shndx >= SHN_LOPROC && shndx <= SHN_HIOS) |
8386 | 0 | { |
8387 | 0 | if (bed->symbol_section_index) |
8388 | 0 | shndx = bed->symbol_section_index (abfd, type_ptr); |
8389 | | /* Otherwise just leave the index alone. */ |
8390 | 0 | } |
8391 | 0 | else |
8392 | 0 | { |
8393 | 0 | if (shndx > SHN_HIOS && shndx < SHN_HIRESERVE) |
8394 | 0 | _bfd_error_handler (_("%pB: \ |
8395 | 0 | Unable to handle section index %x in ELF symbol. Using ABS instead."), |
8396 | 0 | abfd, shndx); |
8397 | 0 | shndx = SHN_ABS; |
8398 | 0 | } |
8399 | 0 | break; |
8400 | 0 | } |
8401 | 0 | } |
8402 | 0 | else |
8403 | 0 | { |
8404 | 0 | shndx = _bfd_elf_section_from_bfd_section (abfd, sec); |
8405 | |
|
8406 | 0 | if (shndx == SHN_BAD) |
8407 | 0 | { |
8408 | 0 | asection *sec2; |
8409 | | |
8410 | | /* Writing this would be a hell of a lot easier if |
8411 | | we had some decent documentation on bfd, and |
8412 | | knew what to expect of the library, and what to |
8413 | | demand of applications. For example, it |
8414 | | appears that `objcopy' might not set the |
8415 | | section of a symbol to be a section that is |
8416 | | actually in the output file. */ |
8417 | 0 | sec2 = bfd_get_section_by_name (abfd, sec->name); |
8418 | 0 | if (sec2 != NULL) |
8419 | 0 | shndx = _bfd_elf_section_from_bfd_section (abfd, sec2); |
8420 | 0 | if (shndx == SHN_BAD) |
8421 | 0 | { |
8422 | | /* xgettext:c-format */ |
8423 | 0 | _bfd_error_handler |
8424 | 0 | (_("unable to find equivalent output section" |
8425 | 0 | " for symbol '%s' from section '%s'"), |
8426 | 0 | syms[idx]->name ? syms[idx]->name : "<Local sym>", |
8427 | 0 | sec->name); |
8428 | 0 | bfd_set_error (bfd_error_invalid_operation); |
8429 | 0 | goto error_return; |
8430 | 0 | } |
8431 | 0 | } |
8432 | 0 | } |
8433 | | |
8434 | 0 | sym.st_shndx = shndx; |
8435 | 0 | } |
8436 | | |
8437 | 0 | if ((flags & BSF_THREAD_LOCAL) != 0) |
8438 | 0 | type = STT_TLS; |
8439 | 0 | else if ((flags & BSF_GNU_INDIRECT_FUNCTION) != 0) |
8440 | 0 | type = STT_GNU_IFUNC; |
8441 | 0 | else if ((flags & BSF_FUNCTION) != 0) |
8442 | 0 | type = STT_FUNC; |
8443 | 0 | else if ((flags & BSF_OBJECT) != 0) |
8444 | 0 | type = STT_OBJECT; |
8445 | 0 | else if ((flags & BSF_RELC) != 0) |
8446 | 0 | type = STT_RELC; |
8447 | 0 | else if ((flags & BSF_SRELC) != 0) |
8448 | 0 | type = STT_SRELC; |
8449 | 0 | else |
8450 | 0 | type = STT_NOTYPE; |
8451 | |
|
8452 | 0 | if (syms[idx]->section->flags & SEC_THREAD_LOCAL) |
8453 | 0 | type = STT_TLS; |
8454 | | |
8455 | | /* Processor-specific types. */ |
8456 | 0 | if (type_ptr != NULL |
8457 | 0 | && bed->elf_backend_get_symbol_type) |
8458 | 0 | type = ((*bed->elf_backend_get_symbol_type) |
8459 | 0 | (&type_ptr->internal_elf_sym, type)); |
8460 | |
|
8461 | 0 | if (flags & BSF_SECTION_SYM) |
8462 | 0 | { |
8463 | 0 | if (flags & BSF_GLOBAL) |
8464 | 0 | sym.st_info = ELF_ST_INFO (STB_GLOBAL, STT_SECTION); |
8465 | 0 | else |
8466 | 0 | sym.st_info = ELF_ST_INFO (STB_LOCAL, STT_SECTION); |
8467 | 0 | } |
8468 | 0 | else if (bfd_is_com_section (syms[idx]->section)) |
8469 | 0 | { |
8470 | 0 | if (type != STT_TLS) |
8471 | 0 | { |
8472 | 0 | if ((abfd->flags & BFD_CONVERT_ELF_COMMON)) |
8473 | 0 | type = ((abfd->flags & BFD_USE_ELF_STT_COMMON) |
8474 | 0 | ? STT_COMMON : STT_OBJECT); |
8475 | 0 | else |
8476 | 0 | type = ((flags & BSF_ELF_COMMON) != 0 |
8477 | 0 | ? STT_COMMON : STT_OBJECT); |
8478 | 0 | } |
8479 | 0 | sym.st_info = ELF_ST_INFO (STB_GLOBAL, type); |
8480 | 0 | } |
8481 | 0 | else if (bfd_is_und_section (syms[idx]->section)) |
8482 | 0 | sym.st_info = ELF_ST_INFO (((flags & BSF_WEAK) |
8483 | 0 | ? STB_WEAK |
8484 | 0 | : STB_GLOBAL), |
8485 | 0 | type); |
8486 | 0 | else if (flags & BSF_FILE) |
8487 | 0 | sym.st_info = ELF_ST_INFO (STB_LOCAL, STT_FILE); |
8488 | 0 | else |
8489 | 0 | { |
8490 | 0 | int bind = STB_LOCAL; |
8491 | |
|
8492 | 0 | if (flags & BSF_LOCAL) |
8493 | 0 | bind = STB_LOCAL; |
8494 | 0 | else if (flags & BSF_GNU_UNIQUE) |
8495 | 0 | bind = STB_GNU_UNIQUE; |
8496 | 0 | else if (flags & BSF_WEAK) |
8497 | 0 | bind = STB_WEAK; |
8498 | 0 | else if (flags & BSF_GLOBAL) |
8499 | 0 | bind = STB_GLOBAL; |
8500 | |
|
8501 | 0 | sym.st_info = ELF_ST_INFO (bind, type); |
8502 | 0 | } |
8503 | |
|
8504 | 0 | if (type_ptr != NULL) |
8505 | 0 | { |
8506 | 0 | sym.st_other = type_ptr->internal_elf_sym.st_other; |
8507 | 0 | sym.st_target_internal |
8508 | 0 | = type_ptr->internal_elf_sym.st_target_internal; |
8509 | 0 | } |
8510 | 0 | else |
8511 | 0 | { |
8512 | 0 | sym.st_other = 0; |
8513 | 0 | sym.st_target_internal = 0; |
8514 | 0 | } |
8515 | |
|
8516 | 0 | idx++; |
8517 | 0 | symstrtab[idx].sym = sym; |
8518 | 0 | symstrtab[idx].dest_index = outbound_syms_index; |
8519 | |
|
8520 | 0 | outbound_syms_index++; |
8521 | 0 | } |
8522 | | |
8523 | | /* Finalize the .strtab section. */ |
8524 | 0 | _bfd_elf_strtab_finalize (stt); |
8525 | | |
8526 | | /* Swap out the .strtab section. */ |
8527 | 0 | for (idx = 0; idx <= symcount; idx++) |
8528 | 0 | { |
8529 | 0 | struct elf_sym_strtab *elfsym = &symstrtab[idx]; |
8530 | 0 | if (elfsym->sym.st_name == (unsigned long) -1) |
8531 | 0 | elfsym->sym.st_name = 0; |
8532 | 0 | else |
8533 | 0 | elfsym->sym.st_name = _bfd_elf_strtab_offset (stt, |
8534 | 0 | elfsym->sym.st_name); |
8535 | 0 | if (info && info->callbacks->ctf_new_symbol) |
8536 | 0 | info->callbacks->ctf_new_symbol (elfsym->dest_index, |
8537 | 0 | &elfsym->sym); |
8538 | | |
8539 | | /* Inform the linker of the addition of this symbol. */ |
8540 | |
|
8541 | 0 | bed->s->swap_symbol_out (abfd, &elfsym->sym, |
8542 | 0 | (outbound_syms |
8543 | 0 | + (elfsym->dest_index |
8544 | 0 | * bed->s->sizeof_sym)), |
8545 | 0 | NPTR_ADD (outbound_shndx, |
8546 | 0 | (elfsym->dest_index |
8547 | 0 | * sizeof (Elf_External_Sym_Shndx)))); |
8548 | 0 | } |
8549 | 0 | free (symstrtab); |
8550 | |
|
8551 | 0 | *sttp = stt; |
8552 | 0 | symstrtab_hdr->sh_size = _bfd_elf_strtab_size (stt); |
8553 | 0 | symstrtab_hdr->sh_type = SHT_STRTAB; |
8554 | 0 | symstrtab_hdr->sh_flags = bed->elf_strtab_flags; |
8555 | 0 | symstrtab_hdr->sh_addr = 0; |
8556 | 0 | symstrtab_hdr->sh_entsize = 0; |
8557 | 0 | symstrtab_hdr->sh_link = 0; |
8558 | 0 | symstrtab_hdr->sh_info = 0; |
8559 | 0 | symstrtab_hdr->sh_addralign = 1; |
8560 | |
|
8561 | 0 | return true; |
8562 | 0 | } |
8563 | | |
8564 | | /* Return the number of bytes required to hold the symtab vector. |
8565 | | |
8566 | | Note that we base it on the count plus 1, since we will null terminate |
8567 | | the vector allocated based on this size. However, the ELF symbol table |
8568 | | always has a dummy entry as symbol #0, so it ends up even. */ |
8569 | | |
8570 | | long |
8571 | | _bfd_elf_get_symtab_upper_bound (bfd *abfd) |
8572 | 0 | { |
8573 | 0 | bfd_size_type symcount; |
8574 | 0 | long symtab_size; |
8575 | 0 | Elf_Internal_Shdr *hdr = &elf_tdata (abfd)->symtab_hdr; |
8576 | |
|
8577 | 0 | symcount = hdr->sh_size / get_elf_backend_data (abfd)->s->sizeof_sym; |
8578 | 0 | if (symcount > LONG_MAX / sizeof (asymbol *)) |
8579 | 0 | { |
8580 | 0 | bfd_set_error (bfd_error_file_too_big); |
8581 | 0 | return -1; |
8582 | 0 | } |
8583 | 0 | symtab_size = symcount * (sizeof (asymbol *)); |
8584 | 0 | if (symcount == 0) |
8585 | 0 | symtab_size = sizeof (asymbol *); |
8586 | 0 | else if (!bfd_write_p (abfd)) |
8587 | 0 | { |
8588 | 0 | ufile_ptr filesize = bfd_get_file_size (abfd); |
8589 | |
|
8590 | 0 | if (filesize != 0 && (unsigned long) symtab_size > filesize) |
8591 | 0 | { |
8592 | 0 | bfd_set_error (bfd_error_file_truncated); |
8593 | 0 | return -1; |
8594 | 0 | } |
8595 | 0 | } |
8596 | | |
8597 | 0 | return symtab_size; |
8598 | 0 | } |
8599 | | |
8600 | | long |
8601 | | _bfd_elf_get_dynamic_symtab_upper_bound (bfd *abfd) |
8602 | 0 | { |
8603 | 0 | bfd_size_type symcount; |
8604 | 0 | long symtab_size; |
8605 | 0 | Elf_Internal_Shdr *hdr = &elf_tdata (abfd)->dynsymtab_hdr; |
8606 | |
|
8607 | 0 | if (elf_dynsymtab (abfd) == 0) |
8608 | 0 | { |
8609 | 0 | bfd_set_error (bfd_error_invalid_operation); |
8610 | 0 | return -1; |
8611 | 0 | } |
8612 | | |
8613 | 0 | symcount = hdr->sh_size / get_elf_backend_data (abfd)->s->sizeof_sym; |
8614 | 0 | if (symcount > LONG_MAX / sizeof (asymbol *)) |
8615 | 0 | { |
8616 | 0 | bfd_set_error (bfd_error_file_too_big); |
8617 | 0 | return -1; |
8618 | 0 | } |
8619 | 0 | symtab_size = symcount * (sizeof (asymbol *)); |
8620 | 0 | if (symcount == 0) |
8621 | 0 | symtab_size = sizeof (asymbol *); |
8622 | 0 | else if (!bfd_write_p (abfd)) |
8623 | 0 | { |
8624 | 0 | ufile_ptr filesize = bfd_get_file_size (abfd); |
8625 | |
|
8626 | 0 | if (filesize != 0 && (unsigned long) symtab_size > filesize) |
8627 | 0 | { |
8628 | 0 | bfd_set_error (bfd_error_file_truncated); |
8629 | 0 | return -1; |
8630 | 0 | } |
8631 | 0 | } |
8632 | | |
8633 | 0 | return symtab_size; |
8634 | 0 | } |
8635 | | |
8636 | | long |
8637 | | _bfd_elf_get_reloc_upper_bound (bfd *abfd, sec_ptr asect) |
8638 | 0 | { |
8639 | 0 | if (asect->reloc_count != 0 && !bfd_write_p (abfd)) |
8640 | 0 | { |
8641 | | /* Sanity check reloc section size. */ |
8642 | 0 | ufile_ptr filesize = bfd_get_file_size (abfd); |
8643 | |
|
8644 | 0 | if (filesize != 0) |
8645 | 0 | { |
8646 | 0 | struct bfd_elf_section_data *d = elf_section_data (asect); |
8647 | 0 | bfd_size_type rel_size = d->rel.hdr ? d->rel.hdr->sh_size : 0; |
8648 | 0 | bfd_size_type rela_size = d->rela.hdr ? d->rela.hdr->sh_size : 0; |
8649 | |
|
8650 | 0 | if (rel_size + rela_size > filesize |
8651 | 0 | || rel_size + rela_size < rel_size) |
8652 | 0 | { |
8653 | 0 | bfd_set_error (bfd_error_file_truncated); |
8654 | 0 | return -1; |
8655 | 0 | } |
8656 | 0 | } |
8657 | 0 | } |
8658 | | |
8659 | | #if SIZEOF_LONG == SIZEOF_INT |
8660 | | if (asect->reloc_count >= LONG_MAX / sizeof (arelent *)) |
8661 | | { |
8662 | | bfd_set_error (bfd_error_file_too_big); |
8663 | | return -1; |
8664 | | } |
8665 | | #endif |
8666 | 0 | return (asect->reloc_count + 1L) * sizeof (arelent *); |
8667 | 0 | } |
8668 | | |
8669 | | /* Canonicalize the relocs. */ |
8670 | | |
8671 | | long |
8672 | | _bfd_elf_canonicalize_reloc (bfd *abfd, |
8673 | | sec_ptr section, |
8674 | | arelent **relptr, |
8675 | | asymbol **symbols) |
8676 | 0 | { |
8677 | 0 | arelent *tblptr; |
8678 | 0 | unsigned int i; |
8679 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
8680 | |
|
8681 | 0 | if (! bed->s->slurp_reloc_table (abfd, section, symbols, false)) |
8682 | 0 | return -1; |
8683 | | |
8684 | 0 | tblptr = section->relocation; |
8685 | 0 | for (i = 0; i < section->reloc_count; i++) |
8686 | 0 | *relptr++ = tblptr++; |
8687 | |
|
8688 | 0 | *relptr = NULL; |
8689 | |
|
8690 | 0 | return section->reloc_count; |
8691 | 0 | } |
8692 | | |
8693 | | long |
8694 | | _bfd_elf_canonicalize_symtab (bfd *abfd, asymbol **allocation) |
8695 | 0 | { |
8696 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
8697 | 0 | long symcount = bed->s->slurp_symbol_table (abfd, allocation, false); |
8698 | |
|
8699 | 0 | if (symcount >= 0) |
8700 | 0 | abfd->symcount = symcount; |
8701 | 0 | return symcount; |
8702 | 0 | } |
8703 | | |
8704 | | long |
8705 | | _bfd_elf_canonicalize_dynamic_symtab (bfd *abfd, |
8706 | | asymbol **allocation) |
8707 | 0 | { |
8708 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
8709 | 0 | long symcount = bed->s->slurp_symbol_table (abfd, allocation, true); |
8710 | |
|
8711 | 0 | if (symcount >= 0) |
8712 | 0 | abfd->dynsymcount = symcount; |
8713 | 0 | return symcount; |
8714 | 0 | } |
8715 | | |
8716 | | /* Return the size required for the dynamic reloc entries. Any loadable |
8717 | | section that was actually installed in the BFD, and has type SHT_REL |
8718 | | or SHT_RELA, and uses the dynamic symbol table, is considered to be a |
8719 | | dynamic reloc section. */ |
8720 | | |
8721 | | long |
8722 | | _bfd_elf_get_dynamic_reloc_upper_bound (bfd *abfd) |
8723 | 0 | { |
8724 | 0 | bfd_size_type count, ext_rel_size; |
8725 | 0 | asection *s; |
8726 | |
|
8727 | 0 | if (elf_dynsymtab (abfd) == 0) |
8728 | 0 | { |
8729 | 0 | bfd_set_error (bfd_error_invalid_operation); |
8730 | 0 | return -1; |
8731 | 0 | } |
8732 | | |
8733 | 0 | count = 1; |
8734 | 0 | ext_rel_size = 0; |
8735 | 0 | for (s = abfd->sections; s != NULL; s = s->next) |
8736 | 0 | if (elf_section_data (s)->this_hdr.sh_link == elf_dynsymtab (abfd) |
8737 | 0 | && (elf_section_data (s)->this_hdr.sh_type == SHT_REL |
8738 | 0 | || elf_section_data (s)->this_hdr.sh_type == SHT_RELA) |
8739 | 0 | && (elf_section_data (s)->this_hdr.sh_flags & SHF_COMPRESSED) == 0) |
8740 | 0 | { |
8741 | 0 | ext_rel_size += elf_section_data (s)->this_hdr.sh_size; |
8742 | 0 | if (ext_rel_size < elf_section_data (s)->this_hdr.sh_size) |
8743 | 0 | { |
8744 | 0 | bfd_set_error (bfd_error_file_truncated); |
8745 | 0 | return -1; |
8746 | 0 | } |
8747 | 0 | count += NUM_SHDR_ENTRIES (&elf_section_data (s)->this_hdr); |
8748 | 0 | if (count > LONG_MAX / sizeof (arelent *)) |
8749 | 0 | { |
8750 | 0 | bfd_set_error (bfd_error_file_too_big); |
8751 | 0 | return -1; |
8752 | 0 | } |
8753 | 0 | } |
8754 | 0 | if (count > 1 && !bfd_write_p (abfd)) |
8755 | 0 | { |
8756 | | /* Sanity check reloc section sizes. */ |
8757 | 0 | ufile_ptr filesize = bfd_get_file_size (abfd); |
8758 | 0 | if (filesize != 0 && ext_rel_size > filesize) |
8759 | 0 | { |
8760 | 0 | bfd_set_error (bfd_error_file_truncated); |
8761 | 0 | return -1; |
8762 | 0 | } |
8763 | 0 | } |
8764 | 0 | return count * sizeof (arelent *); |
8765 | 0 | } |
8766 | | |
8767 | | /* Canonicalize the dynamic relocation entries. Note that we return the |
8768 | | dynamic relocations as a single block, although they are actually |
8769 | | associated with particular sections; the interface, which was |
8770 | | designed for SunOS style shared libraries, expects that there is only |
8771 | | one set of dynamic relocs. Any loadable section that was actually |
8772 | | installed in the BFD, and has type SHT_REL or SHT_RELA, and uses the |
8773 | | dynamic symbol table, is considered to be a dynamic reloc section. */ |
8774 | | |
8775 | | long |
8776 | | _bfd_elf_canonicalize_dynamic_reloc (bfd *abfd, |
8777 | | arelent **storage, |
8778 | | asymbol **syms) |
8779 | 0 | { |
8780 | 0 | bool (*slurp_relocs) (bfd *, asection *, asymbol **, bool); |
8781 | 0 | asection *s; |
8782 | 0 | long ret; |
8783 | |
|
8784 | 0 | if (elf_dynsymtab (abfd) == 0) |
8785 | 0 | { |
8786 | 0 | bfd_set_error (bfd_error_invalid_operation); |
8787 | 0 | return -1; |
8788 | 0 | } |
8789 | | |
8790 | 0 | slurp_relocs = get_elf_backend_data (abfd)->s->slurp_reloc_table; |
8791 | 0 | ret = 0; |
8792 | 0 | for (s = abfd->sections; s != NULL; s = s->next) |
8793 | 0 | { |
8794 | 0 | if (elf_section_data (s)->this_hdr.sh_link == elf_dynsymtab (abfd) |
8795 | 0 | && (elf_section_data (s)->this_hdr.sh_type == SHT_REL |
8796 | 0 | || elf_section_data (s)->this_hdr.sh_type == SHT_RELA) |
8797 | 0 | && (elf_section_data (s)->this_hdr.sh_flags & SHF_COMPRESSED) == 0) |
8798 | 0 | { |
8799 | 0 | arelent *p; |
8800 | 0 | long count, i; |
8801 | |
|
8802 | 0 | if (! (*slurp_relocs) (abfd, s, syms, true)) |
8803 | 0 | return -1; |
8804 | 0 | count = NUM_SHDR_ENTRIES (&elf_section_data (s)->this_hdr); |
8805 | 0 | p = s->relocation; |
8806 | 0 | for (i = 0; i < count; i++) |
8807 | 0 | *storage++ = p++; |
8808 | 0 | ret += count; |
8809 | 0 | } |
8810 | 0 | } |
8811 | | |
8812 | 0 | *storage = NULL; |
8813 | |
|
8814 | 0 | return ret; |
8815 | 0 | } |
8816 | | |
8817 | | /* Read in the version information. */ |
8818 | | |
8819 | | bool |
8820 | | _bfd_elf_slurp_version_tables (bfd *abfd, bool default_imported_symver) |
8821 | 0 | { |
8822 | 0 | bfd_byte *contents = NULL; |
8823 | 0 | unsigned int freeidx = 0; |
8824 | 0 | size_t amt; |
8825 | |
|
8826 | 0 | if (elf_dynverref (abfd) != 0) |
8827 | 0 | { |
8828 | 0 | Elf_Internal_Shdr *hdr; |
8829 | 0 | Elf_External_Verneed *everneed; |
8830 | 0 | Elf_Internal_Verneed *iverneed; |
8831 | 0 | unsigned int i; |
8832 | 0 | bfd_byte *contents_end; |
8833 | |
|
8834 | 0 | hdr = &elf_tdata (abfd)->dynverref_hdr; |
8835 | |
|
8836 | 0 | if (hdr->sh_info > hdr->sh_size / sizeof (Elf_External_Verneed)) |
8837 | 0 | { |
8838 | 0 | error_return_bad_verref: |
8839 | 0 | _bfd_error_handler |
8840 | 0 | (_("%pB: .gnu.version_r invalid entry"), abfd); |
8841 | 0 | bfd_set_error (bfd_error_bad_value); |
8842 | 0 | error_return_verref: |
8843 | 0 | elf_tdata (abfd)->verref = NULL; |
8844 | 0 | elf_tdata (abfd)->cverrefs = 0; |
8845 | 0 | goto error_return; |
8846 | 0 | } |
8847 | | |
8848 | 0 | if (bfd_seek (abfd, hdr->sh_offset, SEEK_SET) != 0) |
8849 | 0 | goto error_return_verref; |
8850 | 0 | contents = _bfd_malloc_and_read (abfd, hdr->sh_size, hdr->sh_size); |
8851 | 0 | if (contents == NULL) |
8852 | 0 | goto error_return_verref; |
8853 | | |
8854 | 0 | if (_bfd_mul_overflow (hdr->sh_info, sizeof (Elf_Internal_Verneed), &amt)) |
8855 | 0 | { |
8856 | 0 | bfd_set_error (bfd_error_file_too_big); |
8857 | 0 | goto error_return_verref; |
8858 | 0 | } |
8859 | 0 | if (amt == 0) |
8860 | 0 | goto error_return_verref; |
8861 | 0 | elf_tdata (abfd)->verref = (Elf_Internal_Verneed *) bfd_zalloc (abfd, amt); |
8862 | 0 | if (elf_tdata (abfd)->verref == NULL) |
8863 | 0 | goto error_return_verref; |
8864 | | |
8865 | 0 | BFD_ASSERT (sizeof (Elf_External_Verneed) |
8866 | 0 | == sizeof (Elf_External_Vernaux)); |
8867 | 0 | contents_end = contents + hdr->sh_size - sizeof (Elf_External_Verneed); |
8868 | 0 | everneed = (Elf_External_Verneed *) contents; |
8869 | 0 | iverneed = elf_tdata (abfd)->verref; |
8870 | 0 | for (i = 0; i < hdr->sh_info; i++, iverneed++) |
8871 | 0 | { |
8872 | 0 | Elf_External_Vernaux *evernaux; |
8873 | 0 | Elf_Internal_Vernaux *ivernaux; |
8874 | 0 | unsigned int j; |
8875 | |
|
8876 | 0 | _bfd_elf_swap_verneed_in (abfd, everneed, iverneed); |
8877 | |
|
8878 | 0 | iverneed->vn_bfd = abfd; |
8879 | |
|
8880 | 0 | iverneed->vn_filename = |
8881 | 0 | bfd_elf_string_from_elf_section (abfd, hdr->sh_link, |
8882 | 0 | iverneed->vn_file); |
8883 | 0 | if (iverneed->vn_filename == NULL) |
8884 | 0 | goto error_return_bad_verref; |
8885 | | |
8886 | 0 | if (iverneed->vn_cnt == 0) |
8887 | 0 | iverneed->vn_auxptr = NULL; |
8888 | 0 | else |
8889 | 0 | { |
8890 | 0 | if (_bfd_mul_overflow (iverneed->vn_cnt, |
8891 | 0 | sizeof (Elf_Internal_Vernaux), &amt)) |
8892 | 0 | { |
8893 | 0 | bfd_set_error (bfd_error_file_too_big); |
8894 | 0 | goto error_return_verref; |
8895 | 0 | } |
8896 | 0 | iverneed->vn_auxptr = (struct elf_internal_vernaux *) |
8897 | 0 | bfd_alloc (abfd, amt); |
8898 | 0 | if (iverneed->vn_auxptr == NULL) |
8899 | 0 | goto error_return_verref; |
8900 | 0 | } |
8901 | | |
8902 | 0 | if (iverneed->vn_aux |
8903 | 0 | > (size_t) (contents_end - (bfd_byte *) everneed)) |
8904 | 0 | goto error_return_bad_verref; |
8905 | | |
8906 | 0 | evernaux = ((Elf_External_Vernaux *) |
8907 | 0 | ((bfd_byte *) everneed + iverneed->vn_aux)); |
8908 | 0 | ivernaux = iverneed->vn_auxptr; |
8909 | 0 | for (j = 0; j < iverneed->vn_cnt; j++, ivernaux++) |
8910 | 0 | { |
8911 | 0 | _bfd_elf_swap_vernaux_in (abfd, evernaux, ivernaux); |
8912 | |
|
8913 | 0 | ivernaux->vna_nodename = |
8914 | 0 | bfd_elf_string_from_elf_section (abfd, hdr->sh_link, |
8915 | 0 | ivernaux->vna_name); |
8916 | 0 | if (ivernaux->vna_nodename == NULL) |
8917 | 0 | goto error_return_bad_verref; |
8918 | | |
8919 | 0 | if (ivernaux->vna_other > freeidx) |
8920 | 0 | freeidx = ivernaux->vna_other; |
8921 | |
|
8922 | 0 | ivernaux->vna_nextptr = NULL; |
8923 | 0 | if (ivernaux->vna_next == 0) |
8924 | 0 | { |
8925 | 0 | iverneed->vn_cnt = j + 1; |
8926 | 0 | break; |
8927 | 0 | } |
8928 | 0 | if (j + 1 < iverneed->vn_cnt) |
8929 | 0 | ivernaux->vna_nextptr = ivernaux + 1; |
8930 | |
|
8931 | 0 | if (ivernaux->vna_next |
8932 | 0 | > (size_t) (contents_end - (bfd_byte *) evernaux)) |
8933 | 0 | goto error_return_bad_verref; |
8934 | | |
8935 | 0 | evernaux = ((Elf_External_Vernaux *) |
8936 | 0 | ((bfd_byte *) evernaux + ivernaux->vna_next)); |
8937 | 0 | } |
8938 | | |
8939 | 0 | iverneed->vn_nextref = NULL; |
8940 | 0 | if (iverneed->vn_next == 0) |
8941 | 0 | break; |
8942 | 0 | if (i + 1 < hdr->sh_info) |
8943 | 0 | iverneed->vn_nextref = iverneed + 1; |
8944 | |
|
8945 | 0 | if (iverneed->vn_next |
8946 | 0 | > (size_t) (contents_end - (bfd_byte *) everneed)) |
8947 | 0 | goto error_return_bad_verref; |
8948 | | |
8949 | 0 | everneed = ((Elf_External_Verneed *) |
8950 | 0 | ((bfd_byte *) everneed + iverneed->vn_next)); |
8951 | 0 | } |
8952 | 0 | elf_tdata (abfd)->cverrefs = i; |
8953 | |
|
8954 | 0 | free (contents); |
8955 | 0 | contents = NULL; |
8956 | 0 | } |
8957 | | |
8958 | 0 | if (elf_dynverdef (abfd) != 0) |
8959 | 0 | { |
8960 | 0 | Elf_Internal_Shdr *hdr; |
8961 | 0 | Elf_External_Verdef *everdef; |
8962 | 0 | Elf_Internal_Verdef *iverdef; |
8963 | 0 | Elf_Internal_Verdef *iverdefarr; |
8964 | 0 | Elf_Internal_Verdef iverdefmem; |
8965 | 0 | unsigned int i; |
8966 | 0 | unsigned int maxidx; |
8967 | 0 | bfd_byte *contents_end_def, *contents_end_aux; |
8968 | |
|
8969 | 0 | hdr = &elf_tdata (abfd)->dynverdef_hdr; |
8970 | |
|
8971 | 0 | if (hdr->sh_size < sizeof (Elf_External_Verdef)) |
8972 | 0 | { |
8973 | 0 | error_return_bad_verdef: |
8974 | 0 | _bfd_error_handler |
8975 | 0 | (_("%pB: .gnu.version_d invalid entry"), abfd); |
8976 | 0 | bfd_set_error (bfd_error_bad_value); |
8977 | 0 | error_return_verdef: |
8978 | 0 | elf_tdata (abfd)->verdef = NULL; |
8979 | 0 | elf_tdata (abfd)->cverdefs = 0; |
8980 | 0 | goto error_return; |
8981 | 0 | } |
8982 | | |
8983 | 0 | if (bfd_seek (abfd, hdr->sh_offset, SEEK_SET) != 0) |
8984 | 0 | goto error_return_verdef; |
8985 | 0 | contents = _bfd_malloc_and_read (abfd, hdr->sh_size, hdr->sh_size); |
8986 | 0 | if (contents == NULL) |
8987 | 0 | goto error_return_verdef; |
8988 | | |
8989 | 0 | BFD_ASSERT (sizeof (Elf_External_Verdef) |
8990 | 0 | >= sizeof (Elf_External_Verdaux)); |
8991 | 0 | contents_end_def = contents + hdr->sh_size |
8992 | 0 | - sizeof (Elf_External_Verdef); |
8993 | 0 | contents_end_aux = contents + hdr->sh_size |
8994 | 0 | - sizeof (Elf_External_Verdaux); |
8995 | | |
8996 | | /* We know the number of entries in the section but not the maximum |
8997 | | index. Therefore we have to run through all entries and find |
8998 | | the maximum. */ |
8999 | 0 | everdef = (Elf_External_Verdef *) contents; |
9000 | 0 | maxidx = 0; |
9001 | 0 | for (i = 0; i < hdr->sh_info; ++i) |
9002 | 0 | { |
9003 | 0 | _bfd_elf_swap_verdef_in (abfd, everdef, &iverdefmem); |
9004 | |
|
9005 | 0 | if ((iverdefmem.vd_ndx & ((unsigned) VERSYM_VERSION)) == 0) |
9006 | 0 | goto error_return_bad_verdef; |
9007 | 0 | if ((iverdefmem.vd_ndx & ((unsigned) VERSYM_VERSION)) > maxidx) |
9008 | 0 | maxidx = iverdefmem.vd_ndx & ((unsigned) VERSYM_VERSION); |
9009 | |
|
9010 | 0 | if (iverdefmem.vd_next == 0) |
9011 | 0 | break; |
9012 | | |
9013 | 0 | if (iverdefmem.vd_next |
9014 | 0 | > (size_t) (contents_end_def - (bfd_byte *) everdef)) |
9015 | 0 | goto error_return_bad_verdef; |
9016 | | |
9017 | 0 | everdef = ((Elf_External_Verdef *) |
9018 | 0 | ((bfd_byte *) everdef + iverdefmem.vd_next)); |
9019 | 0 | } |
9020 | | |
9021 | 0 | if (default_imported_symver) |
9022 | 0 | { |
9023 | 0 | if (freeidx > maxidx) |
9024 | 0 | maxidx = ++freeidx; |
9025 | 0 | else |
9026 | 0 | freeidx = ++maxidx; |
9027 | 0 | } |
9028 | 0 | if (_bfd_mul_overflow (maxidx, sizeof (Elf_Internal_Verdef), &amt)) |
9029 | 0 | { |
9030 | 0 | bfd_set_error (bfd_error_file_too_big); |
9031 | 0 | goto error_return_verdef; |
9032 | 0 | } |
9033 | | |
9034 | 0 | if (amt == 0) |
9035 | 0 | goto error_return_verdef; |
9036 | 0 | elf_tdata (abfd)->verdef = (Elf_Internal_Verdef *) bfd_zalloc (abfd, amt); |
9037 | 0 | if (elf_tdata (abfd)->verdef == NULL) |
9038 | 0 | goto error_return_verdef; |
9039 | | |
9040 | 0 | elf_tdata (abfd)->cverdefs = maxidx; |
9041 | |
|
9042 | 0 | everdef = (Elf_External_Verdef *) contents; |
9043 | 0 | iverdefarr = elf_tdata (abfd)->verdef; |
9044 | 0 | for (i = 0; i < hdr->sh_info; i++) |
9045 | 0 | { |
9046 | 0 | Elf_External_Verdaux *everdaux; |
9047 | 0 | Elf_Internal_Verdaux *iverdaux; |
9048 | 0 | unsigned int j; |
9049 | |
|
9050 | 0 | _bfd_elf_swap_verdef_in (abfd, everdef, &iverdefmem); |
9051 | |
|
9052 | 0 | if ((iverdefmem.vd_ndx & VERSYM_VERSION) == 0) |
9053 | 0 | goto error_return_bad_verdef; |
9054 | | |
9055 | 0 | iverdef = &iverdefarr[(iverdefmem.vd_ndx & VERSYM_VERSION) - 1]; |
9056 | 0 | memcpy (iverdef, &iverdefmem, offsetof (Elf_Internal_Verdef, vd_bfd)); |
9057 | |
|
9058 | 0 | iverdef->vd_bfd = abfd; |
9059 | |
|
9060 | 0 | if (iverdef->vd_cnt == 0) |
9061 | 0 | iverdef->vd_auxptr = NULL; |
9062 | 0 | else |
9063 | 0 | { |
9064 | 0 | if (_bfd_mul_overflow (iverdef->vd_cnt, |
9065 | 0 | sizeof (Elf_Internal_Verdaux), &amt)) |
9066 | 0 | { |
9067 | 0 | bfd_set_error (bfd_error_file_too_big); |
9068 | 0 | goto error_return_verdef; |
9069 | 0 | } |
9070 | 0 | iverdef->vd_auxptr = (struct elf_internal_verdaux *) |
9071 | 0 | bfd_alloc (abfd, amt); |
9072 | 0 | if (iverdef->vd_auxptr == NULL) |
9073 | 0 | goto error_return_verdef; |
9074 | 0 | } |
9075 | | |
9076 | 0 | if (iverdef->vd_aux |
9077 | 0 | > (size_t) (contents_end_aux - (bfd_byte *) everdef)) |
9078 | 0 | goto error_return_bad_verdef; |
9079 | | |
9080 | 0 | everdaux = ((Elf_External_Verdaux *) |
9081 | 0 | ((bfd_byte *) everdef + iverdef->vd_aux)); |
9082 | 0 | iverdaux = iverdef->vd_auxptr; |
9083 | 0 | for (j = 0; j < iverdef->vd_cnt; j++, iverdaux++) |
9084 | 0 | { |
9085 | 0 | _bfd_elf_swap_verdaux_in (abfd, everdaux, iverdaux); |
9086 | |
|
9087 | 0 | iverdaux->vda_nodename = |
9088 | 0 | bfd_elf_string_from_elf_section (abfd, hdr->sh_link, |
9089 | 0 | iverdaux->vda_name); |
9090 | 0 | if (iverdaux->vda_nodename == NULL) |
9091 | 0 | goto error_return_bad_verdef; |
9092 | | |
9093 | 0 | iverdaux->vda_nextptr = NULL; |
9094 | 0 | if (iverdaux->vda_next == 0) |
9095 | 0 | { |
9096 | 0 | iverdef->vd_cnt = j + 1; |
9097 | 0 | break; |
9098 | 0 | } |
9099 | 0 | if (j + 1 < iverdef->vd_cnt) |
9100 | 0 | iverdaux->vda_nextptr = iverdaux + 1; |
9101 | |
|
9102 | 0 | if (iverdaux->vda_next |
9103 | 0 | > (size_t) (contents_end_aux - (bfd_byte *) everdaux)) |
9104 | 0 | goto error_return_bad_verdef; |
9105 | | |
9106 | 0 | everdaux = ((Elf_External_Verdaux *) |
9107 | 0 | ((bfd_byte *) everdaux + iverdaux->vda_next)); |
9108 | 0 | } |
9109 | | |
9110 | 0 | iverdef->vd_nodename = NULL; |
9111 | 0 | if (iverdef->vd_cnt) |
9112 | 0 | iverdef->vd_nodename = iverdef->vd_auxptr->vda_nodename; |
9113 | |
|
9114 | 0 | iverdef->vd_nextdef = NULL; |
9115 | 0 | if (iverdef->vd_next == 0) |
9116 | 0 | break; |
9117 | 0 | if ((size_t) (iverdef - iverdefarr) + 1 < maxidx) |
9118 | 0 | iverdef->vd_nextdef = iverdef + 1; |
9119 | |
|
9120 | 0 | everdef = ((Elf_External_Verdef *) |
9121 | 0 | ((bfd_byte *) everdef + iverdef->vd_next)); |
9122 | 0 | } |
9123 | | |
9124 | 0 | free (contents); |
9125 | 0 | contents = NULL; |
9126 | 0 | } |
9127 | 0 | else if (default_imported_symver) |
9128 | 0 | { |
9129 | 0 | if (freeidx < 3) |
9130 | 0 | freeidx = 3; |
9131 | 0 | else |
9132 | 0 | freeidx++; |
9133 | |
|
9134 | 0 | if (_bfd_mul_overflow (freeidx, sizeof (Elf_Internal_Verdef), &amt)) |
9135 | 0 | { |
9136 | 0 | bfd_set_error (bfd_error_file_too_big); |
9137 | 0 | goto error_return; |
9138 | 0 | } |
9139 | 0 | if (amt == 0) |
9140 | 0 | goto error_return; |
9141 | 0 | elf_tdata (abfd)->verdef = (Elf_Internal_Verdef *) bfd_zalloc (abfd, amt); |
9142 | 0 | if (elf_tdata (abfd)->verdef == NULL) |
9143 | 0 | goto error_return; |
9144 | | |
9145 | 0 | elf_tdata (abfd)->cverdefs = freeidx; |
9146 | 0 | } |
9147 | | |
9148 | | /* Create a default version based on the soname. */ |
9149 | 0 | if (default_imported_symver) |
9150 | 0 | { |
9151 | 0 | Elf_Internal_Verdef *iverdef; |
9152 | 0 | Elf_Internal_Verdaux *iverdaux; |
9153 | |
|
9154 | 0 | iverdef = &elf_tdata (abfd)->verdef[freeidx - 1]; |
9155 | |
|
9156 | 0 | iverdef->vd_version = VER_DEF_CURRENT; |
9157 | 0 | iverdef->vd_flags = 0; |
9158 | 0 | iverdef->vd_ndx = freeidx; |
9159 | 0 | iverdef->vd_cnt = 1; |
9160 | |
|
9161 | 0 | iverdef->vd_bfd = abfd; |
9162 | |
|
9163 | 0 | iverdef->vd_nodename = bfd_elf_get_dt_soname (abfd); |
9164 | 0 | if (iverdef->vd_nodename == NULL) |
9165 | 0 | goto error_return_verdef; |
9166 | 0 | iverdef->vd_nextdef = NULL; |
9167 | 0 | iverdef->vd_auxptr = ((struct elf_internal_verdaux *) |
9168 | 0 | bfd_zalloc (abfd, sizeof (Elf_Internal_Verdaux))); |
9169 | 0 | if (iverdef->vd_auxptr == NULL) |
9170 | 0 | goto error_return_verdef; |
9171 | | |
9172 | 0 | iverdaux = iverdef->vd_auxptr; |
9173 | 0 | iverdaux->vda_nodename = iverdef->vd_nodename; |
9174 | 0 | } |
9175 | | |
9176 | 0 | return true; |
9177 | | |
9178 | 0 | error_return: |
9179 | 0 | free (contents); |
9180 | 0 | return false; |
9181 | 0 | } |
9182 | | |
9183 | | asymbol * |
9184 | | _bfd_elf_make_empty_symbol (bfd *abfd) |
9185 | 0 | { |
9186 | 0 | elf_symbol_type *newsym; |
9187 | |
|
9188 | 0 | newsym = (elf_symbol_type *) bfd_zalloc (abfd, sizeof (*newsym)); |
9189 | 0 | if (!newsym) |
9190 | 0 | return NULL; |
9191 | 0 | newsym->symbol.the_bfd = abfd; |
9192 | 0 | return &newsym->symbol; |
9193 | 0 | } |
9194 | | |
9195 | | void |
9196 | | _bfd_elf_get_symbol_info (bfd *abfd ATTRIBUTE_UNUSED, |
9197 | | asymbol *symbol, |
9198 | | symbol_info *ret) |
9199 | 0 | { |
9200 | 0 | bfd_symbol_info (symbol, ret); |
9201 | 0 | } |
9202 | | |
9203 | | /* Return whether a symbol name implies a local symbol. Most targets |
9204 | | use this function for the is_local_label_name entry point, but some |
9205 | | override it. */ |
9206 | | |
9207 | | bool |
9208 | | _bfd_elf_is_local_label_name (bfd *abfd ATTRIBUTE_UNUSED, |
9209 | | const char *name) |
9210 | 0 | { |
9211 | | /* Normal local symbols start with ``.L''. */ |
9212 | 0 | if (name[0] == '.' && name[1] == 'L') |
9213 | 0 | return true; |
9214 | | |
9215 | | /* At least some SVR4 compilers (e.g., UnixWare 2.1 cc) generate |
9216 | | DWARF debugging symbols starting with ``..''. */ |
9217 | 0 | if (name[0] == '.' && name[1] == '.') |
9218 | 0 | return true; |
9219 | | |
9220 | | /* gcc will sometimes generate symbols beginning with ``_.L_'' when |
9221 | | emitting DWARF debugging output. I suspect this is actually a |
9222 | | small bug in gcc (it calls ASM_OUTPUT_LABEL when it should call |
9223 | | ASM_GENERATE_INTERNAL_LABEL, and this causes the leading |
9224 | | underscore to be emitted on some ELF targets). For ease of use, |
9225 | | we treat such symbols as local. */ |
9226 | 0 | if (name[0] == '_' && name[1] == '.' && name[2] == 'L' && name[3] == '_') |
9227 | 0 | return true; |
9228 | | |
9229 | | /* Treat assembler generated fake symbols, dollar local labels and |
9230 | | forward-backward labels (aka local labels) as locals. |
9231 | | These labels have the form: |
9232 | | |
9233 | | L0^A.* (fake symbols) |
9234 | | |
9235 | | [.]?L[0123456789]+{^A|^B}[0123456789]* (local labels) |
9236 | | |
9237 | | Versions which start with .L will have already been matched above, |
9238 | | so we only need to match the rest. */ |
9239 | 0 | if (name[0] == 'L' && ISDIGIT (name[1])) |
9240 | 0 | { |
9241 | 0 | bool ret = false; |
9242 | 0 | const char * p; |
9243 | 0 | char c; |
9244 | |
|
9245 | 0 | for (p = name + 2; (c = *p); p++) |
9246 | 0 | { |
9247 | 0 | if (c == 1 || c == 2) |
9248 | 0 | { |
9249 | 0 | if (c == 1 && p == name + 2) |
9250 | | /* A fake symbol. */ |
9251 | 0 | return true; |
9252 | | |
9253 | | /* FIXME: We are being paranoid here and treating symbols like |
9254 | | L0^Bfoo as if there were non-local, on the grounds that the |
9255 | | assembler will never generate them. But can any symbol |
9256 | | containing an ASCII value in the range 1-31 ever be anything |
9257 | | other than some kind of local ? */ |
9258 | 0 | ret = true; |
9259 | 0 | } |
9260 | | |
9261 | 0 | if (! ISDIGIT (c)) |
9262 | 0 | { |
9263 | 0 | ret = false; |
9264 | 0 | break; |
9265 | 0 | } |
9266 | 0 | } |
9267 | 0 | return ret; |
9268 | 0 | } |
9269 | | |
9270 | 0 | return false; |
9271 | 0 | } |
9272 | | |
9273 | | alent * |
9274 | | _bfd_elf_get_lineno (bfd *abfd ATTRIBUTE_UNUSED, |
9275 | | asymbol *symbol ATTRIBUTE_UNUSED) |
9276 | 0 | { |
9277 | 0 | abort (); |
9278 | 0 | return NULL; |
9279 | 0 | } |
9280 | | |
9281 | | bool |
9282 | | _bfd_elf_set_arch_mach (bfd *abfd, |
9283 | | enum bfd_architecture arch, |
9284 | | unsigned long machine) |
9285 | 0 | { |
9286 | | /* If this isn't the right architecture for this backend, and this |
9287 | | isn't the generic backend, fail. */ |
9288 | 0 | if (arch != get_elf_backend_data (abfd)->arch |
9289 | 0 | && arch != bfd_arch_unknown |
9290 | 0 | && get_elf_backend_data (abfd)->arch != bfd_arch_unknown) |
9291 | 0 | return false; |
9292 | | |
9293 | 0 | return bfd_default_set_arch_mach (abfd, arch, machine); |
9294 | 0 | } |
9295 | | |
9296 | | /* Find the nearest line to a particular section and offset, |
9297 | | for error reporting. */ |
9298 | | |
9299 | | bool |
9300 | | _bfd_elf_find_nearest_line (bfd *abfd, |
9301 | | asymbol **symbols, |
9302 | | asection *section, |
9303 | | bfd_vma offset, |
9304 | | const char **filename_ptr, |
9305 | | const char **functionname_ptr, |
9306 | | unsigned int *line_ptr, |
9307 | | unsigned int *discriminator_ptr) |
9308 | 0 | { |
9309 | 0 | return _bfd_elf_find_nearest_line_with_alt (abfd, NULL, symbols, section, |
9310 | 0 | offset, filename_ptr, |
9311 | 0 | functionname_ptr, line_ptr, |
9312 | 0 | discriminator_ptr); |
9313 | 0 | } |
9314 | | |
9315 | | /* Find the nearest line to a particular section and offset, |
9316 | | for error reporting. ALT_BFD representing a .gnu_debugaltlink file |
9317 | | can be optionally specified. */ |
9318 | | |
9319 | | bool |
9320 | | _bfd_elf_find_nearest_line_with_alt (bfd *abfd, |
9321 | | const char *alt_filename, |
9322 | | asymbol **symbols, |
9323 | | asection *section, |
9324 | | bfd_vma offset, |
9325 | | const char **filename_ptr, |
9326 | | const char **functionname_ptr, |
9327 | | unsigned int *line_ptr, |
9328 | | unsigned int *discriminator_ptr) |
9329 | 0 | { |
9330 | 0 | bool found; |
9331 | |
|
9332 | 0 | if (_bfd_dwarf2_find_nearest_line_with_alt (abfd, alt_filename, symbols, NULL, |
9333 | 0 | section, offset, filename_ptr, |
9334 | 0 | functionname_ptr, line_ptr, |
9335 | 0 | discriminator_ptr, |
9336 | 0 | dwarf_debug_sections, |
9337 | 0 | &elf_tdata (abfd)->dwarf2_find_line_info)) |
9338 | 0 | return true; |
9339 | | |
9340 | 0 | if (_bfd_dwarf1_find_nearest_line (abfd, symbols, section, offset, |
9341 | 0 | filename_ptr, functionname_ptr, line_ptr)) |
9342 | 0 | { |
9343 | 0 | if (!*functionname_ptr) |
9344 | 0 | _bfd_elf_find_function (abfd, symbols, section, offset, |
9345 | 0 | *filename_ptr ? NULL : filename_ptr, |
9346 | 0 | functionname_ptr); |
9347 | 0 | return true; |
9348 | 0 | } |
9349 | | |
9350 | 0 | if (! _bfd_stab_section_find_nearest_line (abfd, symbols, section, offset, |
9351 | 0 | &found, filename_ptr, |
9352 | 0 | functionname_ptr, line_ptr, |
9353 | 0 | &elf_tdata (abfd)->line_info)) |
9354 | 0 | return false; |
9355 | 0 | if (found && (*functionname_ptr || *line_ptr)) |
9356 | 0 | return true; |
9357 | | |
9358 | 0 | if (symbols == NULL) |
9359 | 0 | return false; |
9360 | | |
9361 | 0 | if (! _bfd_elf_find_function (abfd, symbols, section, offset, |
9362 | 0 | filename_ptr, functionname_ptr)) |
9363 | 0 | return false; |
9364 | | |
9365 | 0 | *line_ptr = 0; |
9366 | 0 | return true; |
9367 | 0 | } |
9368 | | |
9369 | | /* Find the line for a symbol. */ |
9370 | | |
9371 | | bool |
9372 | | _bfd_elf_find_line (bfd *abfd, asymbol **symbols, asymbol *symbol, |
9373 | | const char **filename_ptr, unsigned int *line_ptr) |
9374 | 0 | { |
9375 | 0 | struct elf_obj_tdata *tdata = elf_tdata (abfd); |
9376 | 0 | return _bfd_dwarf2_find_nearest_line (abfd, symbols, symbol, NULL, 0, |
9377 | 0 | filename_ptr, NULL, line_ptr, NULL, |
9378 | 0 | dwarf_debug_sections, |
9379 | 0 | &tdata->dwarf2_find_line_info); |
9380 | 0 | } |
9381 | | |
9382 | | /* After a call to bfd_find_nearest_line, successive calls to |
9383 | | bfd_find_inliner_info can be used to get source information about |
9384 | | each level of function inlining that terminated at the address |
9385 | | passed to bfd_find_nearest_line. Currently this is only supported |
9386 | | for DWARF2 with appropriate DWARF3 extensions. */ |
9387 | | |
9388 | | bool |
9389 | | _bfd_elf_find_inliner_info (bfd *abfd, |
9390 | | const char **filename_ptr, |
9391 | | const char **functionname_ptr, |
9392 | | unsigned int *line_ptr) |
9393 | 0 | { |
9394 | 0 | struct elf_obj_tdata *tdata = elf_tdata (abfd); |
9395 | 0 | return _bfd_dwarf2_find_inliner_info (abfd, filename_ptr, |
9396 | 0 | functionname_ptr, line_ptr, |
9397 | 0 | &tdata->dwarf2_find_line_info); |
9398 | 0 | } |
9399 | | |
9400 | | int |
9401 | | _bfd_elf_sizeof_headers (bfd *abfd, struct bfd_link_info *info) |
9402 | 0 | { |
9403 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
9404 | 0 | int ret = bed->s->sizeof_ehdr; |
9405 | |
|
9406 | 0 | if (!bfd_link_relocatable (info)) |
9407 | 0 | { |
9408 | 0 | bfd_size_type phdr_size = elf_program_header_size (abfd); |
9409 | |
|
9410 | 0 | if (phdr_size == (bfd_size_type) -1) |
9411 | 0 | { |
9412 | 0 | struct elf_segment_map *m; |
9413 | |
|
9414 | 0 | phdr_size = 0; |
9415 | 0 | for (m = elf_seg_map (abfd); m != NULL; m = m->next) |
9416 | 0 | phdr_size += bed->s->sizeof_phdr; |
9417 | |
|
9418 | 0 | if (phdr_size == 0) |
9419 | 0 | phdr_size = get_program_header_size (abfd, info); |
9420 | 0 | } |
9421 | |
|
9422 | 0 | elf_program_header_size (abfd) = phdr_size; |
9423 | 0 | ret += phdr_size; |
9424 | 0 | } |
9425 | |
|
9426 | 0 | return ret; |
9427 | 0 | } |
9428 | | |
9429 | | bool |
9430 | | _bfd_elf_set_section_contents (bfd *abfd, |
9431 | | sec_ptr section, |
9432 | | const void *location, |
9433 | | file_ptr offset, |
9434 | | bfd_size_type count) |
9435 | 0 | { |
9436 | 0 | Elf_Internal_Shdr *hdr; |
9437 | |
|
9438 | 0 | if (! abfd->output_has_begun |
9439 | 0 | && ! _bfd_elf_compute_section_file_positions (abfd, NULL)) |
9440 | 0 | return false; |
9441 | | |
9442 | 0 | if (!count) |
9443 | 0 | return true; |
9444 | | |
9445 | 0 | hdr = &elf_section_data (section)->this_hdr; |
9446 | 0 | if (hdr->sh_offset == (file_ptr) -1) |
9447 | 0 | { |
9448 | 0 | unsigned char *contents; |
9449 | |
|
9450 | 0 | if (bfd_section_is_ctf (section)) |
9451 | | /* Nothing to do with this section: the contents are generated |
9452 | | later. */ |
9453 | 0 | return true; |
9454 | | |
9455 | 0 | if ((offset + count) > hdr->sh_size) |
9456 | 0 | { |
9457 | 0 | _bfd_error_handler |
9458 | 0 | (_("%pB:%pA: error: attempting to write" |
9459 | 0 | " over the end of the section"), |
9460 | 0 | abfd, section); |
9461 | |
|
9462 | 0 | bfd_set_error (bfd_error_invalid_operation); |
9463 | 0 | return false; |
9464 | 0 | } |
9465 | | |
9466 | 0 | contents = hdr->contents; |
9467 | 0 | if (contents == NULL) |
9468 | 0 | { |
9469 | 0 | _bfd_error_handler |
9470 | 0 | (_("%pB:%pA: error: attempting to write" |
9471 | 0 | " section into an empty buffer"), |
9472 | 0 | abfd, section); |
9473 | |
|
9474 | 0 | bfd_set_error (bfd_error_invalid_operation); |
9475 | 0 | return false; |
9476 | 0 | } |
9477 | | |
9478 | 0 | memcpy (contents + offset, location, count); |
9479 | 0 | return true; |
9480 | 0 | } |
9481 | | |
9482 | 0 | return _bfd_generic_set_section_contents (abfd, section, |
9483 | 0 | location, offset, count); |
9484 | 0 | } |
9485 | | |
9486 | | bool |
9487 | | _bfd_elf_no_info_to_howto (bfd *abfd ATTRIBUTE_UNUSED, |
9488 | | arelent *cache_ptr ATTRIBUTE_UNUSED, |
9489 | | Elf_Internal_Rela *dst ATTRIBUTE_UNUSED) |
9490 | 0 | { |
9491 | 0 | abort (); |
9492 | 0 | return false; |
9493 | 0 | } |
9494 | | |
9495 | | /* Try to convert a non-ELF reloc into an ELF one. */ |
9496 | | |
9497 | | bool |
9498 | | _bfd_elf_validate_reloc (bfd *abfd, arelent *areloc) |
9499 | 0 | { |
9500 | | /* Check whether we really have an ELF howto. */ |
9501 | |
|
9502 | 0 | if ((*areloc->sym_ptr_ptr)->the_bfd->xvec != abfd->xvec) |
9503 | 0 | { |
9504 | 0 | bfd_reloc_code_real_type code; |
9505 | 0 | reloc_howto_type *howto; |
9506 | | |
9507 | | /* Alien reloc: Try to determine its type to replace it with an |
9508 | | equivalent ELF reloc. */ |
9509 | |
|
9510 | 0 | if (areloc->howto->pc_relative) |
9511 | 0 | { |
9512 | 0 | switch (areloc->howto->bitsize) |
9513 | 0 | { |
9514 | 0 | case 8: |
9515 | 0 | code = BFD_RELOC_8_PCREL; |
9516 | 0 | break; |
9517 | 0 | case 12: |
9518 | 0 | code = BFD_RELOC_12_PCREL; |
9519 | 0 | break; |
9520 | 0 | case 16: |
9521 | 0 | code = BFD_RELOC_16_PCREL; |
9522 | 0 | break; |
9523 | 0 | case 24: |
9524 | 0 | code = BFD_RELOC_24_PCREL; |
9525 | 0 | break; |
9526 | 0 | case 32: |
9527 | 0 | code = BFD_RELOC_32_PCREL; |
9528 | 0 | break; |
9529 | 0 | case 64: |
9530 | 0 | code = BFD_RELOC_64_PCREL; |
9531 | 0 | break; |
9532 | 0 | default: |
9533 | 0 | goto fail; |
9534 | 0 | } |
9535 | | |
9536 | 0 | howto = bfd_reloc_type_lookup (abfd, code); |
9537 | |
|
9538 | 0 | if (howto && areloc->howto->pcrel_offset != howto->pcrel_offset) |
9539 | 0 | { |
9540 | 0 | if (howto->pcrel_offset) |
9541 | 0 | areloc->addend += areloc->address; |
9542 | 0 | else |
9543 | 0 | areloc->addend -= areloc->address; /* addend is unsigned!! */ |
9544 | 0 | } |
9545 | 0 | } |
9546 | 0 | else |
9547 | 0 | { |
9548 | 0 | switch (areloc->howto->bitsize) |
9549 | 0 | { |
9550 | 0 | case 8: |
9551 | 0 | code = BFD_RELOC_8; |
9552 | 0 | break; |
9553 | 0 | case 14: |
9554 | 0 | code = BFD_RELOC_14; |
9555 | 0 | break; |
9556 | 0 | case 16: |
9557 | 0 | code = BFD_RELOC_16; |
9558 | 0 | break; |
9559 | 0 | case 26: |
9560 | 0 | code = BFD_RELOC_26; |
9561 | 0 | break; |
9562 | 0 | case 32: |
9563 | 0 | code = BFD_RELOC_32; |
9564 | 0 | break; |
9565 | 0 | case 64: |
9566 | 0 | code = BFD_RELOC_64; |
9567 | 0 | break; |
9568 | 0 | default: |
9569 | 0 | goto fail; |
9570 | 0 | } |
9571 | | |
9572 | 0 | howto = bfd_reloc_type_lookup (abfd, code); |
9573 | 0 | } |
9574 | | |
9575 | 0 | if (howto) |
9576 | 0 | areloc->howto = howto; |
9577 | 0 | else |
9578 | 0 | goto fail; |
9579 | 0 | } |
9580 | | |
9581 | 0 | return true; |
9582 | | |
9583 | 0 | fail: |
9584 | | /* xgettext:c-format */ |
9585 | 0 | _bfd_error_handler (_("%pB: %s unsupported"), |
9586 | 0 | abfd, areloc->howto->name); |
9587 | 0 | bfd_set_error (bfd_error_sorry); |
9588 | 0 | return false; |
9589 | 0 | } |
9590 | | |
9591 | | bool |
9592 | | _bfd_elf_free_cached_info (bfd *abfd) |
9593 | 2 | { |
9594 | 2 | struct elf_obj_tdata *tdata; |
9595 | | |
9596 | 2 | if ((bfd_get_format (abfd) == bfd_object |
9597 | 2 | || bfd_get_format (abfd) == bfd_core) |
9598 | 2 | && (tdata = elf_tdata (abfd)) != NULL) |
9599 | 0 | { |
9600 | 0 | if (tdata->o != NULL && elf_shstrtab (abfd) != NULL) |
9601 | 0 | _bfd_elf_strtab_free (elf_shstrtab (abfd)); |
9602 | 0 | _bfd_dwarf2_cleanup_debug_info (abfd, &tdata->dwarf2_find_line_info); |
9603 | 0 | _bfd_dwarf1_cleanup_debug_info (abfd, &tdata->dwarf1_find_line_info); |
9604 | 0 | _bfd_stab_cleanup (abfd, &tdata->line_info); |
9605 | 0 | } |
9606 | | |
9607 | 2 | return _bfd_generic_bfd_free_cached_info (abfd); |
9608 | 2 | } |
9609 | | |
9610 | | /* For Rel targets, we encode meaningful data for BFD_RELOC_VTABLE_ENTRY |
9611 | | in the relocation's offset. Thus we cannot allow any sort of sanity |
9612 | | range-checking to interfere. There is nothing else to do in processing |
9613 | | this reloc. */ |
9614 | | |
9615 | | bfd_reloc_status_type |
9616 | | _bfd_elf_rel_vtable_reloc_fn |
9617 | | (bfd *abfd ATTRIBUTE_UNUSED, arelent *re ATTRIBUTE_UNUSED, |
9618 | | struct bfd_symbol *symbol ATTRIBUTE_UNUSED, |
9619 | | void *data ATTRIBUTE_UNUSED, asection *is ATTRIBUTE_UNUSED, |
9620 | | bfd *obfd ATTRIBUTE_UNUSED, char **errmsg ATTRIBUTE_UNUSED) |
9621 | 0 | { |
9622 | 0 | return bfd_reloc_ok; |
9623 | 0 | } |
9624 | | |
9625 | | /* Elf core file support. Much of this only works on native |
9626 | | toolchains, since we rely on knowing the |
9627 | | machine-dependent procfs structure in order to pick |
9628 | | out details about the corefile. */ |
9629 | | |
9630 | | #ifdef HAVE_SYS_PROCFS_H |
9631 | | # include <sys/procfs.h> |
9632 | | #endif |
9633 | | |
9634 | | /* Return a PID that identifies a "thread" for threaded cores, or the |
9635 | | PID of the main process for non-threaded cores. */ |
9636 | | |
9637 | | static int |
9638 | | elfcore_make_pid (bfd *abfd) |
9639 | 0 | { |
9640 | 0 | int pid; |
9641 | |
|
9642 | 0 | pid = elf_tdata (abfd)->core->lwpid; |
9643 | 0 | if (pid == 0) |
9644 | 0 | pid = elf_tdata (abfd)->core->pid; |
9645 | |
|
9646 | 0 | return pid; |
9647 | 0 | } |
9648 | | |
9649 | | /* If there isn't a section called NAME, make one, using data from |
9650 | | SECT. Note, this function will generate a reference to NAME, so |
9651 | | you shouldn't deallocate or overwrite it. */ |
9652 | | |
9653 | | static bool |
9654 | | elfcore_maybe_make_sect (bfd *abfd, char *name, asection *sect) |
9655 | 0 | { |
9656 | 0 | asection *sect2; |
9657 | |
|
9658 | 0 | if (bfd_get_section_by_name (abfd, name) != NULL) |
9659 | 0 | return true; |
9660 | | |
9661 | 0 | sect2 = bfd_make_section_with_flags (abfd, name, sect->flags); |
9662 | 0 | if (sect2 == NULL) |
9663 | 0 | return false; |
9664 | | |
9665 | 0 | sect2->size = sect->size; |
9666 | 0 | sect2->filepos = sect->filepos; |
9667 | 0 | sect2->alignment_power = sect->alignment_power; |
9668 | 0 | return true; |
9669 | 0 | } |
9670 | | |
9671 | | /* Create a pseudosection containing SIZE bytes at FILEPOS. This |
9672 | | actually creates up to two pseudosections: |
9673 | | - For the single-threaded case, a section named NAME, unless |
9674 | | such a section already exists. |
9675 | | - For the multi-threaded case, a section named "NAME/PID", where |
9676 | | PID is elfcore_make_pid (abfd). |
9677 | | Both pseudosections have identical contents. */ |
9678 | | bool |
9679 | | _bfd_elfcore_make_pseudosection (bfd *abfd, |
9680 | | char *name, |
9681 | | size_t size, |
9682 | | ufile_ptr filepos) |
9683 | 0 | { |
9684 | 0 | char buf[100]; |
9685 | 0 | char *threaded_name; |
9686 | 0 | size_t len; |
9687 | 0 | asection *sect; |
9688 | | |
9689 | | /* Build the section name. */ |
9690 | |
|
9691 | 0 | sprintf (buf, "%s/%d", name, elfcore_make_pid (abfd)); |
9692 | 0 | len = strlen (buf) + 1; |
9693 | 0 | threaded_name = (char *) bfd_alloc (abfd, len); |
9694 | 0 | if (threaded_name == NULL) |
9695 | 0 | return false; |
9696 | 0 | memcpy (threaded_name, buf, len); |
9697 | |
|
9698 | 0 | sect = bfd_make_section_anyway_with_flags (abfd, threaded_name, |
9699 | 0 | SEC_HAS_CONTENTS); |
9700 | 0 | if (sect == NULL) |
9701 | 0 | return false; |
9702 | 0 | sect->size = size; |
9703 | 0 | sect->filepos = filepos; |
9704 | 0 | sect->alignment_power = 2; |
9705 | |
|
9706 | 0 | return elfcore_maybe_make_sect (abfd, name, sect); |
9707 | 0 | } |
9708 | | |
9709 | | static bool |
9710 | | elfcore_make_auxv_note_section (bfd *abfd, Elf_Internal_Note *note, |
9711 | | size_t offs) |
9712 | 0 | { |
9713 | 0 | asection *sect = bfd_make_section_anyway_with_flags (abfd, ".auxv", |
9714 | 0 | SEC_HAS_CONTENTS); |
9715 | |
|
9716 | 0 | if (sect == NULL) |
9717 | 0 | return false; |
9718 | | |
9719 | 0 | sect->size = note->descsz - offs; |
9720 | 0 | sect->filepos = note->descpos + offs; |
9721 | 0 | sect->alignment_power = 1 + bfd_get_arch_size (abfd) / 32; |
9722 | |
|
9723 | 0 | return true; |
9724 | 0 | } |
9725 | | |
9726 | | /* prstatus_t exists on: |
9727 | | solaris 2.5+ |
9728 | | linux 2.[01] + glibc |
9729 | | unixware 4.2 |
9730 | | */ |
9731 | | |
9732 | | #if defined (HAVE_PRSTATUS_T) |
9733 | | |
9734 | | static bool |
9735 | | elfcore_grok_prstatus (bfd *abfd, Elf_Internal_Note *note) |
9736 | 0 | { |
9737 | 0 | size_t size; |
9738 | 0 | int offset; |
9739 | |
|
9740 | 0 | if (note->descsz == sizeof (prstatus_t)) |
9741 | 0 | { |
9742 | 0 | prstatus_t prstat; |
9743 | |
|
9744 | 0 | size = sizeof (prstat.pr_reg); |
9745 | 0 | offset = offsetof (prstatus_t, pr_reg); |
9746 | 0 | memcpy (&prstat, note->descdata, sizeof (prstat)); |
9747 | | |
9748 | | /* Do not overwrite the core signal if it |
9749 | | has already been set by another thread. */ |
9750 | 0 | if (elf_tdata (abfd)->core->signal == 0) |
9751 | 0 | elf_tdata (abfd)->core->signal = prstat.pr_cursig; |
9752 | 0 | if (elf_tdata (abfd)->core->pid == 0) |
9753 | 0 | elf_tdata (abfd)->core->pid = prstat.pr_pid; |
9754 | | |
9755 | | /* pr_who exists on: |
9756 | | solaris 2.5+ |
9757 | | unixware 4.2 |
9758 | | pr_who doesn't exist on: |
9759 | | linux 2.[01] |
9760 | | */ |
9761 | | #if defined (HAVE_PRSTATUS_T_PR_WHO) |
9762 | | elf_tdata (abfd)->core->lwpid = prstat.pr_who; |
9763 | | #else |
9764 | 0 | elf_tdata (abfd)->core->lwpid = prstat.pr_pid; |
9765 | 0 | #endif |
9766 | 0 | } |
9767 | 0 | #if defined (HAVE_PRSTATUS32_T) |
9768 | 0 | else if (note->descsz == sizeof (prstatus32_t)) |
9769 | 0 | { |
9770 | | /* 64-bit host, 32-bit corefile */ |
9771 | 0 | prstatus32_t prstat; |
9772 | |
|
9773 | 0 | size = sizeof (prstat.pr_reg); |
9774 | 0 | offset = offsetof (prstatus32_t, pr_reg); |
9775 | 0 | memcpy (&prstat, note->descdata, sizeof (prstat)); |
9776 | | |
9777 | | /* Do not overwrite the core signal if it |
9778 | | has already been set by another thread. */ |
9779 | 0 | if (elf_tdata (abfd)->core->signal == 0) |
9780 | 0 | elf_tdata (abfd)->core->signal = prstat.pr_cursig; |
9781 | 0 | if (elf_tdata (abfd)->core->pid == 0) |
9782 | 0 | elf_tdata (abfd)->core->pid = prstat.pr_pid; |
9783 | | |
9784 | | /* pr_who exists on: |
9785 | | solaris 2.5+ |
9786 | | unixware 4.2 |
9787 | | pr_who doesn't exist on: |
9788 | | linux 2.[01] |
9789 | | */ |
9790 | | #if defined (HAVE_PRSTATUS32_T_PR_WHO) |
9791 | | elf_tdata (abfd)->core->lwpid = prstat.pr_who; |
9792 | | #else |
9793 | 0 | elf_tdata (abfd)->core->lwpid = prstat.pr_pid; |
9794 | 0 | #endif |
9795 | 0 | } |
9796 | 0 | #endif /* HAVE_PRSTATUS32_T */ |
9797 | 0 | else |
9798 | 0 | { |
9799 | | /* Fail - we don't know how to handle any other |
9800 | | note size (ie. data object type). */ |
9801 | 0 | return true; |
9802 | 0 | } |
9803 | | |
9804 | | /* Make a ".reg/999" section and a ".reg" section. */ |
9805 | 0 | return _bfd_elfcore_make_pseudosection (abfd, ".reg", |
9806 | 0 | size, note->descpos + offset); |
9807 | 0 | } |
9808 | | #endif /* defined (HAVE_PRSTATUS_T) */ |
9809 | | |
9810 | | /* Create a pseudosection containing the exact contents of NOTE. */ |
9811 | | static bool |
9812 | | elfcore_make_note_pseudosection (bfd *abfd, |
9813 | | char *name, |
9814 | | Elf_Internal_Note *note) |
9815 | 0 | { |
9816 | 0 | return _bfd_elfcore_make_pseudosection (abfd, name, |
9817 | 0 | note->descsz, note->descpos); |
9818 | 0 | } |
9819 | | |
9820 | | /* There isn't a consistent prfpregset_t across platforms, |
9821 | | but it doesn't matter, because we don't have to pick this |
9822 | | data structure apart. */ |
9823 | | |
9824 | | static bool |
9825 | | elfcore_grok_prfpreg (bfd *abfd, Elf_Internal_Note *note) |
9826 | 0 | { |
9827 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg2", note); |
9828 | 0 | } |
9829 | | |
9830 | | /* Linux dumps the Intel SSE regs in a note named "LINUX" with a note |
9831 | | type of NT_PRXFPREG. Just include the whole note's contents |
9832 | | literally. */ |
9833 | | |
9834 | | static bool |
9835 | | elfcore_grok_prxfpreg (bfd *abfd, Elf_Internal_Note *note) |
9836 | 0 | { |
9837 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-xfp", note); |
9838 | 0 | } |
9839 | | |
9840 | | /* Linux dumps the Intel XSAVE extended state in a note named "LINUX" |
9841 | | with a note type of NT_X86_XSTATE. Just include the whole note's |
9842 | | contents literally. */ |
9843 | | |
9844 | | static bool |
9845 | | elfcore_grok_xstatereg (bfd *abfd, Elf_Internal_Note *note) |
9846 | 0 | { |
9847 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-xstate", note); |
9848 | 0 | } |
9849 | | |
9850 | | static bool |
9851 | | elfcore_grok_ppc_vmx (bfd *abfd, Elf_Internal_Note *note) |
9852 | 0 | { |
9853 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-ppc-vmx", note); |
9854 | 0 | } |
9855 | | |
9856 | | static bool |
9857 | | elfcore_grok_ppc_vsx (bfd *abfd, Elf_Internal_Note *note) |
9858 | 0 | { |
9859 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-ppc-vsx", note); |
9860 | 0 | } |
9861 | | |
9862 | | static bool |
9863 | | elfcore_grok_ppc_tar (bfd *abfd, Elf_Internal_Note *note) |
9864 | 0 | { |
9865 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-ppc-tar", note); |
9866 | 0 | } |
9867 | | |
9868 | | static bool |
9869 | | elfcore_grok_ppc_ppr (bfd *abfd, Elf_Internal_Note *note) |
9870 | 0 | { |
9871 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-ppc-ppr", note); |
9872 | 0 | } |
9873 | | |
9874 | | static bool |
9875 | | elfcore_grok_ppc_dscr (bfd *abfd, Elf_Internal_Note *note) |
9876 | 0 | { |
9877 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-ppc-dscr", note); |
9878 | 0 | } |
9879 | | |
9880 | | static bool |
9881 | | elfcore_grok_ppc_ebb (bfd *abfd, Elf_Internal_Note *note) |
9882 | 0 | { |
9883 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-ppc-ebb", note); |
9884 | 0 | } |
9885 | | |
9886 | | static bool |
9887 | | elfcore_grok_ppc_pmu (bfd *abfd, Elf_Internal_Note *note) |
9888 | 0 | { |
9889 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-ppc-pmu", note); |
9890 | 0 | } |
9891 | | |
9892 | | static bool |
9893 | | elfcore_grok_ppc_tm_cgpr (bfd *abfd, Elf_Internal_Note *note) |
9894 | 0 | { |
9895 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-ppc-tm-cgpr", note); |
9896 | 0 | } |
9897 | | |
9898 | | static bool |
9899 | | elfcore_grok_ppc_tm_cfpr (bfd *abfd, Elf_Internal_Note *note) |
9900 | 0 | { |
9901 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-ppc-tm-cfpr", note); |
9902 | 0 | } |
9903 | | |
9904 | | static bool |
9905 | | elfcore_grok_ppc_tm_cvmx (bfd *abfd, Elf_Internal_Note *note) |
9906 | 0 | { |
9907 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-ppc-tm-cvmx", note); |
9908 | 0 | } |
9909 | | |
9910 | | static bool |
9911 | | elfcore_grok_ppc_tm_cvsx (bfd *abfd, Elf_Internal_Note *note) |
9912 | 0 | { |
9913 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-ppc-tm-cvsx", note); |
9914 | 0 | } |
9915 | | |
9916 | | static bool |
9917 | | elfcore_grok_ppc_tm_spr (bfd *abfd, Elf_Internal_Note *note) |
9918 | 0 | { |
9919 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-ppc-tm-spr", note); |
9920 | 0 | } |
9921 | | |
9922 | | static bool |
9923 | | elfcore_grok_ppc_tm_ctar (bfd *abfd, Elf_Internal_Note *note) |
9924 | 0 | { |
9925 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-ppc-tm-ctar", note); |
9926 | 0 | } |
9927 | | |
9928 | | static bool |
9929 | | elfcore_grok_ppc_tm_cppr (bfd *abfd, Elf_Internal_Note *note) |
9930 | 0 | { |
9931 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-ppc-tm-cppr", note); |
9932 | 0 | } |
9933 | | |
9934 | | static bool |
9935 | | elfcore_grok_ppc_tm_cdscr (bfd *abfd, Elf_Internal_Note *note) |
9936 | 0 | { |
9937 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-ppc-tm-cdscr", note); |
9938 | 0 | } |
9939 | | |
9940 | | static bool |
9941 | | elfcore_grok_s390_high_gprs (bfd *abfd, Elf_Internal_Note *note) |
9942 | 0 | { |
9943 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-s390-high-gprs", note); |
9944 | 0 | } |
9945 | | |
9946 | | static bool |
9947 | | elfcore_grok_s390_timer (bfd *abfd, Elf_Internal_Note *note) |
9948 | 0 | { |
9949 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-s390-timer", note); |
9950 | 0 | } |
9951 | | |
9952 | | static bool |
9953 | | elfcore_grok_s390_todcmp (bfd *abfd, Elf_Internal_Note *note) |
9954 | 0 | { |
9955 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-s390-todcmp", note); |
9956 | 0 | } |
9957 | | |
9958 | | static bool |
9959 | | elfcore_grok_s390_todpreg (bfd *abfd, Elf_Internal_Note *note) |
9960 | 0 | { |
9961 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-s390-todpreg", note); |
9962 | 0 | } |
9963 | | |
9964 | | static bool |
9965 | | elfcore_grok_s390_ctrs (bfd *abfd, Elf_Internal_Note *note) |
9966 | 0 | { |
9967 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-s390-ctrs", note); |
9968 | 0 | } |
9969 | | |
9970 | | static bool |
9971 | | elfcore_grok_s390_prefix (bfd *abfd, Elf_Internal_Note *note) |
9972 | 0 | { |
9973 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-s390-prefix", note); |
9974 | 0 | } |
9975 | | |
9976 | | static bool |
9977 | | elfcore_grok_s390_last_break (bfd *abfd, Elf_Internal_Note *note) |
9978 | 0 | { |
9979 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-s390-last-break", note); |
9980 | 0 | } |
9981 | | |
9982 | | static bool |
9983 | | elfcore_grok_s390_system_call (bfd *abfd, Elf_Internal_Note *note) |
9984 | 0 | { |
9985 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-s390-system-call", note); |
9986 | 0 | } |
9987 | | |
9988 | | static bool |
9989 | | elfcore_grok_s390_tdb (bfd *abfd, Elf_Internal_Note *note) |
9990 | 0 | { |
9991 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-s390-tdb", note); |
9992 | 0 | } |
9993 | | |
9994 | | static bool |
9995 | | elfcore_grok_s390_vxrs_low (bfd *abfd, Elf_Internal_Note *note) |
9996 | 0 | { |
9997 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-s390-vxrs-low", note); |
9998 | 0 | } |
9999 | | |
10000 | | static bool |
10001 | | elfcore_grok_s390_vxrs_high (bfd *abfd, Elf_Internal_Note *note) |
10002 | 0 | { |
10003 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-s390-vxrs-high", note); |
10004 | 0 | } |
10005 | | |
10006 | | static bool |
10007 | | elfcore_grok_s390_gs_cb (bfd *abfd, Elf_Internal_Note *note) |
10008 | 0 | { |
10009 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-s390-gs-cb", note); |
10010 | 0 | } |
10011 | | |
10012 | | static bool |
10013 | | elfcore_grok_s390_gs_bc (bfd *abfd, Elf_Internal_Note *note) |
10014 | 0 | { |
10015 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-s390-gs-bc", note); |
10016 | 0 | } |
10017 | | |
10018 | | static bool |
10019 | | elfcore_grok_arm_vfp (bfd *abfd, Elf_Internal_Note *note) |
10020 | 0 | { |
10021 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-arm-vfp", note); |
10022 | 0 | } |
10023 | | |
10024 | | static bool |
10025 | | elfcore_grok_aarch_tls (bfd *abfd, Elf_Internal_Note *note) |
10026 | 0 | { |
10027 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-aarch-tls", note); |
10028 | 0 | } |
10029 | | |
10030 | | static bool |
10031 | | elfcore_grok_aarch_hw_break (bfd *abfd, Elf_Internal_Note *note) |
10032 | 0 | { |
10033 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-aarch-hw-break", note); |
10034 | 0 | } |
10035 | | |
10036 | | static bool |
10037 | | elfcore_grok_aarch_hw_watch (bfd *abfd, Elf_Internal_Note *note) |
10038 | 0 | { |
10039 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-aarch-hw-watch", note); |
10040 | 0 | } |
10041 | | |
10042 | | static bool |
10043 | | elfcore_grok_aarch_sve (bfd *abfd, Elf_Internal_Note *note) |
10044 | 0 | { |
10045 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-aarch-sve", note); |
10046 | 0 | } |
10047 | | |
10048 | | static bool |
10049 | | elfcore_grok_aarch_pauth (bfd *abfd, Elf_Internal_Note *note) |
10050 | 0 | { |
10051 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-aarch-pauth", note); |
10052 | 0 | } |
10053 | | |
10054 | | static bool |
10055 | | elfcore_grok_aarch_mte (bfd *abfd, Elf_Internal_Note *note) |
10056 | 0 | { |
10057 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-aarch-mte", |
10058 | 0 | note); |
10059 | 0 | } |
10060 | | |
10061 | | static bool |
10062 | | elfcore_grok_arc_v2 (bfd *abfd, Elf_Internal_Note *note) |
10063 | 0 | { |
10064 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-arc-v2", note); |
10065 | 0 | } |
10066 | | |
10067 | | /* Convert NOTE into a bfd_section called ".reg-riscv-csr". Return TRUE if |
10068 | | successful otherwise, return FALSE. */ |
10069 | | |
10070 | | static bool |
10071 | | elfcore_grok_riscv_csr (bfd *abfd, Elf_Internal_Note *note) |
10072 | 0 | { |
10073 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-riscv-csr", note); |
10074 | 0 | } |
10075 | | |
10076 | | /* Convert NOTE into a bfd_section called ".gdb-tdesc". Return TRUE if |
10077 | | successful otherwise, return FALSE. */ |
10078 | | |
10079 | | static bool |
10080 | | elfcore_grok_gdb_tdesc (bfd *abfd, Elf_Internal_Note *note) |
10081 | 0 | { |
10082 | 0 | return elfcore_make_note_pseudosection (abfd, ".gdb-tdesc", note); |
10083 | 0 | } |
10084 | | |
10085 | | static bool |
10086 | | elfcore_grok_loongarch_cpucfg (bfd *abfd, Elf_Internal_Note *note) |
10087 | 0 | { |
10088 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-loongarch-cpucfg", note); |
10089 | 0 | } |
10090 | | |
10091 | | static bool |
10092 | | elfcore_grok_loongarch_lbt (bfd *abfd, Elf_Internal_Note *note) |
10093 | 0 | { |
10094 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-loongarch-lbt", note); |
10095 | 0 | } |
10096 | | |
10097 | | static bool |
10098 | | elfcore_grok_loongarch_lsx (bfd *abfd, Elf_Internal_Note *note) |
10099 | 0 | { |
10100 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-loongarch-lsx", note); |
10101 | 0 | } |
10102 | | |
10103 | | static bool |
10104 | | elfcore_grok_loongarch_lasx (bfd *abfd, Elf_Internal_Note *note) |
10105 | 0 | { |
10106 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-loongarch-lasx", note); |
10107 | 0 | } |
10108 | | |
10109 | | #if defined (HAVE_PRPSINFO_T) |
10110 | | typedef prpsinfo_t elfcore_psinfo_t; |
10111 | | #if defined (HAVE_PRPSINFO32_T) /* Sparc64 cross Sparc32 */ |
10112 | | typedef prpsinfo32_t elfcore_psinfo32_t; |
10113 | | #endif |
10114 | | #endif |
10115 | | |
10116 | | #if defined (HAVE_PSINFO_T) |
10117 | | typedef psinfo_t elfcore_psinfo_t; |
10118 | | #if defined (HAVE_PSINFO32_T) /* Sparc64 cross Sparc32 */ |
10119 | | typedef psinfo32_t elfcore_psinfo32_t; |
10120 | | #endif |
10121 | | #endif |
10122 | | |
10123 | | /* return a malloc'ed copy of a string at START which is at |
10124 | | most MAX bytes long, possibly without a terminating '\0'. |
10125 | | the copy will always have a terminating '\0'. */ |
10126 | | |
10127 | | char * |
10128 | | _bfd_elfcore_strndup (bfd *abfd, char *start, size_t max) |
10129 | 0 | { |
10130 | 0 | char *dups; |
10131 | 0 | char *end = (char *) memchr (start, '\0', max); |
10132 | 0 | size_t len; |
10133 | |
|
10134 | 0 | if (end == NULL) |
10135 | 0 | len = max; |
10136 | 0 | else |
10137 | 0 | len = end - start; |
10138 | |
|
10139 | 0 | dups = (char *) bfd_alloc (abfd, len + 1); |
10140 | 0 | if (dups == NULL) |
10141 | 0 | return NULL; |
10142 | | |
10143 | 0 | memcpy (dups, start, len); |
10144 | 0 | dups[len] = '\0'; |
10145 | |
|
10146 | 0 | return dups; |
10147 | 0 | } |
10148 | | |
10149 | | #if defined (HAVE_PRPSINFO_T) || defined (HAVE_PSINFO_T) |
10150 | | static bool |
10151 | | elfcore_grok_psinfo (bfd *abfd, Elf_Internal_Note *note) |
10152 | 0 | { |
10153 | 0 | if (note->descsz == sizeof (elfcore_psinfo_t)) |
10154 | 0 | { |
10155 | 0 | elfcore_psinfo_t psinfo; |
10156 | |
|
10157 | 0 | memcpy (&psinfo, note->descdata, sizeof (psinfo)); |
10158 | |
|
10159 | 0 | #if defined (HAVE_PSINFO_T_PR_PID) || defined (HAVE_PRPSINFO_T_PR_PID) |
10160 | 0 | elf_tdata (abfd)->core->pid = psinfo.pr_pid; |
10161 | 0 | #endif |
10162 | 0 | elf_tdata (abfd)->core->program |
10163 | 0 | = _bfd_elfcore_strndup (abfd, psinfo.pr_fname, |
10164 | 0 | sizeof (psinfo.pr_fname)); |
10165 | |
|
10166 | 0 | elf_tdata (abfd)->core->command |
10167 | 0 | = _bfd_elfcore_strndup (abfd, psinfo.pr_psargs, |
10168 | 0 | sizeof (psinfo.pr_psargs)); |
10169 | 0 | } |
10170 | 0 | #if defined (HAVE_PRPSINFO32_T) || defined (HAVE_PSINFO32_T) |
10171 | 0 | else if (note->descsz == sizeof (elfcore_psinfo32_t)) |
10172 | 0 | { |
10173 | | /* 64-bit host, 32-bit corefile */ |
10174 | 0 | elfcore_psinfo32_t psinfo; |
10175 | |
|
10176 | 0 | memcpy (&psinfo, note->descdata, sizeof (psinfo)); |
10177 | |
|
10178 | 0 | #if defined (HAVE_PSINFO32_T_PR_PID) || defined (HAVE_PRPSINFO32_T_PR_PID) |
10179 | 0 | elf_tdata (abfd)->core->pid = psinfo.pr_pid; |
10180 | 0 | #endif |
10181 | 0 | elf_tdata (abfd)->core->program |
10182 | 0 | = _bfd_elfcore_strndup (abfd, psinfo.pr_fname, |
10183 | 0 | sizeof (psinfo.pr_fname)); |
10184 | |
|
10185 | 0 | elf_tdata (abfd)->core->command |
10186 | 0 | = _bfd_elfcore_strndup (abfd, psinfo.pr_psargs, |
10187 | 0 | sizeof (psinfo.pr_psargs)); |
10188 | 0 | } |
10189 | 0 | #endif |
10190 | | |
10191 | 0 | else |
10192 | 0 | { |
10193 | | /* Fail - we don't know how to handle any other |
10194 | | note size (ie. data object type). */ |
10195 | 0 | return true; |
10196 | 0 | } |
10197 | | |
10198 | | /* Note that for some reason, a spurious space is tacked |
10199 | | onto the end of the args in some (at least one anyway) |
10200 | | implementations, so strip it off if it exists. */ |
10201 | | |
10202 | 0 | { |
10203 | 0 | char *command = elf_tdata (abfd)->core->command; |
10204 | 0 | int n = strlen (command); |
10205 | |
|
10206 | 0 | if (0 < n && command[n - 1] == ' ') |
10207 | 0 | command[n - 1] = '\0'; |
10208 | 0 | } |
10209 | |
|
10210 | 0 | return true; |
10211 | 0 | } |
10212 | | #endif /* defined (HAVE_PRPSINFO_T) || defined (HAVE_PSINFO_T) */ |
10213 | | |
10214 | | #if defined (HAVE_PSTATUS_T) |
10215 | | static bool |
10216 | | elfcore_grok_pstatus (bfd *abfd, Elf_Internal_Note *note) |
10217 | | { |
10218 | | if (note->descsz == sizeof (pstatus_t) |
10219 | | #if defined (HAVE_PXSTATUS_T) |
10220 | | || note->descsz == sizeof (pxstatus_t) |
10221 | | #endif |
10222 | | ) |
10223 | | { |
10224 | | pstatus_t pstat; |
10225 | | |
10226 | | memcpy (&pstat, note->descdata, sizeof (pstat)); |
10227 | | |
10228 | | elf_tdata (abfd)->core->pid = pstat.pr_pid; |
10229 | | } |
10230 | | #if defined (HAVE_PSTATUS32_T) |
10231 | | else if (note->descsz == sizeof (pstatus32_t)) |
10232 | | { |
10233 | | /* 64-bit host, 32-bit corefile */ |
10234 | | pstatus32_t pstat; |
10235 | | |
10236 | | memcpy (&pstat, note->descdata, sizeof (pstat)); |
10237 | | |
10238 | | elf_tdata (abfd)->core->pid = pstat.pr_pid; |
10239 | | } |
10240 | | #endif |
10241 | | /* Could grab some more details from the "representative" |
10242 | | lwpstatus_t in pstat.pr_lwp, but we'll catch it all in an |
10243 | | NT_LWPSTATUS note, presumably. */ |
10244 | | |
10245 | | return true; |
10246 | | } |
10247 | | #endif /* defined (HAVE_PSTATUS_T) */ |
10248 | | |
10249 | | #if defined (HAVE_LWPSTATUS_T) |
10250 | | static bool |
10251 | | elfcore_grok_lwpstatus (bfd *abfd, Elf_Internal_Note *note) |
10252 | | { |
10253 | | lwpstatus_t lwpstat; |
10254 | | char buf[100]; |
10255 | | char *name; |
10256 | | size_t len; |
10257 | | asection *sect; |
10258 | | |
10259 | | if (note->descsz != sizeof (lwpstat) |
10260 | | #if defined (HAVE_LWPXSTATUS_T) |
10261 | | && note->descsz != sizeof (lwpxstatus_t) |
10262 | | #endif |
10263 | | ) |
10264 | | return true; |
10265 | | |
10266 | | memcpy (&lwpstat, note->descdata, sizeof (lwpstat)); |
10267 | | |
10268 | | elf_tdata (abfd)->core->lwpid = lwpstat.pr_lwpid; |
10269 | | /* Do not overwrite the core signal if it has already been set by |
10270 | | another thread. */ |
10271 | | if (elf_tdata (abfd)->core->signal == 0) |
10272 | | elf_tdata (abfd)->core->signal = lwpstat.pr_cursig; |
10273 | | |
10274 | | /* Make a ".reg/999" section. */ |
10275 | | |
10276 | | sprintf (buf, ".reg/%d", elfcore_make_pid (abfd)); |
10277 | | len = strlen (buf) + 1; |
10278 | | name = bfd_alloc (abfd, len); |
10279 | | if (name == NULL) |
10280 | | return false; |
10281 | | memcpy (name, buf, len); |
10282 | | |
10283 | | sect = bfd_make_section_anyway_with_flags (abfd, name, SEC_HAS_CONTENTS); |
10284 | | if (sect == NULL) |
10285 | | return false; |
10286 | | |
10287 | | #if defined (HAVE_LWPSTATUS_T_PR_CONTEXT) |
10288 | | sect->size = sizeof (lwpstat.pr_context.uc_mcontext.gregs); |
10289 | | sect->filepos = note->descpos |
10290 | | + offsetof (lwpstatus_t, pr_context.uc_mcontext.gregs); |
10291 | | #endif |
10292 | | |
10293 | | #if defined (HAVE_LWPSTATUS_T_PR_REG) |
10294 | | sect->size = sizeof (lwpstat.pr_reg); |
10295 | | sect->filepos = note->descpos + offsetof (lwpstatus_t, pr_reg); |
10296 | | #endif |
10297 | | |
10298 | | sect->alignment_power = 2; |
10299 | | |
10300 | | if (!elfcore_maybe_make_sect (abfd, ".reg", sect)) |
10301 | | return false; |
10302 | | |
10303 | | /* Make a ".reg2/999" section */ |
10304 | | |
10305 | | sprintf (buf, ".reg2/%d", elfcore_make_pid (abfd)); |
10306 | | len = strlen (buf) + 1; |
10307 | | name = bfd_alloc (abfd, len); |
10308 | | if (name == NULL) |
10309 | | return false; |
10310 | | memcpy (name, buf, len); |
10311 | | |
10312 | | sect = bfd_make_section_anyway_with_flags (abfd, name, SEC_HAS_CONTENTS); |
10313 | | if (sect == NULL) |
10314 | | return false; |
10315 | | |
10316 | | #if defined (HAVE_LWPSTATUS_T_PR_CONTEXT) |
10317 | | sect->size = sizeof (lwpstat.pr_context.uc_mcontext.fpregs); |
10318 | | sect->filepos = note->descpos |
10319 | | + offsetof (lwpstatus_t, pr_context.uc_mcontext.fpregs); |
10320 | | #endif |
10321 | | |
10322 | | #if defined (HAVE_LWPSTATUS_T_PR_FPREG) |
10323 | | sect->size = sizeof (lwpstat.pr_fpreg); |
10324 | | sect->filepos = note->descpos + offsetof (lwpstatus_t, pr_fpreg); |
10325 | | #endif |
10326 | | |
10327 | | sect->alignment_power = 2; |
10328 | | |
10329 | | return elfcore_maybe_make_sect (abfd, ".reg2", sect); |
10330 | | } |
10331 | | #endif /* defined (HAVE_LWPSTATUS_T) */ |
10332 | | |
10333 | | /* These constants, and the structure offsets used below, are defined by |
10334 | | Cygwin's core_dump.h */ |
10335 | 0 | #define NOTE_INFO_PROCESS 1 |
10336 | 0 | #define NOTE_INFO_THREAD 2 |
10337 | 0 | #define NOTE_INFO_MODULE 3 |
10338 | 0 | #define NOTE_INFO_MODULE64 4 |
10339 | | |
10340 | | static bool |
10341 | | elfcore_grok_win32pstatus (bfd *abfd, Elf_Internal_Note *note) |
10342 | 0 | { |
10343 | 0 | char buf[30]; |
10344 | 0 | char *name; |
10345 | 0 | size_t len; |
10346 | 0 | unsigned int name_size; |
10347 | 0 | asection *sect; |
10348 | 0 | unsigned int type; |
10349 | 0 | int is_active_thread; |
10350 | 0 | bfd_vma base_addr; |
10351 | |
|
10352 | 0 | if (note->descsz < 4) |
10353 | 0 | return true; |
10354 | | |
10355 | 0 | if (! startswith (note->namedata, "win32")) |
10356 | 0 | return true; |
10357 | | |
10358 | 0 | type = bfd_get_32 (abfd, note->descdata); |
10359 | |
|
10360 | 0 | struct |
10361 | 0 | { |
10362 | 0 | const char *type_name; |
10363 | 0 | unsigned long min_size; |
10364 | 0 | } size_check[] = |
10365 | 0 | { |
10366 | 0 | { "NOTE_INFO_PROCESS", 12 }, |
10367 | 0 | { "NOTE_INFO_THREAD", 12 }, |
10368 | 0 | { "NOTE_INFO_MODULE", 12 }, |
10369 | 0 | { "NOTE_INFO_MODULE64", 16 }, |
10370 | 0 | }; |
10371 | |
|
10372 | 0 | if (type == 0 || type > (sizeof(size_check)/sizeof(size_check[0]))) |
10373 | 0 | return true; |
10374 | | |
10375 | 0 | if (note->descsz < size_check[type - 1].min_size) |
10376 | 0 | { |
10377 | 0 | _bfd_error_handler (_("%pB: warning: win32pstatus %s of size %lu bytes" |
10378 | 0 | " is too small"), |
10379 | 0 | abfd, size_check[type - 1].type_name, note->descsz); |
10380 | 0 | return true; |
10381 | 0 | } |
10382 | | |
10383 | 0 | switch (type) |
10384 | 0 | { |
10385 | 0 | case NOTE_INFO_PROCESS: |
10386 | | /* FIXME: need to add ->core->command. */ |
10387 | 0 | elf_tdata (abfd)->core->pid = bfd_get_32 (abfd, note->descdata + 4); |
10388 | 0 | elf_tdata (abfd)->core->signal = bfd_get_32 (abfd, note->descdata + 8); |
10389 | 0 | break; |
10390 | | |
10391 | 0 | case NOTE_INFO_THREAD: |
10392 | | /* Make a ".reg/<tid>" section containing the Win32 API thread CONTEXT |
10393 | | structure. */ |
10394 | | /* thread_info.tid */ |
10395 | 0 | sprintf (buf, ".reg/%ld", (long) bfd_get_32 (abfd, note->descdata + 4)); |
10396 | |
|
10397 | 0 | len = strlen (buf) + 1; |
10398 | 0 | name = (char *) bfd_alloc (abfd, len); |
10399 | 0 | if (name == NULL) |
10400 | 0 | return false; |
10401 | | |
10402 | 0 | memcpy (name, buf, len); |
10403 | |
|
10404 | 0 | sect = bfd_make_section_anyway_with_flags (abfd, name, SEC_HAS_CONTENTS); |
10405 | 0 | if (sect == NULL) |
10406 | 0 | return false; |
10407 | | |
10408 | | /* sizeof (thread_info.thread_context) */ |
10409 | 0 | sect->size = note->descsz - 12; |
10410 | | /* offsetof (thread_info.thread_context) */ |
10411 | 0 | sect->filepos = note->descpos + 12; |
10412 | 0 | sect->alignment_power = 2; |
10413 | | |
10414 | | /* thread_info.is_active_thread */ |
10415 | 0 | is_active_thread = bfd_get_32 (abfd, note->descdata + 8); |
10416 | |
|
10417 | 0 | if (is_active_thread) |
10418 | 0 | if (! elfcore_maybe_make_sect (abfd, ".reg", sect)) |
10419 | 0 | return false; |
10420 | 0 | break; |
10421 | | |
10422 | 0 | case NOTE_INFO_MODULE: |
10423 | 0 | case NOTE_INFO_MODULE64: |
10424 | | /* Make a ".module/xxxxxxxx" section. */ |
10425 | 0 | if (type == NOTE_INFO_MODULE) |
10426 | 0 | { |
10427 | | /* module_info.base_address */ |
10428 | 0 | base_addr = bfd_get_32 (abfd, note->descdata + 4); |
10429 | 0 | sprintf (buf, ".module/%08lx", (unsigned long) base_addr); |
10430 | | /* module_info.module_name_size */ |
10431 | 0 | name_size = bfd_get_32 (abfd, note->descdata + 8); |
10432 | 0 | } |
10433 | 0 | else /* NOTE_INFO_MODULE64 */ |
10434 | 0 | { |
10435 | | /* module_info.base_address */ |
10436 | 0 | base_addr = bfd_get_64 (abfd, note->descdata + 4); |
10437 | 0 | sprintf (buf, ".module/%016lx", (unsigned long) base_addr); |
10438 | | /* module_info.module_name_size */ |
10439 | 0 | name_size = bfd_get_32 (abfd, note->descdata + 12); |
10440 | 0 | } |
10441 | |
|
10442 | 0 | len = strlen (buf) + 1; |
10443 | 0 | name = (char *) bfd_alloc (abfd, len); |
10444 | 0 | if (name == NULL) |
10445 | 0 | return false; |
10446 | | |
10447 | 0 | memcpy (name, buf, len); |
10448 | |
|
10449 | 0 | sect = bfd_make_section_anyway_with_flags (abfd, name, SEC_HAS_CONTENTS); |
10450 | |
|
10451 | 0 | if (sect == NULL) |
10452 | 0 | return false; |
10453 | | |
10454 | 0 | if (note->descsz < 12 + name_size) |
10455 | 0 | { |
10456 | 0 | _bfd_error_handler (_("%pB: win32pstatus NOTE_INFO_MODULE of size %lu" |
10457 | 0 | " is too small to contain a name of size %u"), |
10458 | 0 | abfd, note->descsz, name_size); |
10459 | 0 | return true; |
10460 | 0 | } |
10461 | | |
10462 | 0 | sect->size = note->descsz; |
10463 | 0 | sect->filepos = note->descpos; |
10464 | 0 | sect->alignment_power = 2; |
10465 | 0 | break; |
10466 | | |
10467 | 0 | default: |
10468 | 0 | return true; |
10469 | 0 | } |
10470 | | |
10471 | 0 | return true; |
10472 | 0 | } |
10473 | | |
10474 | | static bool |
10475 | | elfcore_grok_note (bfd *abfd, Elf_Internal_Note *note) |
10476 | 0 | { |
10477 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
10478 | |
|
10479 | 0 | switch (note->type) |
10480 | 0 | { |
10481 | 0 | default: |
10482 | 0 | return true; |
10483 | | |
10484 | 0 | case NT_PRSTATUS: |
10485 | 0 | if (bed->elf_backend_grok_prstatus) |
10486 | 0 | if ((*bed->elf_backend_grok_prstatus) (abfd, note)) |
10487 | 0 | return true; |
10488 | 0 | #if defined (HAVE_PRSTATUS_T) |
10489 | 0 | return elfcore_grok_prstatus (abfd, note); |
10490 | | #else |
10491 | | return true; |
10492 | | #endif |
10493 | | |
10494 | | #if defined (HAVE_PSTATUS_T) |
10495 | | case NT_PSTATUS: |
10496 | | return elfcore_grok_pstatus (abfd, note); |
10497 | | #endif |
10498 | | |
10499 | | #if defined (HAVE_LWPSTATUS_T) |
10500 | | case NT_LWPSTATUS: |
10501 | | return elfcore_grok_lwpstatus (abfd, note); |
10502 | | #endif |
10503 | | |
10504 | 0 | case NT_FPREGSET: /* FIXME: rename to NT_PRFPREG */ |
10505 | 0 | return elfcore_grok_prfpreg (abfd, note); |
10506 | | |
10507 | 0 | case NT_WIN32PSTATUS: |
10508 | 0 | return elfcore_grok_win32pstatus (abfd, note); |
10509 | | |
10510 | 0 | case NT_PRXFPREG: /* Linux SSE extension */ |
10511 | 0 | if (note->namesz == 6 |
10512 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10513 | 0 | return elfcore_grok_prxfpreg (abfd, note); |
10514 | 0 | else |
10515 | 0 | return true; |
10516 | | |
10517 | 0 | case NT_X86_XSTATE: /* Linux XSAVE extension */ |
10518 | 0 | if (note->namesz == 6 |
10519 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10520 | 0 | return elfcore_grok_xstatereg (abfd, note); |
10521 | 0 | else |
10522 | 0 | return true; |
10523 | | |
10524 | 0 | case NT_PPC_VMX: |
10525 | 0 | if (note->namesz == 6 |
10526 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10527 | 0 | return elfcore_grok_ppc_vmx (abfd, note); |
10528 | 0 | else |
10529 | 0 | return true; |
10530 | | |
10531 | 0 | case NT_PPC_VSX: |
10532 | 0 | if (note->namesz == 6 |
10533 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10534 | 0 | return elfcore_grok_ppc_vsx (abfd, note); |
10535 | 0 | else |
10536 | 0 | return true; |
10537 | | |
10538 | 0 | case NT_PPC_TAR: |
10539 | 0 | if (note->namesz == 6 |
10540 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10541 | 0 | return elfcore_grok_ppc_tar (abfd, note); |
10542 | 0 | else |
10543 | 0 | return true; |
10544 | | |
10545 | 0 | case NT_PPC_PPR: |
10546 | 0 | if (note->namesz == 6 |
10547 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10548 | 0 | return elfcore_grok_ppc_ppr (abfd, note); |
10549 | 0 | else |
10550 | 0 | return true; |
10551 | | |
10552 | 0 | case NT_PPC_DSCR: |
10553 | 0 | if (note->namesz == 6 |
10554 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10555 | 0 | return elfcore_grok_ppc_dscr (abfd, note); |
10556 | 0 | else |
10557 | 0 | return true; |
10558 | | |
10559 | 0 | case NT_PPC_EBB: |
10560 | 0 | if (note->namesz == 6 |
10561 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10562 | 0 | return elfcore_grok_ppc_ebb (abfd, note); |
10563 | 0 | else |
10564 | 0 | return true; |
10565 | | |
10566 | 0 | case NT_PPC_PMU: |
10567 | 0 | if (note->namesz == 6 |
10568 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10569 | 0 | return elfcore_grok_ppc_pmu (abfd, note); |
10570 | 0 | else |
10571 | 0 | return true; |
10572 | | |
10573 | 0 | case NT_PPC_TM_CGPR: |
10574 | 0 | if (note->namesz == 6 |
10575 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10576 | 0 | return elfcore_grok_ppc_tm_cgpr (abfd, note); |
10577 | 0 | else |
10578 | 0 | return true; |
10579 | | |
10580 | 0 | case NT_PPC_TM_CFPR: |
10581 | 0 | if (note->namesz == 6 |
10582 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10583 | 0 | return elfcore_grok_ppc_tm_cfpr (abfd, note); |
10584 | 0 | else |
10585 | 0 | return true; |
10586 | | |
10587 | 0 | case NT_PPC_TM_CVMX: |
10588 | 0 | if (note->namesz == 6 |
10589 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10590 | 0 | return elfcore_grok_ppc_tm_cvmx (abfd, note); |
10591 | 0 | else |
10592 | 0 | return true; |
10593 | | |
10594 | 0 | case NT_PPC_TM_CVSX: |
10595 | 0 | if (note->namesz == 6 |
10596 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10597 | 0 | return elfcore_grok_ppc_tm_cvsx (abfd, note); |
10598 | 0 | else |
10599 | 0 | return true; |
10600 | | |
10601 | 0 | case NT_PPC_TM_SPR: |
10602 | 0 | if (note->namesz == 6 |
10603 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10604 | 0 | return elfcore_grok_ppc_tm_spr (abfd, note); |
10605 | 0 | else |
10606 | 0 | return true; |
10607 | | |
10608 | 0 | case NT_PPC_TM_CTAR: |
10609 | 0 | if (note->namesz == 6 |
10610 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10611 | 0 | return elfcore_grok_ppc_tm_ctar (abfd, note); |
10612 | 0 | else |
10613 | 0 | return true; |
10614 | | |
10615 | 0 | case NT_PPC_TM_CPPR: |
10616 | 0 | if (note->namesz == 6 |
10617 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10618 | 0 | return elfcore_grok_ppc_tm_cppr (abfd, note); |
10619 | 0 | else |
10620 | 0 | return true; |
10621 | | |
10622 | 0 | case NT_PPC_TM_CDSCR: |
10623 | 0 | if (note->namesz == 6 |
10624 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10625 | 0 | return elfcore_grok_ppc_tm_cdscr (abfd, note); |
10626 | 0 | else |
10627 | 0 | return true; |
10628 | | |
10629 | 0 | case NT_S390_HIGH_GPRS: |
10630 | 0 | if (note->namesz == 6 |
10631 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10632 | 0 | return elfcore_grok_s390_high_gprs (abfd, note); |
10633 | 0 | else |
10634 | 0 | return true; |
10635 | | |
10636 | 0 | case NT_S390_TIMER: |
10637 | 0 | if (note->namesz == 6 |
10638 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10639 | 0 | return elfcore_grok_s390_timer (abfd, note); |
10640 | 0 | else |
10641 | 0 | return true; |
10642 | | |
10643 | 0 | case NT_S390_TODCMP: |
10644 | 0 | if (note->namesz == 6 |
10645 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10646 | 0 | return elfcore_grok_s390_todcmp (abfd, note); |
10647 | 0 | else |
10648 | 0 | return true; |
10649 | | |
10650 | 0 | case NT_S390_TODPREG: |
10651 | 0 | if (note->namesz == 6 |
10652 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10653 | 0 | return elfcore_grok_s390_todpreg (abfd, note); |
10654 | 0 | else |
10655 | 0 | return true; |
10656 | | |
10657 | 0 | case NT_S390_CTRS: |
10658 | 0 | if (note->namesz == 6 |
10659 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10660 | 0 | return elfcore_grok_s390_ctrs (abfd, note); |
10661 | 0 | else |
10662 | 0 | return true; |
10663 | | |
10664 | 0 | case NT_S390_PREFIX: |
10665 | 0 | if (note->namesz == 6 |
10666 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10667 | 0 | return elfcore_grok_s390_prefix (abfd, note); |
10668 | 0 | else |
10669 | 0 | return true; |
10670 | | |
10671 | 0 | case NT_S390_LAST_BREAK: |
10672 | 0 | if (note->namesz == 6 |
10673 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10674 | 0 | return elfcore_grok_s390_last_break (abfd, note); |
10675 | 0 | else |
10676 | 0 | return true; |
10677 | | |
10678 | 0 | case NT_S390_SYSTEM_CALL: |
10679 | 0 | if (note->namesz == 6 |
10680 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10681 | 0 | return elfcore_grok_s390_system_call (abfd, note); |
10682 | 0 | else |
10683 | 0 | return true; |
10684 | | |
10685 | 0 | case NT_S390_TDB: |
10686 | 0 | if (note->namesz == 6 |
10687 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10688 | 0 | return elfcore_grok_s390_tdb (abfd, note); |
10689 | 0 | else |
10690 | 0 | return true; |
10691 | | |
10692 | 0 | case NT_S390_VXRS_LOW: |
10693 | 0 | if (note->namesz == 6 |
10694 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10695 | 0 | return elfcore_grok_s390_vxrs_low (abfd, note); |
10696 | 0 | else |
10697 | 0 | return true; |
10698 | | |
10699 | 0 | case NT_S390_VXRS_HIGH: |
10700 | 0 | if (note->namesz == 6 |
10701 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10702 | 0 | return elfcore_grok_s390_vxrs_high (abfd, note); |
10703 | 0 | else |
10704 | 0 | return true; |
10705 | | |
10706 | 0 | case NT_S390_GS_CB: |
10707 | 0 | if (note->namesz == 6 |
10708 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10709 | 0 | return elfcore_grok_s390_gs_cb (abfd, note); |
10710 | 0 | else |
10711 | 0 | return true; |
10712 | | |
10713 | 0 | case NT_S390_GS_BC: |
10714 | 0 | if (note->namesz == 6 |
10715 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10716 | 0 | return elfcore_grok_s390_gs_bc (abfd, note); |
10717 | 0 | else |
10718 | 0 | return true; |
10719 | | |
10720 | 0 | case NT_ARC_V2: |
10721 | 0 | if (note->namesz == 6 |
10722 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10723 | 0 | return elfcore_grok_arc_v2 (abfd, note); |
10724 | 0 | else |
10725 | 0 | return true; |
10726 | | |
10727 | 0 | case NT_ARM_VFP: |
10728 | 0 | if (note->namesz == 6 |
10729 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10730 | 0 | return elfcore_grok_arm_vfp (abfd, note); |
10731 | 0 | else |
10732 | 0 | return true; |
10733 | | |
10734 | 0 | case NT_ARM_TLS: |
10735 | 0 | if (note->namesz == 6 |
10736 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10737 | 0 | return elfcore_grok_aarch_tls (abfd, note); |
10738 | 0 | else |
10739 | 0 | return true; |
10740 | | |
10741 | 0 | case NT_ARM_HW_BREAK: |
10742 | 0 | if (note->namesz == 6 |
10743 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10744 | 0 | return elfcore_grok_aarch_hw_break (abfd, note); |
10745 | 0 | else |
10746 | 0 | return true; |
10747 | | |
10748 | 0 | case NT_ARM_HW_WATCH: |
10749 | 0 | if (note->namesz == 6 |
10750 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10751 | 0 | return elfcore_grok_aarch_hw_watch (abfd, note); |
10752 | 0 | else |
10753 | 0 | return true; |
10754 | | |
10755 | 0 | case NT_ARM_SVE: |
10756 | 0 | if (note->namesz == 6 |
10757 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10758 | 0 | return elfcore_grok_aarch_sve (abfd, note); |
10759 | 0 | else |
10760 | 0 | return true; |
10761 | | |
10762 | 0 | case NT_ARM_PAC_MASK: |
10763 | 0 | if (note->namesz == 6 |
10764 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10765 | 0 | return elfcore_grok_aarch_pauth (abfd, note); |
10766 | 0 | else |
10767 | 0 | return true; |
10768 | | |
10769 | 0 | case NT_ARM_TAGGED_ADDR_CTRL: |
10770 | 0 | if (note->namesz == 6 |
10771 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10772 | 0 | return elfcore_grok_aarch_mte (abfd, note); |
10773 | 0 | else |
10774 | 0 | return true; |
10775 | | |
10776 | 0 | case NT_GDB_TDESC: |
10777 | 0 | if (note->namesz == 4 |
10778 | 0 | && strcmp (note->namedata, "GDB") == 0) |
10779 | 0 | return elfcore_grok_gdb_tdesc (abfd, note); |
10780 | 0 | else |
10781 | 0 | return true; |
10782 | | |
10783 | 0 | case NT_RISCV_CSR: |
10784 | 0 | if (note->namesz == 4 |
10785 | 0 | && strcmp (note->namedata, "GDB") == 0) |
10786 | 0 | return elfcore_grok_riscv_csr (abfd, note); |
10787 | 0 | else |
10788 | 0 | return true; |
10789 | | |
10790 | 0 | case NT_LARCH_CPUCFG: |
10791 | 0 | if (note->namesz == 6 |
10792 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10793 | 0 | return elfcore_grok_loongarch_cpucfg (abfd, note); |
10794 | 0 | else |
10795 | 0 | return true; |
10796 | | |
10797 | 0 | case NT_LARCH_LBT: |
10798 | 0 | if (note->namesz == 6 |
10799 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10800 | 0 | return elfcore_grok_loongarch_lbt (abfd, note); |
10801 | 0 | else |
10802 | 0 | return true; |
10803 | | |
10804 | 0 | case NT_LARCH_LSX: |
10805 | 0 | if (note->namesz == 6 |
10806 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10807 | 0 | return elfcore_grok_loongarch_lsx (abfd, note); |
10808 | 0 | else |
10809 | 0 | return true; |
10810 | | |
10811 | 0 | case NT_LARCH_LASX: |
10812 | 0 | if (note->namesz == 6 |
10813 | 0 | && strcmp (note->namedata, "LINUX") == 0) |
10814 | 0 | return elfcore_grok_loongarch_lasx (abfd, note); |
10815 | 0 | else |
10816 | 0 | return true; |
10817 | | |
10818 | 0 | case NT_PRPSINFO: |
10819 | 0 | case NT_PSINFO: |
10820 | 0 | if (bed->elf_backend_grok_psinfo) |
10821 | 0 | if ((*bed->elf_backend_grok_psinfo) (abfd, note)) |
10822 | 0 | return true; |
10823 | 0 | #if defined (HAVE_PRPSINFO_T) || defined (HAVE_PSINFO_T) |
10824 | 0 | return elfcore_grok_psinfo (abfd, note); |
10825 | | #else |
10826 | | return true; |
10827 | | #endif |
10828 | | |
10829 | 0 | case NT_AUXV: |
10830 | 0 | return elfcore_make_auxv_note_section (abfd, note, 0); |
10831 | | |
10832 | 0 | case NT_FILE: |
10833 | 0 | return elfcore_make_note_pseudosection (abfd, ".note.linuxcore.file", |
10834 | 0 | note); |
10835 | | |
10836 | 0 | case NT_SIGINFO: |
10837 | 0 | return elfcore_make_note_pseudosection (abfd, ".note.linuxcore.siginfo", |
10838 | 0 | note); |
10839 | |
|
10840 | 0 | } |
10841 | 0 | } |
10842 | | |
10843 | | static bool |
10844 | | elfobj_grok_gnu_build_id (bfd *abfd, Elf_Internal_Note *note) |
10845 | 0 | { |
10846 | 0 | struct bfd_build_id* build_id; |
10847 | |
|
10848 | 0 | if (note->descsz == 0) |
10849 | 0 | return false; |
10850 | | |
10851 | 0 | build_id = bfd_alloc (abfd, sizeof (struct bfd_build_id) - 1 + note->descsz); |
10852 | 0 | if (build_id == NULL) |
10853 | 0 | return false; |
10854 | | |
10855 | 0 | build_id->size = note->descsz; |
10856 | 0 | memcpy (build_id->data, note->descdata, note->descsz); |
10857 | 0 | abfd->build_id = build_id; |
10858 | |
|
10859 | 0 | return true; |
10860 | 0 | } |
10861 | | |
10862 | | static bool |
10863 | | elfobj_grok_gnu_note (bfd *abfd, Elf_Internal_Note *note) |
10864 | 0 | { |
10865 | 0 | switch (note->type) |
10866 | 0 | { |
10867 | 0 | default: |
10868 | 0 | return true; |
10869 | | |
10870 | 0 | case NT_GNU_PROPERTY_TYPE_0: |
10871 | 0 | return _bfd_elf_parse_gnu_properties (abfd, note); |
10872 | | |
10873 | 0 | case NT_GNU_BUILD_ID: |
10874 | 0 | return elfobj_grok_gnu_build_id (abfd, note); |
10875 | 0 | } |
10876 | 0 | } |
10877 | | |
10878 | | static bool |
10879 | | elfobj_grok_stapsdt_note_1 (bfd *abfd, Elf_Internal_Note *note) |
10880 | 0 | { |
10881 | 0 | struct sdt_note *cur = |
10882 | 0 | (struct sdt_note *) bfd_alloc (abfd, |
10883 | 0 | sizeof (struct sdt_note) + note->descsz); |
10884 | |
|
10885 | 0 | cur->next = (struct sdt_note *) (elf_tdata (abfd))->sdt_note_head; |
10886 | 0 | cur->size = (bfd_size_type) note->descsz; |
10887 | 0 | memcpy (cur->data, note->descdata, note->descsz); |
10888 | |
|
10889 | 0 | elf_tdata (abfd)->sdt_note_head = cur; |
10890 | |
|
10891 | 0 | return true; |
10892 | 0 | } |
10893 | | |
10894 | | static bool |
10895 | | elfobj_grok_stapsdt_note (bfd *abfd, Elf_Internal_Note *note) |
10896 | 0 | { |
10897 | 0 | switch (note->type) |
10898 | 0 | { |
10899 | 0 | case NT_STAPSDT: |
10900 | 0 | return elfobj_grok_stapsdt_note_1 (abfd, note); |
10901 | | |
10902 | 0 | default: |
10903 | 0 | return true; |
10904 | 0 | } |
10905 | 0 | } |
10906 | | |
10907 | | static bool |
10908 | | elfcore_grok_freebsd_psinfo (bfd *abfd, Elf_Internal_Note *note) |
10909 | 0 | { |
10910 | 0 | size_t offset; |
10911 | |
|
10912 | 0 | switch (elf_elfheader (abfd)->e_ident[EI_CLASS]) |
10913 | 0 | { |
10914 | 0 | case ELFCLASS32: |
10915 | 0 | if (note->descsz < 108) |
10916 | 0 | return false; |
10917 | 0 | break; |
10918 | | |
10919 | 0 | case ELFCLASS64: |
10920 | 0 | if (note->descsz < 120) |
10921 | 0 | return false; |
10922 | 0 | break; |
10923 | | |
10924 | 0 | default: |
10925 | 0 | return false; |
10926 | 0 | } |
10927 | | |
10928 | | /* Check for version 1 in pr_version. */ |
10929 | 0 | if (bfd_h_get_32 (abfd, (bfd_byte *) note->descdata) != 1) |
10930 | 0 | return false; |
10931 | | |
10932 | 0 | offset = 4; |
10933 | | |
10934 | | /* Skip over pr_psinfosz. */ |
10935 | 0 | if (elf_elfheader (abfd)->e_ident[EI_CLASS] == ELFCLASS32) |
10936 | 0 | offset += 4; |
10937 | 0 | else |
10938 | 0 | { |
10939 | 0 | offset += 4; /* Padding before pr_psinfosz. */ |
10940 | 0 | offset += 8; |
10941 | 0 | } |
10942 | | |
10943 | | /* pr_fname is PRFNAMESZ (16) + 1 bytes in size. */ |
10944 | 0 | elf_tdata (abfd)->core->program |
10945 | 0 | = _bfd_elfcore_strndup (abfd, note->descdata + offset, 17); |
10946 | 0 | offset += 17; |
10947 | | |
10948 | | /* pr_psargs is PRARGSZ (80) + 1 bytes in size. */ |
10949 | 0 | elf_tdata (abfd)->core->command |
10950 | 0 | = _bfd_elfcore_strndup (abfd, note->descdata + offset, 81); |
10951 | 0 | offset += 81; |
10952 | | |
10953 | | /* Padding before pr_pid. */ |
10954 | 0 | offset += 2; |
10955 | | |
10956 | | /* The pr_pid field was added in version "1a". */ |
10957 | 0 | if (note->descsz < offset + 4) |
10958 | 0 | return true; |
10959 | | |
10960 | 0 | elf_tdata (abfd)->core->pid |
10961 | 0 | = bfd_h_get_32 (abfd, (bfd_byte *) note->descdata + offset); |
10962 | |
|
10963 | 0 | return true; |
10964 | 0 | } |
10965 | | |
10966 | | static bool |
10967 | | elfcore_grok_freebsd_prstatus (bfd *abfd, Elf_Internal_Note *note) |
10968 | 0 | { |
10969 | 0 | size_t offset; |
10970 | 0 | size_t size; |
10971 | 0 | size_t min_size; |
10972 | | |
10973 | | /* Compute offset of pr_getregsz, skipping over pr_statussz. |
10974 | | Also compute minimum size of this note. */ |
10975 | 0 | switch (elf_elfheader (abfd)->e_ident[EI_CLASS]) |
10976 | 0 | { |
10977 | 0 | case ELFCLASS32: |
10978 | 0 | offset = 4 + 4; |
10979 | 0 | min_size = offset + (4 * 2) + 4 + 4 + 4; |
10980 | 0 | break; |
10981 | | |
10982 | 0 | case ELFCLASS64: |
10983 | 0 | offset = 4 + 4 + 8; /* Includes padding before pr_statussz. */ |
10984 | 0 | min_size = offset + (8 * 2) + 4 + 4 + 4 + 4; |
10985 | 0 | break; |
10986 | | |
10987 | 0 | default: |
10988 | 0 | return false; |
10989 | 0 | } |
10990 | | |
10991 | 0 | if (note->descsz < min_size) |
10992 | 0 | return false; |
10993 | | |
10994 | | /* Check for version 1 in pr_version. */ |
10995 | 0 | if (bfd_h_get_32 (abfd, (bfd_byte *) note->descdata) != 1) |
10996 | 0 | return false; |
10997 | | |
10998 | | /* Extract size of pr_reg from pr_gregsetsz. */ |
10999 | | /* Skip over pr_gregsetsz and pr_fpregsetsz. */ |
11000 | 0 | if (elf_elfheader (abfd)->e_ident[EI_CLASS] == ELFCLASS32) |
11001 | 0 | { |
11002 | 0 | size = bfd_h_get_32 (abfd, (bfd_byte *) note->descdata + offset); |
11003 | 0 | offset += 4 * 2; |
11004 | 0 | } |
11005 | 0 | else |
11006 | 0 | { |
11007 | 0 | size = bfd_h_get_64 (abfd, (bfd_byte *) note->descdata + offset); |
11008 | 0 | offset += 8 * 2; |
11009 | 0 | } |
11010 | | |
11011 | | /* Skip over pr_osreldate. */ |
11012 | 0 | offset += 4; |
11013 | | |
11014 | | /* Read signal from pr_cursig. */ |
11015 | 0 | if (elf_tdata (abfd)->core->signal == 0) |
11016 | 0 | elf_tdata (abfd)->core->signal |
11017 | 0 | = bfd_h_get_32 (abfd, (bfd_byte *) note->descdata + offset); |
11018 | 0 | offset += 4; |
11019 | | |
11020 | | /* Read TID from pr_pid. */ |
11021 | 0 | elf_tdata (abfd)->core->lwpid |
11022 | 0 | = bfd_h_get_32 (abfd, (bfd_byte *) note->descdata + offset); |
11023 | 0 | offset += 4; |
11024 | | |
11025 | | /* Padding before pr_reg. */ |
11026 | 0 | if (elf_elfheader (abfd)->e_ident[EI_CLASS] == ELFCLASS64) |
11027 | 0 | offset += 4; |
11028 | | |
11029 | | /* Make sure that there is enough data remaining in the note. */ |
11030 | 0 | if ((note->descsz - offset) < size) |
11031 | 0 | return false; |
11032 | | |
11033 | | /* Make a ".reg/999" section and a ".reg" section. */ |
11034 | 0 | return _bfd_elfcore_make_pseudosection (abfd, ".reg", |
11035 | 0 | size, note->descpos + offset); |
11036 | 0 | } |
11037 | | |
11038 | | static bool |
11039 | | elfcore_grok_freebsd_note (bfd *abfd, Elf_Internal_Note *note) |
11040 | 0 | { |
11041 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
11042 | |
|
11043 | 0 | switch (note->type) |
11044 | 0 | { |
11045 | 0 | case NT_PRSTATUS: |
11046 | 0 | if (bed->elf_backend_grok_freebsd_prstatus) |
11047 | 0 | if ((*bed->elf_backend_grok_freebsd_prstatus) (abfd, note)) |
11048 | 0 | return true; |
11049 | 0 | return elfcore_grok_freebsd_prstatus (abfd, note); |
11050 | | |
11051 | 0 | case NT_FPREGSET: |
11052 | 0 | return elfcore_grok_prfpreg (abfd, note); |
11053 | | |
11054 | 0 | case NT_PRPSINFO: |
11055 | 0 | return elfcore_grok_freebsd_psinfo (abfd, note); |
11056 | | |
11057 | 0 | case NT_FREEBSD_THRMISC: |
11058 | 0 | return elfcore_make_note_pseudosection (abfd, ".thrmisc", note); |
11059 | | |
11060 | 0 | case NT_FREEBSD_PROCSTAT_PROC: |
11061 | 0 | return elfcore_make_note_pseudosection (abfd, ".note.freebsdcore.proc", |
11062 | 0 | note); |
11063 | | |
11064 | 0 | case NT_FREEBSD_PROCSTAT_FILES: |
11065 | 0 | return elfcore_make_note_pseudosection (abfd, ".note.freebsdcore.files", |
11066 | 0 | note); |
11067 | | |
11068 | 0 | case NT_FREEBSD_PROCSTAT_VMMAP: |
11069 | 0 | return elfcore_make_note_pseudosection (abfd, ".note.freebsdcore.vmmap", |
11070 | 0 | note); |
11071 | | |
11072 | 0 | case NT_FREEBSD_PROCSTAT_AUXV: |
11073 | 0 | return elfcore_make_auxv_note_section (abfd, note, 4); |
11074 | | |
11075 | 0 | case NT_FREEBSD_X86_SEGBASES: |
11076 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-x86-segbases", note); |
11077 | | |
11078 | 0 | case NT_X86_XSTATE: |
11079 | 0 | return elfcore_grok_xstatereg (abfd, note); |
11080 | | |
11081 | 0 | case NT_FREEBSD_PTLWPINFO: |
11082 | 0 | return elfcore_make_note_pseudosection (abfd, ".note.freebsdcore.lwpinfo", |
11083 | 0 | note); |
11084 | | |
11085 | 0 | case NT_ARM_TLS: |
11086 | 0 | return elfcore_grok_aarch_tls (abfd, note); |
11087 | | |
11088 | 0 | case NT_ARM_VFP: |
11089 | 0 | return elfcore_grok_arm_vfp (abfd, note); |
11090 | | |
11091 | 0 | default: |
11092 | 0 | return true; |
11093 | 0 | } |
11094 | 0 | } |
11095 | | |
11096 | | static bool |
11097 | | elfcore_netbsd_get_lwpid (Elf_Internal_Note *note, int *lwpidp) |
11098 | 0 | { |
11099 | 0 | char *cp; |
11100 | |
|
11101 | 0 | cp = strchr (note->namedata, '@'); |
11102 | 0 | if (cp != NULL) |
11103 | 0 | { |
11104 | 0 | *lwpidp = atoi(cp + 1); |
11105 | 0 | return true; |
11106 | 0 | } |
11107 | 0 | return false; |
11108 | 0 | } |
11109 | | |
11110 | | static bool |
11111 | | elfcore_grok_netbsd_procinfo (bfd *abfd, Elf_Internal_Note *note) |
11112 | 0 | { |
11113 | 0 | if (note->descsz <= 0x7c + 31) |
11114 | 0 | return false; |
11115 | | |
11116 | | /* Signal number at offset 0x08. */ |
11117 | 0 | elf_tdata (abfd)->core->signal |
11118 | 0 | = bfd_h_get_32 (abfd, (bfd_byte *) note->descdata + 0x08); |
11119 | | |
11120 | | /* Process ID at offset 0x50. */ |
11121 | 0 | elf_tdata (abfd)->core->pid |
11122 | 0 | = bfd_h_get_32 (abfd, (bfd_byte *) note->descdata + 0x50); |
11123 | | |
11124 | | /* Command name at 0x7c (max 32 bytes, including nul). */ |
11125 | 0 | elf_tdata (abfd)->core->command |
11126 | 0 | = _bfd_elfcore_strndup (abfd, note->descdata + 0x7c, 31); |
11127 | |
|
11128 | 0 | return elfcore_make_note_pseudosection (abfd, ".note.netbsdcore.procinfo", |
11129 | 0 | note); |
11130 | 0 | } |
11131 | | |
11132 | | static bool |
11133 | | elfcore_grok_netbsd_note (bfd *abfd, Elf_Internal_Note *note) |
11134 | 0 | { |
11135 | 0 | int lwp; |
11136 | |
|
11137 | 0 | if (elfcore_netbsd_get_lwpid (note, &lwp)) |
11138 | 0 | elf_tdata (abfd)->core->lwpid = lwp; |
11139 | |
|
11140 | 0 | switch (note->type) |
11141 | 0 | { |
11142 | 0 | case NT_NETBSDCORE_PROCINFO: |
11143 | | /* NetBSD-specific core "procinfo". Note that we expect to |
11144 | | find this note before any of the others, which is fine, |
11145 | | since the kernel writes this note out first when it |
11146 | | creates a core file. */ |
11147 | 0 | return elfcore_grok_netbsd_procinfo (abfd, note); |
11148 | 0 | case NT_NETBSDCORE_AUXV: |
11149 | | /* NetBSD-specific Elf Auxiliary Vector data. */ |
11150 | 0 | return elfcore_make_auxv_note_section (abfd, note, 4); |
11151 | 0 | case NT_NETBSDCORE_LWPSTATUS: |
11152 | 0 | return elfcore_make_note_pseudosection (abfd, |
11153 | 0 | ".note.netbsdcore.lwpstatus", |
11154 | 0 | note); |
11155 | 0 | default: |
11156 | 0 | break; |
11157 | 0 | } |
11158 | | |
11159 | | /* As of March 2020 there are no other machine-independent notes |
11160 | | defined for NetBSD core files. If the note type is less |
11161 | | than the start of the machine-dependent note types, we don't |
11162 | | understand it. */ |
11163 | | |
11164 | 0 | if (note->type < NT_NETBSDCORE_FIRSTMACH) |
11165 | 0 | return true; |
11166 | | |
11167 | | |
11168 | 0 | switch (bfd_get_arch (abfd)) |
11169 | 0 | { |
11170 | | /* On the Alpha, SPARC (32-bit and 64-bit), PT_GETREGS == mach+0 and |
11171 | | PT_GETFPREGS == mach+2. */ |
11172 | | |
11173 | 0 | case bfd_arch_aarch64: |
11174 | 0 | case bfd_arch_alpha: |
11175 | 0 | case bfd_arch_sparc: |
11176 | 0 | switch (note->type) |
11177 | 0 | { |
11178 | 0 | case NT_NETBSDCORE_FIRSTMACH+0: |
11179 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg", note); |
11180 | | |
11181 | 0 | case NT_NETBSDCORE_FIRSTMACH+2: |
11182 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg2", note); |
11183 | | |
11184 | 0 | default: |
11185 | 0 | return true; |
11186 | 0 | } |
11187 | | |
11188 | | /* On SuperH, PT_GETREGS == mach+3 and PT_GETFPREGS == mach+5. |
11189 | | There's also old PT___GETREGS40 == mach + 1 for old reg |
11190 | | structure which lacks GBR. */ |
11191 | | |
11192 | 0 | case bfd_arch_sh: |
11193 | 0 | switch (note->type) |
11194 | 0 | { |
11195 | 0 | case NT_NETBSDCORE_FIRSTMACH+3: |
11196 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg", note); |
11197 | | |
11198 | 0 | case NT_NETBSDCORE_FIRSTMACH+5: |
11199 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg2", note); |
11200 | | |
11201 | 0 | default: |
11202 | 0 | return true; |
11203 | 0 | } |
11204 | | |
11205 | | /* On all other arch's, PT_GETREGS == mach+1 and |
11206 | | PT_GETFPREGS == mach+3. */ |
11207 | | |
11208 | 0 | default: |
11209 | 0 | switch (note->type) |
11210 | 0 | { |
11211 | 0 | case NT_NETBSDCORE_FIRSTMACH+1: |
11212 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg", note); |
11213 | | |
11214 | 0 | case NT_NETBSDCORE_FIRSTMACH+3: |
11215 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg2", note); |
11216 | | |
11217 | 0 | default: |
11218 | 0 | return true; |
11219 | 0 | } |
11220 | 0 | } |
11221 | | /* NOTREACHED */ |
11222 | 0 | } |
11223 | | |
11224 | | static bool |
11225 | | elfcore_grok_openbsd_procinfo (bfd *abfd, Elf_Internal_Note *note) |
11226 | 0 | { |
11227 | 0 | if (note->descsz <= 0x48 + 31) |
11228 | 0 | return false; |
11229 | | |
11230 | | /* Signal number at offset 0x08. */ |
11231 | 0 | elf_tdata (abfd)->core->signal |
11232 | 0 | = bfd_h_get_32 (abfd, (bfd_byte *) note->descdata + 0x08); |
11233 | | |
11234 | | /* Process ID at offset 0x20. */ |
11235 | 0 | elf_tdata (abfd)->core->pid |
11236 | 0 | = bfd_h_get_32 (abfd, (bfd_byte *) note->descdata + 0x20); |
11237 | | |
11238 | | /* Command name at 0x48 (max 32 bytes, including nul). */ |
11239 | 0 | elf_tdata (abfd)->core->command |
11240 | 0 | = _bfd_elfcore_strndup (abfd, note->descdata + 0x48, 31); |
11241 | |
|
11242 | 0 | return true; |
11243 | 0 | } |
11244 | | |
11245 | | /* Processes Solaris's process status note. |
11246 | | sig_off ~ offsetof(prstatus_t, pr_cursig) |
11247 | | pid_off ~ offsetof(prstatus_t, pr_pid) |
11248 | | lwpid_off ~ offsetof(prstatus_t, pr_who) |
11249 | | gregset_size ~ sizeof(gregset_t) |
11250 | | gregset_offset ~ offsetof(prstatus_t, pr_reg) */ |
11251 | | |
11252 | | static bool |
11253 | | elfcore_grok_solaris_prstatus (bfd *abfd, Elf_Internal_Note* note, int sig_off, |
11254 | | int pid_off, int lwpid_off, size_t gregset_size, |
11255 | | size_t gregset_offset) |
11256 | 0 | { |
11257 | 0 | asection *sect = NULL; |
11258 | 0 | elf_tdata (abfd)->core->signal |
11259 | 0 | = bfd_get_16 (abfd, note->descdata + sig_off); |
11260 | 0 | elf_tdata (abfd)->core->pid |
11261 | 0 | = bfd_get_32 (abfd, note->descdata + pid_off); |
11262 | 0 | elf_tdata (abfd)->core->lwpid |
11263 | 0 | = bfd_get_32 (abfd, note->descdata + lwpid_off); |
11264 | |
|
11265 | 0 | sect = bfd_get_section_by_name (abfd, ".reg"); |
11266 | 0 | if (sect != NULL) |
11267 | 0 | sect->size = gregset_size; |
11268 | |
|
11269 | 0 | return _bfd_elfcore_make_pseudosection (abfd, ".reg", gregset_size, |
11270 | 0 | note->descpos + gregset_offset); |
11271 | 0 | } |
11272 | | |
11273 | | /* Gets program and arguments from a core. |
11274 | | prog_off ~ offsetof(prpsinfo | psinfo_t, pr_fname) |
11275 | | comm_off ~ offsetof(prpsinfo | psinfo_t, pr_psargs) */ |
11276 | | |
11277 | | static bool |
11278 | | elfcore_grok_solaris_info(bfd *abfd, Elf_Internal_Note* note, |
11279 | | int prog_off, int comm_off) |
11280 | 0 | { |
11281 | 0 | elf_tdata (abfd)->core->program |
11282 | 0 | = _bfd_elfcore_strndup (abfd, note->descdata + prog_off, 16); |
11283 | 0 | elf_tdata (abfd)->core->command |
11284 | 0 | = _bfd_elfcore_strndup (abfd, note->descdata + comm_off, 80); |
11285 | |
|
11286 | 0 | return true; |
11287 | 0 | } |
11288 | | |
11289 | | /* Processes Solaris's LWP status note. |
11290 | | gregset_size ~ sizeof(gregset_t) |
11291 | | gregset_off ~ offsetof(lwpstatus_t, pr_reg) |
11292 | | fpregset_size ~ sizeof(fpregset_t) |
11293 | | fpregset_off ~ offsetof(lwpstatus_t, pr_fpreg) */ |
11294 | | |
11295 | | static bool |
11296 | | elfcore_grok_solaris_lwpstatus (bfd *abfd, Elf_Internal_Note* note, |
11297 | | size_t gregset_size, int gregset_off, |
11298 | | size_t fpregset_size, int fpregset_off) |
11299 | 0 | { |
11300 | 0 | asection *sect = NULL; |
11301 | 0 | char reg2_section_name[16] = { 0 }; |
11302 | |
|
11303 | 0 | (void) snprintf (reg2_section_name, 16, "%s/%i", ".reg2", |
11304 | 0 | elf_tdata (abfd)->core->lwpid); |
11305 | | |
11306 | | /* offsetof(lwpstatus_t, pr_lwpid) */ |
11307 | 0 | elf_tdata (abfd)->core->lwpid |
11308 | 0 | = bfd_get_32 (abfd, note->descdata + 4); |
11309 | | /* offsetof(lwpstatus_t, pr_cursig) */ |
11310 | 0 | elf_tdata (abfd)->core->signal |
11311 | 0 | = bfd_get_16 (abfd, note->descdata + 12); |
11312 | |
|
11313 | 0 | sect = bfd_get_section_by_name (abfd, ".reg"); |
11314 | 0 | if (sect != NULL) |
11315 | 0 | sect->size = gregset_size; |
11316 | 0 | else if (!_bfd_elfcore_make_pseudosection (abfd, ".reg", gregset_size, |
11317 | 0 | note->descpos + gregset_off)) |
11318 | 0 | return false; |
11319 | | |
11320 | 0 | sect = bfd_get_section_by_name (abfd, reg2_section_name); |
11321 | 0 | if (sect != NULL) |
11322 | 0 | { |
11323 | 0 | sect->size = fpregset_size; |
11324 | 0 | sect->filepos = note->descpos + fpregset_off; |
11325 | 0 | sect->alignment_power = 2; |
11326 | 0 | } |
11327 | 0 | else if (!_bfd_elfcore_make_pseudosection (abfd, ".reg2", fpregset_size, |
11328 | 0 | note->descpos + fpregset_off)) |
11329 | 0 | return false; |
11330 | | |
11331 | 0 | return true; |
11332 | 0 | } |
11333 | | |
11334 | | static bool |
11335 | | elfcore_grok_solaris_note_impl (bfd *abfd, Elf_Internal_Note *note) |
11336 | 0 | { |
11337 | 0 | if (note == NULL) |
11338 | 0 | return false; |
11339 | | |
11340 | | /* core files are identified as 32- or 64-bit, SPARC or x86, |
11341 | | by the size of the descsz which matches the sizeof() |
11342 | | the type appropriate for that note type (e.g., prstatus_t for |
11343 | | SOLARIS_NT_PRSTATUS) for the corresponding architecture |
11344 | | on Solaris. The core file bitness may differ from the bitness of |
11345 | | gdb itself, so fixed values are used instead of sizeof(). |
11346 | | Appropriate fixed offsets are also used to obtain data from |
11347 | | the note. */ |
11348 | | |
11349 | 0 | switch ((int) note->type) |
11350 | 0 | { |
11351 | 0 | case SOLARIS_NT_PRSTATUS: |
11352 | 0 | switch (note->descsz) |
11353 | 0 | { |
11354 | 0 | case 508: /* sizeof(prstatus_t) SPARC 32-bit */ |
11355 | 0 | return elfcore_grok_solaris_prstatus(abfd, note, |
11356 | 0 | 136, 216, 308, 152, 356); |
11357 | 0 | case 904: /* sizeof(prstatus_t) SPARC 64-bit */ |
11358 | 0 | return elfcore_grok_solaris_prstatus(abfd, note, |
11359 | 0 | 264, 360, 520, 304, 600); |
11360 | 0 | case 432: /* sizeof(prstatus_t) Intel 32-bit */ |
11361 | 0 | return elfcore_grok_solaris_prstatus(abfd, note, |
11362 | 0 | 136, 216, 308, 76, 356); |
11363 | 0 | case 824: /* sizeof(prstatus_t) Intel 64-bit */ |
11364 | 0 | return elfcore_grok_solaris_prstatus(abfd, note, |
11365 | 0 | 264, 360, 520, 224, 600); |
11366 | 0 | default: |
11367 | 0 | return true; |
11368 | 0 | } |
11369 | | |
11370 | 0 | case SOLARIS_NT_PSINFO: |
11371 | 0 | case SOLARIS_NT_PRPSINFO: |
11372 | 0 | switch (note->descsz) |
11373 | 0 | { |
11374 | 0 | case 260: /* sizeof(prpsinfo_t) SPARC and Intel 32-bit */ |
11375 | 0 | return elfcore_grok_solaris_info(abfd, note, 84, 100); |
11376 | 0 | case 328: /* sizeof(prpsinfo_t) SPARC and Intel 64-bit */ |
11377 | 0 | return elfcore_grok_solaris_info(abfd, note, 120, 136); |
11378 | 0 | case 360: /* sizeof(psinfo_t) SPARC and Intel 32-bit */ |
11379 | 0 | return elfcore_grok_solaris_info(abfd, note, 88, 104); |
11380 | 0 | case 440: /* sizeof(psinfo_t) SPARC and Intel 64-bit */ |
11381 | 0 | return elfcore_grok_solaris_info(abfd, note, 136, 152); |
11382 | 0 | default: |
11383 | 0 | return true; |
11384 | 0 | } |
11385 | | |
11386 | 0 | case SOLARIS_NT_LWPSTATUS: |
11387 | 0 | switch (note->descsz) |
11388 | 0 | { |
11389 | 0 | case 896: /* sizeof(lwpstatus_t) SPARC 32-bit */ |
11390 | 0 | return elfcore_grok_solaris_lwpstatus(abfd, note, |
11391 | 0 | 152, 344, 400, 496); |
11392 | 0 | case 1392: /* sizeof(lwpstatus_t) SPARC 64-bit */ |
11393 | 0 | return elfcore_grok_solaris_lwpstatus(abfd, note, |
11394 | 0 | 304, 544, 544, 848); |
11395 | 0 | case 800: /* sizeof(lwpstatus_t) Intel 32-bit */ |
11396 | 0 | return elfcore_grok_solaris_lwpstatus(abfd, note, |
11397 | 0 | 76, 344, 380, 420); |
11398 | 0 | case 1296: /* sizeof(lwpstatus_t) Intel 64-bit */ |
11399 | 0 | return elfcore_grok_solaris_lwpstatus(abfd, note, |
11400 | 0 | 224, 544, 528, 768); |
11401 | 0 | default: |
11402 | 0 | return true; |
11403 | 0 | } |
11404 | | |
11405 | 0 | case SOLARIS_NT_LWPSINFO: |
11406 | | /* sizeof(lwpsinfo_t) on 32- and 64-bit, respectively */ |
11407 | 0 | if (note->descsz == 128 || note->descsz == 152) |
11408 | 0 | elf_tdata (abfd)->core->lwpid = |
11409 | 0 | bfd_get_32 (abfd, note->descdata + 4); |
11410 | 0 | break; |
11411 | | |
11412 | 0 | default: |
11413 | 0 | break; |
11414 | 0 | } |
11415 | | |
11416 | 0 | return true; |
11417 | 0 | } |
11418 | | |
11419 | | /* For name starting with "CORE" this may be either a Solaris |
11420 | | core file or a gdb-generated core file. Do Solaris-specific |
11421 | | processing on selected note types first with |
11422 | | elfcore_grok_solaris_note(), then process the note |
11423 | | in elfcore_grok_note(). */ |
11424 | | |
11425 | | static bool |
11426 | | elfcore_grok_solaris_note (bfd *abfd, Elf_Internal_Note *note) |
11427 | 0 | { |
11428 | 0 | if (!elfcore_grok_solaris_note_impl (abfd, note)) |
11429 | 0 | return false; |
11430 | | |
11431 | 0 | return elfcore_grok_note (abfd, note); |
11432 | 0 | } |
11433 | | |
11434 | | static bool |
11435 | | elfcore_grok_openbsd_note (bfd *abfd, Elf_Internal_Note *note) |
11436 | 0 | { |
11437 | 0 | if (note->type == NT_OPENBSD_PROCINFO) |
11438 | 0 | return elfcore_grok_openbsd_procinfo (abfd, note); |
11439 | | |
11440 | 0 | if (note->type == NT_OPENBSD_REGS) |
11441 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg", note); |
11442 | | |
11443 | 0 | if (note->type == NT_OPENBSD_FPREGS) |
11444 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg2", note); |
11445 | | |
11446 | 0 | if (note->type == NT_OPENBSD_XFPREGS) |
11447 | 0 | return elfcore_make_note_pseudosection (abfd, ".reg-xfp", note); |
11448 | | |
11449 | 0 | if (note->type == NT_OPENBSD_AUXV) |
11450 | 0 | return elfcore_make_auxv_note_section (abfd, note, 0); |
11451 | | |
11452 | 0 | if (note->type == NT_OPENBSD_WCOOKIE) |
11453 | 0 | { |
11454 | 0 | asection *sect = bfd_make_section_anyway_with_flags (abfd, ".wcookie", |
11455 | 0 | SEC_HAS_CONTENTS); |
11456 | |
|
11457 | 0 | if (sect == NULL) |
11458 | 0 | return false; |
11459 | 0 | sect->size = note->descsz; |
11460 | 0 | sect->filepos = note->descpos; |
11461 | 0 | sect->alignment_power = 1 + bfd_get_arch_size (abfd) / 32; |
11462 | |
|
11463 | 0 | return true; |
11464 | 0 | } |
11465 | | |
11466 | 0 | return true; |
11467 | 0 | } |
11468 | | |
11469 | | static bool |
11470 | | elfcore_grok_nto_status (bfd *abfd, Elf_Internal_Note *note, long *tid) |
11471 | 0 | { |
11472 | 0 | void *ddata = note->descdata; |
11473 | 0 | char buf[100]; |
11474 | 0 | char *name; |
11475 | 0 | asection *sect; |
11476 | 0 | short sig; |
11477 | 0 | unsigned flags; |
11478 | |
|
11479 | 0 | if (note->descsz < 16) |
11480 | 0 | return false; |
11481 | | |
11482 | | /* nto_procfs_status 'pid' field is at offset 0. */ |
11483 | 0 | elf_tdata (abfd)->core->pid = bfd_get_32 (abfd, (bfd_byte *) ddata); |
11484 | | |
11485 | | /* nto_procfs_status 'tid' field is at offset 4. Pass it back. */ |
11486 | 0 | *tid = bfd_get_32 (abfd, (bfd_byte *) ddata + 4); |
11487 | | |
11488 | | /* nto_procfs_status 'flags' field is at offset 8. */ |
11489 | 0 | flags = bfd_get_32 (abfd, (bfd_byte *) ddata + 8); |
11490 | | |
11491 | | /* nto_procfs_status 'what' field is at offset 14. */ |
11492 | 0 | if ((sig = bfd_get_16 (abfd, (bfd_byte *) ddata + 14)) > 0) |
11493 | 0 | { |
11494 | 0 | elf_tdata (abfd)->core->signal = sig; |
11495 | 0 | elf_tdata (abfd)->core->lwpid = *tid; |
11496 | 0 | } |
11497 | | |
11498 | | /* _DEBUG_FLAG_CURTID (current thread) is 0x80. Some cores |
11499 | | do not come from signals so we make sure we set the current |
11500 | | thread just in case. */ |
11501 | 0 | if (flags & 0x00000080) |
11502 | 0 | elf_tdata (abfd)->core->lwpid = *tid; |
11503 | | |
11504 | | /* Make a ".qnx_core_status/%d" section. */ |
11505 | 0 | sprintf (buf, ".qnx_core_status/%ld", *tid); |
11506 | |
|
11507 | 0 | name = (char *) bfd_alloc (abfd, strlen (buf) + 1); |
11508 | 0 | if (name == NULL) |
11509 | 0 | return false; |
11510 | 0 | strcpy (name, buf); |
11511 | |
|
11512 | 0 | sect = bfd_make_section_anyway_with_flags (abfd, name, SEC_HAS_CONTENTS); |
11513 | 0 | if (sect == NULL) |
11514 | 0 | return false; |
11515 | | |
11516 | 0 | sect->size = note->descsz; |
11517 | 0 | sect->filepos = note->descpos; |
11518 | 0 | sect->alignment_power = 2; |
11519 | |
|
11520 | 0 | return (elfcore_maybe_make_sect (abfd, ".qnx_core_status", sect)); |
11521 | 0 | } |
11522 | | |
11523 | | static bool |
11524 | | elfcore_grok_nto_regs (bfd *abfd, |
11525 | | Elf_Internal_Note *note, |
11526 | | long tid, |
11527 | | char *base) |
11528 | 0 | { |
11529 | 0 | char buf[100]; |
11530 | 0 | char *name; |
11531 | 0 | asection *sect; |
11532 | | |
11533 | | /* Make a "(base)/%d" section. */ |
11534 | 0 | sprintf (buf, "%s/%ld", base, tid); |
11535 | |
|
11536 | 0 | name = (char *) bfd_alloc (abfd, strlen (buf) + 1); |
11537 | 0 | if (name == NULL) |
11538 | 0 | return false; |
11539 | 0 | strcpy (name, buf); |
11540 | |
|
11541 | 0 | sect = bfd_make_section_anyway_with_flags (abfd, name, SEC_HAS_CONTENTS); |
11542 | 0 | if (sect == NULL) |
11543 | 0 | return false; |
11544 | | |
11545 | 0 | sect->size = note->descsz; |
11546 | 0 | sect->filepos = note->descpos; |
11547 | 0 | sect->alignment_power = 2; |
11548 | | |
11549 | | /* This is the current thread. */ |
11550 | 0 | if (elf_tdata (abfd)->core->lwpid == tid) |
11551 | 0 | return elfcore_maybe_make_sect (abfd, base, sect); |
11552 | | |
11553 | 0 | return true; |
11554 | 0 | } |
11555 | | |
11556 | | static bool |
11557 | | elfcore_grok_nto_note (bfd *abfd, Elf_Internal_Note *note) |
11558 | 0 | { |
11559 | | /* Every GREG section has a STATUS section before it. Store the |
11560 | | tid from the previous call to pass down to the next gregs |
11561 | | function. */ |
11562 | 0 | static long tid = 1; |
11563 | |
|
11564 | 0 | switch (note->type) |
11565 | 0 | { |
11566 | 0 | case QNT_CORE_INFO: |
11567 | 0 | return elfcore_make_note_pseudosection (abfd, ".qnx_core_info", note); |
11568 | 0 | case QNT_CORE_STATUS: |
11569 | 0 | return elfcore_grok_nto_status (abfd, note, &tid); |
11570 | 0 | case QNT_CORE_GREG: |
11571 | 0 | return elfcore_grok_nto_regs (abfd, note, tid, ".reg"); |
11572 | 0 | case QNT_CORE_FPREG: |
11573 | 0 | return elfcore_grok_nto_regs (abfd, note, tid, ".reg2"); |
11574 | 0 | default: |
11575 | 0 | return true; |
11576 | 0 | } |
11577 | 0 | } |
11578 | | |
11579 | | static bool |
11580 | | elfcore_grok_spu_note (bfd *abfd, Elf_Internal_Note *note) |
11581 | 0 | { |
11582 | 0 | char *name; |
11583 | 0 | asection *sect; |
11584 | 0 | size_t len; |
11585 | | |
11586 | | /* Use note name as section name. */ |
11587 | 0 | len = note->namesz; |
11588 | 0 | name = (char *) bfd_alloc (abfd, len); |
11589 | 0 | if (name == NULL) |
11590 | 0 | return false; |
11591 | 0 | memcpy (name, note->namedata, len); |
11592 | 0 | name[len - 1] = '\0'; |
11593 | |
|
11594 | 0 | sect = bfd_make_section_anyway_with_flags (abfd, name, SEC_HAS_CONTENTS); |
11595 | 0 | if (sect == NULL) |
11596 | 0 | return false; |
11597 | | |
11598 | 0 | sect->size = note->descsz; |
11599 | 0 | sect->filepos = note->descpos; |
11600 | 0 | sect->alignment_power = 1; |
11601 | |
|
11602 | 0 | return true; |
11603 | 0 | } |
11604 | | |
11605 | | /* Function: elfcore_write_note |
11606 | | |
11607 | | Inputs: |
11608 | | buffer to hold note, and current size of buffer |
11609 | | name of note |
11610 | | type of note |
11611 | | data for note |
11612 | | size of data for note |
11613 | | |
11614 | | Writes note to end of buffer. ELF64 notes are written exactly as |
11615 | | for ELF32, despite the current (as of 2006) ELF gabi specifying |
11616 | | that they ought to have 8-byte namesz and descsz field, and have |
11617 | | 8-byte alignment. Other writers, eg. Linux kernel, do the same. |
11618 | | |
11619 | | Return: |
11620 | | Pointer to realloc'd buffer, *BUFSIZ updated. */ |
11621 | | |
11622 | | char * |
11623 | | elfcore_write_note (bfd *abfd, |
11624 | | char *buf, |
11625 | | int *bufsiz, |
11626 | | const char *name, |
11627 | | int type, |
11628 | | const void *input, |
11629 | | int size) |
11630 | 0 | { |
11631 | 0 | Elf_External_Note *xnp; |
11632 | 0 | size_t namesz; |
11633 | 0 | size_t newspace; |
11634 | 0 | char *dest; |
11635 | |
|
11636 | 0 | namesz = 0; |
11637 | 0 | if (name != NULL) |
11638 | 0 | namesz = strlen (name) + 1; |
11639 | |
|
11640 | 0 | newspace = 12 + ((namesz + 3) & -4) + ((size + 3) & -4); |
11641 | |
|
11642 | 0 | buf = (char *) realloc (buf, *bufsiz + newspace); |
11643 | 0 | if (buf == NULL) |
11644 | 0 | return buf; |
11645 | 0 | dest = buf + *bufsiz; |
11646 | 0 | *bufsiz += newspace; |
11647 | 0 | xnp = (Elf_External_Note *) dest; |
11648 | 0 | H_PUT_32 (abfd, namesz, xnp->namesz); |
11649 | 0 | H_PUT_32 (abfd, size, xnp->descsz); |
11650 | 0 | H_PUT_32 (abfd, type, xnp->type); |
11651 | 0 | dest = xnp->name; |
11652 | 0 | if (name != NULL) |
11653 | 0 | { |
11654 | 0 | memcpy (dest, name, namesz); |
11655 | 0 | dest += namesz; |
11656 | 0 | while (namesz & 3) |
11657 | 0 | { |
11658 | 0 | *dest++ = '\0'; |
11659 | 0 | ++namesz; |
11660 | 0 | } |
11661 | 0 | } |
11662 | 0 | memcpy (dest, input, size); |
11663 | 0 | dest += size; |
11664 | 0 | while (size & 3) |
11665 | 0 | { |
11666 | 0 | *dest++ = '\0'; |
11667 | 0 | ++size; |
11668 | 0 | } |
11669 | 0 | return buf; |
11670 | 0 | } |
11671 | | |
11672 | | /* gcc-8 warns (*) on all the strncpy calls in this function about |
11673 | | possible string truncation. The "truncation" is not a bug. We |
11674 | | have an external representation of structs with fields that are not |
11675 | | necessarily NULL terminated and corresponding internal |
11676 | | representation fields that are one larger so that they can always |
11677 | | be NULL terminated. |
11678 | | gcc versions between 4.2 and 4.6 do not allow pragma control of |
11679 | | diagnostics inside functions, giving a hard error if you try to use |
11680 | | the finer control available with later versions. |
11681 | | gcc prior to 4.2 warns about diagnostic push and pop. |
11682 | | gcc-5, gcc-6 and gcc-7 warn that -Wstringop-truncation is unknown, |
11683 | | unless you also add #pragma GCC diagnostic ignored "-Wpragma". |
11684 | | (*) Depending on your system header files! */ |
11685 | | #if GCC_VERSION >= 8000 |
11686 | | # pragma GCC diagnostic push |
11687 | | # pragma GCC diagnostic ignored "-Wstringop-truncation" |
11688 | | #endif |
11689 | | char * |
11690 | | elfcore_write_prpsinfo (bfd *abfd, |
11691 | | char *buf, |
11692 | | int *bufsiz, |
11693 | | const char *fname, |
11694 | | const char *psargs) |
11695 | 0 | { |
11696 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
11697 | |
|
11698 | 0 | if (bed->elf_backend_write_core_note != NULL) |
11699 | 0 | { |
11700 | 0 | char *ret; |
11701 | 0 | ret = (*bed->elf_backend_write_core_note) (abfd, buf, bufsiz, |
11702 | 0 | NT_PRPSINFO, fname, psargs); |
11703 | 0 | if (ret != NULL) |
11704 | 0 | return ret; |
11705 | 0 | } |
11706 | | |
11707 | 0 | #if defined (HAVE_PRPSINFO_T) || defined (HAVE_PSINFO_T) |
11708 | 0 | # if defined (HAVE_PRPSINFO32_T) || defined (HAVE_PSINFO32_T) |
11709 | 0 | if (bed->s->elfclass == ELFCLASS32) |
11710 | 0 | { |
11711 | | # if defined (HAVE_PSINFO32_T) |
11712 | | psinfo32_t data; |
11713 | | int note_type = NT_PSINFO; |
11714 | | # else |
11715 | 0 | prpsinfo32_t data; |
11716 | 0 | int note_type = NT_PRPSINFO; |
11717 | 0 | # endif |
11718 | |
|
11719 | 0 | memset (&data, 0, sizeof (data)); |
11720 | 0 | strncpy (data.pr_fname, fname, sizeof (data.pr_fname)); |
11721 | 0 | strncpy (data.pr_psargs, psargs, sizeof (data.pr_psargs)); |
11722 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
11723 | 0 | "CORE", note_type, &data, sizeof (data)); |
11724 | 0 | } |
11725 | 0 | else |
11726 | 0 | # endif |
11727 | 0 | { |
11728 | | # if defined (HAVE_PSINFO_T) |
11729 | | psinfo_t data; |
11730 | | int note_type = NT_PSINFO; |
11731 | | # else |
11732 | 0 | prpsinfo_t data; |
11733 | 0 | int note_type = NT_PRPSINFO; |
11734 | 0 | # endif |
11735 | |
|
11736 | 0 | memset (&data, 0, sizeof (data)); |
11737 | 0 | strncpy (data.pr_fname, fname, sizeof (data.pr_fname)); |
11738 | 0 | strncpy (data.pr_psargs, psargs, sizeof (data.pr_psargs)); |
11739 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
11740 | 0 | "CORE", note_type, &data, sizeof (data)); |
11741 | 0 | } |
11742 | 0 | #endif /* PSINFO_T or PRPSINFO_T */ |
11743 | | |
11744 | 0 | free (buf); |
11745 | 0 | return NULL; |
11746 | 0 | } |
11747 | | #if GCC_VERSION >= 8000 |
11748 | | # pragma GCC diagnostic pop |
11749 | | #endif |
11750 | | |
11751 | | char * |
11752 | | elfcore_write_linux_prpsinfo32 |
11753 | | (bfd *abfd, char *buf, int *bufsiz, |
11754 | | const struct elf_internal_linux_prpsinfo *prpsinfo) |
11755 | 0 | { |
11756 | 0 | if (get_elf_backend_data (abfd)->linux_prpsinfo32_ugid16) |
11757 | 0 | { |
11758 | 0 | struct elf_external_linux_prpsinfo32_ugid16 data; |
11759 | |
|
11760 | 0 | swap_linux_prpsinfo32_ugid16_out (abfd, prpsinfo, &data); |
11761 | 0 | return elfcore_write_note (abfd, buf, bufsiz, "CORE", NT_PRPSINFO, |
11762 | 0 | &data, sizeof (data)); |
11763 | 0 | } |
11764 | 0 | else |
11765 | 0 | { |
11766 | 0 | struct elf_external_linux_prpsinfo32_ugid32 data; |
11767 | |
|
11768 | 0 | swap_linux_prpsinfo32_ugid32_out (abfd, prpsinfo, &data); |
11769 | 0 | return elfcore_write_note (abfd, buf, bufsiz, "CORE", NT_PRPSINFO, |
11770 | 0 | &data, sizeof (data)); |
11771 | 0 | } |
11772 | 0 | } |
11773 | | |
11774 | | char * |
11775 | | elfcore_write_linux_prpsinfo64 |
11776 | | (bfd *abfd, char *buf, int *bufsiz, |
11777 | | const struct elf_internal_linux_prpsinfo *prpsinfo) |
11778 | 0 | { |
11779 | 0 | if (get_elf_backend_data (abfd)->linux_prpsinfo64_ugid16) |
11780 | 0 | { |
11781 | 0 | struct elf_external_linux_prpsinfo64_ugid16 data; |
11782 | |
|
11783 | 0 | swap_linux_prpsinfo64_ugid16_out (abfd, prpsinfo, &data); |
11784 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
11785 | 0 | "CORE", NT_PRPSINFO, &data, sizeof (data)); |
11786 | 0 | } |
11787 | 0 | else |
11788 | 0 | { |
11789 | 0 | struct elf_external_linux_prpsinfo64_ugid32 data; |
11790 | |
|
11791 | 0 | swap_linux_prpsinfo64_ugid32_out (abfd, prpsinfo, &data); |
11792 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
11793 | 0 | "CORE", NT_PRPSINFO, &data, sizeof (data)); |
11794 | 0 | } |
11795 | 0 | } |
11796 | | |
11797 | | char * |
11798 | | elfcore_write_prstatus (bfd *abfd, |
11799 | | char *buf, |
11800 | | int *bufsiz, |
11801 | | long pid, |
11802 | | int cursig, |
11803 | | const void *gregs) |
11804 | 0 | { |
11805 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
11806 | |
|
11807 | 0 | if (bed->elf_backend_write_core_note != NULL) |
11808 | 0 | { |
11809 | 0 | char *ret; |
11810 | 0 | ret = (*bed->elf_backend_write_core_note) (abfd, buf, bufsiz, |
11811 | 0 | NT_PRSTATUS, |
11812 | 0 | pid, cursig, gregs); |
11813 | 0 | if (ret != NULL) |
11814 | 0 | return ret; |
11815 | 0 | } |
11816 | | |
11817 | 0 | #if defined (HAVE_PRSTATUS_T) |
11818 | 0 | #if defined (HAVE_PRSTATUS32_T) |
11819 | 0 | if (bed->s->elfclass == ELFCLASS32) |
11820 | 0 | { |
11821 | 0 | prstatus32_t prstat; |
11822 | |
|
11823 | 0 | memset (&prstat, 0, sizeof (prstat)); |
11824 | 0 | prstat.pr_pid = pid; |
11825 | 0 | prstat.pr_cursig = cursig; |
11826 | 0 | memcpy (&prstat.pr_reg, gregs, sizeof (prstat.pr_reg)); |
11827 | 0 | return elfcore_write_note (abfd, buf, bufsiz, "CORE", |
11828 | 0 | NT_PRSTATUS, &prstat, sizeof (prstat)); |
11829 | 0 | } |
11830 | 0 | else |
11831 | 0 | #endif |
11832 | 0 | { |
11833 | 0 | prstatus_t prstat; |
11834 | |
|
11835 | 0 | memset (&prstat, 0, sizeof (prstat)); |
11836 | 0 | prstat.pr_pid = pid; |
11837 | 0 | prstat.pr_cursig = cursig; |
11838 | 0 | memcpy (&prstat.pr_reg, gregs, sizeof (prstat.pr_reg)); |
11839 | 0 | return elfcore_write_note (abfd, buf, bufsiz, "CORE", |
11840 | 0 | NT_PRSTATUS, &prstat, sizeof (prstat)); |
11841 | 0 | } |
11842 | 0 | #endif /* HAVE_PRSTATUS_T */ |
11843 | | |
11844 | 0 | free (buf); |
11845 | 0 | return NULL; |
11846 | 0 | } |
11847 | | |
11848 | | #if defined (HAVE_LWPSTATUS_T) |
11849 | | char * |
11850 | | elfcore_write_lwpstatus (bfd *abfd, |
11851 | | char *buf, |
11852 | | int *bufsiz, |
11853 | | long pid, |
11854 | | int cursig, |
11855 | | const void *gregs) |
11856 | | { |
11857 | | lwpstatus_t lwpstat; |
11858 | | const char *note_name = "CORE"; |
11859 | | |
11860 | | memset (&lwpstat, 0, sizeof (lwpstat)); |
11861 | | lwpstat.pr_lwpid = pid >> 16; |
11862 | | lwpstat.pr_cursig = cursig; |
11863 | | #if defined (HAVE_LWPSTATUS_T_PR_REG) |
11864 | | memcpy (&lwpstat.pr_reg, gregs, sizeof (lwpstat.pr_reg)); |
11865 | | #elif defined (HAVE_LWPSTATUS_T_PR_CONTEXT) |
11866 | | #if !defined(gregs) |
11867 | | memcpy (lwpstat.pr_context.uc_mcontext.gregs, |
11868 | | gregs, sizeof (lwpstat.pr_context.uc_mcontext.gregs)); |
11869 | | #else |
11870 | | memcpy (lwpstat.pr_context.uc_mcontext.__gregs, |
11871 | | gregs, sizeof (lwpstat.pr_context.uc_mcontext.__gregs)); |
11872 | | #endif |
11873 | | #endif |
11874 | | return elfcore_write_note (abfd, buf, bufsiz, note_name, |
11875 | | NT_LWPSTATUS, &lwpstat, sizeof (lwpstat)); |
11876 | | } |
11877 | | #endif /* HAVE_LWPSTATUS_T */ |
11878 | | |
11879 | | #if defined (HAVE_PSTATUS_T) |
11880 | | char * |
11881 | | elfcore_write_pstatus (bfd *abfd, |
11882 | | char *buf, |
11883 | | int *bufsiz, |
11884 | | long pid, |
11885 | | int cursig ATTRIBUTE_UNUSED, |
11886 | | const void *gregs ATTRIBUTE_UNUSED) |
11887 | | { |
11888 | | const char *note_name = "CORE"; |
11889 | | #if defined (HAVE_PSTATUS32_T) |
11890 | | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
11891 | | |
11892 | | if (bed->s->elfclass == ELFCLASS32) |
11893 | | { |
11894 | | pstatus32_t pstat; |
11895 | | |
11896 | | memset (&pstat, 0, sizeof (pstat)); |
11897 | | pstat.pr_pid = pid & 0xffff; |
11898 | | buf = elfcore_write_note (abfd, buf, bufsiz, note_name, |
11899 | | NT_PSTATUS, &pstat, sizeof (pstat)); |
11900 | | return buf; |
11901 | | } |
11902 | | else |
11903 | | #endif |
11904 | | { |
11905 | | pstatus_t pstat; |
11906 | | |
11907 | | memset (&pstat, 0, sizeof (pstat)); |
11908 | | pstat.pr_pid = pid & 0xffff; |
11909 | | buf = elfcore_write_note (abfd, buf, bufsiz, note_name, |
11910 | | NT_PSTATUS, &pstat, sizeof (pstat)); |
11911 | | return buf; |
11912 | | } |
11913 | | } |
11914 | | #endif /* HAVE_PSTATUS_T */ |
11915 | | |
11916 | | char * |
11917 | | elfcore_write_prfpreg (bfd *abfd, |
11918 | | char *buf, |
11919 | | int *bufsiz, |
11920 | | const void *fpregs, |
11921 | | int size) |
11922 | 0 | { |
11923 | 0 | const char *note_name = "CORE"; |
11924 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
11925 | 0 | note_name, NT_FPREGSET, fpregs, size); |
11926 | 0 | } |
11927 | | |
11928 | | char * |
11929 | | elfcore_write_prxfpreg (bfd *abfd, |
11930 | | char *buf, |
11931 | | int *bufsiz, |
11932 | | const void *xfpregs, |
11933 | | int size) |
11934 | 0 | { |
11935 | 0 | char *note_name = "LINUX"; |
11936 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
11937 | 0 | note_name, NT_PRXFPREG, xfpregs, size); |
11938 | 0 | } |
11939 | | |
11940 | | char * |
11941 | | elfcore_write_xstatereg (bfd *abfd, char *buf, int *bufsiz, |
11942 | | const void *xfpregs, int size) |
11943 | 0 | { |
11944 | 0 | char *note_name; |
11945 | 0 | if (get_elf_backend_data (abfd)->elf_osabi == ELFOSABI_FREEBSD) |
11946 | 0 | note_name = "FreeBSD"; |
11947 | 0 | else |
11948 | 0 | note_name = "LINUX"; |
11949 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
11950 | 0 | note_name, NT_X86_XSTATE, xfpregs, size); |
11951 | 0 | } |
11952 | | |
11953 | | char * |
11954 | | elfcore_write_x86_segbases (bfd *abfd, char *buf, int *bufsiz, |
11955 | | const void *regs, int size) |
11956 | 0 | { |
11957 | 0 | char *note_name = "FreeBSD"; |
11958 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
11959 | 0 | note_name, NT_FREEBSD_X86_SEGBASES, regs, size); |
11960 | 0 | } |
11961 | | |
11962 | | char * |
11963 | | elfcore_write_ppc_vmx (bfd *abfd, |
11964 | | char *buf, |
11965 | | int *bufsiz, |
11966 | | const void *ppc_vmx, |
11967 | | int size) |
11968 | 0 | { |
11969 | 0 | char *note_name = "LINUX"; |
11970 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
11971 | 0 | note_name, NT_PPC_VMX, ppc_vmx, size); |
11972 | 0 | } |
11973 | | |
11974 | | char * |
11975 | | elfcore_write_ppc_vsx (bfd *abfd, |
11976 | | char *buf, |
11977 | | int *bufsiz, |
11978 | | const void *ppc_vsx, |
11979 | | int size) |
11980 | 0 | { |
11981 | 0 | char *note_name = "LINUX"; |
11982 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
11983 | 0 | note_name, NT_PPC_VSX, ppc_vsx, size); |
11984 | 0 | } |
11985 | | |
11986 | | char * |
11987 | | elfcore_write_ppc_tar (bfd *abfd, |
11988 | | char *buf, |
11989 | | int *bufsiz, |
11990 | | const void *ppc_tar, |
11991 | | int size) |
11992 | 0 | { |
11993 | 0 | char *note_name = "LINUX"; |
11994 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
11995 | 0 | note_name, NT_PPC_TAR, ppc_tar, size); |
11996 | 0 | } |
11997 | | |
11998 | | char * |
11999 | | elfcore_write_ppc_ppr (bfd *abfd, |
12000 | | char *buf, |
12001 | | int *bufsiz, |
12002 | | const void *ppc_ppr, |
12003 | | int size) |
12004 | 0 | { |
12005 | 0 | char *note_name = "LINUX"; |
12006 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12007 | 0 | note_name, NT_PPC_PPR, ppc_ppr, size); |
12008 | 0 | } |
12009 | | |
12010 | | char * |
12011 | | elfcore_write_ppc_dscr (bfd *abfd, |
12012 | | char *buf, |
12013 | | int *bufsiz, |
12014 | | const void *ppc_dscr, |
12015 | | int size) |
12016 | 0 | { |
12017 | 0 | char *note_name = "LINUX"; |
12018 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12019 | 0 | note_name, NT_PPC_DSCR, ppc_dscr, size); |
12020 | 0 | } |
12021 | | |
12022 | | char * |
12023 | | elfcore_write_ppc_ebb (bfd *abfd, |
12024 | | char *buf, |
12025 | | int *bufsiz, |
12026 | | const void *ppc_ebb, |
12027 | | int size) |
12028 | 0 | { |
12029 | 0 | char *note_name = "LINUX"; |
12030 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12031 | 0 | note_name, NT_PPC_EBB, ppc_ebb, size); |
12032 | 0 | } |
12033 | | |
12034 | | char * |
12035 | | elfcore_write_ppc_pmu (bfd *abfd, |
12036 | | char *buf, |
12037 | | int *bufsiz, |
12038 | | const void *ppc_pmu, |
12039 | | int size) |
12040 | 0 | { |
12041 | 0 | char *note_name = "LINUX"; |
12042 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12043 | 0 | note_name, NT_PPC_PMU, ppc_pmu, size); |
12044 | 0 | } |
12045 | | |
12046 | | char * |
12047 | | elfcore_write_ppc_tm_cgpr (bfd *abfd, |
12048 | | char *buf, |
12049 | | int *bufsiz, |
12050 | | const void *ppc_tm_cgpr, |
12051 | | int size) |
12052 | 0 | { |
12053 | 0 | char *note_name = "LINUX"; |
12054 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12055 | 0 | note_name, NT_PPC_TM_CGPR, ppc_tm_cgpr, size); |
12056 | 0 | } |
12057 | | |
12058 | | char * |
12059 | | elfcore_write_ppc_tm_cfpr (bfd *abfd, |
12060 | | char *buf, |
12061 | | int *bufsiz, |
12062 | | const void *ppc_tm_cfpr, |
12063 | | int size) |
12064 | 0 | { |
12065 | 0 | char *note_name = "LINUX"; |
12066 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12067 | 0 | note_name, NT_PPC_TM_CFPR, ppc_tm_cfpr, size); |
12068 | 0 | } |
12069 | | |
12070 | | char * |
12071 | | elfcore_write_ppc_tm_cvmx (bfd *abfd, |
12072 | | char *buf, |
12073 | | int *bufsiz, |
12074 | | const void *ppc_tm_cvmx, |
12075 | | int size) |
12076 | 0 | { |
12077 | 0 | char *note_name = "LINUX"; |
12078 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12079 | 0 | note_name, NT_PPC_TM_CVMX, ppc_tm_cvmx, size); |
12080 | 0 | } |
12081 | | |
12082 | | char * |
12083 | | elfcore_write_ppc_tm_cvsx (bfd *abfd, |
12084 | | char *buf, |
12085 | | int *bufsiz, |
12086 | | const void *ppc_tm_cvsx, |
12087 | | int size) |
12088 | 0 | { |
12089 | 0 | char *note_name = "LINUX"; |
12090 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12091 | 0 | note_name, NT_PPC_TM_CVSX, ppc_tm_cvsx, size); |
12092 | 0 | } |
12093 | | |
12094 | | char * |
12095 | | elfcore_write_ppc_tm_spr (bfd *abfd, |
12096 | | char *buf, |
12097 | | int *bufsiz, |
12098 | | const void *ppc_tm_spr, |
12099 | | int size) |
12100 | 0 | { |
12101 | 0 | char *note_name = "LINUX"; |
12102 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12103 | 0 | note_name, NT_PPC_TM_SPR, ppc_tm_spr, size); |
12104 | 0 | } |
12105 | | |
12106 | | char * |
12107 | | elfcore_write_ppc_tm_ctar (bfd *abfd, |
12108 | | char *buf, |
12109 | | int *bufsiz, |
12110 | | const void *ppc_tm_ctar, |
12111 | | int size) |
12112 | 0 | { |
12113 | 0 | char *note_name = "LINUX"; |
12114 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12115 | 0 | note_name, NT_PPC_TM_CTAR, ppc_tm_ctar, size); |
12116 | 0 | } |
12117 | | |
12118 | | char * |
12119 | | elfcore_write_ppc_tm_cppr (bfd *abfd, |
12120 | | char *buf, |
12121 | | int *bufsiz, |
12122 | | const void *ppc_tm_cppr, |
12123 | | int size) |
12124 | 0 | { |
12125 | 0 | char *note_name = "LINUX"; |
12126 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12127 | 0 | note_name, NT_PPC_TM_CPPR, ppc_tm_cppr, size); |
12128 | 0 | } |
12129 | | |
12130 | | char * |
12131 | | elfcore_write_ppc_tm_cdscr (bfd *abfd, |
12132 | | char *buf, |
12133 | | int *bufsiz, |
12134 | | const void *ppc_tm_cdscr, |
12135 | | int size) |
12136 | 0 | { |
12137 | 0 | char *note_name = "LINUX"; |
12138 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12139 | 0 | note_name, NT_PPC_TM_CDSCR, ppc_tm_cdscr, size); |
12140 | 0 | } |
12141 | | |
12142 | | static char * |
12143 | | elfcore_write_s390_high_gprs (bfd *abfd, |
12144 | | char *buf, |
12145 | | int *bufsiz, |
12146 | | const void *s390_high_gprs, |
12147 | | int size) |
12148 | 0 | { |
12149 | 0 | char *note_name = "LINUX"; |
12150 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12151 | 0 | note_name, NT_S390_HIGH_GPRS, |
12152 | 0 | s390_high_gprs, size); |
12153 | 0 | } |
12154 | | |
12155 | | char * |
12156 | | elfcore_write_s390_timer (bfd *abfd, |
12157 | | char *buf, |
12158 | | int *bufsiz, |
12159 | | const void *s390_timer, |
12160 | | int size) |
12161 | 0 | { |
12162 | 0 | char *note_name = "LINUX"; |
12163 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12164 | 0 | note_name, NT_S390_TIMER, s390_timer, size); |
12165 | 0 | } |
12166 | | |
12167 | | char * |
12168 | | elfcore_write_s390_todcmp (bfd *abfd, |
12169 | | char *buf, |
12170 | | int *bufsiz, |
12171 | | const void *s390_todcmp, |
12172 | | int size) |
12173 | 0 | { |
12174 | 0 | char *note_name = "LINUX"; |
12175 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12176 | 0 | note_name, NT_S390_TODCMP, s390_todcmp, size); |
12177 | 0 | } |
12178 | | |
12179 | | char * |
12180 | | elfcore_write_s390_todpreg (bfd *abfd, |
12181 | | char *buf, |
12182 | | int *bufsiz, |
12183 | | const void *s390_todpreg, |
12184 | | int size) |
12185 | 0 | { |
12186 | 0 | char *note_name = "LINUX"; |
12187 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12188 | 0 | note_name, NT_S390_TODPREG, s390_todpreg, size); |
12189 | 0 | } |
12190 | | |
12191 | | char * |
12192 | | elfcore_write_s390_ctrs (bfd *abfd, |
12193 | | char *buf, |
12194 | | int *bufsiz, |
12195 | | const void *s390_ctrs, |
12196 | | int size) |
12197 | 0 | { |
12198 | 0 | char *note_name = "LINUX"; |
12199 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12200 | 0 | note_name, NT_S390_CTRS, s390_ctrs, size); |
12201 | 0 | } |
12202 | | |
12203 | | char * |
12204 | | elfcore_write_s390_prefix (bfd *abfd, |
12205 | | char *buf, |
12206 | | int *bufsiz, |
12207 | | const void *s390_prefix, |
12208 | | int size) |
12209 | 0 | { |
12210 | 0 | char *note_name = "LINUX"; |
12211 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12212 | 0 | note_name, NT_S390_PREFIX, s390_prefix, size); |
12213 | 0 | } |
12214 | | |
12215 | | char * |
12216 | | elfcore_write_s390_last_break (bfd *abfd, |
12217 | | char *buf, |
12218 | | int *bufsiz, |
12219 | | const void *s390_last_break, |
12220 | | int size) |
12221 | 0 | { |
12222 | 0 | char *note_name = "LINUX"; |
12223 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12224 | 0 | note_name, NT_S390_LAST_BREAK, |
12225 | 0 | s390_last_break, size); |
12226 | 0 | } |
12227 | | |
12228 | | char * |
12229 | | elfcore_write_s390_system_call (bfd *abfd, |
12230 | | char *buf, |
12231 | | int *bufsiz, |
12232 | | const void *s390_system_call, |
12233 | | int size) |
12234 | 0 | { |
12235 | 0 | char *note_name = "LINUX"; |
12236 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12237 | 0 | note_name, NT_S390_SYSTEM_CALL, |
12238 | 0 | s390_system_call, size); |
12239 | 0 | } |
12240 | | |
12241 | | char * |
12242 | | elfcore_write_s390_tdb (bfd *abfd, |
12243 | | char *buf, |
12244 | | int *bufsiz, |
12245 | | const void *s390_tdb, |
12246 | | int size) |
12247 | 0 | { |
12248 | 0 | char *note_name = "LINUX"; |
12249 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12250 | 0 | note_name, NT_S390_TDB, s390_tdb, size); |
12251 | 0 | } |
12252 | | |
12253 | | char * |
12254 | | elfcore_write_s390_vxrs_low (bfd *abfd, |
12255 | | char *buf, |
12256 | | int *bufsiz, |
12257 | | const void *s390_vxrs_low, |
12258 | | int size) |
12259 | 0 | { |
12260 | 0 | char *note_name = "LINUX"; |
12261 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12262 | 0 | note_name, NT_S390_VXRS_LOW, s390_vxrs_low, size); |
12263 | 0 | } |
12264 | | |
12265 | | char * |
12266 | | elfcore_write_s390_vxrs_high (bfd *abfd, |
12267 | | char *buf, |
12268 | | int *bufsiz, |
12269 | | const void *s390_vxrs_high, |
12270 | | int size) |
12271 | 0 | { |
12272 | 0 | char *note_name = "LINUX"; |
12273 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12274 | 0 | note_name, NT_S390_VXRS_HIGH, |
12275 | 0 | s390_vxrs_high, size); |
12276 | 0 | } |
12277 | | |
12278 | | char * |
12279 | | elfcore_write_s390_gs_cb (bfd *abfd, |
12280 | | char *buf, |
12281 | | int *bufsiz, |
12282 | | const void *s390_gs_cb, |
12283 | | int size) |
12284 | 0 | { |
12285 | 0 | char *note_name = "LINUX"; |
12286 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12287 | 0 | note_name, NT_S390_GS_CB, |
12288 | 0 | s390_gs_cb, size); |
12289 | 0 | } |
12290 | | |
12291 | | char * |
12292 | | elfcore_write_s390_gs_bc (bfd *abfd, |
12293 | | char *buf, |
12294 | | int *bufsiz, |
12295 | | const void *s390_gs_bc, |
12296 | | int size) |
12297 | 0 | { |
12298 | 0 | char *note_name = "LINUX"; |
12299 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12300 | 0 | note_name, NT_S390_GS_BC, |
12301 | 0 | s390_gs_bc, size); |
12302 | 0 | } |
12303 | | |
12304 | | char * |
12305 | | elfcore_write_arm_vfp (bfd *abfd, |
12306 | | char *buf, |
12307 | | int *bufsiz, |
12308 | | const void *arm_vfp, |
12309 | | int size) |
12310 | 0 | { |
12311 | 0 | char *note_name = "LINUX"; |
12312 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12313 | 0 | note_name, NT_ARM_VFP, arm_vfp, size); |
12314 | 0 | } |
12315 | | |
12316 | | char * |
12317 | | elfcore_write_aarch_tls (bfd *abfd, |
12318 | | char *buf, |
12319 | | int *bufsiz, |
12320 | | const void *aarch_tls, |
12321 | | int size) |
12322 | 0 | { |
12323 | 0 | char *note_name = "LINUX"; |
12324 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12325 | 0 | note_name, NT_ARM_TLS, aarch_tls, size); |
12326 | 0 | } |
12327 | | |
12328 | | char * |
12329 | | elfcore_write_aarch_hw_break (bfd *abfd, |
12330 | | char *buf, |
12331 | | int *bufsiz, |
12332 | | const void *aarch_hw_break, |
12333 | | int size) |
12334 | 0 | { |
12335 | 0 | char *note_name = "LINUX"; |
12336 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12337 | 0 | note_name, NT_ARM_HW_BREAK, aarch_hw_break, size); |
12338 | 0 | } |
12339 | | |
12340 | | char * |
12341 | | elfcore_write_aarch_hw_watch (bfd *abfd, |
12342 | | char *buf, |
12343 | | int *bufsiz, |
12344 | | const void *aarch_hw_watch, |
12345 | | int size) |
12346 | 0 | { |
12347 | 0 | char *note_name = "LINUX"; |
12348 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12349 | 0 | note_name, NT_ARM_HW_WATCH, aarch_hw_watch, size); |
12350 | 0 | } |
12351 | | |
12352 | | char * |
12353 | | elfcore_write_aarch_sve (bfd *abfd, |
12354 | | char *buf, |
12355 | | int *bufsiz, |
12356 | | const void *aarch_sve, |
12357 | | int size) |
12358 | 0 | { |
12359 | 0 | char *note_name = "LINUX"; |
12360 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12361 | 0 | note_name, NT_ARM_SVE, aarch_sve, size); |
12362 | 0 | } |
12363 | | |
12364 | | char * |
12365 | | elfcore_write_aarch_pauth (bfd *abfd, |
12366 | | char *buf, |
12367 | | int *bufsiz, |
12368 | | const void *aarch_pauth, |
12369 | | int size) |
12370 | 0 | { |
12371 | 0 | char *note_name = "LINUX"; |
12372 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12373 | 0 | note_name, NT_ARM_PAC_MASK, aarch_pauth, size); |
12374 | 0 | } |
12375 | | |
12376 | | char * |
12377 | | elfcore_write_aarch_mte (bfd *abfd, |
12378 | | char *buf, |
12379 | | int *bufsiz, |
12380 | | const void *aarch_mte, |
12381 | | int size) |
12382 | 0 | { |
12383 | 0 | char *note_name = "LINUX"; |
12384 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12385 | 0 | note_name, NT_ARM_TAGGED_ADDR_CTRL, |
12386 | 0 | aarch_mte, |
12387 | 0 | size); |
12388 | 0 | } |
12389 | | |
12390 | | char * |
12391 | | elfcore_write_arc_v2 (bfd *abfd, |
12392 | | char *buf, |
12393 | | int *bufsiz, |
12394 | | const void *arc_v2, |
12395 | | int size) |
12396 | 0 | { |
12397 | 0 | char *note_name = "LINUX"; |
12398 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12399 | 0 | note_name, NT_ARC_V2, arc_v2, size); |
12400 | 0 | } |
12401 | | |
12402 | | char * |
12403 | | elfcore_write_loongarch_cpucfg (bfd *abfd, |
12404 | | char *buf, |
12405 | | int *bufsiz, |
12406 | | const void *loongarch_cpucfg, |
12407 | | int size) |
12408 | 0 | { |
12409 | 0 | char *note_name = "LINUX"; |
12410 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12411 | 0 | note_name, NT_LARCH_CPUCFG, |
12412 | 0 | loongarch_cpucfg, size); |
12413 | 0 | } |
12414 | | |
12415 | | char * |
12416 | | elfcore_write_loongarch_lbt (bfd *abfd, |
12417 | | char *buf, |
12418 | | int *bufsiz, |
12419 | | const void *loongarch_lbt, |
12420 | | int size) |
12421 | 0 | { |
12422 | 0 | char *note_name = "LINUX"; |
12423 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12424 | 0 | note_name, NT_LARCH_LBT, loongarch_lbt, size); |
12425 | 0 | } |
12426 | | |
12427 | | char * |
12428 | | elfcore_write_loongarch_lsx (bfd *abfd, |
12429 | | char *buf, |
12430 | | int *bufsiz, |
12431 | | const void *loongarch_lsx, |
12432 | | int size) |
12433 | 0 | { |
12434 | 0 | char *note_name = "LINUX"; |
12435 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12436 | 0 | note_name, NT_LARCH_LSX, loongarch_lsx, size); |
12437 | 0 | } |
12438 | | |
12439 | | char * |
12440 | | elfcore_write_loongarch_lasx (bfd *abfd, |
12441 | | char *buf, |
12442 | | int *bufsiz, |
12443 | | const void *loongarch_lasx, |
12444 | | int size) |
12445 | 0 | { |
12446 | 0 | char *note_name = "LINUX"; |
12447 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12448 | 0 | note_name, NT_LARCH_LASX, loongarch_lasx, size); |
12449 | 0 | } |
12450 | | |
12451 | | /* Write the buffer of csr values in CSRS (length SIZE) into the note |
12452 | | buffer BUF and update *BUFSIZ. ABFD is the bfd the note is being |
12453 | | written into. Return a pointer to the new start of the note buffer, to |
12454 | | replace BUF which may no longer be valid. */ |
12455 | | |
12456 | | char * |
12457 | | elfcore_write_riscv_csr (bfd *abfd, |
12458 | | char *buf, |
12459 | | int *bufsiz, |
12460 | | const void *csrs, |
12461 | | int size) |
12462 | 0 | { |
12463 | 0 | const char *note_name = "GDB"; |
12464 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12465 | 0 | note_name, NT_RISCV_CSR, csrs, size); |
12466 | 0 | } |
12467 | | |
12468 | | /* Write the target description (a string) pointed to by TDESC, length |
12469 | | SIZE, into the note buffer BUF, and update *BUFSIZ. ABFD is the bfd the |
12470 | | note is being written into. Return a pointer to the new start of the |
12471 | | note buffer, to replace BUF which may no longer be valid. */ |
12472 | | |
12473 | | char * |
12474 | | elfcore_write_gdb_tdesc (bfd *abfd, |
12475 | | char *buf, |
12476 | | int *bufsiz, |
12477 | | const void *tdesc, |
12478 | | int size) |
12479 | 0 | { |
12480 | 0 | const char *note_name = "GDB"; |
12481 | 0 | return elfcore_write_note (abfd, buf, bufsiz, |
12482 | 0 | note_name, NT_GDB_TDESC, tdesc, size); |
12483 | 0 | } |
12484 | | |
12485 | | char * |
12486 | | elfcore_write_register_note (bfd *abfd, |
12487 | | char *buf, |
12488 | | int *bufsiz, |
12489 | | const char *section, |
12490 | | const void *data, |
12491 | | int size) |
12492 | 0 | { |
12493 | 0 | if (strcmp (section, ".reg2") == 0) |
12494 | 0 | return elfcore_write_prfpreg (abfd, buf, bufsiz, data, size); |
12495 | 0 | if (strcmp (section, ".reg-xfp") == 0) |
12496 | 0 | return elfcore_write_prxfpreg (abfd, buf, bufsiz, data, size); |
12497 | 0 | if (strcmp (section, ".reg-xstate") == 0) |
12498 | 0 | return elfcore_write_xstatereg (abfd, buf, bufsiz, data, size); |
12499 | 0 | if (strcmp (section, ".reg-x86-segbases") == 0) |
12500 | 0 | return elfcore_write_x86_segbases (abfd, buf, bufsiz, data, size); |
12501 | 0 | if (strcmp (section, ".reg-ppc-vmx") == 0) |
12502 | 0 | return elfcore_write_ppc_vmx (abfd, buf, bufsiz, data, size); |
12503 | 0 | if (strcmp (section, ".reg-ppc-vsx") == 0) |
12504 | 0 | return elfcore_write_ppc_vsx (abfd, buf, bufsiz, data, size); |
12505 | 0 | if (strcmp (section, ".reg-ppc-tar") == 0) |
12506 | 0 | return elfcore_write_ppc_tar (abfd, buf, bufsiz, data, size); |
12507 | 0 | if (strcmp (section, ".reg-ppc-ppr") == 0) |
12508 | 0 | return elfcore_write_ppc_ppr (abfd, buf, bufsiz, data, size); |
12509 | 0 | if (strcmp (section, ".reg-ppc-dscr") == 0) |
12510 | 0 | return elfcore_write_ppc_dscr (abfd, buf, bufsiz, data, size); |
12511 | 0 | if (strcmp (section, ".reg-ppc-ebb") == 0) |
12512 | 0 | return elfcore_write_ppc_ebb (abfd, buf, bufsiz, data, size); |
12513 | 0 | if (strcmp (section, ".reg-ppc-pmu") == 0) |
12514 | 0 | return elfcore_write_ppc_pmu (abfd, buf, bufsiz, data, size); |
12515 | 0 | if (strcmp (section, ".reg-ppc-tm-cgpr") == 0) |
12516 | 0 | return elfcore_write_ppc_tm_cgpr (abfd, buf, bufsiz, data, size); |
12517 | 0 | if (strcmp (section, ".reg-ppc-tm-cfpr") == 0) |
12518 | 0 | return elfcore_write_ppc_tm_cfpr (abfd, buf, bufsiz, data, size); |
12519 | 0 | if (strcmp (section, ".reg-ppc-tm-cvmx") == 0) |
12520 | 0 | return elfcore_write_ppc_tm_cvmx (abfd, buf, bufsiz, data, size); |
12521 | 0 | if (strcmp (section, ".reg-ppc-tm-cvsx") == 0) |
12522 | 0 | return elfcore_write_ppc_tm_cvsx (abfd, buf, bufsiz, data, size); |
12523 | 0 | if (strcmp (section, ".reg-ppc-tm-spr") == 0) |
12524 | 0 | return elfcore_write_ppc_tm_spr (abfd, buf, bufsiz, data, size); |
12525 | 0 | if (strcmp (section, ".reg-ppc-tm-ctar") == 0) |
12526 | 0 | return elfcore_write_ppc_tm_ctar (abfd, buf, bufsiz, data, size); |
12527 | 0 | if (strcmp (section, ".reg-ppc-tm-cppr") == 0) |
12528 | 0 | return elfcore_write_ppc_tm_cppr (abfd, buf, bufsiz, data, size); |
12529 | 0 | if (strcmp (section, ".reg-ppc-tm-cdscr") == 0) |
12530 | 0 | return elfcore_write_ppc_tm_cdscr (abfd, buf, bufsiz, data, size); |
12531 | 0 | if (strcmp (section, ".reg-s390-high-gprs") == 0) |
12532 | 0 | return elfcore_write_s390_high_gprs (abfd, buf, bufsiz, data, size); |
12533 | 0 | if (strcmp (section, ".reg-s390-timer") == 0) |
12534 | 0 | return elfcore_write_s390_timer (abfd, buf, bufsiz, data, size); |
12535 | 0 | if (strcmp (section, ".reg-s390-todcmp") == 0) |
12536 | 0 | return elfcore_write_s390_todcmp (abfd, buf, bufsiz, data, size); |
12537 | 0 | if (strcmp (section, ".reg-s390-todpreg") == 0) |
12538 | 0 | return elfcore_write_s390_todpreg (abfd, buf, bufsiz, data, size); |
12539 | 0 | if (strcmp (section, ".reg-s390-ctrs") == 0) |
12540 | 0 | return elfcore_write_s390_ctrs (abfd, buf, bufsiz, data, size); |
12541 | 0 | if (strcmp (section, ".reg-s390-prefix") == 0) |
12542 | 0 | return elfcore_write_s390_prefix (abfd, buf, bufsiz, data, size); |
12543 | 0 | if (strcmp (section, ".reg-s390-last-break") == 0) |
12544 | 0 | return elfcore_write_s390_last_break (abfd, buf, bufsiz, data, size); |
12545 | 0 | if (strcmp (section, ".reg-s390-system-call") == 0) |
12546 | 0 | return elfcore_write_s390_system_call (abfd, buf, bufsiz, data, size); |
12547 | 0 | if (strcmp (section, ".reg-s390-tdb") == 0) |
12548 | 0 | return elfcore_write_s390_tdb (abfd, buf, bufsiz, data, size); |
12549 | 0 | if (strcmp (section, ".reg-s390-vxrs-low") == 0) |
12550 | 0 | return elfcore_write_s390_vxrs_low (abfd, buf, bufsiz, data, size); |
12551 | 0 | if (strcmp (section, ".reg-s390-vxrs-high") == 0) |
12552 | 0 | return elfcore_write_s390_vxrs_high (abfd, buf, bufsiz, data, size); |
12553 | 0 | if (strcmp (section, ".reg-s390-gs-cb") == 0) |
12554 | 0 | return elfcore_write_s390_gs_cb (abfd, buf, bufsiz, data, size); |
12555 | 0 | if (strcmp (section, ".reg-s390-gs-bc") == 0) |
12556 | 0 | return elfcore_write_s390_gs_bc (abfd, buf, bufsiz, data, size); |
12557 | 0 | if (strcmp (section, ".reg-arm-vfp") == 0) |
12558 | 0 | return elfcore_write_arm_vfp (abfd, buf, bufsiz, data, size); |
12559 | 0 | if (strcmp (section, ".reg-aarch-tls") == 0) |
12560 | 0 | return elfcore_write_aarch_tls (abfd, buf, bufsiz, data, size); |
12561 | 0 | if (strcmp (section, ".reg-aarch-hw-break") == 0) |
12562 | 0 | return elfcore_write_aarch_hw_break (abfd, buf, bufsiz, data, size); |
12563 | 0 | if (strcmp (section, ".reg-aarch-hw-watch") == 0) |
12564 | 0 | return elfcore_write_aarch_hw_watch (abfd, buf, bufsiz, data, size); |
12565 | 0 | if (strcmp (section, ".reg-aarch-sve") == 0) |
12566 | 0 | return elfcore_write_aarch_sve (abfd, buf, bufsiz, data, size); |
12567 | 0 | if (strcmp (section, ".reg-aarch-pauth") == 0) |
12568 | 0 | return elfcore_write_aarch_pauth (abfd, buf, bufsiz, data, size); |
12569 | 0 | if (strcmp (section, ".reg-aarch-mte") == 0) |
12570 | 0 | return elfcore_write_aarch_mte (abfd, buf, bufsiz, data, size); |
12571 | 0 | if (strcmp (section, ".reg-arc-v2") == 0) |
12572 | 0 | return elfcore_write_arc_v2 (abfd, buf, bufsiz, data, size); |
12573 | 0 | if (strcmp (section, ".gdb-tdesc") == 0) |
12574 | 0 | return elfcore_write_gdb_tdesc (abfd, buf, bufsiz, data, size); |
12575 | 0 | if (strcmp (section, ".reg-riscv-csr") == 0) |
12576 | 0 | return elfcore_write_riscv_csr (abfd, buf, bufsiz, data, size); |
12577 | 0 | if (strcmp (section, ".reg-loongarch-cpucfg") == 0) |
12578 | 0 | return elfcore_write_loongarch_cpucfg (abfd, buf, bufsiz, data, size); |
12579 | 0 | if (strcmp (section, ".reg-loongarch-lbt") == 0) |
12580 | 0 | return elfcore_write_loongarch_lbt (abfd, buf, bufsiz, data, size); |
12581 | 0 | if (strcmp (section, ".reg-loongarch-lsx") == 0) |
12582 | 0 | return elfcore_write_loongarch_lsx (abfd, buf, bufsiz, data, size); |
12583 | 0 | if (strcmp (section, ".reg-loongarch-lasx") == 0) |
12584 | 0 | return elfcore_write_loongarch_lasx (abfd, buf, bufsiz, data, size); |
12585 | 0 | return NULL; |
12586 | 0 | } |
12587 | | |
12588 | | char * |
12589 | | elfcore_write_file_note (bfd *obfd, char *note_data, int *note_size, |
12590 | | const void *buf, int bufsiz) |
12591 | 0 | { |
12592 | 0 | return elfcore_write_note (obfd, note_data, note_size, |
12593 | 0 | "CORE", NT_FILE, buf, bufsiz); |
12594 | 0 | } |
12595 | | |
12596 | | static bool |
12597 | | elf_parse_notes (bfd *abfd, char *buf, size_t size, file_ptr offset, |
12598 | | size_t align) |
12599 | 0 | { |
12600 | 0 | char *p; |
12601 | | |
12602 | | /* NB: CORE PT_NOTE segments may have p_align values of 0 or 1. |
12603 | | gABI specifies that PT_NOTE alignment should be aligned to 4 |
12604 | | bytes for 32-bit objects and to 8 bytes for 64-bit objects. If |
12605 | | align is less than 4, we use 4 byte alignment. */ |
12606 | 0 | if (align < 4) |
12607 | 0 | align = 4; |
12608 | 0 | if (align != 4 && align != 8) |
12609 | 0 | return false; |
12610 | | |
12611 | 0 | p = buf; |
12612 | 0 | while (p < buf + size) |
12613 | 0 | { |
12614 | 0 | Elf_External_Note *xnp = (Elf_External_Note *) p; |
12615 | 0 | Elf_Internal_Note in; |
12616 | |
|
12617 | 0 | if (offsetof (Elf_External_Note, name) > buf - p + size) |
12618 | 0 | return false; |
12619 | | |
12620 | 0 | in.type = H_GET_32 (abfd, xnp->type); |
12621 | |
|
12622 | 0 | in.namesz = H_GET_32 (abfd, xnp->namesz); |
12623 | 0 | in.namedata = xnp->name; |
12624 | 0 | if (in.namesz > buf - in.namedata + size) |
12625 | 0 | return false; |
12626 | | |
12627 | 0 | in.descsz = H_GET_32 (abfd, xnp->descsz); |
12628 | 0 | in.descdata = p + ELF_NOTE_DESC_OFFSET (in.namesz, align); |
12629 | 0 | in.descpos = offset + (in.descdata - buf); |
12630 | 0 | if (in.descsz != 0 |
12631 | 0 | && (in.descdata >= buf + size |
12632 | 0 | || in.descsz > buf - in.descdata + size)) |
12633 | 0 | return false; |
12634 | | |
12635 | 0 | switch (bfd_get_format (abfd)) |
12636 | 0 | { |
12637 | 0 | default: |
12638 | 0 | return true; |
12639 | | |
12640 | 0 | case bfd_core: |
12641 | 0 | { |
12642 | 0 | #define GROKER_ELEMENT(S,F) {S, sizeof (S) - 1, F} |
12643 | 0 | struct |
12644 | 0 | { |
12645 | 0 | const char * string; |
12646 | 0 | size_t len; |
12647 | 0 | bool (*func) (bfd *, Elf_Internal_Note *); |
12648 | 0 | } |
12649 | 0 | grokers[] = |
12650 | 0 | { |
12651 | 0 | GROKER_ELEMENT ("", elfcore_grok_note), |
12652 | 0 | GROKER_ELEMENT ("FreeBSD", elfcore_grok_freebsd_note), |
12653 | 0 | GROKER_ELEMENT ("NetBSD-CORE", elfcore_grok_netbsd_note), |
12654 | 0 | GROKER_ELEMENT ("OpenBSD", elfcore_grok_openbsd_note), |
12655 | 0 | GROKER_ELEMENT ("QNX", elfcore_grok_nto_note), |
12656 | 0 | GROKER_ELEMENT ("SPU/", elfcore_grok_spu_note), |
12657 | 0 | GROKER_ELEMENT ("GNU", elfobj_grok_gnu_note), |
12658 | 0 | GROKER_ELEMENT ("CORE", elfcore_grok_solaris_note) |
12659 | 0 | }; |
12660 | 0 | #undef GROKER_ELEMENT |
12661 | 0 | int i; |
12662 | |
|
12663 | 0 | for (i = ARRAY_SIZE (grokers); i--;) |
12664 | 0 | { |
12665 | 0 | if (in.namesz >= grokers[i].len |
12666 | 0 | && strncmp (in.namedata, grokers[i].string, |
12667 | 0 | grokers[i].len) == 0) |
12668 | 0 | { |
12669 | 0 | if (! grokers[i].func (abfd, & in)) |
12670 | 0 | return false; |
12671 | 0 | break; |
12672 | 0 | } |
12673 | 0 | } |
12674 | 0 | break; |
12675 | 0 | } |
12676 | | |
12677 | 0 | case bfd_object: |
12678 | 0 | if (in.namesz == sizeof "GNU" && strcmp (in.namedata, "GNU") == 0) |
12679 | 0 | { |
12680 | 0 | if (! elfobj_grok_gnu_note (abfd, &in)) |
12681 | 0 | return false; |
12682 | 0 | } |
12683 | 0 | else if (in.namesz == sizeof "stapsdt" |
12684 | 0 | && strcmp (in.namedata, "stapsdt") == 0) |
12685 | 0 | { |
12686 | 0 | if (! elfobj_grok_stapsdt_note (abfd, &in)) |
12687 | 0 | return false; |
12688 | 0 | } |
12689 | 0 | break; |
12690 | 0 | } |
12691 | | |
12692 | 0 | p += ELF_NOTE_NEXT_OFFSET (in.namesz, in.descsz, align); |
12693 | 0 | } |
12694 | | |
12695 | 0 | return true; |
12696 | 0 | } |
12697 | | |
12698 | | bool |
12699 | | elf_read_notes (bfd *abfd, file_ptr offset, bfd_size_type size, |
12700 | | size_t align) |
12701 | 0 | { |
12702 | 0 | char *buf; |
12703 | |
|
12704 | 0 | if (size == 0 || (size + 1) == 0) |
12705 | 0 | return true; |
12706 | | |
12707 | 0 | if (bfd_seek (abfd, offset, SEEK_SET) != 0) |
12708 | 0 | return false; |
12709 | | |
12710 | 0 | buf = (char *) _bfd_malloc_and_read (abfd, size + 1, size); |
12711 | 0 | if (buf == NULL) |
12712 | 0 | return false; |
12713 | | |
12714 | | /* PR 17512: file: ec08f814 |
12715 | | 0-termintate the buffer so that string searches will not overflow. */ |
12716 | 0 | buf[size] = 0; |
12717 | |
|
12718 | 0 | if (!elf_parse_notes (abfd, buf, size, offset, align)) |
12719 | 0 | { |
12720 | 0 | free (buf); |
12721 | 0 | return false; |
12722 | 0 | } |
12723 | | |
12724 | 0 | free (buf); |
12725 | 0 | return true; |
12726 | 0 | } |
12727 | | |
12728 | | /* Providing external access to the ELF program header table. */ |
12729 | | |
12730 | | /* Return an upper bound on the number of bytes required to store a |
12731 | | copy of ABFD's program header table entries. Return -1 if an error |
12732 | | occurs; bfd_get_error will return an appropriate code. */ |
12733 | | |
12734 | | long |
12735 | | bfd_get_elf_phdr_upper_bound (bfd *abfd) |
12736 | 0 | { |
12737 | 0 | if (abfd->xvec->flavour != bfd_target_elf_flavour) |
12738 | 0 | { |
12739 | 0 | bfd_set_error (bfd_error_wrong_format); |
12740 | 0 | return -1; |
12741 | 0 | } |
12742 | | |
12743 | 0 | return elf_elfheader (abfd)->e_phnum * sizeof (Elf_Internal_Phdr); |
12744 | 0 | } |
12745 | | |
12746 | | /* Copy ABFD's program header table entries to *PHDRS. The entries |
12747 | | will be stored as an array of Elf_Internal_Phdr structures, as |
12748 | | defined in include/elf/internal.h. To find out how large the |
12749 | | buffer needs to be, call bfd_get_elf_phdr_upper_bound. |
12750 | | |
12751 | | Return the number of program header table entries read, or -1 if an |
12752 | | error occurs; bfd_get_error will return an appropriate code. */ |
12753 | | |
12754 | | int |
12755 | | bfd_get_elf_phdrs (bfd *abfd, void *phdrs) |
12756 | 0 | { |
12757 | 0 | int num_phdrs; |
12758 | |
|
12759 | 0 | if (abfd->xvec->flavour != bfd_target_elf_flavour) |
12760 | 0 | { |
12761 | 0 | bfd_set_error (bfd_error_wrong_format); |
12762 | 0 | return -1; |
12763 | 0 | } |
12764 | | |
12765 | 0 | num_phdrs = elf_elfheader (abfd)->e_phnum; |
12766 | 0 | if (num_phdrs != 0) |
12767 | 0 | memcpy (phdrs, elf_tdata (abfd)->phdr, |
12768 | 0 | num_phdrs * sizeof (Elf_Internal_Phdr)); |
12769 | |
|
12770 | 0 | return num_phdrs; |
12771 | 0 | } |
12772 | | |
12773 | | enum elf_reloc_type_class |
12774 | | _bfd_elf_reloc_type_class (const struct bfd_link_info *info ATTRIBUTE_UNUSED, |
12775 | | const asection *rel_sec ATTRIBUTE_UNUSED, |
12776 | | const Elf_Internal_Rela *rela ATTRIBUTE_UNUSED) |
12777 | 0 | { |
12778 | 0 | return reloc_class_normal; |
12779 | 0 | } |
12780 | | |
12781 | | /* For RELA architectures, return the relocation value for a |
12782 | | relocation against a local symbol. */ |
12783 | | |
12784 | | bfd_vma |
12785 | | _bfd_elf_rela_local_sym (bfd *abfd, |
12786 | | Elf_Internal_Sym *sym, |
12787 | | asection **psec, |
12788 | | Elf_Internal_Rela *rel) |
12789 | 0 | { |
12790 | 0 | asection *sec = *psec; |
12791 | 0 | bfd_vma relocation; |
12792 | |
|
12793 | 0 | relocation = (sec->output_section->vma |
12794 | 0 | + sec->output_offset |
12795 | 0 | + sym->st_value); |
12796 | 0 | if ((sec->flags & SEC_MERGE) |
12797 | 0 | && ELF_ST_TYPE (sym->st_info) == STT_SECTION |
12798 | 0 | && sec->sec_info_type == SEC_INFO_TYPE_MERGE) |
12799 | 0 | { |
12800 | 0 | rel->r_addend = |
12801 | 0 | _bfd_merged_section_offset (abfd, psec, |
12802 | 0 | elf_section_data (sec)->sec_info, |
12803 | 0 | sym->st_value + rel->r_addend); |
12804 | 0 | if (sec != *psec) |
12805 | 0 | { |
12806 | | /* If we have changed the section, and our original section is |
12807 | | marked with SEC_EXCLUDE, it means that the original |
12808 | | SEC_MERGE section has been completely subsumed in some |
12809 | | other SEC_MERGE section. In this case, we need to leave |
12810 | | some info around for --emit-relocs. */ |
12811 | 0 | if ((sec->flags & SEC_EXCLUDE) != 0) |
12812 | 0 | sec->kept_section = *psec; |
12813 | 0 | sec = *psec; |
12814 | 0 | } |
12815 | 0 | rel->r_addend -= relocation; |
12816 | 0 | rel->r_addend += sec->output_section->vma + sec->output_offset; |
12817 | 0 | } |
12818 | 0 | return relocation; |
12819 | 0 | } |
12820 | | |
12821 | | bfd_vma |
12822 | | _bfd_elf_rel_local_sym (bfd *abfd, |
12823 | | Elf_Internal_Sym *sym, |
12824 | | asection **psec, |
12825 | | bfd_vma addend) |
12826 | 0 | { |
12827 | 0 | asection *sec = *psec; |
12828 | |
|
12829 | 0 | if (sec->sec_info_type != SEC_INFO_TYPE_MERGE) |
12830 | 0 | return sym->st_value + addend; |
12831 | | |
12832 | 0 | return _bfd_merged_section_offset (abfd, psec, |
12833 | 0 | elf_section_data (sec)->sec_info, |
12834 | 0 | sym->st_value + addend); |
12835 | 0 | } |
12836 | | |
12837 | | /* Adjust an address within a section. Given OFFSET within SEC, return |
12838 | | the new offset within the section, based upon changes made to the |
12839 | | section. Returns -1 if the offset is now invalid. |
12840 | | The offset (in abnd out) is in target sized bytes, however big a |
12841 | | byte may be. */ |
12842 | | |
12843 | | bfd_vma |
12844 | | _bfd_elf_section_offset (bfd *abfd, |
12845 | | struct bfd_link_info *info, |
12846 | | asection *sec, |
12847 | | bfd_vma offset) |
12848 | 0 | { |
12849 | 0 | switch (sec->sec_info_type) |
12850 | 0 | { |
12851 | 0 | case SEC_INFO_TYPE_STABS: |
12852 | 0 | return _bfd_stab_section_offset (sec, elf_section_data (sec)->sec_info, |
12853 | 0 | offset); |
12854 | 0 | case SEC_INFO_TYPE_EH_FRAME: |
12855 | 0 | return _bfd_elf_eh_frame_section_offset (abfd, info, sec, offset); |
12856 | | |
12857 | 0 | default: |
12858 | 0 | if ((sec->flags & SEC_ELF_REVERSE_COPY) != 0) |
12859 | 0 | { |
12860 | | /* Reverse the offset. */ |
12861 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
12862 | 0 | bfd_size_type address_size = bed->s->arch_size / 8; |
12863 | | |
12864 | | /* address_size and sec->size are in octets. Convert |
12865 | | to bytes before subtracting the original offset. */ |
12866 | 0 | offset = ((sec->size - address_size) |
12867 | 0 | / bfd_octets_per_byte (abfd, sec) - offset); |
12868 | 0 | } |
12869 | 0 | return offset; |
12870 | 0 | } |
12871 | 0 | } |
12872 | | |
12873 | | long |
12874 | | _bfd_elf_get_synthetic_symtab (bfd *abfd, |
12875 | | long symcount ATTRIBUTE_UNUSED, |
12876 | | asymbol **syms ATTRIBUTE_UNUSED, |
12877 | | long dynsymcount, |
12878 | | asymbol **dynsyms, |
12879 | | asymbol **ret) |
12880 | 0 | { |
12881 | 0 | const struct elf_backend_data *bed = get_elf_backend_data (abfd); |
12882 | 0 | asection *relplt; |
12883 | 0 | asymbol *s; |
12884 | 0 | const char *relplt_name; |
12885 | 0 | bool (*slurp_relocs) (bfd *, asection *, asymbol **, bool); |
12886 | 0 | arelent *p; |
12887 | 0 | long count, i, n; |
12888 | 0 | size_t size; |
12889 | 0 | Elf_Internal_Shdr *hdr; |
12890 | 0 | char *names; |
12891 | 0 | asection *plt; |
12892 | |
|
12893 | 0 | *ret = NULL; |
12894 | |
|
12895 | 0 | if ((abfd->flags & (DYNAMIC | EXEC_P)) == 0) |
12896 | 0 | return 0; |
12897 | | |
12898 | 0 | if (dynsymcount <= 0) |
12899 | 0 | return 0; |
12900 | | |
12901 | 0 | if (!bed->plt_sym_val) |
12902 | 0 | return 0; |
12903 | | |
12904 | 0 | relplt_name = bed->relplt_name; |
12905 | 0 | if (relplt_name == NULL) |
12906 | 0 | relplt_name = bed->rela_plts_and_copies_p ? ".rela.plt" : ".rel.plt"; |
12907 | 0 | relplt = bfd_get_section_by_name (abfd, relplt_name); |
12908 | 0 | if (relplt == NULL) |
12909 | 0 | return 0; |
12910 | | |
12911 | 0 | hdr = &elf_section_data (relplt)->this_hdr; |
12912 | 0 | if (hdr->sh_link != elf_dynsymtab (abfd) |
12913 | 0 | || (hdr->sh_type != SHT_REL && hdr->sh_type != SHT_RELA)) |
12914 | 0 | return 0; |
12915 | | |
12916 | 0 | plt = bfd_get_section_by_name (abfd, ".plt"); |
12917 | 0 | if (plt == NULL) |
12918 | 0 | return 0; |
12919 | | |
12920 | 0 | slurp_relocs = get_elf_backend_data (abfd)->s->slurp_reloc_table; |
12921 | 0 | if (! (*slurp_relocs) (abfd, relplt, dynsyms, true)) |
12922 | 0 | return -1; |
12923 | | |
12924 | 0 | count = NUM_SHDR_ENTRIES (hdr); |
12925 | 0 | size = count * sizeof (asymbol); |
12926 | 0 | p = relplt->relocation; |
12927 | 0 | for (i = 0; i < count; i++, p += bed->s->int_rels_per_ext_rel) |
12928 | 0 | { |
12929 | 0 | size += strlen ((*p->sym_ptr_ptr)->name) + sizeof ("@plt"); |
12930 | 0 | if (p->addend != 0) |
12931 | 0 | { |
12932 | 0 | #ifdef BFD64 |
12933 | 0 | size += sizeof ("+0x") - 1 + 8 + 8 * (bed->s->elfclass == ELFCLASS64); |
12934 | | #else |
12935 | | size += sizeof ("+0x") - 1 + 8; |
12936 | | #endif |
12937 | 0 | } |
12938 | 0 | } |
12939 | |
|
12940 | 0 | s = *ret = (asymbol *) bfd_malloc (size); |
12941 | 0 | if (s == NULL) |
12942 | 0 | return -1; |
12943 | | |
12944 | 0 | names = (char *) (s + count); |
12945 | 0 | p = relplt->relocation; |
12946 | 0 | n = 0; |
12947 | 0 | for (i = 0; i < count; i++, p += bed->s->int_rels_per_ext_rel) |
12948 | 0 | { |
12949 | 0 | size_t len; |
12950 | 0 | bfd_vma addr; |
12951 | |
|
12952 | 0 | addr = bed->plt_sym_val (i, plt, p); |
12953 | 0 | if (addr == (bfd_vma) -1) |
12954 | 0 | continue; |
12955 | | |
12956 | 0 | *s = **p->sym_ptr_ptr; |
12957 | | /* Undefined syms won't have BSF_LOCAL or BSF_GLOBAL set. Since |
12958 | | we are defining a symbol, ensure one of them is set. */ |
12959 | 0 | if ((s->flags & BSF_LOCAL) == 0) |
12960 | 0 | s->flags |= BSF_GLOBAL; |
12961 | 0 | s->flags |= BSF_SYNTHETIC; |
12962 | 0 | s->section = plt; |
12963 | 0 | s->value = addr - plt->vma; |
12964 | 0 | s->name = names; |
12965 | 0 | s->udata.p = NULL; |
12966 | 0 | len = strlen ((*p->sym_ptr_ptr)->name); |
12967 | 0 | memcpy (names, (*p->sym_ptr_ptr)->name, len); |
12968 | 0 | names += len; |
12969 | 0 | if (p->addend != 0) |
12970 | 0 | { |
12971 | 0 | char buf[30], *a; |
12972 | |
|
12973 | 0 | memcpy (names, "+0x", sizeof ("+0x") - 1); |
12974 | 0 | names += sizeof ("+0x") - 1; |
12975 | 0 | bfd_sprintf_vma (abfd, buf, p->addend); |
12976 | 0 | for (a = buf; *a == '0'; ++a) |
12977 | 0 | ; |
12978 | 0 | len = strlen (a); |
12979 | 0 | memcpy (names, a, len); |
12980 | 0 | names += len; |
12981 | 0 | } |
12982 | 0 | memcpy (names, "@plt", sizeof ("@plt")); |
12983 | 0 | names += sizeof ("@plt"); |
12984 | 0 | ++s, ++n; |
12985 | 0 | } |
12986 | |
|
12987 | 0 | return n; |
12988 | 0 | } |
12989 | | |
12990 | | /* It is only used by x86-64 so far. |
12991 | | ??? This repeats *COM* id of zero. sec->id is supposed to be unique, |
12992 | | but current usage would allow all of _bfd_std_section to be zero. */ |
12993 | | static const asymbol lcomm_sym |
12994 | | = GLOBAL_SYM_INIT ("LARGE_COMMON", &_bfd_elf_large_com_section); |
12995 | | asection _bfd_elf_large_com_section |
12996 | | = BFD_FAKE_SECTION (_bfd_elf_large_com_section, &lcomm_sym, |
12997 | | "LARGE_COMMON", 0, SEC_IS_COMMON); |
12998 | | |
12999 | | bool |
13000 | | _bfd_elf_final_write_processing (bfd *abfd) |
13001 | 0 | { |
13002 | 0 | Elf_Internal_Ehdr *i_ehdrp; /* ELF file header, internal form. */ |
13003 | |
|
13004 | 0 | i_ehdrp = elf_elfheader (abfd); |
13005 | |
|
13006 | 0 | if (i_ehdrp->e_ident[EI_OSABI] == ELFOSABI_NONE) |
13007 | 0 | i_ehdrp->e_ident[EI_OSABI] = get_elf_backend_data (abfd)->elf_osabi; |
13008 | | |
13009 | | /* Set the osabi field to ELFOSABI_GNU if the binary contains |
13010 | | SHF_GNU_MBIND or SHF_GNU_RETAIN sections or symbols of STT_GNU_IFUNC type |
13011 | | or STB_GNU_UNIQUE binding. */ |
13012 | 0 | if (elf_tdata (abfd)->has_gnu_osabi != 0) |
13013 | 0 | { |
13014 | 0 | if (i_ehdrp->e_ident[EI_OSABI] == ELFOSABI_NONE) |
13015 | 0 | i_ehdrp->e_ident[EI_OSABI] = ELFOSABI_GNU; |
13016 | 0 | else if (i_ehdrp->e_ident[EI_OSABI] != ELFOSABI_GNU |
13017 | 0 | && i_ehdrp->e_ident[EI_OSABI] != ELFOSABI_FREEBSD) |
13018 | 0 | { |
13019 | 0 | if (elf_tdata (abfd)->has_gnu_osabi & elf_gnu_osabi_mbind) |
13020 | 0 | _bfd_error_handler (_("GNU_MBIND section is supported only by GNU " |
13021 | 0 | "and FreeBSD targets")); |
13022 | 0 | if (elf_tdata (abfd)->has_gnu_osabi & elf_gnu_osabi_ifunc) |
13023 | 0 | _bfd_error_handler (_("symbol type STT_GNU_IFUNC is supported " |
13024 | 0 | "only by GNU and FreeBSD targets")); |
13025 | 0 | if (elf_tdata (abfd)->has_gnu_osabi & elf_gnu_osabi_unique) |
13026 | 0 | _bfd_error_handler (_("symbol binding STB_GNU_UNIQUE is supported " |
13027 | 0 | "only by GNU and FreeBSD targets")); |
13028 | 0 | if (elf_tdata (abfd)->has_gnu_osabi & elf_gnu_osabi_retain) |
13029 | 0 | _bfd_error_handler (_("GNU_RETAIN section is supported " |
13030 | 0 | "only by GNU and FreeBSD targets")); |
13031 | 0 | bfd_set_error (bfd_error_sorry); |
13032 | 0 | return false; |
13033 | 0 | } |
13034 | 0 | } |
13035 | 0 | return true; |
13036 | 0 | } |
13037 | | |
13038 | | |
13039 | | /* Return TRUE for ELF symbol types that represent functions. |
13040 | | This is the default version of this function, which is sufficient for |
13041 | | most targets. It returns true if TYPE is STT_FUNC or STT_GNU_IFUNC. */ |
13042 | | |
13043 | | bool |
13044 | | _bfd_elf_is_function_type (unsigned int type) |
13045 | 0 | { |
13046 | 0 | return (type == STT_FUNC |
13047 | 0 | || type == STT_GNU_IFUNC); |
13048 | 0 | } |
13049 | | |
13050 | | /* If the ELF symbol SYM might be a function in SEC, return the |
13051 | | function size and set *CODE_OFF to the function's entry point, |
13052 | | otherwise return zero. */ |
13053 | | |
13054 | | bfd_size_type |
13055 | | _bfd_elf_maybe_function_sym (const asymbol *sym, asection *sec, |
13056 | | bfd_vma *code_off) |
13057 | 0 | { |
13058 | 0 | bfd_size_type size; |
13059 | 0 | elf_symbol_type * elf_sym = (elf_symbol_type *) sym; |
13060 | |
|
13061 | 0 | if ((sym->flags & (BSF_SECTION_SYM | BSF_FILE | BSF_OBJECT |
13062 | 0 | | BSF_THREAD_LOCAL | BSF_RELC | BSF_SRELC)) != 0 |
13063 | 0 | || sym->section != sec) |
13064 | 0 | return 0; |
13065 | | |
13066 | 0 | size = (sym->flags & BSF_SYNTHETIC) ? 0 : elf_sym->internal_elf_sym.st_size; |
13067 | | |
13068 | | /* In theory we should check that the symbol's type satisfies |
13069 | | _bfd_elf_is_function_type(), but there are some function-like |
13070 | | symbols which would fail this test. (eg _start). Instead |
13071 | | we check for hidden, local, notype symbols with zero size. |
13072 | | This type of symbol is generated by the annobin plugin for gcc |
13073 | | and clang, and should not be considered to be a function symbol. */ |
13074 | 0 | if (size == 0 |
13075 | 0 | && ((sym->flags & (BSF_SYNTHETIC | BSF_LOCAL)) == BSF_LOCAL) |
13076 | 0 | && ELF_ST_TYPE (elf_sym->internal_elf_sym.st_info) == STT_NOTYPE |
13077 | 0 | && ELF_ST_VISIBILITY (elf_sym->internal_elf_sym.st_other) == STV_HIDDEN) |
13078 | 0 | return 0; |
13079 | | |
13080 | 0 | *code_off = sym->value; |
13081 | | /* Do not return 0 for the function's size. */ |
13082 | 0 | return size ? size : 1; |
13083 | 0 | } |
13084 | | |
13085 | | /* Set to non-zero to enable some debug messages. */ |
13086 | | #define DEBUG_SECONDARY_RELOCS 0 |
13087 | | |
13088 | | /* An internal-to-the-bfd-library only section type |
13089 | | used to indicate a cached secondary reloc section. */ |
13090 | 0 | #define SHT_SECONDARY_RELOC (SHT_LOOS + SHT_RELA) |
13091 | | |
13092 | | /* Create a BFD section to hold a secondary reloc section. */ |
13093 | | |
13094 | | bool |
13095 | | _bfd_elf_init_secondary_reloc_section (bfd * abfd, |
13096 | | Elf_Internal_Shdr *hdr, |
13097 | | const char * name, |
13098 | | unsigned int shindex) |
13099 | 0 | { |
13100 | | /* We only support RELA secondary relocs. */ |
13101 | 0 | if (hdr->sh_type != SHT_RELA) |
13102 | 0 | return false; |
13103 | | |
13104 | | #if DEBUG_SECONDARY_RELOCS |
13105 | | fprintf (stderr, "secondary reloc section %s encountered\n", name); |
13106 | | #endif |
13107 | 0 | hdr->sh_type = SHT_SECONDARY_RELOC; |
13108 | 0 | return _bfd_elf_make_section_from_shdr (abfd, hdr, name, shindex); |
13109 | 0 | } |
13110 | | |
13111 | | /* Read in any secondary relocs associated with SEC. */ |
13112 | | |
13113 | | bool |
13114 | | _bfd_elf_slurp_secondary_reloc_section (bfd * abfd, |
13115 | | asection * sec, |
13116 | | asymbol ** symbols, |
13117 | | bool dynamic) |
13118 | 0 | { |
13119 | 0 | const struct elf_backend_data * const ebd = get_elf_backend_data (abfd); |
13120 | 0 | asection * relsec; |
13121 | 0 | bool result = true; |
13122 | 0 | bfd_vma (*r_sym) (bfd_vma); |
13123 | 0 | ufile_ptr filesize; |
13124 | |
|
13125 | 0 | #if BFD_DEFAULT_TARGET_SIZE > 32 |
13126 | 0 | if (bfd_arch_bits_per_address (abfd) != 32) |
13127 | 0 | r_sym = elf64_r_sym; |
13128 | 0 | else |
13129 | 0 | #endif |
13130 | 0 | r_sym = elf32_r_sym; |
13131 | |
|
13132 | 0 | if (!elf_section_data (sec)->has_secondary_relocs) |
13133 | 0 | return true; |
13134 | | |
13135 | | /* Discover if there are any secondary reloc sections |
13136 | | associated with SEC. */ |
13137 | 0 | filesize = bfd_get_file_size (abfd); |
13138 | 0 | for (relsec = abfd->sections; relsec != NULL; relsec = relsec->next) |
13139 | 0 | { |
13140 | 0 | Elf_Internal_Shdr * hdr = & elf_section_data (relsec)->this_hdr; |
13141 | |
|
13142 | 0 | if (hdr->sh_type == SHT_SECONDARY_RELOC |
13143 | 0 | && hdr->sh_info == (unsigned) elf_section_data (sec)->this_idx |
13144 | 0 | && (hdr->sh_entsize == ebd->s->sizeof_rel |
13145 | 0 | || hdr->sh_entsize == ebd->s->sizeof_rela)) |
13146 | 0 | { |
13147 | 0 | bfd_byte * native_relocs; |
13148 | 0 | bfd_byte * native_reloc; |
13149 | 0 | arelent * internal_relocs; |
13150 | 0 | arelent * internal_reloc; |
13151 | 0 | size_t i; |
13152 | 0 | unsigned int entsize; |
13153 | 0 | unsigned int symcount; |
13154 | 0 | bfd_size_type reloc_count; |
13155 | 0 | size_t amt; |
13156 | |
|
13157 | 0 | if (ebd->elf_info_to_howto == NULL) |
13158 | 0 | return false; |
13159 | | |
13160 | | #if DEBUG_SECONDARY_RELOCS |
13161 | | fprintf (stderr, "read secondary relocs for %s from %s\n", |
13162 | | sec->name, relsec->name); |
13163 | | #endif |
13164 | 0 | entsize = hdr->sh_entsize; |
13165 | |
|
13166 | 0 | if (filesize != 0 |
13167 | 0 | && ((ufile_ptr) hdr->sh_offset > filesize |
13168 | 0 | || hdr->sh_size > filesize - hdr->sh_offset)) |
13169 | 0 | { |
13170 | 0 | bfd_set_error (bfd_error_file_truncated); |
13171 | 0 | result = false; |
13172 | 0 | continue; |
13173 | 0 | } |
13174 | | |
13175 | 0 | native_relocs = bfd_malloc (hdr->sh_size); |
13176 | 0 | if (native_relocs == NULL) |
13177 | 0 | { |
13178 | 0 | result = false; |
13179 | 0 | continue; |
13180 | 0 | } |
13181 | | |
13182 | 0 | reloc_count = NUM_SHDR_ENTRIES (hdr); |
13183 | 0 | if (_bfd_mul_overflow (reloc_count, sizeof (arelent), & amt)) |
13184 | 0 | { |
13185 | 0 | free (native_relocs); |
13186 | 0 | bfd_set_error (bfd_error_file_too_big); |
13187 | 0 | result = false; |
13188 | 0 | continue; |
13189 | 0 | } |
13190 | | |
13191 | 0 | internal_relocs = (arelent *) bfd_alloc (abfd, amt); |
13192 | 0 | if (internal_relocs == NULL) |
13193 | 0 | { |
13194 | 0 | free (native_relocs); |
13195 | 0 | result = false; |
13196 | 0 | continue; |
13197 | 0 | } |
13198 | | |
13199 | 0 | if (bfd_seek (abfd, hdr->sh_offset, SEEK_SET) != 0 |
13200 | 0 | || (bfd_bread (native_relocs, hdr->sh_size, abfd) |
13201 | 0 | != hdr->sh_size)) |
13202 | 0 | { |
13203 | 0 | free (native_relocs); |
13204 | | /* The internal_relocs will be freed when |
13205 | | the memory for the bfd is released. */ |
13206 | 0 | result = false; |
13207 | 0 | continue; |
13208 | 0 | } |
13209 | | |
13210 | 0 | if (dynamic) |
13211 | 0 | symcount = bfd_get_dynamic_symcount (abfd); |
13212 | 0 | else |
13213 | 0 | symcount = bfd_get_symcount (abfd); |
13214 | |
|
13215 | 0 | for (i = 0, internal_reloc = internal_relocs, |
13216 | 0 | native_reloc = native_relocs; |
13217 | 0 | i < reloc_count; |
13218 | 0 | i++, internal_reloc++, native_reloc += entsize) |
13219 | 0 | { |
13220 | 0 | bool res; |
13221 | 0 | Elf_Internal_Rela rela; |
13222 | |
|
13223 | 0 | if (entsize == ebd->s->sizeof_rel) |
13224 | 0 | ebd->s->swap_reloc_in (abfd, native_reloc, & rela); |
13225 | 0 | else /* entsize == ebd->s->sizeof_rela */ |
13226 | 0 | ebd->s->swap_reloca_in (abfd, native_reloc, & rela); |
13227 | | |
13228 | | /* The address of an ELF reloc is section relative for an object |
13229 | | file, and absolute for an executable file or shared library. |
13230 | | The address of a normal BFD reloc is always section relative, |
13231 | | and the address of a dynamic reloc is absolute.. */ |
13232 | 0 | if ((abfd->flags & (EXEC_P | DYNAMIC)) == 0) |
13233 | 0 | internal_reloc->address = rela.r_offset; |
13234 | 0 | else |
13235 | 0 | internal_reloc->address = rela.r_offset - sec->vma; |
13236 | |
|
13237 | 0 | if (r_sym (rela.r_info) == STN_UNDEF) |
13238 | 0 | { |
13239 | | /* FIXME: This and the error case below mean that we |
13240 | | have a symbol on relocs that is not elf_symbol_type. */ |
13241 | 0 | internal_reloc->sym_ptr_ptr = |
13242 | 0 | bfd_abs_section_ptr->symbol_ptr_ptr; |
13243 | 0 | } |
13244 | 0 | else if (r_sym (rela.r_info) > symcount) |
13245 | 0 | { |
13246 | 0 | _bfd_error_handler |
13247 | | /* xgettext:c-format */ |
13248 | 0 | (_("%pB(%pA): relocation %zu has invalid symbol index %lu"), |
13249 | 0 | abfd, sec, i, (long) r_sym (rela.r_info)); |
13250 | 0 | bfd_set_error (bfd_error_bad_value); |
13251 | 0 | internal_reloc->sym_ptr_ptr = |
13252 | 0 | bfd_abs_section_ptr->symbol_ptr_ptr; |
13253 | 0 | result = false; |
13254 | 0 | } |
13255 | 0 | else |
13256 | 0 | { |
13257 | 0 | asymbol **ps; |
13258 | |
|
13259 | 0 | ps = symbols + r_sym (rela.r_info) - 1; |
13260 | 0 | internal_reloc->sym_ptr_ptr = ps; |
13261 | | /* Make sure that this symbol is not removed by strip. */ |
13262 | 0 | (*ps)->flags |= BSF_KEEP; |
13263 | 0 | } |
13264 | |
|
13265 | 0 | internal_reloc->addend = rela.r_addend; |
13266 | |
|
13267 | 0 | res = ebd->elf_info_to_howto (abfd, internal_reloc, & rela); |
13268 | 0 | if (! res || internal_reloc->howto == NULL) |
13269 | 0 | { |
13270 | | #if DEBUG_SECONDARY_RELOCS |
13271 | | fprintf (stderr, |
13272 | | "there is no howto associated with reloc %lx\n", |
13273 | | rela.r_info); |
13274 | | #endif |
13275 | 0 | result = false; |
13276 | 0 | } |
13277 | 0 | } |
13278 | |
|
13279 | 0 | free (native_relocs); |
13280 | | /* Store the internal relocs. */ |
13281 | 0 | elf_section_data (relsec)->sec_info = internal_relocs; |
13282 | 0 | } |
13283 | 0 | } |
13284 | | |
13285 | 0 | return result; |
13286 | 0 | } |
13287 | | |
13288 | | /* Set the ELF section header fields of an output secondary reloc section. */ |
13289 | | |
13290 | | bool |
13291 | | _bfd_elf_copy_special_section_fields (const bfd *ibfd ATTRIBUTE_UNUSED, |
13292 | | bfd *obfd ATTRIBUTE_UNUSED, |
13293 | | const Elf_Internal_Shdr *isection, |
13294 | | Elf_Internal_Shdr *osection) |
13295 | 0 | { |
13296 | 0 | asection * isec; |
13297 | 0 | asection * osec; |
13298 | 0 | struct bfd_elf_section_data * esd; |
13299 | |
|
13300 | 0 | if (isection == NULL) |
13301 | 0 | return false; |
13302 | | |
13303 | 0 | if (isection->sh_type != SHT_SECONDARY_RELOC) |
13304 | 0 | return true; |
13305 | | |
13306 | 0 | isec = isection->bfd_section; |
13307 | 0 | if (isec == NULL) |
13308 | 0 | return false; |
13309 | | |
13310 | 0 | osec = osection->bfd_section; |
13311 | 0 | if (osec == NULL) |
13312 | 0 | return false; |
13313 | | |
13314 | 0 | esd = elf_section_data (osec); |
13315 | 0 | BFD_ASSERT (esd->sec_info == NULL); |
13316 | 0 | esd->sec_info = elf_section_data (isec)->sec_info; |
13317 | 0 | osection->sh_type = SHT_RELA; |
13318 | 0 | osection->sh_link = elf_onesymtab (obfd); |
13319 | 0 | if (osection->sh_link == 0) |
13320 | 0 | { |
13321 | | /* There is no symbol table - we are hosed... */ |
13322 | 0 | _bfd_error_handler |
13323 | | /* xgettext:c-format */ |
13324 | 0 | (_("%pB(%pA): link section cannot be set" |
13325 | 0 | " because the output file does not have a symbol table"), |
13326 | 0 | obfd, osec); |
13327 | 0 | bfd_set_error (bfd_error_bad_value); |
13328 | 0 | return false; |
13329 | 0 | } |
13330 | | |
13331 | | /* Find the output section that corresponds to the isection's |
13332 | | sh_info link. */ |
13333 | 0 | if (isection->sh_info == 0 |
13334 | 0 | || isection->sh_info >= elf_numsections (ibfd)) |
13335 | 0 | { |
13336 | 0 | _bfd_error_handler |
13337 | | /* xgettext:c-format */ |
13338 | 0 | (_("%pB(%pA): info section index is invalid"), |
13339 | 0 | obfd, osec); |
13340 | 0 | bfd_set_error (bfd_error_bad_value); |
13341 | 0 | return false; |
13342 | 0 | } |
13343 | | |
13344 | 0 | isection = elf_elfsections (ibfd)[isection->sh_info]; |
13345 | |
|
13346 | 0 | if (isection == NULL |
13347 | 0 | || isection->bfd_section == NULL |
13348 | 0 | || isection->bfd_section->output_section == NULL) |
13349 | 0 | { |
13350 | 0 | _bfd_error_handler |
13351 | | /* xgettext:c-format */ |
13352 | 0 | (_("%pB(%pA): info section index cannot be set" |
13353 | 0 | " because the section is not in the output"), |
13354 | 0 | obfd, osec); |
13355 | 0 | bfd_set_error (bfd_error_bad_value); |
13356 | 0 | return false; |
13357 | 0 | } |
13358 | | |
13359 | 0 | esd = elf_section_data (isection->bfd_section->output_section); |
13360 | 0 | BFD_ASSERT (esd != NULL); |
13361 | 0 | osection->sh_info = esd->this_idx; |
13362 | 0 | esd->has_secondary_relocs = true; |
13363 | | #if DEBUG_SECONDARY_RELOCS |
13364 | | fprintf (stderr, "update header of %s, sh_link = %u, sh_info = %u\n", |
13365 | | osec->name, osection->sh_link, osection->sh_info); |
13366 | | fprintf (stderr, "mark section %s as having secondary relocs\n", |
13367 | | bfd_section_name (isection->bfd_section->output_section)); |
13368 | | #endif |
13369 | |
|
13370 | 0 | return true; |
13371 | 0 | } |
13372 | | |
13373 | | /* Write out a secondary reloc section. |
13374 | | |
13375 | | FIXME: Currently this function can result in a serious performance penalty |
13376 | | for files with secondary relocs and lots of sections. The proper way to |
13377 | | fix this is for _bfd_elf_copy_special_section_fields() to chain secondary |
13378 | | relocs together and then to have this function just walk that chain. */ |
13379 | | |
13380 | | bool |
13381 | | _bfd_elf_write_secondary_reloc_section (bfd *abfd, asection *sec) |
13382 | 0 | { |
13383 | 0 | const struct elf_backend_data * const ebd = get_elf_backend_data (abfd); |
13384 | 0 | bfd_vma addr_offset; |
13385 | 0 | asection * relsec; |
13386 | 0 | bfd_vma (*r_info) (bfd_vma, bfd_vma); |
13387 | 0 | bool result = true; |
13388 | |
|
13389 | 0 | if (sec == NULL) |
13390 | 0 | return false; |
13391 | | |
13392 | 0 | #if BFD_DEFAULT_TARGET_SIZE > 32 |
13393 | 0 | if (bfd_arch_bits_per_address (abfd) != 32) |
13394 | 0 | r_info = elf64_r_info; |
13395 | 0 | else |
13396 | 0 | #endif |
13397 | 0 | r_info = elf32_r_info; |
13398 | | |
13399 | | /* The address of an ELF reloc is section relative for an object |
13400 | | file, and absolute for an executable file or shared library. |
13401 | | The address of a BFD reloc is always section relative. */ |
13402 | 0 | addr_offset = 0; |
13403 | 0 | if ((abfd->flags & (EXEC_P | DYNAMIC)) != 0) |
13404 | 0 | addr_offset = sec->vma; |
13405 | | |
13406 | | /* Discover if there are any secondary reloc sections |
13407 | | associated with SEC. */ |
13408 | 0 | for (relsec = abfd->sections; relsec != NULL; relsec = relsec->next) |
13409 | 0 | { |
13410 | 0 | const struct bfd_elf_section_data * const esd = elf_section_data (relsec); |
13411 | 0 | Elf_Internal_Shdr * const hdr = (Elf_Internal_Shdr *) & esd->this_hdr; |
13412 | |
|
13413 | 0 | if (hdr->sh_type == SHT_RELA |
13414 | 0 | && hdr->sh_info == (unsigned) elf_section_data (sec)->this_idx) |
13415 | 0 | { |
13416 | 0 | asymbol * last_sym; |
13417 | 0 | int last_sym_idx; |
13418 | 0 | size_t reloc_count; |
13419 | 0 | size_t idx; |
13420 | 0 | bfd_size_type entsize; |
13421 | 0 | arelent * src_irel; |
13422 | 0 | bfd_byte * dst_rela; |
13423 | |
|
13424 | 0 | if (hdr->contents != NULL) |
13425 | 0 | { |
13426 | 0 | _bfd_error_handler |
13427 | | /* xgettext:c-format */ |
13428 | 0 | (_("%pB(%pA): error: secondary reloc section processed twice"), |
13429 | 0 | abfd, relsec); |
13430 | 0 | bfd_set_error (bfd_error_bad_value); |
13431 | 0 | result = false; |
13432 | 0 | continue; |
13433 | 0 | } |
13434 | | |
13435 | 0 | entsize = hdr->sh_entsize; |
13436 | 0 | if (entsize == 0) |
13437 | 0 | { |
13438 | 0 | _bfd_error_handler |
13439 | | /* xgettext:c-format */ |
13440 | 0 | (_("%pB(%pA): error: secondary reloc section" |
13441 | 0 | " has zero sized entries"), |
13442 | 0 | abfd, relsec); |
13443 | 0 | bfd_set_error (bfd_error_bad_value); |
13444 | 0 | result = false; |
13445 | 0 | continue; |
13446 | 0 | } |
13447 | 0 | else if (entsize != ebd->s->sizeof_rel |
13448 | 0 | && entsize != ebd->s->sizeof_rela) |
13449 | 0 | { |
13450 | 0 | _bfd_error_handler |
13451 | | /* xgettext:c-format */ |
13452 | 0 | (_("%pB(%pA): error: secondary reloc section" |
13453 | 0 | " has non-standard sized entries"), |
13454 | 0 | abfd, relsec); |
13455 | 0 | bfd_set_error (bfd_error_bad_value); |
13456 | 0 | result = false; |
13457 | 0 | continue; |
13458 | 0 | } |
13459 | | |
13460 | 0 | reloc_count = hdr->sh_size / entsize; |
13461 | 0 | hdr->sh_size = entsize * reloc_count; |
13462 | 0 | if (reloc_count == 0) |
13463 | 0 | { |
13464 | 0 | _bfd_error_handler |
13465 | | /* xgettext:c-format */ |
13466 | 0 | (_("%pB(%pA): error: secondary reloc section is empty!"), |
13467 | 0 | abfd, relsec); |
13468 | 0 | bfd_set_error (bfd_error_bad_value); |
13469 | 0 | result = false; |
13470 | 0 | continue; |
13471 | 0 | } |
13472 | | |
13473 | 0 | hdr->contents = bfd_alloc (abfd, hdr->sh_size); |
13474 | 0 | if (hdr->contents == NULL) |
13475 | 0 | continue; |
13476 | | |
13477 | | #if DEBUG_SECONDARY_RELOCS |
13478 | | fprintf (stderr, "write %u secondary relocs for %s from %s\n", |
13479 | | reloc_count, sec->name, relsec->name); |
13480 | | #endif |
13481 | 0 | last_sym = NULL; |
13482 | 0 | last_sym_idx = 0; |
13483 | 0 | dst_rela = hdr->contents; |
13484 | 0 | src_irel = (arelent *) esd->sec_info; |
13485 | 0 | if (src_irel == NULL) |
13486 | 0 | { |
13487 | 0 | _bfd_error_handler |
13488 | | /* xgettext:c-format */ |
13489 | 0 | (_("%pB(%pA): error: internal relocs missing" |
13490 | 0 | " for secondary reloc section"), |
13491 | 0 | abfd, relsec); |
13492 | 0 | bfd_set_error (bfd_error_bad_value); |
13493 | 0 | result = false; |
13494 | 0 | continue; |
13495 | 0 | } |
13496 | | |
13497 | 0 | for (idx = 0; idx < reloc_count; idx++, dst_rela += entsize) |
13498 | 0 | { |
13499 | 0 | Elf_Internal_Rela src_rela; |
13500 | 0 | arelent *ptr; |
13501 | 0 | asymbol *sym; |
13502 | 0 | int n; |
13503 | |
|
13504 | 0 | ptr = src_irel + idx; |
13505 | 0 | if (ptr == NULL) |
13506 | 0 | { |
13507 | 0 | _bfd_error_handler |
13508 | | /* xgettext:c-format */ |
13509 | 0 | (_("%pB(%pA): error: reloc table entry %zu is empty"), |
13510 | 0 | abfd, relsec, idx); |
13511 | 0 | bfd_set_error (bfd_error_bad_value); |
13512 | 0 | result = false; |
13513 | 0 | break; |
13514 | 0 | } |
13515 | | |
13516 | 0 | if (ptr->sym_ptr_ptr == NULL) |
13517 | 0 | { |
13518 | | /* FIXME: Is this an error ? */ |
13519 | 0 | n = 0; |
13520 | 0 | } |
13521 | 0 | else |
13522 | 0 | { |
13523 | 0 | sym = *ptr->sym_ptr_ptr; |
13524 | |
|
13525 | 0 | if (sym == last_sym) |
13526 | 0 | n = last_sym_idx; |
13527 | 0 | else |
13528 | 0 | { |
13529 | 0 | n = _bfd_elf_symbol_from_bfd_symbol (abfd, & sym); |
13530 | 0 | if (n < 0) |
13531 | 0 | { |
13532 | 0 | _bfd_error_handler |
13533 | | /* xgettext:c-format */ |
13534 | 0 | (_("%pB(%pA): error: secondary reloc %zu" |
13535 | 0 | " references a missing symbol"), |
13536 | 0 | abfd, relsec, idx); |
13537 | 0 | bfd_set_error (bfd_error_bad_value); |
13538 | 0 | result = false; |
13539 | 0 | n = 0; |
13540 | 0 | } |
13541 | |
|
13542 | 0 | last_sym = sym; |
13543 | 0 | last_sym_idx = n; |
13544 | 0 | } |
13545 | |
|
13546 | 0 | if (sym->the_bfd != NULL |
13547 | 0 | && sym->the_bfd->xvec != abfd->xvec |
13548 | 0 | && ! _bfd_elf_validate_reloc (abfd, ptr)) |
13549 | 0 | { |
13550 | 0 | _bfd_error_handler |
13551 | | /* xgettext:c-format */ |
13552 | 0 | (_("%pB(%pA): error: secondary reloc %zu" |
13553 | 0 | " references a deleted symbol"), |
13554 | 0 | abfd, relsec, idx); |
13555 | 0 | bfd_set_error (bfd_error_bad_value); |
13556 | 0 | result = false; |
13557 | 0 | n = 0; |
13558 | 0 | } |
13559 | 0 | } |
13560 | |
|
13561 | 0 | src_rela.r_offset = ptr->address + addr_offset; |
13562 | 0 | if (ptr->howto == NULL) |
13563 | 0 | { |
13564 | 0 | _bfd_error_handler |
13565 | | /* xgettext:c-format */ |
13566 | 0 | (_("%pB(%pA): error: secondary reloc %zu" |
13567 | 0 | " is of an unknown type"), |
13568 | 0 | abfd, relsec, idx); |
13569 | 0 | bfd_set_error (bfd_error_bad_value); |
13570 | 0 | result = false; |
13571 | 0 | src_rela.r_info = r_info (0, 0); |
13572 | 0 | } |
13573 | 0 | else |
13574 | 0 | src_rela.r_info = r_info (n, ptr->howto->type); |
13575 | 0 | src_rela.r_addend = ptr->addend; |
13576 | |
|
13577 | 0 | if (entsize == ebd->s->sizeof_rel) |
13578 | 0 | ebd->s->swap_reloc_out (abfd, &src_rela, dst_rela); |
13579 | 0 | else /* entsize == ebd->s->sizeof_rela */ |
13580 | 0 | ebd->s->swap_reloca_out (abfd, &src_rela, dst_rela); |
13581 | 0 | } |
13582 | 0 | } |
13583 | 0 | } |
13584 | |
|
13585 | 0 | return result; |
13586 | 0 | } |