Fix read-after-free error in readelf when processing multiple, relocated sections...
[binutils-gdb.git] / binutils / readelf.c
1 /* readelf.c -- display contents of an ELF format file
2 Copyright (C) 1998-2017 Free Software Foundation, Inc.
3
4 Originally developed by Eric Youngdale <eric@andante.jic.com>
5 Modifications by Nick Clifton <nickc@redhat.com>
6
7 This file is part of GNU Binutils.
8
9 This program is free software; you can redistribute it and/or modify
10 it under the terms of the GNU General Public License as published by
11 the Free Software Foundation; either version 3 of the License, or
12 (at your option) any later version.
13
14 This program is distributed in the hope that it will be useful,
15 but WITHOUT ANY WARRANTY; without even the implied warranty of
16 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 GNU General Public License for more details.
18
19 You should have received a copy of the GNU General Public License
20 along with this program; if not, write to the Free Software
21 Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston, MA
22 02110-1301, USA. */
23 \f
24 /* The difference between readelf and objdump:
25
26 Both programs are capable of displaying the contents of ELF format files,
27 so why does the binutils project have two file dumpers ?
28
29 The reason is that objdump sees an ELF file through a BFD filter of the
30 world; if BFD has a bug where, say, it disagrees about a machine constant
31 in e_flags, then the odds are good that it will remain internally
32 consistent. The linker sees it the BFD way, objdump sees it the BFD way,
33 GAS sees it the BFD way. There was need for a tool to go find out what
34 the file actually says.
35
36 This is why the readelf program does not link against the BFD library - it
37 exists as an independent program to help verify the correct working of BFD.
38
39 There is also the case that readelf can provide more information about an
40 ELF file than is provided by objdump. In particular it can display DWARF
41 debugging information which (at the moment) objdump cannot. */
42 \f
43 #include "sysdep.h"
44 #include <assert.h>
45 #include <time.h>
46 #include <zlib.h>
47 #ifdef HAVE_WCHAR_H
48 #include <wchar.h>
49 #endif
50
51 #if __GNUC__ >= 2
52 /* Define BFD64 here, even if our default architecture is 32 bit ELF
53 as this will allow us to read in and parse 64bit and 32bit ELF files.
54 Only do this if we believe that the compiler can support a 64 bit
55 data type. For now we only rely on GCC being able to do this. */
56 #define BFD64
57 #endif
58
59 #include "bfd.h"
60 #include "bucomm.h"
61 #include "elfcomm.h"
62 #include "dwarf.h"
63
64 #include "elf/common.h"
65 #include "elf/external.h"
66 #include "elf/internal.h"
67
68
69 /* Included here, before RELOC_MACROS_GEN_FUNC is defined, so that
70 we can obtain the H8 reloc numbers. We need these for the
71 get_reloc_size() function. We include h8.h again after defining
72 RELOC_MACROS_GEN_FUNC so that we get the naming function as well. */
73
74 #include "elf/h8.h"
75 #undef _ELF_H8_H
76
77 /* Undo the effects of #including reloc-macros.h. */
78
79 #undef START_RELOC_NUMBERS
80 #undef RELOC_NUMBER
81 #undef FAKE_RELOC
82 #undef EMPTY_RELOC
83 #undef END_RELOC_NUMBERS
84 #undef _RELOC_MACROS_H
85
86 /* The following headers use the elf/reloc-macros.h file to
87 automatically generate relocation recognition functions
88 such as elf_mips_reloc_type() */
89
90 #define RELOC_MACROS_GEN_FUNC
91
92 #include "elf/aarch64.h"
93 #include "elf/alpha.h"
94 #include "elf/arc.h"
95 #include "elf/arm.h"
96 #include "elf/avr.h"
97 #include "elf/bfin.h"
98 #include "elf/cr16.h"
99 #include "elf/cris.h"
100 #include "elf/crx.h"
101 #include "elf/d10v.h"
102 #include "elf/d30v.h"
103 #include "elf/dlx.h"
104 #include "elf/epiphany.h"
105 #include "elf/fr30.h"
106 #include "elf/frv.h"
107 #include "elf/ft32.h"
108 #include "elf/h8.h"
109 #include "elf/hppa.h"
110 #include "elf/i386.h"
111 #include "elf/i370.h"
112 #include "elf/i860.h"
113 #include "elf/i960.h"
114 #include "elf/ia64.h"
115 #include "elf/ip2k.h"
116 #include "elf/lm32.h"
117 #include "elf/iq2000.h"
118 #include "elf/m32c.h"
119 #include "elf/m32r.h"
120 #include "elf/m68k.h"
121 #include "elf/m68hc11.h"
122 #include "elf/mcore.h"
123 #include "elf/mep.h"
124 #include "elf/metag.h"
125 #include "elf/microblaze.h"
126 #include "elf/mips.h"
127 #include "elf/riscv.h"
128 #include "elf/mmix.h"
129 #include "elf/mn10200.h"
130 #include "elf/mn10300.h"
131 #include "elf/moxie.h"
132 #include "elf/mt.h"
133 #include "elf/msp430.h"
134 #include "elf/nds32.h"
135 #include "elf/nios2.h"
136 #include "elf/or1k.h"
137 #include "elf/pj.h"
138 #include "elf/ppc.h"
139 #include "elf/ppc64.h"
140 #include "elf/pru.h"
141 #include "elf/rl78.h"
142 #include "elf/rx.h"
143 #include "elf/s390.h"
144 #include "elf/score.h"
145 #include "elf/sh.h"
146 #include "elf/sparc.h"
147 #include "elf/spu.h"
148 #include "elf/tic6x.h"
149 #include "elf/tilegx.h"
150 #include "elf/tilepro.h"
151 #include "elf/v850.h"
152 #include "elf/vax.h"
153 #include "elf/visium.h"
154 #include "elf/x86-64.h"
155 #include "elf/xc16x.h"
156 #include "elf/xgate.h"
157 #include "elf/xstormy16.h"
158 #include "elf/xtensa.h"
159
160 #include "getopt.h"
161 #include "libiberty.h"
162 #include "safe-ctype.h"
163 #include "filenames.h"
164
165 #ifndef offsetof
166 #define offsetof(TYPE, MEMBER) ((size_t) &(((TYPE *) 0)->MEMBER))
167 #endif
168
169 typedef struct elf_section_list
170 {
171 Elf_Internal_Shdr * hdr;
172 struct elf_section_list * next;
173 } elf_section_list;
174
175 char * program_name = "readelf";
176 static unsigned long archive_file_offset;
177 static unsigned long archive_file_size;
178 static bfd_size_type current_file_size;
179 static unsigned long dynamic_addr;
180 static bfd_size_type dynamic_size;
181 static size_t dynamic_nent;
182 static char * dynamic_strings;
183 static unsigned long dynamic_strings_length;
184 static char * string_table;
185 static unsigned long string_table_length;
186 static unsigned long num_dynamic_syms;
187 static Elf_Internal_Sym * dynamic_symbols;
188 static Elf_Internal_Syminfo * dynamic_syminfo;
189 static unsigned long dynamic_syminfo_offset;
190 static unsigned int dynamic_syminfo_nent;
191 static char program_interpreter[PATH_MAX];
192 static bfd_vma dynamic_info[DT_ENCODING];
193 static bfd_vma dynamic_info_DT_GNU_HASH;
194 static bfd_vma version_info[16];
195 static Elf_Internal_Ehdr elf_header;
196 static Elf_Internal_Shdr * section_headers;
197 static Elf_Internal_Phdr * program_headers;
198 static Elf_Internal_Dyn * dynamic_section;
199 static elf_section_list * symtab_shndx_list;
200 static int show_name;
201 static int do_dynamic;
202 static int do_syms;
203 static int do_dyn_syms;
204 static int do_reloc;
205 static int do_sections;
206 static int do_section_groups;
207 static int do_section_details;
208 static int do_segments;
209 static int do_unwind;
210 static int do_using_dynamic;
211 static int do_header;
212 static int do_dump;
213 static int do_version;
214 static int do_histogram;
215 static int do_debugging;
216 static int do_arch;
217 static int do_notes;
218 static int do_archive_index;
219 static int is_32bit_elf;
220 static int decompress_dumps;
221
222 struct group_list
223 {
224 struct group_list * next;
225 unsigned int section_index;
226 };
227
228 struct group
229 {
230 struct group_list * root;
231 unsigned int group_index;
232 };
233
234 static size_t group_count;
235 static struct group * section_groups;
236 static struct group ** section_headers_groups;
237
238
239 /* Flag bits indicating particular types of dump. */
240 #define HEX_DUMP (1 << 0) /* The -x command line switch. */
241 #define DISASS_DUMP (1 << 1) /* The -i command line switch. */
242 #define DEBUG_DUMP (1 << 2) /* The -w command line switch. */
243 #define STRING_DUMP (1 << 3) /* The -p command line switch. */
244 #define RELOC_DUMP (1 << 4) /* The -R command line switch. */
245
246 typedef unsigned char dump_type;
247
248 /* A linked list of the section names for which dumps were requested. */
249 struct dump_list_entry
250 {
251 char * name;
252 dump_type type;
253 struct dump_list_entry * next;
254 };
255 static struct dump_list_entry * dump_sects_byname;
256
257 /* A dynamic array of flags indicating for which sections a dump
258 has been requested via command line switches. */
259 static dump_type * cmdline_dump_sects = NULL;
260 static unsigned int num_cmdline_dump_sects = 0;
261
262 /* A dynamic array of flags indicating for which sections a dump of
263 some kind has been requested. It is reset on a per-object file
264 basis and then initialised from the cmdline_dump_sects array,
265 the results of interpreting the -w switch, and the
266 dump_sects_byname list. */
267 static dump_type * dump_sects = NULL;
268 static unsigned int num_dump_sects = 0;
269
270
271 /* How to print a vma value. */
272 typedef enum print_mode
273 {
274 HEX,
275 DEC,
276 DEC_5,
277 UNSIGNED,
278 PREFIX_HEX,
279 FULL_HEX,
280 LONG_HEX
281 }
282 print_mode;
283
284 /* Versioned symbol info. */
285 enum versioned_symbol_info
286 {
287 symbol_undefined,
288 symbol_hidden,
289 symbol_public
290 };
291
292 static const char *get_symbol_version_string
293 (FILE *file, int is_dynsym, const char *strtab,
294 unsigned long int strtab_size, unsigned int si,
295 Elf_Internal_Sym *psym, enum versioned_symbol_info *sym_info,
296 unsigned short *vna_other);
297
298 #define UNKNOWN -1
299
300 #define SECTION_NAME(X) \
301 ((X) == NULL ? _("<none>") \
302 : string_table == NULL ? _("<no-name>") \
303 : ((X)->sh_name >= string_table_length ? _("<corrupt>") \
304 : string_table + (X)->sh_name))
305
306 #define DT_VERSIONTAGIDX(tag) (DT_VERNEEDNUM - (tag)) /* Reverse order! */
307
308 #define GET_ELF_SYMBOLS(file, section, sym_count) \
309 (is_32bit_elf ? get_32bit_elf_symbols (file, section, sym_count) \
310 : get_64bit_elf_symbols (file, section, sym_count))
311
312 #define VALID_DYNAMIC_NAME(offset) ((dynamic_strings != NULL) && (offset < dynamic_strings_length))
313 /* GET_DYNAMIC_NAME asssumes that VALID_DYNAMIC_NAME has
314 already been called and verified that the string exists. */
315 #define GET_DYNAMIC_NAME(offset) (dynamic_strings + offset)
316
317 #define REMOVE_ARCH_BITS(ADDR) \
318 do \
319 { \
320 if (elf_header.e_machine == EM_ARM) \
321 (ADDR) &= ~1; \
322 } \
323 while (0)
324 \f
325 /* Retrieve NMEMB structures, each SIZE bytes long from FILE starting at OFFSET +
326 the offset of the current archive member, if we are examining an archive.
327 Put the retrieved data into VAR, if it is not NULL. Otherwise allocate a buffer
328 using malloc and fill that. In either case return the pointer to the start of
329 the retrieved data or NULL if something went wrong. If something does go wrong
330 and REASON is not NULL then emit an error message using REASON as part of the
331 context. */
332
333 static void *
334 get_data (void * var, FILE * file, unsigned long offset, bfd_size_type size,
335 bfd_size_type nmemb, const char * reason)
336 {
337 void * mvar;
338 bfd_size_type amt = size * nmemb;
339
340 if (size == 0 || nmemb == 0)
341 return NULL;
342
343 /* If the size_t type is smaller than the bfd_size_type, eg because
344 you are building a 32-bit tool on a 64-bit host, then make sure
345 that when the sizes are cast to (size_t) no information is lost. */
346 if (sizeof (size_t) < sizeof (bfd_size_type)
347 && ( (bfd_size_type) ((size_t) size) != size
348 || (bfd_size_type) ((size_t) nmemb) != nmemb))
349 {
350 if (reason)
351 error (_("Size truncation prevents reading 0x%" BFD_VMA_FMT "x"
352 " elements of size 0x%" BFD_VMA_FMT "x for %s\n"),
353 nmemb, size, reason);
354 return NULL;
355 }
356
357 /* Check for size overflow. */
358 if (amt < nmemb)
359 {
360 if (reason)
361 error (_("Size overflow prevents reading 0x%" BFD_VMA_FMT "x"
362 " elements of size 0x%" BFD_VMA_FMT "x for %s\n"),
363 nmemb, size, reason);
364 return NULL;
365 }
366
367 /* Be kind to memory chekers (eg valgrind, address sanitizer) by not
368 attempting to allocate memory when the read is bound to fail. */
369 if (amt > current_file_size
370 || offset + archive_file_offset + amt > current_file_size)
371 {
372 if (reason)
373 error (_("Reading 0x%" BFD_VMA_FMT "x"
374 " bytes extends past end of file for %s\n"),
375 amt, reason);
376 return NULL;
377 }
378
379 if (fseek (file, archive_file_offset + offset, SEEK_SET))
380 {
381 if (reason)
382 error (_("Unable to seek to 0x%lx for %s\n"),
383 archive_file_offset + offset, reason);
384 return NULL;
385 }
386
387 mvar = var;
388 if (mvar == NULL)
389 {
390 /* Check for overflow. */
391 if (nmemb < (~(bfd_size_type) 0 - 1) / size)
392 /* + 1 so that we can '\0' terminate invalid string table sections. */
393 mvar = malloc ((size_t) amt + 1);
394
395 if (mvar == NULL)
396 {
397 if (reason)
398 error (_("Out of memory allocating 0x%" BFD_VMA_FMT "x"
399 " bytes for %s\n"),
400 amt, reason);
401 return NULL;
402 }
403
404 ((char *) mvar)[amt] = '\0';
405 }
406
407 if (fread (mvar, (size_t) size, (size_t) nmemb, file) != nmemb)
408 {
409 if (reason)
410 error (_("Unable to read in 0x%" BFD_VMA_FMT "x bytes of %s\n"),
411 amt, reason);
412 if (mvar != var)
413 free (mvar);
414 return NULL;
415 }
416
417 return mvar;
418 }
419
420 /* Print a VMA value. */
421
422 static int
423 print_vma (bfd_vma vma, print_mode mode)
424 {
425 int nc = 0;
426
427 switch (mode)
428 {
429 case FULL_HEX:
430 nc = printf ("0x");
431 /* Fall through. */
432
433 case LONG_HEX:
434 #ifdef BFD64
435 if (is_32bit_elf)
436 return nc + printf ("%8.8" BFD_VMA_FMT "x", vma);
437 #endif
438 printf_vma (vma);
439 return nc + 16;
440
441 case DEC_5:
442 if (vma <= 99999)
443 return printf ("%5" BFD_VMA_FMT "d", vma);
444 /* Fall through. */
445
446 case PREFIX_HEX:
447 nc = printf ("0x");
448 /* Fall through. */
449
450 case HEX:
451 return nc + printf ("%" BFD_VMA_FMT "x", vma);
452
453 case DEC:
454 return printf ("%" BFD_VMA_FMT "d", vma);
455
456 case UNSIGNED:
457 return printf ("%" BFD_VMA_FMT "u", vma);
458 }
459 return 0;
460 }
461
462 /* Display a symbol on stdout. Handles the display of control characters and
463 multibye characters (assuming the host environment supports them).
464
465 Display at most abs(WIDTH) characters, truncating as necessary, unless do_wide is true.
466
467 If WIDTH is negative then ensure that the output is at least (- WIDTH) characters,
468 padding as necessary.
469
470 Returns the number of emitted characters. */
471
472 static unsigned int
473 print_symbol (int width, const char *symbol)
474 {
475 bfd_boolean extra_padding = FALSE;
476 int num_printed = 0;
477 #ifdef HAVE_MBSTATE_T
478 mbstate_t state;
479 #endif
480 int width_remaining;
481
482 if (width < 0)
483 {
484 /* Keep the width positive. This also helps. */
485 width = - width;
486 extra_padding = TRUE;
487 }
488 assert (width != 0);
489
490 if (do_wide)
491 /* Set the remaining width to a very large value.
492 This simplifies the code below. */
493 width_remaining = INT_MAX;
494 else
495 width_remaining = width;
496
497 #ifdef HAVE_MBSTATE_T
498 /* Initialise the multibyte conversion state. */
499 memset (& state, 0, sizeof (state));
500 #endif
501
502 while (width_remaining)
503 {
504 size_t n;
505 const char c = *symbol++;
506
507 if (c == 0)
508 break;
509
510 /* Do not print control characters directly as they can affect terminal
511 settings. Such characters usually appear in the names generated
512 by the assembler for local labels. */
513 if (ISCNTRL (c))
514 {
515 if (width_remaining < 2)
516 break;
517
518 printf ("^%c", c + 0x40);
519 width_remaining -= 2;
520 num_printed += 2;
521 }
522 else if (ISPRINT (c))
523 {
524 putchar (c);
525 width_remaining --;
526 num_printed ++;
527 }
528 else
529 {
530 #ifdef HAVE_MBSTATE_T
531 wchar_t w;
532 #endif
533 /* Let printf do the hard work of displaying multibyte characters. */
534 printf ("%.1s", symbol - 1);
535 width_remaining --;
536 num_printed ++;
537
538 #ifdef HAVE_MBSTATE_T
539 /* Try to find out how many bytes made up the character that was
540 just printed. Advance the symbol pointer past the bytes that
541 were displayed. */
542 n = mbrtowc (& w, symbol - 1, MB_CUR_MAX, & state);
543 #else
544 n = 1;
545 #endif
546 if (n != (size_t) -1 && n != (size_t) -2 && n > 0)
547 symbol += (n - 1);
548 }
549 }
550
551 if (extra_padding && num_printed < width)
552 {
553 /* Fill in the remaining spaces. */
554 printf ("%-*s", width - num_printed, " ");
555 num_printed = width;
556 }
557
558 return num_printed;
559 }
560
561 /* Returns a pointer to a static buffer containing a printable version of
562 the given section's name. Like print_symbol, except that it does not try
563 to print multibyte characters, it just interprets them as hex values. */
564
565 static const char *
566 printable_section_name (const Elf_Internal_Shdr * sec)
567 {
568 #define MAX_PRINT_SEC_NAME_LEN 128
569 static char sec_name_buf [MAX_PRINT_SEC_NAME_LEN + 1];
570 const char * name = SECTION_NAME (sec);
571 char * buf = sec_name_buf;
572 char c;
573 unsigned int remaining = MAX_PRINT_SEC_NAME_LEN;
574
575 while ((c = * name ++) != 0)
576 {
577 if (ISCNTRL (c))
578 {
579 if (remaining < 2)
580 break;
581
582 * buf ++ = '^';
583 * buf ++ = c + 0x40;
584 remaining -= 2;
585 }
586 else if (ISPRINT (c))
587 {
588 * buf ++ = c;
589 remaining -= 1;
590 }
591 else
592 {
593 static char hex[17] = "0123456789ABCDEF";
594
595 if (remaining < 4)
596 break;
597 * buf ++ = '<';
598 * buf ++ = hex[(c & 0xf0) >> 4];
599 * buf ++ = hex[c & 0x0f];
600 * buf ++ = '>';
601 remaining -= 4;
602 }
603
604 if (remaining == 0)
605 break;
606 }
607
608 * buf = 0;
609 return sec_name_buf;
610 }
611
612 static const char *
613 printable_section_name_from_index (unsigned long ndx)
614 {
615 if (ndx >= elf_header.e_shnum)
616 return _("<corrupt>");
617
618 return printable_section_name (section_headers + ndx);
619 }
620
621 /* Return a pointer to section NAME, or NULL if no such section exists. */
622
623 static Elf_Internal_Shdr *
624 find_section (const char * name)
625 {
626 unsigned int i;
627
628 for (i = 0; i < elf_header.e_shnum; i++)
629 if (streq (SECTION_NAME (section_headers + i), name))
630 return section_headers + i;
631
632 return NULL;
633 }
634
635 /* Return a pointer to a section containing ADDR, or NULL if no such
636 section exists. */
637
638 static Elf_Internal_Shdr *
639 find_section_by_address (bfd_vma addr)
640 {
641 unsigned int i;
642
643 for (i = 0; i < elf_header.e_shnum; i++)
644 {
645 Elf_Internal_Shdr *sec = section_headers + i;
646 if (addr >= sec->sh_addr && addr < sec->sh_addr + sec->sh_size)
647 return sec;
648 }
649
650 return NULL;
651 }
652
653 static Elf_Internal_Shdr *
654 find_section_by_type (unsigned int type)
655 {
656 unsigned int i;
657
658 for (i = 0; i < elf_header.e_shnum; i++)
659 {
660 Elf_Internal_Shdr *sec = section_headers + i;
661 if (sec->sh_type == type)
662 return sec;
663 }
664
665 return NULL;
666 }
667
668 /* Return a pointer to section NAME, or NULL if no such section exists,
669 restricted to the list of sections given in SET. */
670
671 static Elf_Internal_Shdr *
672 find_section_in_set (const char * name, unsigned int * set)
673 {
674 unsigned int i;
675
676 if (set != NULL)
677 {
678 while ((i = *set++) > 0)
679 if (streq (SECTION_NAME (section_headers + i), name))
680 return section_headers + i;
681 }
682
683 return find_section (name);
684 }
685
686 /* Read an unsigned LEB128 encoded value from p. Set *PLEN to the number of
687 bytes read. */
688
689 static inline unsigned long
690 read_uleb128 (unsigned char *data,
691 unsigned int *length_return,
692 const unsigned char * const end)
693 {
694 return read_leb128 (data, length_return, FALSE, end);
695 }
696
697 /* Return true if the current file is for IA-64 machine and OpenVMS ABI.
698 This OS has so many departures from the ELF standard that we test it at
699 many places. */
700
701 static inline int
702 is_ia64_vms (void)
703 {
704 return elf_header.e_machine == EM_IA_64
705 && elf_header.e_ident[EI_OSABI] == ELFOSABI_OPENVMS;
706 }
707
708 /* Guess the relocation size commonly used by the specific machines. */
709
710 static int
711 guess_is_rela (unsigned int e_machine)
712 {
713 switch (e_machine)
714 {
715 /* Targets that use REL relocations. */
716 case EM_386:
717 case EM_IAMCU:
718 case EM_960:
719 case EM_ARM:
720 case EM_D10V:
721 case EM_CYGNUS_D10V:
722 case EM_DLX:
723 case EM_MIPS:
724 case EM_MIPS_RS3_LE:
725 case EM_CYGNUS_M32R:
726 case EM_SCORE:
727 case EM_XGATE:
728 return FALSE;
729
730 /* Targets that use RELA relocations. */
731 case EM_68K:
732 case EM_860:
733 case EM_AARCH64:
734 case EM_ADAPTEVA_EPIPHANY:
735 case EM_ALPHA:
736 case EM_ALTERA_NIOS2:
737 case EM_ARC:
738 case EM_ARC_COMPACT:
739 case EM_ARC_COMPACT2:
740 case EM_AVR:
741 case EM_AVR_OLD:
742 case EM_BLACKFIN:
743 case EM_CR16:
744 case EM_CRIS:
745 case EM_CRX:
746 case EM_D30V:
747 case EM_CYGNUS_D30V:
748 case EM_FR30:
749 case EM_FT32:
750 case EM_CYGNUS_FR30:
751 case EM_CYGNUS_FRV:
752 case EM_H8S:
753 case EM_H8_300:
754 case EM_H8_300H:
755 case EM_IA_64:
756 case EM_IP2K:
757 case EM_IP2K_OLD:
758 case EM_IQ2000:
759 case EM_LATTICEMICO32:
760 case EM_M32C_OLD:
761 case EM_M32C:
762 case EM_M32R:
763 case EM_MCORE:
764 case EM_CYGNUS_MEP:
765 case EM_METAG:
766 case EM_MMIX:
767 case EM_MN10200:
768 case EM_CYGNUS_MN10200:
769 case EM_MN10300:
770 case EM_CYGNUS_MN10300:
771 case EM_MOXIE:
772 case EM_MSP430:
773 case EM_MSP430_OLD:
774 case EM_MT:
775 case EM_NDS32:
776 case EM_NIOS32:
777 case EM_OR1K:
778 case EM_PPC64:
779 case EM_PPC:
780 case EM_TI_PRU:
781 case EM_RISCV:
782 case EM_RL78:
783 case EM_RX:
784 case EM_S390:
785 case EM_S390_OLD:
786 case EM_SH:
787 case EM_SPARC:
788 case EM_SPARC32PLUS:
789 case EM_SPARCV9:
790 case EM_SPU:
791 case EM_TI_C6000:
792 case EM_TILEGX:
793 case EM_TILEPRO:
794 case EM_V800:
795 case EM_V850:
796 case EM_CYGNUS_V850:
797 case EM_VAX:
798 case EM_VISIUM:
799 case EM_X86_64:
800 case EM_L1OM:
801 case EM_K1OM:
802 case EM_XSTORMY16:
803 case EM_XTENSA:
804 case EM_XTENSA_OLD:
805 case EM_MICROBLAZE:
806 case EM_MICROBLAZE_OLD:
807 return TRUE;
808
809 case EM_68HC05:
810 case EM_68HC08:
811 case EM_68HC11:
812 case EM_68HC16:
813 case EM_FX66:
814 case EM_ME16:
815 case EM_MMA:
816 case EM_NCPU:
817 case EM_NDR1:
818 case EM_PCP:
819 case EM_ST100:
820 case EM_ST19:
821 case EM_ST7:
822 case EM_ST9PLUS:
823 case EM_STARCORE:
824 case EM_SVX:
825 case EM_TINYJ:
826 default:
827 warn (_("Don't know about relocations on this machine architecture\n"));
828 return FALSE;
829 }
830 }
831
832 static int
833 slurp_rela_relocs (FILE * file,
834 unsigned long rel_offset,
835 unsigned long rel_size,
836 Elf_Internal_Rela ** relasp,
837 unsigned long * nrelasp)
838 {
839 Elf_Internal_Rela * relas;
840 size_t nrelas;
841 unsigned int i;
842
843 if (is_32bit_elf)
844 {
845 Elf32_External_Rela * erelas;
846
847 erelas = (Elf32_External_Rela *) get_data (NULL, file, rel_offset, 1,
848 rel_size, _("32-bit relocation data"));
849 if (!erelas)
850 return 0;
851
852 nrelas = rel_size / sizeof (Elf32_External_Rela);
853
854 relas = (Elf_Internal_Rela *) cmalloc (nrelas,
855 sizeof (Elf_Internal_Rela));
856
857 if (relas == NULL)
858 {
859 free (erelas);
860 error (_("out of memory parsing relocs\n"));
861 return 0;
862 }
863
864 for (i = 0; i < nrelas; i++)
865 {
866 relas[i].r_offset = BYTE_GET (erelas[i].r_offset);
867 relas[i].r_info = BYTE_GET (erelas[i].r_info);
868 relas[i].r_addend = BYTE_GET_SIGNED (erelas[i].r_addend);
869 }
870
871 free (erelas);
872 }
873 else
874 {
875 Elf64_External_Rela * erelas;
876
877 erelas = (Elf64_External_Rela *) get_data (NULL, file, rel_offset, 1,
878 rel_size, _("64-bit relocation data"));
879 if (!erelas)
880 return 0;
881
882 nrelas = rel_size / sizeof (Elf64_External_Rela);
883
884 relas = (Elf_Internal_Rela *) cmalloc (nrelas,
885 sizeof (Elf_Internal_Rela));
886
887 if (relas == NULL)
888 {
889 free (erelas);
890 error (_("out of memory parsing relocs\n"));
891 return 0;
892 }
893
894 for (i = 0; i < nrelas; i++)
895 {
896 relas[i].r_offset = BYTE_GET (erelas[i].r_offset);
897 relas[i].r_info = BYTE_GET (erelas[i].r_info);
898 relas[i].r_addend = BYTE_GET_SIGNED (erelas[i].r_addend);
899
900 /* The #ifdef BFD64 below is to prevent a compile time
901 warning. We know that if we do not have a 64 bit data
902 type that we will never execute this code anyway. */
903 #ifdef BFD64
904 if (elf_header.e_machine == EM_MIPS
905 && elf_header.e_ident[EI_DATA] != ELFDATA2MSB)
906 {
907 /* In little-endian objects, r_info isn't really a
908 64-bit little-endian value: it has a 32-bit
909 little-endian symbol index followed by four
910 individual byte fields. Reorder INFO
911 accordingly. */
912 bfd_vma inf = relas[i].r_info;
913 inf = (((inf & 0xffffffff) << 32)
914 | ((inf >> 56) & 0xff)
915 | ((inf >> 40) & 0xff00)
916 | ((inf >> 24) & 0xff0000)
917 | ((inf >> 8) & 0xff000000));
918 relas[i].r_info = inf;
919 }
920 #endif /* BFD64 */
921 }
922
923 free (erelas);
924 }
925 *relasp = relas;
926 *nrelasp = nrelas;
927 return 1;
928 }
929
930 static int
931 slurp_rel_relocs (FILE * file,
932 unsigned long rel_offset,
933 unsigned long rel_size,
934 Elf_Internal_Rela ** relsp,
935 unsigned long * nrelsp)
936 {
937 Elf_Internal_Rela * rels;
938 size_t nrels;
939 unsigned int i;
940
941 if (is_32bit_elf)
942 {
943 Elf32_External_Rel * erels;
944
945 erels = (Elf32_External_Rel *) get_data (NULL, file, rel_offset, 1,
946 rel_size, _("32-bit relocation data"));
947 if (!erels)
948 return 0;
949
950 nrels = rel_size / sizeof (Elf32_External_Rel);
951
952 rels = (Elf_Internal_Rela *) cmalloc (nrels, sizeof (Elf_Internal_Rela));
953
954 if (rels == NULL)
955 {
956 free (erels);
957 error (_("out of memory parsing relocs\n"));
958 return 0;
959 }
960
961 for (i = 0; i < nrels; i++)
962 {
963 rels[i].r_offset = BYTE_GET (erels[i].r_offset);
964 rels[i].r_info = BYTE_GET (erels[i].r_info);
965 rels[i].r_addend = 0;
966 }
967
968 free (erels);
969 }
970 else
971 {
972 Elf64_External_Rel * erels;
973
974 erels = (Elf64_External_Rel *) get_data (NULL, file, rel_offset, 1,
975 rel_size, _("64-bit relocation data"));
976 if (!erels)
977 return 0;
978
979 nrels = rel_size / sizeof (Elf64_External_Rel);
980
981 rels = (Elf_Internal_Rela *) cmalloc (nrels, sizeof (Elf_Internal_Rela));
982
983 if (rels == NULL)
984 {
985 free (erels);
986 error (_("out of memory parsing relocs\n"));
987 return 0;
988 }
989
990 for (i = 0; i < nrels; i++)
991 {
992 rels[i].r_offset = BYTE_GET (erels[i].r_offset);
993 rels[i].r_info = BYTE_GET (erels[i].r_info);
994 rels[i].r_addend = 0;
995
996 /* The #ifdef BFD64 below is to prevent a compile time
997 warning. We know that if we do not have a 64 bit data
998 type that we will never execute this code anyway. */
999 #ifdef BFD64
1000 if (elf_header.e_machine == EM_MIPS
1001 && elf_header.e_ident[EI_DATA] != ELFDATA2MSB)
1002 {
1003 /* In little-endian objects, r_info isn't really a
1004 64-bit little-endian value: it has a 32-bit
1005 little-endian symbol index followed by four
1006 individual byte fields. Reorder INFO
1007 accordingly. */
1008 bfd_vma inf = rels[i].r_info;
1009 inf = (((inf & 0xffffffff) << 32)
1010 | ((inf >> 56) & 0xff)
1011 | ((inf >> 40) & 0xff00)
1012 | ((inf >> 24) & 0xff0000)
1013 | ((inf >> 8) & 0xff000000));
1014 rels[i].r_info = inf;
1015 }
1016 #endif /* BFD64 */
1017 }
1018
1019 free (erels);
1020 }
1021 *relsp = rels;
1022 *nrelsp = nrels;
1023 return 1;
1024 }
1025
1026 /* Returns the reloc type extracted from the reloc info field. */
1027
1028 static unsigned int
1029 get_reloc_type (bfd_vma reloc_info)
1030 {
1031 if (is_32bit_elf)
1032 return ELF32_R_TYPE (reloc_info);
1033
1034 switch (elf_header.e_machine)
1035 {
1036 case EM_MIPS:
1037 /* Note: We assume that reloc_info has already been adjusted for us. */
1038 return ELF64_MIPS_R_TYPE (reloc_info);
1039
1040 case EM_SPARCV9:
1041 return ELF64_R_TYPE_ID (reloc_info);
1042
1043 default:
1044 return ELF64_R_TYPE (reloc_info);
1045 }
1046 }
1047
1048 /* Return the symbol index extracted from the reloc info field. */
1049
1050 static bfd_vma
1051 get_reloc_symindex (bfd_vma reloc_info)
1052 {
1053 return is_32bit_elf ? ELF32_R_SYM (reloc_info) : ELF64_R_SYM (reloc_info);
1054 }
1055
1056 static inline bfd_boolean
1057 uses_msp430x_relocs (void)
1058 {
1059 return
1060 elf_header.e_machine == EM_MSP430 /* Paranoia. */
1061 /* GCC uses osabi == ELFOSBI_STANDALONE. */
1062 && (((elf_header.e_flags & EF_MSP430_MACH) == E_MSP430_MACH_MSP430X)
1063 /* TI compiler uses ELFOSABI_NONE. */
1064 || (elf_header.e_ident[EI_OSABI] == ELFOSABI_NONE));
1065 }
1066
1067 /* Display the contents of the relocation data found at the specified
1068 offset. */
1069
1070 static void
1071 dump_relocations (FILE * file,
1072 unsigned long rel_offset,
1073 unsigned long rel_size,
1074 Elf_Internal_Sym * symtab,
1075 unsigned long nsyms,
1076 char * strtab,
1077 unsigned long strtablen,
1078 int is_rela,
1079 int is_dynsym)
1080 {
1081 unsigned int i;
1082 Elf_Internal_Rela * rels;
1083
1084 if (is_rela == UNKNOWN)
1085 is_rela = guess_is_rela (elf_header.e_machine);
1086
1087 if (is_rela)
1088 {
1089 if (!slurp_rela_relocs (file, rel_offset, rel_size, &rels, &rel_size))
1090 return;
1091 }
1092 else
1093 {
1094 if (!slurp_rel_relocs (file, rel_offset, rel_size, &rels, &rel_size))
1095 return;
1096 }
1097
1098 if (is_32bit_elf)
1099 {
1100 if (is_rela)
1101 {
1102 if (do_wide)
1103 printf (_(" Offset Info Type Sym. Value Symbol's Name + Addend\n"));
1104 else
1105 printf (_(" Offset Info Type Sym.Value Sym. Name + Addend\n"));
1106 }
1107 else
1108 {
1109 if (do_wide)
1110 printf (_(" Offset Info Type Sym. Value Symbol's Name\n"));
1111 else
1112 printf (_(" Offset Info Type Sym.Value Sym. Name\n"));
1113 }
1114 }
1115 else
1116 {
1117 if (is_rela)
1118 {
1119 if (do_wide)
1120 printf (_(" Offset Info Type Symbol's Value Symbol's Name + Addend\n"));
1121 else
1122 printf (_(" Offset Info Type Sym. Value Sym. Name + Addend\n"));
1123 }
1124 else
1125 {
1126 if (do_wide)
1127 printf (_(" Offset Info Type Symbol's Value Symbol's Name\n"));
1128 else
1129 printf (_(" Offset Info Type Sym. Value Sym. Name\n"));
1130 }
1131 }
1132
1133 for (i = 0; i < rel_size; i++)
1134 {
1135 const char * rtype;
1136 bfd_vma offset;
1137 bfd_vma inf;
1138 bfd_vma symtab_index;
1139 bfd_vma type;
1140
1141 offset = rels[i].r_offset;
1142 inf = rels[i].r_info;
1143
1144 type = get_reloc_type (inf);
1145 symtab_index = get_reloc_symindex (inf);
1146
1147 if (is_32bit_elf)
1148 {
1149 printf ("%8.8lx %8.8lx ",
1150 (unsigned long) offset & 0xffffffff,
1151 (unsigned long) inf & 0xffffffff);
1152 }
1153 else
1154 {
1155 #if BFD_HOST_64BIT_LONG
1156 printf (do_wide
1157 ? "%16.16lx %16.16lx "
1158 : "%12.12lx %12.12lx ",
1159 offset, inf);
1160 #elif BFD_HOST_64BIT_LONG_LONG
1161 #ifndef __MSVCRT__
1162 printf (do_wide
1163 ? "%16.16llx %16.16llx "
1164 : "%12.12llx %12.12llx ",
1165 offset, inf);
1166 #else
1167 printf (do_wide
1168 ? "%16.16I64x %16.16I64x "
1169 : "%12.12I64x %12.12I64x ",
1170 offset, inf);
1171 #endif
1172 #else
1173 printf (do_wide
1174 ? "%8.8lx%8.8lx %8.8lx%8.8lx "
1175 : "%4.4lx%8.8lx %4.4lx%8.8lx ",
1176 _bfd_int64_high (offset),
1177 _bfd_int64_low (offset),
1178 _bfd_int64_high (inf),
1179 _bfd_int64_low (inf));
1180 #endif
1181 }
1182
1183 switch (elf_header.e_machine)
1184 {
1185 default:
1186 rtype = NULL;
1187 break;
1188
1189 case EM_AARCH64:
1190 rtype = elf_aarch64_reloc_type (type);
1191 break;
1192
1193 case EM_M32R:
1194 case EM_CYGNUS_M32R:
1195 rtype = elf_m32r_reloc_type (type);
1196 break;
1197
1198 case EM_386:
1199 case EM_IAMCU:
1200 rtype = elf_i386_reloc_type (type);
1201 break;
1202
1203 case EM_68HC11:
1204 case EM_68HC12:
1205 rtype = elf_m68hc11_reloc_type (type);
1206 break;
1207
1208 case EM_68K:
1209 rtype = elf_m68k_reloc_type (type);
1210 break;
1211
1212 case EM_960:
1213 rtype = elf_i960_reloc_type (type);
1214 break;
1215
1216 case EM_AVR:
1217 case EM_AVR_OLD:
1218 rtype = elf_avr_reloc_type (type);
1219 break;
1220
1221 case EM_OLD_SPARCV9:
1222 case EM_SPARC32PLUS:
1223 case EM_SPARCV9:
1224 case EM_SPARC:
1225 rtype = elf_sparc_reloc_type (type);
1226 break;
1227
1228 case EM_SPU:
1229 rtype = elf_spu_reloc_type (type);
1230 break;
1231
1232 case EM_V800:
1233 rtype = v800_reloc_type (type);
1234 break;
1235 case EM_V850:
1236 case EM_CYGNUS_V850:
1237 rtype = v850_reloc_type (type);
1238 break;
1239
1240 case EM_D10V:
1241 case EM_CYGNUS_D10V:
1242 rtype = elf_d10v_reloc_type (type);
1243 break;
1244
1245 case EM_D30V:
1246 case EM_CYGNUS_D30V:
1247 rtype = elf_d30v_reloc_type (type);
1248 break;
1249
1250 case EM_DLX:
1251 rtype = elf_dlx_reloc_type (type);
1252 break;
1253
1254 case EM_SH:
1255 rtype = elf_sh_reloc_type (type);
1256 break;
1257
1258 case EM_MN10300:
1259 case EM_CYGNUS_MN10300:
1260 rtype = elf_mn10300_reloc_type (type);
1261 break;
1262
1263 case EM_MN10200:
1264 case EM_CYGNUS_MN10200:
1265 rtype = elf_mn10200_reloc_type (type);
1266 break;
1267
1268 case EM_FR30:
1269 case EM_CYGNUS_FR30:
1270 rtype = elf_fr30_reloc_type (type);
1271 break;
1272
1273 case EM_CYGNUS_FRV:
1274 rtype = elf_frv_reloc_type (type);
1275 break;
1276
1277 case EM_FT32:
1278 rtype = elf_ft32_reloc_type (type);
1279 break;
1280
1281 case EM_MCORE:
1282 rtype = elf_mcore_reloc_type (type);
1283 break;
1284
1285 case EM_MMIX:
1286 rtype = elf_mmix_reloc_type (type);
1287 break;
1288
1289 case EM_MOXIE:
1290 rtype = elf_moxie_reloc_type (type);
1291 break;
1292
1293 case EM_MSP430:
1294 if (uses_msp430x_relocs ())
1295 {
1296 rtype = elf_msp430x_reloc_type (type);
1297 break;
1298 }
1299 /* Fall through. */
1300 case EM_MSP430_OLD:
1301 rtype = elf_msp430_reloc_type (type);
1302 break;
1303
1304 case EM_NDS32:
1305 rtype = elf_nds32_reloc_type (type);
1306 break;
1307
1308 case EM_PPC:
1309 rtype = elf_ppc_reloc_type (type);
1310 break;
1311
1312 case EM_PPC64:
1313 rtype = elf_ppc64_reloc_type (type);
1314 break;
1315
1316 case EM_MIPS:
1317 case EM_MIPS_RS3_LE:
1318 rtype = elf_mips_reloc_type (type);
1319 break;
1320
1321 case EM_RISCV:
1322 rtype = elf_riscv_reloc_type (type);
1323 break;
1324
1325 case EM_ALPHA:
1326 rtype = elf_alpha_reloc_type (type);
1327 break;
1328
1329 case EM_ARM:
1330 rtype = elf_arm_reloc_type (type);
1331 break;
1332
1333 case EM_ARC:
1334 case EM_ARC_COMPACT:
1335 case EM_ARC_COMPACT2:
1336 rtype = elf_arc_reloc_type (type);
1337 break;
1338
1339 case EM_PARISC:
1340 rtype = elf_hppa_reloc_type (type);
1341 break;
1342
1343 case EM_H8_300:
1344 case EM_H8_300H:
1345 case EM_H8S:
1346 rtype = elf_h8_reloc_type (type);
1347 break;
1348
1349 case EM_OR1K:
1350 rtype = elf_or1k_reloc_type (type);
1351 break;
1352
1353 case EM_PJ:
1354 case EM_PJ_OLD:
1355 rtype = elf_pj_reloc_type (type);
1356 break;
1357 case EM_IA_64:
1358 rtype = elf_ia64_reloc_type (type);
1359 break;
1360
1361 case EM_CRIS:
1362 rtype = elf_cris_reloc_type (type);
1363 break;
1364
1365 case EM_860:
1366 rtype = elf_i860_reloc_type (type);
1367 break;
1368
1369 case EM_X86_64:
1370 case EM_L1OM:
1371 case EM_K1OM:
1372 rtype = elf_x86_64_reloc_type (type);
1373 break;
1374
1375 case EM_S370:
1376 rtype = i370_reloc_type (type);
1377 break;
1378
1379 case EM_S390_OLD:
1380 case EM_S390:
1381 rtype = elf_s390_reloc_type (type);
1382 break;
1383
1384 case EM_SCORE:
1385 rtype = elf_score_reloc_type (type);
1386 break;
1387
1388 case EM_XSTORMY16:
1389 rtype = elf_xstormy16_reloc_type (type);
1390 break;
1391
1392 case EM_CRX:
1393 rtype = elf_crx_reloc_type (type);
1394 break;
1395
1396 case EM_VAX:
1397 rtype = elf_vax_reloc_type (type);
1398 break;
1399
1400 case EM_VISIUM:
1401 rtype = elf_visium_reloc_type (type);
1402 break;
1403
1404 case EM_ADAPTEVA_EPIPHANY:
1405 rtype = elf_epiphany_reloc_type (type);
1406 break;
1407
1408 case EM_IP2K:
1409 case EM_IP2K_OLD:
1410 rtype = elf_ip2k_reloc_type (type);
1411 break;
1412
1413 case EM_IQ2000:
1414 rtype = elf_iq2000_reloc_type (type);
1415 break;
1416
1417 case EM_XTENSA_OLD:
1418 case EM_XTENSA:
1419 rtype = elf_xtensa_reloc_type (type);
1420 break;
1421
1422 case EM_LATTICEMICO32:
1423 rtype = elf_lm32_reloc_type (type);
1424 break;
1425
1426 case EM_M32C_OLD:
1427 case EM_M32C:
1428 rtype = elf_m32c_reloc_type (type);
1429 break;
1430
1431 case EM_MT:
1432 rtype = elf_mt_reloc_type (type);
1433 break;
1434
1435 case EM_BLACKFIN:
1436 rtype = elf_bfin_reloc_type (type);
1437 break;
1438
1439 case EM_CYGNUS_MEP:
1440 rtype = elf_mep_reloc_type (type);
1441 break;
1442
1443 case EM_CR16:
1444 rtype = elf_cr16_reloc_type (type);
1445 break;
1446
1447 case EM_MICROBLAZE:
1448 case EM_MICROBLAZE_OLD:
1449 rtype = elf_microblaze_reloc_type (type);
1450 break;
1451
1452 case EM_RL78:
1453 rtype = elf_rl78_reloc_type (type);
1454 break;
1455
1456 case EM_RX:
1457 rtype = elf_rx_reloc_type (type);
1458 break;
1459
1460 case EM_METAG:
1461 rtype = elf_metag_reloc_type (type);
1462 break;
1463
1464 case EM_XC16X:
1465 case EM_C166:
1466 rtype = elf_xc16x_reloc_type (type);
1467 break;
1468
1469 case EM_TI_C6000:
1470 rtype = elf_tic6x_reloc_type (type);
1471 break;
1472
1473 case EM_TILEGX:
1474 rtype = elf_tilegx_reloc_type (type);
1475 break;
1476
1477 case EM_TILEPRO:
1478 rtype = elf_tilepro_reloc_type (type);
1479 break;
1480
1481 case EM_XGATE:
1482 rtype = elf_xgate_reloc_type (type);
1483 break;
1484
1485 case EM_ALTERA_NIOS2:
1486 rtype = elf_nios2_reloc_type (type);
1487 break;
1488
1489 case EM_TI_PRU:
1490 rtype = elf_pru_reloc_type (type);
1491 break;
1492 }
1493
1494 if (rtype == NULL)
1495 printf (_("unrecognized: %-7lx"), (unsigned long) type & 0xffffffff);
1496 else
1497 printf (do_wide ? "%-22.22s" : "%-17.17s", rtype);
1498
1499 if (elf_header.e_machine == EM_ALPHA
1500 && rtype != NULL
1501 && streq (rtype, "R_ALPHA_LITUSE")
1502 && is_rela)
1503 {
1504 switch (rels[i].r_addend)
1505 {
1506 case LITUSE_ALPHA_ADDR: rtype = "ADDR"; break;
1507 case LITUSE_ALPHA_BASE: rtype = "BASE"; break;
1508 case LITUSE_ALPHA_BYTOFF: rtype = "BYTOFF"; break;
1509 case LITUSE_ALPHA_JSR: rtype = "JSR"; break;
1510 case LITUSE_ALPHA_TLSGD: rtype = "TLSGD"; break;
1511 case LITUSE_ALPHA_TLSLDM: rtype = "TLSLDM"; break;
1512 case LITUSE_ALPHA_JSRDIRECT: rtype = "JSRDIRECT"; break;
1513 default: rtype = NULL;
1514 }
1515 if (rtype)
1516 printf (" (%s)", rtype);
1517 else
1518 {
1519 putchar (' ');
1520 printf (_("<unknown addend: %lx>"),
1521 (unsigned long) rels[i].r_addend);
1522 }
1523 }
1524 else if (symtab_index)
1525 {
1526 if (symtab == NULL || symtab_index >= nsyms)
1527 printf (_(" bad symbol index: %08lx"), (unsigned long) symtab_index);
1528 else
1529 {
1530 Elf_Internal_Sym * psym;
1531 const char * version_string;
1532 enum versioned_symbol_info sym_info;
1533 unsigned short vna_other;
1534
1535 psym = symtab + symtab_index;
1536
1537 version_string
1538 = get_symbol_version_string (file, is_dynsym,
1539 strtab, strtablen,
1540 symtab_index,
1541 psym,
1542 &sym_info,
1543 &vna_other);
1544
1545 printf (" ");
1546
1547 if (ELF_ST_TYPE (psym->st_info) == STT_GNU_IFUNC)
1548 {
1549 const char * name;
1550 unsigned int len;
1551 unsigned int width = is_32bit_elf ? 8 : 14;
1552
1553 /* Relocations against GNU_IFUNC symbols do not use the value
1554 of the symbol as the address to relocate against. Instead
1555 they invoke the function named by the symbol and use its
1556 result as the address for relocation.
1557
1558 To indicate this to the user, do not display the value of
1559 the symbol in the "Symbols's Value" field. Instead show
1560 its name followed by () as a hint that the symbol is
1561 invoked. */
1562
1563 if (strtab == NULL
1564 || psym->st_name == 0
1565 || psym->st_name >= strtablen)
1566 name = "??";
1567 else
1568 name = strtab + psym->st_name;
1569
1570 len = print_symbol (width, name);
1571 if (version_string)
1572 printf (sym_info == symbol_public ? "@@%s" : "@%s",
1573 version_string);
1574 printf ("()%-*s", len <= width ? (width + 1) - len : 1, " ");
1575 }
1576 else
1577 {
1578 print_vma (psym->st_value, LONG_HEX);
1579
1580 printf (is_32bit_elf ? " " : " ");
1581 }
1582
1583 if (psym->st_name == 0)
1584 {
1585 const char * sec_name = "<null>";
1586 char name_buf[40];
1587
1588 if (ELF_ST_TYPE (psym->st_info) == STT_SECTION)
1589 {
1590 if (psym->st_shndx < elf_header.e_shnum)
1591 sec_name = SECTION_NAME (section_headers + psym->st_shndx);
1592 else if (psym->st_shndx == SHN_ABS)
1593 sec_name = "ABS";
1594 else if (psym->st_shndx == SHN_COMMON)
1595 sec_name = "COMMON";
1596 else if ((elf_header.e_machine == EM_MIPS
1597 && psym->st_shndx == SHN_MIPS_SCOMMON)
1598 || (elf_header.e_machine == EM_TI_C6000
1599 && psym->st_shndx == SHN_TIC6X_SCOMMON))
1600 sec_name = "SCOMMON";
1601 else if (elf_header.e_machine == EM_MIPS
1602 && psym->st_shndx == SHN_MIPS_SUNDEFINED)
1603 sec_name = "SUNDEF";
1604 else if ((elf_header.e_machine == EM_X86_64
1605 || elf_header.e_machine == EM_L1OM
1606 || elf_header.e_machine == EM_K1OM)
1607 && psym->st_shndx == SHN_X86_64_LCOMMON)
1608 sec_name = "LARGE_COMMON";
1609 else if (elf_header.e_machine == EM_IA_64
1610 && elf_header.e_ident[EI_OSABI] == ELFOSABI_HPUX
1611 && psym->st_shndx == SHN_IA_64_ANSI_COMMON)
1612 sec_name = "ANSI_COM";
1613 else if (is_ia64_vms ()
1614 && psym->st_shndx == SHN_IA_64_VMS_SYMVEC)
1615 sec_name = "VMS_SYMVEC";
1616 else
1617 {
1618 sprintf (name_buf, "<section 0x%x>",
1619 (unsigned int) psym->st_shndx);
1620 sec_name = name_buf;
1621 }
1622 }
1623 print_symbol (22, sec_name);
1624 }
1625 else if (strtab == NULL)
1626 printf (_("<string table index: %3ld>"), psym->st_name);
1627 else if (psym->st_name >= strtablen)
1628 printf (_("<corrupt string table index: %3ld>"), psym->st_name);
1629 else
1630 {
1631 print_symbol (22, strtab + psym->st_name);
1632 if (version_string)
1633 printf (sym_info == symbol_public ? "@@%s" : "@%s",
1634 version_string);
1635 }
1636
1637 if (is_rela)
1638 {
1639 bfd_vma off = rels[i].r_addend;
1640
1641 if ((bfd_signed_vma) off < 0)
1642 printf (" - %" BFD_VMA_FMT "x", - off);
1643 else
1644 printf (" + %" BFD_VMA_FMT "x", off);
1645 }
1646 }
1647 }
1648 else if (is_rela)
1649 {
1650 bfd_vma off = rels[i].r_addend;
1651
1652 printf ("%*c", is_32bit_elf ? 12 : 20, ' ');
1653 if ((bfd_signed_vma) off < 0)
1654 printf ("-%" BFD_VMA_FMT "x", - off);
1655 else
1656 printf ("%" BFD_VMA_FMT "x", off);
1657 }
1658
1659 if (elf_header.e_machine == EM_SPARCV9
1660 && rtype != NULL
1661 && streq (rtype, "R_SPARC_OLO10"))
1662 printf (" + %lx", (unsigned long) ELF64_R_TYPE_DATA (inf));
1663
1664 putchar ('\n');
1665
1666 #ifdef BFD64
1667 if (! is_32bit_elf && elf_header.e_machine == EM_MIPS)
1668 {
1669 bfd_vma type2 = ELF64_MIPS_R_TYPE2 (inf);
1670 bfd_vma type3 = ELF64_MIPS_R_TYPE3 (inf);
1671 const char * rtype2 = elf_mips_reloc_type (type2);
1672 const char * rtype3 = elf_mips_reloc_type (type3);
1673
1674 printf (" Type2: ");
1675
1676 if (rtype2 == NULL)
1677 printf (_("unrecognized: %-7lx"),
1678 (unsigned long) type2 & 0xffffffff);
1679 else
1680 printf ("%-17.17s", rtype2);
1681
1682 printf ("\n Type3: ");
1683
1684 if (rtype3 == NULL)
1685 printf (_("unrecognized: %-7lx"),
1686 (unsigned long) type3 & 0xffffffff);
1687 else
1688 printf ("%-17.17s", rtype3);
1689
1690 putchar ('\n');
1691 }
1692 #endif /* BFD64 */
1693 }
1694
1695 free (rels);
1696 }
1697
1698 static const char *
1699 get_mips_dynamic_type (unsigned long type)
1700 {
1701 switch (type)
1702 {
1703 case DT_MIPS_RLD_VERSION: return "MIPS_RLD_VERSION";
1704 case DT_MIPS_TIME_STAMP: return "MIPS_TIME_STAMP";
1705 case DT_MIPS_ICHECKSUM: return "MIPS_ICHECKSUM";
1706 case DT_MIPS_IVERSION: return "MIPS_IVERSION";
1707 case DT_MIPS_FLAGS: return "MIPS_FLAGS";
1708 case DT_MIPS_BASE_ADDRESS: return "MIPS_BASE_ADDRESS";
1709 case DT_MIPS_MSYM: return "MIPS_MSYM";
1710 case DT_MIPS_CONFLICT: return "MIPS_CONFLICT";
1711 case DT_MIPS_LIBLIST: return "MIPS_LIBLIST";
1712 case DT_MIPS_LOCAL_GOTNO: return "MIPS_LOCAL_GOTNO";
1713 case DT_MIPS_CONFLICTNO: return "MIPS_CONFLICTNO";
1714 case DT_MIPS_LIBLISTNO: return "MIPS_LIBLISTNO";
1715 case DT_MIPS_SYMTABNO: return "MIPS_SYMTABNO";
1716 case DT_MIPS_UNREFEXTNO: return "MIPS_UNREFEXTNO";
1717 case DT_MIPS_GOTSYM: return "MIPS_GOTSYM";
1718 case DT_MIPS_HIPAGENO: return "MIPS_HIPAGENO";
1719 case DT_MIPS_RLD_MAP: return "MIPS_RLD_MAP";
1720 case DT_MIPS_RLD_MAP_REL: return "MIPS_RLD_MAP_REL";
1721 case DT_MIPS_DELTA_CLASS: return "MIPS_DELTA_CLASS";
1722 case DT_MIPS_DELTA_CLASS_NO: return "MIPS_DELTA_CLASS_NO";
1723 case DT_MIPS_DELTA_INSTANCE: return "MIPS_DELTA_INSTANCE";
1724 case DT_MIPS_DELTA_INSTANCE_NO: return "MIPS_DELTA_INSTANCE_NO";
1725 case DT_MIPS_DELTA_RELOC: return "MIPS_DELTA_RELOC";
1726 case DT_MIPS_DELTA_RELOC_NO: return "MIPS_DELTA_RELOC_NO";
1727 case DT_MIPS_DELTA_SYM: return "MIPS_DELTA_SYM";
1728 case DT_MIPS_DELTA_SYM_NO: return "MIPS_DELTA_SYM_NO";
1729 case DT_MIPS_DELTA_CLASSSYM: return "MIPS_DELTA_CLASSSYM";
1730 case DT_MIPS_DELTA_CLASSSYM_NO: return "MIPS_DELTA_CLASSSYM_NO";
1731 case DT_MIPS_CXX_FLAGS: return "MIPS_CXX_FLAGS";
1732 case DT_MIPS_PIXIE_INIT: return "MIPS_PIXIE_INIT";
1733 case DT_MIPS_SYMBOL_LIB: return "MIPS_SYMBOL_LIB";
1734 case DT_MIPS_LOCALPAGE_GOTIDX: return "MIPS_LOCALPAGE_GOTIDX";
1735 case DT_MIPS_LOCAL_GOTIDX: return "MIPS_LOCAL_GOTIDX";
1736 case DT_MIPS_HIDDEN_GOTIDX: return "MIPS_HIDDEN_GOTIDX";
1737 case DT_MIPS_PROTECTED_GOTIDX: return "MIPS_PROTECTED_GOTIDX";
1738 case DT_MIPS_OPTIONS: return "MIPS_OPTIONS";
1739 case DT_MIPS_INTERFACE: return "MIPS_INTERFACE";
1740 case DT_MIPS_DYNSTR_ALIGN: return "MIPS_DYNSTR_ALIGN";
1741 case DT_MIPS_INTERFACE_SIZE: return "MIPS_INTERFACE_SIZE";
1742 case DT_MIPS_RLD_TEXT_RESOLVE_ADDR: return "MIPS_RLD_TEXT_RESOLVE_ADDR";
1743 case DT_MIPS_PERF_SUFFIX: return "MIPS_PERF_SUFFIX";
1744 case DT_MIPS_COMPACT_SIZE: return "MIPS_COMPACT_SIZE";
1745 case DT_MIPS_GP_VALUE: return "MIPS_GP_VALUE";
1746 case DT_MIPS_AUX_DYNAMIC: return "MIPS_AUX_DYNAMIC";
1747 case DT_MIPS_PLTGOT: return "MIPS_PLTGOT";
1748 case DT_MIPS_RWPLT: return "MIPS_RWPLT";
1749 default:
1750 return NULL;
1751 }
1752 }
1753
1754 static const char *
1755 get_sparc64_dynamic_type (unsigned long type)
1756 {
1757 switch (type)
1758 {
1759 case DT_SPARC_REGISTER: return "SPARC_REGISTER";
1760 default:
1761 return NULL;
1762 }
1763 }
1764
1765 static const char *
1766 get_ppc_dynamic_type (unsigned long type)
1767 {
1768 switch (type)
1769 {
1770 case DT_PPC_GOT: return "PPC_GOT";
1771 case DT_PPC_OPT: return "PPC_OPT";
1772 default:
1773 return NULL;
1774 }
1775 }
1776
1777 static const char *
1778 get_ppc64_dynamic_type (unsigned long type)
1779 {
1780 switch (type)
1781 {
1782 case DT_PPC64_GLINK: return "PPC64_GLINK";
1783 case DT_PPC64_OPD: return "PPC64_OPD";
1784 case DT_PPC64_OPDSZ: return "PPC64_OPDSZ";
1785 case DT_PPC64_OPT: return "PPC64_OPT";
1786 default:
1787 return NULL;
1788 }
1789 }
1790
1791 static const char *
1792 get_parisc_dynamic_type (unsigned long type)
1793 {
1794 switch (type)
1795 {
1796 case DT_HP_LOAD_MAP: return "HP_LOAD_MAP";
1797 case DT_HP_DLD_FLAGS: return "HP_DLD_FLAGS";
1798 case DT_HP_DLD_HOOK: return "HP_DLD_HOOK";
1799 case DT_HP_UX10_INIT: return "HP_UX10_INIT";
1800 case DT_HP_UX10_INITSZ: return "HP_UX10_INITSZ";
1801 case DT_HP_PREINIT: return "HP_PREINIT";
1802 case DT_HP_PREINITSZ: return "HP_PREINITSZ";
1803 case DT_HP_NEEDED: return "HP_NEEDED";
1804 case DT_HP_TIME_STAMP: return "HP_TIME_STAMP";
1805 case DT_HP_CHECKSUM: return "HP_CHECKSUM";
1806 case DT_HP_GST_SIZE: return "HP_GST_SIZE";
1807 case DT_HP_GST_VERSION: return "HP_GST_VERSION";
1808 case DT_HP_GST_HASHVAL: return "HP_GST_HASHVAL";
1809 case DT_HP_EPLTREL: return "HP_GST_EPLTREL";
1810 case DT_HP_EPLTRELSZ: return "HP_GST_EPLTRELSZ";
1811 case DT_HP_FILTERED: return "HP_FILTERED";
1812 case DT_HP_FILTER_TLS: return "HP_FILTER_TLS";
1813 case DT_HP_COMPAT_FILTERED: return "HP_COMPAT_FILTERED";
1814 case DT_HP_LAZYLOAD: return "HP_LAZYLOAD";
1815 case DT_HP_BIND_NOW_COUNT: return "HP_BIND_NOW_COUNT";
1816 case DT_PLT: return "PLT";
1817 case DT_PLT_SIZE: return "PLT_SIZE";
1818 case DT_DLT: return "DLT";
1819 case DT_DLT_SIZE: return "DLT_SIZE";
1820 default:
1821 return NULL;
1822 }
1823 }
1824
1825 static const char *
1826 get_ia64_dynamic_type (unsigned long type)
1827 {
1828 switch (type)
1829 {
1830 case DT_IA_64_PLT_RESERVE: return "IA_64_PLT_RESERVE";
1831 case DT_IA_64_VMS_SUBTYPE: return "VMS_SUBTYPE";
1832 case DT_IA_64_VMS_IMGIOCNT: return "VMS_IMGIOCNT";
1833 case DT_IA_64_VMS_LNKFLAGS: return "VMS_LNKFLAGS";
1834 case DT_IA_64_VMS_VIR_MEM_BLK_SIZ: return "VMS_VIR_MEM_BLK_SIZ";
1835 case DT_IA_64_VMS_IDENT: return "VMS_IDENT";
1836 case DT_IA_64_VMS_NEEDED_IDENT: return "VMS_NEEDED_IDENT";
1837 case DT_IA_64_VMS_IMG_RELA_CNT: return "VMS_IMG_RELA_CNT";
1838 case DT_IA_64_VMS_SEG_RELA_CNT: return "VMS_SEG_RELA_CNT";
1839 case DT_IA_64_VMS_FIXUP_RELA_CNT: return "VMS_FIXUP_RELA_CNT";
1840 case DT_IA_64_VMS_FIXUP_NEEDED: return "VMS_FIXUP_NEEDED";
1841 case DT_IA_64_VMS_SYMVEC_CNT: return "VMS_SYMVEC_CNT";
1842 case DT_IA_64_VMS_XLATED: return "VMS_XLATED";
1843 case DT_IA_64_VMS_STACKSIZE: return "VMS_STACKSIZE";
1844 case DT_IA_64_VMS_UNWINDSZ: return "VMS_UNWINDSZ";
1845 case DT_IA_64_VMS_UNWIND_CODSEG: return "VMS_UNWIND_CODSEG";
1846 case DT_IA_64_VMS_UNWIND_INFOSEG: return "VMS_UNWIND_INFOSEG";
1847 case DT_IA_64_VMS_LINKTIME: return "VMS_LINKTIME";
1848 case DT_IA_64_VMS_SEG_NO: return "VMS_SEG_NO";
1849 case DT_IA_64_VMS_SYMVEC_OFFSET: return "VMS_SYMVEC_OFFSET";
1850 case DT_IA_64_VMS_SYMVEC_SEG: return "VMS_SYMVEC_SEG";
1851 case DT_IA_64_VMS_UNWIND_OFFSET: return "VMS_UNWIND_OFFSET";
1852 case DT_IA_64_VMS_UNWIND_SEG: return "VMS_UNWIND_SEG";
1853 case DT_IA_64_VMS_STRTAB_OFFSET: return "VMS_STRTAB_OFFSET";
1854 case DT_IA_64_VMS_SYSVER_OFFSET: return "VMS_SYSVER_OFFSET";
1855 case DT_IA_64_VMS_IMG_RELA_OFF: return "VMS_IMG_RELA_OFF";
1856 case DT_IA_64_VMS_SEG_RELA_OFF: return "VMS_SEG_RELA_OFF";
1857 case DT_IA_64_VMS_FIXUP_RELA_OFF: return "VMS_FIXUP_RELA_OFF";
1858 case DT_IA_64_VMS_PLTGOT_OFFSET: return "VMS_PLTGOT_OFFSET";
1859 case DT_IA_64_VMS_PLTGOT_SEG: return "VMS_PLTGOT_SEG";
1860 case DT_IA_64_VMS_FPMODE: return "VMS_FPMODE";
1861 default:
1862 return NULL;
1863 }
1864 }
1865
1866 static const char *
1867 get_solaris_section_type (unsigned long type)
1868 {
1869 switch (type)
1870 {
1871 case 0x6fffffee: return "SUNW_ancillary";
1872 case 0x6fffffef: return "SUNW_capchain";
1873 case 0x6ffffff0: return "SUNW_capinfo";
1874 case 0x6ffffff1: return "SUNW_symsort";
1875 case 0x6ffffff2: return "SUNW_tlssort";
1876 case 0x6ffffff3: return "SUNW_LDYNSYM";
1877 case 0x6ffffff4: return "SUNW_dof";
1878 case 0x6ffffff5: return "SUNW_cap";
1879 case 0x6ffffff6: return "SUNW_SIGNATURE";
1880 case 0x6ffffff7: return "SUNW_ANNOTATE";
1881 case 0x6ffffff8: return "SUNW_DEBUGSTR";
1882 case 0x6ffffff9: return "SUNW_DEBUG";
1883 case 0x6ffffffa: return "SUNW_move";
1884 case 0x6ffffffb: return "SUNW_COMDAT";
1885 case 0x6ffffffc: return "SUNW_syminfo";
1886 case 0x6ffffffd: return "SUNW_verdef";
1887 case 0x6ffffffe: return "SUNW_verneed";
1888 case 0x6fffffff: return "SUNW_versym";
1889 case 0x70000000: return "SPARC_GOTDATA";
1890 default: return NULL;
1891 }
1892 }
1893
1894 static const char *
1895 get_alpha_dynamic_type (unsigned long type)
1896 {
1897 switch (type)
1898 {
1899 case DT_ALPHA_PLTRO: return "ALPHA_PLTRO";
1900 default:
1901 return NULL;
1902 }
1903 }
1904
1905 static const char *
1906 get_score_dynamic_type (unsigned long type)
1907 {
1908 switch (type)
1909 {
1910 case DT_SCORE_BASE_ADDRESS: return "SCORE_BASE_ADDRESS";
1911 case DT_SCORE_LOCAL_GOTNO: return "SCORE_LOCAL_GOTNO";
1912 case DT_SCORE_SYMTABNO: return "SCORE_SYMTABNO";
1913 case DT_SCORE_GOTSYM: return "SCORE_GOTSYM";
1914 case DT_SCORE_UNREFEXTNO: return "SCORE_UNREFEXTNO";
1915 case DT_SCORE_HIPAGENO: return "SCORE_HIPAGENO";
1916 default:
1917 return NULL;
1918 }
1919 }
1920
1921 static const char *
1922 get_tic6x_dynamic_type (unsigned long type)
1923 {
1924 switch (type)
1925 {
1926 case DT_C6000_GSYM_OFFSET: return "C6000_GSYM_OFFSET";
1927 case DT_C6000_GSTR_OFFSET: return "C6000_GSTR_OFFSET";
1928 case DT_C6000_DSBT_BASE: return "C6000_DSBT_BASE";
1929 case DT_C6000_DSBT_SIZE: return "C6000_DSBT_SIZE";
1930 case DT_C6000_PREEMPTMAP: return "C6000_PREEMPTMAP";
1931 case DT_C6000_DSBT_INDEX: return "C6000_DSBT_INDEX";
1932 default:
1933 return NULL;
1934 }
1935 }
1936
1937 static const char *
1938 get_nios2_dynamic_type (unsigned long type)
1939 {
1940 switch (type)
1941 {
1942 case DT_NIOS2_GP: return "NIOS2_GP";
1943 default:
1944 return NULL;
1945 }
1946 }
1947
1948 static const char *
1949 get_solaris_dynamic_type (unsigned long type)
1950 {
1951 switch (type)
1952 {
1953 case 0x6000000d: return "SUNW_AUXILIARY";
1954 case 0x6000000e: return "SUNW_RTLDINF";
1955 case 0x6000000f: return "SUNW_FILTER";
1956 case 0x60000010: return "SUNW_CAP";
1957 case 0x60000011: return "SUNW_SYMTAB";
1958 case 0x60000012: return "SUNW_SYMSZ";
1959 case 0x60000013: return "SUNW_SORTENT";
1960 case 0x60000014: return "SUNW_SYMSORT";
1961 case 0x60000015: return "SUNW_SYMSORTSZ";
1962 case 0x60000016: return "SUNW_TLSSORT";
1963 case 0x60000017: return "SUNW_TLSSORTSZ";
1964 case 0x60000018: return "SUNW_CAPINFO";
1965 case 0x60000019: return "SUNW_STRPAD";
1966 case 0x6000001a: return "SUNW_CAPCHAIN";
1967 case 0x6000001b: return "SUNW_LDMACH";
1968 case 0x6000001d: return "SUNW_CAPCHAINENT";
1969 case 0x6000001f: return "SUNW_CAPCHAINSZ";
1970 case 0x60000021: return "SUNW_PARENT";
1971 case 0x60000023: return "SUNW_ASLR";
1972 case 0x60000025: return "SUNW_RELAX";
1973 case 0x60000029: return "SUNW_NXHEAP";
1974 case 0x6000002b: return "SUNW_NXSTACK";
1975
1976 case 0x70000001: return "SPARC_REGISTER";
1977 case 0x7ffffffd: return "AUXILIARY";
1978 case 0x7ffffffe: return "USED";
1979 case 0x7fffffff: return "FILTER";
1980
1981 default: return NULL;
1982 }
1983 }
1984
1985 static const char *
1986 get_dynamic_type (unsigned long type)
1987 {
1988 static char buff[64];
1989
1990 switch (type)
1991 {
1992 case DT_NULL: return "NULL";
1993 case DT_NEEDED: return "NEEDED";
1994 case DT_PLTRELSZ: return "PLTRELSZ";
1995 case DT_PLTGOT: return "PLTGOT";
1996 case DT_HASH: return "HASH";
1997 case DT_STRTAB: return "STRTAB";
1998 case DT_SYMTAB: return "SYMTAB";
1999 case DT_RELA: return "RELA";
2000 case DT_RELASZ: return "RELASZ";
2001 case DT_RELAENT: return "RELAENT";
2002 case DT_STRSZ: return "STRSZ";
2003 case DT_SYMENT: return "SYMENT";
2004 case DT_INIT: return "INIT";
2005 case DT_FINI: return "FINI";
2006 case DT_SONAME: return "SONAME";
2007 case DT_RPATH: return "RPATH";
2008 case DT_SYMBOLIC: return "SYMBOLIC";
2009 case DT_REL: return "REL";
2010 case DT_RELSZ: return "RELSZ";
2011 case DT_RELENT: return "RELENT";
2012 case DT_PLTREL: return "PLTREL";
2013 case DT_DEBUG: return "DEBUG";
2014 case DT_TEXTREL: return "TEXTREL";
2015 case DT_JMPREL: return "JMPREL";
2016 case DT_BIND_NOW: return "BIND_NOW";
2017 case DT_INIT_ARRAY: return "INIT_ARRAY";
2018 case DT_FINI_ARRAY: return "FINI_ARRAY";
2019 case DT_INIT_ARRAYSZ: return "INIT_ARRAYSZ";
2020 case DT_FINI_ARRAYSZ: return "FINI_ARRAYSZ";
2021 case DT_RUNPATH: return "RUNPATH";
2022 case DT_FLAGS: return "FLAGS";
2023
2024 case DT_PREINIT_ARRAY: return "PREINIT_ARRAY";
2025 case DT_PREINIT_ARRAYSZ: return "PREINIT_ARRAYSZ";
2026 case DT_SYMTAB_SHNDX: return "SYMTAB_SHNDX";
2027
2028 case DT_CHECKSUM: return "CHECKSUM";
2029 case DT_PLTPADSZ: return "PLTPADSZ";
2030 case DT_MOVEENT: return "MOVEENT";
2031 case DT_MOVESZ: return "MOVESZ";
2032 case DT_FEATURE: return "FEATURE";
2033 case DT_POSFLAG_1: return "POSFLAG_1";
2034 case DT_SYMINSZ: return "SYMINSZ";
2035 case DT_SYMINENT: return "SYMINENT"; /* aka VALRNGHI */
2036
2037 case DT_ADDRRNGLO: return "ADDRRNGLO";
2038 case DT_CONFIG: return "CONFIG";
2039 case DT_DEPAUDIT: return "DEPAUDIT";
2040 case DT_AUDIT: return "AUDIT";
2041 case DT_PLTPAD: return "PLTPAD";
2042 case DT_MOVETAB: return "MOVETAB";
2043 case DT_SYMINFO: return "SYMINFO"; /* aka ADDRRNGHI */
2044
2045 case DT_VERSYM: return "VERSYM";
2046
2047 case DT_TLSDESC_GOT: return "TLSDESC_GOT";
2048 case DT_TLSDESC_PLT: return "TLSDESC_PLT";
2049 case DT_RELACOUNT: return "RELACOUNT";
2050 case DT_RELCOUNT: return "RELCOUNT";
2051 case DT_FLAGS_1: return "FLAGS_1";
2052 case DT_VERDEF: return "VERDEF";
2053 case DT_VERDEFNUM: return "VERDEFNUM";
2054 case DT_VERNEED: return "VERNEED";
2055 case DT_VERNEEDNUM: return "VERNEEDNUM";
2056
2057 case DT_AUXILIARY: return "AUXILIARY";
2058 case DT_USED: return "USED";
2059 case DT_FILTER: return "FILTER";
2060
2061 case DT_GNU_PRELINKED: return "GNU_PRELINKED";
2062 case DT_GNU_CONFLICT: return "GNU_CONFLICT";
2063 case DT_GNU_CONFLICTSZ: return "GNU_CONFLICTSZ";
2064 case DT_GNU_LIBLIST: return "GNU_LIBLIST";
2065 case DT_GNU_LIBLISTSZ: return "GNU_LIBLISTSZ";
2066 case DT_GNU_HASH: return "GNU_HASH";
2067
2068 default:
2069 if ((type >= DT_LOPROC) && (type <= DT_HIPROC))
2070 {
2071 const char * result;
2072
2073 switch (elf_header.e_machine)
2074 {
2075 case EM_MIPS:
2076 case EM_MIPS_RS3_LE:
2077 result = get_mips_dynamic_type (type);
2078 break;
2079 case EM_SPARCV9:
2080 result = get_sparc64_dynamic_type (type);
2081 break;
2082 case EM_PPC:
2083 result = get_ppc_dynamic_type (type);
2084 break;
2085 case EM_PPC64:
2086 result = get_ppc64_dynamic_type (type);
2087 break;
2088 case EM_IA_64:
2089 result = get_ia64_dynamic_type (type);
2090 break;
2091 case EM_ALPHA:
2092 result = get_alpha_dynamic_type (type);
2093 break;
2094 case EM_SCORE:
2095 result = get_score_dynamic_type (type);
2096 break;
2097 case EM_TI_C6000:
2098 result = get_tic6x_dynamic_type (type);
2099 break;
2100 case EM_ALTERA_NIOS2:
2101 result = get_nios2_dynamic_type (type);
2102 break;
2103 default:
2104 if (elf_header.e_ident[EI_OSABI] == ELFOSABI_SOLARIS)
2105 result = get_solaris_dynamic_type (type);
2106 else
2107 result = NULL;
2108 break;
2109 }
2110
2111 if (result != NULL)
2112 return result;
2113
2114 snprintf (buff, sizeof (buff), _("Processor Specific: %lx"), type);
2115 }
2116 else if (((type >= DT_LOOS) && (type <= DT_HIOS))
2117 || (elf_header.e_machine == EM_PARISC
2118 && (type >= OLD_DT_LOOS) && (type <= OLD_DT_HIOS)))
2119 {
2120 const char * result;
2121
2122 switch (elf_header.e_machine)
2123 {
2124 case EM_PARISC:
2125 result = get_parisc_dynamic_type (type);
2126 break;
2127 case EM_IA_64:
2128 result = get_ia64_dynamic_type (type);
2129 break;
2130 default:
2131 if (elf_header.e_ident[EI_OSABI] == ELFOSABI_SOLARIS)
2132 result = get_solaris_dynamic_type (type);
2133 else
2134 result = NULL;
2135 break;
2136 }
2137
2138 if (result != NULL)
2139 return result;
2140
2141 snprintf (buff, sizeof (buff), _("Operating System specific: %lx"),
2142 type);
2143 }
2144 else
2145 snprintf (buff, sizeof (buff), _("<unknown>: %lx"), type);
2146
2147 return buff;
2148 }
2149 }
2150
2151 static char *
2152 get_file_type (unsigned e_type)
2153 {
2154 static char buff[32];
2155
2156 switch (e_type)
2157 {
2158 case ET_NONE: return _("NONE (None)");
2159 case ET_REL: return _("REL (Relocatable file)");
2160 case ET_EXEC: return _("EXEC (Executable file)");
2161 case ET_DYN: return _("DYN (Shared object file)");
2162 case ET_CORE: return _("CORE (Core file)");
2163
2164 default:
2165 if ((e_type >= ET_LOPROC) && (e_type <= ET_HIPROC))
2166 snprintf (buff, sizeof (buff), _("Processor Specific: (%x)"), e_type);
2167 else if ((e_type >= ET_LOOS) && (e_type <= ET_HIOS))
2168 snprintf (buff, sizeof (buff), _("OS Specific: (%x)"), e_type);
2169 else
2170 snprintf (buff, sizeof (buff), _("<unknown>: %x"), e_type);
2171 return buff;
2172 }
2173 }
2174
2175 static char *
2176 get_machine_name (unsigned e_machine)
2177 {
2178 static char buff[64]; /* XXX */
2179
2180 switch (e_machine)
2181 {
2182 case EM_NONE: return _("None");
2183 case EM_AARCH64: return "AArch64";
2184 case EM_M32: return "WE32100";
2185 case EM_SPARC: return "Sparc";
2186 case EM_SPU: return "SPU";
2187 case EM_386: return "Intel 80386";
2188 case EM_68K: return "MC68000";
2189 case EM_88K: return "MC88000";
2190 case EM_IAMCU: return "Intel MCU";
2191 case EM_860: return "Intel 80860";
2192 case EM_MIPS: return "MIPS R3000";
2193 case EM_S370: return "IBM System/370";
2194 case EM_MIPS_RS3_LE: return "MIPS R4000 big-endian";
2195 case EM_OLD_SPARCV9: return "Sparc v9 (old)";
2196 case EM_PARISC: return "HPPA";
2197 case EM_PPC_OLD: return "Power PC (old)";
2198 case EM_SPARC32PLUS: return "Sparc v8+" ;
2199 case EM_960: return "Intel 90860";
2200 case EM_PPC: return "PowerPC";
2201 case EM_PPC64: return "PowerPC64";
2202 case EM_FR20: return "Fujitsu FR20";
2203 case EM_FT32: return "FTDI FT32";
2204 case EM_RH32: return "TRW RH32";
2205 case EM_MCORE: return "MCORE";
2206 case EM_ARM: return "ARM";
2207 case EM_OLD_ALPHA: return "Digital Alpha (old)";
2208 case EM_SH: return "Renesas / SuperH SH";
2209 case EM_SPARCV9: return "Sparc v9";
2210 case EM_TRICORE: return "Siemens Tricore";
2211 case EM_ARC: return "ARC";
2212 case EM_ARC_COMPACT: return "ARCompact";
2213 case EM_ARC_COMPACT2: return "ARCv2";
2214 case EM_H8_300: return "Renesas H8/300";
2215 case EM_H8_300H: return "Renesas H8/300H";
2216 case EM_H8S: return "Renesas H8S";
2217 case EM_H8_500: return "Renesas H8/500";
2218 case EM_IA_64: return "Intel IA-64";
2219 case EM_MIPS_X: return "Stanford MIPS-X";
2220 case EM_COLDFIRE: return "Motorola Coldfire";
2221 case EM_ALPHA: return "Alpha";
2222 case EM_CYGNUS_D10V:
2223 case EM_D10V: return "d10v";
2224 case EM_CYGNUS_D30V:
2225 case EM_D30V: return "d30v";
2226 case EM_CYGNUS_M32R:
2227 case EM_M32R: return "Renesas M32R (formerly Mitsubishi M32r)";
2228 case EM_CYGNUS_V850:
2229 case EM_V800: return "Renesas V850 (using RH850 ABI)";
2230 case EM_V850: return "Renesas V850";
2231 case EM_CYGNUS_MN10300:
2232 case EM_MN10300: return "mn10300";
2233 case EM_CYGNUS_MN10200:
2234 case EM_MN10200: return "mn10200";
2235 case EM_MOXIE: return "Moxie";
2236 case EM_CYGNUS_FR30:
2237 case EM_FR30: return "Fujitsu FR30";
2238 case EM_CYGNUS_FRV: return "Fujitsu FR-V";
2239 case EM_PJ_OLD:
2240 case EM_PJ: return "picoJava";
2241 case EM_MMA: return "Fujitsu Multimedia Accelerator";
2242 case EM_PCP: return "Siemens PCP";
2243 case EM_NCPU: return "Sony nCPU embedded RISC processor";
2244 case EM_NDR1: return "Denso NDR1 microprocesspr";
2245 case EM_STARCORE: return "Motorola Star*Core processor";
2246 case EM_ME16: return "Toyota ME16 processor";
2247 case EM_ST100: return "STMicroelectronics ST100 processor";
2248 case EM_TINYJ: return "Advanced Logic Corp. TinyJ embedded processor";
2249 case EM_PDSP: return "Sony DSP processor";
2250 case EM_PDP10: return "Digital Equipment Corp. PDP-10";
2251 case EM_PDP11: return "Digital Equipment Corp. PDP-11";
2252 case EM_FX66: return "Siemens FX66 microcontroller";
2253 case EM_ST9PLUS: return "STMicroelectronics ST9+ 8/16 bit microcontroller";
2254 case EM_ST7: return "STMicroelectronics ST7 8-bit microcontroller";
2255 case EM_68HC16: return "Motorola MC68HC16 Microcontroller";
2256 case EM_68HC12: return "Motorola MC68HC12 Microcontroller";
2257 case EM_68HC11: return "Motorola MC68HC11 Microcontroller";
2258 case EM_68HC08: return "Motorola MC68HC08 Microcontroller";
2259 case EM_68HC05: return "Motorola MC68HC05 Microcontroller";
2260 case EM_SVX: return "Silicon Graphics SVx";
2261 case EM_ST19: return "STMicroelectronics ST19 8-bit microcontroller";
2262 case EM_VAX: return "Digital VAX";
2263 case EM_VISIUM: return "CDS VISIUMcore processor";
2264 case EM_AVR_OLD:
2265 case EM_AVR: return "Atmel AVR 8-bit microcontroller";
2266 case EM_CRIS: return "Axis Communications 32-bit embedded processor";
2267 case EM_JAVELIN: return "Infineon Technologies 32-bit embedded cpu";
2268 case EM_FIREPATH: return "Element 14 64-bit DSP processor";
2269 case EM_ZSP: return "LSI Logic's 16-bit DSP processor";
2270 case EM_MMIX: return "Donald Knuth's educational 64-bit processor";
2271 case EM_HUANY: return "Harvard Universitys's machine-independent object format";
2272 case EM_PRISM: return "Vitesse Prism";
2273 case EM_X86_64: return "Advanced Micro Devices X86-64";
2274 case EM_L1OM: return "Intel L1OM";
2275 case EM_K1OM: return "Intel K1OM";
2276 case EM_S390_OLD:
2277 case EM_S390: return "IBM S/390";
2278 case EM_SCORE: return "SUNPLUS S+Core";
2279 case EM_XSTORMY16: return "Sanyo XStormy16 CPU core";
2280 case EM_OR1K: return "OpenRISC 1000";
2281 case EM_CRX: return "National Semiconductor CRX microprocessor";
2282 case EM_ADAPTEVA_EPIPHANY: return "Adapteva EPIPHANY";
2283 case EM_DLX: return "OpenDLX";
2284 case EM_IP2K_OLD:
2285 case EM_IP2K: return "Ubicom IP2xxx 8-bit microcontrollers";
2286 case EM_IQ2000: return "Vitesse IQ2000";
2287 case EM_XTENSA_OLD:
2288 case EM_XTENSA: return "Tensilica Xtensa Processor";
2289 case EM_VIDEOCORE: return "Alphamosaic VideoCore processor";
2290 case EM_TMM_GPP: return "Thompson Multimedia General Purpose Processor";
2291 case EM_NS32K: return "National Semiconductor 32000 series";
2292 case EM_TPC: return "Tenor Network TPC processor";
2293 case EM_ST200: return "STMicroelectronics ST200 microcontroller";
2294 case EM_MAX: return "MAX Processor";
2295 case EM_CR: return "National Semiconductor CompactRISC";
2296 case EM_F2MC16: return "Fujitsu F2MC16";
2297 case EM_MSP430: return "Texas Instruments msp430 microcontroller";
2298 case EM_LATTICEMICO32: return "Lattice Mico32";
2299 case EM_M32C_OLD:
2300 case EM_M32C: return "Renesas M32c";
2301 case EM_MT: return "Morpho Techologies MT processor";
2302 case EM_BLACKFIN: return "Analog Devices Blackfin";
2303 case EM_SE_C33: return "S1C33 Family of Seiko Epson processors";
2304 case EM_SEP: return "Sharp embedded microprocessor";
2305 case EM_ARCA: return "Arca RISC microprocessor";
2306 case EM_UNICORE: return "Unicore";
2307 case EM_EXCESS: return "eXcess 16/32/64-bit configurable embedded CPU";
2308 case EM_DXP: return "Icera Semiconductor Inc. Deep Execution Processor";
2309 case EM_NIOS32: return "Altera Nios";
2310 case EM_ALTERA_NIOS2: return "Altera Nios II";
2311 case EM_C166:
2312 case EM_XC16X: return "Infineon Technologies xc16x";
2313 case EM_M16C: return "Renesas M16C series microprocessors";
2314 case EM_DSPIC30F: return "Microchip Technology dsPIC30F Digital Signal Controller";
2315 case EM_CE: return "Freescale Communication Engine RISC core";
2316 case EM_TSK3000: return "Altium TSK3000 core";
2317 case EM_RS08: return "Freescale RS08 embedded processor";
2318 case EM_ECOG2: return "Cyan Technology eCOG2 microprocessor";
2319 case EM_DSP24: return "New Japan Radio (NJR) 24-bit DSP Processor";
2320 case EM_VIDEOCORE3: return "Broadcom VideoCore III processor";
2321 case EM_SE_C17: return "Seiko Epson C17 family";
2322 case EM_TI_C6000: return "Texas Instruments TMS320C6000 DSP family";
2323 case EM_TI_C2000: return "Texas Instruments TMS320C2000 DSP family";
2324 case EM_TI_C5500: return "Texas Instruments TMS320C55x DSP family";
2325 case EM_MMDSP_PLUS: return "STMicroelectronics 64bit VLIW Data Signal Processor";
2326 case EM_CYPRESS_M8C: return "Cypress M8C microprocessor";
2327 case EM_R32C: return "Renesas R32C series microprocessors";
2328 case EM_TRIMEDIA: return "NXP Semiconductors TriMedia architecture family";
2329 case EM_QDSP6: return "QUALCOMM DSP6 Processor";
2330 case EM_8051: return "Intel 8051 and variants";
2331 case EM_STXP7X: return "STMicroelectronics STxP7x family";
2332 case EM_NDS32: return "Andes Technology compact code size embedded RISC processor family";
2333 case EM_ECOG1X: return "Cyan Technology eCOG1X family";
2334 case EM_MAXQ30: return "Dallas Semiconductor MAXQ30 Core microcontrollers";
2335 case EM_XIMO16: return "New Japan Radio (NJR) 16-bit DSP Processor";
2336 case EM_MANIK: return "M2000 Reconfigurable RISC Microprocessor";
2337 case EM_CRAYNV2: return "Cray Inc. NV2 vector architecture";
2338 case EM_CYGNUS_MEP: return "Toshiba MeP Media Engine";
2339 case EM_CR16:
2340 case EM_MICROBLAZE:
2341 case EM_MICROBLAZE_OLD: return "Xilinx MicroBlaze";
2342 case EM_RISCV: return "RISC-V";
2343 case EM_RL78: return "Renesas RL78";
2344 case EM_RX: return "Renesas RX";
2345 case EM_METAG: return "Imagination Technologies Meta processor architecture";
2346 case EM_MCST_ELBRUS: return "MCST Elbrus general purpose hardware architecture";
2347 case EM_ECOG16: return "Cyan Technology eCOG16 family";
2348 case EM_ETPU: return "Freescale Extended Time Processing Unit";
2349 case EM_SLE9X: return "Infineon Technologies SLE9X core";
2350 case EM_AVR32: return "Atmel Corporation 32-bit microprocessor family";
2351 case EM_STM8: return "STMicroeletronics STM8 8-bit microcontroller";
2352 case EM_TILE64: return "Tilera TILE64 multicore architecture family";
2353 case EM_TILEPRO: return "Tilera TILEPro multicore architecture family";
2354 case EM_TILEGX: return "Tilera TILE-Gx multicore architecture family";
2355 case EM_CUDA: return "NVIDIA CUDA architecture";
2356 case EM_XGATE: return "Motorola XGATE embedded processor";
2357 case EM_CLOUDSHIELD: return "CloudShield architecture family";
2358 case EM_COREA_1ST: return "KIPO-KAIST Core-A 1st generation processor family";
2359 case EM_COREA_2ND: return "KIPO-KAIST Core-A 2nd generation processor family";
2360 case EM_OPEN8: return "Open8 8-bit RISC soft processor core";
2361 case EM_VIDEOCORE5: return "Broadcom VideoCore V processor";
2362 case EM_56800EX: return "Freescale 56800EX Digital Signal Controller (DSC)";
2363 case EM_BA1: return "Beyond BA1 CPU architecture";
2364 case EM_BA2: return "Beyond BA2 CPU architecture";
2365 case EM_XCORE: return "XMOS xCORE processor family";
2366 case EM_MCHP_PIC: return "Microchip 8-bit PIC(r) family";
2367 case EM_KM32: return "KM211 KM32 32-bit processor";
2368 case EM_KMX32: return "KM211 KMX32 32-bit processor";
2369 case EM_KMX16: return "KM211 KMX16 16-bit processor";
2370 case EM_KMX8: return "KM211 KMX8 8-bit processor";
2371 case EM_KVARC: return "KM211 KVARC processor";
2372 case EM_CDP: return "Paneve CDP architecture family";
2373 case EM_COGE: return "Cognitive Smart Memory Processor";
2374 case EM_COOL: return "Bluechip Systems CoolEngine";
2375 case EM_NORC: return "Nanoradio Optimized RISC";
2376 case EM_CSR_KALIMBA: return "CSR Kalimba architecture family";
2377 case EM_Z80: return "Zilog Z80";
2378 case EM_AMDGPU: return "AMD GPU architecture";
2379 case EM_TI_PRU: return "TI PRU I/O processor";
2380 default:
2381 snprintf (buff, sizeof (buff), _("<unknown>: 0x%x"), e_machine);
2382 return buff;
2383 }
2384 }
2385
2386 static void
2387 decode_ARC_machine_flags (unsigned e_flags, unsigned e_machine, char buf[])
2388 {
2389 /* ARC has two machine types EM_ARC_COMPACT and EM_ARC_COMPACT2. Some
2390 other compilers don't a specific architecture type in the e_flags, and
2391 instead use EM_ARC_COMPACT for old ARC600, ARC601, and ARC700
2392 architectures, and switch to EM_ARC_COMPACT2 for newer ARCEM and ARCHS
2393 architectures.
2394
2395 Th GNU tools follows this use of EM_ARC_COMPACT and EM_ARC_COMPACT2,
2396 but also sets a specific architecture type in the e_flags field.
2397
2398 However, when decoding the flags we don't worry if we see an
2399 unexpected pairing, for example EM_ARC_COMPACT machine type, with
2400 ARCEM architecture type. */
2401
2402 switch (e_flags & EF_ARC_MACH_MSK)
2403 {
2404 /* We only expect these to occur for EM_ARC_COMPACT2. */
2405 case EF_ARC_CPU_ARCV2EM:
2406 strcat (buf, ", ARC EM");
2407 break;
2408 case EF_ARC_CPU_ARCV2HS:
2409 strcat (buf, ", ARC HS");
2410 break;
2411
2412 /* We only expect these to occur for EM_ARC_COMPACT. */
2413 case E_ARC_MACH_ARC600:
2414 strcat (buf, ", ARC600");
2415 break;
2416 case E_ARC_MACH_ARC601:
2417 strcat (buf, ", ARC601");
2418 break;
2419 case E_ARC_MACH_ARC700:
2420 strcat (buf, ", ARC700");
2421 break;
2422
2423 /* The only times we should end up here are (a) A corrupt ELF, (b) A
2424 new ELF with new architecture being read by an old version of
2425 readelf, or (c) An ELF built with non-GNU compiler that does not
2426 set the architecture in the e_flags. */
2427 default:
2428 if (e_machine == EM_ARC_COMPACT)
2429 strcat (buf, ", Unknown ARCompact");
2430 else
2431 strcat (buf, ", Unknown ARC");
2432 break;
2433 }
2434
2435 switch (e_flags & EF_ARC_OSABI_MSK)
2436 {
2437 case E_ARC_OSABI_ORIG:
2438 strcat (buf, ", (ABI:legacy)");
2439 break;
2440 case E_ARC_OSABI_V2:
2441 strcat (buf, ", (ABI:v2)");
2442 break;
2443 /* Only upstream 3.9+ kernels will support ARCv2 ISA. */
2444 case E_ARC_OSABI_V3:
2445 strcat (buf, ", v3 no-legacy-syscalls ABI");
2446 break;
2447 default:
2448 strcat (buf, ", unrecognised ARC OSABI flag");
2449 break;
2450 }
2451 }
2452
2453 static void
2454 decode_ARM_machine_flags (unsigned e_flags, char buf[])
2455 {
2456 unsigned eabi;
2457 int unknown = 0;
2458
2459 eabi = EF_ARM_EABI_VERSION (e_flags);
2460 e_flags &= ~ EF_ARM_EABIMASK;
2461
2462 /* Handle "generic" ARM flags. */
2463 if (e_flags & EF_ARM_RELEXEC)
2464 {
2465 strcat (buf, ", relocatable executable");
2466 e_flags &= ~ EF_ARM_RELEXEC;
2467 }
2468
2469 /* Now handle EABI specific flags. */
2470 switch (eabi)
2471 {
2472 default:
2473 strcat (buf, ", <unrecognized EABI>");
2474 if (e_flags)
2475 unknown = 1;
2476 break;
2477
2478 case EF_ARM_EABI_VER1:
2479 strcat (buf, ", Version1 EABI");
2480 while (e_flags)
2481 {
2482 unsigned flag;
2483
2484 /* Process flags one bit at a time. */
2485 flag = e_flags & - e_flags;
2486 e_flags &= ~ flag;
2487
2488 switch (flag)
2489 {
2490 case EF_ARM_SYMSARESORTED: /* Conflicts with EF_ARM_INTERWORK. */
2491 strcat (buf, ", sorted symbol tables");
2492 break;
2493
2494 default:
2495 unknown = 1;
2496 break;
2497 }
2498 }
2499 break;
2500
2501 case EF_ARM_EABI_VER2:
2502 strcat (buf, ", Version2 EABI");
2503 while (e_flags)
2504 {
2505 unsigned flag;
2506
2507 /* Process flags one bit at a time. */
2508 flag = e_flags & - e_flags;
2509 e_flags &= ~ flag;
2510
2511 switch (flag)
2512 {
2513 case EF_ARM_SYMSARESORTED: /* Conflicts with EF_ARM_INTERWORK. */
2514 strcat (buf, ", sorted symbol tables");
2515 break;
2516
2517 case EF_ARM_DYNSYMSUSESEGIDX:
2518 strcat (buf, ", dynamic symbols use segment index");
2519 break;
2520
2521 case EF_ARM_MAPSYMSFIRST:
2522 strcat (buf, ", mapping symbols precede others");
2523 break;
2524
2525 default:
2526 unknown = 1;
2527 break;
2528 }
2529 }
2530 break;
2531
2532 case EF_ARM_EABI_VER3:
2533 strcat (buf, ", Version3 EABI");
2534 break;
2535
2536 case EF_ARM_EABI_VER4:
2537 strcat (buf, ", Version4 EABI");
2538 while (e_flags)
2539 {
2540 unsigned flag;
2541
2542 /* Process flags one bit at a time. */
2543 flag = e_flags & - e_flags;
2544 e_flags &= ~ flag;
2545
2546 switch (flag)
2547 {
2548 case EF_ARM_BE8:
2549 strcat (buf, ", BE8");
2550 break;
2551
2552 case EF_ARM_LE8:
2553 strcat (buf, ", LE8");
2554 break;
2555
2556 default:
2557 unknown = 1;
2558 break;
2559 }
2560 break;
2561 }
2562 break;
2563
2564 case EF_ARM_EABI_VER5:
2565 strcat (buf, ", Version5 EABI");
2566 while (e_flags)
2567 {
2568 unsigned flag;
2569
2570 /* Process flags one bit at a time. */
2571 flag = e_flags & - e_flags;
2572 e_flags &= ~ flag;
2573
2574 switch (flag)
2575 {
2576 case EF_ARM_BE8:
2577 strcat (buf, ", BE8");
2578 break;
2579
2580 case EF_ARM_LE8:
2581 strcat (buf, ", LE8");
2582 break;
2583
2584 case EF_ARM_ABI_FLOAT_SOFT: /* Conflicts with EF_ARM_SOFT_FLOAT. */
2585 strcat (buf, ", soft-float ABI");
2586 break;
2587
2588 case EF_ARM_ABI_FLOAT_HARD: /* Conflicts with EF_ARM_VFP_FLOAT. */
2589 strcat (buf, ", hard-float ABI");
2590 break;
2591
2592 default:
2593 unknown = 1;
2594 break;
2595 }
2596 }
2597 break;
2598
2599 case EF_ARM_EABI_UNKNOWN:
2600 strcat (buf, ", GNU EABI");
2601 while (e_flags)
2602 {
2603 unsigned flag;
2604
2605 /* Process flags one bit at a time. */
2606 flag = e_flags & - e_flags;
2607 e_flags &= ~ flag;
2608
2609 switch (flag)
2610 {
2611 case EF_ARM_INTERWORK:
2612 strcat (buf, ", interworking enabled");
2613 break;
2614
2615 case EF_ARM_APCS_26:
2616 strcat (buf, ", uses APCS/26");
2617 break;
2618
2619 case EF_ARM_APCS_FLOAT:
2620 strcat (buf, ", uses APCS/float");
2621 break;
2622
2623 case EF_ARM_PIC:
2624 strcat (buf, ", position independent");
2625 break;
2626
2627 case EF_ARM_ALIGN8:
2628 strcat (buf, ", 8 bit structure alignment");
2629 break;
2630
2631 case EF_ARM_NEW_ABI:
2632 strcat (buf, ", uses new ABI");
2633 break;
2634
2635 case EF_ARM_OLD_ABI:
2636 strcat (buf, ", uses old ABI");
2637 break;
2638
2639 case EF_ARM_SOFT_FLOAT:
2640 strcat (buf, ", software FP");
2641 break;
2642
2643 case EF_ARM_VFP_FLOAT:
2644 strcat (buf, ", VFP");
2645 break;
2646
2647 case EF_ARM_MAVERICK_FLOAT:
2648 strcat (buf, ", Maverick FP");
2649 break;
2650
2651 default:
2652 unknown = 1;
2653 break;
2654 }
2655 }
2656 }
2657
2658 if (unknown)
2659 strcat (buf,_(", <unknown>"));
2660 }
2661
2662 static void
2663 decode_AVR_machine_flags (unsigned e_flags, char buf[], size_t size)
2664 {
2665 --size; /* Leave space for null terminator. */
2666
2667 switch (e_flags & EF_AVR_MACH)
2668 {
2669 case E_AVR_MACH_AVR1:
2670 strncat (buf, ", avr:1", size);
2671 break;
2672 case E_AVR_MACH_AVR2:
2673 strncat (buf, ", avr:2", size);
2674 break;
2675 case E_AVR_MACH_AVR25:
2676 strncat (buf, ", avr:25", size);
2677 break;
2678 case E_AVR_MACH_AVR3:
2679 strncat (buf, ", avr:3", size);
2680 break;
2681 case E_AVR_MACH_AVR31:
2682 strncat (buf, ", avr:31", size);
2683 break;
2684 case E_AVR_MACH_AVR35:
2685 strncat (buf, ", avr:35", size);
2686 break;
2687 case E_AVR_MACH_AVR4:
2688 strncat (buf, ", avr:4", size);
2689 break;
2690 case E_AVR_MACH_AVR5:
2691 strncat (buf, ", avr:5", size);
2692 break;
2693 case E_AVR_MACH_AVR51:
2694 strncat (buf, ", avr:51", size);
2695 break;
2696 case E_AVR_MACH_AVR6:
2697 strncat (buf, ", avr:6", size);
2698 break;
2699 case E_AVR_MACH_AVRTINY:
2700 strncat (buf, ", avr:100", size);
2701 break;
2702 case E_AVR_MACH_XMEGA1:
2703 strncat (buf, ", avr:101", size);
2704 break;
2705 case E_AVR_MACH_XMEGA2:
2706 strncat (buf, ", avr:102", size);
2707 break;
2708 case E_AVR_MACH_XMEGA3:
2709 strncat (buf, ", avr:103", size);
2710 break;
2711 case E_AVR_MACH_XMEGA4:
2712 strncat (buf, ", avr:104", size);
2713 break;
2714 case E_AVR_MACH_XMEGA5:
2715 strncat (buf, ", avr:105", size);
2716 break;
2717 case E_AVR_MACH_XMEGA6:
2718 strncat (buf, ", avr:106", size);
2719 break;
2720 case E_AVR_MACH_XMEGA7:
2721 strncat (buf, ", avr:107", size);
2722 break;
2723 default:
2724 strncat (buf, ", avr:<unknown>", size);
2725 break;
2726 }
2727
2728 size -= strlen (buf);
2729 if (e_flags & EF_AVR_LINKRELAX_PREPARED)
2730 strncat (buf, ", link-relax", size);
2731 }
2732
2733 static void
2734 decode_NDS32_machine_flags (unsigned e_flags, char buf[], size_t size)
2735 {
2736 unsigned abi;
2737 unsigned arch;
2738 unsigned config;
2739 unsigned version;
2740 int has_fpu = 0;
2741 int r = 0;
2742
2743 static const char *ABI_STRINGS[] =
2744 {
2745 "ABI v0", /* use r5 as return register; only used in N1213HC */
2746 "ABI v1", /* use r0 as return register */
2747 "ABI v2", /* use r0 as return register and don't reserve 24 bytes for arguments */
2748 "ABI v2fp", /* for FPU */
2749 "AABI",
2750 "ABI2 FP+"
2751 };
2752 static const char *VER_STRINGS[] =
2753 {
2754 "Andes ELF V1.3 or older",
2755 "Andes ELF V1.3.1",
2756 "Andes ELF V1.4"
2757 };
2758 static const char *ARCH_STRINGS[] =
2759 {
2760 "",
2761 "Andes Star v1.0",
2762 "Andes Star v2.0",
2763 "Andes Star v3.0",
2764 "Andes Star v3.0m"
2765 };
2766
2767 abi = EF_NDS_ABI & e_flags;
2768 arch = EF_NDS_ARCH & e_flags;
2769 config = EF_NDS_INST & e_flags;
2770 version = EF_NDS32_ELF_VERSION & e_flags;
2771
2772 memset (buf, 0, size);
2773
2774 switch (abi)
2775 {
2776 case E_NDS_ABI_V0:
2777 case E_NDS_ABI_V1:
2778 case E_NDS_ABI_V2:
2779 case E_NDS_ABI_V2FP:
2780 case E_NDS_ABI_AABI:
2781 case E_NDS_ABI_V2FP_PLUS:
2782 /* In case there are holes in the array. */
2783 r += snprintf (buf + r, size - r, ", %s", ABI_STRINGS[abi >> EF_NDS_ABI_SHIFT]);
2784 break;
2785
2786 default:
2787 r += snprintf (buf + r, size - r, ", <unrecognized ABI>");
2788 break;
2789 }
2790
2791 switch (version)
2792 {
2793 case E_NDS32_ELF_VER_1_2:
2794 case E_NDS32_ELF_VER_1_3:
2795 case E_NDS32_ELF_VER_1_4:
2796 r += snprintf (buf + r, size - r, ", %s", VER_STRINGS[version >> EF_NDS32_ELF_VERSION_SHIFT]);
2797 break;
2798
2799 default:
2800 r += snprintf (buf + r, size - r, ", <unrecognized ELF version number>");
2801 break;
2802 }
2803
2804 if (E_NDS_ABI_V0 == abi)
2805 {
2806 /* OLD ABI; only used in N1213HC, has performance extension 1. */
2807 r += snprintf (buf + r, size - r, ", Andes Star v1.0, N1213HC, MAC, PERF1");
2808 if (arch == E_NDS_ARCH_STAR_V1_0)
2809 r += snprintf (buf + r, size -r, ", 16b"); /* has 16-bit instructions */
2810 return;
2811 }
2812
2813 switch (arch)
2814 {
2815 case E_NDS_ARCH_STAR_V1_0:
2816 case E_NDS_ARCH_STAR_V2_0:
2817 case E_NDS_ARCH_STAR_V3_0:
2818 case E_NDS_ARCH_STAR_V3_M:
2819 r += snprintf (buf + r, size - r, ", %s", ARCH_STRINGS[arch >> EF_NDS_ARCH_SHIFT]);
2820 break;
2821
2822 default:
2823 r += snprintf (buf + r, size - r, ", <unrecognized architecture>");
2824 /* ARCH version determines how the e_flags are interpreted.
2825 If it is unknown, we cannot proceed. */
2826 return;
2827 }
2828
2829 /* Newer ABI; Now handle architecture specific flags. */
2830 if (arch == E_NDS_ARCH_STAR_V1_0)
2831 {
2832 if (config & E_NDS32_HAS_MFUSR_PC_INST)
2833 r += snprintf (buf + r, size -r, ", MFUSR_PC");
2834
2835 if (!(config & E_NDS32_HAS_NO_MAC_INST))
2836 r += snprintf (buf + r, size -r, ", MAC");
2837
2838 if (config & E_NDS32_HAS_DIV_INST)
2839 r += snprintf (buf + r, size -r, ", DIV");
2840
2841 if (config & E_NDS32_HAS_16BIT_INST)
2842 r += snprintf (buf + r, size -r, ", 16b");
2843 }
2844 else
2845 {
2846 if (config & E_NDS32_HAS_MFUSR_PC_INST)
2847 {
2848 if (version <= E_NDS32_ELF_VER_1_3)
2849 r += snprintf (buf + r, size -r, ", [B8]");
2850 else
2851 r += snprintf (buf + r, size -r, ", EX9");
2852 }
2853
2854 if (config & E_NDS32_HAS_MAC_DX_INST)
2855 r += snprintf (buf + r, size -r, ", MAC_DX");
2856
2857 if (config & E_NDS32_HAS_DIV_DX_INST)
2858 r += snprintf (buf + r, size -r, ", DIV_DX");
2859
2860 if (config & E_NDS32_HAS_16BIT_INST)
2861 {
2862 if (version <= E_NDS32_ELF_VER_1_3)
2863 r += snprintf (buf + r, size -r, ", 16b");
2864 else
2865 r += snprintf (buf + r, size -r, ", IFC");
2866 }
2867 }
2868
2869 if (config & E_NDS32_HAS_EXT_INST)
2870 r += snprintf (buf + r, size -r, ", PERF1");
2871
2872 if (config & E_NDS32_HAS_EXT2_INST)
2873 r += snprintf (buf + r, size -r, ", PERF2");
2874
2875 if (config & E_NDS32_HAS_FPU_INST)
2876 {
2877 has_fpu = 1;
2878 r += snprintf (buf + r, size -r, ", FPU_SP");
2879 }
2880
2881 if (config & E_NDS32_HAS_FPU_DP_INST)
2882 {
2883 has_fpu = 1;
2884 r += snprintf (buf + r, size -r, ", FPU_DP");
2885 }
2886
2887 if (config & E_NDS32_HAS_FPU_MAC_INST)
2888 {
2889 has_fpu = 1;
2890 r += snprintf (buf + r, size -r, ", FPU_MAC");
2891 }
2892
2893 if (has_fpu)
2894 {
2895 switch ((config & E_NDS32_FPU_REG_CONF) >> E_NDS32_FPU_REG_CONF_SHIFT)
2896 {
2897 case E_NDS32_FPU_REG_8SP_4DP:
2898 r += snprintf (buf + r, size -r, ", FPU_REG:8/4");
2899 break;
2900 case E_NDS32_FPU_REG_16SP_8DP:
2901 r += snprintf (buf + r, size -r, ", FPU_REG:16/8");
2902 break;
2903 case E_NDS32_FPU_REG_32SP_16DP:
2904 r += snprintf (buf + r, size -r, ", FPU_REG:32/16");
2905 break;
2906 case E_NDS32_FPU_REG_32SP_32DP:
2907 r += snprintf (buf + r, size -r, ", FPU_REG:32/32");
2908 break;
2909 }
2910 }
2911
2912 if (config & E_NDS32_HAS_AUDIO_INST)
2913 r += snprintf (buf + r, size -r, ", AUDIO");
2914
2915 if (config & E_NDS32_HAS_STRING_INST)
2916 r += snprintf (buf + r, size -r, ", STR");
2917
2918 if (config & E_NDS32_HAS_REDUCED_REGS)
2919 r += snprintf (buf + r, size -r, ", 16REG");
2920
2921 if (config & E_NDS32_HAS_VIDEO_INST)
2922 {
2923 if (version <= E_NDS32_ELF_VER_1_3)
2924 r += snprintf (buf + r, size -r, ", VIDEO");
2925 else
2926 r += snprintf (buf + r, size -r, ", SATURATION");
2927 }
2928
2929 if (config & E_NDS32_HAS_ENCRIPT_INST)
2930 r += snprintf (buf + r, size -r, ", ENCRP");
2931
2932 if (config & E_NDS32_HAS_L2C_INST)
2933 r += snprintf (buf + r, size -r, ", L2C");
2934 }
2935
2936 static char *
2937 get_machine_flags (unsigned e_flags, unsigned e_machine)
2938 {
2939 static char buf[1024];
2940
2941 buf[0] = '\0';
2942
2943 if (e_flags)
2944 {
2945 switch (e_machine)
2946 {
2947 default:
2948 break;
2949
2950 case EM_ARC_COMPACT2:
2951 case EM_ARC_COMPACT:
2952 decode_ARC_machine_flags (e_flags, e_machine, buf);
2953 break;
2954
2955 case EM_ARM:
2956 decode_ARM_machine_flags (e_flags, buf);
2957 break;
2958
2959 case EM_AVR:
2960 decode_AVR_machine_flags (e_flags, buf, sizeof buf);
2961 break;
2962
2963 case EM_BLACKFIN:
2964 if (e_flags & EF_BFIN_PIC)
2965 strcat (buf, ", PIC");
2966
2967 if (e_flags & EF_BFIN_FDPIC)
2968 strcat (buf, ", FDPIC");
2969
2970 if (e_flags & EF_BFIN_CODE_IN_L1)
2971 strcat (buf, ", code in L1");
2972
2973 if (e_flags & EF_BFIN_DATA_IN_L1)
2974 strcat (buf, ", data in L1");
2975
2976 break;
2977
2978 case EM_CYGNUS_FRV:
2979 switch (e_flags & EF_FRV_CPU_MASK)
2980 {
2981 case EF_FRV_CPU_GENERIC:
2982 break;
2983
2984 default:
2985 strcat (buf, ", fr???");
2986 break;
2987
2988 case EF_FRV_CPU_FR300:
2989 strcat (buf, ", fr300");
2990 break;
2991
2992 case EF_FRV_CPU_FR400:
2993 strcat (buf, ", fr400");
2994 break;
2995 case EF_FRV_CPU_FR405:
2996 strcat (buf, ", fr405");
2997 break;
2998
2999 case EF_FRV_CPU_FR450:
3000 strcat (buf, ", fr450");
3001 break;
3002
3003 case EF_FRV_CPU_FR500:
3004 strcat (buf, ", fr500");
3005 break;
3006 case EF_FRV_CPU_FR550:
3007 strcat (buf, ", fr550");
3008 break;
3009
3010 case EF_FRV_CPU_SIMPLE:
3011 strcat (buf, ", simple");
3012 break;
3013 case EF_FRV_CPU_TOMCAT:
3014 strcat (buf, ", tomcat");
3015 break;
3016 }
3017 break;
3018
3019 case EM_68K:
3020 if ((e_flags & EF_M68K_ARCH_MASK) == EF_M68K_M68000)
3021 strcat (buf, ", m68000");
3022 else if ((e_flags & EF_M68K_ARCH_MASK) == EF_M68K_CPU32)
3023 strcat (buf, ", cpu32");
3024 else if ((e_flags & EF_M68K_ARCH_MASK) == EF_M68K_FIDO)
3025 strcat (buf, ", fido_a");
3026 else
3027 {
3028 char const * isa = _("unknown");
3029 char const * mac = _("unknown mac");
3030 char const * additional = NULL;
3031
3032 switch (e_flags & EF_M68K_CF_ISA_MASK)
3033 {
3034 case EF_M68K_CF_ISA_A_NODIV:
3035 isa = "A";
3036 additional = ", nodiv";
3037 break;
3038 case EF_M68K_CF_ISA_A:
3039 isa = "A";
3040 break;
3041 case EF_M68K_CF_ISA_A_PLUS:
3042 isa = "A+";
3043 break;
3044 case EF_M68K_CF_ISA_B_NOUSP:
3045 isa = "B";
3046 additional = ", nousp";
3047 break;
3048 case EF_M68K_CF_ISA_B:
3049 isa = "B";
3050 break;
3051 case EF_M68K_CF_ISA_C:
3052 isa = "C";
3053 break;
3054 case EF_M68K_CF_ISA_C_NODIV:
3055 isa = "C";
3056 additional = ", nodiv";
3057 break;
3058 }
3059 strcat (buf, ", cf, isa ");
3060 strcat (buf, isa);
3061 if (additional)
3062 strcat (buf, additional);
3063 if (e_flags & EF_M68K_CF_FLOAT)
3064 strcat (buf, ", float");
3065 switch (e_flags & EF_M68K_CF_MAC_MASK)
3066 {
3067 case 0:
3068 mac = NULL;
3069 break;
3070 case EF_M68K_CF_MAC:
3071 mac = "mac";
3072 break;
3073 case EF_M68K_CF_EMAC:
3074 mac = "emac";
3075 break;
3076 case EF_M68K_CF_EMAC_B:
3077 mac = "emac_b";
3078 break;
3079 }
3080 if (mac)
3081 {
3082 strcat (buf, ", ");
3083 strcat (buf, mac);
3084 }
3085 }
3086 break;
3087
3088 case EM_CYGNUS_MEP:
3089 switch (e_flags & EF_MEP_CPU_MASK)
3090 {
3091 case EF_MEP_CPU_MEP: strcat (buf, ", generic MeP"); break;
3092 case EF_MEP_CPU_C2: strcat (buf, ", MeP C2"); break;
3093 case EF_MEP_CPU_C3: strcat (buf, ", MeP C3"); break;
3094 case EF_MEP_CPU_C4: strcat (buf, ", MeP C4"); break;
3095 case EF_MEP_CPU_C5: strcat (buf, ", MeP C5"); break;
3096 case EF_MEP_CPU_H1: strcat (buf, ", MeP H1"); break;
3097 default: strcat (buf, _(", <unknown MeP cpu type>")); break;
3098 }
3099
3100 switch (e_flags & EF_MEP_COP_MASK)
3101 {
3102 case EF_MEP_COP_NONE: break;
3103 case EF_MEP_COP_AVC: strcat (buf, ", AVC coprocessor"); break;
3104 case EF_MEP_COP_AVC2: strcat (buf, ", AVC2 coprocessor"); break;
3105 case EF_MEP_COP_FMAX: strcat (buf, ", FMAX coprocessor"); break;
3106 case EF_MEP_COP_IVC2: strcat (buf, ", IVC2 coprocessor"); break;
3107 default: strcat (buf, _("<unknown MeP copro type>")); break;
3108 }
3109
3110 if (e_flags & EF_MEP_LIBRARY)
3111 strcat (buf, ", Built for Library");
3112
3113 if (e_flags & EF_MEP_INDEX_MASK)
3114 sprintf (buf + strlen (buf), ", Configuration Index: %#x",
3115 e_flags & EF_MEP_INDEX_MASK);
3116
3117 if (e_flags & ~ EF_MEP_ALL_FLAGS)
3118 sprintf (buf + strlen (buf), _(", unknown flags bits: %#x"),
3119 e_flags & ~ EF_MEP_ALL_FLAGS);
3120 break;
3121
3122 case EM_PPC:
3123 if (e_flags & EF_PPC_EMB)
3124 strcat (buf, ", emb");
3125
3126 if (e_flags & EF_PPC_RELOCATABLE)
3127 strcat (buf, _(", relocatable"));
3128
3129 if (e_flags & EF_PPC_RELOCATABLE_LIB)
3130 strcat (buf, _(", relocatable-lib"));
3131 break;
3132
3133 case EM_PPC64:
3134 if (e_flags & EF_PPC64_ABI)
3135 {
3136 char abi[] = ", abiv0";
3137
3138 abi[6] += e_flags & EF_PPC64_ABI;
3139 strcat (buf, abi);
3140 }
3141 break;
3142
3143 case EM_V800:
3144 if ((e_flags & EF_RH850_ABI) == EF_RH850_ABI)
3145 strcat (buf, ", RH850 ABI");
3146
3147 if (e_flags & EF_V800_850E3)
3148 strcat (buf, ", V3 architecture");
3149
3150 if ((e_flags & (EF_RH850_FPU_DOUBLE | EF_RH850_FPU_SINGLE)) == 0)
3151 strcat (buf, ", FPU not used");
3152
3153 if ((e_flags & (EF_RH850_REGMODE22 | EF_RH850_REGMODE32)) == 0)
3154 strcat (buf, ", regmode: COMMON");
3155
3156 if ((e_flags & (EF_RH850_GP_FIX | EF_RH850_GP_NOFIX)) == 0)
3157 strcat (buf, ", r4 not used");
3158
3159 if ((e_flags & (EF_RH850_EP_FIX | EF_RH850_EP_NOFIX)) == 0)
3160 strcat (buf, ", r30 not used");
3161
3162 if ((e_flags & (EF_RH850_TP_FIX | EF_RH850_TP_NOFIX)) == 0)
3163 strcat (buf, ", r5 not used");
3164
3165 if ((e_flags & (EF_RH850_REG2_RESERVE | EF_RH850_REG2_NORESERVE)) == 0)
3166 strcat (buf, ", r2 not used");
3167
3168 for (e_flags &= 0xFFFF; e_flags; e_flags &= ~ (e_flags & - e_flags))
3169 {
3170 switch (e_flags & - e_flags)
3171 {
3172 case EF_RH850_FPU_DOUBLE: strcat (buf, ", double precision FPU"); break;
3173 case EF_RH850_FPU_SINGLE: strcat (buf, ", single precision FPU"); break;
3174 case EF_RH850_REGMODE22: strcat (buf, ", regmode:22"); break;
3175 case EF_RH850_REGMODE32: strcat (buf, ", regmode:23"); break;
3176 case EF_RH850_GP_FIX: strcat (buf, ", r4 fixed"); break;
3177 case EF_RH850_GP_NOFIX: strcat (buf, ", r4 free"); break;
3178 case EF_RH850_EP_FIX: strcat (buf, ", r30 fixed"); break;
3179 case EF_RH850_EP_NOFIX: strcat (buf, ", r30 free"); break;
3180 case EF_RH850_TP_FIX: strcat (buf, ", r5 fixed"); break;
3181 case EF_RH850_TP_NOFIX: strcat (buf, ", r5 free"); break;
3182 case EF_RH850_REG2_RESERVE: strcat (buf, ", r2 fixed"); break;
3183 case EF_RH850_REG2_NORESERVE: strcat (buf, ", r2 free"); break;
3184 default: break;
3185 }
3186 }
3187 break;
3188
3189 case EM_V850:
3190 case EM_CYGNUS_V850:
3191 switch (e_flags & EF_V850_ARCH)
3192 {
3193 case E_V850E3V5_ARCH:
3194 strcat (buf, ", v850e3v5");
3195 break;
3196 case E_V850E2V3_ARCH:
3197 strcat (buf, ", v850e2v3");
3198 break;
3199 case E_V850E2_ARCH:
3200 strcat (buf, ", v850e2");
3201 break;
3202 case E_V850E1_ARCH:
3203 strcat (buf, ", v850e1");
3204 break;
3205 case E_V850E_ARCH:
3206 strcat (buf, ", v850e");
3207 break;
3208 case E_V850_ARCH:
3209 strcat (buf, ", v850");
3210 break;
3211 default:
3212 strcat (buf, _(", unknown v850 architecture variant"));
3213 break;
3214 }
3215 break;
3216
3217 case EM_M32R:
3218 case EM_CYGNUS_M32R:
3219 if ((e_flags & EF_M32R_ARCH) == E_M32R_ARCH)
3220 strcat (buf, ", m32r");
3221 break;
3222
3223 case EM_MIPS:
3224 case EM_MIPS_RS3_LE:
3225 if (e_flags & EF_MIPS_NOREORDER)
3226 strcat (buf, ", noreorder");
3227
3228 if (e_flags & EF_MIPS_PIC)
3229 strcat (buf, ", pic");
3230
3231 if (e_flags & EF_MIPS_CPIC)
3232 strcat (buf, ", cpic");
3233
3234 if (e_flags & EF_MIPS_UCODE)
3235 strcat (buf, ", ugen_reserved");
3236
3237 if (e_flags & EF_MIPS_ABI2)
3238 strcat (buf, ", abi2");
3239
3240 if (e_flags & EF_MIPS_OPTIONS_FIRST)
3241 strcat (buf, ", odk first");
3242
3243 if (e_flags & EF_MIPS_32BITMODE)
3244 strcat (buf, ", 32bitmode");
3245
3246 if (e_flags & EF_MIPS_NAN2008)
3247 strcat (buf, ", nan2008");
3248
3249 if (e_flags & EF_MIPS_FP64)
3250 strcat (buf, ", fp64");
3251
3252 switch ((e_flags & EF_MIPS_MACH))
3253 {
3254 case E_MIPS_MACH_3900: strcat (buf, ", 3900"); break;
3255 case E_MIPS_MACH_4010: strcat (buf, ", 4010"); break;
3256 case E_MIPS_MACH_4100: strcat (buf, ", 4100"); break;
3257 case E_MIPS_MACH_4111: strcat (buf, ", 4111"); break;
3258 case E_MIPS_MACH_4120: strcat (buf, ", 4120"); break;
3259 case E_MIPS_MACH_4650: strcat (buf, ", 4650"); break;
3260 case E_MIPS_MACH_5400: strcat (buf, ", 5400"); break;
3261 case E_MIPS_MACH_5500: strcat (buf, ", 5500"); break;
3262 case E_MIPS_MACH_SB1: strcat (buf, ", sb1"); break;
3263 case E_MIPS_MACH_9000: strcat (buf, ", 9000"); break;
3264 case E_MIPS_MACH_LS2E: strcat (buf, ", loongson-2e"); break;
3265 case E_MIPS_MACH_LS2F: strcat (buf, ", loongson-2f"); break;
3266 case E_MIPS_MACH_LS3A: strcat (buf, ", loongson-3a"); break;
3267 case E_MIPS_MACH_OCTEON: strcat (buf, ", octeon"); break;
3268 case E_MIPS_MACH_OCTEON2: strcat (buf, ", octeon2"); break;
3269 case E_MIPS_MACH_OCTEON3: strcat (buf, ", octeon3"); break;
3270 case E_MIPS_MACH_XLR: strcat (buf, ", xlr"); break;
3271 case 0:
3272 /* We simply ignore the field in this case to avoid confusion:
3273 MIPS ELF does not specify EF_MIPS_MACH, it is a GNU
3274 extension. */
3275 break;
3276 default: strcat (buf, _(", unknown CPU")); break;
3277 }
3278
3279 switch ((e_flags & EF_MIPS_ABI))
3280 {
3281 case E_MIPS_ABI_O32: strcat (buf, ", o32"); break;
3282 case E_MIPS_ABI_O64: strcat (buf, ", o64"); break;
3283 case E_MIPS_ABI_EABI32: strcat (buf, ", eabi32"); break;
3284 case E_MIPS_ABI_EABI64: strcat (buf, ", eabi64"); break;
3285 case 0:
3286 /* We simply ignore the field in this case to avoid confusion:
3287 MIPS ELF does not specify EF_MIPS_ABI, it is a GNU extension.
3288 This means it is likely to be an o32 file, but not for
3289 sure. */
3290 break;
3291 default: strcat (buf, _(", unknown ABI")); break;
3292 }
3293
3294 if (e_flags & EF_MIPS_ARCH_ASE_MDMX)
3295 strcat (buf, ", mdmx");
3296
3297 if (e_flags & EF_MIPS_ARCH_ASE_M16)
3298 strcat (buf, ", mips16");
3299
3300 if (e_flags & EF_MIPS_ARCH_ASE_MICROMIPS)
3301 strcat (buf, ", micromips");
3302
3303 switch ((e_flags & EF_MIPS_ARCH))
3304 {
3305 case E_MIPS_ARCH_1: strcat (buf, ", mips1"); break;
3306 case E_MIPS_ARCH_2: strcat (buf, ", mips2"); break;
3307 case E_MIPS_ARCH_3: strcat (buf, ", mips3"); break;
3308 case E_MIPS_ARCH_4: strcat (buf, ", mips4"); break;
3309 case E_MIPS_ARCH_5: strcat (buf, ", mips5"); break;
3310 case E_MIPS_ARCH_32: strcat (buf, ", mips32"); break;
3311 case E_MIPS_ARCH_32R2: strcat (buf, ", mips32r2"); break;
3312 case E_MIPS_ARCH_32R6: strcat (buf, ", mips32r6"); break;
3313 case E_MIPS_ARCH_64: strcat (buf, ", mips64"); break;
3314 case E_MIPS_ARCH_64R2: strcat (buf, ", mips64r2"); break;
3315 case E_MIPS_ARCH_64R6: strcat (buf, ", mips64r6"); break;
3316 default: strcat (buf, _(", unknown ISA")); break;
3317 }
3318 break;
3319
3320 case EM_NDS32:
3321 decode_NDS32_machine_flags (e_flags, buf, sizeof buf);
3322 break;
3323
3324 case EM_RISCV:
3325 if (e_flags & EF_RISCV_RVC)
3326 strcat (buf, ", RVC");
3327
3328 switch (e_flags & EF_RISCV_FLOAT_ABI)
3329 {
3330 case EF_RISCV_FLOAT_ABI_SOFT:
3331 strcat (buf, ", soft-float ABI");
3332 break;
3333
3334 case EF_RISCV_FLOAT_ABI_SINGLE:
3335 strcat (buf, ", single-float ABI");
3336 break;
3337
3338 case EF_RISCV_FLOAT_ABI_DOUBLE:
3339 strcat (buf, ", double-float ABI");
3340 break;
3341
3342 case EF_RISCV_FLOAT_ABI_QUAD:
3343 strcat (buf, ", quad-float ABI");
3344 break;
3345 }
3346 break;
3347
3348 case EM_SH:
3349 switch ((e_flags & EF_SH_MACH_MASK))
3350 {
3351 case EF_SH1: strcat (buf, ", sh1"); break;
3352 case EF_SH2: strcat (buf, ", sh2"); break;
3353 case EF_SH3: strcat (buf, ", sh3"); break;
3354 case EF_SH_DSP: strcat (buf, ", sh-dsp"); break;
3355 case EF_SH3_DSP: strcat (buf, ", sh3-dsp"); break;
3356 case EF_SH4AL_DSP: strcat (buf, ", sh4al-dsp"); break;
3357 case EF_SH3E: strcat (buf, ", sh3e"); break;
3358 case EF_SH4: strcat (buf, ", sh4"); break;
3359 case EF_SH5: strcat (buf, ", sh5"); break;
3360 case EF_SH2E: strcat (buf, ", sh2e"); break;
3361 case EF_SH4A: strcat (buf, ", sh4a"); break;
3362 case EF_SH2A: strcat (buf, ", sh2a"); break;
3363 case EF_SH4_NOFPU: strcat (buf, ", sh4-nofpu"); break;
3364 case EF_SH4A_NOFPU: strcat (buf, ", sh4a-nofpu"); break;
3365 case EF_SH2A_NOFPU: strcat (buf, ", sh2a-nofpu"); break;
3366 case EF_SH3_NOMMU: strcat (buf, ", sh3-nommu"); break;
3367 case EF_SH4_NOMMU_NOFPU: strcat (buf, ", sh4-nommu-nofpu"); break;
3368 case EF_SH2A_SH4_NOFPU: strcat (buf, ", sh2a-nofpu-or-sh4-nommu-nofpu"); break;
3369 case EF_SH2A_SH3_NOFPU: strcat (buf, ", sh2a-nofpu-or-sh3-nommu"); break;
3370 case EF_SH2A_SH4: strcat (buf, ", sh2a-or-sh4"); break;
3371 case EF_SH2A_SH3E: strcat (buf, ", sh2a-or-sh3e"); break;
3372 default: strcat (buf, _(", unknown ISA")); break;
3373 }
3374
3375 if (e_flags & EF_SH_PIC)
3376 strcat (buf, ", pic");
3377
3378 if (e_flags & EF_SH_FDPIC)
3379 strcat (buf, ", fdpic");
3380 break;
3381
3382 case EM_OR1K:
3383 if (e_flags & EF_OR1K_NODELAY)
3384 strcat (buf, ", no delay");
3385 break;
3386
3387 case EM_SPARCV9:
3388 if (e_flags & EF_SPARC_32PLUS)
3389 strcat (buf, ", v8+");
3390
3391 if (e_flags & EF_SPARC_SUN_US1)
3392 strcat (buf, ", ultrasparcI");
3393
3394 if (e_flags & EF_SPARC_SUN_US3)
3395 strcat (buf, ", ultrasparcIII");
3396
3397 if (e_flags & EF_SPARC_HAL_R1)
3398 strcat (buf, ", halr1");
3399
3400 if (e_flags & EF_SPARC_LEDATA)
3401 strcat (buf, ", ledata");
3402
3403 if ((e_flags & EF_SPARCV9_MM) == EF_SPARCV9_TSO)
3404 strcat (buf, ", tso");
3405
3406 if ((e_flags & EF_SPARCV9_MM) == EF_SPARCV9_PSO)
3407 strcat (buf, ", pso");
3408
3409 if ((e_flags & EF_SPARCV9_MM) == EF_SPARCV9_RMO)
3410 strcat (buf, ", rmo");
3411 break;
3412
3413 case EM_PARISC:
3414 switch (e_flags & EF_PARISC_ARCH)
3415 {
3416 case EFA_PARISC_1_0:
3417 strcpy (buf, ", PA-RISC 1.0");
3418 break;
3419 case EFA_PARISC_1_1:
3420 strcpy (buf, ", PA-RISC 1.1");
3421 break;
3422 case EFA_PARISC_2_0:
3423 strcpy (buf, ", PA-RISC 2.0");
3424 break;
3425 default:
3426 break;
3427 }
3428 if (e_flags & EF_PARISC_TRAPNIL)
3429 strcat (buf, ", trapnil");
3430 if (e_flags & EF_PARISC_EXT)
3431 strcat (buf, ", ext");
3432 if (e_flags & EF_PARISC_LSB)
3433 strcat (buf, ", lsb");
3434 if (e_flags & EF_PARISC_WIDE)
3435 strcat (buf, ", wide");
3436 if (e_flags & EF_PARISC_NO_KABP)
3437 strcat (buf, ", no kabp");
3438 if (e_flags & EF_PARISC_LAZYSWAP)
3439 strcat (buf, ", lazyswap");
3440 break;
3441
3442 case EM_PJ:
3443 case EM_PJ_OLD:
3444 if ((e_flags & EF_PICOJAVA_NEWCALLS) == EF_PICOJAVA_NEWCALLS)
3445 strcat (buf, ", new calling convention");
3446
3447 if ((e_flags & EF_PICOJAVA_GNUCALLS) == EF_PICOJAVA_GNUCALLS)
3448 strcat (buf, ", gnu calling convention");
3449 break;
3450
3451 case EM_IA_64:
3452 if ((e_flags & EF_IA_64_ABI64))
3453 strcat (buf, ", 64-bit");
3454 else
3455 strcat (buf, ", 32-bit");
3456 if ((e_flags & EF_IA_64_REDUCEDFP))
3457 strcat (buf, ", reduced fp model");
3458 if ((e_flags & EF_IA_64_NOFUNCDESC_CONS_GP))
3459 strcat (buf, ", no function descriptors, constant gp");
3460 else if ((e_flags & EF_IA_64_CONS_GP))
3461 strcat (buf, ", constant gp");
3462 if ((e_flags & EF_IA_64_ABSOLUTE))
3463 strcat (buf, ", absolute");
3464 if (elf_header.e_ident[EI_OSABI] == ELFOSABI_OPENVMS)
3465 {
3466 if ((e_flags & EF_IA_64_VMS_LINKAGES))
3467 strcat (buf, ", vms_linkages");
3468 switch ((e_flags & EF_IA_64_VMS_COMCOD))
3469 {
3470 case EF_IA_64_VMS_COMCOD_SUCCESS:
3471 break;
3472 case EF_IA_64_VMS_COMCOD_WARNING:
3473 strcat (buf, ", warning");
3474 break;
3475 case EF_IA_64_VMS_COMCOD_ERROR:
3476 strcat (buf, ", error");
3477 break;
3478 case EF_IA_64_VMS_COMCOD_ABORT:
3479 strcat (buf, ", abort");
3480 break;
3481 default:
3482 warn (_("Unrecognised IA64 VMS Command Code: %x\n"),
3483 e_flags & EF_IA_64_VMS_COMCOD);
3484 strcat (buf, ", <unknown>");
3485 }
3486 }
3487 break;
3488
3489 case EM_VAX:
3490 if ((e_flags & EF_VAX_NONPIC))
3491 strcat (buf, ", non-PIC");
3492 if ((e_flags & EF_VAX_DFLOAT))
3493 strcat (buf, ", D-Float");
3494 if ((e_flags & EF_VAX_GFLOAT))
3495 strcat (buf, ", G-Float");
3496 break;
3497
3498 case EM_VISIUM:
3499 if (e_flags & EF_VISIUM_ARCH_MCM)
3500 strcat (buf, ", mcm");
3501 else if (e_flags & EF_VISIUM_ARCH_MCM24)
3502 strcat (buf, ", mcm24");
3503 if (e_flags & EF_VISIUM_ARCH_GR6)
3504 strcat (buf, ", gr6");
3505 break;
3506
3507 case EM_RL78:
3508 switch (e_flags & E_FLAG_RL78_CPU_MASK)
3509 {
3510 case E_FLAG_RL78_ANY_CPU: break;
3511 case E_FLAG_RL78_G10: strcat (buf, ", G10"); break;
3512 case E_FLAG_RL78_G13: strcat (buf, ", G13"); break;
3513 case E_FLAG_RL78_G14: strcat (buf, ", G14"); break;
3514 }
3515 if (e_flags & E_FLAG_RL78_64BIT_DOUBLES)
3516 strcat (buf, ", 64-bit doubles");
3517 break;
3518
3519 case EM_RX:
3520 if (e_flags & E_FLAG_RX_64BIT_DOUBLES)
3521 strcat (buf, ", 64-bit doubles");
3522 if (e_flags & E_FLAG_RX_DSP)
3523 strcat (buf, ", dsp");
3524 if (e_flags & E_FLAG_RX_PID)
3525 strcat (buf, ", pid");
3526 if (e_flags & E_FLAG_RX_ABI)
3527 strcat (buf, ", RX ABI");
3528 if (e_flags & E_FLAG_RX_SINSNS_SET)
3529 strcat (buf, e_flags & E_FLAG_RX_SINSNS_YES
3530 ? ", uses String instructions" : ", bans String instructions");
3531 if (e_flags & E_FLAG_RX_V2)
3532 strcat (buf, ", V2");
3533 break;
3534
3535 case EM_S390:
3536 if (e_flags & EF_S390_HIGH_GPRS)
3537 strcat (buf, ", highgprs");
3538 break;
3539
3540 case EM_TI_C6000:
3541 if ((e_flags & EF_C6000_REL))
3542 strcat (buf, ", relocatable module");
3543 break;
3544
3545 case EM_MSP430:
3546 strcat (buf, _(": architecture variant: "));
3547 switch (e_flags & EF_MSP430_MACH)
3548 {
3549 case E_MSP430_MACH_MSP430x11: strcat (buf, "MSP430x11"); break;
3550 case E_MSP430_MACH_MSP430x11x1 : strcat (buf, "MSP430x11x1 "); break;
3551 case E_MSP430_MACH_MSP430x12: strcat (buf, "MSP430x12"); break;
3552 case E_MSP430_MACH_MSP430x13: strcat (buf, "MSP430x13"); break;
3553 case E_MSP430_MACH_MSP430x14: strcat (buf, "MSP430x14"); break;
3554 case E_MSP430_MACH_MSP430x15: strcat (buf, "MSP430x15"); break;
3555 case E_MSP430_MACH_MSP430x16: strcat (buf, "MSP430x16"); break;
3556 case E_MSP430_MACH_MSP430x31: strcat (buf, "MSP430x31"); break;
3557 case E_MSP430_MACH_MSP430x32: strcat (buf, "MSP430x32"); break;
3558 case E_MSP430_MACH_MSP430x33: strcat (buf, "MSP430x33"); break;
3559 case E_MSP430_MACH_MSP430x41: strcat (buf, "MSP430x41"); break;
3560 case E_MSP430_MACH_MSP430x42: strcat (buf, "MSP430x42"); break;
3561 case E_MSP430_MACH_MSP430x43: strcat (buf, "MSP430x43"); break;
3562 case E_MSP430_MACH_MSP430x44: strcat (buf, "MSP430x44"); break;
3563 case E_MSP430_MACH_MSP430X : strcat (buf, "MSP430X"); break;
3564 default:
3565 strcat (buf, _(": unknown")); break;
3566 }
3567
3568 if (e_flags & ~ EF_MSP430_MACH)
3569 strcat (buf, _(": unknown extra flag bits also present"));
3570 }
3571 }
3572
3573 return buf;
3574 }
3575
3576 static const char *
3577 get_osabi_name (unsigned int osabi)
3578 {
3579 static char buff[32];
3580
3581 switch (osabi)
3582 {
3583 case ELFOSABI_NONE: return "UNIX - System V";
3584 case ELFOSABI_HPUX: return "UNIX - HP-UX";
3585 case ELFOSABI_NETBSD: return "UNIX - NetBSD";
3586 case ELFOSABI_GNU: return "UNIX - GNU";
3587 case ELFOSABI_SOLARIS: return "UNIX - Solaris";
3588 case ELFOSABI_AIX: return "UNIX - AIX";
3589 case ELFOSABI_IRIX: return "UNIX - IRIX";
3590 case ELFOSABI_FREEBSD: return "UNIX - FreeBSD";
3591 case ELFOSABI_TRU64: return "UNIX - TRU64";
3592 case ELFOSABI_MODESTO: return "Novell - Modesto";
3593 case ELFOSABI_OPENBSD: return "UNIX - OpenBSD";
3594 case ELFOSABI_OPENVMS: return "VMS - OpenVMS";
3595 case ELFOSABI_NSK: return "HP - Non-Stop Kernel";
3596 case ELFOSABI_AROS: return "AROS";
3597 case ELFOSABI_FENIXOS: return "FenixOS";
3598 case ELFOSABI_CLOUDABI: return "Nuxi CloudABI";
3599 case ELFOSABI_OPENVOS: return "Stratus Technologies OpenVOS";
3600 default:
3601 if (osabi >= 64)
3602 switch (elf_header.e_machine)
3603 {
3604 case EM_ARM:
3605 switch (osabi)
3606 {
3607 case ELFOSABI_ARM: return "ARM";
3608 default:
3609 break;
3610 }
3611 break;
3612
3613 case EM_MSP430:
3614 case EM_MSP430_OLD:
3615 case EM_VISIUM:
3616 switch (osabi)
3617 {
3618 case ELFOSABI_STANDALONE: return _("Standalone App");
3619 default:
3620 break;
3621 }
3622 break;
3623
3624 case EM_TI_C6000:
3625 switch (osabi)
3626 {
3627 case ELFOSABI_C6000_ELFABI: return _("Bare-metal C6000");
3628 case ELFOSABI_C6000_LINUX: return "Linux C6000";
3629 default:
3630 break;
3631 }
3632 break;
3633
3634 default:
3635 break;
3636 }
3637 snprintf (buff, sizeof (buff), _("<unknown: %x>"), osabi);
3638 return buff;
3639 }
3640 }
3641
3642 static const char *
3643 get_aarch64_segment_type (unsigned long type)
3644 {
3645 switch (type)
3646 {
3647 case PT_AARCH64_ARCHEXT:
3648 return "AARCH64_ARCHEXT";
3649 default:
3650 break;
3651 }
3652
3653 return NULL;
3654 }
3655
3656 static const char *
3657 get_arm_segment_type (unsigned long type)
3658 {
3659 switch (type)
3660 {
3661 case PT_ARM_EXIDX:
3662 return "EXIDX";
3663 default:
3664 break;
3665 }
3666
3667 return NULL;
3668 }
3669
3670 static const char *
3671 get_mips_segment_type (unsigned long type)
3672 {
3673 switch (type)
3674 {
3675 case PT_MIPS_REGINFO:
3676 return "REGINFO";
3677 case PT_MIPS_RTPROC:
3678 return "RTPROC";
3679 case PT_MIPS_OPTIONS:
3680 return "OPTIONS";
3681 case PT_MIPS_ABIFLAGS:
3682 return "ABIFLAGS";
3683 default:
3684 break;
3685 }
3686
3687 return NULL;
3688 }
3689
3690 static const char *
3691 get_parisc_segment_type (unsigned long type)
3692 {
3693 switch (type)
3694 {
3695 case PT_HP_TLS: return "HP_TLS";
3696 case PT_HP_CORE_NONE: return "HP_CORE_NONE";
3697 case PT_HP_CORE_VERSION: return "HP_CORE_VERSION";
3698 case PT_HP_CORE_KERNEL: return "HP_CORE_KERNEL";
3699 case PT_HP_CORE_COMM: return "HP_CORE_COMM";
3700 case PT_HP_CORE_PROC: return "HP_CORE_PROC";
3701 case PT_HP_CORE_LOADABLE: return "HP_CORE_LOADABLE";
3702 case PT_HP_CORE_STACK: return "HP_CORE_STACK";
3703 case PT_HP_CORE_SHM: return "HP_CORE_SHM";
3704 case PT_HP_CORE_MMF: return "HP_CORE_MMF";
3705 case PT_HP_PARALLEL: return "HP_PARALLEL";
3706 case PT_HP_FASTBIND: return "HP_FASTBIND";
3707 case PT_HP_OPT_ANNOT: return "HP_OPT_ANNOT";
3708 case PT_HP_HSL_ANNOT: return "HP_HSL_ANNOT";
3709 case PT_HP_STACK: return "HP_STACK";
3710 case PT_HP_CORE_UTSNAME: return "HP_CORE_UTSNAME";
3711 case PT_PARISC_ARCHEXT: return "PARISC_ARCHEXT";
3712 case PT_PARISC_UNWIND: return "PARISC_UNWIND";
3713 case PT_PARISC_WEAKORDER: return "PARISC_WEAKORDER";
3714 default:
3715 break;
3716 }
3717
3718 return NULL;
3719 }
3720
3721 static const char *
3722 get_ia64_segment_type (unsigned long type)
3723 {
3724 switch (type)
3725 {
3726 case PT_IA_64_ARCHEXT: return "IA_64_ARCHEXT";
3727 case PT_IA_64_UNWIND: return "IA_64_UNWIND";
3728 case PT_HP_TLS: return "HP_TLS";
3729 case PT_IA_64_HP_OPT_ANOT: return "HP_OPT_ANNOT";
3730 case PT_IA_64_HP_HSL_ANOT: return "HP_HSL_ANNOT";
3731 case PT_IA_64_HP_STACK: return "HP_STACK";
3732 default:
3733 break;
3734 }
3735
3736 return NULL;
3737 }
3738
3739 static const char *
3740 get_tic6x_segment_type (unsigned long type)
3741 {
3742 switch (type)
3743 {
3744 case PT_C6000_PHATTR: return "C6000_PHATTR";
3745 default:
3746 break;
3747 }
3748
3749 return NULL;
3750 }
3751
3752 static const char *
3753 get_solaris_segment_type (unsigned long type)
3754 {
3755 switch (type)
3756 {
3757 case 0x6464e550: return "PT_SUNW_UNWIND";
3758 case 0x6474e550: return "PT_SUNW_EH_FRAME";
3759 case 0x6ffffff7: return "PT_LOSUNW";
3760 case 0x6ffffffa: return "PT_SUNWBSS";
3761 case 0x6ffffffb: return "PT_SUNWSTACK";
3762 case 0x6ffffffc: return "PT_SUNWDTRACE";
3763 case 0x6ffffffd: return "PT_SUNWCAP";
3764 case 0x6fffffff: return "PT_HISUNW";
3765 default: return NULL;
3766 }
3767 }
3768
3769 static const char *
3770 get_segment_type (unsigned long p_type)
3771 {
3772 static char buff[32];
3773
3774 switch (p_type)
3775 {
3776 case PT_NULL: return "NULL";
3777 case PT_LOAD: return "LOAD";
3778 case PT_DYNAMIC: return "DYNAMIC";
3779 case PT_INTERP: return "INTERP";
3780 case PT_NOTE: return "NOTE";
3781 case PT_SHLIB: return "SHLIB";
3782 case PT_PHDR: return "PHDR";
3783 case PT_TLS: return "TLS";
3784
3785 case PT_GNU_EH_FRAME:
3786 return "GNU_EH_FRAME";
3787 case PT_GNU_STACK: return "GNU_STACK";
3788 case PT_GNU_RELRO: return "GNU_RELRO";
3789
3790 default:
3791 if ((p_type >= PT_LOPROC) && (p_type <= PT_HIPROC))
3792 {
3793 const char * result;
3794
3795 switch (elf_header.e_machine)
3796 {
3797 case EM_AARCH64:
3798 result = get_aarch64_segment_type (p_type);
3799 break;
3800 case EM_ARM:
3801 result = get_arm_segment_type (p_type);
3802 break;
3803 case EM_MIPS:
3804 case EM_MIPS_RS3_LE:
3805 result = get_mips_segment_type (p_type);
3806 break;
3807 case EM_PARISC:
3808 result = get_parisc_segment_type (p_type);
3809 break;
3810 case EM_IA_64:
3811 result = get_ia64_segment_type (p_type);
3812 break;
3813 case EM_TI_C6000:
3814 result = get_tic6x_segment_type (p_type);
3815 break;
3816 default:
3817 result = NULL;
3818 break;
3819 }
3820
3821 if (result != NULL)
3822 return result;
3823
3824 sprintf (buff, "LOPROC+%#lx", p_type - PT_LOPROC);
3825 }
3826 else if ((p_type >= PT_LOOS) && (p_type <= PT_HIOS))
3827 {
3828 const char * result;
3829
3830 switch (elf_header.e_machine)
3831 {
3832 case EM_PARISC:
3833 result = get_parisc_segment_type (p_type);
3834 break;
3835 case EM_IA_64:
3836 result = get_ia64_segment_type (p_type);
3837 break;
3838 default:
3839 if (elf_header.e_ident[EI_OSABI] == ELFOSABI_SOLARIS)
3840 result = get_solaris_segment_type (p_type);
3841 else
3842 result = NULL;
3843 break;
3844 }
3845
3846 if (result != NULL)
3847 return result;
3848
3849 sprintf (buff, "LOOS+%#lx", p_type - PT_LOOS);
3850 }
3851 else
3852 snprintf (buff, sizeof (buff), _("<unknown>: %lx"), p_type);
3853
3854 return buff;
3855 }
3856 }
3857
3858 static const char *
3859 get_mips_section_type_name (unsigned int sh_type)
3860 {
3861 switch (sh_type)
3862 {
3863 case SHT_MIPS_LIBLIST: return "MIPS_LIBLIST";
3864 case SHT_MIPS_MSYM: return "MIPS_MSYM";
3865 case SHT_MIPS_CONFLICT: return "MIPS_CONFLICT";
3866 case SHT_MIPS_GPTAB: return "MIPS_GPTAB";
3867 case SHT_MIPS_UCODE: return "MIPS_UCODE";
3868 case SHT_MIPS_DEBUG: return "MIPS_DEBUG";
3869 case SHT_MIPS_REGINFO: return "MIPS_REGINFO";
3870 case SHT_MIPS_PACKAGE: return "MIPS_PACKAGE";
3871 case SHT_MIPS_PACKSYM: return "MIPS_PACKSYM";
3872 case SHT_MIPS_RELD: return "MIPS_RELD";
3873 case SHT_MIPS_IFACE: return "MIPS_IFACE";
3874 case SHT_MIPS_CONTENT: return "MIPS_CONTENT";
3875 case SHT_MIPS_OPTIONS: return "MIPS_OPTIONS";
3876 case SHT_MIPS_SHDR: return "MIPS_SHDR";
3877 case SHT_MIPS_FDESC: return "MIPS_FDESC";
3878 case SHT_MIPS_EXTSYM: return "MIPS_EXTSYM";
3879 case SHT_MIPS_DENSE: return "MIPS_DENSE";
3880 case SHT_MIPS_PDESC: return "MIPS_PDESC";
3881 case SHT_MIPS_LOCSYM: return "MIPS_LOCSYM";
3882 case SHT_MIPS_AUXSYM: return "MIPS_AUXSYM";
3883 case SHT_MIPS_OPTSYM: return "MIPS_OPTSYM";
3884 case SHT_MIPS_LOCSTR: return "MIPS_LOCSTR";
3885 case SHT_MIPS_LINE: return "MIPS_LINE";
3886 case SHT_MIPS_RFDESC: return "MIPS_RFDESC";
3887 case SHT_MIPS_DELTASYM: return "MIPS_DELTASYM";
3888 case SHT_MIPS_DELTAINST: return "MIPS_DELTAINST";
3889 case SHT_MIPS_DELTACLASS: return "MIPS_DELTACLASS";
3890 case SHT_MIPS_DWARF: return "MIPS_DWARF";
3891 case SHT_MIPS_DELTADECL: return "MIPS_DELTADECL";
3892 case SHT_MIPS_SYMBOL_LIB: return "MIPS_SYMBOL_LIB";
3893 case SHT_MIPS_EVENTS: return "MIPS_EVENTS";
3894 case SHT_MIPS_TRANSLATE: return "MIPS_TRANSLATE";
3895 case SHT_MIPS_PIXIE: return "MIPS_PIXIE";
3896 case SHT_MIPS_XLATE: return "MIPS_XLATE";
3897 case SHT_MIPS_XLATE_DEBUG: return "MIPS_XLATE_DEBUG";
3898 case SHT_MIPS_WHIRL: return "MIPS_WHIRL";
3899 case SHT_MIPS_EH_REGION: return "MIPS_EH_REGION";
3900 case SHT_MIPS_XLATE_OLD: return "MIPS_XLATE_OLD";
3901 case SHT_MIPS_PDR_EXCEPTION: return "MIPS_PDR_EXCEPTION";
3902 case SHT_MIPS_ABIFLAGS: return "MIPS_ABIFLAGS";
3903 default:
3904 break;
3905 }
3906 return NULL;
3907 }
3908
3909 static const char *
3910 get_parisc_section_type_name (unsigned int sh_type)
3911 {
3912 switch (sh_type)
3913 {
3914 case SHT_PARISC_EXT: return "PARISC_EXT";
3915 case SHT_PARISC_UNWIND: return "PARISC_UNWIND";
3916 case SHT_PARISC_DOC: return "PARISC_DOC";
3917 case SHT_PARISC_ANNOT: return "PARISC_ANNOT";
3918 case SHT_PARISC_SYMEXTN: return "PARISC_SYMEXTN";
3919 case SHT_PARISC_STUBS: return "PARISC_STUBS";
3920 case SHT_PARISC_DLKM: return "PARISC_DLKM";
3921 default:
3922 break;
3923 }
3924 return NULL;
3925 }
3926
3927 static const char *
3928 get_ia64_section_type_name (unsigned int sh_type)
3929 {
3930 /* If the top 8 bits are 0x78 the next 8 are the os/abi ID. */
3931 if ((sh_type & 0xFF000000) == SHT_IA_64_LOPSREG)
3932 return get_osabi_name ((sh_type & 0x00FF0000) >> 16);
3933
3934 switch (sh_type)
3935 {
3936 case SHT_IA_64_EXT: return "IA_64_EXT";
3937 case SHT_IA_64_UNWIND: return "IA_64_UNWIND";
3938 case SHT_IA_64_PRIORITY_INIT: return "IA_64_PRIORITY_INIT";
3939 case SHT_IA_64_VMS_TRACE: return "VMS_TRACE";
3940 case SHT_IA_64_VMS_TIE_SIGNATURES: return "VMS_TIE_SIGNATURES";
3941 case SHT_IA_64_VMS_DEBUG: return "VMS_DEBUG";
3942 case SHT_IA_64_VMS_DEBUG_STR: return "VMS_DEBUG_STR";
3943 case SHT_IA_64_VMS_LINKAGES: return "VMS_LINKAGES";
3944 case SHT_IA_64_VMS_SYMBOL_VECTOR: return "VMS_SYMBOL_VECTOR";
3945 case SHT_IA_64_VMS_FIXUP: return "VMS_FIXUP";
3946 default:
3947 break;
3948 }
3949 return NULL;
3950 }
3951
3952 static const char *
3953 get_x86_64_section_type_name (unsigned int sh_type)
3954 {
3955 switch (sh_type)
3956 {
3957 case SHT_X86_64_UNWIND: return "X86_64_UNWIND";
3958 default:
3959 break;
3960 }
3961 return NULL;
3962 }
3963
3964 static const char *
3965 get_aarch64_section_type_name (unsigned int sh_type)
3966 {
3967 switch (sh_type)
3968 {
3969 case SHT_AARCH64_ATTRIBUTES:
3970 return "AARCH64_ATTRIBUTES";
3971 default:
3972 break;
3973 }
3974 return NULL;
3975 }
3976
3977 static const char *
3978 get_arm_section_type_name (unsigned int sh_type)
3979 {
3980 switch (sh_type)
3981 {
3982 case SHT_ARM_EXIDX: return "ARM_EXIDX";
3983 case SHT_ARM_PREEMPTMAP: return "ARM_PREEMPTMAP";
3984 case SHT_ARM_ATTRIBUTES: return "ARM_ATTRIBUTES";
3985 case SHT_ARM_DEBUGOVERLAY: return "ARM_DEBUGOVERLAY";
3986 case SHT_ARM_OVERLAYSECTION: return "ARM_OVERLAYSECTION";
3987 default:
3988 break;
3989 }
3990 return NULL;
3991 }
3992
3993 static const char *
3994 get_tic6x_section_type_name (unsigned int sh_type)
3995 {
3996 switch (sh_type)
3997 {
3998 case SHT_C6000_UNWIND:
3999 return "C6000_UNWIND";
4000 case SHT_C6000_PREEMPTMAP:
4001 return "C6000_PREEMPTMAP";
4002 case SHT_C6000_ATTRIBUTES:
4003 return "C6000_ATTRIBUTES";
4004 case SHT_TI_ICODE:
4005 return "TI_ICODE";
4006 case SHT_TI_XREF:
4007 return "TI_XREF";
4008 case SHT_TI_HANDLER:
4009 return "TI_HANDLER";
4010 case SHT_TI_INITINFO:
4011 return "TI_INITINFO";
4012 case SHT_TI_PHATTRS:
4013 return "TI_PHATTRS";
4014 default:
4015 break;
4016 }
4017 return NULL;
4018 }
4019
4020 static const char *
4021 get_msp430x_section_type_name (unsigned int sh_type)
4022 {
4023 switch (sh_type)
4024 {
4025 case SHT_MSP430_SEC_FLAGS: return "MSP430_SEC_FLAGS";
4026 case SHT_MSP430_SYM_ALIASES: return "MSP430_SYM_ALIASES";
4027 case SHT_MSP430_ATTRIBUTES: return "MSP430_ATTRIBUTES";
4028 default: return NULL;
4029 }
4030 }
4031
4032 static const char *
4033 get_v850_section_type_name (unsigned int sh_type)
4034 {
4035 switch (sh_type)
4036 {
4037 case SHT_V850_SCOMMON: return "V850 Small Common";
4038 case SHT_V850_TCOMMON: return "V850 Tiny Common";
4039 case SHT_V850_ZCOMMON: return "V850 Zero Common";
4040 case SHT_RENESAS_IOP: return "RENESAS IOP";
4041 case SHT_RENESAS_INFO: return "RENESAS INFO";
4042 default: return NULL;
4043 }
4044 }
4045
4046 static const char *
4047 get_section_type_name (unsigned int sh_type)
4048 {
4049 static char buff[32];
4050 const char * result;
4051
4052 switch (sh_type)
4053 {
4054 case SHT_NULL: return "NULL";
4055 case SHT_PROGBITS: return "PROGBITS";
4056 case SHT_SYMTAB: return "SYMTAB";
4057 case SHT_STRTAB: return "STRTAB";
4058 case SHT_RELA: return "RELA";
4059 case SHT_HASH: return "HASH";
4060 case SHT_DYNAMIC: return "DYNAMIC";
4061 case SHT_NOTE: return "NOTE";
4062 case SHT_NOBITS: return "NOBITS";
4063 case SHT_REL: return "REL";
4064 case SHT_SHLIB: return "SHLIB";
4065 case SHT_DYNSYM: return "DYNSYM";
4066 case SHT_INIT_ARRAY: return "INIT_ARRAY";
4067 case SHT_FINI_ARRAY: return "FINI_ARRAY";
4068 case SHT_PREINIT_ARRAY: return "PREINIT_ARRAY";
4069 case SHT_GNU_HASH: return "GNU_HASH";
4070 case SHT_GROUP: return "GROUP";
4071 case SHT_SYMTAB_SHNDX: return "SYMTAB SECTION INDICIES";
4072 case SHT_GNU_verdef: return "VERDEF";
4073 case SHT_GNU_verneed: return "VERNEED";
4074 case SHT_GNU_versym: return "VERSYM";
4075 case 0x6ffffff0: return "VERSYM";
4076 case 0x6ffffffc: return "VERDEF";
4077 case 0x7ffffffd: return "AUXILIARY";
4078 case 0x7fffffff: return "FILTER";
4079 case SHT_GNU_LIBLIST: return "GNU_LIBLIST";
4080
4081 default:
4082 if ((sh_type >= SHT_LOPROC) && (sh_type <= SHT_HIPROC))
4083 {
4084 switch (elf_header.e_machine)
4085 {
4086 case EM_MIPS:
4087 case EM_MIPS_RS3_LE:
4088 result = get_mips_section_type_name (sh_type);
4089 break;
4090 case EM_PARISC:
4091 result = get_parisc_section_type_name (sh_type);
4092 break;
4093 case EM_IA_64:
4094 result = get_ia64_section_type_name (sh_type);
4095 break;
4096 case EM_X86_64:
4097 case EM_L1OM:
4098 case EM_K1OM:
4099 result = get_x86_64_section_type_name (sh_type);
4100 break;
4101 case EM_AARCH64:
4102 result = get_aarch64_section_type_name (sh_type);
4103 break;
4104 case EM_ARM:
4105 result = get_arm_section_type_name (sh_type);
4106 break;
4107 case EM_TI_C6000:
4108 result = get_tic6x_section_type_name (sh_type);
4109 break;
4110 case EM_MSP430:
4111 result = get_msp430x_section_type_name (sh_type);
4112 break;
4113 case EM_V800:
4114 case EM_V850:
4115 case EM_CYGNUS_V850:
4116 result = get_v850_section_type_name (sh_type);
4117 break;
4118 default:
4119 result = NULL;
4120 break;
4121 }
4122
4123 if (result != NULL)
4124 return result;
4125
4126 sprintf (buff, "LOPROC+%#x", sh_type - SHT_LOPROC);
4127 }
4128 else if ((sh_type >= SHT_LOOS) && (sh_type <= SHT_HIOS))
4129 {
4130 switch (elf_header.e_machine)
4131 {
4132 case EM_IA_64:
4133 result = get_ia64_section_type_name (sh_type);
4134 break;
4135 default:
4136 if (elf_header.e_ident[EI_OSABI] == ELFOSABI_SOLARIS)
4137 result = get_solaris_section_type (sh_type);
4138 else
4139 result = NULL;
4140 break;
4141 }
4142
4143 if (result != NULL)
4144 return result;
4145
4146 sprintf (buff, "LOOS+%#x", sh_type - SHT_LOOS);
4147 }
4148 else if ((sh_type >= SHT_LOUSER) && (sh_type <= SHT_HIUSER))
4149 {
4150 switch (elf_header.e_machine)
4151 {
4152 case EM_V800:
4153 case EM_V850:
4154 case EM_CYGNUS_V850:
4155 result = get_v850_section_type_name (sh_type);
4156 break;
4157 default:
4158 result = NULL;
4159 break;
4160 }
4161
4162 if (result != NULL)
4163 return result;
4164
4165 sprintf (buff, "LOUSER+%#x", sh_type - SHT_LOUSER);
4166 }
4167 else
4168 /* This message is probably going to be displayed in a 15
4169 character wide field, so put the hex value first. */
4170 snprintf (buff, sizeof (buff), _("%08x: <unknown>"), sh_type);
4171
4172 return buff;
4173 }
4174 }
4175
4176 #define OPTION_DEBUG_DUMP 512
4177 #define OPTION_DYN_SYMS 513
4178 #define OPTION_DWARF_DEPTH 514
4179 #define OPTION_DWARF_START 515
4180 #define OPTION_DWARF_CHECK 516
4181
4182 static struct option options[] =
4183 {
4184 {"all", no_argument, 0, 'a'},
4185 {"file-header", no_argument, 0, 'h'},
4186 {"program-headers", no_argument, 0, 'l'},
4187 {"headers", no_argument, 0, 'e'},
4188 {"histogram", no_argument, 0, 'I'},
4189 {"segments", no_argument, 0, 'l'},
4190 {"sections", no_argument, 0, 'S'},
4191 {"section-headers", no_argument, 0, 'S'},
4192 {"section-groups", no_argument, 0, 'g'},
4193 {"section-details", no_argument, 0, 't'},
4194 {"full-section-name",no_argument, 0, 'N'},
4195 {"symbols", no_argument, 0, 's'},
4196 {"syms", no_argument, 0, 's'},
4197 {"dyn-syms", no_argument, 0, OPTION_DYN_SYMS},
4198 {"relocs", no_argument, 0, 'r'},
4199 {"notes", no_argument, 0, 'n'},
4200 {"dynamic", no_argument, 0, 'd'},
4201 {"arch-specific", no_argument, 0, 'A'},
4202 {"version-info", no_argument, 0, 'V'},
4203 {"use-dynamic", no_argument, 0, 'D'},
4204 {"unwind", no_argument, 0, 'u'},
4205 {"archive-index", no_argument, 0, 'c'},
4206 {"hex-dump", required_argument, 0, 'x'},
4207 {"relocated-dump", required_argument, 0, 'R'},
4208 {"string-dump", required_argument, 0, 'p'},
4209 {"decompress", no_argument, 0, 'z'},
4210 #ifdef SUPPORT_DISASSEMBLY
4211 {"instruction-dump", required_argument, 0, 'i'},
4212 #endif
4213 {"debug-dump", optional_argument, 0, OPTION_DEBUG_DUMP},
4214
4215 {"dwarf-depth", required_argument, 0, OPTION_DWARF_DEPTH},
4216 {"dwarf-start", required_argument, 0, OPTION_DWARF_START},
4217 {"dwarf-check", no_argument, 0, OPTION_DWARF_CHECK},
4218
4219 {"version", no_argument, 0, 'v'},
4220 {"wide", no_argument, 0, 'W'},
4221 {"help", no_argument, 0, 'H'},
4222 {0, no_argument, 0, 0}
4223 };
4224
4225 static void
4226 usage (FILE * stream)
4227 {
4228 fprintf (stream, _("Usage: readelf <option(s)> elf-file(s)\n"));
4229 fprintf (stream, _(" Display information about the contents of ELF format files\n"));
4230 fprintf (stream, _(" Options are:\n\
4231 -a --all Equivalent to: -h -l -S -s -r -d -V -A -I\n\
4232 -h --file-header Display the ELF file header\n\
4233 -l --program-headers Display the program headers\n\
4234 --segments An alias for --program-headers\n\
4235 -S --section-headers Display the sections' header\n\
4236 --sections An alias for --section-headers\n\
4237 -g --section-groups Display the section groups\n\
4238 -t --section-details Display the section details\n\
4239 -e --headers Equivalent to: -h -l -S\n\
4240 -s --syms Display the symbol table\n\
4241 --symbols An alias for --syms\n\
4242 --dyn-syms Display the dynamic symbol table\n\
4243 -n --notes Display the core notes (if present)\n\
4244 -r --relocs Display the relocations (if present)\n\
4245 -u --unwind Display the unwind info (if present)\n\
4246 -d --dynamic Display the dynamic section (if present)\n\
4247 -V --version-info Display the version sections (if present)\n\
4248 -A --arch-specific Display architecture specific information (if any)\n\
4249 -c --archive-index Display the symbol/file index in an archive\n\
4250 -D --use-dynamic Use the dynamic section info when displaying symbols\n\
4251 -x --hex-dump=<number|name>\n\
4252 Dump the contents of section <number|name> as bytes\n\
4253 -p --string-dump=<number|name>\n\
4254 Dump the contents of section <number|name> as strings\n\
4255 -R --relocated-dump=<number|name>\n\
4256 Dump the contents of section <number|name> as relocated bytes\n\
4257 -z --decompress Decompress section before dumping it\n\
4258 -w[lLiaprmfFsoRt] or\n\
4259 --debug-dump[=rawline,=decodedline,=info,=abbrev,=pubnames,=aranges,=macro,=frames,\n\
4260 =frames-interp,=str,=loc,=Ranges,=pubtypes,\n\
4261 =gdb_index,=trace_info,=trace_abbrev,=trace_aranges,\n\
4262 =addr,=cu_index]\n\
4263 Display the contents of DWARF2 debug sections\n"));
4264 fprintf (stream, _("\
4265 --dwarf-depth=N Do not display DIEs at depth N or greater\n\
4266 --dwarf-start=N Display DIEs starting with N, at the same depth\n\
4267 or deeper\n"));
4268 #ifdef SUPPORT_DISASSEMBLY
4269 fprintf (stream, _("\
4270 -i --instruction-dump=<number|name>\n\
4271 Disassemble the contents of section <number|name>\n"));
4272 #endif
4273 fprintf (stream, _("\
4274 -I --histogram Display histogram of bucket list lengths\n\
4275 -W --wide Allow output width to exceed 80 characters\n\
4276 @<file> Read options from <file>\n\
4277 -H --help Display this information\n\
4278 -v --version Display the version number of readelf\n"));
4279
4280 if (REPORT_BUGS_TO[0] && stream == stdout)
4281 fprintf (stdout, _("Report bugs to %s\n"), REPORT_BUGS_TO);
4282
4283 exit (stream == stdout ? 0 : 1);
4284 }
4285
4286 /* Record the fact that the user wants the contents of section number
4287 SECTION to be displayed using the method(s) encoded as flags bits
4288 in TYPE. Note, TYPE can be zero if we are creating the array for
4289 the first time. */
4290
4291 static void
4292 request_dump_bynumber (unsigned int section, dump_type type)
4293 {
4294 if (section >= num_dump_sects)
4295 {
4296 dump_type * new_dump_sects;
4297
4298 new_dump_sects = (dump_type *) calloc (section + 1,
4299 sizeof (* dump_sects));
4300
4301 if (new_dump_sects == NULL)
4302 error (_("Out of memory allocating dump request table.\n"));
4303 else
4304 {
4305 if (dump_sects)
4306 {
4307 /* Copy current flag settings. */
4308 memcpy (new_dump_sects, dump_sects, num_dump_sects * sizeof (* dump_sects));
4309
4310 free (dump_sects);
4311 }
4312
4313 dump_sects = new_dump_sects;
4314 num_dump_sects = section + 1;
4315 }
4316 }
4317
4318 if (dump_sects)
4319 dump_sects[section] |= type;
4320
4321 return;
4322 }
4323
4324 /* Request a dump by section name. */
4325
4326 static void
4327 request_dump_byname (const char * section, dump_type type)
4328 {
4329 struct dump_list_entry * new_request;
4330
4331 new_request = (struct dump_list_entry *)
4332 malloc (sizeof (struct dump_list_entry));
4333 if (!new_request)
4334 error (_("Out of memory allocating dump request table.\n"));
4335
4336 new_request->name = strdup (section);
4337 if (!new_request->name)
4338 error (_("Out of memory allocating dump request table.\n"));
4339
4340 new_request->type = type;
4341
4342 new_request->next = dump_sects_byname;
4343 dump_sects_byname = new_request;
4344 }
4345
4346 static inline void
4347 request_dump (dump_type type)
4348 {
4349 int section;
4350 char * cp;
4351
4352 do_dump++;
4353 section = strtoul (optarg, & cp, 0);
4354
4355 if (! *cp && section >= 0)
4356 request_dump_bynumber (section, type);
4357 else
4358 request_dump_byname (optarg, type);
4359 }
4360
4361
4362 static void
4363 parse_args (int argc, char ** argv)
4364 {
4365 int c;
4366
4367 if (argc < 2)
4368 usage (stderr);
4369
4370 while ((c = getopt_long
4371 (argc, argv, "ADHINR:SVWacdeghi:lnp:rstuvw::x:z", options, NULL)) != EOF)
4372 {
4373 switch (c)
4374 {
4375 case 0:
4376 /* Long options. */
4377 break;
4378 case 'H':
4379 usage (stdout);
4380 break;
4381
4382 case 'a':
4383 do_syms++;
4384 do_reloc++;
4385 do_unwind++;
4386 do_dynamic++;
4387 do_header++;
4388 do_sections++;
4389 do_section_groups++;
4390 do_segments++;
4391 do_version++;
4392 do_histogram++;
4393 do_arch++;
4394 do_notes++;
4395 break;
4396 case 'g':
4397 do_section_groups++;
4398 break;
4399 case 't':
4400 case 'N':
4401 do_sections++;
4402 do_section_details++;
4403 break;
4404 case 'e':
4405 do_header++;
4406 do_sections++;
4407 do_segments++;
4408 break;
4409 case 'A':
4410 do_arch++;
4411 break;
4412 case 'D':
4413 do_using_dynamic++;
4414 break;
4415 case 'r':
4416 do_reloc++;
4417 break;
4418 case 'u':
4419 do_unwind++;
4420 break;
4421 case 'h':
4422 do_header++;
4423 break;
4424 case 'l':
4425 do_segments++;
4426 break;
4427 case 's':
4428 do_syms++;
4429 break;
4430 case 'S':
4431 do_sections++;
4432 break;
4433 case 'd':
4434 do_dynamic++;
4435 break;
4436 case 'I':
4437 do_histogram++;
4438 break;
4439 case 'n':
4440 do_notes++;
4441 break;
4442 case 'c':
4443 do_archive_index++;
4444 break;
4445 case 'x':
4446 request_dump (HEX_DUMP);
4447 break;
4448 case 'p':
4449 request_dump (STRING_DUMP);
4450 break;
4451 case 'R':
4452 request_dump (RELOC_DUMP);
4453 break;
4454 case 'z':
4455 decompress_dumps++;
4456 break;
4457 case 'w':
4458 do_dump++;
4459 if (optarg == 0)
4460 {
4461 do_debugging = 1;
4462 dwarf_select_sections_all ();
4463 }
4464 else
4465 {
4466 do_debugging = 0;
4467 dwarf_select_sections_by_letters (optarg);
4468 }
4469 break;
4470 case OPTION_DEBUG_DUMP:
4471 do_dump++;
4472 if (optarg == 0)
4473 do_debugging = 1;
4474 else
4475 {
4476 do_debugging = 0;
4477 dwarf_select_sections_by_names (optarg);
4478 }
4479 break;
4480 case OPTION_DWARF_DEPTH:
4481 {
4482 char *cp;
4483
4484 dwarf_cutoff_level = strtoul (optarg, & cp, 0);
4485 }
4486 break;
4487 case OPTION_DWARF_START:
4488 {
4489 char *cp;
4490
4491 dwarf_start_die = strtoul (optarg, & cp, 0);
4492 }
4493 break;
4494 case OPTION_DWARF_CHECK:
4495 dwarf_check = 1;
4496 break;
4497 case OPTION_DYN_SYMS:
4498 do_dyn_syms++;
4499 break;
4500 #ifdef SUPPORT_DISASSEMBLY
4501 case 'i':
4502 request_dump (DISASS_DUMP);
4503 break;
4504 #endif
4505 case 'v':
4506 print_version (program_name);
4507 break;
4508 case 'V':
4509 do_version++;
4510 break;
4511 case 'W':
4512 do_wide++;
4513 break;
4514 default:
4515 /* xgettext:c-format */
4516 error (_("Invalid option '-%c'\n"), c);
4517 /* Fall through. */
4518 case '?':
4519 usage (stderr);
4520 }
4521 }
4522
4523 if (!do_dynamic && !do_syms && !do_reloc && !do_unwind && !do_sections
4524 && !do_segments && !do_header && !do_dump && !do_version
4525 && !do_histogram && !do_debugging && !do_arch && !do_notes
4526 && !do_section_groups && !do_archive_index
4527 && !do_dyn_syms)
4528 usage (stderr);
4529 }
4530
4531 static const char *
4532 get_elf_class (unsigned int elf_class)
4533 {
4534 static char buff[32];
4535
4536 switch (elf_class)
4537 {
4538 case ELFCLASSNONE: return _("none");
4539 case ELFCLASS32: return "ELF32";
4540 case ELFCLASS64: return "ELF64";
4541 default:
4542 snprintf (buff, sizeof (buff), _("<unknown: %x>"), elf_class);
4543 return buff;
4544 }
4545 }
4546
4547 static const char *
4548 get_data_encoding (unsigned int encoding)
4549 {
4550 static char buff[32];
4551
4552 switch (encoding)
4553 {
4554 case ELFDATANONE: return _("none");
4555 case ELFDATA2LSB: return _("2's complement, little endian");
4556 case ELFDATA2MSB: return _("2's complement, big endian");
4557 default:
4558 snprintf (buff, sizeof (buff), _("<unknown: %x>"), encoding);
4559 return buff;
4560 }
4561 }
4562
4563 /* Decode the data held in 'elf_header'. */
4564
4565 static int
4566 process_file_header (void)
4567 {
4568 if ( elf_header.e_ident[EI_MAG0] != ELFMAG0
4569 || elf_header.e_ident[EI_MAG1] != ELFMAG1
4570 || elf_header.e_ident[EI_MAG2] != ELFMAG2
4571 || elf_header.e_ident[EI_MAG3] != ELFMAG3)
4572 {
4573 error
4574 (_("Not an ELF file - it has the wrong magic bytes at the start\n"));
4575 return 0;
4576 }
4577
4578 init_dwarf_regnames (elf_header.e_machine);
4579
4580 if (do_header)
4581 {
4582 int i;
4583
4584 printf (_("ELF Header:\n"));
4585 printf (_(" Magic: "));
4586 for (i = 0; i < EI_NIDENT; i++)
4587 printf ("%2.2x ", elf_header.e_ident[i]);
4588 printf ("\n");
4589 printf (_(" Class: %s\n"),
4590 get_elf_class (elf_header.e_ident[EI_CLASS]));
4591 printf (_(" Data: %s\n"),
4592 get_data_encoding (elf_header.e_ident[EI_DATA]));
4593 printf (_(" Version: %d %s\n"),
4594 elf_header.e_ident[EI_VERSION],
4595 (elf_header.e_ident[EI_VERSION] == EV_CURRENT
4596 ? "(current)"
4597 : (elf_header.e_ident[EI_VERSION] != EV_NONE
4598 ? _("<unknown: %lx>")
4599 : "")));
4600 printf (_(" OS/ABI: %s\n"),
4601 get_osabi_name (elf_header.e_ident[EI_OSABI]));
4602 printf (_(" ABI Version: %d\n"),
4603 elf_header.e_ident[EI_ABIVERSION]);
4604 printf (_(" Type: %s\n"),
4605 get_file_type (elf_header.e_type));
4606 printf (_(" Machine: %s\n"),
4607 get_machine_name (elf_header.e_machine));
4608 printf (_(" Version: 0x%lx\n"),
4609 (unsigned long) elf_header.e_version);
4610
4611 printf (_(" Entry point address: "));
4612 print_vma ((bfd_vma) elf_header.e_entry, PREFIX_HEX);
4613 printf (_("\n Start of program headers: "));
4614 print_vma ((bfd_vma) elf_header.e_phoff, DEC);
4615 printf (_(" (bytes into file)\n Start of section headers: "));
4616 print_vma ((bfd_vma) elf_header.e_shoff, DEC);
4617 printf (_(" (bytes into file)\n"));
4618
4619 printf (_(" Flags: 0x%lx%s\n"),
4620 (unsigned long) elf_header.e_flags,
4621 get_machine_flags (elf_header.e_flags, elf_header.e_machine));
4622 printf (_(" Size of this header: %ld (bytes)\n"),
4623 (long) elf_header.e_ehsize);
4624 printf (_(" Size of program headers: %ld (bytes)\n"),
4625 (long) elf_header.e_phentsize);
4626 printf (_(" Number of program headers: %ld"),
4627 (long) elf_header.e_phnum);
4628 if (section_headers != NULL
4629 && elf_header.e_phnum == PN_XNUM
4630 && section_headers[0].sh_info != 0)
4631 printf (" (%ld)", (long) section_headers[0].sh_info);
4632 putc ('\n', stdout);
4633 printf (_(" Size of section headers: %ld (bytes)\n"),
4634 (long) elf_header.e_shentsize);
4635 printf (_(" Number of section headers: %ld"),
4636 (long) elf_header.e_shnum);
4637 if (section_headers != NULL && elf_header.e_shnum == SHN_UNDEF)
4638 printf (" (%ld)", (long) section_headers[0].sh_size);
4639 putc ('\n', stdout);
4640 printf (_(" Section header string table index: %ld"),
4641 (long) elf_header.e_shstrndx);
4642 if (section_headers != NULL
4643 && elf_header.e_shstrndx == (SHN_XINDEX & 0xffff))
4644 printf (" (%u)", section_headers[0].sh_link);
4645 else if (elf_header.e_shstrndx != SHN_UNDEF
4646 && elf_header.e_shstrndx >= elf_header.e_shnum)
4647 printf (_(" <corrupt: out of range>"));
4648 putc ('\n', stdout);
4649 }
4650
4651 if (section_headers != NULL)
4652 {
4653 if (elf_header.e_phnum == PN_XNUM
4654 && section_headers[0].sh_info != 0)
4655 elf_header.e_phnum = section_headers[0].sh_info;
4656 if (elf_header.e_shnum == SHN_UNDEF)
4657 elf_header.e_shnum = section_headers[0].sh_size;
4658 if (elf_header.e_shstrndx == (SHN_XINDEX & 0xffff))
4659 elf_header.e_shstrndx = section_headers[0].sh_link;
4660 else if (elf_header.e_shstrndx >= elf_header.e_shnum)
4661 elf_header.e_shstrndx = SHN_UNDEF;
4662 free (section_headers);
4663 section_headers = NULL;
4664 }
4665
4666 return 1;
4667 }
4668
4669 static bfd_boolean
4670 get_32bit_program_headers (FILE * file, Elf_Internal_Phdr * pheaders)
4671 {
4672 Elf32_External_Phdr * phdrs;
4673 Elf32_External_Phdr * external;
4674 Elf_Internal_Phdr * internal;
4675 unsigned int i;
4676 unsigned int size = elf_header.e_phentsize;
4677 unsigned int num = elf_header.e_phnum;
4678
4679 /* PR binutils/17531: Cope with unexpected section header sizes. */
4680 if (size == 0 || num == 0)
4681 return FALSE;
4682 if (size < sizeof * phdrs)
4683 {
4684 error (_("The e_phentsize field in the ELF header is less than the size of an ELF program header\n"));
4685 return FALSE;
4686 }
4687 if (size > sizeof * phdrs)
4688 warn (_("The e_phentsize field in the ELF header is larger than the size of an ELF program header\n"));
4689
4690 phdrs = (Elf32_External_Phdr *) get_data (NULL, file, elf_header.e_phoff,
4691 size, num, _("program headers"));
4692 if (phdrs == NULL)
4693 return FALSE;
4694
4695 for (i = 0, internal = pheaders, external = phdrs;
4696 i < elf_header.e_phnum;
4697 i++, internal++, external++)
4698 {
4699 internal->p_type = BYTE_GET (external->p_type);
4700 internal->p_offset = BYTE_GET (external->p_offset);
4701 internal->p_vaddr = BYTE_GET (external->p_vaddr);
4702 internal->p_paddr = BYTE_GET (external->p_paddr);
4703 internal->p_filesz = BYTE_GET (external->p_filesz);
4704 internal->p_memsz = BYTE_GET (external->p_memsz);
4705 internal->p_flags = BYTE_GET (external->p_flags);
4706 internal->p_align = BYTE_GET (external->p_align);
4707 }
4708
4709 free (phdrs);
4710 return TRUE;
4711 }
4712
4713 static bfd_boolean
4714 get_64bit_program_headers (FILE * file, Elf_Internal_Phdr * pheaders)
4715 {
4716 Elf64_External_Phdr * phdrs;
4717 Elf64_External_Phdr * external;
4718 Elf_Internal_Phdr * internal;
4719 unsigned int i;
4720 unsigned int size = elf_header.e_phentsize;
4721 unsigned int num = elf_header.e_phnum;
4722
4723 /* PR binutils/17531: Cope with unexpected section header sizes. */
4724 if (size == 0 || num == 0)
4725 return FALSE;
4726 if (size < sizeof * phdrs)
4727 {
4728 error (_("The e_phentsize field in the ELF header is less than the size of an ELF program header\n"));
4729 return FALSE;
4730 }
4731 if (size > sizeof * phdrs)
4732 warn (_("The e_phentsize field in the ELF header is larger than the size of an ELF program header\n"));
4733
4734 phdrs = (Elf64_External_Phdr *) get_data (NULL, file, elf_header.e_phoff,
4735 size, num, _("program headers"));
4736 if (!phdrs)
4737 return FALSE;
4738
4739 for (i = 0, internal = pheaders, external = phdrs;
4740 i < elf_header.e_phnum;
4741 i++, internal++, external++)
4742 {
4743 internal->p_type = BYTE_GET (external->p_type);
4744 internal->p_flags = BYTE_GET (external->p_flags);
4745 internal->p_offset = BYTE_GET (external->p_offset);
4746 internal->p_vaddr = BYTE_GET (external->p_vaddr);
4747 internal->p_paddr = BYTE_GET (external->p_paddr);
4748 internal->p_filesz = BYTE_GET (external->p_filesz);
4749 internal->p_memsz = BYTE_GET (external->p_memsz);
4750 internal->p_align = BYTE_GET (external->p_align);
4751 }
4752
4753 free (phdrs);
4754 return TRUE;
4755 }
4756
4757 /* Returns 1 if the program headers were read into `program_headers'. */
4758
4759 static int
4760 get_program_headers (FILE * file)
4761 {
4762 Elf_Internal_Phdr * phdrs;
4763
4764 /* Check cache of prior read. */
4765 if (program_headers != NULL)
4766 return 1;
4767
4768 phdrs = (Elf_Internal_Phdr *) cmalloc (elf_header.e_phnum,
4769 sizeof (Elf_Internal_Phdr));
4770
4771 if (phdrs == NULL)
4772 {
4773 error (_("Out of memory reading %u program headers\n"),
4774 elf_header.e_phnum);
4775 return 0;
4776 }
4777
4778 if (is_32bit_elf
4779 ? get_32bit_program_headers (file, phdrs)
4780 : get_64bit_program_headers (file, phdrs))
4781 {
4782 program_headers = phdrs;
4783 return 1;
4784 }
4785
4786 free (phdrs);
4787 return 0;
4788 }
4789
4790 /* Returns 1 if the program headers were loaded. */
4791
4792 static int
4793 process_program_headers (FILE * file)
4794 {
4795 Elf_Internal_Phdr * segment;
4796 unsigned int i;
4797 Elf_Internal_Phdr * previous_load = NULL;
4798
4799 if (elf_header.e_phnum == 0)
4800 {
4801 /* PR binutils/12467. */
4802 if (elf_header.e_phoff != 0)
4803 warn (_("possibly corrupt ELF header - it has a non-zero program"
4804 " header offset, but no program headers\n"));
4805 else if (do_segments)
4806 printf (_("\nThere are no program headers in this file.\n"));
4807 return 0;
4808 }
4809
4810 if (do_segments && !do_header)
4811 {
4812 printf (_("\nElf file type is %s\n"), get_file_type (elf_header.e_type));
4813 printf (_("Entry point "));
4814 print_vma ((bfd_vma) elf_header.e_entry, PREFIX_HEX);
4815 printf (_("\nThere are %d program headers, starting at offset "),
4816 elf_header.e_phnum);
4817 print_vma ((bfd_vma) elf_header.e_phoff, DEC);
4818 printf ("\n");
4819 }
4820
4821 if (! get_program_headers (file))
4822 return 0;
4823
4824 if (do_segments)
4825 {
4826 if (elf_header.e_phnum > 1)
4827 printf (_("\nProgram Headers:\n"));
4828 else
4829 printf (_("\nProgram Headers:\n"));
4830
4831 if (is_32bit_elf)
4832 printf
4833 (_(" Type Offset VirtAddr PhysAddr FileSiz MemSiz Flg Align\n"));
4834 else if (do_wide)
4835 printf
4836 (_(" Type Offset VirtAddr PhysAddr FileSiz MemSiz Flg Align\n"));
4837 else
4838 {
4839 printf
4840 (_(" Type Offset VirtAddr PhysAddr\n"));
4841 printf
4842 (_(" FileSiz MemSiz Flags Align\n"));
4843 }
4844 }
4845
4846 dynamic_addr = 0;
4847 dynamic_size = 0;
4848
4849 for (i = 0, segment = program_headers;
4850 i < elf_header.e_phnum;
4851 i++, segment++)
4852 {
4853 if (do_segments)
4854 {
4855 printf (" %-14.14s ", get_segment_type (segment->p_type));
4856
4857 if (is_32bit_elf)
4858 {
4859 printf ("0x%6.6lx ", (unsigned long) segment->p_offset);
4860 printf ("0x%8.8lx ", (unsigned long) segment->p_vaddr);
4861 printf ("0x%8.8lx ", (unsigned long) segment->p_paddr);
4862 printf ("0x%5.5lx ", (unsigned long) segment->p_filesz);
4863 printf ("0x%5.5lx ", (unsigned long) segment->p_memsz);
4864 printf ("%c%c%c ",
4865 (segment->p_flags & PF_R ? 'R' : ' '),
4866 (segment->p_flags & PF_W ? 'W' : ' '),
4867 (segment->p_flags & PF_X ? 'E' : ' '));
4868 printf ("%#lx", (unsigned long) segment->p_align);
4869 }
4870 else if (do_wide)
4871 {
4872 if ((unsigned long) segment->p_offset == segment->p_offset)
4873 printf ("0x%6.6lx ", (unsigned long) segment->p_offset);
4874 else
4875 {
4876 print_vma (segment->p_offset, FULL_HEX);
4877 putchar (' ');
4878 }
4879
4880 print_vma (segment->p_vaddr, FULL_HEX);
4881 putchar (' ');
4882 print_vma (segment->p_paddr, FULL_HEX);
4883 putchar (' ');
4884
4885 if ((unsigned long) segment->p_filesz == segment->p_filesz)
4886 printf ("0x%6.6lx ", (unsigned long) segment->p_filesz);
4887 else
4888 {
4889 print_vma (segment->p_filesz, FULL_HEX);
4890 putchar (' ');
4891 }
4892
4893 if ((unsigned long) segment->p_memsz == segment->p_memsz)
4894 printf ("0x%6.6lx", (unsigned long) segment->p_memsz);
4895 else
4896 {
4897 print_vma (segment->p_memsz, FULL_HEX);
4898 }
4899
4900 printf (" %c%c%c ",
4901 (segment->p_flags & PF_R ? 'R' : ' '),
4902 (segment->p_flags & PF_W ? 'W' : ' '),
4903 (segment->p_flags & PF_X ? 'E' : ' '));
4904
4905 if ((unsigned long) segment->p_align == segment->p_align)
4906 printf ("%#lx", (unsigned long) segment->p_align);
4907 else
4908 {
4909 print_vma (segment->p_align, PREFIX_HEX);
4910 }
4911 }
4912 else
4913 {
4914 print_vma (segment->p_offset, FULL_HEX);
4915 putchar (' ');
4916 print_vma (segment->p_vaddr, FULL_HEX);
4917 putchar (' ');
4918 print_vma (segment->p_paddr, FULL_HEX);
4919 printf ("\n ");
4920 print_vma (segment->p_filesz, FULL_HEX);
4921 putchar (' ');
4922 print_vma (segment->p_memsz, FULL_HEX);
4923 printf (" %c%c%c ",
4924 (segment->p_flags & PF_R ? 'R' : ' '),
4925 (segment->p_flags & PF_W ? 'W' : ' '),
4926 (segment->p_flags & PF_X ? 'E' : ' '));
4927 print_vma (segment->p_align, PREFIX_HEX);
4928 }
4929
4930 putc ('\n', stdout);
4931 }
4932
4933 switch (segment->p_type)
4934 {
4935 case PT_LOAD:
4936 #if 0 /* Do not warn about out of order PT_LOAD segments. Although officially
4937 required by the ELF standard, several programs, including the Linux
4938 kernel, make use of non-ordered segments. */
4939 if (previous_load
4940 && previous_load->p_vaddr > segment->p_vaddr)
4941 error (_("LOAD segments must be sorted in order of increasing VirtAddr\n"));
4942 #endif
4943 if (segment->p_memsz < segment->p_filesz)
4944 error (_("the segment's file size is larger than its memory size\n"));
4945 previous_load = segment;
4946 break;
4947
4948 case PT_PHDR:
4949 /* PR 20815 - Verify that the program header is loaded into memory. */
4950 if (i > 0 && previous_load != NULL)
4951 error (_("the PHDR segment must occur before any LOAD segment\n"));
4952 if (elf_header.e_machine != EM_PARISC)
4953 {
4954 unsigned int j;
4955
4956 for (j = 1; j < elf_header.e_phnum; j++)
4957 if (program_headers[j].p_vaddr <= segment->p_vaddr
4958 && (program_headers[j].p_vaddr + program_headers[j].p_memsz)
4959 >= (segment->p_vaddr + segment->p_filesz))
4960 break;
4961 if (j == elf_header.e_phnum)
4962 error (_("the PHDR segment is not covered by a LOAD segment\n"));
4963 }
4964 break;
4965
4966 case PT_DYNAMIC:
4967 if (dynamic_addr)
4968 error (_("more than one dynamic segment\n"));
4969
4970 /* By default, assume that the .dynamic section is the first
4971 section in the DYNAMIC segment. */
4972 dynamic_addr = segment->p_offset;
4973 dynamic_size = segment->p_filesz;
4974 /* PR binutils/17512: Avoid corrupt dynamic section info in the segment. */
4975 if (dynamic_addr + dynamic_size >= current_file_size)
4976 {
4977 error (_("the dynamic segment offset + size exceeds the size of the file\n"));
4978 dynamic_addr = dynamic_size = 0;
4979 }
4980
4981 /* Try to locate the .dynamic section. If there is
4982 a section header table, we can easily locate it. */
4983 if (section_headers != NULL)
4984 {
4985 Elf_Internal_Shdr * sec;
4986
4987 sec = find_section (".dynamic");
4988 if (sec == NULL || sec->sh_size == 0)
4989 {
4990 /* A corresponding .dynamic section is expected, but on
4991 IA-64/OpenVMS it is OK for it to be missing. */
4992 if (!is_ia64_vms ())
4993 error (_("no .dynamic section in the dynamic segment\n"));
4994 break;
4995 }
4996
4997 if (sec->sh_type == SHT_NOBITS)
4998 {
4999 dynamic_size = 0;
5000 break;
5001 }
5002
5003 dynamic_addr = sec->sh_offset;
5004 dynamic_size = sec->sh_size;
5005
5006 if (dynamic_addr < segment->p_offset
5007 || dynamic_addr > segment->p_offset + segment->p_filesz)
5008 warn (_("the .dynamic section is not contained"
5009 " within the dynamic segment\n"));
5010 else if (dynamic_addr > segment->p_offset)
5011 warn (_("the .dynamic section is not the first section"
5012 " in the dynamic segment.\n"));
5013 }
5014 break;
5015
5016 case PT_INTERP:
5017 if (fseek (file, archive_file_offset + (long) segment->p_offset,
5018 SEEK_SET))
5019 error (_("Unable to find program interpreter name\n"));
5020 else
5021 {
5022 char fmt [32];
5023 int ret = snprintf (fmt, sizeof (fmt), "%%%ds", PATH_MAX - 1);
5024
5025 if (ret >= (int) sizeof (fmt) || ret < 0)
5026 error (_("Internal error: failed to create format string to display program interpreter\n"));
5027
5028 program_interpreter[0] = 0;
5029 if (fscanf (file, fmt, program_interpreter) <= 0)
5030 error (_("Unable to read program interpreter name\n"));
5031
5032 if (do_segments)
5033 printf (_(" [Requesting program interpreter: %s]\n"),
5034 program_interpreter);
5035 }
5036 break;
5037 }
5038 }
5039
5040 if (do_segments && section_headers != NULL && string_table != NULL)
5041 {
5042 printf (_("\n Section to Segment mapping:\n"));
5043 printf (_(" Segment Sections...\n"));
5044
5045 for (i = 0; i < elf_header.e_phnum; i++)
5046 {
5047 unsigned int j;
5048 Elf_Internal_Shdr * section;
5049
5050 segment = program_headers + i;
5051 section = section_headers + 1;
5052
5053 printf (" %2.2d ", i);
5054
5055 for (j = 1; j < elf_header.e_shnum; j++, section++)
5056 {
5057 if (!ELF_TBSS_SPECIAL (section, segment)
5058 && ELF_SECTION_IN_SEGMENT_STRICT (section, segment))
5059 printf ("%s ", printable_section_name (section));
5060 }
5061
5062 putc ('\n',stdout);
5063 }
5064 }
5065
5066 return 1;
5067 }
5068
5069
5070 /* Find the file offset corresponding to VMA by using the program headers. */
5071
5072 static long
5073 offset_from_vma (FILE * file, bfd_vma vma, bfd_size_type size)
5074 {
5075 Elf_Internal_Phdr * seg;
5076
5077 if (! get_program_headers (file))
5078 {
5079 warn (_("Cannot interpret virtual addresses without program headers.\n"));
5080 return (long) vma;
5081 }
5082
5083 for (seg = program_headers;
5084 seg < program_headers + elf_header.e_phnum;
5085 ++seg)
5086 {
5087 if (seg->p_type != PT_LOAD)
5088 continue;
5089
5090 if (vma >= (seg->p_vaddr & -seg->p_align)
5091 && vma + size <= seg->p_vaddr + seg->p_filesz)
5092 return vma - seg->p_vaddr + seg->p_offset;
5093 }
5094
5095 warn (_("Virtual address 0x%lx not located in any PT_LOAD segment.\n"),
5096 (unsigned long) vma);
5097 return (long) vma;
5098 }
5099
5100
5101 /* Allocate memory and load the sections headers into the global pointer
5102 SECTION_HEADERS. If PROBE is true, this is just a probe and we do not
5103 generate any error messages if the load fails. */
5104
5105 static bfd_boolean
5106 get_32bit_section_headers (FILE * file, bfd_boolean probe)
5107 {
5108 Elf32_External_Shdr * shdrs;
5109 Elf_Internal_Shdr * internal;
5110 unsigned int i;
5111 unsigned int size = elf_header.e_shentsize;
5112 unsigned int num = probe ? 1 : elf_header.e_shnum;
5113
5114 /* PR binutils/17531: Cope with unexpected section header sizes. */
5115 if (size == 0 || num == 0)
5116 return FALSE;
5117 if (size < sizeof * shdrs)
5118 {
5119 if (! probe)
5120 error (_("The e_shentsize field in the ELF header is less than the size of an ELF section header\n"));
5121 return FALSE;
5122 }
5123 if (!probe && size > sizeof * shdrs)
5124 warn (_("The e_shentsize field in the ELF header is larger than the size of an ELF section header\n"));
5125
5126 shdrs = (Elf32_External_Shdr *) get_data (NULL, file, elf_header.e_shoff,
5127 size, num,
5128 probe ? NULL : _("section headers"));
5129 if (shdrs == NULL)
5130 return FALSE;
5131
5132 if (section_headers != NULL)
5133 free (section_headers);
5134 section_headers = (Elf_Internal_Shdr *) cmalloc (num,
5135 sizeof (Elf_Internal_Shdr));
5136 if (section_headers == NULL)
5137 {
5138 if (!probe)
5139 error (_("Out of memory reading %u section headers\n"), num);
5140 return FALSE;
5141 }
5142
5143 for (i = 0, internal = section_headers;
5144 i < num;
5145 i++, internal++)
5146 {
5147 internal->sh_name = BYTE_GET (shdrs[i].sh_name);
5148 internal->sh_type = BYTE_GET (shdrs[i].sh_type);
5149 internal->sh_flags = BYTE_GET (shdrs[i].sh_flags);
5150 internal->sh_addr = BYTE_GET (shdrs[i].sh_addr);
5151 internal->sh_offset = BYTE_GET (shdrs[i].sh_offset);
5152 internal->sh_size = BYTE_GET (shdrs[i].sh_size);
5153 internal->sh_link = BYTE_GET (shdrs[i].sh_link);
5154 internal->sh_info = BYTE_GET (shdrs[i].sh_info);
5155 internal->sh_addralign = BYTE_GET (shdrs[i].sh_addralign);
5156 internal->sh_entsize = BYTE_GET (shdrs[i].sh_entsize);
5157 if (!probe && internal->sh_link > num)
5158 warn (_("Section %u has an out of range sh_link value of %u\n"), i, internal->sh_link);
5159 if (!probe && internal->sh_flags & SHF_INFO_LINK && internal->sh_info > num)
5160 warn (_("Section %u has an out of range sh_info value of %u\n"), i, internal->sh_info);
5161 }
5162
5163 free (shdrs);
5164 return TRUE;
5165 }
5166
5167 static bfd_boolean
5168 get_64bit_section_headers (FILE * file, bfd_boolean probe)
5169 {
5170 Elf64_External_Shdr * shdrs;
5171 Elf_Internal_Shdr * internal;
5172 unsigned int i;
5173 unsigned int size = elf_header.e_shentsize;
5174 unsigned int num = probe ? 1 : elf_header.e_shnum;
5175
5176 /* PR binutils/17531: Cope with unexpected section header sizes. */
5177 if (size == 0 || num == 0)
5178 return FALSE;
5179 if (size < sizeof * shdrs)
5180 {
5181 if (! probe)
5182 error (_("The e_shentsize field in the ELF header is less than the size of an ELF section header\n"));
5183 return FALSE;
5184 }
5185 if (! probe && size > sizeof * shdrs)
5186 warn (_("The e_shentsize field in the ELF header is larger than the size of an ELF section header\n"));
5187
5188 shdrs = (Elf64_External_Shdr *) get_data (NULL, file, elf_header.e_shoff,
5189 size, num,
5190 probe ? NULL : _("section headers"));
5191 if (shdrs == NULL)
5192 return FALSE;
5193
5194 if (section_headers != NULL)
5195 free (section_headers);
5196 section_headers = (Elf_Internal_Shdr *) cmalloc (num,
5197 sizeof (Elf_Internal_Shdr));
5198 if (section_headers == NULL)
5199 {
5200 if (! probe)
5201 error (_("Out of memory reading %u section headers\n"), num);
5202 return FALSE;
5203 }
5204
5205 for (i = 0, internal = section_headers;
5206 i < num;
5207 i++, internal++)
5208 {
5209 internal->sh_name = BYTE_GET (shdrs[i].sh_name);
5210 internal->sh_type = BYTE_GET (shdrs[i].sh_type);
5211 internal->sh_flags = BYTE_GET (shdrs[i].sh_flags);
5212 internal->sh_addr = BYTE_GET (shdrs[i].sh_addr);
5213 internal->sh_size = BYTE_GET (shdrs[i].sh_size);
5214 internal->sh_entsize = BYTE_GET (shdrs[i].sh_entsize);
5215 internal->sh_link = BYTE_GET (shdrs[i].sh_link);
5216 internal->sh_info = BYTE_GET (shdrs[i].sh_info);
5217 internal->sh_offset = BYTE_GET (shdrs[i].sh_offset);
5218 internal->sh_addralign = BYTE_GET (shdrs[i].sh_addralign);
5219 if (!probe && internal->sh_link > num)
5220 warn (_("Section %u has an out of range sh_link value of %u\n"), i, internal->sh_link);
5221 if (!probe && internal->sh_flags & SHF_INFO_LINK && internal->sh_info > num)
5222 warn (_("Section %u has an out of range sh_info value of %u\n"), i, internal->sh_info);
5223 }
5224
5225 free (shdrs);
5226 return TRUE;
5227 }
5228
5229 static Elf_Internal_Sym *
5230 get_32bit_elf_symbols (FILE * file,
5231 Elf_Internal_Shdr * section,
5232 unsigned long * num_syms_return)
5233 {
5234 unsigned long number = 0;
5235 Elf32_External_Sym * esyms = NULL;
5236 Elf_External_Sym_Shndx * shndx = NULL;
5237 Elf_Internal_Sym * isyms = NULL;
5238 Elf_Internal_Sym * psym;
5239 unsigned int j;
5240
5241 if (section->sh_size == 0)
5242 {
5243 if (num_syms_return != NULL)
5244 * num_syms_return = 0;
5245 return NULL;
5246 }
5247
5248 /* Run some sanity checks first. */
5249 if (section->sh_entsize == 0 || section->sh_entsize > section->sh_size)
5250 {
5251 error (_("Section %s has an invalid sh_entsize of 0x%lx\n"),
5252 printable_section_name (section), (unsigned long) section->sh_entsize);
5253 goto exit_point;
5254 }
5255
5256 if (section->sh_size > current_file_size)
5257 {
5258 error (_("Section %s has an invalid sh_size of 0x%lx\n"),
5259 printable_section_name (section), (unsigned long) section->sh_size);
5260 goto exit_point;
5261 }
5262
5263 number = section->sh_size / section->sh_entsize;
5264
5265 if (number * sizeof (Elf32_External_Sym) > section->sh_size + 1)
5266 {
5267 error (_("Size (0x%lx) of section %s is not a multiple of its sh_entsize (0x%lx)\n"),
5268 (unsigned long) section->sh_size,
5269 printable_section_name (section),
5270 (unsigned long) section->sh_entsize);
5271 goto exit_point;
5272 }
5273
5274 esyms = (Elf32_External_Sym *) get_data (NULL, file, section->sh_offset, 1,
5275 section->sh_size, _("symbols"));
5276 if (esyms == NULL)
5277 goto exit_point;
5278
5279 {
5280 elf_section_list * entry;
5281
5282 shndx = NULL;
5283 for (entry = symtab_shndx_list; entry != NULL; entry = entry->next)
5284 if (entry->hdr->sh_link == (unsigned long) (section - section_headers))
5285 {
5286 shndx = (Elf_External_Sym_Shndx *) get_data (NULL, file,
5287 entry->hdr->sh_offset,
5288 1, entry->hdr->sh_size,
5289 _("symbol table section indicies"));
5290 if (shndx == NULL)
5291 goto exit_point;
5292 /* PR17531: file: heap-buffer-overflow */
5293 else if (entry->hdr->sh_size / sizeof (Elf_External_Sym_Shndx) < number)
5294 {
5295 error (_("Index section %s has an sh_size of 0x%lx - expected 0x%lx\n"),
5296 printable_section_name (entry->hdr),
5297 (unsigned long) entry->hdr->sh_size,
5298 (unsigned long) section->sh_size);
5299 goto exit_point;
5300 }
5301 }
5302 }
5303
5304 isyms = (Elf_Internal_Sym *) cmalloc (number, sizeof (Elf_Internal_Sym));
5305
5306 if (isyms == NULL)
5307 {
5308 error (_("Out of memory reading %lu symbols\n"),
5309 (unsigned long) number);
5310 goto exit_point;
5311 }
5312
5313 for (j = 0, psym = isyms; j < number; j++, psym++)
5314 {
5315 psym->st_name = BYTE_GET (esyms[j].st_name);
5316 psym->st_value = BYTE_GET (esyms[j].st_value);
5317 psym->st_size = BYTE_GET (esyms[j].st_size);
5318 psym->st_shndx = BYTE_GET (esyms[j].st_shndx);
5319 if (psym->st_shndx == (SHN_XINDEX & 0xffff) && shndx != NULL)
5320 psym->st_shndx
5321 = byte_get ((unsigned char *) &shndx[j], sizeof (shndx[j]));
5322 else if (psym->st_shndx >= (SHN_LORESERVE & 0xffff))
5323 psym->st_shndx += SHN_LORESERVE - (SHN_LORESERVE & 0xffff);
5324 psym->st_info = BYTE_GET (esyms[j].st_info);
5325 psym->st_other = BYTE_GET (esyms[j].st_other);
5326 }
5327
5328 exit_point:
5329 if (shndx != NULL)
5330 free (shndx);
5331 if (esyms != NULL)
5332 free (esyms);
5333
5334 if (num_syms_return != NULL)
5335 * num_syms_return = isyms == NULL ? 0 : number;
5336
5337 return isyms;
5338 }
5339
5340 static Elf_Internal_Sym *
5341 get_64bit_elf_symbols (FILE * file,
5342 Elf_Internal_Shdr * section,
5343 unsigned long * num_syms_return)
5344 {
5345 unsigned long number = 0;
5346 Elf64_External_Sym * esyms = NULL;
5347 Elf_External_Sym_Shndx * shndx = NULL;
5348 Elf_Internal_Sym * isyms = NULL;
5349 Elf_Internal_Sym * psym;
5350 unsigned int j;
5351
5352 if (section->sh_size == 0)
5353 {
5354 if (num_syms_return != NULL)
5355 * num_syms_return = 0;
5356 return NULL;
5357 }
5358
5359 /* Run some sanity checks first. */
5360 if (section->sh_entsize == 0 || section->sh_entsize > section->sh_size)
5361 {
5362 error (_("Section %s has an invalid sh_entsize of 0x%lx\n"),
5363 printable_section_name (section),
5364 (unsigned long) section->sh_entsize);
5365 goto exit_point;
5366 }
5367
5368 if (section->sh_size > current_file_size)
5369 {
5370 error (_("Section %s has an invalid sh_size of 0x%lx\n"),
5371 printable_section_name (section),
5372 (unsigned long) section->sh_size);
5373 goto exit_point;
5374 }
5375
5376 number = section->sh_size / section->sh_entsize;
5377
5378 if (number * sizeof (Elf64_External_Sym) > section->sh_size + 1)
5379 {
5380 error (_("Size (0x%lx) of section %s is not a multiple of its sh_entsize (0x%lx)\n"),
5381 (unsigned long) section->sh_size,
5382 printable_section_name (section),
5383 (unsigned long) section->sh_entsize);
5384 goto exit_point;
5385 }
5386
5387 esyms = (Elf64_External_Sym *) get_data (NULL, file, section->sh_offset, 1,
5388 section->sh_size, _("symbols"));
5389 if (!esyms)
5390 goto exit_point;
5391
5392 {
5393 elf_section_list * entry;
5394
5395 shndx = NULL;
5396 for (entry = symtab_shndx_list; entry != NULL; entry = entry->next)
5397 if (entry->hdr->sh_link == (unsigned long) (section - section_headers))
5398 {
5399 shndx = (Elf_External_Sym_Shndx *) get_data (NULL, file,
5400 entry->hdr->sh_offset,
5401 1, entry->hdr->sh_size,
5402 _("symbol table section indicies"));
5403 if (shndx == NULL)
5404 goto exit_point;
5405 /* PR17531: file: heap-buffer-overflow */
5406 else if (entry->hdr->sh_size / sizeof (Elf_External_Sym_Shndx) < number)
5407 {
5408 error (_("Index section %s has an sh_size of 0x%lx - expected 0x%lx\n"),
5409 printable_section_name (entry->hdr),
5410 (unsigned long) entry->hdr->sh_size,
5411 (unsigned long) section->sh_size);
5412 goto exit_point;
5413 }
5414 }
5415 }
5416
5417 isyms = (Elf_Internal_Sym *) cmalloc (number, sizeof (Elf_Internal_Sym));
5418
5419 if (isyms == NULL)
5420 {
5421 error (_("Out of memory reading %lu symbols\n"),
5422 (unsigned long) number);
5423 goto exit_point;
5424 }
5425
5426 for (j = 0, psym = isyms; j < number; j++, psym++)
5427 {
5428 psym->st_name = BYTE_GET (esyms[j].st_name);
5429 psym->st_info = BYTE_GET (esyms[j].st_info);
5430 psym->st_other = BYTE_GET (esyms[j].st_other);
5431 psym->st_shndx = BYTE_GET (esyms[j].st_shndx);
5432
5433 if (psym->st_shndx == (SHN_XINDEX & 0xffff) && shndx != NULL)
5434 psym->st_shndx
5435 = byte_get ((unsigned char *) &shndx[j], sizeof (shndx[j]));
5436 else if (psym->st_shndx >= (SHN_LORESERVE & 0xffff))
5437 psym->st_shndx += SHN_LORESERVE - (SHN_LORESERVE & 0xffff);
5438
5439 psym->st_value = BYTE_GET (esyms[j].st_value);
5440 psym->st_size = BYTE_GET (esyms[j].st_size);
5441 }
5442
5443 exit_point:
5444 if (shndx != NULL)
5445 free (shndx);
5446 if (esyms != NULL)
5447 free (esyms);
5448
5449 if (num_syms_return != NULL)
5450 * num_syms_return = isyms == NULL ? 0 : number;
5451
5452 return isyms;
5453 }
5454
5455 static const char *
5456 get_elf_section_flags (bfd_vma sh_flags)
5457 {
5458 static char buff[1024];
5459 char * p = buff;
5460 int field_size = is_32bit_elf ? 8 : 16;
5461 int sindex;
5462 int size = sizeof (buff) - (field_size + 4 + 1);
5463 bfd_vma os_flags = 0;
5464 bfd_vma proc_flags = 0;
5465 bfd_vma unknown_flags = 0;
5466 static const struct
5467 {
5468 const char * str;
5469 int len;
5470 }
5471 flags [] =
5472 {
5473 /* 0 */ { STRING_COMMA_LEN ("WRITE") },
5474 /* 1 */ { STRING_COMMA_LEN ("ALLOC") },
5475 /* 2 */ { STRING_COMMA_LEN ("EXEC") },
5476 /* 3 */ { STRING_COMMA_LEN ("MERGE") },
5477 /* 4 */ { STRING_COMMA_LEN ("STRINGS") },
5478 /* 5 */ { STRING_COMMA_LEN ("INFO LINK") },
5479 /* 6 */ { STRING_COMMA_LEN ("LINK ORDER") },
5480 /* 7 */ { STRING_COMMA_LEN ("OS NONCONF") },
5481 /* 8 */ { STRING_COMMA_LEN ("GROUP") },
5482 /* 9 */ { STRING_COMMA_LEN ("TLS") },
5483 /* IA-64 specific. */
5484 /* 10 */ { STRING_COMMA_LEN ("SHORT") },
5485 /* 11 */ { STRING_COMMA_LEN ("NORECOV") },
5486 /* IA-64 OpenVMS specific. */
5487 /* 12 */ { STRING_COMMA_LEN ("VMS_GLOBAL") },
5488 /* 13 */ { STRING_COMMA_LEN ("VMS_OVERLAID") },
5489 /* 14 */ { STRING_COMMA_LEN ("VMS_SHARED") },
5490 /* 15 */ { STRING_COMMA_LEN ("VMS_VECTOR") },
5491 /* 16 */ { STRING_COMMA_LEN ("VMS_ALLOC_64BIT") },
5492 /* 17 */ { STRING_COMMA_LEN ("VMS_PROTECTED") },
5493 /* Generic. */
5494 /* 18 */ { STRING_COMMA_LEN ("EXCLUDE") },
5495 /* SPARC specific. */
5496 /* 19 */ { STRING_COMMA_LEN ("ORDERED") },
5497 /* 20 */ { STRING_COMMA_LEN ("COMPRESSED") },
5498 /* ARM specific. */
5499 /* 21 */ { STRING_COMMA_LEN ("ENTRYSECT") },
5500 /* 22 */ { STRING_COMMA_LEN ("ARM_PURECODE") },
5501 /* 23 */ { STRING_COMMA_LEN ("COMDEF") }
5502 };
5503
5504 if (do_section_details)
5505 {
5506 sprintf (buff, "[%*.*lx]: ",
5507 field_size, field_size, (unsigned long) sh_flags);
5508 p += field_size + 4;
5509 }
5510
5511 while (sh_flags)
5512 {
5513 bfd_vma flag;
5514
5515 flag = sh_flags & - sh_flags;
5516 sh_flags &= ~ flag;
5517
5518 if (do_section_details)
5519 {
5520 switch (flag)
5521 {
5522 case SHF_WRITE: sindex = 0; break;
5523 case SHF_ALLOC: sindex = 1; break;
5524 case SHF_EXECINSTR: sindex = 2; break;
5525 case SHF_MERGE: sindex = 3; break;
5526 case SHF_STRINGS: sindex = 4; break;
5527 case SHF_INFO_LINK: sindex = 5; break;
5528 case SHF_LINK_ORDER: sindex = 6; break;
5529 case SHF_OS_NONCONFORMING: sindex = 7; break;
5530 case SHF_GROUP: sindex = 8; break;
5531 case SHF_TLS: sindex = 9; break;
5532 case SHF_EXCLUDE: sindex = 18; break;
5533 case SHF_COMPRESSED: sindex = 20; break;
5534
5535 default:
5536 sindex = -1;
5537 switch (elf_header.e_machine)
5538 {
5539 case EM_IA_64:
5540 if (flag == SHF_IA_64_SHORT)
5541 sindex = 10;
5542 else if (flag == SHF_IA_64_NORECOV)
5543 sindex = 11;
5544 #ifdef BFD64
5545 else if (elf_header.e_ident[EI_OSABI] == ELFOSABI_OPENVMS)
5546 switch (flag)
5547 {
5548 case SHF_IA_64_VMS_GLOBAL: sindex = 12; break;
5549 case SHF_IA_64_VMS_OVERLAID: sindex = 13; break;
5550 case SHF_IA_64_VMS_SHARED: sindex = 14; break;
5551 case SHF_IA_64_VMS_VECTOR: sindex = 15; break;
5552 case SHF_IA_64_VMS_ALLOC_64BIT: sindex = 16; break;
5553 case SHF_IA_64_VMS_PROTECTED: sindex = 17; break;
5554 default: break;
5555 }
5556 #endif
5557 break;
5558
5559 case EM_386:
5560 case EM_IAMCU:
5561 case EM_X86_64:
5562 case EM_L1OM:
5563 case EM_K1OM:
5564 case EM_OLD_SPARCV9:
5565 case EM_SPARC32PLUS:
5566 case EM_SPARCV9:
5567 case EM_SPARC:
5568 if (flag == SHF_ORDERED)
5569 sindex = 19;
5570 break;
5571
5572 case EM_ARM:
5573 switch (flag)
5574 {
5575 case SHF_ENTRYSECT: sindex = 21; break;
5576 case SHF_ARM_PURECODE: sindex = 22; break;
5577 case SHF_COMDEF: sindex = 23; break;
5578 default: break;
5579 }
5580 break;
5581
5582 default:
5583 break;
5584 }
5585 }
5586
5587 if (sindex != -1)
5588 {
5589 if (p != buff + field_size + 4)
5590 {
5591 if (size < (10 + 2))
5592 {
5593 warn (_("Internal error: not enough buffer room for section flag info"));
5594 return _("<unknown>");
5595 }
5596 size -= 2;
5597 *p++ = ',';
5598 *p++ = ' ';
5599 }
5600
5601 size -= flags [sindex].len;
5602 p = stpcpy (p, flags [sindex].str);
5603 }
5604 else if (flag & SHF_MASKOS)
5605 os_flags |= flag;
5606 else if (flag & SHF_MASKPROC)
5607 proc_flags |= flag;
5608 else
5609 unknown_flags |= flag;
5610 }
5611 else
5612 {
5613 switch (flag)
5614 {
5615 case SHF_WRITE: *p = 'W'; break;
5616 case SHF_ALLOC: *p = 'A'; break;
5617 case SHF_EXECINSTR: *p = 'X'; break;
5618 case SHF_MERGE: *p = 'M'; break;
5619 case SHF_STRINGS: *p = 'S'; break;
5620 case SHF_INFO_LINK: *p = 'I'; break;
5621 case SHF_LINK_ORDER: *p = 'L'; break;
5622 case SHF_OS_NONCONFORMING: *p = 'O'; break;
5623 case SHF_GROUP: *p = 'G'; break;
5624 case SHF_TLS: *p = 'T'; break;
5625 case SHF_EXCLUDE: *p = 'E'; break;
5626 case SHF_COMPRESSED: *p = 'C'; break;
5627
5628 default:
5629 if ((elf_header.e_machine == EM_X86_64
5630 || elf_header.e_machine == EM_L1OM
5631 || elf_header.e_machine == EM_K1OM)
5632 && flag == SHF_X86_64_LARGE)
5633 *p = 'l';
5634 else if (elf_header.e_machine == EM_ARM
5635 && flag == SHF_ARM_PURECODE)
5636 *p = 'y';
5637 else if (flag & SHF_MASKOS)
5638 {
5639 *p = 'o';
5640 sh_flags &= ~ SHF_MASKOS;
5641 }
5642 else if (flag & SHF_MASKPROC)
5643 {
5644 *p = 'p';
5645 sh_flags &= ~ SHF_MASKPROC;
5646 }
5647 else
5648 *p = 'x';
5649 break;
5650 }
5651 p++;
5652 }
5653 }
5654
5655 if (do_section_details)
5656 {
5657 if (os_flags)
5658 {
5659 size -= 5 + field_size;
5660 if (p != buff + field_size + 4)
5661 {
5662 if (size < (2 + 1))
5663 {
5664 warn (_("Internal error: not enough buffer room for section flag info"));
5665 return _("<unknown>");
5666 }
5667 size -= 2;
5668 *p++ = ',';
5669 *p++ = ' ';
5670 }
5671 sprintf (p, "OS (%*.*lx)", field_size, field_size,
5672 (unsigned long) os_flags);
5673 p += 5 + field_size;
5674 }
5675 if (proc_flags)
5676 {
5677 size -= 7 + field_size;
5678 if (p != buff + field_size + 4)
5679 {
5680 if (size < (2 + 1))
5681 {
5682 warn (_("Internal error: not enough buffer room for section flag info"));
5683 return _("<unknown>");
5684 }
5685 size -= 2;
5686 *p++ = ',';
5687 *p++ = ' ';
5688 }
5689 sprintf (p, "PROC (%*.*lx)", field_size, field_size,
5690 (unsigned long) proc_flags);
5691 p += 7 + field_size;
5692 }
5693 if (unknown_flags)
5694 {
5695 size -= 10 + field_size;
5696 if (p != buff + field_size + 4)
5697 {
5698 if (size < (2 + 1))
5699 {
5700 warn (_("Internal error: not enough buffer room for section flag info"));
5701 return _("<unknown>");
5702 }
5703 size -= 2;
5704 *p++ = ',';
5705 *p++ = ' ';
5706 }
5707 sprintf (p, _("UNKNOWN (%*.*lx)"), field_size, field_size,
5708 (unsigned long) unknown_flags);
5709 p += 10 + field_size;
5710 }
5711 }
5712
5713 *p = '\0';
5714 return buff;
5715 }
5716
5717 static unsigned int
5718 get_compression_header (Elf_Internal_Chdr *chdr, unsigned char *buf)
5719 {
5720 if (is_32bit_elf)
5721 {
5722 Elf32_External_Chdr *echdr = (Elf32_External_Chdr *) buf;
5723
5724 chdr->ch_type = BYTE_GET (echdr->ch_type);
5725 chdr->ch_size = BYTE_GET (echdr->ch_size);
5726 chdr->ch_addralign = BYTE_GET (echdr->ch_addralign);
5727 return sizeof (*echdr);
5728 }
5729 else
5730 {
5731 Elf64_External_Chdr *echdr = (Elf64_External_Chdr *) buf;
5732
5733 chdr->ch_type = BYTE_GET (echdr->ch_type);
5734 chdr->ch_size = BYTE_GET (echdr->ch_size);
5735 chdr->ch_addralign = BYTE_GET (echdr->ch_addralign);
5736 return sizeof (*echdr);
5737 }
5738 }
5739
5740 static int
5741 process_section_headers (FILE * file)
5742 {
5743 Elf_Internal_Shdr * section;
5744 unsigned int i;
5745
5746 section_headers = NULL;
5747
5748 if (elf_header.e_shnum == 0)
5749 {
5750 /* PR binutils/12467. */
5751 if (elf_header.e_shoff != 0)
5752 warn (_("possibly corrupt ELF file header - it has a non-zero"
5753 " section header offset, but no section headers\n"));
5754 else if (do_sections)
5755 printf (_("\nThere are no sections in this file.\n"));
5756
5757 return 1;
5758 }
5759
5760 if (do_sections && !do_header)
5761 printf (_("There are %d section headers, starting at offset 0x%lx:\n"),
5762 elf_header.e_shnum, (unsigned long) elf_header.e_shoff);
5763
5764 if (is_32bit_elf)
5765 {
5766 if (! get_32bit_section_headers (file, FALSE))
5767 return 0;
5768 }
5769 else if (! get_64bit_section_headers (file, FALSE))
5770 return 0;
5771
5772 /* Read in the string table, so that we have names to display. */
5773 if (elf_header.e_shstrndx != SHN_UNDEF
5774 && elf_header.e_shstrndx < elf_header.e_shnum)
5775 {
5776 section = section_headers + elf_header.e_shstrndx;
5777
5778 if (section->sh_size != 0)
5779 {
5780 string_table = (char *) get_data (NULL, file, section->sh_offset,
5781 1, section->sh_size,
5782 _("string table"));
5783
5784 string_table_length = string_table != NULL ? section->sh_size : 0;
5785 }
5786 }
5787
5788 /* Scan the sections for the dynamic symbol table
5789 and dynamic string table and debug sections. */
5790 dynamic_symbols = NULL;
5791 dynamic_strings = NULL;
5792 dynamic_syminfo = NULL;
5793 symtab_shndx_list = NULL;
5794
5795 eh_addr_size = is_32bit_elf ? 4 : 8;
5796 switch (elf_header.e_machine)
5797 {
5798 case EM_MIPS:
5799 case EM_MIPS_RS3_LE:
5800 /* The 64-bit MIPS EABI uses a combination of 32-bit ELF and 64-bit
5801 FDE addresses. However, the ABI also has a semi-official ILP32
5802 variant for which the normal FDE address size rules apply.
5803
5804 GCC 4.0 marks EABI64 objects with a dummy .gcc_compiled_longXX
5805 section, where XX is the size of longs in bits. Unfortunately,
5806 earlier compilers provided no way of distinguishing ILP32 objects
5807 from LP64 objects, so if there's any doubt, we should assume that
5808 the official LP64 form is being used. */
5809 if ((elf_header.e_flags & EF_MIPS_ABI) == E_MIPS_ABI_EABI64
5810 && find_section (".gcc_compiled_long32") == NULL)
5811 eh_addr_size = 8;
5812 break;
5813
5814 case EM_H8_300:
5815 case EM_H8_300H:
5816 switch (elf_header.e_flags & EF_H8_MACH)
5817 {
5818 case E_H8_MACH_H8300:
5819 case E_H8_MACH_H8300HN:
5820 case E_H8_MACH_H8300SN:
5821 case E_H8_MACH_H8300SXN:
5822 eh_addr_size = 2;
5823 break;
5824 case E_H8_MACH_H8300H:
5825 case E_H8_MACH_H8300S:
5826 case E_H8_MACH_H8300SX:
5827 eh_addr_size = 4;
5828 break;
5829 }
5830 break;
5831
5832 case EM_M32C_OLD:
5833 case EM_M32C:
5834 switch (elf_header.e_flags & EF_M32C_CPU_MASK)
5835 {
5836 case EF_M32C_CPU_M16C:
5837 eh_addr_size = 2;
5838 break;
5839 }
5840 break;
5841 }
5842
5843 #define CHECK_ENTSIZE_VALUES(section, i, size32, size64) \
5844 do \
5845 { \
5846 bfd_size_type expected_entsize = is_32bit_elf ? size32 : size64; \
5847 if (section->sh_entsize != expected_entsize) \
5848 { \
5849 char buf[40]; \
5850 sprintf_vma (buf, section->sh_entsize); \
5851 /* Note: coded this way so that there is a single string for \
5852 translation. */ \
5853 error (_("Section %d has invalid sh_entsize of %s\n"), i, buf); \
5854 error (_("(Using the expected size of %u for the rest of this dump)\n"), \
5855 (unsigned) expected_entsize); \
5856 section->sh_entsize = expected_entsize; \
5857 } \
5858 } \
5859 while (0)
5860
5861 #define CHECK_ENTSIZE(section, i, type) \
5862 CHECK_ENTSIZE_VALUES (section, i, sizeof (Elf32_External_##type), \
5863 sizeof (Elf64_External_##type))
5864
5865 for (i = 0, section = section_headers;
5866 i < elf_header.e_shnum;
5867 i++, section++)
5868 {
5869 char * name = SECTION_NAME (section);
5870
5871 if (section->sh_type == SHT_DYNSYM)
5872 {
5873 if (dynamic_symbols != NULL)
5874 {
5875 error (_("File contains multiple dynamic symbol tables\n"));
5876 continue;
5877 }
5878
5879 CHECK_ENTSIZE (section, i, Sym);
5880 dynamic_symbols = GET_ELF_SYMBOLS (file, section, & num_dynamic_syms);
5881 }
5882 else if (section->sh_type == SHT_STRTAB
5883 && streq (name, ".dynstr"))
5884 {
5885 if (dynamic_strings != NULL)
5886 {
5887 error (_("File contains multiple dynamic string tables\n"));
5888 continue;
5889 }
5890
5891 dynamic_strings = (char *) get_data (NULL, file, section->sh_offset,
5892 1, section->sh_size,
5893 _("dynamic strings"));
5894 dynamic_strings_length = dynamic_strings == NULL ? 0 : section->sh_size;
5895 }
5896 else if (section->sh_type == SHT_SYMTAB_SHNDX)
5897 {
5898 elf_section_list * entry = xmalloc (sizeof * entry);
5899 entry->hdr = section;
5900 entry->next = symtab_shndx_list;
5901 symtab_shndx_list = entry;
5902 }
5903 else if (section->sh_type == SHT_SYMTAB)
5904 CHECK_ENTSIZE (section, i, Sym);
5905 else if (section->sh_type == SHT_GROUP)
5906 CHECK_ENTSIZE_VALUES (section, i, GRP_ENTRY_SIZE, GRP_ENTRY_SIZE);
5907 else if (section->sh_type == SHT_REL)
5908 CHECK_ENTSIZE (section, i, Rel);
5909 else if (section->sh_type == SHT_RELA)
5910 CHECK_ENTSIZE (section, i, Rela);
5911 else if ((do_debugging || do_debug_info || do_debug_abbrevs
5912 || do_debug_lines || do_debug_pubnames || do_debug_pubtypes
5913 || do_debug_aranges || do_debug_frames || do_debug_macinfo
5914 || do_debug_str || do_debug_loc || do_debug_ranges
5915 || do_debug_addr || do_debug_cu_index)
5916 && (const_strneq (name, ".debug_")
5917 || const_strneq (name, ".zdebug_")))
5918 {
5919 if (name[1] == 'z')
5920 name += sizeof (".zdebug_") - 1;
5921 else
5922 name += sizeof (".debug_") - 1;
5923
5924 if (do_debugging
5925 || (do_debug_info && const_strneq (name, "info"))
5926 || (do_debug_info && const_strneq (name, "types"))
5927 || (do_debug_abbrevs && const_strneq (name, "abbrev"))
5928 || (do_debug_lines && strcmp (name, "line") == 0)
5929 || (do_debug_lines && const_strneq (name, "line."))
5930 || (do_debug_pubnames && const_strneq (name, "pubnames"))
5931 || (do_debug_pubtypes && const_strneq (name, "pubtypes"))
5932 || (do_debug_pubnames && const_strneq (name, "gnu_pubnames"))
5933 || (do_debug_pubtypes && const_strneq (name, "gnu_pubtypes"))
5934 || (do_debug_aranges && const_strneq (name, "aranges"))
5935 || (do_debug_ranges && const_strneq (name, "ranges"))
5936 || (do_debug_frames && const_strneq (name, "frame"))
5937 || (do_debug_macinfo && const_strneq (name, "macinfo"))
5938 || (do_debug_macinfo && const_strneq (name, "macro"))
5939 || (do_debug_str && const_strneq (name, "str"))
5940 || (do_debug_loc && const_strneq (name, "loc"))
5941 || (do_debug_addr && const_strneq (name, "addr"))
5942 || (do_debug_cu_index && const_strneq (name, "cu_index"))
5943 || (do_debug_cu_index && const_strneq (name, "tu_index"))
5944 )
5945 request_dump_bynumber (i, DEBUG_DUMP);
5946 }
5947 /* Linkonce section to be combined with .debug_info at link time. */
5948 else if ((do_debugging || do_debug_info)
5949 && const_strneq (name, ".gnu.linkonce.wi."))
5950 request_dump_bynumber (i, DEBUG_DUMP);
5951 else if (do_debug_frames && streq (name, ".eh_frame"))
5952 request_dump_bynumber (i, DEBUG_DUMP);
5953 else if (do_gdb_index && streq (name, ".gdb_index"))
5954 request_dump_bynumber (i, DEBUG_DUMP);
5955 /* Trace sections for Itanium VMS. */
5956 else if ((do_debugging || do_trace_info || do_trace_abbrevs
5957 || do_trace_aranges)
5958 && const_strneq (name, ".trace_"))
5959 {
5960 name += sizeof (".trace_") - 1;
5961
5962 if (do_debugging
5963 || (do_trace_info && streq (name, "info"))
5964 || (do_trace_abbrevs && streq (name, "abbrev"))
5965 || (do_trace_aranges && streq (name, "aranges"))
5966 )
5967 request_dump_bynumber (i, DEBUG_DUMP);
5968 }
5969 }
5970
5971 if (! do_sections)
5972 return 1;
5973
5974 if (elf_header.e_shnum > 1)
5975 printf (_("\nSection Headers:\n"));
5976 else
5977 printf (_("\nSection Header:\n"));
5978
5979 if (is_32bit_elf)
5980 {
5981 if (do_section_details)
5982 {
5983 printf (_(" [Nr] Name\n"));
5984 printf (_(" Type Addr Off Size ES Lk Inf Al\n"));
5985 }
5986 else
5987 printf
5988 (_(" [Nr] Name Type Addr Off Size ES Flg Lk Inf Al\n"));
5989 }
5990 else if (do_wide)
5991 {
5992 if (do_section_details)
5993 {
5994 printf (_(" [Nr] Name\n"));
5995 printf (_(" Type Address Off Size ES Lk Inf Al\n"));
5996 }
5997 else
5998 printf
5999 (_(" [Nr] Name Type Address Off Size ES Flg Lk Inf Al\n"));
6000 }
6001 else
6002 {
6003 if (do_section_details)
6004 {
6005 printf (_(" [Nr] Name\n"));
6006 printf (_(" Type Address Offset Link\n"));
6007 printf (_(" Size EntSize Info Align\n"));
6008 }
6009 else
6010 {
6011 printf (_(" [Nr] Name Type Address Offset\n"));
6012 printf (_(" Size EntSize Flags Link Info Align\n"));
6013 }
6014 }
6015
6016 if (do_section_details)
6017 printf (_(" Flags\n"));
6018
6019 for (i = 0, section = section_headers;
6020 i < elf_header.e_shnum;
6021 i++, section++)
6022 {
6023 /* Run some sanity checks on the section header. */
6024
6025 /* Check the sh_link field. */
6026 switch (section->sh_type)
6027 {
6028 case SHT_SYMTAB_SHNDX:
6029 case SHT_GROUP:
6030 case SHT_HASH:
6031 case SHT_GNU_HASH:
6032 case SHT_GNU_versym:
6033 case SHT_REL:
6034 case SHT_RELA:
6035 if (section->sh_link < 1
6036 || section->sh_link >= elf_header.e_shnum
6037 || (section_headers[section->sh_link].sh_type != SHT_SYMTAB
6038 && section_headers[section->sh_link].sh_type != SHT_DYNSYM))
6039 warn (_("[%2u]: Link field (%u) should index a symtab section.\n"),
6040 i, section->sh_link);
6041 break;
6042
6043 case SHT_DYNAMIC:
6044 case SHT_SYMTAB:
6045 case SHT_DYNSYM:
6046 case SHT_GNU_verneed:
6047 case SHT_GNU_verdef:
6048 case SHT_GNU_LIBLIST:
6049 if (section->sh_link < 1
6050 || section->sh_link >= elf_header.e_shnum
6051 || section_headers[section->sh_link].sh_type != SHT_STRTAB)
6052 warn (_("[%2u]: Link field (%u) should index a string section.\n"),
6053 i, section->sh_link);
6054 break;
6055
6056 case SHT_INIT_ARRAY:
6057 case SHT_FINI_ARRAY:
6058 case SHT_PREINIT_ARRAY:
6059 if (section->sh_type < SHT_LOOS && section->sh_link != 0)
6060 warn (_("[%2u]: Unexpected value (%u) in link field.\n"),
6061 i, section->sh_link);
6062 break;
6063
6064 default:
6065 /* FIXME: Add support for target specific section types. */
6066 #if 0 /* Currently we do not check other section types as there are too
6067 many special cases. Stab sections for example have a type
6068 of SHT_PROGBITS but an sh_link field that links to the .stabstr
6069 section. */
6070 if (section->sh_type < SHT_LOOS && section->sh_link != 0)
6071 warn (_("[%2u]: Unexpected value (%u) in link field.\n"),
6072 i, section->sh_link);
6073 #endif
6074 break;
6075 }
6076
6077 /* Check the sh_info field. */
6078 switch (section->sh_type)
6079 {
6080 case SHT_REL:
6081 case SHT_RELA:
6082 if (section->sh_info < 1
6083 || section->sh_info >= elf_header.e_shnum
6084 || (section_headers[section->sh_info].sh_type != SHT_PROGBITS
6085 && section_headers[section->sh_info].sh_type != SHT_NOBITS
6086 && section_headers[section->sh_info].sh_type != SHT_NOTE
6087 && section_headers[section->sh_info].sh_type != SHT_INIT_ARRAY
6088 /* FIXME: Are other section types valid ? */
6089 && section_headers[section->sh_info].sh_type < SHT_LOOS))
6090 {
6091 if (section->sh_info == 0
6092 && (streq (SECTION_NAME (section), ".rel.dyn")
6093 || streq (SECTION_NAME (section), ".rela.dyn")))
6094 /* The .rel.dyn and .rela.dyn sections have an sh_info field
6095 of zero. The relocations in these sections may apply
6096 to many different sections. */
6097 ;
6098 else
6099 warn (_("[%2u]: Info field (%u) should index a relocatable section.\n"),
6100 i, section->sh_info);
6101 }
6102 break;
6103
6104 case SHT_DYNAMIC:
6105 case SHT_HASH:
6106 case SHT_SYMTAB_SHNDX:
6107 case SHT_INIT_ARRAY:
6108 case SHT_FINI_ARRAY:
6109 case SHT_PREINIT_ARRAY:
6110 if (section->sh_info != 0)
6111 warn (_("[%2u]: Unexpected value (%u) in info field.\n"),
6112 i, section->sh_info);
6113 break;
6114
6115 case SHT_GROUP:
6116 case SHT_SYMTAB:
6117 case SHT_DYNSYM:
6118 /* A symbol index - we assume that it is valid. */
6119 break;
6120
6121 default:
6122 /* FIXME: Add support for target specific section types. */
6123 if (section->sh_type == SHT_NOBITS)
6124 /* NOBITS section headers with non-zero sh_info fields can be
6125 created when a binary is stripped of everything but its debug
6126 information. The stripped sections have their headers
6127 preserved but their types set to SHT_NOBITS. So do not check
6128 this type of section. */
6129 ;
6130 else if (section->sh_flags & SHF_INFO_LINK)
6131 {
6132 if (section->sh_info < 1 || section->sh_info >= elf_header.e_shnum)
6133 warn (_("[%2u]: Expected link to another section in info field"), i);
6134 }
6135 else if (section->sh_type < SHT_LOOS && section->sh_info != 0)
6136 warn (_("[%2u]: Unexpected value (%u) in info field.\n"),
6137 i, section->sh_info);
6138 break;
6139 }
6140
6141 printf (" [%2u] ", i);
6142 if (do_section_details)
6143 printf ("%s\n ", printable_section_name (section));
6144 else
6145 print_symbol (-17, SECTION_NAME (section));
6146
6147 printf (do_wide ? " %-15s " : " %-15.15s ",
6148 get_section_type_name (section->sh_type));
6149
6150 if (is_32bit_elf)
6151 {
6152 const char * link_too_big = NULL;
6153
6154 print_vma (section->sh_addr, LONG_HEX);
6155
6156 printf ( " %6.6lx %6.6lx %2.2lx",
6157 (unsigned long) section->sh_offset,
6158 (unsigned long) section->sh_size,
6159 (unsigned long) section->sh_entsize);
6160
6161 if (do_section_details)
6162 fputs (" ", stdout);
6163 else
6164 printf (" %3s ", get_elf_section_flags (section->sh_flags));
6165
6166 if (section->sh_link >= elf_header.e_shnum)
6167 {
6168 link_too_big = "";
6169 /* The sh_link value is out of range. Normally this indicates
6170 an error but it can have special values in Solaris binaries. */
6171 switch (elf_header.e_machine)
6172 {
6173 case EM_386:
6174 case EM_IAMCU:
6175 case EM_X86_64:
6176 case EM_L1OM:
6177 case EM_K1OM:
6178 case EM_OLD_SPARCV9:
6179 case EM_SPARC32PLUS:
6180 case EM_SPARCV9:
6181 case EM_SPARC:
6182 if (section->sh_link == (SHN_BEFORE & 0xffff))
6183 link_too_big = "BEFORE";
6184 else if (section->sh_link == (SHN_AFTER & 0xffff))
6185 link_too_big = "AFTER";
6186 break;
6187 default:
6188 break;
6189 }
6190 }
6191
6192 if (do_section_details)
6193 {
6194 if (link_too_big != NULL && * link_too_big)
6195 printf ("<%s> ", link_too_big);
6196 else
6197 printf ("%2u ", section->sh_link);
6198 printf ("%3u %2lu\n", section->sh_info,
6199 (unsigned long) section->sh_addralign);
6200 }
6201 else
6202 printf ("%2u %3u %2lu\n",
6203 section->sh_link,
6204 section->sh_info,
6205 (unsigned long) section->sh_addralign);
6206
6207 if (link_too_big && ! * link_too_big)
6208 warn (_("section %u: sh_link value of %u is larger than the number of sections\n"),
6209 i, section->sh_link);
6210 }
6211 else if (do_wide)
6212 {
6213 print_vma (section->sh_addr, LONG_HEX);
6214
6215 if ((long) section->sh_offset == section->sh_offset)
6216 printf (" %6.6lx", (unsigned long) section->sh_offset);
6217 else
6218 {
6219 putchar (' ');
6220 print_vma (section->sh_offset, LONG_HEX);
6221 }
6222
6223 if ((unsigned long) section->sh_size == section->sh_size)
6224 printf (" %6.6lx", (unsigned long) section->sh_size);
6225 else
6226 {
6227 putchar (' ');
6228 print_vma (section->sh_size, LONG_HEX);
6229 }
6230
6231 if ((unsigned long) section->sh_entsize == section->sh_entsize)
6232 printf (" %2.2lx", (unsigned long) section->sh_entsize);
6233 else
6234 {
6235 putchar (' ');
6236 print_vma (section->sh_entsize, LONG_HEX);
6237 }
6238
6239 if (do_section_details)
6240 fputs (" ", stdout);
6241 else
6242 printf (" %3s ", get_elf_section_flags (section->sh_flags));
6243
6244 printf ("%2u %3u ", section->sh_link, section->sh_info);
6245
6246 if ((unsigned long) section->sh_addralign == section->sh_addralign)
6247 printf ("%2lu\n", (unsigned long) section->sh_addralign);
6248 else
6249 {
6250 print_vma (section->sh_addralign, DEC);
6251 putchar ('\n');
6252 }
6253 }
6254 else if (do_section_details)
6255 {
6256 printf (" %-15.15s ",
6257 get_section_type_name (section->sh_type));
6258 print_vma (section->sh_addr, LONG_HEX);
6259 if ((long) section->sh_offset == section->sh_offset)
6260 printf (" %16.16lx", (unsigned long) section->sh_offset);
6261 else
6262 {
6263 printf (" ");
6264 print_vma (section->sh_offset, LONG_HEX);
6265 }
6266 printf (" %u\n ", section->sh_link);
6267 print_vma (section->sh_size, LONG_HEX);
6268 putchar (' ');
6269 print_vma (section->sh_entsize, LONG_HEX);
6270
6271 printf (" %-16u %lu\n",
6272 section->sh_info,
6273 (unsigned long) section->sh_addralign);
6274 }
6275 else
6276 {
6277 putchar (' ');
6278 print_vma (section->sh_addr, LONG_HEX);
6279 if ((long) section->sh_offset == section->sh_offset)
6280 printf (" %8.8lx", (unsigned long) section->sh_offset);
6281 else
6282 {
6283 printf (" ");
6284 print_vma (section->sh_offset, LONG_HEX);
6285 }
6286 printf ("\n ");
6287 print_vma (section->sh_size, LONG_HEX);
6288 printf (" ");
6289 print_vma (section->sh_entsize, LONG_HEX);
6290
6291 printf (" %3s ", get_elf_section_flags (section->sh_flags));
6292
6293 printf (" %2u %3u %lu\n",
6294 section->sh_link,
6295 section->sh_info,
6296 (unsigned long) section->sh_addralign);
6297 }
6298
6299 if (do_section_details)
6300 {
6301 printf (" %s\n", get_elf_section_flags (section->sh_flags));
6302 if ((section->sh_flags & SHF_COMPRESSED) != 0)
6303 {
6304 /* Minimum section size is 12 bytes for 32-bit compression
6305 header + 12 bytes for compressed data header. */
6306 unsigned char buf[24];
6307
6308 assert (sizeof (buf) >= sizeof (Elf64_External_Chdr));
6309 if (get_data (&buf, (FILE *) file, section->sh_offset, 1,
6310 sizeof (buf), _("compression header")))
6311 {
6312 Elf_Internal_Chdr chdr;
6313
6314 (void) get_compression_header (&chdr, buf);
6315
6316 if (chdr.ch_type == ELFCOMPRESS_ZLIB)
6317 printf (" ZLIB, ");
6318 else
6319 printf (_(" [<unknown>: 0x%x], "),
6320 chdr.ch_type);
6321 print_vma (chdr.ch_size, LONG_HEX);
6322 printf (", %lu\n", (unsigned long) chdr.ch_addralign);
6323 }
6324 }
6325 }
6326 }
6327
6328 if (!do_section_details)
6329 {
6330 /* The ordering of the letters shown here matches the ordering of the
6331 corresponding SHF_xxx values, and hence the order in which these
6332 letters will be displayed to the user. */
6333 printf (_("Key to Flags:\n\
6334 W (write), A (alloc), X (execute), M (merge), S (strings), I (info),\n\
6335 L (link order), O (extra OS processing required), G (group), T (TLS),\n\
6336 C (compressed), x (unknown), o (OS specific), E (exclude),\n "));
6337 if (elf_header.e_machine == EM_X86_64
6338 || elf_header.e_machine == EM_L1OM
6339 || elf_header.e_machine == EM_K1OM)
6340 printf (_("l (large), "));
6341 else if (elf_header.e_machine == EM_ARM)
6342 printf (_("y (purecode), "));
6343 printf ("p (processor specific)\n");
6344 }
6345
6346 return 1;
6347 }
6348
6349 static const char *
6350 get_group_flags (unsigned int flags)
6351 {
6352 static char buff[128];
6353
6354 if (flags == 0)
6355 return "";
6356 else if (flags == GRP_COMDAT)
6357 return "COMDAT ";
6358
6359 snprintf (buff, 14, _("[0x%x: "), flags);
6360
6361 flags &= ~ GRP_COMDAT;
6362 if (flags & GRP_MASKOS)
6363 {
6364 strcat (buff, "<OS specific>");
6365 flags &= ~ GRP_MASKOS;
6366 }
6367
6368 if (flags & GRP_MASKPROC)
6369 {
6370 strcat (buff, "<PROC specific>");
6371 flags &= ~ GRP_MASKPROC;
6372 }
6373
6374 if (flags)
6375 strcat (buff, "<unknown>");
6376
6377 strcat (buff, "]");
6378 return buff;
6379 }
6380
6381 static int
6382 process_section_groups (FILE * file)
6383 {
6384 Elf_Internal_Shdr * section;
6385 unsigned int i;
6386 struct group * group;
6387 Elf_Internal_Shdr * symtab_sec;
6388 Elf_Internal_Shdr * strtab_sec;
6389 Elf_Internal_Sym * symtab;
6390 unsigned long num_syms;
6391 char * strtab;
6392 size_t strtab_size;
6393
6394 /* Don't process section groups unless needed. */
6395 if (!do_unwind && !do_section_groups)
6396 return 1;
6397
6398 if (elf_header.e_shnum == 0)
6399 {
6400 if (do_section_groups)
6401 printf (_("\nThere are no sections to group in this file.\n"));
6402
6403 return 1;
6404 }
6405
6406 if (section_headers == NULL)
6407 {
6408 error (_("Section headers are not available!\n"));
6409 /* PR 13622: This can happen with a corrupt ELF header. */
6410 return 0;
6411 }
6412
6413 section_headers_groups = (struct group **) calloc (elf_header.e_shnum,
6414 sizeof (struct group *));
6415
6416 if (section_headers_groups == NULL)
6417 {
6418 error (_("Out of memory reading %u section group headers\n"),
6419 elf_header.e_shnum);
6420 return 0;
6421 }
6422
6423 /* Scan the sections for the group section. */
6424 group_count = 0;
6425 for (i = 0, section = section_headers;
6426 i < elf_header.e_shnum;
6427 i++, section++)
6428 if (section->sh_type == SHT_GROUP)
6429 group_count++;
6430
6431 if (group_count == 0)
6432 {
6433 if (do_section_groups)
6434 printf (_("\nThere are no section groups in this file.\n"));
6435
6436 return 1;
6437 }
6438
6439 section_groups = (struct group *) calloc (group_count, sizeof (struct group));
6440
6441 if (section_groups == NULL)
6442 {
6443 error (_("Out of memory reading %lu groups\n"),
6444 (unsigned long) group_count);
6445 return 0;
6446 }
6447
6448 symtab_sec = NULL;
6449 strtab_sec = NULL;
6450 symtab = NULL;
6451 num_syms = 0;
6452 strtab = NULL;
6453 strtab_size = 0;
6454 for (i = 0, section = section_headers, group = section_groups;
6455 i < elf_header.e_shnum;
6456 i++, section++)
6457 {
6458 if (section->sh_type == SHT_GROUP)
6459 {
6460 const char * name = printable_section_name (section);
6461 const char * group_name;
6462 unsigned char * start;
6463 unsigned char * indices;
6464 unsigned int entry, j, size;
6465 Elf_Internal_Shdr * sec;
6466 Elf_Internal_Sym * sym;
6467
6468 /* Get the symbol table. */
6469 if (section->sh_link >= elf_header.e_shnum
6470 || ((sec = section_headers + section->sh_link)->sh_type
6471 != SHT_SYMTAB))
6472 {
6473 error (_("Bad sh_link in group section `%s'\n"), name);
6474 continue;
6475 }
6476
6477 if (symtab_sec != sec)
6478 {
6479 symtab_sec = sec;
6480 if (symtab)
6481 free (symtab);
6482 symtab = GET_ELF_SYMBOLS (file, symtab_sec, & num_syms);
6483 }
6484
6485 if (symtab == NULL)
6486 {
6487 error (_("Corrupt header in group section `%s'\n"), name);
6488 continue;
6489 }
6490
6491 if (section->sh_info >= num_syms)
6492 {
6493 error (_("Bad sh_info in group section `%s'\n"), name);
6494 continue;
6495 }
6496
6497 sym = symtab + section->sh_info;
6498
6499 if (ELF_ST_TYPE (sym->st_info) == STT_SECTION)
6500 {
6501 if (sym->st_shndx == 0
6502 || sym->st_shndx >= elf_header.e_shnum)
6503 {
6504 error (_("Bad sh_info in group section `%s'\n"), name);
6505 continue;
6506 }
6507
6508 group_name = SECTION_NAME (section_headers + sym->st_shndx);
6509 strtab_sec = NULL;
6510 if (strtab)
6511 free (strtab);
6512 strtab = NULL;
6513 strtab_size = 0;
6514 }
6515 else
6516 {
6517 /* Get the string table. */
6518 if (symtab_sec->sh_link >= elf_header.e_shnum)
6519 {
6520 strtab_sec = NULL;
6521 if (strtab)
6522 free (strtab);
6523 strtab = NULL;
6524 strtab_size = 0;
6525 }
6526 else if (strtab_sec
6527 != (sec = section_headers + symtab_sec->sh_link))
6528 {
6529 strtab_sec = sec;
6530 if (strtab)
6531 free (strtab);
6532
6533 strtab = (char *) get_data (NULL, file, strtab_sec->sh_offset,
6534 1, strtab_sec->sh_size,
6535 _("string table"));
6536 strtab_size = strtab != NULL ? strtab_sec->sh_size : 0;
6537 }
6538 group_name = sym->st_name < strtab_size
6539 ? strtab + sym->st_name : _("<corrupt>");
6540 }
6541
6542 /* PR 17531: file: loop. */
6543 if (section->sh_entsize > section->sh_size)
6544 {
6545 error (_("Section %s has sh_entsize (0x%lx) which is larger than its size (0x%lx)\n"),
6546 printable_section_name (section),
6547 (unsigned long) section->sh_entsize,
6548 (unsigned long) section->sh_size);
6549 break;
6550 }
6551
6552 start = (unsigned char *) get_data (NULL, file, section->sh_offset,
6553 1, section->sh_size,
6554 _("section data"));
6555 if (start == NULL)
6556 continue;
6557
6558 indices = start;
6559 size = (section->sh_size / section->sh_entsize) - 1;
6560 entry = byte_get (indices, 4);
6561 indices += 4;
6562
6563 if (do_section_groups)
6564 {
6565 printf (_("\n%sgroup section [%5u] `%s' [%s] contains %u sections:\n"),
6566 get_group_flags (entry), i, name, group_name, size);
6567
6568 printf (_(" [Index] Name\n"));
6569 }
6570
6571 group->group_index = i;
6572
6573 for (j = 0; j < size; j++)
6574 {
6575 struct group_list * g;
6576
6577 entry = byte_get (indices, 4);
6578 indices += 4;
6579
6580 if (entry >= elf_header.e_shnum)
6581 {
6582 static unsigned num_group_errors = 0;
6583
6584 if (num_group_errors ++ < 10)
6585 {
6586 error (_("section [%5u] in group section [%5u] > maximum section [%5u]\n"),
6587 entry, i, elf_header.e_shnum - 1);
6588 if (num_group_errors == 10)
6589 warn (_("Futher error messages about overlarge group section indicies suppressed\n"));
6590 }
6591 continue;
6592 }
6593
6594 if (section_headers_groups [entry] != NULL)
6595 {
6596 if (entry)
6597 {
6598 static unsigned num_errs = 0;
6599
6600 if (num_errs ++ < 10)
6601 {
6602 error (_("section [%5u] in group section [%5u] already in group section [%5u]\n"),
6603 entry, i,
6604 section_headers_groups [entry]->group_index);
6605 if (num_errs == 10)
6606 warn (_("Further error messages about already contained group sections suppressed\n"));
6607 }
6608 continue;
6609 }
6610 else
6611 {
6612 /* Intel C/C++ compiler may put section 0 in a
6613 section group. We just warn it the first time
6614 and ignore it afterwards. */
6615 static int warned = 0;
6616 if (!warned)
6617 {
6618 error (_("section 0 in group section [%5u]\n"),
6619 section_headers_groups [entry]->group_index);
6620 warned++;
6621 }
6622 }
6623 }
6624
6625 section_headers_groups [entry] = group;
6626
6627 if (do_section_groups)
6628 {
6629 sec = section_headers + entry;
6630 printf (" [%5u] %s\n", entry, printable_section_name (sec));
6631 }
6632
6633 g = (struct group_list *) xmalloc (sizeof (struct group_list));
6634 g->section_index = entry;
6635 g->next = group->root;
6636 group->root = g;
6637 }
6638
6639 if (start)
6640 free (start);
6641
6642 group++;
6643 }
6644 }
6645
6646 if (symtab)
6647 free (symtab);
6648 if (strtab)
6649 free (strtab);
6650 return 1;
6651 }
6652
6653 /* Data used to display dynamic fixups. */
6654
6655 struct ia64_vms_dynfixup
6656 {
6657 bfd_vma needed_ident; /* Library ident number. */
6658 bfd_vma needed; /* Index in the dstrtab of the library name. */
6659 bfd_vma fixup_needed; /* Index of the library. */
6660 bfd_vma fixup_rela_cnt; /* Number of fixups. */
6661 bfd_vma fixup_rela_off; /* Fixups offset in the dynamic segment. */
6662 };
6663
6664 /* Data used to display dynamic relocations. */
6665
6666 struct ia64_vms_dynimgrela
6667 {
6668 bfd_vma img_rela_cnt; /* Number of relocations. */
6669 bfd_vma img_rela_off; /* Reloc offset in the dynamic segment. */
6670 };
6671
6672 /* Display IA-64 OpenVMS dynamic fixups (used to dynamically link a shared
6673 library). */
6674
6675 static void
6676 dump_ia64_vms_dynamic_fixups (FILE *file, struct ia64_vms_dynfixup *fixup,
6677 const char *strtab, unsigned int strtab_sz)
6678 {
6679 Elf64_External_VMS_IMAGE_FIXUP *imfs;
6680 long i;
6681 const char *lib_name;
6682
6683 imfs = get_data (NULL, file, dynamic_addr + fixup->fixup_rela_off,
6684 1, fixup->fixup_rela_cnt * sizeof (*imfs),
6685 _("dynamic section image fixups"));
6686 if (!imfs)
6687 return;
6688
6689 if (fixup->needed < strtab_sz)
6690 lib_name = strtab + fixup->needed;
6691 else
6692 {
6693 warn ("corrupt library name index of 0x%lx found in dynamic entry",
6694 (unsigned long) fixup->needed);
6695 lib_name = "???";
6696 }
6697 printf (_("\nImage fixups for needed library #%d: %s - ident: %lx\n"),
6698 (int) fixup->fixup_needed, lib_name, (long) fixup->needed_ident);
6699 printf
6700 (_("Seg Offset Type SymVec DataType\n"));
6701
6702 for (i = 0; i < (long) fixup->fixup_rela_cnt; i++)
6703 {
6704 unsigned int type;
6705 const char *rtype;
6706
6707 printf ("%3u ", (unsigned) BYTE_GET (imfs [i].fixup_seg));
6708 printf_vma ((bfd_vma) BYTE_GET (imfs [i].fixup_offset));
6709 type = BYTE_GET (imfs [i].type);
6710 rtype = elf_ia64_reloc_type (type);
6711 if (rtype == NULL)
6712 printf (" 0x%08x ", type);
6713 else
6714 printf (" %-32s ", rtype);
6715 printf ("%6u ", (unsigned) BYTE_GET (imfs [i].symvec_index));
6716 printf ("0x%08x\n", (unsigned) BYTE_GET (imfs [i].data_type));
6717 }
6718
6719 free (imfs);
6720 }
6721
6722 /* Display IA-64 OpenVMS dynamic relocations (used to relocate an image). */
6723
6724 static void
6725 dump_ia64_vms_dynamic_relocs (FILE *file, struct ia64_vms_dynimgrela *imgrela)
6726 {
6727 Elf64_External_VMS_IMAGE_RELA *imrs;
6728 long i;
6729
6730 imrs = get_data (NULL, file, dynamic_addr + imgrela->img_rela_off,
6731 1, imgrela->img_rela_cnt * sizeof (*imrs),
6732 _("dynamic section image relocations"));
6733 if (!imrs)
6734 return;
6735
6736 printf (_("\nImage relocs\n"));
6737 printf
6738 (_("Seg Offset Type Addend Seg Sym Off\n"));
6739
6740 for (i = 0; i < (long) imgrela->img_rela_cnt; i++)
6741 {
6742 unsigned int type;
6743 const char *rtype;
6744
6745 printf ("%3u ", (unsigned) BYTE_GET (imrs [i].rela_seg));
6746 printf ("%08" BFD_VMA_FMT "x ",
6747 (bfd_vma) BYTE_GET (imrs [i].rela_offset));
6748 type = BYTE_GET (imrs [i].type);
6749 rtype = elf_ia64_reloc_type (type);
6750 if (rtype == NULL)
6751 printf ("0x%08x ", type);
6752 else
6753 printf ("%-31s ", rtype);
6754 print_vma (BYTE_GET (imrs [i].addend), FULL_HEX);
6755 printf ("%3u ", (unsigned) BYTE_GET (imrs [i].sym_seg));
6756 printf ("%08" BFD_VMA_FMT "x\n",
6757 (bfd_vma) BYTE_GET (imrs [i].sym_offset));
6758 }
6759
6760 free (imrs);
6761 }
6762
6763 /* Display IA-64 OpenVMS dynamic relocations and fixups. */
6764
6765 static int
6766 process_ia64_vms_dynamic_relocs (FILE *file)
6767 {
6768 struct ia64_vms_dynfixup fixup;
6769 struct ia64_vms_dynimgrela imgrela;
6770 Elf_Internal_Dyn *entry;
6771 int res = 0;
6772 bfd_vma strtab_off = 0;
6773 bfd_vma strtab_sz = 0;
6774 char *strtab = NULL;
6775
6776 memset (&fixup, 0, sizeof (fixup));
6777 memset (&imgrela, 0, sizeof (imgrela));
6778
6779 /* Note: the order of the entries is specified by the OpenVMS specs. */
6780 for (entry = dynamic_section;
6781 entry < dynamic_section + dynamic_nent;
6782 entry++)
6783 {
6784 switch (entry->d_tag)
6785 {
6786 case DT_IA_64_VMS_STRTAB_OFFSET:
6787 strtab_off = entry->d_un.d_val;
6788 break;
6789 case DT_STRSZ:
6790 strtab_sz = entry->d_un.d_val;
6791 if (strtab == NULL)
6792 strtab = get_data (NULL, file, dynamic_addr + strtab_off,
6793 1, strtab_sz, _("dynamic string section"));
6794 break;
6795
6796 case DT_IA_64_VMS_NEEDED_IDENT:
6797 fixup.needed_ident = entry->d_un.d_val;
6798 break;
6799 case DT_NEEDED:
6800 fixup.needed = entry->d_un.d_val;
6801 break;
6802 case DT_IA_64_VMS_FIXUP_NEEDED:
6803 fixup.fixup_needed = entry->d_un.d_val;
6804 break;
6805 case DT_IA_64_VMS_FIXUP_RELA_CNT:
6806 fixup.fixup_rela_cnt = entry->d_un.d_val;
6807 break;
6808 case DT_IA_64_VMS_FIXUP_RELA_OFF:
6809 fixup.fixup_rela_off = entry->d_un.d_val;
6810 res++;
6811 dump_ia64_vms_dynamic_fixups (file, &fixup, strtab, strtab_sz);
6812 break;
6813
6814 case DT_IA_64_VMS_IMG_RELA_CNT:
6815 imgrela.img_rela_cnt = entry->d_un.d_val;
6816 break;
6817 case DT_IA_64_VMS_IMG_RELA_OFF:
6818 imgrela.img_rela_off = entry->d_un.d_val;
6819 res++;
6820 dump_ia64_vms_dynamic_relocs (file, &imgrela);
6821 break;
6822
6823 default:
6824 break;
6825 }
6826 }
6827
6828 if (strtab != NULL)
6829 free (strtab);
6830
6831 return res;
6832 }
6833
6834 static struct
6835 {
6836 const char * name;
6837 int reloc;
6838 int size;
6839 int rela;
6840 } dynamic_relocations [] =
6841 {
6842 { "REL", DT_REL, DT_RELSZ, FALSE },
6843 { "RELA", DT_RELA, DT_RELASZ, TRUE },
6844 { "PLT", DT_JMPREL, DT_PLTRELSZ, UNKNOWN }
6845 };
6846
6847 /* Process the reloc section. */
6848
6849 static int
6850 process_relocs (FILE * file)
6851 {
6852 unsigned long rel_size;
6853 unsigned long rel_offset;
6854
6855
6856 if (!do_reloc)
6857 return 1;
6858
6859 if (do_using_dynamic)
6860 {
6861 int is_rela;
6862 const char * name;
6863 int has_dynamic_reloc;
6864 unsigned int i;
6865
6866 has_dynamic_reloc = 0;
6867
6868 for (i = 0; i < ARRAY_SIZE (dynamic_relocations); i++)
6869 {
6870 is_rela = dynamic_relocations [i].rela;
6871 name = dynamic_relocations [i].name;
6872 rel_size = dynamic_info [dynamic_relocations [i].size];
6873 rel_offset = dynamic_info [dynamic_relocations [i].reloc];
6874
6875 has_dynamic_reloc |= rel_size;
6876
6877 if (is_rela == UNKNOWN)
6878 {
6879 if (dynamic_relocations [i].reloc == DT_JMPREL)
6880 switch (dynamic_info[DT_PLTREL])
6881 {
6882 case DT_REL:
6883 is_rela = FALSE;
6884 break;
6885 case DT_RELA:
6886 is_rela = TRUE;
6887 break;
6888 }
6889 }
6890
6891 if (rel_size)
6892 {
6893 printf
6894 (_("\n'%s' relocation section at offset 0x%lx contains %ld bytes:\n"),
6895 name, rel_offset, rel_size);
6896
6897 dump_relocations (file,
6898 offset_from_vma (file, rel_offset, rel_size),
6899 rel_size,
6900 dynamic_symbols, num_dynamic_syms,
6901 dynamic_strings, dynamic_strings_length,
6902 is_rela, 1);
6903 }
6904 }
6905
6906 if (is_ia64_vms ())
6907 has_dynamic_reloc |= process_ia64_vms_dynamic_relocs (file);
6908
6909 if (! has_dynamic_reloc)
6910 printf (_("\nThere are no dynamic relocations in this file.\n"));
6911 }
6912 else
6913 {
6914 Elf_Internal_Shdr * section;
6915 unsigned long i;
6916 int found = 0;
6917
6918 for (i = 0, section = section_headers;
6919 i < elf_header.e_shnum;
6920 i++, section++)
6921 {
6922 if ( section->sh_type != SHT_RELA
6923 && section->sh_type != SHT_REL)
6924 continue;
6925
6926 rel_offset = section->sh_offset;
6927 rel_size = section->sh_size;
6928
6929 if (rel_size)
6930 {
6931 Elf_Internal_Shdr * strsec;
6932 int is_rela;
6933
6934 printf (_("\nRelocation section "));
6935
6936 if (string_table == NULL)
6937 printf ("%d", section->sh_name);
6938 else
6939 printf ("'%s'", printable_section_name (section));
6940
6941 printf (_(" at offset 0x%lx contains %lu entries:\n"),
6942 rel_offset, (unsigned long) (rel_size / section->sh_entsize));
6943
6944 is_rela = section->sh_type == SHT_RELA;
6945
6946 if (section->sh_link != 0
6947 && section->sh_link < elf_header.e_shnum)
6948 {
6949 Elf_Internal_Shdr * symsec;
6950 Elf_Internal_Sym * symtab;
6951 unsigned long nsyms;
6952 unsigned long strtablen = 0;
6953 char * strtab = NULL;
6954
6955 symsec = section_headers + section->sh_link;
6956 if (symsec->sh_type != SHT_SYMTAB
6957 && symsec->sh_type != SHT_DYNSYM)
6958 continue;
6959
6960 symtab = GET_ELF_SYMBOLS (file, symsec, & nsyms);
6961
6962 if (symtab == NULL)
6963 continue;
6964
6965 if (symsec->sh_link != 0
6966 && symsec->sh_link < elf_header.e_shnum)
6967 {
6968 strsec = section_headers + symsec->sh_link;
6969
6970 strtab = (char *) get_data (NULL, file, strsec->sh_offset,
6971 1, strsec->sh_size,
6972 _("string table"));
6973 strtablen = strtab == NULL ? 0 : strsec->sh_size;
6974 }
6975
6976 dump_relocations (file, rel_offset, rel_size,
6977 symtab, nsyms, strtab, strtablen,
6978 is_rela,
6979 symsec->sh_type == SHT_DYNSYM);
6980 if (strtab)
6981 free (strtab);
6982 free (symtab);
6983 }
6984 else
6985 dump_relocations (file, rel_offset, rel_size,
6986 NULL, 0, NULL, 0, is_rela, 0);
6987
6988 found = 1;
6989 }
6990 }
6991
6992 if (! found)
6993 printf (_("\nThere are no relocations in this file.\n"));
6994 }
6995
6996 return 1;
6997 }
6998
6999 /* An absolute address consists of a section and an offset. If the
7000 section is NULL, the offset itself is the address, otherwise, the
7001 address equals to LOAD_ADDRESS(section) + offset. */
7002
7003 struct absaddr
7004 {
7005 unsigned short section;
7006 bfd_vma offset;
7007 };
7008
7009 #define ABSADDR(a) \
7010 ((a).section \
7011 ? section_headers [(a).section].sh_addr + (a).offset \
7012 : (a).offset)
7013
7014 /* Find the nearest symbol at or below ADDR. Returns the symbol
7015 name, if found, and the offset from the symbol to ADDR. */
7016
7017 static void
7018 find_symbol_for_address (Elf_Internal_Sym * symtab,
7019 unsigned long nsyms,
7020 const char * strtab,
7021 unsigned long strtab_size,
7022 struct absaddr addr,
7023 const char ** symname,
7024 bfd_vma * offset)
7025 {
7026 bfd_vma dist = 0x100000;
7027 Elf_Internal_Sym * sym;
7028 Elf_Internal_Sym * beg;
7029 Elf_Internal_Sym * end;
7030 Elf_Internal_Sym * best = NULL;
7031
7032 REMOVE_ARCH_BITS (addr.offset);
7033 beg = symtab;
7034 end = symtab + nsyms;
7035
7036 while (beg < end)
7037 {
7038 bfd_vma value;
7039
7040 sym = beg + (end - beg) / 2;
7041
7042 value = sym->st_value;
7043 REMOVE_ARCH_BITS (value);
7044
7045 if (sym->st_name != 0
7046 && (addr.section == SHN_UNDEF || addr.section == sym->st_shndx)
7047 && addr.offset >= value
7048 && addr.offset - value < dist)
7049 {
7050 best = sym;
7051 dist = addr.offset - value;
7052 if (!dist)
7053 break;
7054 }
7055
7056 if (addr.offset < value)
7057 end = sym;
7058 else
7059 beg = sym + 1;
7060 }
7061
7062 if (best)
7063 {
7064 *symname = (best->st_name >= strtab_size
7065 ? _("<corrupt>") : strtab + best->st_name);
7066 *offset = dist;
7067 return;
7068 }
7069
7070 *symname = NULL;
7071 *offset = addr.offset;
7072 }
7073
7074 static int
7075 symcmp (const void *p, const void *q)
7076 {
7077 Elf_Internal_Sym *sp = (Elf_Internal_Sym *) p;
7078 Elf_Internal_Sym *sq = (Elf_Internal_Sym *) q;
7079
7080 return sp->st_value > sq->st_value ? 1 : (sp->st_value < sq->st_value ? -1 : 0);
7081 }
7082
7083 /* Process the unwind section. */
7084
7085 #include "unwind-ia64.h"
7086
7087 struct ia64_unw_table_entry
7088 {
7089 struct absaddr start;
7090 struct absaddr end;
7091 struct absaddr info;
7092 };
7093
7094 struct ia64_unw_aux_info
7095 {
7096 struct ia64_unw_table_entry *table; /* Unwind table. */
7097 unsigned long table_len; /* Length of unwind table. */
7098 unsigned char * info; /* Unwind info. */
7099 unsigned long info_size; /* Size of unwind info. */
7100 bfd_vma info_addr; /* Starting address of unwind info. */
7101 bfd_vma seg_base; /* Starting address of segment. */
7102 Elf_Internal_Sym * symtab; /* The symbol table. */
7103 unsigned long nsyms; /* Number of symbols. */
7104 Elf_Internal_Sym * funtab; /* Sorted table of STT_FUNC symbols. */
7105 unsigned long nfuns; /* Number of entries in funtab. */
7106 char * strtab; /* The string table. */
7107 unsigned long strtab_size; /* Size of string table. */
7108 };
7109
7110 static void
7111 dump_ia64_unwind (struct ia64_unw_aux_info * aux)
7112 {
7113 struct ia64_unw_table_entry * tp;
7114 unsigned long j, nfuns;
7115 int in_body;
7116
7117 aux->funtab = xmalloc (aux->nsyms * sizeof (Elf_Internal_Sym));
7118 for (nfuns = 0, j = 0; j < aux->nsyms; j++)
7119 if (aux->symtab[j].st_value && ELF_ST_TYPE (aux->symtab[j].st_info) == STT_FUNC)
7120 aux->funtab[nfuns++] = aux->symtab[j];
7121 aux->nfuns = nfuns;
7122 qsort (aux->funtab, aux->nfuns, sizeof (Elf_Internal_Sym), symcmp);
7123
7124 for (tp = aux->table; tp < aux->table + aux->table_len; ++tp)
7125 {
7126 bfd_vma stamp;
7127 bfd_vma offset;
7128 const unsigned char * dp;
7129 const unsigned char * head;
7130 const unsigned char * end;
7131 const char * procname;
7132
7133 find_symbol_for_address (aux->funtab, aux->nfuns, aux->strtab,
7134 aux->strtab_size, tp->start, &procname, &offset);
7135
7136 fputs ("\n<", stdout);
7137
7138 if (procname)
7139 {
7140 fputs (procname, stdout);
7141
7142 if (offset)
7143 printf ("+%lx", (unsigned long) offset);
7144 }
7145
7146 fputs (">: [", stdout);
7147 print_vma (tp->start.offset, PREFIX_HEX);
7148 fputc ('-', stdout);
7149 print_vma (tp->end.offset, PREFIX_HEX);
7150 printf ("], info at +0x%lx\n",
7151 (unsigned long) (tp->info.offset - aux->seg_base));
7152
7153 /* PR 17531: file: 86232b32. */
7154 if (aux->info == NULL)
7155 continue;
7156
7157 /* PR 17531: file: 0997b4d1. */
7158 if ((ABSADDR (tp->info) - aux->info_addr) >= aux->info_size)
7159 {
7160 warn (_("Invalid offset %lx in table entry %ld\n"),
7161 (long) tp->info.offset, (long) (tp - aux->table));
7162 continue;
7163 }
7164
7165 head = aux->info + (ABSADDR (tp->info) - aux->info_addr);
7166 stamp = byte_get ((unsigned char *) head, sizeof (stamp));
7167
7168 printf (" v%u, flags=0x%lx (%s%s), len=%lu bytes\n",
7169 (unsigned) UNW_VER (stamp),
7170 (unsigned long) ((stamp & UNW_FLAG_MASK) >> 32),
7171 UNW_FLAG_EHANDLER (stamp) ? " ehandler" : "",
7172 UNW_FLAG_UHANDLER (stamp) ? " uhandler" : "",
7173 (unsigned long) (eh_addr_size * UNW_LENGTH (stamp)));
7174
7175 if (UNW_VER (stamp) != 1)
7176 {
7177 printf (_("\tUnknown version.\n"));
7178 continue;
7179 }
7180
7181 in_body = 0;
7182 end = head + 8 + eh_addr_size * UNW_LENGTH (stamp);
7183 /* PR 17531: file: 16ceda89. */
7184 if (end > aux->info + aux->info_size)
7185 end = aux->info + aux->info_size;
7186 for (dp = head + 8; dp < end;)
7187 dp = unw_decode (dp, in_body, & in_body, end);
7188 }
7189
7190 free (aux->funtab);
7191 }
7192
7193 static bfd_boolean
7194 slurp_ia64_unwind_table (FILE * file,
7195 struct ia64_unw_aux_info * aux,
7196 Elf_Internal_Shdr * sec)
7197 {
7198 unsigned long size, nrelas, i;
7199 Elf_Internal_Phdr * seg;
7200 struct ia64_unw_table_entry * tep;
7201 Elf_Internal_Shdr * relsec;
7202 Elf_Internal_Rela * rela;
7203 Elf_Internal_Rela * rp;
7204 unsigned char * table;
7205 unsigned char * tp;
7206 Elf_Internal_Sym * sym;
7207 const char * relname;
7208
7209 aux->table_len = 0;
7210
7211 /* First, find the starting address of the segment that includes
7212 this section: */
7213
7214 if (elf_header.e_phnum)
7215 {
7216 if (! get_program_headers (file))
7217 return FALSE;
7218
7219 for (seg = program_headers;
7220 seg < program_headers + elf_header.e_phnum;
7221 ++seg)
7222 {
7223 if (seg->p_type != PT_LOAD)
7224 continue;
7225
7226 if (sec->sh_addr >= seg->p_vaddr
7227 && (sec->sh_addr + sec->sh_size <= seg->p_vaddr + seg->p_memsz))
7228 {
7229 aux->seg_base = seg->p_vaddr;
7230 break;
7231 }
7232 }
7233 }
7234
7235 /* Second, build the unwind table from the contents of the unwind section: */
7236 size = sec->sh_size;
7237 table = (unsigned char *) get_data (NULL, file, sec->sh_offset, 1, size,
7238 _("unwind table"));
7239 if (!table)
7240 return FALSE;
7241
7242 aux->table_len = size / (3 * eh_addr_size);
7243 aux->table = (struct ia64_unw_table_entry *)
7244 xcmalloc (aux->table_len, sizeof (aux->table[0]));
7245 tep = aux->table;
7246
7247 for (tp = table; tp <= table + size - (3 * eh_addr_size); ++tep)
7248 {
7249 tep->start.section = SHN_UNDEF;
7250 tep->end.section = SHN_UNDEF;
7251 tep->info.section = SHN_UNDEF;
7252 tep->start.offset = byte_get (tp, eh_addr_size); tp += eh_addr_size;
7253 tep->end.offset = byte_get (tp, eh_addr_size); tp += eh_addr_size;
7254 tep->info.offset = byte_get (tp, eh_addr_size); tp += eh_addr_size;
7255 tep->start.offset += aux->seg_base;
7256 tep->end.offset += aux->seg_base;
7257 tep->info.offset += aux->seg_base;
7258 }
7259 free (table);
7260
7261 /* Third, apply any relocations to the unwind table: */
7262 for (relsec = section_headers;
7263 relsec < section_headers + elf_header.e_shnum;
7264 ++relsec)
7265 {
7266 if (relsec->sh_type != SHT_RELA
7267 || relsec->sh_info >= elf_header.e_shnum
7268 || section_headers + relsec->sh_info != sec)
7269 continue;
7270
7271 if (!slurp_rela_relocs (file, relsec->sh_offset, relsec->sh_size,
7272 & rela, & nrelas))
7273 {
7274 free (aux->table);
7275 aux->table = NULL;
7276 aux->table_len = 0;
7277 return FALSE;
7278 }
7279
7280 for (rp = rela; rp < rela + nrelas; ++rp)
7281 {
7282 relname = elf_ia64_reloc_type (get_reloc_type (rp->r_info));
7283 sym = aux->symtab + get_reloc_symindex (rp->r_info);
7284
7285 /* PR 17531: file: 9fa67536. */
7286 if (relname == NULL)
7287 {
7288 warn (_("Skipping unknown relocation type: %u\n"), get_reloc_type (rp->r_info));
7289 continue;
7290 }
7291
7292 if (! const_strneq (relname, "R_IA64_SEGREL"))
7293 {
7294 warn (_("Skipping unexpected relocation type: %s\n"), relname);
7295 continue;
7296 }
7297
7298 i = rp->r_offset / (3 * eh_addr_size);
7299
7300 /* PR 17531: file: 5bc8d9bf. */
7301 if (i >= aux->table_len)
7302 {
7303 warn (_("Skipping reloc with overlarge offset: %lx\n"), i);
7304 continue;
7305 }
7306
7307 switch (rp->r_offset / eh_addr_size % 3)
7308 {
7309 case 0:
7310 aux->table[i].start.section = sym->st_shndx;
7311 aux->table[i].start.offset = rp->r_addend + sym->st_value;
7312 break;
7313 case 1:
7314 aux->table[i].end.section = sym->st_shndx;
7315 aux->table[i].end.offset = rp->r_addend + sym->st_value;
7316 break;
7317 case 2:
7318 aux->table[i].info.section = sym->st_shndx;
7319 aux->table[i].info.offset = rp->r_addend + sym->st_value;
7320 break;
7321 default:
7322 break;
7323 }
7324 }
7325
7326 free (rela);
7327 }
7328
7329 return TRUE;
7330 }
7331
7332 static void
7333 ia64_process_unwind (FILE * file)
7334 {
7335 Elf_Internal_Shdr * sec;
7336 Elf_Internal_Shdr * unwsec = NULL;
7337 Elf_Internal_Shdr * strsec;
7338 unsigned long i, unwcount = 0, unwstart = 0;
7339 struct ia64_unw_aux_info aux;
7340
7341 memset (& aux, 0, sizeof (aux));
7342
7343 for (i = 0, sec = section_headers; i < elf_header.e_shnum; ++i, ++sec)
7344 {
7345 if (sec->sh_type == SHT_SYMTAB
7346 && sec->sh_link < elf_header.e_shnum)
7347 {
7348 aux.symtab = GET_ELF_SYMBOLS (file, sec, & aux.nsyms);
7349
7350 strsec = section_headers + sec->sh_link;
7351 if (aux.strtab != NULL)
7352 {
7353 error (_("Multiple auxillary string tables encountered\n"));
7354 free (aux.strtab);
7355 }
7356 aux.strtab = (char *) get_data (NULL, file, strsec->sh_offset,
7357 1, strsec->sh_size,
7358 _("string table"));
7359 aux.strtab_size = aux.strtab != NULL ? strsec->sh_size : 0;
7360 }
7361 else if (sec->sh_type == SHT_IA_64_UNWIND)
7362 unwcount++;
7363 }
7364
7365 if (!unwcount)
7366 printf (_("\nThere are no unwind sections in this file.\n"));
7367
7368 while (unwcount-- > 0)
7369 {
7370 char * suffix;
7371 size_t len, len2;
7372
7373 for (i = unwstart, sec = section_headers + unwstart, unwsec = NULL;
7374 i < elf_header.e_shnum; ++i, ++sec)
7375 if (sec->sh_type == SHT_IA_64_UNWIND)
7376 {
7377 unwsec = sec;
7378 break;
7379 }
7380 /* We have already counted the number of SHT_IA64_UNWIND
7381 sections so the loop above should never fail. */
7382 assert (unwsec != NULL);
7383
7384 unwstart = i + 1;
7385 len = sizeof (ELF_STRING_ia64_unwind_once) - 1;
7386
7387 if ((unwsec->sh_flags & SHF_GROUP) != 0)
7388 {
7389 /* We need to find which section group it is in. */
7390 struct group_list * g;
7391
7392 if (section_headers_groups == NULL
7393 || section_headers_groups [i] == NULL)
7394 i = elf_header.e_shnum;
7395 else
7396 {
7397 g = section_headers_groups [i]->root;
7398
7399 for (; g != NULL; g = g->next)
7400 {
7401 sec = section_headers + g->section_index;
7402
7403 if (streq (SECTION_NAME (sec), ELF_STRING_ia64_unwind_info))
7404 break;
7405 }
7406
7407 if (g == NULL)
7408 i = elf_header.e_shnum;
7409 }
7410 }
7411 else if (strneq (SECTION_NAME (unwsec), ELF_STRING_ia64_unwind_once, len))
7412 {
7413 /* .gnu.linkonce.ia64unw.FOO -> .gnu.linkonce.ia64unwi.FOO. */
7414 len2 = sizeof (ELF_STRING_ia64_unwind_info_once) - 1;
7415 suffix = SECTION_NAME (unwsec) + len;
7416 for (i = 0, sec = section_headers; i < elf_header.e_shnum;
7417 ++i, ++sec)
7418 if (strneq (SECTION_NAME (sec), ELF_STRING_ia64_unwind_info_once, len2)
7419 && streq (SECTION_NAME (sec) + len2, suffix))
7420 break;
7421 }
7422 else
7423 {
7424 /* .IA_64.unwindFOO -> .IA_64.unwind_infoFOO
7425 .IA_64.unwind or BAR -> .IA_64.unwind_info. */
7426 len = sizeof (ELF_STRING_ia64_unwind) - 1;
7427 len2 = sizeof (ELF_STRING_ia64_unwind_info) - 1;
7428 suffix = "";
7429 if (strneq (SECTION_NAME (unwsec), ELF_STRING_ia64_unwind, len))
7430 suffix = SECTION_NAME (unwsec) + len;
7431 for (i = 0, sec = section_headers; i < elf_header.e_shnum;
7432 ++i, ++sec)
7433 if (strneq (SECTION_NAME (sec), ELF_STRING_ia64_unwind_info, len2)
7434 && streq (SECTION_NAME (sec) + len2, suffix))
7435 break;
7436 }
7437
7438 if (i == elf_header.e_shnum)
7439 {
7440 printf (_("\nCould not find unwind info section for "));
7441
7442 if (string_table == NULL)
7443 printf ("%d", unwsec->sh_name);
7444 else
7445 printf ("'%s'", printable_section_name (unwsec));
7446 }
7447 else
7448 {
7449 aux.info_addr = sec->sh_addr;
7450 aux.info = (unsigned char *) get_data (NULL, file, sec->sh_offset, 1,
7451 sec->sh_size,
7452 _("unwind info"));
7453 aux.info_size = aux.info == NULL ? 0 : sec->sh_size;
7454
7455 printf (_("\nUnwind section "));
7456
7457 if (string_table == NULL)
7458 printf ("%d", unwsec->sh_name);
7459 else
7460 printf ("'%s'", printable_section_name (unwsec));
7461
7462 printf (_(" at offset 0x%lx contains %lu entries:\n"),
7463 (unsigned long) unwsec->sh_offset,
7464 (unsigned long) (unwsec->sh_size / (3 * eh_addr_size)));
7465
7466 if (slurp_ia64_unwind_table (file, & aux, unwsec)
7467 && aux.table_len > 0)
7468 dump_ia64_unwind (& aux);
7469
7470 if (aux.table)
7471 free ((char *) aux.table);
7472 if (aux.info)
7473 free ((char *) aux.info);
7474 aux.table = NULL;
7475 aux.info = NULL;
7476 }
7477 }
7478
7479 if (aux.symtab)
7480 free (aux.symtab);
7481 if (aux.strtab)
7482 free ((char *) aux.strtab);
7483 }
7484
7485 struct hppa_unw_table_entry
7486 {
7487 struct absaddr start;
7488 struct absaddr end;
7489 unsigned int Cannot_unwind:1; /* 0 */
7490 unsigned int Millicode:1; /* 1 */
7491 unsigned int Millicode_save_sr0:1; /* 2 */
7492 unsigned int Region_description:2; /* 3..4 */
7493 unsigned int reserved1:1; /* 5 */
7494 unsigned int Entry_SR:1; /* 6 */
7495 unsigned int Entry_FR:4; /* number saved */ /* 7..10 */
7496 unsigned int Entry_GR:5; /* number saved */ /* 11..15 */
7497 unsigned int Args_stored:1; /* 16 */
7498 unsigned int Variable_Frame:1; /* 17 */
7499 unsigned int Separate_Package_Body:1; /* 18 */
7500 unsigned int Frame_Extension_Millicode:1; /* 19 */
7501 unsigned int Stack_Overflow_Check:1; /* 20 */
7502 unsigned int Two_Instruction_SP_Increment:1;/* 21 */
7503 unsigned int Ada_Region:1; /* 22 */
7504 unsigned int cxx_info:1; /* 23 */
7505 unsigned int cxx_try_catch:1; /* 24 */
7506 unsigned int sched_entry_seq:1; /* 25 */
7507 unsigned int reserved2:1; /* 26 */
7508 unsigned int Save_SP:1; /* 27 */
7509 unsigned int Save_RP:1; /* 28 */
7510 unsigned int Save_MRP_in_frame:1; /* 29 */
7511 unsigned int extn_ptr_defined:1; /* 30 */
7512 unsigned int Cleanup_defined:1; /* 31 */
7513
7514 unsigned int MPE_XL_interrupt_marker:1; /* 0 */
7515 unsigned int HP_UX_interrupt_marker:1; /* 1 */
7516 unsigned int Large_frame:1; /* 2 */
7517 unsigned int Pseudo_SP_Set:1; /* 3 */
7518 unsigned int reserved4:1; /* 4 */
7519 unsigned int Total_frame_size:27; /* 5..31 */
7520 };
7521
7522 struct hppa_unw_aux_info
7523 {
7524 struct hppa_unw_table_entry * table; /* Unwind table. */
7525 unsigned long table_len; /* Length of unwind table. */
7526 bfd_vma seg_base; /* Starting address of segment. */
7527 Elf_Internal_Sym * symtab; /* The symbol table. */
7528 unsigned long nsyms; /* Number of symbols. */
7529 Elf_Internal_Sym * funtab; /* Sorted table of STT_FUNC symbols. */
7530 unsigned long nfuns; /* Number of entries in funtab. */
7531 char * strtab; /* The string table. */
7532 unsigned long strtab_size; /* Size of string table. */
7533 };
7534
7535 static void
7536 dump_hppa_unwind (struct hppa_unw_aux_info * aux)
7537 {
7538 struct hppa_unw_table_entry * tp;
7539 unsigned long j, nfuns;
7540
7541 aux->funtab = xmalloc (aux->nsyms * sizeof (Elf_Internal_Sym));
7542 for (nfuns = 0, j = 0; j < aux->nsyms; j++)
7543 if (aux->symtab[j].st_value && ELF_ST_TYPE (aux->symtab[j].st_info) == STT_FUNC)
7544 aux->funtab[nfuns++] = aux->symtab[j];
7545 aux->nfuns = nfuns;
7546 qsort (aux->funtab, aux->nfuns, sizeof (Elf_Internal_Sym), symcmp);
7547
7548 for (tp = aux->table; tp < aux->table + aux->table_len; ++tp)
7549 {
7550 bfd_vma offset;
7551 const char * procname;
7552
7553 find_symbol_for_address (aux->funtab, aux->nfuns, aux->strtab,
7554 aux->strtab_size, tp->start, &procname,
7555 &offset);
7556
7557 fputs ("\n<", stdout);
7558
7559 if (procname)
7560 {
7561 fputs (procname, stdout);
7562
7563 if (offset)
7564 printf ("+%lx", (unsigned long) offset);
7565 }
7566
7567 fputs (">: [", stdout);
7568 print_vma (tp->start.offset, PREFIX_HEX);
7569 fputc ('-', stdout);
7570 print_vma (tp->end.offset, PREFIX_HEX);
7571 printf ("]\n\t");
7572
7573 #define PF(_m) if (tp->_m) printf (#_m " ");
7574 #define PV(_m) if (tp->_m) printf (#_m "=%d ", tp->_m);
7575 PF(Cannot_unwind);
7576 PF(Millicode);
7577 PF(Millicode_save_sr0);
7578 /* PV(Region_description); */
7579 PF(Entry_SR);
7580 PV(Entry_FR);
7581 PV(Entry_GR);
7582 PF(Args_stored);
7583 PF(Variable_Frame);
7584 PF(Separate_Package_Body);
7585 PF(Frame_Extension_Millicode);
7586 PF(Stack_Overflow_Check);
7587 PF(Two_Instruction_SP_Increment);
7588 PF(Ada_Region);
7589 PF(cxx_info);
7590 PF(cxx_try_catch);
7591 PF(sched_entry_seq);
7592 PF(Save_SP);
7593 PF(Save_RP);
7594 PF(Save_MRP_in_frame);
7595 PF(extn_ptr_defined);
7596 PF(Cleanup_defined);
7597 PF(MPE_XL_interrupt_marker);
7598 PF(HP_UX_interrupt_marker);
7599 PF(Large_frame);
7600 PF(Pseudo_SP_Set);
7601 PV(Total_frame_size);
7602 #undef PF
7603 #undef PV
7604 }
7605
7606 printf ("\n");
7607
7608 free (aux->funtab);
7609 }
7610
7611 static int
7612 slurp_hppa_unwind_table (FILE * file,
7613 struct hppa_unw_aux_info * aux,
7614 Elf_Internal_Shdr * sec)
7615 {
7616 unsigned long size, unw_ent_size, nentries, nrelas, i;
7617 Elf_Internal_Phdr * seg;
7618 struct hppa_unw_table_entry * tep;
7619 Elf_Internal_Shdr * relsec;
7620 Elf_Internal_Rela * rela;
7621 Elf_Internal_Rela * rp;
7622 unsigned char * table;
7623 unsigned char * tp;
7624 Elf_Internal_Sym * sym;
7625 const char * relname;
7626
7627 /* First, find the starting address of the segment that includes
7628 this section. */
7629
7630 if (elf_header.e_phnum)
7631 {
7632 if (! get_program_headers (file))
7633 return 0;
7634
7635 for (seg = program_headers;
7636 seg < program_headers + elf_header.e_phnum;
7637 ++seg)
7638 {
7639 if (seg->p_type != PT_LOAD)
7640 continue;
7641
7642 if (sec->sh_addr >= seg->p_vaddr
7643 && (sec->sh_addr + sec->sh_size <= seg->p_vaddr + seg->p_memsz))
7644 {
7645 aux->seg_base = seg->p_vaddr;
7646 break;
7647 }
7648 }
7649 }
7650
7651 /* Second, build the unwind table from the contents of the unwind
7652 section. */
7653 size = sec->sh_size;
7654 table = (unsigned char *) get_data (NULL, file, sec->sh_offset, 1, size,
7655 _("unwind table"));
7656 if (!table)
7657 return 0;
7658
7659 unw_ent_size = 16;
7660 nentries = size / unw_ent_size;
7661 size = unw_ent_size * nentries;
7662
7663 tep = aux->table = (struct hppa_unw_table_entry *)
7664 xcmalloc (nentries, sizeof (aux->table[0]));
7665
7666 for (tp = table; tp < table + size; tp += unw_ent_size, ++tep)
7667 {
7668 unsigned int tmp1, tmp2;
7669
7670 tep->start.section = SHN_UNDEF;
7671 tep->end.section = SHN_UNDEF;
7672
7673 tep->start.offset = byte_get ((unsigned char *) tp + 0, 4);
7674 tep->end.offset = byte_get ((unsigned char *) tp + 4, 4);
7675 tmp1 = byte_get ((unsigned char *) tp + 8, 4);
7676 tmp2 = byte_get ((unsigned char *) tp + 12, 4);
7677
7678 tep->start.offset += aux->seg_base;
7679 tep->end.offset += aux->seg_base;
7680
7681 tep->Cannot_unwind = (tmp1 >> 31) & 0x1;
7682 tep->Millicode = (tmp1 >> 30) & 0x1;
7683 tep->Millicode_save_sr0 = (tmp1 >> 29) & 0x1;
7684 tep->Region_description = (tmp1 >> 27) & 0x3;
7685 tep->reserved1 = (tmp1 >> 26) & 0x1;
7686 tep->Entry_SR = (tmp1 >> 25) & 0x1;
7687 tep->Entry_FR = (tmp1 >> 21) & 0xf;
7688 tep->Entry_GR = (tmp1 >> 16) & 0x1f;
7689 tep->Args_stored = (tmp1 >> 15) & 0x1;
7690 tep->Variable_Frame = (tmp1 >> 14) & 0x1;
7691 tep->Separate_Package_Body = (tmp1 >> 13) & 0x1;
7692 tep->Frame_Extension_Millicode = (tmp1 >> 12) & 0x1;
7693 tep->Stack_Overflow_Check = (tmp1 >> 11) & 0x1;
7694 tep->Two_Instruction_SP_Increment = (tmp1 >> 10) & 0x1;
7695 tep->Ada_Region = (tmp1 >> 9) & 0x1;
7696 tep->cxx_info = (tmp1 >> 8) & 0x1;
7697 tep->cxx_try_catch = (tmp1 >> 7) & 0x1;
7698 tep->sched_entry_seq = (tmp1 >> 6) & 0x1;
7699 tep->reserved2 = (tmp1 >> 5) & 0x1;
7700 tep->Save_SP = (tmp1 >> 4) & 0x1;
7701 tep->Save_RP = (tmp1 >> 3) & 0x1;
7702 tep->Save_MRP_in_frame = (tmp1 >> 2) & 0x1;
7703 tep->extn_ptr_defined = (tmp1 >> 1) & 0x1;
7704 tep->Cleanup_defined = tmp1 & 0x1;
7705
7706 tep->MPE_XL_interrupt_marker = (tmp2 >> 31) & 0x1;
7707 tep->HP_UX_interrupt_marker = (tmp2 >> 30) & 0x1;
7708 tep->Large_frame = (tmp2 >> 29) & 0x1;
7709 tep->Pseudo_SP_Set = (tmp2 >> 28) & 0x1;
7710 tep->reserved4 = (tmp2 >> 27) & 0x1;
7711 tep->Total_frame_size = tmp2 & 0x7ffffff;
7712 }
7713 free (table);
7714
7715 /* Third, apply any relocations to the unwind table. */
7716 for (relsec = section_headers;
7717 relsec < section_headers + elf_header.e_shnum;
7718 ++relsec)
7719 {
7720 if (relsec->sh_type != SHT_RELA
7721 || relsec->sh_info >= elf_header.e_shnum
7722 || section_headers + relsec->sh_info != sec)
7723 continue;
7724
7725 if (!slurp_rela_relocs (file, relsec->sh_offset, relsec->sh_size,
7726 & rela, & nrelas))
7727 return 0;
7728
7729 for (rp = rela; rp < rela + nrelas; ++rp)
7730 {
7731 relname = elf_hppa_reloc_type (get_reloc_type (rp->r_info));
7732 sym = aux->symtab + get_reloc_symindex (rp->r_info);
7733
7734 /* R_PARISC_SEGREL32 or R_PARISC_SEGREL64. */
7735 if (! const_strneq (relname, "R_PARISC_SEGREL"))
7736 {
7737 warn (_("Skipping unexpected relocation type %s\n"), relname);
7738 continue;
7739 }
7740
7741 i = rp->r_offset / unw_ent_size;
7742
7743 switch ((rp->r_offset % unw_ent_size) / eh_addr_size)
7744 {
7745 case 0:
7746 aux->table[i].start.section = sym->st_shndx;
7747 aux->table[i].start.offset = sym->st_value + rp->r_addend;
7748 break;
7749 case 1:
7750 aux->table[i].end.section = sym->st_shndx;
7751 aux->table[i].end.offset = sym->st_value + rp->r_addend;
7752 break;
7753 default:
7754 break;
7755 }
7756 }
7757
7758 free (rela);
7759 }
7760
7761 aux->table_len = nentries;
7762
7763 return 1;
7764 }
7765
7766 static void
7767 hppa_process_unwind (FILE * file)
7768 {
7769 struct hppa_unw_aux_info aux;
7770 Elf_Internal_Shdr * unwsec = NULL;
7771 Elf_Internal_Shdr * strsec;
7772 Elf_Internal_Shdr * sec;
7773 unsigned long i;
7774
7775 if (string_table == NULL)
7776 return;
7777
7778 memset (& aux, 0, sizeof (aux));
7779
7780 for (i = 0, sec = section_headers; i < elf_header.e_shnum; ++i, ++sec)
7781 {
7782 if (sec->sh_type == SHT_SYMTAB
7783 && sec->sh_link < elf_header.e_shnum)
7784 {
7785 aux.symtab = GET_ELF_SYMBOLS (file, sec, & aux.nsyms);
7786
7787 strsec = section_headers + sec->sh_link;
7788 if (aux.strtab != NULL)
7789 {
7790 error (_("Multiple auxillary string tables encountered\n"));
7791 free (aux.strtab);
7792 }
7793 aux.strtab = (char *) get_data (NULL, file, strsec->sh_offset,
7794 1, strsec->sh_size,
7795 _("string table"));
7796 aux.strtab_size = aux.strtab != NULL ? strsec->sh_size : 0;
7797 }
7798 else if (streq (SECTION_NAME (sec), ".PARISC.unwind"))
7799 unwsec = sec;
7800 }
7801
7802 if (!unwsec)
7803 printf (_("\nThere are no unwind sections in this file.\n"));
7804
7805 for (i = 0, sec = section_headers; i < elf_header.e_shnum; ++i, ++sec)
7806 {
7807 if (streq (SECTION_NAME (sec), ".PARISC.unwind"))
7808 {
7809 printf (_("\nUnwind section '%s' at offset 0x%lx contains %lu entries:\n"),
7810 printable_section_name (sec),
7811 (unsigned long) sec->sh_offset,
7812 (unsigned long) (sec->sh_size / (2 * eh_addr_size + 8)));
7813
7814 slurp_hppa_unwind_table (file, &aux, sec);
7815 if (aux.table_len > 0)
7816 dump_hppa_unwind (&aux);
7817
7818 if (aux.table)
7819 free ((char *) aux.table);
7820 aux.table = NULL;
7821 }
7822 }
7823
7824 if (aux.symtab)
7825 free (aux.symtab);
7826 if (aux.strtab)
7827 free ((char *) aux.strtab);
7828 }
7829
7830 struct arm_section
7831 {
7832 unsigned char * data; /* The unwind data. */
7833 Elf_Internal_Shdr * sec; /* The cached unwind section header. */
7834 Elf_Internal_Rela * rela; /* The cached relocations for this section. */
7835 unsigned long nrelas; /* The number of relocations. */
7836 unsigned int rel_type; /* REL or RELA ? */
7837 Elf_Internal_Rela * next_rela; /* Cyclic pointer to the next reloc to process. */
7838 };
7839
7840 struct arm_unw_aux_info
7841 {
7842 FILE * file; /* The file containing the unwind sections. */
7843 Elf_Internal_Sym * symtab; /* The file's symbol table. */
7844 unsigned long nsyms; /* Number of symbols. */
7845 Elf_Internal_Sym * funtab; /* Sorted table of STT_FUNC symbols. */
7846 unsigned long nfuns; /* Number of these symbols. */
7847 char * strtab; /* The file's string table. */
7848 unsigned long strtab_size; /* Size of string table. */
7849 };
7850
7851 static const char *
7852 arm_print_vma_and_name (struct arm_unw_aux_info *aux,
7853 bfd_vma fn, struct absaddr addr)
7854 {
7855 const char *procname;
7856 bfd_vma sym_offset;
7857
7858 if (addr.section == SHN_UNDEF)
7859 addr.offset = fn;
7860
7861 find_symbol_for_address (aux->funtab, aux->nfuns, aux->strtab,
7862 aux->strtab_size, addr, &procname,
7863 &sym_offset);
7864
7865 print_vma (fn, PREFIX_HEX);
7866
7867 if (procname)
7868 {
7869 fputs (" <", stdout);
7870 fputs (procname, stdout);
7871
7872 if (sym_offset)
7873 printf ("+0x%lx", (unsigned long) sym_offset);
7874 fputc ('>', stdout);
7875 }
7876
7877 return procname;
7878 }
7879
7880 static void
7881 arm_free_section (struct arm_section *arm_sec)
7882 {
7883 if (arm_sec->data != NULL)
7884 free (arm_sec->data);
7885
7886 if (arm_sec->rela != NULL)
7887 free (arm_sec->rela);
7888 }
7889
7890 /* 1) If SEC does not match the one cached in ARM_SEC, then free the current
7891 cached section and install SEC instead.
7892 2) Locate the 32-bit word at WORD_OFFSET in unwind section SEC
7893 and return its valued in * WORDP, relocating if necessary.
7894 3) Update the NEXT_RELA field in ARM_SEC and store the section index and
7895 relocation's offset in ADDR.
7896 4) If SYM_NAME is non-NULL and a relocation was applied, record the offset
7897 into the string table of the symbol associated with the reloc. If no
7898 reloc was applied store -1 there.
7899 5) Return TRUE upon success, FALSE otherwise. */
7900
7901 static bfd_boolean
7902 get_unwind_section_word (struct arm_unw_aux_info * aux,
7903 struct arm_section * arm_sec,
7904 Elf_Internal_Shdr * sec,
7905 bfd_vma word_offset,
7906 unsigned int * wordp,
7907 struct absaddr * addr,
7908 bfd_vma * sym_name)
7909 {
7910 Elf_Internal_Rela *rp;
7911 Elf_Internal_Sym *sym;
7912 const char * relname;
7913 unsigned int word;
7914 bfd_boolean wrapped;
7915
7916 if (sec == NULL || arm_sec == NULL)
7917 return FALSE;
7918
7919 addr->section = SHN_UNDEF;
7920 addr->offset = 0;
7921
7922 if (sym_name != NULL)
7923 *sym_name = (bfd_vma) -1;
7924
7925 /* If necessary, update the section cache. */
7926 if (sec != arm_sec->sec)
7927 {
7928 Elf_Internal_Shdr *relsec;
7929
7930 arm_free_section (arm_sec);
7931
7932 arm_sec->sec = sec;
7933 arm_sec->data = get_data (NULL, aux->file, sec->sh_offset, 1,
7934 sec->sh_size, _("unwind data"));
7935 arm_sec->rela = NULL;
7936 arm_sec->nrelas = 0;
7937
7938 for (relsec = section_headers;
7939 relsec < section_headers + elf_header.e_shnum;
7940 ++relsec)
7941 {
7942 if (relsec->sh_info >= elf_header.e_shnum
7943 || section_headers + relsec->sh_info != sec
7944 /* PR 15745: Check the section type as well. */
7945 || (relsec->sh_type != SHT_REL
7946 && relsec->sh_type != SHT_RELA))
7947 continue;
7948
7949 arm_sec->rel_type = relsec->sh_type;
7950 if (relsec->sh_type == SHT_REL)
7951 {
7952 if (!slurp_rel_relocs (aux->file, relsec->sh_offset,
7953 relsec->sh_size,
7954 & arm_sec->rela, & arm_sec->nrelas))
7955 return FALSE;
7956 }
7957 else /* relsec->sh_type == SHT_RELA */
7958 {
7959 if (!slurp_rela_relocs (aux->file, relsec->sh_offset,
7960 relsec->sh_size,
7961 & arm_sec->rela, & arm_sec->nrelas))
7962 return FALSE;
7963 }
7964 break;
7965 }
7966
7967 arm_sec->next_rela = arm_sec->rela;
7968 }
7969
7970 /* If there is no unwind data we can do nothing. */
7971 if (arm_sec->data == NULL)
7972 return FALSE;
7973
7974 /* If the offset is invalid then fail. */
7975 if (word_offset > (sec->sh_size - 4)
7976 /* PR 18879 */
7977 || (sec->sh_size < 5 && word_offset >= sec->sh_size)
7978 || ((bfd_signed_vma) word_offset) < 0)
7979 return FALSE;
7980
7981 /* Get the word at the required offset. */
7982 word = byte_get (arm_sec->data + word_offset, 4);
7983
7984 /* PR 17531: file: id:000001,src:001266+003044,op:splice,rep:128. */
7985 if (arm_sec->rela == NULL)
7986 {
7987 * wordp = word;
7988 return TRUE;
7989 }
7990
7991 /* Look through the relocs to find the one that applies to the provided offset. */
7992 wrapped = FALSE;
7993 for (rp = arm_sec->next_rela; rp != arm_sec->rela + arm_sec->nrelas; rp++)
7994 {
7995 bfd_vma prelval, offset;
7996
7997 if (rp->r_offset > word_offset && !wrapped)
7998 {
7999 rp = arm_sec->rela;
8000 wrapped = TRUE;
8001 }
8002 if (rp->r_offset > word_offset)
8003 break;
8004
8005 if (rp->r_offset & 3)
8006 {
8007 warn (_("Skipping unexpected relocation at offset 0x%lx\n"),
8008 (unsigned long) rp->r_offset);
8009 continue;
8010 }
8011
8012 if (rp->r_offset < word_offset)
8013 continue;
8014
8015 /* PR 17531: file: 027-161405-0.004 */
8016 if (aux->symtab == NULL)
8017 continue;
8018
8019 if (arm_sec->rel_type == SHT_REL)
8020 {
8021 offset = word & 0x7fffffff;
8022 if (offset & 0x40000000)
8023 offset |= ~ (bfd_vma) 0x7fffffff;
8024 }
8025 else if (arm_sec->rel_type == SHT_RELA)
8026 offset = rp->r_addend;
8027 else
8028 {
8029 error (_("Unknown section relocation type %d encountered\n"),
8030 arm_sec->rel_type);
8031 break;
8032 }
8033
8034 /* PR 17531 file: 027-1241568-0.004. */
8035 if (ELF32_R_SYM (rp->r_info) >= aux->nsyms)
8036 {
8037 error (_("Bad symbol index in unwind relocation (%lu > %lu)\n"),
8038 (unsigned long) ELF32_R_SYM (rp->r_info), aux->nsyms);
8039 break;
8040 }
8041
8042 sym = aux->symtab + ELF32_R_SYM (rp->r_info);
8043 offset += sym->st_value;
8044 prelval = offset - (arm_sec->sec->sh_addr + rp->r_offset);
8045
8046 /* Check that we are processing the expected reloc type. */
8047 if (elf_header.e_machine == EM_ARM)
8048 {
8049 relname = elf_arm_reloc_type (ELF32_R_TYPE (rp->r_info));
8050 if (relname == NULL)
8051 {
8052 warn (_("Skipping unknown ARM relocation type: %d\n"),
8053 (int) ELF32_R_TYPE (rp->r_info));
8054 continue;
8055 }
8056
8057 if (streq (relname, "R_ARM_NONE"))
8058 continue;
8059
8060 if (! streq (relname, "R_ARM_PREL31"))
8061 {
8062 warn (_("Skipping unexpected ARM relocation type %s\n"), relname);
8063 continue;
8064 }
8065 }
8066 else if (elf_header.e_machine == EM_TI_C6000)
8067 {
8068 relname = elf_tic6x_reloc_type (ELF32_R_TYPE (rp->r_info));
8069 if (relname == NULL)
8070 {
8071 warn (_("Skipping unknown C6000 relocation type: %d\n"),
8072 (int) ELF32_R_TYPE (rp->r_info));
8073 continue;
8074 }
8075
8076 if (streq (relname, "R_C6000_NONE"))
8077 continue;
8078
8079 if (! streq (relname, "R_C6000_PREL31"))
8080 {
8081 warn (_("Skipping unexpected C6000 relocation type %s\n"), relname);
8082 continue;
8083 }
8084
8085 prelval >>= 1;
8086 }
8087 else
8088 {
8089 /* This function currently only supports ARM and TI unwinders. */
8090 warn (_("Only TI and ARM unwinders are currently supported\n"));
8091 break;
8092 }
8093
8094 word = (word & ~ (bfd_vma) 0x7fffffff) | (prelval & 0x7fffffff);
8095 addr->section = sym->st_shndx;
8096 addr->offset = offset;
8097
8098 if (sym_name)
8099 * sym_name = sym->st_name;
8100 break;
8101 }
8102
8103 *wordp = word;
8104 arm_sec->next_rela = rp;
8105
8106 return TRUE;
8107 }
8108
8109 static const char *tic6x_unwind_regnames[16] =
8110 {
8111 "A15", "B15", "B14", "B13", "B12", "B11", "B10", "B3",
8112 "A14", "A13", "A12", "A11", "A10",
8113 "[invalid reg 13]", "[invalid reg 14]", "[invalid reg 15]"
8114 };
8115
8116 static void
8117 decode_tic6x_unwind_regmask (unsigned int mask)
8118 {
8119 int i;
8120
8121 for (i = 12; mask; mask >>= 1, i--)
8122 {
8123 if (mask & 1)
8124 {
8125 fputs (tic6x_unwind_regnames[i], stdout);
8126 if (mask > 1)
8127 fputs (", ", stdout);
8128 }
8129 }
8130 }
8131
8132 #define ADVANCE \
8133 if (remaining == 0 && more_words) \
8134 { \
8135 data_offset += 4; \
8136 if (! get_unwind_section_word (aux, data_arm_sec, data_sec, \
8137 data_offset, & word, & addr, NULL)) \
8138 return; \
8139 remaining = 4; \
8140 more_words--; \
8141 } \
8142
8143 #define GET_OP(OP) \
8144 ADVANCE; \
8145 if (remaining) \
8146 { \
8147 remaining--; \
8148 (OP) = word >> 24; \
8149 word <<= 8; \
8150 } \
8151 else \
8152 { \
8153 printf (_("[Truncated opcode]\n")); \
8154 return; \
8155 } \
8156 printf ("0x%02x ", OP)
8157
8158 static void
8159 decode_arm_unwind_bytecode (struct arm_unw_aux_info * aux,
8160 unsigned int word,
8161 unsigned int remaining,
8162 unsigned int more_words,
8163 bfd_vma data_offset,
8164 Elf_Internal_Shdr * data_sec,
8165 struct arm_section * data_arm_sec)
8166 {
8167 struct absaddr addr;
8168
8169 /* Decode the unwinding instructions. */
8170 while (1)
8171 {
8172 unsigned int op, op2;
8173
8174 ADVANCE;
8175 if (remaining == 0)
8176 break;
8177 remaining--;
8178 op = word >> 24;
8179 word <<= 8;
8180
8181 printf (" 0x%02x ", op);
8182
8183 if ((op & 0xc0) == 0x00)
8184 {
8185 int offset = ((op & 0x3f) << 2) + 4;
8186
8187 printf (" vsp = vsp + %d", offset);
8188 }
8189 else if ((op & 0xc0) == 0x40)
8190 {
8191 int offset = ((op & 0x3f) << 2) + 4;
8192
8193 printf (" vsp = vsp - %d", offset);
8194 }
8195 else if ((op & 0xf0) == 0x80)
8196 {
8197 GET_OP (op2);
8198 if (op == 0x80 && op2 == 0)
8199 printf (_("Refuse to unwind"));
8200 else
8201 {
8202 unsigned int mask = ((op & 0x0f) << 8) | op2;
8203 int first = 1;
8204 int i;
8205
8206 printf ("pop {");
8207 for (i = 0; i < 12; i++)
8208 if (mask & (1 << i))
8209 {
8210 if (first)
8211 first = 0;
8212 else
8213 printf (", ");
8214 printf ("r%d", 4 + i);
8215 }
8216 printf ("}");
8217 }
8218 }
8219 else if ((op & 0xf0) == 0x90)
8220 {
8221 if (op == 0x9d || op == 0x9f)
8222 printf (_(" [Reserved]"));
8223 else
8224 printf (" vsp = r%d", op & 0x0f);
8225 }
8226 else if ((op & 0xf0) == 0xa0)
8227 {
8228 int end = 4 + (op & 0x07);
8229 int first = 1;
8230 int i;
8231
8232 printf (" pop {");
8233 for (i = 4; i <= end; i++)
8234 {
8235 if (first)
8236 first = 0;
8237 else
8238 printf (", ");
8239 printf ("r%d", i);
8240 }
8241 if (op & 0x08)
8242 {
8243 if (!first)
8244 printf (", ");
8245 printf ("r14");
8246 }
8247 printf ("}");
8248 }
8249 else if (op == 0xb0)
8250 printf (_(" finish"));
8251 else if (op == 0xb1)
8252 {
8253 GET_OP (op2);
8254 if (op2 == 0 || (op2 & 0xf0) != 0)
8255 printf (_("[Spare]"));
8256 else
8257 {
8258 unsigned int mask = op2 & 0x0f;
8259 int first = 1;
8260 int i;
8261
8262 printf ("pop {");
8263 for (i = 0; i < 12; i++)
8264 if (mask & (1 << i))
8265 {
8266 if (first)
8267 first = 0;
8268 else
8269 printf (", ");
8270 printf ("r%d", i);
8271 }
8272 printf ("}");
8273 }
8274 }
8275 else if (op == 0xb2)
8276 {
8277 unsigned char buf[9];
8278 unsigned int i, len;
8279 unsigned long offset;
8280
8281 for (i = 0; i < sizeof (buf); i++)
8282 {
8283 GET_OP (buf[i]);
8284 if ((buf[i] & 0x80) == 0)
8285 break;
8286 }
8287 if (i == sizeof (buf))
8288 printf (_("corrupt change to vsp"));
8289 else
8290 {
8291 offset = read_uleb128 (buf, &len, buf + i + 1);
8292 assert (len == i + 1);
8293 offset = offset * 4 + 0x204;
8294 printf ("vsp = vsp + %ld", offset);
8295 }
8296 }
8297 else if (op == 0xb3 || op == 0xc8 || op == 0xc9)
8298 {
8299 unsigned int first, last;
8300
8301 GET_OP (op2);
8302 first = op2 >> 4;
8303 last = op2 & 0x0f;
8304 if (op == 0xc8)
8305 first = first + 16;
8306 printf ("pop {D%d", first);
8307 if (last)
8308 printf ("-D%d", first + last);
8309 printf ("}");
8310 }
8311 else if ((op & 0xf8) == 0xb8 || (op & 0xf8) == 0xd0)
8312 {
8313 unsigned int count = op & 0x07;
8314
8315 printf ("pop {D8");
8316 if (count)
8317 printf ("-D%d", 8 + count);
8318 printf ("}");
8319 }
8320 else if (op >= 0xc0 && op <= 0xc5)
8321 {
8322 unsigned int count = op & 0x07;
8323
8324 printf (" pop {wR10");
8325 if (count)
8326 printf ("-wR%d", 10 + count);
8327 printf ("}");
8328 }
8329 else if (op == 0xc6)
8330 {
8331 unsigned int first, last;
8332
8333 GET_OP (op2);
8334 first = op2 >> 4;
8335 last = op2 & 0x0f;
8336 printf ("pop {wR%d", first);
8337 if (last)
8338 printf ("-wR%d", first + last);
8339 printf ("}");
8340 }
8341 else if (op == 0xc7)
8342 {
8343 GET_OP (op2);
8344 if (op2 == 0 || (op2 & 0xf0) != 0)
8345 printf (_("[Spare]"));
8346 else
8347 {
8348 unsigned int mask = op2 & 0x0f;
8349 int first = 1;
8350 int i;
8351
8352 printf ("pop {");
8353 for (i = 0; i < 4; i++)
8354 if (mask & (1 << i))
8355 {
8356 if (first)
8357 first = 0;
8358 else
8359 printf (", ");
8360 printf ("wCGR%d", i);
8361 }
8362 printf ("}");
8363 }
8364 }
8365 else
8366 printf (_(" [unsupported opcode]"));
8367 printf ("\n");
8368 }
8369 }
8370
8371 static void
8372 decode_tic6x_unwind_bytecode (struct arm_unw_aux_info * aux,
8373 unsigned int word,
8374 unsigned int remaining,
8375 unsigned int more_words,
8376 bfd_vma data_offset,
8377 Elf_Internal_Shdr * data_sec,
8378 struct arm_section * data_arm_sec)
8379 {
8380 struct absaddr addr;
8381
8382 /* Decode the unwinding instructions. */
8383 while (1)
8384 {
8385 unsigned int op, op2;
8386
8387 ADVANCE;
8388 if (remaining == 0)
8389 break;
8390 remaining--;
8391 op = word >> 24;
8392 word <<= 8;
8393
8394 printf (" 0x%02x ", op);
8395
8396 if ((op & 0xc0) == 0x00)
8397 {
8398 int offset = ((op & 0x3f) << 3) + 8;
8399 printf (" sp = sp + %d", offset);
8400 }
8401 else if ((op & 0xc0) == 0x80)
8402 {
8403 GET_OP (op2);
8404 if (op == 0x80 && op2 == 0)
8405 printf (_("Refuse to unwind"));
8406 else
8407 {
8408 unsigned int mask = ((op & 0x1f) << 8) | op2;
8409 if (op & 0x20)
8410 printf ("pop compact {");
8411 else
8412 printf ("pop {");
8413
8414 decode_tic6x_unwind_regmask (mask);
8415 printf("}");
8416 }
8417 }
8418 else if ((op & 0xf0) == 0xc0)
8419 {
8420 unsigned int reg;
8421 unsigned int nregs;
8422 unsigned int i;
8423 const char *name;
8424 struct
8425 {
8426 unsigned int offset;
8427 unsigned int reg;
8428 } regpos[16];
8429
8430 /* Scan entire instruction first so that GET_OP output is not
8431 interleaved with disassembly. */
8432 nregs = 0;
8433 for (i = 0; nregs < (op & 0xf); i++)
8434 {
8435 GET_OP (op2);
8436 reg = op2 >> 4;
8437 if (reg != 0xf)
8438 {
8439 regpos[nregs].offset = i * 2;
8440 regpos[nregs].reg = reg;
8441 nregs++;
8442 }
8443
8444 reg = op2 & 0xf;
8445 if (reg != 0xf)
8446 {
8447 regpos[nregs].offset = i * 2 + 1;
8448 regpos[nregs].reg = reg;
8449 nregs++;
8450 }
8451 }
8452
8453 printf (_("pop frame {"));
8454 reg = nregs - 1;
8455 for (i = i * 2; i > 0; i--)
8456 {
8457 if (regpos[reg].offset == i - 1)
8458 {
8459 name = tic6x_unwind_regnames[regpos[reg].reg];
8460 if (reg > 0)
8461 reg--;
8462 }
8463 else
8464 name = _("[pad]");
8465
8466 fputs (name, stdout);
8467 if (i > 1)
8468 printf (", ");
8469 }
8470
8471 printf ("}");
8472 }
8473 else if (op == 0xd0)
8474 printf (" MOV FP, SP");
8475 else if (op == 0xd1)
8476 printf (" __c6xabi_pop_rts");
8477 else if (op == 0xd2)
8478 {
8479 unsigned char buf[9];
8480 unsigned int i, len;
8481 unsigned long offset;
8482
8483 for (i = 0; i < sizeof (buf); i++)
8484 {
8485 GET_OP (buf[i]);
8486 if ((buf[i] & 0x80) == 0)
8487 break;
8488 }
8489 /* PR 17531: file: id:000001,src:001906+004739,op:splice,rep:2. */
8490 if (i == sizeof (buf))
8491 {
8492 printf ("<corrupt sp adjust>\n");
8493 warn (_("Corrupt stack pointer adjustment detected\n"));
8494 return;
8495 }
8496
8497 offset = read_uleb128 (buf, &len, buf + i + 1);
8498 assert (len == i + 1);
8499 offset = offset * 8 + 0x408;
8500 printf (_("sp = sp + %ld"), offset);
8501 }
8502 else if ((op & 0xf0) == 0xe0)
8503 {
8504 if ((op & 0x0f) == 7)
8505 printf (" RETURN");
8506 else
8507 printf (" MV %s, B3", tic6x_unwind_regnames[op & 0x0f]);
8508 }
8509 else
8510 {
8511 printf (_(" [unsupported opcode]"));
8512 }
8513 putchar ('\n');
8514 }
8515 }
8516
8517 static bfd_vma
8518 arm_expand_prel31 (bfd_vma word, bfd_vma where)
8519 {
8520 bfd_vma offset;
8521
8522 offset = word & 0x7fffffff;
8523 if (offset & 0x40000000)
8524 offset |= ~ (bfd_vma) 0x7fffffff;
8525
8526 if (elf_header.e_machine == EM_TI_C6000)
8527 offset <<= 1;
8528
8529 return offset + where;
8530 }
8531
8532 static void
8533 decode_arm_unwind (struct arm_unw_aux_info * aux,
8534 unsigned int word,
8535 unsigned int remaining,
8536 bfd_vma data_offset,
8537 Elf_Internal_Shdr * data_sec,
8538 struct arm_section * data_arm_sec)
8539 {
8540 int per_index;
8541 unsigned int more_words = 0;
8542 struct absaddr addr;
8543 bfd_vma sym_name = (bfd_vma) -1;
8544
8545 if (remaining == 0)
8546 {
8547 /* Fetch the first word.
8548 Note - when decoding an object file the address extracted
8549 here will always be 0. So we also pass in the sym_name
8550 parameter so that we can find the symbol associated with
8551 the personality routine. */
8552 if (! get_unwind_section_word (aux, data_arm_sec, data_sec, data_offset,
8553 & word, & addr, & sym_name))
8554 return;
8555
8556 remaining = 4;
8557 }
8558
8559 if ((word & 0x80000000) == 0)
8560 {
8561 /* Expand prel31 for personality routine. */
8562 bfd_vma fn;
8563 const char *procname;
8564
8565 fn = arm_expand_prel31 (word, data_sec->sh_addr + data_offset);
8566 printf (_(" Personality routine: "));
8567 if (fn == 0
8568 && addr.section == SHN_UNDEF && addr.offset == 0
8569 && sym_name != (bfd_vma) -1 && sym_name < aux->strtab_size)
8570 {
8571 procname = aux->strtab + sym_name;
8572 print_vma (fn, PREFIX_HEX);
8573 if (procname)
8574 {
8575 fputs (" <", stdout);
8576 fputs (procname, stdout);
8577 fputc ('>', stdout);
8578 }
8579 }
8580 else
8581 procname = arm_print_vma_and_name (aux, fn, addr);
8582 fputc ('\n', stdout);
8583
8584 /* The GCC personality routines use the standard compact
8585 encoding, starting with one byte giving the number of
8586 words. */
8587 if (procname != NULL
8588 && (const_strneq (procname, "__gcc_personality_v0")
8589 || const_strneq (procname, "__gxx_personality_v0")
8590 || const_strneq (procname, "__gcj_personality_v0")
8591 || const_strneq (procname, "__gnu_objc_personality_v0")))
8592 {
8593 remaining = 0;
8594 more_words = 1;
8595 ADVANCE;
8596 if (!remaining)
8597 {
8598 printf (_(" [Truncated data]\n"));
8599 return;
8600 }
8601 more_words = word >> 24;
8602 word <<= 8;
8603 remaining--;
8604 per_index = -1;
8605 }
8606 else
8607 return;
8608 }
8609 else
8610 {
8611 /* ARM EHABI Section 6.3:
8612
8613 An exception-handling table entry for the compact model looks like:
8614
8615 31 30-28 27-24 23-0
8616 -- ----- ----- ----
8617 1 0 index Data for personalityRoutine[index] */
8618
8619 if (elf_header.e_machine == EM_ARM
8620 && (word & 0x70000000))
8621 warn (_("Corrupt ARM compact model table entry: %x \n"), word);
8622
8623 per_index = (word >> 24) & 0x7f;
8624 printf (_(" Compact model index: %d\n"), per_index);
8625 if (per_index == 0)
8626 {
8627 more_words = 0;
8628 word <<= 8;
8629 remaining--;
8630 }
8631 else if (per_index < 3)
8632 {
8633 more_words = (word >> 16) & 0xff;
8634 word <<= 16;
8635 remaining -= 2;
8636 }
8637 }
8638
8639 switch (elf_header.e_machine)
8640 {
8641 case EM_ARM:
8642 if (per_index < 3)
8643 {
8644 decode_arm_unwind_bytecode (aux, word, remaining, more_words,
8645 data_offset, data_sec, data_arm_sec);
8646 }
8647 else
8648 {
8649 warn (_("Unknown ARM compact model index encountered\n"));
8650 printf (_(" [reserved]\n"));
8651 }
8652 break;
8653
8654 case EM_TI_C6000:
8655 if (per_index < 3)
8656 {
8657 decode_tic6x_unwind_bytecode (aux, word, remaining, more_words,
8658 data_offset, data_sec, data_arm_sec);
8659 }
8660 else if (per_index < 5)
8661 {
8662 if (((word >> 17) & 0x7f) == 0x7f)
8663 printf (_(" Restore stack from frame pointer\n"));
8664 else
8665 printf (_(" Stack increment %d\n"), (word >> 14) & 0x1fc);
8666 printf (_(" Registers restored: "));
8667 if (per_index == 4)
8668 printf (" (compact) ");
8669 decode_tic6x_unwind_regmask ((word >> 4) & 0x1fff);
8670 putchar ('\n');
8671 printf (_(" Return register: %s\n"),
8672 tic6x_unwind_regnames[word & 0xf]);
8673 }
8674 else
8675 printf (_(" [reserved (%d)]\n"), per_index);
8676 break;
8677
8678 default:
8679 error (_("Unsupported architecture type %d encountered when decoding unwind table\n"),
8680 elf_header.e_machine);
8681 }
8682
8683 /* Decode the descriptors. Not implemented. */
8684 }
8685
8686 static void
8687 dump_arm_unwind (struct arm_unw_aux_info *aux, Elf_Internal_Shdr *exidx_sec)
8688 {
8689 struct arm_section exidx_arm_sec, extab_arm_sec;
8690 unsigned int i, exidx_len;
8691 unsigned long j, nfuns;
8692
8693 memset (&exidx_arm_sec, 0, sizeof (exidx_arm_sec));
8694 memset (&extab_arm_sec, 0, sizeof (extab_arm_sec));
8695 exidx_len = exidx_sec->sh_size / 8;
8696
8697 aux->funtab = xmalloc (aux->nsyms * sizeof (Elf_Internal_Sym));
8698 for (nfuns = 0, j = 0; j < aux->nsyms; j++)
8699 if (aux->symtab[j].st_value && ELF_ST_TYPE (aux->symtab[j].st_info) == STT_FUNC)
8700 aux->funtab[nfuns++] = aux->symtab[j];
8701 aux->nfuns = nfuns;
8702 qsort (aux->funtab, aux->nfuns, sizeof (Elf_Internal_Sym), symcmp);
8703
8704 for (i = 0; i < exidx_len; i++)
8705 {
8706 unsigned int exidx_fn, exidx_entry;
8707 struct absaddr fn_addr, entry_addr;
8708 bfd_vma fn;
8709
8710 fputc ('\n', stdout);
8711
8712 if (! get_unwind_section_word (aux, & exidx_arm_sec, exidx_sec,
8713 8 * i, & exidx_fn, & fn_addr, NULL)
8714 || ! get_unwind_section_word (aux, & exidx_arm_sec, exidx_sec,
8715 8 * i + 4, & exidx_entry, & entry_addr, NULL))
8716 {
8717 free (aux->funtab);
8718 arm_free_section (& exidx_arm_sec);
8719 arm_free_section (& extab_arm_sec);
8720 return;
8721 }
8722
8723 /* ARM EHABI, Section 5:
8724 An index table entry consists of 2 words.
8725 The first word contains a prel31 offset to the start of a function, with bit 31 clear. */
8726 if (exidx_fn & 0x80000000)
8727 warn (_("corrupt index table entry: %x\n"), exidx_fn);
8728
8729 fn = arm_expand_prel31 (exidx_fn, exidx_sec->sh_addr + 8 * i);
8730
8731 arm_print_vma_and_name (aux, fn, fn_addr);
8732 fputs (": ", stdout);
8733
8734 if (exidx_entry == 1)
8735 {
8736 print_vma (exidx_entry, PREFIX_HEX);
8737 fputs (" [cantunwind]\n", stdout);
8738 }
8739 else if (exidx_entry & 0x80000000)
8740 {
8741 print_vma (exidx_entry, PREFIX_HEX);
8742 fputc ('\n', stdout);
8743 decode_arm_unwind (aux, exidx_entry, 4, 0, NULL, NULL);
8744 }
8745 else
8746 {
8747 bfd_vma table, table_offset = 0;
8748 Elf_Internal_Shdr *table_sec;
8749
8750 fputs ("@", stdout);
8751 table = arm_expand_prel31 (exidx_entry, exidx_sec->sh_addr + 8 * i + 4);
8752 print_vma (table, PREFIX_HEX);
8753 printf ("\n");
8754
8755 /* Locate the matching .ARM.extab. */
8756 if (entry_addr.section != SHN_UNDEF
8757 && entry_addr.section < elf_header.e_shnum)
8758 {
8759 table_sec = section_headers + entry_addr.section;
8760 table_offset = entry_addr.offset;
8761 /* PR 18879 */
8762 if (table_offset > table_sec->sh_size
8763 || ((bfd_signed_vma) table_offset) < 0)
8764 {
8765 warn (_("Unwind entry contains corrupt offset (0x%lx) into section %s\n"),
8766 (unsigned long) table_offset,
8767 printable_section_name (table_sec));
8768 continue;
8769 }
8770 }
8771 else
8772 {
8773 table_sec = find_section_by_address (table);
8774 if (table_sec != NULL)
8775 table_offset = table - table_sec->sh_addr;
8776 }
8777 if (table_sec == NULL)
8778 {
8779 warn (_("Could not locate .ARM.extab section containing 0x%lx.\n"),
8780 (unsigned long) table);
8781 continue;
8782 }
8783 decode_arm_unwind (aux, 0, 0, table_offset, table_sec,
8784 &extab_arm_sec);
8785 }
8786 }
8787
8788 printf ("\n");
8789
8790 free (aux->funtab);
8791 arm_free_section (&exidx_arm_sec);
8792 arm_free_section (&extab_arm_sec);
8793 }
8794
8795 /* Used for both ARM and C6X unwinding tables. */
8796
8797 static void
8798 arm_process_unwind (FILE *file)
8799 {
8800 struct arm_unw_aux_info aux;
8801 Elf_Internal_Shdr *unwsec = NULL;
8802 Elf_Internal_Shdr *strsec;
8803 Elf_Internal_Shdr *sec;
8804 unsigned long i;
8805 unsigned int sec_type;
8806
8807 switch (elf_header.e_machine)
8808 {
8809 case EM_ARM:
8810 sec_type = SHT_ARM_EXIDX;
8811 break;
8812
8813 case EM_TI_C6000:
8814 sec_type = SHT_C6000_UNWIND;
8815 break;
8816
8817 default:
8818 error (_("Unsupported architecture type %d encountered when processing unwind table\n"),
8819 elf_header.e_machine);
8820 return;
8821 }
8822
8823 if (string_table == NULL)
8824 return;
8825
8826 memset (& aux, 0, sizeof (aux));
8827 aux.file = file;
8828
8829 for (i = 0, sec = section_headers; i < elf_header.e_shnum; ++i, ++sec)
8830 {
8831 if (sec->sh_type == SHT_SYMTAB && sec->sh_link < elf_header.e_shnum)
8832 {
8833 aux.symtab = GET_ELF_SYMBOLS (file, sec, & aux.nsyms);
8834
8835 strsec = section_headers + sec->sh_link;
8836
8837 /* PR binutils/17531 file: 011-12666-0.004. */
8838 if (aux.strtab != NULL)
8839 {
8840 error (_("Multiple string tables found in file.\n"));
8841 free (aux.strtab);
8842 }
8843 aux.strtab = get_data (NULL, file, strsec->sh_offset,
8844 1, strsec->sh_size, _("string table"));
8845 aux.strtab_size = aux.strtab != NULL ? strsec->sh_size : 0;
8846 }
8847 else if (sec->sh_type == sec_type)
8848 unwsec = sec;
8849 }
8850
8851 if (unwsec == NULL)
8852 printf (_("\nThere are no unwind sections in this file.\n"));
8853 else
8854 for (i = 0, sec = section_headers; i < elf_header.e_shnum; ++i, ++sec)
8855 {
8856 if (sec->sh_type == sec_type)
8857 {
8858 printf (_("\nUnwind table index '%s' at offset 0x%lx contains %lu entries:\n"),
8859 printable_section_name (sec),
8860 (unsigned long) sec->sh_offset,
8861 (unsigned long) (sec->sh_size / (2 * eh_addr_size)));
8862
8863 dump_arm_unwind (&aux, sec);
8864 }
8865 }
8866
8867 if (aux.symtab)
8868 free (aux.symtab);
8869 if (aux.strtab)
8870 free ((char *) aux.strtab);
8871 }
8872
8873 static void
8874 process_unwind (FILE * file)
8875 {
8876 struct unwind_handler
8877 {
8878 int machtype;
8879 void (* handler)(FILE *);
8880 } handlers[] =
8881 {
8882 { EM_ARM, arm_process_unwind },
8883 { EM_IA_64, ia64_process_unwind },
8884 { EM_PARISC, hppa_process_unwind },
8885 { EM_TI_C6000, arm_process_unwind },
8886 { 0, 0 }
8887 };
8888 int i;
8889
8890 if (!do_unwind)
8891 return;
8892
8893 for (i = 0; handlers[i].handler != NULL; i++)
8894 if (elf_header.e_machine == handlers[i].machtype)
8895 {
8896 handlers[i].handler (file);
8897 return;
8898 }
8899
8900 printf (_("\nThe decoding of unwind sections for machine type %s is not currently supported.\n"),
8901 get_machine_name (elf_header.e_machine));
8902 }
8903
8904 static void
8905 dynamic_section_mips_val (Elf_Internal_Dyn * entry)
8906 {
8907 switch (entry->d_tag)
8908 {
8909 case DT_MIPS_FLAGS:
8910 if (entry->d_un.d_val == 0)
8911 printf (_("NONE"));
8912 else
8913 {
8914 static const char * opts[] =
8915 {
8916 "QUICKSTART", "NOTPOT", "NO_LIBRARY_REPLACEMENT",
8917 "NO_MOVE", "SGI_ONLY", "GUARANTEE_INIT", "DELTA_C_PLUS_PLUS",
8918 "GUARANTEE_START_INIT", "PIXIE", "DEFAULT_DELAY_LOAD",
8919 "REQUICKSTART", "REQUICKSTARTED", "CORD", "NO_UNRES_UNDEF",
8920 "RLD_ORDER_SAFE"
8921 };
8922 unsigned int cnt;
8923 int first = 1;
8924
8925 for (cnt = 0; cnt < ARRAY_SIZE (opts); ++cnt)
8926 if (entry->d_un.d_val & (1 << cnt))
8927 {
8928 printf ("%s%s", first ? "" : " ", opts[cnt]);
8929 first = 0;
8930 }
8931 }
8932 break;
8933
8934 case DT_MIPS_IVERSION:
8935 if (VALID_DYNAMIC_NAME (entry->d_un.d_val))
8936 printf (_("Interface Version: %s"), GET_DYNAMIC_NAME (entry->d_un.d_val));
8937 else
8938 {
8939 char buf[40];
8940 sprintf_vma (buf, entry->d_un.d_ptr);
8941 /* Note: coded this way so that there is a single string for translation. */
8942 printf (_("<corrupt: %s>"), buf);
8943 }
8944 break;
8945
8946 case DT_MIPS_TIME_STAMP:
8947 {
8948 char timebuf[128];
8949 struct tm * tmp;
8950 time_t atime = entry->d_un.d_val;
8951
8952 tmp = gmtime (&atime);
8953 /* PR 17531: file: 6accc532. */
8954 if (tmp == NULL)
8955 snprintf (timebuf, sizeof (timebuf), _("<corrupt>"));
8956 else
8957 snprintf (timebuf, sizeof (timebuf), "%04u-%02u-%02uT%02u:%02u:%02u",
8958 tmp->tm_year + 1900, tmp->tm_mon + 1, tmp->tm_mday,
8959 tmp->tm_hour, tmp->tm_min, tmp->tm_sec);
8960 printf (_("Time Stamp: %s"), timebuf);
8961 }
8962 break;
8963
8964 case DT_MIPS_RLD_VERSION:
8965 case DT_MIPS_LOCAL_GOTNO:
8966 case DT_MIPS_CONFLICTNO:
8967 case DT_MIPS_LIBLISTNO:
8968 case DT_MIPS_SYMTABNO:
8969 case DT_MIPS_UNREFEXTNO:
8970 case DT_MIPS_HIPAGENO:
8971 case DT_MIPS_DELTA_CLASS_NO:
8972 case DT_MIPS_DELTA_INSTANCE_NO:
8973 case DT_MIPS_DELTA_RELOC_NO:
8974 case DT_MIPS_DELTA_SYM_NO:
8975 case DT_MIPS_DELTA_CLASSSYM_NO:
8976 case DT_MIPS_COMPACT_SIZE:
8977 print_vma (entry->d_un.d_val, DEC);
8978 break;
8979
8980 default:
8981 print_vma (entry->d_un.d_ptr, PREFIX_HEX);
8982 }
8983 putchar ('\n');
8984 }
8985
8986 static void
8987 dynamic_section_parisc_val (Elf_Internal_Dyn * entry)
8988 {
8989 switch (entry->d_tag)
8990 {
8991 case DT_HP_DLD_FLAGS:
8992 {
8993 static struct
8994 {
8995 long int bit;
8996 const char * str;
8997 }
8998 flags[] =
8999 {
9000 { DT_HP_DEBUG_PRIVATE, "HP_DEBUG_PRIVATE" },
9001 { DT_HP_DEBUG_CALLBACK, "HP_DEBUG_CALLBACK" },
9002 { DT_HP_DEBUG_CALLBACK_BOR, "HP_DEBUG_CALLBACK_BOR" },
9003 { DT_HP_NO_ENVVAR, "HP_NO_ENVVAR" },
9004 { DT_HP_BIND_NOW, "HP_BIND_NOW" },
9005 { DT_HP_BIND_NONFATAL, "HP_BIND_NONFATAL" },
9006 { DT_HP_BIND_VERBOSE, "HP_BIND_VERBOSE" },
9007 { DT_HP_BIND_RESTRICTED, "HP_BIND_RESTRICTED" },
9008 { DT_HP_BIND_SYMBOLIC, "HP_BIND_SYMBOLIC" },
9009 { DT_HP_RPATH_FIRST, "HP_RPATH_FIRST" },
9010 { DT_HP_BIND_DEPTH_FIRST, "HP_BIND_DEPTH_FIRST" },
9011 { DT_HP_GST, "HP_GST" },
9012 { DT_HP_SHLIB_FIXED, "HP_SHLIB_FIXED" },
9013 { DT_HP_MERGE_SHLIB_SEG, "HP_MERGE_SHLIB_SEG" },
9014 { DT_HP_NODELETE, "HP_NODELETE" },
9015 { DT_HP_GROUP, "HP_GROUP" },
9016 { DT_HP_PROTECT_LINKAGE_TABLE, "HP_PROTECT_LINKAGE_TABLE" }
9017 };
9018 int first = 1;
9019 size_t cnt;
9020 bfd_vma val = entry->d_un.d_val;
9021
9022 for (cnt = 0; cnt < ARRAY_SIZE (flags); ++cnt)
9023 if (val & flags[cnt].bit)
9024 {
9025 if (! first)
9026 putchar (' ');
9027 fputs (flags[cnt].str, stdout);
9028 first = 0;
9029 val ^= flags[cnt].bit;
9030 }
9031
9032 if (val != 0 || first)
9033 {
9034 if (! first)
9035 putchar (' ');
9036 print_vma (val, HEX);
9037 }
9038 }
9039 break;
9040
9041 default:
9042 print_vma (entry->d_un.d_ptr, PREFIX_HEX);
9043 break;
9044 }
9045 putchar ('\n');
9046 }
9047
9048 #ifdef BFD64
9049
9050 /* VMS vs Unix time offset and factor. */
9051
9052 #define VMS_EPOCH_OFFSET 35067168000000000LL
9053 #define VMS_GRANULARITY_FACTOR 10000000
9054
9055 /* Display a VMS time in a human readable format. */
9056
9057 static void
9058 print_vms_time (bfd_int64_t vmstime)
9059 {
9060 struct tm *tm;
9061 time_t unxtime;
9062
9063 unxtime = (vmstime - VMS_EPOCH_OFFSET) / VMS_GRANULARITY_FACTOR;
9064 tm = gmtime (&unxtime);
9065 printf ("%04u-%02u-%02uT%02u:%02u:%02u",
9066 tm->tm_year + 1900, tm->tm_mon + 1, tm->tm_mday,
9067 tm->tm_hour, tm->tm_min, tm->tm_sec);
9068 }
9069 #endif /* BFD64 */
9070
9071 static void
9072 dynamic_section_ia64_val (Elf_Internal_Dyn * entry)
9073 {
9074 switch (entry->d_tag)
9075 {
9076 case DT_IA_64_PLT_RESERVE:
9077 /* First 3 slots reserved. */
9078 print_vma (entry->d_un.d_ptr, PREFIX_HEX);
9079 printf (" -- ");
9080 print_vma (entry->d_un.d_ptr + (3 * 8), PREFIX_HEX);
9081 break;
9082
9083 case DT_IA_64_VMS_LINKTIME:
9084 #ifdef BFD64
9085 print_vms_time (entry->d_un.d_val);
9086 #endif
9087 break;
9088
9089 case DT_IA_64_VMS_LNKFLAGS:
9090 print_vma (entry->d_un.d_ptr, PREFIX_HEX);
9091 if (entry->d_un.d_val & VMS_LF_CALL_DEBUG)
9092 printf (" CALL_DEBUG");
9093 if (entry->d_un.d_val & VMS_LF_NOP0BUFS)
9094 printf (" NOP0BUFS");
9095 if (entry->d_un.d_val & VMS_LF_P0IMAGE)
9096 printf (" P0IMAGE");
9097 if (entry->d_un.d_val & VMS_LF_MKTHREADS)
9098 printf (" MKTHREADS");
9099 if (entry->d_un.d_val & VMS_LF_UPCALLS)
9100 printf (" UPCALLS");
9101 if (entry->d_un.d_val & VMS_LF_IMGSTA)
9102 printf (" IMGSTA");
9103 if (entry->d_un.d_val & VMS_LF_INITIALIZE)
9104 printf (" INITIALIZE");
9105 if (entry->d_un.d_val & VMS_LF_MAIN)
9106 printf (" MAIN");
9107 if (entry->d_un.d_val & VMS_LF_EXE_INIT)
9108 printf (" EXE_INIT");
9109 if (entry->d_un.d_val & VMS_LF_TBK_IN_IMG)
9110 printf (" TBK_IN_IMG");
9111 if (entry->d_un.d_val & VMS_LF_DBG_IN_IMG)
9112 printf (" DBG_IN_IMG");
9113 if (entry->d_un.d_val & VMS_LF_TBK_IN_DSF)
9114 printf (" TBK_IN_DSF");
9115 if (entry->d_un.d_val & VMS_LF_DBG_IN_DSF)
9116 printf (" DBG_IN_DSF");
9117 if (entry->d_un.d_val & VMS_LF_SIGNATURES)
9118 printf (" SIGNATURES");
9119 if (entry->d_un.d_val & VMS_LF_REL_SEG_OFF)
9120 printf (" REL_SEG_OFF");
9121 break;
9122
9123 default:
9124 print_vma (entry->d_un.d_ptr, PREFIX_HEX);
9125 break;
9126 }
9127 putchar ('\n');
9128 }
9129
9130 static int
9131 get_32bit_dynamic_section (FILE * file)
9132 {
9133 Elf32_External_Dyn * edyn;
9134 Elf32_External_Dyn * ext;
9135 Elf_Internal_Dyn * entry;
9136
9137 edyn = (Elf32_External_Dyn *) get_data (NULL, file, dynamic_addr, 1,
9138 dynamic_size, _("dynamic section"));
9139 if (!edyn)
9140 return 0;
9141
9142 /* SGI's ELF has more than one section in the DYNAMIC segment, and we
9143 might not have the luxury of section headers. Look for the DT_NULL
9144 terminator to determine the number of entries. */
9145 for (ext = edyn, dynamic_nent = 0;
9146 (char *) (ext + 1) <= (char *) edyn + dynamic_size;
9147 ext++)
9148 {
9149 dynamic_nent++;
9150 if (BYTE_GET (ext->d_tag) == DT_NULL)
9151 break;
9152 }
9153
9154 dynamic_section = (Elf_Internal_Dyn *) cmalloc (dynamic_nent,
9155 sizeof (* entry));
9156 if (dynamic_section == NULL)
9157 {
9158 error (_("Out of memory allocating space for %lu dynamic entries\n"),
9159 (unsigned long) dynamic_nent);
9160 free (edyn);
9161 return 0;
9162 }
9163
9164 for (ext = edyn, entry = dynamic_section;
9165 entry < dynamic_section + dynamic_nent;
9166 ext++, entry++)
9167 {
9168 entry->d_tag = BYTE_GET (ext->d_tag);
9169 entry->d_un.d_val = BYTE_GET (ext->d_un.d_val);
9170 }
9171
9172 free (edyn);
9173
9174 return 1;
9175 }
9176
9177 static int
9178 get_64bit_dynamic_section (FILE * file)
9179 {
9180 Elf64_External_Dyn * edyn;
9181 Elf64_External_Dyn * ext;
9182 Elf_Internal_Dyn * entry;
9183
9184 /* Read in the data. */
9185 edyn = (Elf64_External_Dyn *) get_data (NULL, file, dynamic_addr, 1,
9186 dynamic_size, _("dynamic section"));
9187 if (!edyn)
9188 return 0;
9189
9190 /* SGI's ELF has more than one section in the DYNAMIC segment, and we
9191 might not have the luxury of section headers. Look for the DT_NULL
9192 terminator to determine the number of entries. */
9193 for (ext = edyn, dynamic_nent = 0;
9194 /* PR 17533 file: 033-67080-0.004 - do not read past end of buffer. */
9195 (char *) (ext + 1) <= (char *) edyn + dynamic_size;
9196 ext++)
9197 {
9198 dynamic_nent++;
9199 if (BYTE_GET (ext->d_tag) == DT_NULL)
9200 break;
9201 }
9202
9203 dynamic_section = (Elf_Internal_Dyn *) cmalloc (dynamic_nent,
9204 sizeof (* entry));
9205 if (dynamic_section == NULL)
9206 {
9207 error (_("Out of memory allocating space for %lu dynamic entries\n"),
9208 (unsigned long) dynamic_nent);
9209 free (edyn);
9210 return 0;
9211 }
9212
9213 /* Convert from external to internal formats. */
9214 for (ext = edyn, entry = dynamic_section;
9215 entry < dynamic_section + dynamic_nent;
9216 ext++, entry++)
9217 {
9218 entry->d_tag = BYTE_GET (ext->d_tag);
9219 entry->d_un.d_val = BYTE_GET (ext->d_un.d_val);
9220 }
9221
9222 free (edyn);
9223
9224 return 1;
9225 }
9226
9227 static void
9228 print_dynamic_flags (bfd_vma flags)
9229 {
9230 int first = 1;
9231
9232 while (flags)
9233 {
9234 bfd_vma flag;
9235
9236 flag = flags & - flags;
9237 flags &= ~ flag;
9238
9239 if (first)
9240 first = 0;
9241 else
9242 putc (' ', stdout);
9243
9244 switch (flag)
9245 {
9246 case DF_ORIGIN: fputs ("ORIGIN", stdout); break;
9247 case DF_SYMBOLIC: fputs ("SYMBOLIC", stdout); break;
9248 case DF_TEXTREL: fputs ("TEXTREL", stdout); break;
9249 case DF_BIND_NOW: fputs ("BIND_NOW", stdout); break;
9250 case DF_STATIC_TLS: fputs ("STATIC_TLS", stdout); break;
9251 default: fputs (_("unknown"), stdout); break;
9252 }
9253 }
9254 puts ("");
9255 }
9256
9257 /* Parse and display the contents of the dynamic section. */
9258
9259 static int
9260 process_dynamic_section (FILE * file)
9261 {
9262 Elf_Internal_Dyn * entry;
9263
9264 if (dynamic_size == 0)
9265 {
9266 if (do_dynamic)
9267 printf (_("\nThere is no dynamic section in this file.\n"));
9268
9269 return 1;
9270 }
9271
9272 if (is_32bit_elf)
9273 {
9274 if (! get_32bit_dynamic_section (file))
9275 return 0;
9276 }
9277 else if (! get_64bit_dynamic_section (file))
9278 return 0;
9279
9280 /* Find the appropriate symbol table. */
9281 if (dynamic_symbols == NULL)
9282 {
9283 for (entry = dynamic_section;
9284 entry < dynamic_section + dynamic_nent;
9285 ++entry)
9286 {
9287 Elf_Internal_Shdr section;
9288
9289 if (entry->d_tag != DT_SYMTAB)
9290 continue;
9291
9292 dynamic_info[DT_SYMTAB] = entry->d_un.d_val;
9293
9294 /* Since we do not know how big the symbol table is,
9295 we default to reading in the entire file (!) and
9296 processing that. This is overkill, I know, but it
9297 should work. */
9298 section.sh_offset = offset_from_vma (file, entry->d_un.d_val, 0);
9299
9300 if (archive_file_offset != 0)
9301 section.sh_size = archive_file_size - section.sh_offset;
9302 else
9303 {
9304 if (fseek (file, 0, SEEK_END))
9305 error (_("Unable to seek to end of file!\n"));
9306
9307 section.sh_size = ftell (file) - section.sh_offset;
9308 }
9309
9310 if (is_32bit_elf)
9311 section.sh_entsize = sizeof (Elf32_External_Sym);
9312 else
9313 section.sh_entsize = sizeof (Elf64_External_Sym);
9314 section.sh_name = string_table_length;
9315
9316 dynamic_symbols = GET_ELF_SYMBOLS (file, &section, & num_dynamic_syms);
9317 if (num_dynamic_syms < 1)
9318 {
9319 error (_("Unable to determine the number of symbols to load\n"));
9320 continue;
9321 }
9322 }
9323 }
9324
9325 /* Similarly find a string table. */
9326 if (dynamic_strings == NULL)
9327 {
9328 for (entry = dynamic_section;
9329 entry < dynamic_section + dynamic_nent;
9330 ++entry)
9331 {
9332 unsigned long offset;
9333 long str_tab_len;
9334
9335 if (entry->d_tag != DT_STRTAB)
9336 continue;
9337
9338 dynamic_info[DT_STRTAB] = entry->d_un.d_val;
9339
9340 /* Since we do not know how big the string table is,
9341 we default to reading in the entire file (!) and
9342 processing that. This is overkill, I know, but it
9343 should work. */
9344
9345 offset = offset_from_vma (file, entry->d_un.d_val, 0);
9346
9347 if (archive_file_offset != 0)
9348 str_tab_len = archive_file_size - offset;
9349 else
9350 {
9351 if (fseek (file, 0, SEEK_END))
9352 error (_("Unable to seek to end of file\n"));
9353 str_tab_len = ftell (file) - offset;
9354 }
9355
9356 if (str_tab_len < 1)
9357 {
9358 error
9359 (_("Unable to determine the length of the dynamic string table\n"));
9360 continue;
9361 }
9362
9363 dynamic_strings = (char *) get_data (NULL, file, offset, 1,
9364 str_tab_len,
9365 _("dynamic string table"));
9366 dynamic_strings_length = dynamic_strings == NULL ? 0 : str_tab_len;
9367 break;
9368 }
9369 }
9370
9371 /* And find the syminfo section if available. */
9372 if (dynamic_syminfo == NULL)
9373 {
9374 unsigned long syminsz = 0;
9375
9376 for (entry = dynamic_section;
9377 entry < dynamic_section + dynamic_nent;
9378 ++entry)
9379 {
9380 if (entry->d_tag == DT_SYMINENT)
9381 {
9382 /* Note: these braces are necessary to avoid a syntax
9383 error from the SunOS4 C compiler. */
9384 /* PR binutils/17531: A corrupt file can trigger this test.
9385 So do not use an assert, instead generate an error message. */
9386 if (sizeof (Elf_External_Syminfo) != entry->d_un.d_val)
9387 error (_("Bad value (%d) for SYMINENT entry\n"),
9388 (int) entry->d_un.d_val);
9389 }
9390 else if (entry->d_tag == DT_SYMINSZ)
9391 syminsz = entry->d_un.d_val;
9392 else if (entry->d_tag == DT_SYMINFO)
9393 dynamic_syminfo_offset = offset_from_vma (file, entry->d_un.d_val,
9394 syminsz);
9395 }
9396
9397 if (dynamic_syminfo_offset != 0 && syminsz != 0)
9398 {
9399 Elf_External_Syminfo * extsyminfo;
9400 Elf_External_Syminfo * extsym;
9401 Elf_Internal_Syminfo * syminfo;
9402
9403 /* There is a syminfo section. Read the data. */
9404 extsyminfo = (Elf_External_Syminfo *)
9405 get_data (NULL, file, dynamic_syminfo_offset, 1, syminsz,
9406 _("symbol information"));
9407 if (!extsyminfo)
9408 return 0;
9409
9410 dynamic_syminfo = (Elf_Internal_Syminfo *) malloc (syminsz);
9411 if (dynamic_syminfo == NULL)
9412 {
9413 error (_("Out of memory allocating %lu byte for dynamic symbol info\n"),
9414 (unsigned long) syminsz);
9415 return 0;
9416 }
9417
9418 dynamic_syminfo_nent = syminsz / sizeof (Elf_External_Syminfo);
9419 for (syminfo = dynamic_syminfo, extsym = extsyminfo;
9420 syminfo < dynamic_syminfo + dynamic_syminfo_nent;
9421 ++syminfo, ++extsym)
9422 {
9423 syminfo->si_boundto = BYTE_GET (extsym->si_boundto);
9424 syminfo->si_flags = BYTE_GET (extsym->si_flags);
9425 }
9426
9427 free (extsyminfo);
9428 }
9429 }
9430
9431 if (do_dynamic && dynamic_addr)
9432 printf (_("\nDynamic section at offset 0x%lx contains %lu entries:\n"),
9433 dynamic_addr, (unsigned long) dynamic_nent);
9434 if (do_dynamic)
9435 printf (_(" Tag Type Name/Value\n"));
9436
9437 for (entry = dynamic_section;
9438 entry < dynamic_section + dynamic_nent;
9439 entry++)
9440 {
9441 if (do_dynamic)
9442 {
9443 const char * dtype;
9444
9445 putchar (' ');
9446 print_vma (entry->d_tag, FULL_HEX);
9447 dtype = get_dynamic_type (entry->d_tag);
9448 printf (" (%s)%*s", dtype,
9449 ((is_32bit_elf ? 27 : 19)
9450 - (int) strlen (dtype)),
9451 " ");
9452 }
9453
9454 switch (entry->d_tag)
9455 {
9456 case DT_FLAGS:
9457 if (do_dynamic)
9458 print_dynamic_flags (entry->d_un.d_val);
9459 break;
9460
9461 case DT_AUXILIARY:
9462 case DT_FILTER:
9463 case DT_CONFIG:
9464 case DT_DEPAUDIT:
9465 case DT_AUDIT:
9466 if (do_dynamic)
9467 {
9468 switch (entry->d_tag)
9469 {
9470 case DT_AUXILIARY:
9471 printf (_("Auxiliary library"));
9472 break;
9473
9474 case DT_FILTER:
9475 printf (_("Filter library"));
9476 break;
9477
9478 case DT_CONFIG:
9479 printf (_("Configuration file"));
9480 break;
9481
9482 case DT_DEPAUDIT:
9483 printf (_("Dependency audit library"));
9484 break;
9485
9486 case DT_AUDIT:
9487 printf (_("Audit library"));
9488 break;
9489 }
9490
9491 if (VALID_DYNAMIC_NAME (entry->d_un.d_val))
9492 printf (": [%s]\n", GET_DYNAMIC_NAME (entry->d_un.d_val));
9493 else
9494 {
9495 printf (": ");
9496 print_vma (entry->d_un.d_val, PREFIX_HEX);
9497 putchar ('\n');
9498 }
9499 }
9500 break;
9501
9502 case DT_FEATURE:
9503 if (do_dynamic)
9504 {
9505 printf (_("Flags:"));
9506
9507 if (entry->d_un.d_val == 0)
9508 printf (_(" None\n"));
9509 else
9510 {
9511 unsigned long int val = entry->d_un.d_val;
9512
9513 if (val & DTF_1_PARINIT)
9514 {
9515 printf (" PARINIT");
9516 val ^= DTF_1_PARINIT;
9517 }
9518 if (val & DTF_1_CONFEXP)
9519 {
9520 printf (" CONFEXP");
9521 val ^= DTF_1_CONFEXP;
9522 }
9523 if (val != 0)
9524 printf (" %lx", val);
9525 puts ("");
9526 }
9527 }
9528 break;
9529
9530 case DT_POSFLAG_1:
9531 if (do_dynamic)
9532 {
9533 printf (_("Flags:"));
9534
9535 if (entry->d_un.d_val == 0)
9536 printf (_(" None\n"));
9537 else
9538 {
9539 unsigned long int val = entry->d_un.d_val;
9540
9541 if (val & DF_P1_LAZYLOAD)
9542 {
9543 printf (" LAZYLOAD");
9544 val ^= DF_P1_LAZYLOAD;
9545 }
9546 if (val & DF_P1_GROUPPERM)
9547 {
9548 printf (" GROUPPERM");
9549 val ^= DF_P1_GROUPPERM;
9550 }
9551 if (val != 0)
9552 printf (" %lx", val);
9553 puts ("");
9554 }
9555 }
9556 break;
9557
9558 case DT_FLAGS_1:
9559 if (do_dynamic)
9560 {
9561 printf (_("Flags:"));
9562 if (entry->d_un.d_val == 0)
9563 printf (_(" None\n"));
9564 else
9565 {
9566 unsigned long int val = entry->d_un.d_val;
9567
9568 if (val & DF_1_NOW)
9569 {
9570 printf (" NOW");
9571 val ^= DF_1_NOW;
9572 }
9573 if (val & DF_1_GLOBAL)
9574 {
9575 printf (" GLOBAL");
9576 val ^= DF_1_GLOBAL;
9577 }
9578 if (val & DF_1_GROUP)
9579 {
9580 printf (" GROUP");
9581 val ^= DF_1_GROUP;
9582 }
9583 if (val & DF_1_NODELETE)
9584 {
9585 printf (" NODELETE");
9586 val ^= DF_1_NODELETE;
9587 }
9588 if (val & DF_1_LOADFLTR)
9589 {
9590 printf (" LOADFLTR");
9591 val ^= DF_1_LOADFLTR;
9592 }
9593 if (val & DF_1_INITFIRST)
9594 {
9595 printf (" INITFIRST");
9596 val ^= DF_1_INITFIRST;
9597 }
9598 if (val & DF_1_NOOPEN)
9599 {
9600 printf (" NOOPEN");
9601 val ^= DF_1_NOOPEN;
9602 }
9603 if (val & DF_1_ORIGIN)
9604 {
9605 printf (" ORIGIN");
9606 val ^= DF_1_ORIGIN;
9607 }
9608 if (val & DF_1_DIRECT)
9609 {
9610 printf (" DIRECT");
9611 val ^= DF_1_DIRECT;
9612 }
9613 if (val & DF_1_TRANS)
9614 {
9615 printf (" TRANS");
9616 val ^= DF_1_TRANS;
9617 }
9618 if (val & DF_1_INTERPOSE)
9619 {
9620 printf (" INTERPOSE");
9621 val ^= DF_1_INTERPOSE;
9622 }
9623 if (val & DF_1_NODEFLIB)
9624 {
9625 printf (" NODEFLIB");
9626 val ^= DF_1_NODEFLIB;
9627 }
9628 if (val & DF_1_NODUMP)
9629 {
9630 printf (" NODUMP");
9631 val ^= DF_1_NODUMP;
9632 }
9633 if (val & DF_1_CONFALT)
9634 {
9635 printf (" CONFALT");
9636 val ^= DF_1_CONFALT;
9637 }
9638 if (val & DF_1_ENDFILTEE)
9639 {
9640 printf (" ENDFILTEE");
9641 val ^= DF_1_ENDFILTEE;
9642 }
9643 if (val & DF_1_DISPRELDNE)
9644 {
9645 printf (" DISPRELDNE");
9646 val ^= DF_1_DISPRELDNE;
9647 }
9648 if (val & DF_1_DISPRELPND)
9649 {
9650 printf (" DISPRELPND");
9651 val ^= DF_1_DISPRELPND;
9652 }
9653 if (val & DF_1_NODIRECT)
9654 {
9655 printf (" NODIRECT");
9656 val ^= DF_1_NODIRECT;
9657 }
9658 if (val & DF_1_IGNMULDEF)
9659 {
9660 printf (" IGNMULDEF");
9661 val ^= DF_1_IGNMULDEF;
9662 }
9663 if (val & DF_1_NOKSYMS)
9664 {
9665 printf (" NOKSYMS");
9666 val ^= DF_1_NOKSYMS;
9667 }
9668 if (val & DF_1_NOHDR)
9669 {
9670 printf (" NOHDR");
9671 val ^= DF_1_NOHDR;
9672 }
9673 if (val & DF_1_EDITED)
9674 {
9675 printf (" EDITED");
9676 val ^= DF_1_EDITED;
9677 }
9678 if (val & DF_1_NORELOC)
9679 {
9680 printf (" NORELOC");
9681 val ^= DF_1_NORELOC;
9682 }
9683 if (val & DF_1_SYMINTPOSE)
9684 {
9685 printf (" SYMINTPOSE");
9686 val ^= DF_1_SYMINTPOSE;
9687 }
9688 if (val & DF_1_GLOBAUDIT)
9689 {
9690 printf (" GLOBAUDIT");
9691 val ^= DF_1_GLOBAUDIT;
9692 }
9693 if (val & DF_1_SINGLETON)
9694 {
9695 printf (" SINGLETON");
9696 val ^= DF_1_SINGLETON;
9697 }
9698 if (val & DF_1_STUB)
9699 {
9700 printf (" STUB");
9701 val ^= DF_1_STUB;
9702 }
9703 if (val & DF_1_PIE)
9704 {
9705 printf (" PIE");
9706 val ^= DF_1_PIE;
9707 }
9708 if (val != 0)
9709 printf (" %lx", val);
9710 puts ("");
9711 }
9712 }
9713 break;
9714
9715 case DT_PLTREL:
9716 dynamic_info[entry->d_tag] = entry->d_un.d_val;
9717 if (do_dynamic)
9718 puts (get_dynamic_type (entry->d_un.d_val));
9719 break;
9720
9721 case DT_NULL :
9722 case DT_NEEDED :
9723 case DT_PLTGOT :
9724 case DT_HASH :
9725 case DT_STRTAB :
9726 case DT_SYMTAB :
9727 case DT_RELA :
9728 case DT_INIT :
9729 case DT_FINI :
9730 case DT_SONAME :
9731 case DT_RPATH :
9732 case DT_SYMBOLIC:
9733 case DT_REL :
9734 case DT_DEBUG :
9735 case DT_TEXTREL :
9736 case DT_JMPREL :
9737 case DT_RUNPATH :
9738 dynamic_info[entry->d_tag] = entry->d_un.d_val;
9739
9740 if (do_dynamic)
9741 {
9742 char * name;
9743
9744 if (VALID_DYNAMIC_NAME (entry->d_un.d_val))
9745 name = GET_DYNAMIC_NAME (entry->d_un.d_val);
9746 else
9747 name = NULL;
9748
9749 if (name)
9750 {
9751 switch (entry->d_tag)
9752 {
9753 case DT_NEEDED:
9754 printf (_("Shared library: [%s]"), name);
9755
9756 if (streq (name, program_interpreter))
9757 printf (_(" program interpreter"));
9758 break;
9759
9760 case DT_SONAME:
9761 printf (_("Library soname: [%s]"), name);
9762 break;
9763
9764 case DT_RPATH:
9765 printf (_("Library rpath: [%s]"), name);
9766 break;
9767
9768 case DT_RUNPATH:
9769 printf (_("Library runpath: [%s]"), name);
9770 break;
9771
9772 default:
9773 print_vma (entry->d_un.d_val, PREFIX_HEX);
9774 break;
9775 }
9776 }
9777 else
9778 print_vma (entry->d_un.d_val, PREFIX_HEX);
9779
9780 putchar ('\n');
9781 }
9782 break;
9783
9784 case DT_PLTRELSZ:
9785 case DT_RELASZ :
9786 case DT_STRSZ :
9787 case DT_RELSZ :
9788 case DT_RELAENT :
9789 case DT_SYMENT :
9790 case DT_RELENT :
9791 dynamic_info[entry->d_tag] = entry->d_un.d_val;
9792 /* Fall through. */
9793 case DT_PLTPADSZ:
9794 case DT_MOVEENT :
9795 case DT_MOVESZ :
9796 case DT_INIT_ARRAYSZ:
9797 case DT_FINI_ARRAYSZ:
9798 case DT_GNU_CONFLICTSZ:
9799 case DT_GNU_LIBLISTSZ:
9800 if (do_dynamic)
9801 {
9802 print_vma (entry->d_un.d_val, UNSIGNED);
9803 printf (_(" (bytes)\n"));
9804 }
9805 break;
9806
9807 case DT_VERDEFNUM:
9808 case DT_VERNEEDNUM:
9809 case DT_RELACOUNT:
9810 case DT_RELCOUNT:
9811 if (do_dynamic)
9812 {
9813 print_vma (entry->d_un.d_val, UNSIGNED);
9814 putchar ('\n');
9815 }
9816 break;
9817
9818 case DT_SYMINSZ:
9819 case DT_SYMINENT:
9820 case DT_SYMINFO:
9821 case DT_USED:
9822 case DT_INIT_ARRAY:
9823 case DT_FINI_ARRAY:
9824 if (do_dynamic)
9825 {
9826 if (entry->d_tag == DT_USED
9827 && VALID_DYNAMIC_NAME (entry->d_un.d_val))
9828 {
9829 char * name = GET_DYNAMIC_NAME (entry->d_un.d_val);
9830
9831 if (*name)
9832 {
9833 printf (_("Not needed object: [%s]\n"), name);
9834 break;
9835 }
9836 }
9837
9838 print_vma (entry->d_un.d_val, PREFIX_HEX);
9839 putchar ('\n');
9840 }
9841 break;
9842
9843 case DT_BIND_NOW:
9844 /* The value of this entry is ignored. */
9845 if (do_dynamic)
9846 putchar ('\n');
9847 break;
9848
9849 case DT_GNU_PRELINKED:
9850 if (do_dynamic)
9851 {
9852 struct tm * tmp;
9853 time_t atime = entry->d_un.d_val;
9854
9855 tmp = gmtime (&atime);
9856 /* PR 17533 file: 041-1244816-0.004. */
9857 if (tmp == NULL)
9858 printf (_("<corrupt time val: %lx"),
9859 (unsigned long) atime);
9860 else
9861 printf ("%04u-%02u-%02uT%02u:%02u:%02u\n",
9862 tmp->tm_year + 1900, tmp->tm_mon + 1, tmp->tm_mday,
9863 tmp->tm_hour, tmp->tm_min, tmp->tm_sec);
9864
9865 }
9866 break;
9867
9868 case DT_GNU_HASH:
9869 dynamic_info_DT_GNU_HASH = entry->d_un.d_val;
9870 if (do_dynamic)
9871 {
9872 print_vma (entry->d_un.d_val, PREFIX_HEX);
9873 putchar ('\n');
9874 }
9875 break;
9876
9877 default:
9878 if ((entry->d_tag >= DT_VERSYM) && (entry->d_tag <= DT_VERNEEDNUM))
9879 version_info[DT_VERSIONTAGIDX (entry->d_tag)] =
9880 entry->d_un.d_val;
9881
9882 if (do_dynamic)
9883 {
9884 switch (elf_header.e_machine)
9885 {
9886 case EM_MIPS:
9887 case EM_MIPS_RS3_LE:
9888 dynamic_section_mips_val (entry);
9889 break;
9890 case EM_PARISC:
9891 dynamic_section_parisc_val (entry);
9892 break;
9893 case EM_IA_64:
9894 dynamic_section_ia64_val (entry);
9895 break;
9896 default:
9897 print_vma (entry->d_un.d_val, PREFIX_HEX);
9898 putchar ('\n');
9899 }
9900 }
9901 break;
9902 }
9903 }
9904
9905 return 1;
9906 }
9907
9908 static char *
9909 get_ver_flags (unsigned int flags)
9910 {
9911 static char buff[32];
9912
9913 buff[0] = 0;
9914
9915 if (flags == 0)
9916 return _("none");
9917
9918 if (flags & VER_FLG_BASE)
9919 strcat (buff, "BASE ");
9920
9921 if (flags & VER_FLG_WEAK)
9922 {
9923 if (flags & VER_FLG_BASE)
9924 strcat (buff, "| ");
9925
9926 strcat (buff, "WEAK ");
9927 }
9928
9929 if (flags & VER_FLG_INFO)
9930 {
9931 if (flags & (VER_FLG_BASE|VER_FLG_WEAK))
9932 strcat (buff, "| ");
9933
9934 strcat (buff, "INFO ");
9935 }
9936
9937 if (flags & ~(VER_FLG_BASE | VER_FLG_WEAK | VER_FLG_INFO))
9938 strcat (buff, _("| <unknown>"));
9939
9940 return buff;
9941 }
9942
9943 /* Display the contents of the version sections. */
9944
9945 static int
9946 process_version_sections (FILE * file)
9947 {
9948 Elf_Internal_Shdr * section;
9949 unsigned i;
9950 int found = 0;
9951
9952 if (! do_version)
9953 return 1;
9954
9955 for (i = 0, section = section_headers;
9956 i < elf_header.e_shnum;
9957 i++, section++)
9958 {
9959 switch (section->sh_type)
9960 {
9961 case SHT_GNU_verdef:
9962 {
9963 Elf_External_Verdef * edefs;
9964 unsigned int idx;
9965 unsigned int cnt;
9966 char * endbuf;
9967
9968 found = 1;
9969
9970 printf (_("\nVersion definition section '%s' contains %u entries:\n"),
9971 printable_section_name (section),
9972 section->sh_info);
9973
9974 printf (_(" Addr: 0x"));
9975 printf_vma (section->sh_addr);
9976 printf (_(" Offset: %#08lx Link: %u (%s)"),
9977 (unsigned long) section->sh_offset, section->sh_link,
9978 printable_section_name_from_index (section->sh_link));
9979
9980 edefs = (Elf_External_Verdef *)
9981 get_data (NULL, file, section->sh_offset, 1,section->sh_size,
9982 _("version definition section"));
9983 if (!edefs)
9984 break;
9985 endbuf = (char *) edefs + section->sh_size;
9986
9987 for (idx = cnt = 0; cnt < section->sh_info; ++cnt)
9988 {
9989 char * vstart;
9990 Elf_External_Verdef * edef;
9991 Elf_Internal_Verdef ent;
9992 Elf_External_Verdaux * eaux;
9993 Elf_Internal_Verdaux aux;
9994 int j;
9995 int isum;
9996
9997 /* Check for very large indices. */
9998 if (idx > (size_t) (endbuf - (char *) edefs))
9999 break;
10000
10001 vstart = ((char *) edefs) + idx;
10002 if (vstart + sizeof (*edef) > endbuf)
10003 break;
10004
10005 edef = (Elf_External_Verdef *) vstart;
10006
10007 ent.vd_version = BYTE_GET (edef->vd_version);
10008 ent.vd_flags = BYTE_GET (edef->vd_flags);
10009 ent.vd_ndx = BYTE_GET (edef->vd_ndx);
10010 ent.vd_cnt = BYTE_GET (edef->vd_cnt);
10011 ent.vd_hash = BYTE_GET (edef->vd_hash);
10012 ent.vd_aux = BYTE_GET (edef->vd_aux);
10013 ent.vd_next = BYTE_GET (edef->vd_next);
10014
10015 printf (_(" %#06x: Rev: %d Flags: %s"),
10016 idx, ent.vd_version, get_ver_flags (ent.vd_flags));
10017
10018 printf (_(" Index: %d Cnt: %d "),
10019 ent.vd_ndx, ent.vd_cnt);
10020
10021 /* Check for overflow. */
10022 if (ent.vd_aux > (size_t) (endbuf - vstart))
10023 break;
10024
10025 vstart += ent.vd_aux;
10026
10027 eaux = (Elf_External_Verdaux *) vstart;
10028
10029 aux.vda_name = BYTE_GET (eaux->vda_name);
10030 aux.vda_next = BYTE_GET (eaux->vda_next);
10031
10032 if (VALID_DYNAMIC_NAME (aux.vda_name))
10033 printf (_("Name: %s\n"), GET_DYNAMIC_NAME (aux.vda_name));
10034 else
10035 printf (_("Name index: %ld\n"), aux.vda_name);
10036
10037 isum = idx + ent.vd_aux;
10038
10039 for (j = 1; j < ent.vd_cnt; j++)
10040 {
10041 /* Check for overflow. */
10042 if (aux.vda_next > (size_t) (endbuf - vstart))
10043 break;
10044
10045 isum += aux.vda_next;
10046 vstart += aux.vda_next;
10047
10048 eaux = (Elf_External_Verdaux *) vstart;
10049 if (vstart + sizeof (*eaux) > endbuf)
10050 break;
10051
10052 aux.vda_name = BYTE_GET (eaux->vda_name);
10053 aux.vda_next = BYTE_GET (eaux->vda_next);
10054
10055 if (VALID_DYNAMIC_NAME (aux.vda_name))
10056 printf (_(" %#06x: Parent %d: %s\n"),
10057 isum, j, GET_DYNAMIC_NAME (aux.vda_name));
10058 else
10059 printf (_(" %#06x: Parent %d, name index: %ld\n"),
10060 isum, j, aux.vda_name);
10061 }
10062
10063 if (j < ent.vd_cnt)
10064 printf (_(" Version def aux past end of section\n"));
10065
10066 /* PR 17531: file: id:000001,src:000172+005151,op:splice,rep:2. */
10067 if (idx + ent.vd_next <= idx)
10068 break;
10069
10070 idx += ent.vd_next;
10071 }
10072
10073 if (cnt < section->sh_info)
10074 printf (_(" Version definition past end of section\n"));
10075
10076 free (edefs);
10077 }
10078 break;
10079
10080 case SHT_GNU_verneed:
10081 {
10082 Elf_External_Verneed * eneed;
10083 unsigned int idx;
10084 unsigned int cnt;
10085 char * endbuf;
10086
10087 found = 1;
10088
10089 printf (_("\nVersion needs section '%s' contains %u entries:\n"),
10090 printable_section_name (section), section->sh_info);
10091
10092 printf (_(" Addr: 0x"));
10093 printf_vma (section->sh_addr);
10094 printf (_(" Offset: %#08lx Link: %u (%s)\n"),
10095 (unsigned long) section->sh_offset, section->sh_link,
10096 printable_section_name_from_index (section->sh_link));
10097
10098 eneed = (Elf_External_Verneed *) get_data (NULL, file,
10099 section->sh_offset, 1,
10100 section->sh_size,
10101 _("Version Needs section"));
10102 if (!eneed)
10103 break;
10104 endbuf = (char *) eneed + section->sh_size;
10105
10106 for (idx = cnt = 0; cnt < section->sh_info; ++cnt)
10107 {
10108 Elf_External_Verneed * entry;
10109 Elf_Internal_Verneed ent;
10110 int j;
10111 int isum;
10112 char * vstart;
10113
10114 if (idx > (size_t) (endbuf - (char *) eneed))
10115 break;
10116
10117 vstart = ((char *) eneed) + idx;
10118 if (vstart + sizeof (*entry) > endbuf)
10119 break;
10120
10121 entry = (Elf_External_Verneed *) vstart;
10122
10123 ent.vn_version = BYTE_GET (entry->vn_version);
10124 ent.vn_cnt = BYTE_GET (entry->vn_cnt);
10125 ent.vn_file = BYTE_GET (entry->vn_file);
10126 ent.vn_aux = BYTE_GET (entry->vn_aux);
10127 ent.vn_next = BYTE_GET (entry->vn_next);
10128
10129 printf (_(" %#06x: Version: %d"), idx, ent.vn_version);
10130
10131 if (VALID_DYNAMIC_NAME (ent.vn_file))
10132 printf (_(" File: %s"), GET_DYNAMIC_NAME (ent.vn_file));
10133 else
10134 printf (_(" File: %lx"), ent.vn_file);
10135
10136 printf (_(" Cnt: %d\n"), ent.vn_cnt);
10137
10138 /* Check for overflow. */
10139 if (ent.vn_aux > (size_t) (endbuf - vstart))
10140 break;
10141 vstart += ent.vn_aux;
10142
10143 for (j = 0, isum = idx + ent.vn_aux; j < ent.vn_cnt; ++j)
10144 {
10145 Elf_External_Vernaux * eaux;
10146 Elf_Internal_Vernaux aux;
10147
10148 if (vstart + sizeof (*eaux) > endbuf)
10149 break;
10150 eaux = (Elf_External_Vernaux *) vstart;
10151
10152 aux.vna_hash = BYTE_GET (eaux->vna_hash);
10153 aux.vna_flags = BYTE_GET (eaux->vna_flags);
10154 aux.vna_other = BYTE_GET (eaux->vna_other);
10155 aux.vna_name = BYTE_GET (eaux->vna_name);
10156 aux.vna_next = BYTE_GET (eaux->vna_next);
10157
10158 if (VALID_DYNAMIC_NAME (aux.vna_name))
10159 printf (_(" %#06x: Name: %s"),
10160 isum, GET_DYNAMIC_NAME (aux.vna_name));
10161 else
10162 printf (_(" %#06x: Name index: %lx"),
10163 isum, aux.vna_name);
10164
10165 printf (_(" Flags: %s Version: %d\n"),
10166 get_ver_flags (aux.vna_flags), aux.vna_other);
10167
10168 /* Check for overflow. */
10169 if (aux.vna_next > (size_t) (endbuf - vstart)
10170 || (aux.vna_next == 0 && j < ent.vn_cnt - 1))
10171 {
10172 warn (_("Invalid vna_next field of %lx\n"),
10173 aux.vna_next);
10174 j = ent.vn_cnt;
10175 break;
10176 }
10177 isum += aux.vna_next;
10178 vstart += aux.vna_next;
10179 }
10180
10181 if (j < ent.vn_cnt)
10182 warn (_("Missing Version Needs auxillary information\n"));
10183
10184 if (ent.vn_next == 0 && cnt < section->sh_info - 1)
10185 {
10186 warn (_("Corrupt Version Needs structure - offset to next structure is zero with entries still left to be processed\n"));
10187 cnt = section->sh_info;
10188 break;
10189 }
10190 idx += ent.vn_next;
10191 }
10192
10193 if (cnt < section->sh_info)
10194 warn (_("Missing Version Needs information\n"));
10195
10196 free (eneed);
10197 }
10198 break;
10199
10200 case SHT_GNU_versym:
10201 {
10202 Elf_Internal_Shdr * link_section;
10203 size_t total;
10204 unsigned int cnt;
10205 unsigned char * edata;
10206 unsigned short * data;
10207 char * strtab;
10208 Elf_Internal_Sym * symbols;
10209 Elf_Internal_Shdr * string_sec;
10210 unsigned long num_syms;
10211 long off;
10212
10213 if (section->sh_link >= elf_header.e_shnum)
10214 break;
10215
10216 link_section = section_headers + section->sh_link;
10217 total = section->sh_size / sizeof (Elf_External_Versym);
10218
10219 if (link_section->sh_link >= elf_header.e_shnum)
10220 break;
10221
10222 found = 1;
10223
10224 symbols = GET_ELF_SYMBOLS (file, link_section, & num_syms);
10225 if (symbols == NULL)
10226 break;
10227
10228 string_sec = section_headers + link_section->sh_link;
10229
10230 strtab = (char *) get_data (NULL, file, string_sec->sh_offset, 1,
10231 string_sec->sh_size,
10232 _("version string table"));
10233 if (!strtab)
10234 {
10235 free (symbols);
10236 break;
10237 }
10238
10239 printf (_("\nVersion symbols section '%s' contains %lu entries:\n"),
10240 printable_section_name (section), (unsigned long) total);
10241
10242 printf (_(" Addr: "));
10243 printf_vma (section->sh_addr);
10244 printf (_(" Offset: %#08lx Link: %u (%s)\n"),
10245 (unsigned long) section->sh_offset, section->sh_link,
10246 printable_section_name (link_section));
10247
10248 off = offset_from_vma (file,
10249 version_info[DT_VERSIONTAGIDX (DT_VERSYM)],
10250 total * sizeof (short));
10251 edata = (unsigned char *) get_data (NULL, file, off, total,
10252 sizeof (short),
10253 _("version symbol data"));
10254 if (!edata)
10255 {
10256 free (strtab);
10257 free (symbols);
10258 break;
10259 }
10260
10261 data = (short unsigned int *) cmalloc (total, sizeof (short));
10262
10263 for (cnt = total; cnt --;)
10264 data[cnt] = byte_get (edata + cnt * sizeof (short),
10265 sizeof (short));
10266
10267 free (edata);
10268
10269 for (cnt = 0; cnt < total; cnt += 4)
10270 {
10271 int j, nn;
10272 char *name;
10273 char *invalid = _("*invalid*");
10274
10275 printf (" %03x:", cnt);
10276
10277 for (j = 0; (j < 4) && (cnt + j) < total; ++j)
10278 switch (data[cnt + j])
10279 {
10280 case 0:
10281 fputs (_(" 0 (*local*) "), stdout);
10282 break;
10283
10284 case 1:
10285 fputs (_(" 1 (*global*) "), stdout);
10286 break;
10287
10288 default:
10289 nn = printf ("%4x%c", data[cnt + j] & VERSYM_VERSION,
10290 data[cnt + j] & VERSYM_HIDDEN ? 'h' : ' ');
10291
10292 /* If this index value is greater than the size of the symbols
10293 array, break to avoid an out-of-bounds read. */
10294 if ((unsigned long)(cnt + j) >= num_syms)
10295 {
10296 warn (_("invalid index into symbol array\n"));
10297 break;
10298 }
10299
10300 name = NULL;
10301 if (version_info[DT_VERSIONTAGIDX (DT_VERNEED)])
10302 {
10303 Elf_Internal_Verneed ivn;
10304 unsigned long offset;
10305
10306 offset = offset_from_vma
10307 (file, version_info[DT_VERSIONTAGIDX (DT_VERNEED)],
10308 sizeof (Elf_External_Verneed));
10309
10310 do
10311 {
10312 Elf_Internal_Vernaux ivna;
10313 Elf_External_Verneed evn;
10314 Elf_External_Vernaux evna;
10315 unsigned long a_off;
10316
10317 if (get_data (&evn, file, offset, sizeof (evn), 1,
10318 _("version need")) == NULL)
10319 break;
10320
10321 ivn.vn_aux = BYTE_GET (evn.vn_aux);
10322 ivn.vn_next = BYTE_GET (evn.vn_next);
10323
10324 a_off = offset + ivn.vn_aux;
10325
10326 do
10327 {
10328 if (get_data (&evna, file, a_off, sizeof (evna),
10329 1, _("version need aux (2)")) == NULL)
10330 {
10331 ivna.vna_next = 0;
10332 ivna.vna_other = 0;
10333 }
10334 else
10335 {
10336 ivna.vna_next = BYTE_GET (evna.vna_next);
10337 ivna.vna_other = BYTE_GET (evna.vna_other);
10338 }
10339
10340 a_off += ivna.vna_next;
10341 }
10342 while (ivna.vna_other != data[cnt + j]
10343 && ivna.vna_next != 0);
10344
10345 if (ivna.vna_other == data[cnt + j])
10346 {
10347 ivna.vna_name = BYTE_GET (evna.vna_name);
10348
10349 if (ivna.vna_name >= string_sec->sh_size)
10350 name = invalid;
10351 else
10352 name = strtab + ivna.vna_name;
10353 break;
10354 }
10355
10356 offset += ivn.vn_next;
10357 }
10358 while (ivn.vn_next);
10359 }
10360
10361 if (data[cnt + j] != 0x8001
10362 && version_info[DT_VERSIONTAGIDX (DT_VERDEF)])
10363 {
10364 Elf_Internal_Verdef ivd;
10365 Elf_External_Verdef evd;
10366 unsigned long offset;
10367
10368 offset = offset_from_vma
10369 (file, version_info[DT_VERSIONTAGIDX (DT_VERDEF)],
10370 sizeof evd);
10371
10372 do
10373 {
10374 if (get_data (&evd, file, offset, sizeof (evd), 1,
10375 _("version def")) == NULL)
10376 {
10377 ivd.vd_next = 0;
10378 /* PR 17531: file: 046-1082287-0.004. */
10379 ivd.vd_ndx = (data[cnt + j] & VERSYM_VERSION) + 1;
10380 break;
10381 }
10382 else
10383 {
10384 ivd.vd_next = BYTE_GET (evd.vd_next);
10385 ivd.vd_ndx = BYTE_GET (evd.vd_ndx);
10386 }
10387
10388 offset += ivd.vd_next;
10389 }
10390 while (ivd.vd_ndx != (data[cnt + j] & VERSYM_VERSION)
10391 && ivd.vd_next != 0);
10392
10393 if (ivd.vd_ndx == (data[cnt + j] & VERSYM_VERSION))
10394 {
10395 Elf_External_Verdaux evda;
10396 Elf_Internal_Verdaux ivda;
10397
10398 ivd.vd_aux = BYTE_GET (evd.vd_aux);
10399
10400 if (get_data (&evda, file,
10401 offset - ivd.vd_next + ivd.vd_aux,
10402 sizeof (evda), 1,
10403 _("version def aux")) == NULL)
10404 break;
10405
10406 ivda.vda_name = BYTE_GET (evda.vda_name);
10407
10408 if (ivda.vda_name >= string_sec->sh_size)
10409 name = invalid;
10410 else if (name != NULL && name != invalid)
10411 name = _("*both*");
10412 else
10413 name = strtab + ivda.vda_name;
10414 }
10415 }
10416 if (name != NULL)
10417 nn += printf ("(%s%-*s",
10418 name,
10419 12 - (int) strlen (name),
10420 ")");
10421
10422 if (nn < 18)
10423 printf ("%*c", 18 - nn, ' ');
10424 }
10425
10426 putchar ('\n');
10427 }
10428
10429 free (data);
10430 free (strtab);
10431 free (symbols);
10432 }
10433 break;
10434
10435 default:
10436 break;
10437 }
10438 }
10439
10440 if (! found)
10441 printf (_("\nNo version information found in this file.\n"));
10442
10443 return 1;
10444 }
10445
10446 static const char *
10447 get_symbol_binding (unsigned int binding)
10448 {
10449 static char buff[32];
10450
10451 switch (binding)
10452 {
10453 case STB_LOCAL: return "LOCAL";
10454 case STB_GLOBAL: return "GLOBAL";
10455 case STB_WEAK: return "WEAK";
10456 default:
10457 if (binding >= STB_LOPROC && binding <= STB_HIPROC)
10458 snprintf (buff, sizeof (buff), _("<processor specific>: %d"),
10459 binding);
10460 else if (binding >= STB_LOOS && binding <= STB_HIOS)
10461 {
10462 if (binding == STB_GNU_UNIQUE
10463 && (elf_header.e_ident[EI_OSABI] == ELFOSABI_GNU
10464 /* GNU is still using the default value 0. */
10465 || elf_header.e_ident[EI_OSABI] == ELFOSABI_NONE))
10466 return "UNIQUE";
10467 snprintf (buff, sizeof (buff), _("<OS specific>: %d"), binding);
10468 }
10469 else
10470 snprintf (buff, sizeof (buff), _("<unknown>: %d"), binding);
10471 return buff;
10472 }
10473 }
10474
10475 static const char *
10476 get_symbol_type (unsigned int type)
10477 {
10478 static char buff[32];
10479
10480 switch (type)
10481 {
10482 case STT_NOTYPE: return "NOTYPE";
10483 case STT_OBJECT: return "OBJECT";
10484 case STT_FUNC: return "FUNC";
10485 case STT_SECTION: return "SECTION";
10486 case STT_FILE: return "FILE";
10487 case STT_COMMON: return "COMMON";
10488 case STT_TLS: return "TLS";
10489 case STT_RELC: return "RELC";
10490 case STT_SRELC: return "SRELC";
10491 default:
10492 if (type >= STT_LOPROC && type <= STT_HIPROC)
10493 {
10494 if (elf_header.e_machine == EM_ARM && type == STT_ARM_TFUNC)
10495 return "THUMB_FUNC";
10496
10497 if (elf_header.e_machine == EM_SPARCV9 && type == STT_REGISTER)
10498 return "REGISTER";
10499
10500 if (elf_header.e_machine == EM_PARISC && type == STT_PARISC_MILLI)
10501 return "PARISC_MILLI";
10502
10503 snprintf (buff, sizeof (buff), _("<processor specific>: %d"), type);
10504 }
10505 else if (type >= STT_LOOS && type <= STT_HIOS)
10506 {
10507 if (elf_header.e_machine == EM_PARISC)
10508 {
10509 if (type == STT_HP_OPAQUE)
10510 return "HP_OPAQUE";
10511 if (type == STT_HP_STUB)
10512 return "HP_STUB";
10513 }
10514
10515 if (type == STT_GNU_IFUNC
10516 && (elf_header.e_ident[EI_OSABI] == ELFOSABI_GNU
10517 || elf_header.e_ident[EI_OSABI] == ELFOSABI_FREEBSD
10518 /* GNU is still using the default value 0. */
10519 || elf_header.e_ident[EI_OSABI] == ELFOSABI_NONE))
10520 return "IFUNC";
10521
10522 snprintf (buff, sizeof (buff), _("<OS specific>: %d"), type);
10523 }
10524 else
10525 snprintf (buff, sizeof (buff), _("<unknown>: %d"), type);
10526 return buff;
10527 }
10528 }
10529
10530 static const char *
10531 get_symbol_visibility (unsigned int visibility)
10532 {
10533 switch (visibility)
10534 {
10535 case STV_DEFAULT: return "DEFAULT";
10536 case STV_INTERNAL: return "INTERNAL";
10537 case STV_HIDDEN: return "HIDDEN";
10538 case STV_PROTECTED: return "PROTECTED";
10539 default:
10540 error (_("Unrecognized visibility value: %u"), visibility);
10541 return _("<unknown>");
10542 }
10543 }
10544
10545 static const char *
10546 get_solaris_symbol_visibility (unsigned int visibility)
10547 {
10548 switch (visibility)
10549 {
10550 case 4: return "EXPORTED";
10551 case 5: return "SINGLETON";
10552 case 6: return "ELIMINATE";
10553 default: return get_symbol_visibility (visibility);
10554 }
10555 }
10556
10557 static const char *
10558 get_mips_symbol_other (unsigned int other)
10559 {
10560 switch (other)
10561 {
10562 case STO_OPTIONAL:
10563 return "OPTIONAL";
10564 case STO_MIPS_PLT:
10565 return "MIPS PLT";
10566 case STO_MIPS_PIC:
10567 return "MIPS PIC";
10568 case STO_MICROMIPS:
10569 return "MICROMIPS";
10570 case STO_MICROMIPS | STO_MIPS_PIC:
10571 return "MICROMIPS, MIPS PIC";
10572 case STO_MIPS16:
10573 return "MIPS16";
10574 default:
10575 return NULL;
10576 }
10577 }
10578
10579 static const char *
10580 get_ia64_symbol_other (unsigned int other)
10581 {
10582 if (is_ia64_vms ())
10583 {
10584 static char res[32];
10585
10586 res[0] = 0;
10587
10588 /* Function types is for images and .STB files only. */
10589 switch (elf_header.e_type)
10590 {
10591 case ET_DYN:
10592 case ET_EXEC:
10593 switch (VMS_ST_FUNC_TYPE (other))
10594 {
10595 case VMS_SFT_CODE_ADDR:
10596 strcat (res, " CA");
10597 break;
10598 case VMS_SFT_SYMV_IDX:
10599 strcat (res, " VEC");
10600 break;
10601 case VMS_SFT_FD:
10602 strcat (res, " FD");
10603 break;
10604 case VMS_SFT_RESERVE:
10605 strcat (res, " RSV");
10606 break;
10607 default:
10608 warn (_("Unrecognized IA64 VMS ST Function type: %d\n"),
10609 VMS_ST_FUNC_TYPE (other));
10610 strcat (res, " <unknown>");
10611 break;
10612 }
10613 break;
10614 default:
10615 break;
10616 }
10617 switch (VMS_ST_LINKAGE (other))
10618 {
10619 case VMS_STL_IGNORE:
10620 strcat (res, " IGN");
10621 break;
10622 case VMS_STL_RESERVE:
10623 strcat (res, " RSV");
10624 break;
10625 case VMS_STL_STD:
10626 strcat (res, " STD");
10627 break;
10628 case VMS_STL_LNK:
10629 strcat (res, " LNK");
10630 break;
10631 default:
10632 warn (_("Unrecognized IA64 VMS ST Linkage: %d\n"),
10633 VMS_ST_LINKAGE (other));
10634 strcat (res, " <unknown>");
10635 break;
10636 }
10637
10638 if (res[0] != 0)
10639 return res + 1;
10640 else
10641 return res;
10642 }
10643 return NULL;
10644 }
10645
10646 static const char *
10647 get_ppc64_symbol_other (unsigned int other)
10648 {
10649 if (PPC64_LOCAL_ENTRY_OFFSET (other) != 0)
10650 {
10651 static char buf[32];
10652 snprintf (buf, sizeof buf, _("<localentry>: %d"),
10653 PPC64_LOCAL_ENTRY_OFFSET (other));
10654 return buf;
10655 }
10656 return NULL;
10657 }
10658
10659 static const char *
10660 get_symbol_other (unsigned int other)
10661 {
10662 const char * result = NULL;
10663 static char buff [32];
10664
10665 if (other == 0)
10666 return "";
10667
10668 switch (elf_header.e_machine)
10669 {
10670 case EM_MIPS:
10671 result = get_mips_symbol_other (other);
10672 break;
10673 case EM_IA_64:
10674 result = get_ia64_symbol_other (other);
10675 break;
10676 case EM_PPC64:
10677 result = get_ppc64_symbol_other (other);
10678 break;
10679 default:
10680 result = NULL;
10681 break;
10682 }
10683
10684 if (result)
10685 return result;
10686
10687 snprintf (buff, sizeof buff, _("<other>: %x"), other);
10688 return buff;
10689 }
10690
10691 static const char *
10692 get_symbol_index_type (unsigned int type)
10693 {
10694 static char buff[32];
10695
10696 switch (type)
10697 {
10698 case SHN_UNDEF: return "UND";
10699 case SHN_ABS: return "ABS";
10700 case SHN_COMMON: return "COM";
10701 default:
10702 if (type == SHN_IA_64_ANSI_COMMON
10703 && elf_header.e_machine == EM_IA_64
10704 && elf_header.e_ident[EI_OSABI] == ELFOSABI_HPUX)
10705 return "ANSI_COM";
10706 else if ((elf_header.e_machine == EM_X86_64
10707 || elf_header.e_machine == EM_L1OM
10708 || elf_header.e_machine == EM_K1OM)
10709 && type == SHN_X86_64_LCOMMON)
10710 return "LARGE_COM";
10711 else if ((type == SHN_MIPS_SCOMMON
10712 && elf_header.e_machine == EM_MIPS)
10713 || (type == SHN_TIC6X_SCOMMON
10714 && elf_header.e_machine == EM_TI_C6000))
10715 return "SCOM";
10716 else if (type == SHN_MIPS_SUNDEFINED
10717 && elf_header.e_machine == EM_MIPS)
10718 return "SUND";
10719 else if (type >= SHN_LOPROC && type <= SHN_HIPROC)
10720 sprintf (buff, "PRC[0x%04x]", type & 0xffff);
10721 else if (type >= SHN_LOOS && type <= SHN_HIOS)
10722 sprintf (buff, "OS [0x%04x]", type & 0xffff);
10723 else if (type >= SHN_LORESERVE)
10724 sprintf (buff, "RSV[0x%04x]", type & 0xffff);
10725 else if (type >= elf_header.e_shnum)
10726 sprintf (buff, _("bad section index[%3d]"), type);
10727 else
10728 sprintf (buff, "%3d", type);
10729 break;
10730 }
10731
10732 return buff;
10733 }
10734
10735 static bfd_vma *
10736 get_dynamic_data (FILE * file, bfd_size_type number, unsigned int ent_size)
10737 {
10738 unsigned char * e_data;
10739 bfd_vma * i_data;
10740
10741 /* If the size_t type is smaller than the bfd_size_type, eg because
10742 you are building a 32-bit tool on a 64-bit host, then make sure
10743 that when (number) is cast to (size_t) no information is lost. */
10744 if (sizeof (size_t) < sizeof (bfd_size_type)
10745 && (bfd_size_type) ((size_t) number) != number)
10746 {
10747 error (_("Size truncation prevents reading %" BFD_VMA_FMT "u"
10748 " elements of size %u\n"),
10749 number, ent_size);
10750 return NULL;
10751 }
10752
10753 /* Be kind to memory chekers (eg valgrind, address sanitizer) by not
10754 attempting to allocate memory when the read is bound to fail. */
10755 if (ent_size * number > current_file_size)
10756 {
10757 error (_("Invalid number of dynamic entries: %" BFD_VMA_FMT "u\n"),
10758 number);
10759 return NULL;
10760 }
10761
10762 e_data = (unsigned char *) cmalloc ((size_t) number, ent_size);
10763 if (e_data == NULL)
10764 {
10765 error (_("Out of memory reading %" BFD_VMA_FMT "u dynamic entries\n"),
10766 number);
10767 return NULL;
10768 }
10769
10770 if (fread (e_data, ent_size, (size_t) number, file) != number)
10771 {
10772 error (_("Unable to read in %" BFD_VMA_FMT "u bytes of dynamic data\n"),
10773 number * ent_size);
10774 free (e_data);
10775 return NULL;
10776 }
10777
10778 i_data = (bfd_vma *) cmalloc ((size_t) number, sizeof (*i_data));
10779 if (i_data == NULL)
10780 {
10781 error (_("Out of memory allocating space for %" BFD_VMA_FMT "u"
10782 " dynamic entries\n"),
10783 number);
10784 free (e_data);
10785 return NULL;
10786 }
10787
10788 while (number--)
10789 i_data[number] = byte_get (e_data + number * ent_size, ent_size);
10790
10791 free (e_data);
10792
10793 return i_data;
10794 }
10795
10796 static void
10797 print_dynamic_symbol (bfd_vma si, unsigned long hn)
10798 {
10799 Elf_Internal_Sym * psym;
10800 int n;
10801
10802 n = print_vma (si, DEC_5);
10803 if (n < 5)
10804 fputs (&" "[n], stdout);
10805 printf (" %3lu: ", hn);
10806
10807 if (dynamic_symbols == NULL || si >= num_dynamic_syms)
10808 {
10809 printf (_("<No info available for dynamic symbol number %lu>\n"),
10810 (unsigned long) si);
10811 return;
10812 }
10813
10814 psym = dynamic_symbols + si;
10815 print_vma (psym->st_value, LONG_HEX);
10816 putchar (' ');
10817 print_vma (psym->st_size, DEC_5);
10818
10819 printf (" %-7s", get_symbol_type (ELF_ST_TYPE (psym->st_info)));
10820 printf (" %-6s", get_symbol_binding (ELF_ST_BIND (psym->st_info)));
10821
10822 if (elf_header.e_ident[EI_OSABI] == ELFOSABI_SOLARIS)
10823 printf (" %-7s", get_solaris_symbol_visibility (psym->st_other));
10824 else
10825 {
10826 unsigned int vis = ELF_ST_VISIBILITY (psym->st_other);
10827
10828 printf (" %-7s", get_symbol_visibility (vis));
10829 /* Check to see if any other bits in the st_other field are set.
10830 Note - displaying this information disrupts the layout of the
10831 table being generated, but for the moment this case is very
10832 rare. */
10833 if (psym->st_other ^ vis)
10834 printf (" [%s] ", get_symbol_other (psym->st_other ^ vis));
10835 }
10836
10837 printf (" %3.3s ", get_symbol_index_type (psym->st_shndx));
10838 if (VALID_DYNAMIC_NAME (psym->st_name))
10839 print_symbol (25, GET_DYNAMIC_NAME (psym->st_name));
10840 else
10841 printf (_(" <corrupt: %14ld>"), psym->st_name);
10842 putchar ('\n');
10843 }
10844
10845 static const char *
10846 get_symbol_version_string (FILE * file,
10847 bfd_boolean is_dynsym,
10848 const char * strtab,
10849 unsigned long int strtab_size,
10850 unsigned int si,
10851 Elf_Internal_Sym * psym,
10852 enum versioned_symbol_info * sym_info,
10853 unsigned short * vna_other)
10854 {
10855 unsigned char data[2];
10856 unsigned short vers_data;
10857 unsigned long offset;
10858
10859 if (!is_dynsym
10860 || version_info[DT_VERSIONTAGIDX (DT_VERSYM)] == 0)
10861 return NULL;
10862
10863 offset = offset_from_vma (file, version_info[DT_VERSIONTAGIDX (DT_VERSYM)],
10864 sizeof data + si * sizeof (vers_data));
10865
10866 if (get_data (&data, file, offset + si * sizeof (vers_data),
10867 sizeof (data), 1, _("version data")) == NULL)
10868 return NULL;
10869
10870 vers_data = byte_get (data, 2);
10871
10872 if ((vers_data & VERSYM_HIDDEN) == 0 && vers_data <= 1)
10873 return NULL;
10874
10875 /* Usually we'd only see verdef for defined symbols, and verneed for
10876 undefined symbols. However, symbols defined by the linker in
10877 .dynbss for variables copied from a shared library in order to
10878 avoid text relocations are defined yet have verneed. We could
10879 use a heuristic to detect the special case, for example, check
10880 for verneed first on symbols defined in SHT_NOBITS sections, but
10881 it is simpler and more reliable to just look for both verdef and
10882 verneed. .dynbss might not be mapped to a SHT_NOBITS section. */
10883
10884 if (psym->st_shndx != SHN_UNDEF
10885 && vers_data != 0x8001
10886 && version_info[DT_VERSIONTAGIDX (DT_VERDEF)])
10887 {
10888 Elf_Internal_Verdef ivd;
10889 Elf_Internal_Verdaux ivda;
10890 Elf_External_Verdaux evda;
10891 unsigned long off;
10892
10893 off = offset_from_vma (file,
10894 version_info[DT_VERSIONTAGIDX (DT_VERDEF)],
10895 sizeof (Elf_External_Verdef));
10896
10897 do
10898 {
10899 Elf_External_Verdef evd;
10900
10901 if (get_data (&evd, file, off, sizeof (evd), 1,
10902 _("version def")) == NULL)
10903 {
10904 ivd.vd_ndx = 0;
10905 ivd.vd_aux = 0;
10906 ivd.vd_next = 0;
10907 }
10908 else
10909 {
10910 ivd.vd_ndx = BYTE_GET (evd.vd_ndx);
10911 ivd.vd_aux = BYTE_GET (evd.vd_aux);
10912 ivd.vd_next = BYTE_GET (evd.vd_next);
10913 }
10914
10915 off += ivd.vd_next;
10916 }
10917 while (ivd.vd_ndx != (vers_data & VERSYM_VERSION) && ivd.vd_next != 0);
10918
10919 if (ivd.vd_ndx == (vers_data & VERSYM_VERSION))
10920 {
10921 off -= ivd.vd_next;
10922 off += ivd.vd_aux;
10923
10924 if (get_data (&evda, file, off, sizeof (evda), 1,
10925 _("version def aux")) != NULL)
10926 {
10927 ivda.vda_name = BYTE_GET (evda.vda_name);
10928
10929 if (psym->st_name != ivda.vda_name)
10930 {
10931 *sym_info = ((vers_data & VERSYM_HIDDEN) != 0
10932 ? symbol_hidden : symbol_public);
10933 return (ivda.vda_name < strtab_size
10934 ? strtab + ivda.vda_name : _("<corrupt>"));
10935 }
10936 }
10937 }
10938 }
10939
10940 if (version_info[DT_VERSIONTAGIDX (DT_VERNEED)])
10941 {
10942 Elf_External_Verneed evn;
10943 Elf_Internal_Verneed ivn;
10944 Elf_Internal_Vernaux ivna;
10945
10946 offset = offset_from_vma (file,
10947 version_info[DT_VERSIONTAGIDX (DT_VERNEED)],
10948 sizeof evn);
10949 do
10950 {
10951 unsigned long vna_off;
10952
10953 if (get_data (&evn, file, offset, sizeof (evn), 1,
10954 _("version need")) == NULL)
10955 {
10956 ivna.vna_next = 0;
10957 ivna.vna_other = 0;
10958 ivna.vna_name = 0;
10959 break;
10960 }
10961
10962 ivn.vn_aux = BYTE_GET (evn.vn_aux);
10963 ivn.vn_next = BYTE_GET (evn.vn_next);
10964
10965 vna_off = offset + ivn.vn_aux;
10966
10967 do
10968 {
10969 Elf_External_Vernaux evna;
10970
10971 if (get_data (&evna, file, vna_off, sizeof (evna), 1,
10972 _("version need aux (3)")) == NULL)
10973 {
10974 ivna.vna_next = 0;
10975 ivna.vna_other = 0;
10976 ivna.vna_name = 0;
10977 }
10978 else
10979 {
10980 ivna.vna_other = BYTE_GET (evna.vna_other);
10981 ivna.vna_next = BYTE_GET (evna.vna_next);
10982 ivna.vna_name = BYTE_GET (evna.vna_name);
10983 }
10984
10985 vna_off += ivna.vna_next;
10986 }
10987 while (ivna.vna_other != vers_data && ivna.vna_next != 0);
10988
10989 if (ivna.vna_other == vers_data)
10990 break;
10991
10992 offset += ivn.vn_next;
10993 }
10994 while (ivn.vn_next != 0);
10995
10996 if (ivna.vna_other == vers_data)
10997 {
10998 *sym_info = symbol_undefined;
10999 *vna_other = ivna.vna_other;
11000 return (ivna.vna_name < strtab_size
11001 ? strtab + ivna.vna_name : _("<corrupt>"));
11002 }
11003 }
11004 return NULL;
11005 }
11006
11007 /* Dump the symbol table. */
11008 static int
11009 process_symbol_table (FILE * file)
11010 {
11011 Elf_Internal_Shdr * section;
11012 bfd_size_type nbuckets = 0;
11013 bfd_size_type nchains = 0;
11014 bfd_vma * buckets = NULL;
11015 bfd_vma * chains = NULL;
11016 bfd_vma ngnubuckets = 0;
11017 bfd_vma * gnubuckets = NULL;
11018 bfd_vma * gnuchains = NULL;
11019 bfd_vma gnusymidx = 0;
11020 bfd_size_type ngnuchains = 0;
11021
11022 if (!do_syms && !do_dyn_syms && !do_histogram)
11023 return 1;
11024
11025 if (dynamic_info[DT_HASH]
11026 && (do_histogram
11027 || (do_using_dynamic
11028 && !do_dyn_syms
11029 && dynamic_strings != NULL)))
11030 {
11031 unsigned char nb[8];
11032 unsigned char nc[8];
11033 unsigned int hash_ent_size = 4;
11034
11035 if ((elf_header.e_machine == EM_ALPHA
11036 || elf_header.e_machine == EM_S390
11037 || elf_header.e_machine == EM_S390_OLD)
11038 && elf_header.e_ident[EI_CLASS] == ELFCLASS64)
11039 hash_ent_size = 8;
11040
11041 if (fseek (file,
11042 (archive_file_offset
11043 + offset_from_vma (file, dynamic_info[DT_HASH],
11044 sizeof nb + sizeof nc)),
11045 SEEK_SET))
11046 {
11047 error (_("Unable to seek to start of dynamic information\n"));
11048 goto no_hash;
11049 }
11050
11051 if (fread (nb, hash_ent_size, 1, file) != 1)
11052 {
11053 error (_("Failed to read in number of buckets\n"));
11054 goto no_hash;
11055 }
11056
11057 if (fread (nc, hash_ent_size, 1, file) != 1)
11058 {
11059 error (_("Failed to read in number of chains\n"));
11060 goto no_hash;
11061 }
11062
11063 nbuckets = byte_get (nb, hash_ent_size);
11064 nchains = byte_get (nc, hash_ent_size);
11065
11066 buckets = get_dynamic_data (file, nbuckets, hash_ent_size);
11067 chains = get_dynamic_data (file, nchains, hash_ent_size);
11068
11069 no_hash:
11070 if (buckets == NULL || chains == NULL)
11071 {
11072 if (do_using_dynamic)
11073 return 0;
11074 free (buckets);
11075 free (chains);
11076 buckets = NULL;
11077 chains = NULL;
11078 nbuckets = 0;
11079 nchains = 0;
11080 }
11081 }
11082
11083 if (dynamic_info_DT_GNU_HASH
11084 && (do_histogram
11085 || (do_using_dynamic
11086 && !do_dyn_syms
11087 && dynamic_strings != NULL)))
11088 {
11089 unsigned char nb[16];
11090 bfd_vma i, maxchain = 0xffffffff, bitmaskwords;
11091 bfd_vma buckets_vma;
11092
11093 if (fseek (file,
11094 (archive_file_offset
11095 + offset_from_vma (file, dynamic_info_DT_GNU_HASH,
11096 sizeof nb)),
11097 SEEK_SET))
11098 {
11099 error (_("Unable to seek to start of dynamic information\n"));
11100 goto no_gnu_hash;
11101 }
11102
11103 if (fread (nb, 16, 1, file) != 1)
11104 {
11105 error (_("Failed to read in number of buckets\n"));
11106 goto no_gnu_hash;
11107 }
11108
11109 ngnubuckets = byte_get (nb, 4);
11110 gnusymidx = byte_get (nb + 4, 4);
11111 bitmaskwords = byte_get (nb + 8, 4);
11112 buckets_vma = dynamic_info_DT_GNU_HASH + 16;
11113 if (is_32bit_elf)
11114 buckets_vma += bitmaskwords * 4;
11115 else
11116 buckets_vma += bitmaskwords * 8;
11117
11118 if (fseek (file,
11119 (archive_file_offset
11120 + offset_from_vma (file, buckets_vma, 4)),
11121 SEEK_SET))
11122 {
11123 error (_("Unable to seek to start of dynamic information\n"));
11124 goto no_gnu_hash;
11125 }
11126
11127 gnubuckets = get_dynamic_data (file, ngnubuckets, 4);
11128
11129 if (gnubuckets == NULL)
11130 goto no_gnu_hash;
11131
11132 for (i = 0; i < ngnubuckets; i++)
11133 if (gnubuckets[i] != 0)
11134 {
11135 if (gnubuckets[i] < gnusymidx)
11136 return 0;
11137
11138 if (maxchain == 0xffffffff || gnubuckets[i] > maxchain)
11139 maxchain = gnubuckets[i];
11140 }
11141
11142 if (maxchain == 0xffffffff)
11143 goto no_gnu_hash;
11144
11145 maxchain -= gnusymidx;
11146
11147 if (fseek (file,
11148 (archive_file_offset
11149 + offset_from_vma (file, buckets_vma
11150 + 4 * (ngnubuckets + maxchain), 4)),
11151 SEEK_SET))
11152 {
11153 error (_("Unable to seek to start of dynamic information\n"));
11154 goto no_gnu_hash;
11155 }
11156
11157 do
11158 {
11159 if (fread (nb, 4, 1, file) != 1)
11160 {
11161 error (_("Failed to determine last chain length\n"));
11162 goto no_gnu_hash;
11163 }
11164
11165 if (maxchain + 1 == 0)
11166 goto no_gnu_hash;
11167
11168 ++maxchain;
11169 }
11170 while ((byte_get (nb, 4) & 1) == 0);
11171
11172 if (fseek (file,
11173 (archive_file_offset
11174 + offset_from_vma (file, buckets_vma + 4 * ngnubuckets, 4)),
11175 SEEK_SET))
11176 {
11177 error (_("Unable to seek to start of dynamic information\n"));
11178 goto no_gnu_hash;
11179 }
11180
11181 gnuchains = get_dynamic_data (file, maxchain, 4);
11182 ngnuchains = maxchain;
11183
11184 no_gnu_hash:
11185 if (gnuchains == NULL)
11186 {
11187 free (gnubuckets);
11188 gnubuckets = NULL;
11189 ngnubuckets = 0;
11190 if (do_using_dynamic)
11191 return 0;
11192 }
11193 }
11194
11195 if ((dynamic_info[DT_HASH] || dynamic_info_DT_GNU_HASH)
11196 && do_syms
11197 && do_using_dynamic
11198 && dynamic_strings != NULL
11199 && dynamic_symbols != NULL)
11200 {
11201 unsigned long hn;
11202
11203 if (dynamic_info[DT_HASH])
11204 {
11205 bfd_vma si;
11206
11207 printf (_("\nSymbol table for image:\n"));
11208 if (is_32bit_elf)
11209 printf (_(" Num Buc: Value Size Type Bind Vis Ndx Name\n"));
11210 else
11211 printf (_(" Num Buc: Value Size Type Bind Vis Ndx Name\n"));
11212
11213 for (hn = 0; hn < nbuckets; hn++)
11214 {
11215 if (! buckets[hn])
11216 continue;
11217
11218 for (si = buckets[hn]; si < nchains && si > 0; si = chains[si])
11219 print_dynamic_symbol (si, hn);
11220 }
11221 }
11222
11223 if (dynamic_info_DT_GNU_HASH)
11224 {
11225 printf (_("\nSymbol table of `.gnu.hash' for image:\n"));
11226 if (is_32bit_elf)
11227 printf (_(" Num Buc: Value Size Type Bind Vis Ndx Name\n"));
11228 else
11229 printf (_(" Num Buc: Value Size Type Bind Vis Ndx Name\n"));
11230
11231 for (hn = 0; hn < ngnubuckets; ++hn)
11232 if (gnubuckets[hn] != 0)
11233 {
11234 bfd_vma si = gnubuckets[hn];
11235 bfd_vma off = si - gnusymidx;
11236
11237 do
11238 {
11239 print_dynamic_symbol (si, hn);
11240 si++;
11241 }
11242 while (off < ngnuchains && (gnuchains[off++] & 1) == 0);
11243 }
11244 }
11245 }
11246 else if ((do_dyn_syms || (do_syms && !do_using_dynamic))
11247 && section_headers != NULL)
11248 {
11249 unsigned int i;
11250
11251 for (i = 0, section = section_headers;
11252 i < elf_header.e_shnum;
11253 i++, section++)
11254 {
11255 unsigned int si;
11256 char * strtab = NULL;
11257 unsigned long int strtab_size = 0;
11258 Elf_Internal_Sym * symtab;
11259 Elf_Internal_Sym * psym;
11260 unsigned long num_syms;
11261
11262 if ((section->sh_type != SHT_SYMTAB
11263 && section->sh_type != SHT_DYNSYM)
11264 || (!do_syms
11265 && section->sh_type == SHT_SYMTAB))
11266 continue;
11267
11268 if (section->sh_entsize == 0)
11269 {
11270 printf (_("\nSymbol table '%s' has a sh_entsize of zero!\n"),
11271 printable_section_name (section));
11272 continue;
11273 }
11274
11275 printf (_("\nSymbol table '%s' contains %lu entries:\n"),
11276 printable_section_name (section),
11277 (unsigned long) (section->sh_size / section->sh_entsize));
11278
11279 if (is_32bit_elf)
11280 printf (_(" Num: Value Size Type Bind Vis Ndx Name\n"));
11281 else
11282 printf (_(" Num: Value Size Type Bind Vis Ndx Name\n"));
11283
11284 symtab = GET_ELF_SYMBOLS (file, section, & num_syms);
11285 if (symtab == NULL)
11286 continue;
11287
11288 if (section->sh_link == elf_header.e_shstrndx)
11289 {
11290 strtab = string_table;
11291 strtab_size = string_table_length;
11292 }
11293 else if (section->sh_link < elf_header.e_shnum)
11294 {
11295 Elf_Internal_Shdr * string_sec;
11296
11297 string_sec = section_headers + section->sh_link;
11298
11299 strtab = (char *) get_data (NULL, file, string_sec->sh_offset,
11300 1, string_sec->sh_size,
11301 _("string table"));
11302 strtab_size = strtab != NULL ? string_sec->sh_size : 0;
11303 }
11304
11305 for (si = 0, psym = symtab; si < num_syms; si++, psym++)
11306 {
11307 const char *version_string;
11308 enum versioned_symbol_info sym_info;
11309 unsigned short vna_other;
11310
11311 printf ("%6d: ", si);
11312 print_vma (psym->st_value, LONG_HEX);
11313 putchar (' ');
11314 print_vma (psym->st_size, DEC_5);
11315 printf (" %-7s", get_symbol_type (ELF_ST_TYPE (psym->st_info)));
11316 printf (" %-6s", get_symbol_binding (ELF_ST_BIND (psym->st_info)));
11317 if (elf_header.e_ident[EI_OSABI] == ELFOSABI_SOLARIS)
11318 printf (" %-7s", get_solaris_symbol_visibility (psym->st_other));
11319 else
11320 {
11321 unsigned int vis = ELF_ST_VISIBILITY (psym->st_other);
11322
11323 printf (" %-7s", get_symbol_visibility (vis));
11324 /* Check to see if any other bits in the st_other field are set.
11325 Note - displaying this information disrupts the layout of the
11326 table being generated, but for the moment this case is very rare. */
11327 if (psym->st_other ^ vis)
11328 printf (" [%s] ", get_symbol_other (psym->st_other ^ vis));
11329 }
11330 printf (" %4s ", get_symbol_index_type (psym->st_shndx));
11331 print_symbol (25, psym->st_name < strtab_size
11332 ? strtab + psym->st_name : _("<corrupt>"));
11333
11334 version_string
11335 = get_symbol_version_string (file,
11336 section->sh_type == SHT_DYNSYM,
11337 strtab, strtab_size, si,
11338 psym, &sym_info, &vna_other);
11339 if (version_string)
11340 {
11341 if (sym_info == symbol_undefined)
11342 printf ("@%s (%d)", version_string, vna_other);
11343 else
11344 printf (sym_info == symbol_hidden ? "@%s" : "@@%s",
11345 version_string);
11346 }
11347
11348 putchar ('\n');
11349
11350 if (ELF_ST_BIND (psym->st_info) == STB_LOCAL
11351 && si >= section->sh_info
11352 /* Irix 5 and 6 MIPS binaries are known to ignore this requirement. */
11353 && elf_header.e_machine != EM_MIPS
11354 /* Solaris binaries have been found to violate this requirement as
11355 well. Not sure if this is a bug or an ABI requirement. */
11356 && elf_header.e_ident[EI_OSABI] != ELFOSABI_SOLARIS)
11357 warn (_("local symbol %u found at index >= %s's sh_info value of %u\n"),
11358 si, printable_section_name (section), section->sh_info);
11359 }
11360
11361 free (symtab);
11362 if (strtab != string_table)
11363 free (strtab);
11364 }
11365 }
11366 else if (do_syms)
11367 printf
11368 (_("\nDynamic symbol information is not available for displaying symbols.\n"));
11369
11370 if (do_histogram && buckets != NULL)
11371 {
11372 unsigned long * lengths;
11373 unsigned long * counts;
11374 unsigned long hn;
11375 bfd_vma si;
11376 unsigned long maxlength = 0;
11377 unsigned long nzero_counts = 0;
11378 unsigned long nsyms = 0;
11379 unsigned long chained;
11380
11381 printf (_("\nHistogram for bucket list length (total of %lu buckets):\n"),
11382 (unsigned long) nbuckets);
11383
11384 lengths = (unsigned long *) calloc (nbuckets, sizeof (*lengths));
11385 if (lengths == NULL)
11386 {
11387 error (_("Out of memory allocating space for histogram buckets\n"));
11388 return 0;
11389 }
11390
11391 printf (_(" Length Number %% of total Coverage\n"));
11392 for (hn = 0; hn < nbuckets; ++hn)
11393 {
11394 for (si = buckets[hn], chained = 0;
11395 si > 0 && si < nchains && si < nbuckets && chained <= nchains;
11396 si = chains[si], ++chained)
11397 {
11398 ++nsyms;
11399 if (maxlength < ++lengths[hn])
11400 ++maxlength;
11401 }
11402
11403 /* PR binutils/17531: A corrupt binary could contain broken
11404 histogram data. Do not go into an infinite loop trying
11405 to process it. */
11406 if (chained > nchains)
11407 {
11408 error (_("histogram chain is corrupt\n"));
11409 break;
11410 }
11411 }
11412
11413 counts = (unsigned long *) calloc (maxlength + 1, sizeof (*counts));
11414 if (counts == NULL)
11415 {
11416 free (lengths);
11417 error (_("Out of memory allocating space for histogram counts\n"));
11418 return 0;
11419 }
11420
11421 for (hn = 0; hn < nbuckets; ++hn)
11422 ++counts[lengths[hn]];
11423
11424 if (nbuckets > 0)
11425 {
11426 unsigned long i;
11427 printf (" 0 %-10lu (%5.1f%%)\n",
11428 counts[0], (counts[0] * 100.0) / nbuckets);
11429 for (i = 1; i <= maxlength; ++i)
11430 {
11431 nzero_counts += counts[i] * i;
11432 printf ("%7lu %-10lu (%5.1f%%) %5.1f%%\n",
11433 i, counts[i], (counts[i] * 100.0) / nbuckets,
11434 (nzero_counts * 100.0) / nsyms);
11435 }
11436 }
11437
11438 free (counts);
11439 free (lengths);
11440 }
11441
11442 if (buckets != NULL)
11443 {
11444 free (buckets);
11445 free (chains);
11446 }
11447
11448 if (do_histogram && gnubuckets != NULL)
11449 {
11450 unsigned long * lengths;
11451 unsigned long * counts;
11452 unsigned long hn;
11453 unsigned long maxlength = 0;
11454 unsigned long nzero_counts = 0;
11455 unsigned long nsyms = 0;
11456
11457 printf (_("\nHistogram for `.gnu.hash' bucket list length (total of %lu buckets):\n"),
11458 (unsigned long) ngnubuckets);
11459
11460 lengths = (unsigned long *) calloc (ngnubuckets, sizeof (*lengths));
11461 if (lengths == NULL)
11462 {
11463 error (_("Out of memory allocating space for gnu histogram buckets\n"));
11464 return 0;
11465 }
11466
11467 printf (_(" Length Number %% of total Coverage\n"));
11468
11469 for (hn = 0; hn < ngnubuckets; ++hn)
11470 if (gnubuckets[hn] != 0)
11471 {
11472 bfd_vma off, length = 1;
11473
11474 for (off = gnubuckets[hn] - gnusymidx;
11475 /* PR 17531 file: 010-77222-0.004. */
11476 off < ngnuchains && (gnuchains[off] & 1) == 0;
11477 ++off)
11478 ++length;
11479 lengths[hn] = length;
11480 if (length > maxlength)
11481 maxlength = length;
11482 nsyms += length;
11483 }
11484
11485 counts = (unsigned long *) calloc (maxlength + 1, sizeof (*counts));
11486 if (counts == NULL)
11487 {
11488 free (lengths);
11489 error (_("Out of memory allocating space for gnu histogram counts\n"));
11490 return 0;
11491 }
11492
11493 for (hn = 0; hn < ngnubuckets; ++hn)
11494 ++counts[lengths[hn]];
11495
11496 if (ngnubuckets > 0)
11497 {
11498 unsigned long j;
11499 printf (" 0 %-10lu (%5.1f%%)\n",
11500 counts[0], (counts[0] * 100.0) / ngnubuckets);
11501 for (j = 1; j <= maxlength; ++j)
11502 {
11503 nzero_counts += counts[j] * j;
11504 printf ("%7lu %-10lu (%5.1f%%) %5.1f%%\n",
11505 j, counts[j], (counts[j] * 100.0) / ngnubuckets,
11506 (nzero_counts * 100.0) / nsyms);
11507 }
11508 }
11509
11510 free (counts);
11511 free (lengths);
11512 free (gnubuckets);
11513 free (gnuchains);
11514 }
11515
11516 return 1;
11517 }
11518
11519 static int
11520 process_syminfo (FILE * file ATTRIBUTE_UNUSED)
11521 {
11522 unsigned int i;
11523
11524 if (dynamic_syminfo == NULL
11525 || !do_dynamic)
11526 /* No syminfo, this is ok. */
11527 return 1;
11528
11529 /* There better should be a dynamic symbol section. */
11530 if (dynamic_symbols == NULL || dynamic_strings == NULL)
11531 return 0;
11532
11533 if (dynamic_addr)
11534 printf (_("\nDynamic info segment at offset 0x%lx contains %d entries:\n"),
11535 dynamic_syminfo_offset, dynamic_syminfo_nent);
11536
11537 printf (_(" Num: Name BoundTo Flags\n"));
11538 for (i = 0; i < dynamic_syminfo_nent; ++i)
11539 {
11540 unsigned short int flags = dynamic_syminfo[i].si_flags;
11541
11542 printf ("%4d: ", i);
11543 if (i >= num_dynamic_syms)
11544 printf (_("<corrupt index>"));
11545 else if (VALID_DYNAMIC_NAME (dynamic_symbols[i].st_name))
11546 print_symbol (30, GET_DYNAMIC_NAME (dynamic_symbols[i].st_name));
11547 else
11548 printf (_("<corrupt: %19ld>"), dynamic_symbols[i].st_name);
11549 putchar (' ');
11550
11551 switch (dynamic_syminfo[i].si_boundto)
11552 {
11553 case SYMINFO_BT_SELF:
11554 fputs ("SELF ", stdout);
11555 break;
11556 case SYMINFO_BT_PARENT:
11557 fputs ("PARENT ", stdout);
11558 break;
11559 default:
11560 if (dynamic_syminfo[i].si_boundto > 0
11561 && dynamic_syminfo[i].si_boundto < dynamic_nent
11562 && VALID_DYNAMIC_NAME (dynamic_section[dynamic_syminfo[i].si_boundto].d_un.d_val))
11563 {
11564 print_symbol (10, GET_DYNAMIC_NAME (dynamic_section[dynamic_syminfo[i].si_boundto].d_un.d_val));
11565 putchar (' ' );
11566 }
11567 else
11568 printf ("%-10d ", dynamic_syminfo[i].si_boundto);
11569 break;
11570 }
11571
11572 if (flags & SYMINFO_FLG_DIRECT)
11573 printf (" DIRECT");
11574 if (flags & SYMINFO_FLG_PASSTHRU)
11575 printf (" PASSTHRU");
11576 if (flags & SYMINFO_FLG_COPY)
11577 printf (" COPY");
11578 if (flags & SYMINFO_FLG_LAZYLOAD)
11579 printf (" LAZYLOAD");
11580
11581 puts ("");
11582 }
11583
11584 return 1;
11585 }
11586
11587 /* Check to see if the given reloc needs to be handled in a target specific
11588 manner. If so then process the reloc and return TRUE otherwise return
11589 FALSE.
11590
11591 If called with reloc == NULL, then this is a signal that reloc processing
11592 for the current section has finished, and any saved state should be
11593 discarded. */
11594
11595 static bfd_boolean
11596 target_specific_reloc_handling (Elf_Internal_Rela * reloc,
11597 unsigned char * start,
11598 unsigned char * end,
11599 Elf_Internal_Sym * symtab,
11600 unsigned long num_syms)
11601 {
11602 unsigned int reloc_type = 0;
11603 unsigned long sym_index = 0;
11604
11605 if (reloc)
11606 {
11607 reloc_type = get_reloc_type (reloc->r_info);
11608 sym_index = get_reloc_symindex (reloc->r_info);
11609 }
11610
11611 switch (elf_header.e_machine)
11612 {
11613 case EM_MSP430:
11614 case EM_MSP430_OLD:
11615 {
11616 static Elf_Internal_Sym * saved_sym = NULL;
11617
11618 if (reloc == NULL)
11619 {
11620 saved_sym = NULL;
11621 return TRUE;
11622 }
11623
11624 switch (reloc_type)
11625 {
11626 case 10: /* R_MSP430_SYM_DIFF */
11627 if (uses_msp430x_relocs ())
11628 break;
11629 /* Fall through. */
11630 case 21: /* R_MSP430X_SYM_DIFF */
11631 /* PR 21139. */
11632 if (sym_index >= num_syms)
11633 error (_("MSP430 SYM_DIFF reloc contains invalid symbol index %lu\n"),
11634 sym_index);
11635 else
11636 saved_sym = symtab + sym_index;
11637 return TRUE;
11638
11639 case 1: /* R_MSP430_32 or R_MSP430_ABS32 */
11640 case 3: /* R_MSP430_16 or R_MSP430_ABS8 */
11641 goto handle_sym_diff;
11642
11643 case 5: /* R_MSP430_16_BYTE */
11644 case 9: /* R_MSP430_8 */
11645 if (uses_msp430x_relocs ())
11646 break;
11647 goto handle_sym_diff;
11648
11649 case 2: /* R_MSP430_ABS16 */
11650 case 15: /* R_MSP430X_ABS16 */
11651 if (! uses_msp430x_relocs ())
11652 break;
11653 goto handle_sym_diff;
11654
11655 handle_sym_diff:
11656 if (saved_sym != NULL)
11657 {
11658 int reloc_size = reloc_type == 1 ? 4 : 2;
11659 bfd_vma value;
11660
11661 if (sym_index >= num_syms)
11662 error (_("MSP430 reloc contains invalid symbol index %lu\n"),
11663 sym_index);
11664 else
11665 {
11666 value = reloc->r_addend + (symtab[sym_index].st_value
11667 - saved_sym->st_value);
11668
11669 if (start + reloc->r_offset + reloc_size >= end)
11670 /* PR 21137 */
11671 error (_("MSP430 sym diff reloc writes past end of section (%p vs %p)\n"),
11672 start + reloc->r_offset + reloc_size, end);
11673 else
11674 byte_put (start + reloc->r_offset, value, reloc_size);
11675 }
11676
11677 saved_sym = NULL;
11678 return TRUE;
11679 }
11680 break;
11681
11682 default:
11683 if (saved_sym != NULL)
11684 error (_("Unhandled MSP430 reloc type found after SYM_DIFF reloc\n"));
11685 break;
11686 }
11687 break;
11688 }
11689
11690 case EM_MN10300:
11691 case EM_CYGNUS_MN10300:
11692 {
11693 static Elf_Internal_Sym * saved_sym = NULL;
11694
11695 if (reloc == NULL)
11696 {
11697 saved_sym = NULL;
11698 return TRUE;
11699 }
11700
11701 switch (reloc_type)
11702 {
11703 case 34: /* R_MN10300_ALIGN */
11704 return TRUE;
11705 case 33: /* R_MN10300_SYM_DIFF */
11706 if (sym_index >= num_syms)
11707 error (_("MN10300_SYM_DIFF reloc contains invalid symbol index %lu\n"),
11708 sym_index);
11709 else
11710 saved_sym = symtab + sym_index;
11711 return TRUE;
11712
11713 case 1: /* R_MN10300_32 */
11714 case 2: /* R_MN10300_16 */
11715 if (saved_sym != NULL)
11716 {
11717 int reloc_size = reloc_type == 1 ? 4 : 2;
11718 bfd_vma value;
11719
11720 if (sym_index >= num_syms)
11721 error (_("MN10300 reloc contains invalid symbol index %lu\n"),
11722 sym_index);
11723 else
11724 {
11725 value = reloc->r_addend + (symtab[sym_index].st_value
11726 - saved_sym->st_value);
11727
11728 if (start + reloc->r_offset + reloc_size >= end)
11729 error (_("MN10300 sym diff reloc writes past end of section (%p vs %p)\n"),
11730 start + reloc->r_offset + reloc_size, end);
11731 else
11732 byte_put (start + reloc->r_offset, value, reloc_size);
11733 }
11734
11735 saved_sym = NULL;
11736 return TRUE;
11737 }
11738 break;
11739 default:
11740 if (saved_sym != NULL)
11741 error (_("Unhandled MN10300 reloc type found after SYM_DIFF reloc\n"));
11742 break;
11743 }
11744 break;
11745 }
11746
11747 case EM_RL78:
11748 {
11749 static bfd_vma saved_sym1 = 0;
11750 static bfd_vma saved_sym2 = 0;
11751 static bfd_vma value;
11752
11753 if (reloc == NULL)
11754 {
11755 saved_sym1 = saved_sym2 = 0;
11756 return TRUE;
11757 }
11758
11759 switch (reloc_type)
11760 {
11761 case 0x80: /* R_RL78_SYM. */
11762 saved_sym1 = saved_sym2;
11763 if (sym_index >= num_syms)
11764 error (_("RL78_SYM reloc contains invalid symbol index %lu\n"),
11765 sym_index);
11766 else
11767 {
11768 saved_sym2 = symtab[sym_index].st_value;
11769 saved_sym2 += reloc->r_addend;
11770 }
11771 return TRUE;
11772
11773 case 0x83: /* R_RL78_OPsub. */
11774 value = saved_sym1 - saved_sym2;
11775 saved_sym2 = saved_sym1 = 0;
11776 return TRUE;
11777 break;
11778
11779 case 0x41: /* R_RL78_ABS32. */
11780 if (start + reloc->r_offset + 4 >= end)
11781 error (_("RL78 sym diff reloc writes past end of section (%p vs %p)\n"),
11782 start + reloc->r_offset + 2, end);
11783 else
11784 byte_put (start + reloc->r_offset, value, 4);
11785 value = 0;
11786 return TRUE;
11787
11788 case 0x43: /* R_RL78_ABS16. */
11789 if (start + reloc->r_offset + 2 >= end)
11790 error (_("RL78 sym diff reloc writes past end of section (%p vs %p)\n"),
11791 start + reloc->r_offset + 2, end);
11792 else
11793 byte_put (start + reloc->r_offset, value, 2);
11794 value = 0;
11795 return TRUE;
11796
11797 default:
11798 break;
11799 }
11800 break;
11801 }
11802 }
11803
11804 return FALSE;
11805 }
11806
11807 /* Returns TRUE iff RELOC_TYPE is a 32-bit absolute RELA relocation used in
11808 DWARF debug sections. This is a target specific test. Note - we do not
11809 go through the whole including-target-headers-multiple-times route, (as
11810 we have already done with <elf/h8.h>) because this would become very
11811 messy and even then this function would have to contain target specific
11812 information (the names of the relocs instead of their numeric values).
11813 FIXME: This is not the correct way to solve this problem. The proper way
11814 is to have target specific reloc sizing and typing functions created by
11815 the reloc-macros.h header, in the same way that it already creates the
11816 reloc naming functions. */
11817
11818 static bfd_boolean
11819 is_32bit_abs_reloc (unsigned int reloc_type)
11820 {
11821 /* Please keep this table alpha-sorted for ease of visual lookup. */
11822 switch (elf_header.e_machine)
11823 {
11824 case EM_386:
11825 case EM_IAMCU:
11826 return reloc_type == 1; /* R_386_32. */
11827 case EM_68K:
11828 return reloc_type == 1; /* R_68K_32. */
11829 case EM_860:
11830 return reloc_type == 1; /* R_860_32. */
11831 case EM_960:
11832 return reloc_type == 2; /* R_960_32. */
11833 case EM_AARCH64:
11834 return (reloc_type == 258
11835 || reloc_type == 1); /* R_AARCH64_ABS32 || R_AARCH64_P32_ABS32 */
11836 case EM_ADAPTEVA_EPIPHANY:
11837 return reloc_type == 3;
11838 case EM_ALPHA:
11839 return reloc_type == 1; /* R_ALPHA_REFLONG. */
11840 case EM_ARC:
11841 return reloc_type == 1; /* R_ARC_32. */
11842 case EM_ARC_COMPACT:
11843 case EM_ARC_COMPACT2:
11844 return reloc_type == 4; /* R_ARC_32. */
11845 case EM_ARM:
11846 return reloc_type == 2; /* R_ARM_ABS32 */
11847 case EM_AVR_OLD:
11848 case EM_AVR:
11849 return reloc_type == 1;
11850 case EM_BLACKFIN:
11851 return reloc_type == 0x12; /* R_byte4_data. */
11852 case EM_CRIS:
11853 return reloc_type == 3; /* R_CRIS_32. */
11854 case EM_CR16:
11855 return reloc_type == 3; /* R_CR16_NUM32. */
11856 case EM_CRX:
11857 return reloc_type == 15; /* R_CRX_NUM32. */
11858 case EM_CYGNUS_FRV:
11859 return reloc_type == 1;
11860 case EM_CYGNUS_D10V:
11861 case EM_D10V:
11862 return reloc_type == 6; /* R_D10V_32. */
11863 case EM_CYGNUS_D30V:
11864 case EM_D30V:
11865 return reloc_type == 12; /* R_D30V_32_NORMAL. */
11866 case EM_DLX:
11867 return reloc_type == 3; /* R_DLX_RELOC_32. */
11868 case EM_CYGNUS_FR30:
11869 case EM_FR30:
11870 return reloc_type == 3; /* R_FR30_32. */
11871 case EM_FT32:
11872 return reloc_type == 1; /* R_FT32_32. */
11873 case EM_H8S:
11874 case EM_H8_300:
11875 case EM_H8_300H:
11876 return reloc_type == 1; /* R_H8_DIR32. */
11877 case EM_IA_64:
11878 return reloc_type == 0x65 /* R_IA64_SECREL32LSB. */
11879 || reloc_type == 0x25; /* R_IA64_DIR32LSB. */
11880 case EM_IP2K_OLD:
11881 case EM_IP2K:
11882 return reloc_type == 2; /* R_IP2K_32. */
11883 case EM_IQ2000:
11884 return reloc_type == 2; /* R_IQ2000_32. */
11885 case EM_LATTICEMICO32:
11886 return reloc_type == 3; /* R_LM32_32. */
11887 case EM_M32C_OLD:
11888 case EM_M32C:
11889 return reloc_type == 3; /* R_M32C_32. */
11890 case EM_M32R:
11891 return reloc_type == 34; /* R_M32R_32_RELA. */
11892 case EM_68HC11:
11893 case EM_68HC12:
11894 return reloc_type == 6; /* R_M68HC11_32. */
11895 case EM_MCORE:
11896 return reloc_type == 1; /* R_MCORE_ADDR32. */
11897 case EM_CYGNUS_MEP:
11898 return reloc_type == 4; /* R_MEP_32. */
11899 case EM_METAG:
11900 return reloc_type == 2; /* R_METAG_ADDR32. */
11901 case EM_MICROBLAZE:
11902 return reloc_type == 1; /* R_MICROBLAZE_32. */
11903 case EM_MIPS:
11904 return reloc_type == 2; /* R_MIPS_32. */
11905 case EM_MMIX:
11906 return reloc_type == 4; /* R_MMIX_32. */
11907 case EM_CYGNUS_MN10200:
11908 case EM_MN10200:
11909 return reloc_type == 1; /* R_MN10200_32. */
11910 case EM_CYGNUS_MN10300:
11911 case EM_MN10300:
11912 return reloc_type == 1; /* R_MN10300_32. */
11913 case EM_MOXIE:
11914 return reloc_type == 1; /* R_MOXIE_32. */
11915 case EM_MSP430_OLD:
11916 case EM_MSP430:
11917 return reloc_type == 1; /* R_MSP430_32 or R_MSP320_ABS32. */
11918 case EM_MT:
11919 return reloc_type == 2; /* R_MT_32. */
11920 case EM_NDS32:
11921 return reloc_type == 20; /* R_NDS32_RELA. */
11922 case EM_ALTERA_NIOS2:
11923 return reloc_type == 12; /* R_NIOS2_BFD_RELOC_32. */
11924 case EM_NIOS32:
11925 return reloc_type == 1; /* R_NIOS_32. */
11926 case EM_OR1K:
11927 return reloc_type == 1; /* R_OR1K_32. */
11928 case EM_PARISC:
11929 return (reloc_type == 1 /* R_PARISC_DIR32. */
11930 || reloc_type == 41); /* R_PARISC_SECREL32. */
11931 case EM_PJ:
11932 case EM_PJ_OLD:
11933 return reloc_type == 1; /* R_PJ_DATA_DIR32. */
11934 case EM_PPC64:
11935 return reloc_type == 1; /* R_PPC64_ADDR32. */
11936 case EM_PPC:
11937 return reloc_type == 1; /* R_PPC_ADDR32. */
11938 case EM_TI_PRU:
11939 return reloc_type == 11; /* R_PRU_BFD_RELOC_32. */
11940 case EM_RISCV:
11941 return reloc_type == 1; /* R_RISCV_32. */
11942 case EM_RL78:
11943 return reloc_type == 1; /* R_RL78_DIR32. */
11944 case EM_RX:
11945 return reloc_type == 1; /* R_RX_DIR32. */
11946 case EM_S370:
11947 return reloc_type == 1; /* R_I370_ADDR31. */
11948 case EM_S390_OLD:
11949 case EM_S390:
11950 return reloc_type == 4; /* R_S390_32. */
11951 case EM_SCORE:
11952 return reloc_type == 8; /* R_SCORE_ABS32. */
11953 case EM_SH:
11954 return reloc_type == 1; /* R_SH_DIR32. */
11955 case EM_SPARC32PLUS:
11956 case EM_SPARCV9:
11957 case EM_SPARC:
11958 return reloc_type == 3 /* R_SPARC_32. */
11959 || reloc_type == 23; /* R_SPARC_UA32. */
11960 case EM_SPU:
11961 return reloc_type == 6; /* R_SPU_ADDR32 */
11962 case EM_TI_C6000:
11963 return reloc_type == 1; /* R_C6000_ABS32. */
11964 case EM_TILEGX:
11965 return reloc_type == 2; /* R_TILEGX_32. */
11966 case EM_TILEPRO:
11967 return reloc_type == 1; /* R_TILEPRO_32. */
11968 case EM_CYGNUS_V850:
11969 case EM_V850:
11970 return reloc_type == 6; /* R_V850_ABS32. */
11971 case EM_V800:
11972 return reloc_type == 0x33; /* R_V810_WORD. */
11973 case EM_VAX:
11974 return reloc_type == 1; /* R_VAX_32. */
11975 case EM_VISIUM:
11976 return reloc_type == 3; /* R_VISIUM_32. */
11977 case EM_X86_64:
11978 case EM_L1OM:
11979 case EM_K1OM:
11980 return reloc_type == 10; /* R_X86_64_32. */
11981 case EM_XC16X:
11982 case EM_C166:
11983 return reloc_type == 3; /* R_XC16C_ABS_32. */
11984 case EM_XGATE:
11985 return reloc_type == 4; /* R_XGATE_32. */
11986 case EM_XSTORMY16:
11987 return reloc_type == 1; /* R_XSTROMY16_32. */
11988 case EM_XTENSA_OLD:
11989 case EM_XTENSA:
11990 return reloc_type == 1; /* R_XTENSA_32. */
11991 default:
11992 {
11993 static unsigned int prev_warn = 0;
11994
11995 /* Avoid repeating the same warning multiple times. */
11996 if (prev_warn != elf_header.e_machine)
11997 error (_("Missing knowledge of 32-bit reloc types used in DWARF sections of machine number %d\n"),
11998 elf_header.e_machine);
11999 prev_warn = elf_header.e_machine;
12000 return FALSE;
12001 }
12002 }
12003 }
12004
12005 /* Like is_32bit_abs_reloc except that it returns TRUE iff RELOC_TYPE is
12006 a 32-bit pc-relative RELA relocation used in DWARF debug sections. */
12007
12008 static bfd_boolean
12009 is_32bit_pcrel_reloc (unsigned int reloc_type)
12010 {
12011 switch (elf_header.e_machine)
12012 /* Please keep this table alpha-sorted for ease of visual lookup. */
12013 {
12014 case EM_386:
12015 case EM_IAMCU:
12016 return reloc_type == 2; /* R_386_PC32. */
12017 case EM_68K:
12018 return reloc_type == 4; /* R_68K_PC32. */
12019 case EM_AARCH64:
12020 return reloc_type == 261; /* R_AARCH64_PREL32 */
12021 case EM_ADAPTEVA_EPIPHANY:
12022 return reloc_type == 6;
12023 case EM_ALPHA:
12024 return reloc_type == 10; /* R_ALPHA_SREL32. */
12025 case EM_ARC_COMPACT:
12026 case EM_ARC_COMPACT2:
12027 return reloc_type == 49; /* R_ARC_32_PCREL. */
12028 case EM_ARM:
12029 return reloc_type == 3; /* R_ARM_REL32 */
12030 case EM_AVR_OLD:
12031 case EM_AVR:
12032 return reloc_type == 36; /* R_AVR_32_PCREL. */
12033 case EM_MICROBLAZE:
12034 return reloc_type == 2; /* R_MICROBLAZE_32_PCREL. */
12035 case EM_OR1K:
12036 return reloc_type == 9; /* R_OR1K_32_PCREL. */
12037 case EM_PARISC:
12038 return reloc_type == 9; /* R_PARISC_PCREL32. */
12039 case EM_PPC:
12040 return reloc_type == 26; /* R_PPC_REL32. */
12041 case EM_PPC64:
12042 return reloc_type == 26; /* R_PPC64_REL32. */
12043 case EM_S390_OLD:
12044 case EM_S390:
12045 return reloc_type == 5; /* R_390_PC32. */
12046 case EM_SH:
12047 return reloc_type == 2; /* R_SH_REL32. */
12048 case EM_SPARC32PLUS:
12049 case EM_SPARCV9:
12050 case EM_SPARC:
12051 return reloc_type == 6; /* R_SPARC_DISP32. */
12052 case EM_SPU:
12053 return reloc_type == 13; /* R_SPU_REL32. */
12054 case EM_TILEGX:
12055 return reloc_type == 6; /* R_TILEGX_32_PCREL. */
12056 case EM_TILEPRO:
12057 return reloc_type == 4; /* R_TILEPRO_32_PCREL. */
12058 case EM_VISIUM:
12059 return reloc_type == 6; /* R_VISIUM_32_PCREL */
12060 case EM_X86_64:
12061 case EM_L1OM:
12062 case EM_K1OM:
12063 return reloc_type == 2; /* R_X86_64_PC32. */
12064 case EM_XTENSA_OLD:
12065 case EM_XTENSA:
12066 return reloc_type == 14; /* R_XTENSA_32_PCREL. */
12067 default:
12068 /* Do not abort or issue an error message here. Not all targets use
12069 pc-relative 32-bit relocs in their DWARF debug information and we
12070 have already tested for target coverage in is_32bit_abs_reloc. A
12071 more helpful warning message will be generated by apply_relocations
12072 anyway, so just return. */
12073 return FALSE;
12074 }
12075 }
12076
12077 /* Like is_32bit_abs_reloc except that it returns TRUE iff RELOC_TYPE is
12078 a 64-bit absolute RELA relocation used in DWARF debug sections. */
12079
12080 static bfd_boolean
12081 is_64bit_abs_reloc (unsigned int reloc_type)
12082 {
12083 switch (elf_header.e_machine)
12084 {
12085 case EM_AARCH64:
12086 return reloc_type == 257; /* R_AARCH64_ABS64. */
12087 case EM_ALPHA:
12088 return reloc_type == 2; /* R_ALPHA_REFQUAD. */
12089 case EM_IA_64:
12090 return reloc_type == 0x27; /* R_IA64_DIR64LSB. */
12091 case EM_PARISC:
12092 return reloc_type == 80; /* R_PARISC_DIR64. */
12093 case EM_PPC64:
12094 return reloc_type == 38; /* R_PPC64_ADDR64. */
12095 case EM_RISCV:
12096 return reloc_type == 2; /* R_RISCV_64. */
12097 case EM_SPARC32PLUS:
12098 case EM_SPARCV9:
12099 case EM_SPARC:
12100 return reloc_type == 54; /* R_SPARC_UA64. */
12101 case EM_X86_64:
12102 case EM_L1OM:
12103 case EM_K1OM:
12104 return reloc_type == 1; /* R_X86_64_64. */
12105 case EM_S390_OLD:
12106 case EM_S390:
12107 return reloc_type == 22; /* R_S390_64. */
12108 case EM_TILEGX:
12109 return reloc_type == 1; /* R_TILEGX_64. */
12110 case EM_MIPS:
12111 return reloc_type == 18; /* R_MIPS_64. */
12112 default:
12113 return FALSE;
12114 }
12115 }
12116
12117 /* Like is_32bit_pcrel_reloc except that it returns TRUE iff RELOC_TYPE is
12118 a 64-bit pc-relative RELA relocation used in DWARF debug sections. */
12119
12120 static bfd_boolean
12121 is_64bit_pcrel_reloc (unsigned int reloc_type)
12122 {
12123 switch (elf_header.e_machine)
12124 {
12125 case EM_AARCH64:
12126 return reloc_type == 260; /* R_AARCH64_PREL64. */
12127 case EM_ALPHA:
12128 return reloc_type == 11; /* R_ALPHA_SREL64. */
12129 case EM_IA_64:
12130 return reloc_type == 0x4f; /* R_IA64_PCREL64LSB. */
12131 case EM_PARISC:
12132 return reloc_type == 72; /* R_PARISC_PCREL64. */
12133 case EM_PPC64:
12134 return reloc_type == 44; /* R_PPC64_REL64. */
12135 case EM_SPARC32PLUS:
12136 case EM_SPARCV9:
12137 case EM_SPARC:
12138 return reloc_type == 46; /* R_SPARC_DISP64. */
12139 case EM_X86_64:
12140 case EM_L1OM:
12141 case EM_K1OM:
12142 return reloc_type == 24; /* R_X86_64_PC64. */
12143 case EM_S390_OLD:
12144 case EM_S390:
12145 return reloc_type == 23; /* R_S390_PC64. */
12146 case EM_TILEGX:
12147 return reloc_type == 5; /* R_TILEGX_64_PCREL. */
12148 default:
12149 return FALSE;
12150 }
12151 }
12152
12153 /* Like is_32bit_abs_reloc except that it returns TRUE iff RELOC_TYPE is
12154 a 24-bit absolute RELA relocation used in DWARF debug sections. */
12155
12156 static bfd_boolean
12157 is_24bit_abs_reloc (unsigned int reloc_type)
12158 {
12159 switch (elf_header.e_machine)
12160 {
12161 case EM_CYGNUS_MN10200:
12162 case EM_MN10200:
12163 return reloc_type == 4; /* R_MN10200_24. */
12164 case EM_FT32:
12165 return reloc_type == 5; /* R_FT32_20. */
12166 default:
12167 return FALSE;
12168 }
12169 }
12170
12171 /* Like is_32bit_abs_reloc except that it returns TRUE iff RELOC_TYPE is
12172 a 16-bit absolute RELA relocation used in DWARF debug sections. */
12173
12174 static bfd_boolean
12175 is_16bit_abs_reloc (unsigned int reloc_type)
12176 {
12177 /* Please keep this table alpha-sorted for ease of visual lookup. */
12178 switch (elf_header.e_machine)
12179 {
12180 case EM_ARC:
12181 case EM_ARC_COMPACT:
12182 case EM_ARC_COMPACT2:
12183 return reloc_type == 2; /* R_ARC_16. */
12184 case EM_ADAPTEVA_EPIPHANY:
12185 return reloc_type == 5;
12186 case EM_AVR_OLD:
12187 case EM_AVR:
12188 return reloc_type == 4; /* R_AVR_16. */
12189 case EM_CYGNUS_D10V:
12190 case EM_D10V:
12191 return reloc_type == 3; /* R_D10V_16. */
12192 case EM_H8S:
12193 case EM_H8_300:
12194 case EM_H8_300H:
12195 return reloc_type == R_H8_DIR16;
12196 case EM_IP2K_OLD:
12197 case EM_IP2K:
12198 return reloc_type == 1; /* R_IP2K_16. */
12199 case EM_M32C_OLD:
12200 case EM_M32C:
12201 return reloc_type == 1; /* R_M32C_16 */
12202 case EM_CYGNUS_MN10200:
12203 case EM_MN10200:
12204 return reloc_type == 2; /* R_MN10200_16. */
12205 case EM_CYGNUS_MN10300:
12206 case EM_MN10300:
12207 return reloc_type == 2; /* R_MN10300_16. */
12208 case EM_MSP430:
12209 if (uses_msp430x_relocs ())
12210 return reloc_type == 2; /* R_MSP430_ABS16. */
12211 /* Fall through. */
12212 case EM_MSP430_OLD:
12213 return reloc_type == 5; /* R_MSP430_16_BYTE. */
12214 case EM_NDS32:
12215 return reloc_type == 19; /* R_NDS32_RELA. */
12216 case EM_ALTERA_NIOS2:
12217 return reloc_type == 13; /* R_NIOS2_BFD_RELOC_16. */
12218 case EM_NIOS32:
12219 return reloc_type == 9; /* R_NIOS_16. */
12220 case EM_OR1K:
12221 return reloc_type == 2; /* R_OR1K_16. */
12222 case EM_TI_PRU:
12223 return reloc_type == 8; /* R_PRU_BFD_RELOC_16. */
12224 case EM_TI_C6000:
12225 return reloc_type == 2; /* R_C6000_ABS16. */
12226 case EM_VISIUM:
12227 return reloc_type == 2; /* R_VISIUM_16. */
12228 case EM_XC16X:
12229 case EM_C166:
12230 return reloc_type == 2; /* R_XC16C_ABS_16. */
12231 case EM_XGATE:
12232 return reloc_type == 3; /* R_XGATE_16. */
12233 default:
12234 return FALSE;
12235 }
12236 }
12237
12238 /* Returns TRUE iff RELOC_TYPE is a NONE relocation used for discarded
12239 relocation entries (possibly formerly used for SHT_GROUP sections). */
12240
12241 static bfd_boolean
12242 is_none_reloc (unsigned int reloc_type)
12243 {
12244 switch (elf_header.e_machine)
12245 {
12246 case EM_386: /* R_386_NONE. */
12247 case EM_68K: /* R_68K_NONE. */
12248 case EM_ADAPTEVA_EPIPHANY:
12249 case EM_ALPHA: /* R_ALPHA_NONE. */
12250 case EM_ALTERA_NIOS2: /* R_NIOS2_NONE. */
12251 case EM_ARC: /* R_ARC_NONE. */
12252 case EM_ARC_COMPACT2: /* R_ARC_NONE. */
12253 case EM_ARC_COMPACT: /* R_ARC_NONE. */
12254 case EM_ARM: /* R_ARM_NONE. */
12255 case EM_C166: /* R_XC16X_NONE. */
12256 case EM_CRIS: /* R_CRIS_NONE. */
12257 case EM_FT32: /* R_FT32_NONE. */
12258 case EM_IA_64: /* R_IA64_NONE. */
12259 case EM_K1OM: /* R_X86_64_NONE. */
12260 case EM_L1OM: /* R_X86_64_NONE. */
12261 case EM_M32R: /* R_M32R_NONE. */
12262 case EM_MIPS: /* R_MIPS_NONE. */
12263 case EM_MN10300: /* R_MN10300_NONE. */
12264 case EM_MOXIE: /* R_MOXIE_NONE. */
12265 case EM_NIOS32: /* R_NIOS_NONE. */
12266 case EM_OR1K: /* R_OR1K_NONE. */
12267 case EM_PARISC: /* R_PARISC_NONE. */
12268 case EM_PPC64: /* R_PPC64_NONE. */
12269 case EM_PPC: /* R_PPC_NONE. */
12270 case EM_RISCV: /* R_RISCV_NONE. */
12271 case EM_S390: /* R_390_NONE. */
12272 case EM_S390_OLD:
12273 case EM_SH: /* R_SH_NONE. */
12274 case EM_SPARC32PLUS:
12275 case EM_SPARC: /* R_SPARC_NONE. */
12276 case EM_SPARCV9:
12277 case EM_TILEGX: /* R_TILEGX_NONE. */
12278 case EM_TILEPRO: /* R_TILEPRO_NONE. */
12279 case EM_TI_C6000:/* R_C6000_NONE. */
12280 case EM_X86_64: /* R_X86_64_NONE. */
12281 case EM_XC16X:
12282 return reloc_type == 0;
12283
12284 case EM_AARCH64:
12285 return reloc_type == 0 || reloc_type == 256;
12286 case EM_AVR_OLD:
12287 case EM_AVR:
12288 return (reloc_type == 0 /* R_AVR_NONE. */
12289 || reloc_type == 30 /* R_AVR_DIFF8. */
12290 || reloc_type == 31 /* R_AVR_DIFF16. */
12291 || reloc_type == 32 /* R_AVR_DIFF32. */);
12292 case EM_METAG:
12293 return reloc_type == 3; /* R_METAG_NONE. */
12294 case EM_NDS32:
12295 return (reloc_type == 0 /* R_XTENSA_NONE. */
12296 || reloc_type == 204 /* R_NDS32_DIFF8. */
12297 || reloc_type == 205 /* R_NDS32_DIFF16. */
12298 || reloc_type == 206 /* R_NDS32_DIFF32. */
12299 || reloc_type == 207 /* R_NDS32_ULEB128. */);
12300 case EM_TI_PRU:
12301 return (reloc_type == 0 /* R_PRU_NONE. */
12302 || reloc_type == 65 /* R_PRU_DIFF8. */
12303 || reloc_type == 66 /* R_PRU_DIFF16. */
12304 || reloc_type == 67 /* R_PRU_DIFF32. */);
12305 case EM_XTENSA_OLD:
12306 case EM_XTENSA:
12307 return (reloc_type == 0 /* R_XTENSA_NONE. */
12308 || reloc_type == 17 /* R_XTENSA_DIFF8. */
12309 || reloc_type == 18 /* R_XTENSA_DIFF16. */
12310 || reloc_type == 19 /* R_XTENSA_DIFF32. */);
12311 }
12312 return FALSE;
12313 }
12314
12315 /* Returns TRUE if there is a relocation against
12316 section NAME at OFFSET bytes. */
12317
12318 bfd_boolean
12319 reloc_at (struct dwarf_section * dsec, dwarf_vma offset)
12320 {
12321 Elf_Internal_Rela * relocs;
12322 Elf_Internal_Rela * rp;
12323
12324 if (dsec == NULL || dsec->reloc_info == NULL)
12325 return FALSE;
12326
12327 relocs = (Elf_Internal_Rela *) dsec->reloc_info;
12328
12329 for (rp = relocs; rp < relocs + dsec->num_relocs; ++rp)
12330 if (rp->r_offset == offset)
12331 return TRUE;
12332
12333 return FALSE;
12334 }
12335
12336 /* Apply relocations to a section.
12337 Note: So far support has been added only for those relocations
12338 which can be found in debug sections.
12339 If RELOCS_RETURN is non-NULL then returns in it a pointer to the
12340 loaded relocs. It is then the caller's responsibility to free them.
12341 FIXME: Add support for more relocations ? */
12342
12343 static void
12344 apply_relocations (void * file,
12345 const Elf_Internal_Shdr * section,
12346 unsigned char * start,
12347 bfd_size_type size,
12348 void ** relocs_return,
12349 unsigned long * num_relocs_return)
12350 {
12351 Elf_Internal_Shdr * relsec;
12352 unsigned char * end = start + size;
12353
12354 if (relocs_return != NULL)
12355 {
12356 * (Elf_Internal_Rela **) relocs_return = NULL;
12357 * num_relocs_return = 0;
12358 }
12359
12360 if (elf_header.e_type != ET_REL)
12361 return;
12362
12363 /* Find the reloc section associated with the section. */
12364 for (relsec = section_headers;
12365 relsec < section_headers + elf_header.e_shnum;
12366 ++relsec)
12367 {
12368 bfd_boolean is_rela;
12369 unsigned long num_relocs;
12370 Elf_Internal_Rela * relocs;
12371 Elf_Internal_Rela * rp;
12372 Elf_Internal_Shdr * symsec;
12373 Elf_Internal_Sym * symtab;
12374 unsigned long num_syms;
12375 Elf_Internal_Sym * sym;
12376
12377 if ((relsec->sh_type != SHT_RELA && relsec->sh_type != SHT_REL)
12378 || relsec->sh_info >= elf_header.e_shnum
12379 || section_headers + relsec->sh_info != section
12380 || relsec->sh_size == 0
12381 || relsec->sh_link >= elf_header.e_shnum)
12382 continue;
12383
12384 is_rela = relsec->sh_type == SHT_RELA;
12385
12386 if (is_rela)
12387 {
12388 if (!slurp_rela_relocs ((FILE *) file, relsec->sh_offset,
12389 relsec->sh_size, & relocs, & num_relocs))
12390 return;
12391 }
12392 else
12393 {
12394 if (!slurp_rel_relocs ((FILE *) file, relsec->sh_offset,
12395 relsec->sh_size, & relocs, & num_relocs))
12396 return;
12397 }
12398
12399 /* SH uses RELA but uses in place value instead of the addend field. */
12400 if (elf_header.e_machine == EM_SH)
12401 is_rela = FALSE;
12402
12403 symsec = section_headers + relsec->sh_link;
12404 if (symsec->sh_type != SHT_SYMTAB
12405 && symsec->sh_type != SHT_DYNSYM)
12406 return;
12407 symtab = GET_ELF_SYMBOLS ((FILE *) file, symsec, & num_syms);
12408
12409 for (rp = relocs; rp < relocs + num_relocs; ++rp)
12410 {
12411 bfd_vma addend;
12412 unsigned int reloc_type;
12413 unsigned int reloc_size;
12414 unsigned char * rloc;
12415 unsigned long sym_index;
12416
12417 reloc_type = get_reloc_type (rp->r_info);
12418
12419 if (target_specific_reloc_handling (rp, start, end, symtab, num_syms))
12420 continue;
12421 else if (is_none_reloc (reloc_type))
12422 continue;
12423 else if (is_32bit_abs_reloc (reloc_type)
12424 || is_32bit_pcrel_reloc (reloc_type))
12425 reloc_size = 4;
12426 else if (is_64bit_abs_reloc (reloc_type)
12427 || is_64bit_pcrel_reloc (reloc_type))
12428 reloc_size = 8;
12429 else if (is_24bit_abs_reloc (reloc_type))
12430 reloc_size = 3;
12431 else if (is_16bit_abs_reloc (reloc_type))
12432 reloc_size = 2;
12433 else
12434 {
12435 static unsigned int prev_reloc = 0;
12436 if (reloc_type != prev_reloc)
12437 warn (_("unable to apply unsupported reloc type %d to section %s\n"),
12438 reloc_type, printable_section_name (section));
12439 prev_reloc = reloc_type;
12440 continue;
12441 }
12442
12443 rloc = start + rp->r_offset;
12444 if ((rloc + reloc_size) > end || (rloc < start))
12445 {
12446 warn (_("skipping invalid relocation offset 0x%lx in section %s\n"),
12447 (unsigned long) rp->r_offset,
12448 printable_section_name (section));
12449 continue;
12450 }
12451
12452 sym_index = (unsigned long) get_reloc_symindex (rp->r_info);
12453 if (sym_index >= num_syms)
12454 {
12455 warn (_("skipping invalid relocation symbol index 0x%lx in section %s\n"),
12456 sym_index, printable_section_name (section));
12457 continue;
12458 }
12459 sym = symtab + sym_index;
12460
12461 /* If the reloc has a symbol associated with it,
12462 make sure that it is of an appropriate type.
12463
12464 Relocations against symbols without type can happen.
12465 Gcc -feliminate-dwarf2-dups may generate symbols
12466 without type for debug info.
12467
12468 Icc generates relocations against function symbols
12469 instead of local labels.
12470
12471 Relocations against object symbols can happen, eg when
12472 referencing a global array. For an example of this see
12473 the _clz.o binary in libgcc.a. */
12474 if (sym != symtab
12475 && ELF_ST_TYPE (sym->st_info) != STT_COMMON
12476 && ELF_ST_TYPE (sym->st_info) > STT_SECTION)
12477 {
12478 warn (_("skipping unexpected symbol type %s in %ld'th relocation in section %s\n"),
12479 get_symbol_type (ELF_ST_TYPE (sym->st_info)),
12480 (long int)(rp - relocs),
12481 printable_section_name (relsec));
12482 continue;
12483 }
12484
12485 addend = 0;
12486 if (is_rela)
12487 addend += rp->r_addend;
12488 /* R_XTENSA_32, R_PJ_DATA_DIR32 and R_D30V_32_NORMAL are
12489 partial_inplace. */
12490 if (!is_rela
12491 || (elf_header.e_machine == EM_XTENSA
12492 && reloc_type == 1)
12493 || ((elf_header.e_machine == EM_PJ
12494 || elf_header.e_machine == EM_PJ_OLD)
12495 && reloc_type == 1)
12496 || ((elf_header.e_machine == EM_D30V
12497 || elf_header.e_machine == EM_CYGNUS_D30V)
12498 && reloc_type == 12))
12499 addend += byte_get (rloc, reloc_size);
12500
12501 if (is_32bit_pcrel_reloc (reloc_type)
12502 || is_64bit_pcrel_reloc (reloc_type))
12503 {
12504 /* On HPPA, all pc-relative relocations are biased by 8. */
12505 if (elf_header.e_machine == EM_PARISC)
12506 addend -= 8;
12507 byte_put (rloc, (addend + sym->st_value) - rp->r_offset,
12508 reloc_size);
12509 }
12510 else
12511 byte_put (rloc, addend + sym->st_value, reloc_size);
12512 }
12513
12514 free (symtab);
12515 /* Let the target specific reloc processing code know that
12516 we have finished with these relocs. */
12517 target_specific_reloc_handling (NULL, NULL, NULL, NULL, 0);
12518
12519 if (relocs_return)
12520 {
12521 * (Elf_Internal_Rela **) relocs_return = relocs;
12522 * num_relocs_return = num_relocs;
12523 }
12524 else
12525 free (relocs);
12526
12527 break;
12528 }
12529 }
12530
12531 #ifdef SUPPORT_DISASSEMBLY
12532 static int
12533 disassemble_section (Elf_Internal_Shdr * section, FILE * file)
12534 {
12535 printf (_("\nAssembly dump of section %s\n"), printable_section_name (section));
12536
12537 /* FIXME: XXX -- to be done --- XXX */
12538
12539 return 1;
12540 }
12541 #endif
12542
12543 /* Reads in the contents of SECTION from FILE, returning a pointer
12544 to a malloc'ed buffer or NULL if something went wrong. */
12545
12546 static char *
12547 get_section_contents (Elf_Internal_Shdr * section, FILE * file)
12548 {
12549 bfd_size_type num_bytes;
12550
12551 num_bytes = section->sh_size;
12552
12553 if (num_bytes == 0 || section->sh_type == SHT_NOBITS)
12554 {
12555 printf (_("\nSection '%s' has no data to dump.\n"),
12556 printable_section_name (section));
12557 return NULL;
12558 }
12559
12560 return (char *) get_data (NULL, file, section->sh_offset, 1, num_bytes,
12561 _("section contents"));
12562 }
12563
12564 /* Uncompresses a section that was compressed using zlib, in place. */
12565
12566 static bfd_boolean
12567 uncompress_section_contents (unsigned char **buffer,
12568 dwarf_size_type uncompressed_size,
12569 dwarf_size_type *size)
12570 {
12571 dwarf_size_type compressed_size = *size;
12572 unsigned char * compressed_buffer = *buffer;
12573 unsigned char * uncompressed_buffer;
12574 z_stream strm;
12575 int rc;
12576
12577 /* It is possible the section consists of several compressed
12578 buffers concatenated together, so we uncompress in a loop. */
12579 /* PR 18313: The state field in the z_stream structure is supposed
12580 to be invisible to the user (ie us), but some compilers will
12581 still complain about it being used without initialisation. So
12582 we first zero the entire z_stream structure and then set the fields
12583 that we need. */
12584 memset (& strm, 0, sizeof strm);
12585 strm.avail_in = compressed_size;
12586 strm.next_in = (Bytef *) compressed_buffer;
12587 strm.avail_out = uncompressed_size;
12588 uncompressed_buffer = (unsigned char *) xmalloc (uncompressed_size);
12589
12590 rc = inflateInit (& strm);
12591 while (strm.avail_in > 0)
12592 {
12593 if (rc != Z_OK)
12594 goto fail;
12595 strm.next_out = ((Bytef *) uncompressed_buffer
12596 + (uncompressed_size - strm.avail_out));
12597 rc = inflate (&strm, Z_FINISH);
12598 if (rc != Z_STREAM_END)
12599 goto fail;
12600 rc = inflateReset (& strm);
12601 }
12602 rc = inflateEnd (& strm);
12603 if (rc != Z_OK
12604 || strm.avail_out != 0)
12605 goto fail;
12606
12607 *buffer = uncompressed_buffer;
12608 *size = uncompressed_size;
12609 return TRUE;
12610
12611 fail:
12612 free (uncompressed_buffer);
12613 /* Indicate decompression failure. */
12614 *buffer = NULL;
12615 return FALSE;
12616 }
12617
12618 static void
12619 dump_section_as_strings (Elf_Internal_Shdr * section, FILE * file)
12620 {
12621 Elf_Internal_Shdr * relsec;
12622 bfd_size_type num_bytes;
12623 unsigned char * data;
12624 unsigned char * end;
12625 unsigned char * real_start;
12626 unsigned char * start;
12627 bfd_boolean some_strings_shown;
12628
12629 real_start = start = (unsigned char *) get_section_contents (section,
12630 file);
12631 if (start == NULL)
12632 return;
12633 num_bytes = section->sh_size;
12634
12635 printf (_("\nString dump of section '%s':\n"), printable_section_name (section));
12636
12637 if (decompress_dumps)
12638 {
12639 dwarf_size_type new_size = num_bytes;
12640 dwarf_size_type uncompressed_size = 0;
12641
12642 if ((section->sh_flags & SHF_COMPRESSED) != 0)
12643 {
12644 Elf_Internal_Chdr chdr;
12645 unsigned int compression_header_size
12646 = get_compression_header (& chdr, (unsigned char *) start);
12647
12648 if (chdr.ch_type != ELFCOMPRESS_ZLIB)
12649 {
12650 warn (_("section '%s' has unsupported compress type: %d\n"),
12651 printable_section_name (section), chdr.ch_type);
12652 return;
12653 }
12654 else if (chdr.ch_addralign != section->sh_addralign)
12655 {
12656 warn (_("compressed section '%s' is corrupted\n"),
12657 printable_section_name (section));
12658 return;
12659 }
12660 uncompressed_size = chdr.ch_size;
12661 start += compression_header_size;
12662 new_size -= compression_header_size;
12663 }
12664 else if (new_size > 12 && streq ((char *) start, "ZLIB"))
12665 {
12666 /* Read the zlib header. In this case, it should be "ZLIB"
12667 followed by the uncompressed section size, 8 bytes in
12668 big-endian order. */
12669 uncompressed_size = start[4]; uncompressed_size <<= 8;
12670 uncompressed_size += start[5]; uncompressed_size <<= 8;
12671 uncompressed_size += start[6]; uncompressed_size <<= 8;
12672 uncompressed_size += start[7]; uncompressed_size <<= 8;
12673 uncompressed_size += start[8]; uncompressed_size <<= 8;
12674 uncompressed_size += start[9]; uncompressed_size <<= 8;
12675 uncompressed_size += start[10]; uncompressed_size <<= 8;
12676 uncompressed_size += start[11];
12677 start += 12;
12678 new_size -= 12;
12679 }
12680
12681 if (uncompressed_size
12682 && uncompress_section_contents (& start,
12683 uncompressed_size, & new_size))
12684 num_bytes = new_size;
12685 }
12686
12687 /* If the section being dumped has relocations against it the user might
12688 be expecting these relocations to have been applied. Check for this
12689 case and issue a warning message in order to avoid confusion.
12690 FIXME: Maybe we ought to have an option that dumps a section with
12691 relocs applied ? */
12692 for (relsec = section_headers;
12693 relsec < section_headers + elf_header.e_shnum;
12694 ++relsec)
12695 {
12696 if ((relsec->sh_type != SHT_RELA && relsec->sh_type != SHT_REL)
12697 || relsec->sh_info >= elf_header.e_shnum
12698 || section_headers + relsec->sh_info != section
12699 || relsec->sh_size == 0
12700 || relsec->sh_link >= elf_header.e_shnum)
12701 continue;
12702
12703 printf (_(" Note: This section has relocations against it, but these have NOT been applied to this dump.\n"));
12704 break;
12705 }
12706
12707 data = start;
12708 end = start + num_bytes;
12709 some_strings_shown = FALSE;
12710
12711 while (data < end)
12712 {
12713 while (!ISPRINT (* data))
12714 if (++ data >= end)
12715 break;
12716
12717 if (data < end)
12718 {
12719 size_t maxlen = end - data;
12720
12721 #ifndef __MSVCRT__
12722 /* PR 11128: Use two separate invocations in order to work
12723 around bugs in the Solaris 8 implementation of printf. */
12724 printf (" [%6tx] ", data - start);
12725 #else
12726 printf (" [%6Ix] ", (size_t) (data - start));
12727 #endif
12728 if (maxlen > 0)
12729 {
12730 print_symbol ((int) maxlen, (const char *) data);
12731 putchar ('\n');
12732 data += strnlen ((const char *) data, maxlen);
12733 }
12734 else
12735 {
12736 printf (_("<corrupt>\n"));
12737 data = end;
12738 }
12739 some_strings_shown = TRUE;
12740 }
12741 }
12742
12743 if (! some_strings_shown)
12744 printf (_(" No strings found in this section."));
12745
12746 free (real_start);
12747
12748 putchar ('\n');
12749 }
12750
12751 static void
12752 dump_section_as_bytes (Elf_Internal_Shdr * section,
12753 FILE * file,
12754 bfd_boolean relocate)
12755 {
12756 Elf_Internal_Shdr * relsec;
12757 bfd_size_type bytes;
12758 bfd_size_type section_size;
12759 bfd_vma addr;
12760 unsigned char * data;
12761 unsigned char * real_start;
12762 unsigned char * start;
12763
12764 real_start = start = (unsigned char *) get_section_contents (section, file);
12765 if (start == NULL)
12766 return;
12767 section_size = section->sh_size;
12768
12769 printf (_("\nHex dump of section '%s':\n"), printable_section_name (section));
12770
12771 if (decompress_dumps)
12772 {
12773 dwarf_size_type new_size = section_size;
12774 dwarf_size_type uncompressed_size = 0;
12775
12776 if ((section->sh_flags & SHF_COMPRESSED) != 0)
12777 {
12778 Elf_Internal_Chdr chdr;
12779 unsigned int compression_header_size
12780 = get_compression_header (& chdr, start);
12781
12782 if (chdr.ch_type != ELFCOMPRESS_ZLIB)
12783 {
12784 warn (_("section '%s' has unsupported compress type: %d\n"),
12785 printable_section_name (section), chdr.ch_type);
12786 return;
12787 }
12788 else if (chdr.ch_addralign != section->sh_addralign)
12789 {
12790 warn (_("compressed section '%s' is corrupted\n"),
12791 printable_section_name (section));
12792 return;
12793 }
12794 uncompressed_size = chdr.ch_size;
12795 start += compression_header_size;
12796 new_size -= compression_header_size;
12797 }
12798 else if (new_size > 12 && streq ((char *) start, "ZLIB"))
12799 {
12800 /* Read the zlib header. In this case, it should be "ZLIB"
12801 followed by the uncompressed section size, 8 bytes in
12802 big-endian order. */
12803 uncompressed_size = start[4]; uncompressed_size <<= 8;
12804 uncompressed_size += start[5]; uncompressed_size <<= 8;
12805 uncompressed_size += start[6]; uncompressed_size <<= 8;
12806 uncompressed_size += start[7]; uncompressed_size <<= 8;
12807 uncompressed_size += start[8]; uncompressed_size <<= 8;
12808 uncompressed_size += start[9]; uncompressed_size <<= 8;
12809 uncompressed_size += start[10]; uncompressed_size <<= 8;
12810 uncompressed_size += start[11];
12811 start += 12;
12812 new_size -= 12;
12813 }
12814
12815 if (uncompressed_size
12816 && uncompress_section_contents (& start, uncompressed_size,
12817 & new_size))
12818 section_size = new_size;
12819 }
12820
12821 if (relocate)
12822 {
12823 apply_relocations (file, section, start, section_size, NULL, NULL);
12824 }
12825 else
12826 {
12827 /* If the section being dumped has relocations against it the user might
12828 be expecting these relocations to have been applied. Check for this
12829 case and issue a warning message in order to avoid confusion.
12830 FIXME: Maybe we ought to have an option that dumps a section with
12831 relocs applied ? */
12832 for (relsec = section_headers;
12833 relsec < section_headers + elf_header.e_shnum;
12834 ++relsec)
12835 {
12836 if ((relsec->sh_type != SHT_RELA && relsec->sh_type != SHT_REL)
12837 || relsec->sh_info >= elf_header.e_shnum
12838 || section_headers + relsec->sh_info != section
12839 || relsec->sh_size == 0
12840 || relsec->sh_link >= elf_header.e_shnum)
12841 continue;
12842
12843 printf (_(" NOTE: This section has relocations against it, but these have NOT been applied to this dump.\n"));
12844 break;
12845 }
12846 }
12847
12848 addr = section->sh_addr;
12849 bytes = section_size;
12850 data = start;
12851
12852 while (bytes)
12853 {
12854 int j;
12855 int k;
12856 int lbytes;
12857
12858 lbytes = (bytes > 16 ? 16 : bytes);
12859
12860 printf (" 0x%8.8lx ", (unsigned long) addr);
12861
12862 for (j = 0; j < 16; j++)
12863 {
12864 if (j < lbytes)
12865 printf ("%2.2x", data[j]);
12866 else
12867 printf (" ");
12868
12869 if ((j & 3) == 3)
12870 printf (" ");
12871 }
12872
12873 for (j = 0; j < lbytes; j++)
12874 {
12875 k = data[j];
12876 if (k >= ' ' && k < 0x7f)
12877 printf ("%c", k);
12878 else
12879 printf (".");
12880 }
12881
12882 putchar ('\n');
12883
12884 data += lbytes;
12885 addr += lbytes;
12886 bytes -= lbytes;
12887 }
12888
12889 free (real_start);
12890
12891 putchar ('\n');
12892 }
12893
12894 static int
12895 load_specific_debug_section (enum dwarf_section_display_enum debug,
12896 const Elf_Internal_Shdr * sec, void * file)
12897 {
12898 struct dwarf_section * section = &debug_displays [debug].section;
12899 char buf [64];
12900
12901 /* If it is already loaded, do nothing. */
12902 if (section->start != NULL)
12903 return 1;
12904
12905 snprintf (buf, sizeof (buf), _("%s section data"), section->name);
12906 section->address = sec->sh_addr;
12907 section->user_data = NULL;
12908 section->start = (unsigned char *) get_data (NULL, (FILE *) file,
12909 sec->sh_offset, 1,
12910 sec->sh_size, buf);
12911 if (section->start == NULL)
12912 section->size = 0;
12913 else
12914 {
12915 unsigned char *start = section->start;
12916 dwarf_size_type size = sec->sh_size;
12917 dwarf_size_type uncompressed_size = 0;
12918
12919 if ((sec->sh_flags & SHF_COMPRESSED) != 0)
12920 {
12921 Elf_Internal_Chdr chdr;
12922 unsigned int compression_header_size;
12923
12924 if (size < (is_32bit_elf
12925 ? sizeof (Elf32_External_Chdr)
12926 : sizeof (Elf64_External_Chdr)))
12927 {
12928 warn (_("compressed section %s is too small to contain a compression header"),
12929 section->name);
12930 return 0;
12931 }
12932
12933 compression_header_size = get_compression_header (&chdr, start);
12934
12935 if (chdr.ch_type != ELFCOMPRESS_ZLIB)
12936 {
12937 warn (_("section '%s' has unsupported compress type: %d\n"),
12938 section->name, chdr.ch_type);
12939 return 0;
12940 }
12941 else if (chdr.ch_addralign != sec->sh_addralign)
12942 {
12943 warn (_("compressed section '%s' is corrupted\n"),
12944 section->name);
12945 return 0;
12946 }
12947 uncompressed_size = chdr.ch_size;
12948 start += compression_header_size;
12949 size -= compression_header_size;
12950 }
12951 else if (size > 12 && streq ((char *) start, "ZLIB"))
12952 {
12953 /* Read the zlib header. In this case, it should be "ZLIB"
12954 followed by the uncompressed section size, 8 bytes in
12955 big-endian order. */
12956 uncompressed_size = start[4]; uncompressed_size <<= 8;
12957 uncompressed_size += start[5]; uncompressed_size <<= 8;
12958 uncompressed_size += start[6]; uncompressed_size <<= 8;
12959 uncompressed_size += start[7]; uncompressed_size <<= 8;
12960 uncompressed_size += start[8]; uncompressed_size <<= 8;
12961 uncompressed_size += start[9]; uncompressed_size <<= 8;
12962 uncompressed_size += start[10]; uncompressed_size <<= 8;
12963 uncompressed_size += start[11];
12964 start += 12;
12965 size -= 12;
12966 }
12967
12968 if (uncompressed_size
12969 && uncompress_section_contents (&start, uncompressed_size,
12970 &size))
12971 {
12972 /* Free the compressed buffer, update the section buffer
12973 and the section size if uncompress is successful. */
12974 free (section->start);
12975 section->start = start;
12976 }
12977 section->size = size;
12978 }
12979
12980 if (section->start == NULL)
12981 return 0;
12982
12983 if (debug_displays [debug].relocate)
12984 apply_relocations ((FILE *) file, sec, section->start, section->size,
12985 & section->reloc_info, & section->num_relocs);
12986 else
12987 {
12988 section->reloc_info = NULL;
12989 section->num_relocs = 0;
12990 }
12991
12992 return 1;
12993 }
12994
12995 /* If this is not NULL, load_debug_section will only look for sections
12996 within the list of sections given here. */
12997 unsigned int *section_subset = NULL;
12998
12999 int
13000 load_debug_section (enum dwarf_section_display_enum debug, void * file)
13001 {
13002 struct dwarf_section * section = &debug_displays [debug].section;
13003 Elf_Internal_Shdr * sec;
13004
13005 /* Locate the debug section. */
13006 sec = find_section_in_set (section->uncompressed_name, section_subset);
13007 if (sec != NULL)
13008 section->name = section->uncompressed_name;
13009 else
13010 {
13011 sec = find_section_in_set (section->compressed_name, section_subset);
13012 if (sec != NULL)
13013 section->name = section->compressed_name;
13014 }
13015 if (sec == NULL)
13016 return 0;
13017
13018 /* If we're loading from a subset of sections, and we've loaded
13019 a section matching this name before, it's likely that it's a
13020 different one. */
13021 if (section_subset != NULL)
13022 free_debug_section (debug);
13023
13024 return load_specific_debug_section (debug, sec, (FILE *) file);
13025 }
13026
13027 void
13028 free_debug_section (enum dwarf_section_display_enum debug)
13029 {
13030 struct dwarf_section * section = &debug_displays [debug].section;
13031
13032 if (section->start == NULL)
13033 return;
13034
13035 free ((char *) section->start);
13036 section->start = NULL;
13037 section->address = 0;
13038 section->size = 0;
13039 }
13040
13041 static int
13042 display_debug_section (int shndx, Elf_Internal_Shdr * section, FILE * file)
13043 {
13044 char * name = SECTION_NAME (section);
13045 const char * print_name = printable_section_name (section);
13046 bfd_size_type length;
13047 int result = 1;
13048 int i;
13049
13050 length = section->sh_size;
13051 if (length == 0)
13052 {
13053 printf (_("\nSection '%s' has no debugging data.\n"), print_name);
13054 return 0;
13055 }
13056 if (section->sh_type == SHT_NOBITS)
13057 {
13058 /* There is no point in dumping the contents of a debugging section
13059 which has the NOBITS type - the bits in the file will be random.
13060 This can happen when a file containing a .eh_frame section is
13061 stripped with the --only-keep-debug command line option. */
13062 printf (_("section '%s' has the NOBITS type - its contents are unreliable.\n"),
13063 print_name);
13064 return 0;
13065 }
13066
13067 if (const_strneq (name, ".gnu.linkonce.wi."))
13068 name = ".debug_info";
13069
13070 /* See if we know how to display the contents of this section. */
13071 for (i = 0; i < max; i++)
13072 if (streq (debug_displays[i].section.uncompressed_name, name)
13073 || (i == line && const_strneq (name, ".debug_line."))
13074 || streq (debug_displays[i].section.compressed_name, name))
13075 {
13076 struct dwarf_section * sec = &debug_displays [i].section;
13077 int secondary = (section != find_section (name));
13078
13079 if (secondary)
13080 free_debug_section ((enum dwarf_section_display_enum) i);
13081
13082 if (i == line && const_strneq (name, ".debug_line."))
13083 sec->name = name;
13084 else if (streq (sec->uncompressed_name, name))
13085 sec->name = sec->uncompressed_name;
13086 else
13087 sec->name = sec->compressed_name;
13088 if (load_specific_debug_section ((enum dwarf_section_display_enum) i,
13089 section, file))
13090 {
13091 /* If this debug section is part of a CU/TU set in a .dwp file,
13092 restrict load_debug_section to the sections in that set. */
13093 section_subset = find_cu_tu_set (file, shndx);
13094
13095 result &= debug_displays[i].display (sec, file);
13096
13097 section_subset = NULL;
13098
13099 if (secondary || (i != info && i != abbrev))
13100 free_debug_section ((enum dwarf_section_display_enum) i);
13101 }
13102
13103 break;
13104 }
13105
13106 if (i == max)
13107 {
13108 printf (_("Unrecognized debug section: %s\n"), print_name);
13109 result = 0;
13110 }
13111
13112 return result;
13113 }
13114
13115 /* Set DUMP_SECTS for all sections where dumps were requested
13116 based on section name. */
13117
13118 static void
13119 initialise_dumps_byname (void)
13120 {
13121 struct dump_list_entry * cur;
13122
13123 for (cur = dump_sects_byname; cur; cur = cur->next)
13124 {
13125 unsigned int i;
13126 int any;
13127
13128 for (i = 0, any = 0; i < elf_header.e_shnum; i++)
13129 if (streq (SECTION_NAME (section_headers + i), cur->name))
13130 {
13131 request_dump_bynumber (i, cur->type);
13132 any = 1;
13133 }
13134
13135 if (!any)
13136 warn (_("Section '%s' was not dumped because it does not exist!\n"),
13137 cur->name);
13138 }
13139 }
13140
13141 static void
13142 process_section_contents (FILE * file)
13143 {
13144 Elf_Internal_Shdr * section;
13145 unsigned int i;
13146
13147 if (! do_dump)
13148 return;
13149
13150 initialise_dumps_byname ();
13151
13152 for (i = 0, section = section_headers;
13153 i < elf_header.e_shnum && i < num_dump_sects;
13154 i++, section++)
13155 {
13156 #ifdef SUPPORT_DISASSEMBLY
13157 if (dump_sects[i] & DISASS_DUMP)
13158 disassemble_section (section, file);
13159 #endif
13160 if (dump_sects[i] & HEX_DUMP)
13161 dump_section_as_bytes (section, file, FALSE);
13162
13163 if (dump_sects[i] & RELOC_DUMP)
13164 dump_section_as_bytes (section, file, TRUE);
13165
13166 if (dump_sects[i] & STRING_DUMP)
13167 dump_section_as_strings (section, file);
13168
13169 if (dump_sects[i] & DEBUG_DUMP)
13170 display_debug_section (i, section, file);
13171 }
13172
13173 /* Check to see if the user requested a
13174 dump of a section that does not exist. */
13175 while (i++ < num_dump_sects)
13176 if (dump_sects[i])
13177 warn (_("Section %d was not dumped because it does not exist!\n"), i);
13178 }
13179
13180 static void
13181 process_mips_fpe_exception (int mask)
13182 {
13183 if (mask)
13184 {
13185 int first = 1;
13186 if (mask & OEX_FPU_INEX)
13187 fputs ("INEX", stdout), first = 0;
13188 if (mask & OEX_FPU_UFLO)
13189 printf ("%sUFLO", first ? "" : "|"), first = 0;
13190 if (mask & OEX_FPU_OFLO)
13191 printf ("%sOFLO", first ? "" : "|"), first = 0;
13192 if (mask & OEX_FPU_DIV0)
13193 printf ("%sDIV0", first ? "" : "|"), first = 0;
13194 if (mask & OEX_FPU_INVAL)
13195 printf ("%sINVAL", first ? "" : "|");
13196 }
13197 else
13198 fputs ("0", stdout);
13199 }
13200
13201 /* Display's the value of TAG at location P. If TAG is
13202 greater than 0 it is assumed to be an unknown tag, and
13203 a message is printed to this effect. Otherwise it is
13204 assumed that a message has already been printed.
13205
13206 If the bottom bit of TAG is set it assumed to have a
13207 string value, otherwise it is assumed to have an integer
13208 value.
13209
13210 Returns an updated P pointing to the first unread byte
13211 beyond the end of TAG's value.
13212
13213 Reads at or beyond END will not be made. */
13214
13215 static unsigned char *
13216 display_tag_value (int tag,
13217 unsigned char * p,
13218 const unsigned char * const end)
13219 {
13220 unsigned long val;
13221
13222 if (tag > 0)
13223 printf (" Tag_unknown_%d: ", tag);
13224
13225 if (p >= end)
13226 {
13227 warn (_("<corrupt tag>\n"));
13228 }
13229 else if (tag & 1)
13230 {
13231 /* PR 17531 file: 027-19978-0.004. */
13232 size_t maxlen = (end - p) - 1;
13233
13234 putchar ('"');
13235 if (maxlen > 0)
13236 {
13237 print_symbol ((int) maxlen, (const char *) p);
13238 p += strnlen ((char *) p, maxlen) + 1;
13239 }
13240 else
13241 {
13242 printf (_("<corrupt string tag>"));
13243 p = (unsigned char *) end;
13244 }
13245 printf ("\"\n");
13246 }
13247 else
13248 {
13249 unsigned int len;
13250
13251 val = read_uleb128 (p, &len, end);
13252 p += len;
13253 printf ("%ld (0x%lx)\n", val, val);
13254 }
13255
13256 assert (p <= end);
13257 return p;
13258 }
13259
13260 /* ARM EABI attributes section. */
13261 typedef struct
13262 {
13263 unsigned int tag;
13264 const char * name;
13265 /* 0 = special, 1 = string, 2 = uleb123, > 0x80 == table lookup. */
13266 unsigned int type;
13267 const char ** table;
13268 } arm_attr_public_tag;
13269
13270 static const char * arm_attr_tag_CPU_arch[] =
13271 {"Pre-v4", "v4", "v4T", "v5T", "v5TE", "v5TEJ", "v6", "v6KZ", "v6T2",
13272 "v6K", "v7", "v6-M", "v6S-M", "v7E-M", "v8", "", "v8-M.baseline",
13273 "v8-M.mainline"};
13274 static const char * arm_attr_tag_ARM_ISA_use[] = {"No", "Yes"};
13275 static const char * arm_attr_tag_THUMB_ISA_use[] =
13276 {"No", "Thumb-1", "Thumb-2", "Yes"};
13277 static const char * arm_attr_tag_FP_arch[] =
13278 {"No", "VFPv1", "VFPv2", "VFPv3", "VFPv3-D16", "VFPv4", "VFPv4-D16",
13279 "FP for ARMv8", "FPv5/FP-D16 for ARMv8"};
13280 static const char * arm_attr_tag_WMMX_arch[] = {"No", "WMMXv1", "WMMXv2"};
13281 static const char * arm_attr_tag_Advanced_SIMD_arch[] =
13282 {"No", "NEONv1", "NEONv1 with Fused-MAC", "NEON for ARMv8",
13283 "NEON for ARMv8.1"};
13284 static const char * arm_attr_tag_PCS_config[] =
13285 {"None", "Bare platform", "Linux application", "Linux DSO", "PalmOS 2004",
13286 "PalmOS (reserved)", "SymbianOS 2004", "SymbianOS (reserved)"};
13287 static const char * arm_attr_tag_ABI_PCS_R9_use[] =
13288 {"V6", "SB", "TLS", "Unused"};
13289 static const char * arm_attr_tag_ABI_PCS_RW_data[] =
13290 {"Absolute", "PC-relative", "SB-relative", "None"};
13291 static const char * arm_attr_tag_ABI_PCS_RO_data[] =
13292 {"Absolute", "PC-relative", "None"};
13293 static const char * arm_attr_tag_ABI_PCS_GOT_use[] =
13294 {"None", "direct", "GOT-indirect"};
13295 static const char * arm_attr_tag_ABI_PCS_wchar_t[] =
13296 {"None", "??? 1", "2", "??? 3", "4"};
13297 static const char * arm_attr_tag_ABI_FP_rounding[] = {"Unused", "Needed"};
13298 static const char * arm_attr_tag_ABI_FP_denormal[] =
13299 {"Unused", "Needed", "Sign only"};
13300 static const char * arm_attr_tag_ABI_FP_exceptions[] = {"Unused", "Needed"};
13301 static const char * arm_attr_tag_ABI_FP_user_exceptions[] = {"Unused", "Needed"};
13302 static const char * arm_attr_tag_ABI_FP_number_model[] =
13303 {"Unused", "Finite", "RTABI", "IEEE 754"};
13304 static const char * arm_attr_tag_ABI_enum_size[] =
13305 {"Unused", "small", "int", "forced to int"};
13306 static const char * arm_attr_tag_ABI_HardFP_use[] =
13307 {"As Tag_FP_arch", "SP only", "Reserved", "Deprecated"};
13308 static const char * arm_attr_tag_ABI_VFP_args[] =
13309 {"AAPCS", "VFP registers", "custom", "compatible"};
13310 static const char * arm_attr_tag_ABI_WMMX_args[] =
13311 {"AAPCS", "WMMX registers", "custom"};
13312 static const char * arm_attr_tag_ABI_optimization_goals[] =
13313 {"None", "Prefer Speed", "Aggressive Speed", "Prefer Size",
13314 "Aggressive Size", "Prefer Debug", "Aggressive Debug"};
13315 static const char * arm_attr_tag_ABI_FP_optimization_goals[] =
13316 {"None", "Prefer Speed", "Aggressive Speed", "Prefer Size",
13317 "Aggressive Size", "Prefer Accuracy", "Aggressive Accuracy"};
13318 static const char * arm_attr_tag_CPU_unaligned_access[] = {"None", "v6"};
13319 static const char * arm_attr_tag_FP_HP_extension[] =
13320 {"Not Allowed", "Allowed"};
13321 static const char * arm_attr_tag_ABI_FP_16bit_format[] =
13322 {"None", "IEEE 754", "Alternative Format"};
13323 static const char * arm_attr_tag_DSP_extension[] =
13324 {"Follow architecture", "Allowed"};
13325 static const char * arm_attr_tag_MPextension_use[] =
13326 {"Not Allowed", "Allowed"};
13327 static const char * arm_attr_tag_DIV_use[] =
13328 {"Allowed in Thumb-ISA, v7-R or v7-M", "Not allowed",
13329 "Allowed in v7-A with integer division extension"};
13330 static const char * arm_attr_tag_T2EE_use[] = {"Not Allowed", "Allowed"};
13331 static const char * arm_attr_tag_Virtualization_use[] =
13332 {"Not Allowed", "TrustZone", "Virtualization Extensions",
13333 "TrustZone and Virtualization Extensions"};
13334 static const char * arm_attr_tag_MPextension_use_legacy[] =
13335 {"Not Allowed", "Allowed"};
13336
13337 #define LOOKUP(id, name) \
13338 {id, #name, 0x80 | ARRAY_SIZE(arm_attr_tag_##name), arm_attr_tag_##name}
13339 static arm_attr_public_tag arm_attr_public_tags[] =
13340 {
13341 {4, "CPU_raw_name", 1, NULL},
13342 {5, "CPU_name", 1, NULL},
13343 LOOKUP(6, CPU_arch),
13344 {7, "CPU_arch_profile", 0, NULL},
13345 LOOKUP(8, ARM_ISA_use),
13346 LOOKUP(9, THUMB_ISA_use),
13347 LOOKUP(10, FP_arch),
13348 LOOKUP(11, WMMX_arch),
13349 LOOKUP(12, Advanced_SIMD_arch),
13350 LOOKUP(13, PCS_config),
13351 LOOKUP(14, ABI_PCS_R9_use),
13352 LOOKUP(15, ABI_PCS_RW_data),
13353 LOOKUP(16, ABI_PCS_RO_data),
13354 LOOKUP(17, ABI_PCS_GOT_use),
13355 LOOKUP(18, ABI_PCS_wchar_t),
13356 LOOKUP(19, ABI_FP_rounding),
13357 LOOKUP(20, ABI_FP_denormal),
13358 LOOKUP(21, ABI_FP_exceptions),
13359 LOOKUP(22, ABI_FP_user_exceptions),
13360 LOOKUP(23, ABI_FP_number_model),
13361 {24, "ABI_align_needed", 0, NULL},
13362 {25, "ABI_align_preserved", 0, NULL},
13363 LOOKUP(26, ABI_enum_size),
13364 LOOKUP(27, ABI_HardFP_use),
13365 LOOKUP(28, ABI_VFP_args),
13366 LOOKUP(29, ABI_WMMX_args),
13367 LOOKUP(30, ABI_optimization_goals),
13368 LOOKUP(31, ABI_FP_optimization_goals),
13369 {32, "compatibility", 0, NULL},
13370 LOOKUP(34, CPU_unaligned_access),
13371 LOOKUP(36, FP_HP_extension),
13372 LOOKUP(38, ABI_FP_16bit_format),
13373 LOOKUP(42, MPextension_use),
13374 LOOKUP(44, DIV_use),
13375 LOOKUP(46, DSP_extension),
13376 {64, "nodefaults", 0, NULL},
13377 {65, "also_compatible_with", 0, NULL},
13378 LOOKUP(66, T2EE_use),
13379 {67, "conformance", 1, NULL},
13380 LOOKUP(68, Virtualization_use),
13381 LOOKUP(70, MPextension_use_legacy)
13382 };
13383 #undef LOOKUP
13384
13385 static unsigned char *
13386 display_arm_attribute (unsigned char * p,
13387 const unsigned char * const end)
13388 {
13389 unsigned int tag;
13390 unsigned int len;
13391 unsigned int val;
13392 arm_attr_public_tag * attr;
13393 unsigned i;
13394 unsigned int type;
13395
13396 tag = read_uleb128 (p, &len, end);
13397 p += len;
13398 attr = NULL;
13399 for (i = 0; i < ARRAY_SIZE (arm_attr_public_tags); i++)
13400 {
13401 if (arm_attr_public_tags[i].tag == tag)
13402 {
13403 attr = &arm_attr_public_tags[i];
13404 break;
13405 }
13406 }
13407
13408 if (attr)
13409 {
13410 printf (" Tag_%s: ", attr->name);
13411 switch (attr->type)
13412 {
13413 case 0:
13414 switch (tag)
13415 {
13416 case 7: /* Tag_CPU_arch_profile. */
13417 val = read_uleb128 (p, &len, end);
13418 p += len;
13419 switch (val)
13420 {
13421 case 0: printf (_("None\n")); break;
13422 case 'A': printf (_("Application\n")); break;
13423 case 'R': printf (_("Realtime\n")); break;
13424 case 'M': printf (_("Microcontroller\n")); break;
13425 case 'S': printf (_("Application or Realtime\n")); break;
13426 default: printf ("??? (%d)\n", val); break;
13427 }
13428 break;
13429
13430 case 24: /* Tag_align_needed. */
13431 val = read_uleb128 (p, &len, end);
13432 p += len;
13433 switch (val)
13434 {
13435 case 0: printf (_("None\n")); break;
13436 case 1: printf (_("8-byte\n")); break;
13437 case 2: printf (_("4-byte\n")); break;
13438 case 3: printf ("??? 3\n"); break;
13439 default:
13440 if (val <= 12)
13441 printf (_("8-byte and up to %d-byte extended\n"),
13442 1 << val);
13443 else
13444 printf ("??? (%d)\n", val);
13445 break;
13446 }
13447 break;
13448
13449 case 25: /* Tag_align_preserved. */
13450 val = read_uleb128 (p, &len, end);
13451 p += len;
13452 switch (val)
13453 {
13454 case 0: printf (_("None\n")); break;
13455 case 1: printf (_("8-byte, except leaf SP\n")); break;
13456 case 2: printf (_("8-byte\n")); break;
13457 case 3: printf ("??? 3\n"); break;
13458 default:
13459 if (val <= 12)
13460 printf (_("8-byte and up to %d-byte extended\n"),
13461 1 << val);
13462 else
13463 printf ("??? (%d)\n", val);
13464 break;
13465 }
13466 break;
13467
13468 case 32: /* Tag_compatibility. */
13469 {
13470 val = read_uleb128 (p, &len, end);
13471 p += len;
13472 printf (_("flag = %d, vendor = "), val);
13473 if (p < end - 1)
13474 {
13475 size_t maxlen = (end - p) - 1;
13476
13477 print_symbol ((int) maxlen, (const char *) p);
13478 p += strnlen ((char *) p, maxlen) + 1;
13479 }
13480 else
13481 {
13482 printf (_("<corrupt>"));
13483 p = (unsigned char *) end;
13484 }
13485 putchar ('\n');
13486 }
13487 break;
13488
13489 case 64: /* Tag_nodefaults. */
13490 /* PR 17531: file: 001-505008-0.01. */
13491 if (p < end)
13492 p++;
13493 printf (_("True\n"));
13494 break;
13495
13496 case 65: /* Tag_also_compatible_with. */
13497 val = read_uleb128 (p, &len, end);
13498 p += len;
13499 if (val == 6 /* Tag_CPU_arch. */)
13500 {
13501 val = read_uleb128 (p, &len, end);
13502 p += len;
13503 if ((unsigned int) val >= ARRAY_SIZE (arm_attr_tag_CPU_arch))
13504 printf ("??? (%d)\n", val);
13505 else
13506 printf ("%s\n", arm_attr_tag_CPU_arch[val]);
13507 }
13508 else
13509 printf ("???\n");
13510 while (p < end && *(p++) != '\0' /* NUL terminator. */)
13511 ;
13512 break;
13513
13514 default:
13515 printf (_("<unknown: %d>\n"), tag);
13516 break;
13517 }
13518 return p;
13519
13520 case 1:
13521 return display_tag_value (-1, p, end);
13522 case 2:
13523 return display_tag_value (0, p, end);
13524
13525 default:
13526 assert (attr->type & 0x80);
13527 val = read_uleb128 (p, &len, end);
13528 p += len;
13529 type = attr->type & 0x7f;
13530 if (val >= type)
13531 printf ("??? (%d)\n", val);
13532 else
13533 printf ("%s\n", attr->table[val]);
13534 return p;
13535 }
13536 }
13537
13538 return display_tag_value (tag, p, end);
13539 }
13540
13541 static unsigned char *
13542 display_gnu_attribute (unsigned char * p,
13543 unsigned char * (* display_proc_gnu_attribute) (unsigned char *, int, const unsigned char * const),
13544 const unsigned char * const end)
13545 {
13546 int tag;
13547 unsigned int len;
13548 int val;
13549
13550 tag = read_uleb128 (p, &len, end);
13551 p += len;
13552
13553 /* Tag_compatibility is the only generic GNU attribute defined at
13554 present. */
13555 if (tag == 32)
13556 {
13557 val = read_uleb128 (p, &len, end);
13558 p += len;
13559
13560 printf (_("flag = %d, vendor = "), val);
13561 if (p == end)
13562 {
13563 printf (_("<corrupt>\n"));
13564 warn (_("corrupt vendor attribute\n"));
13565 }
13566 else
13567 {
13568 if (p < end - 1)
13569 {
13570 size_t maxlen = (end - p) - 1;
13571
13572 print_symbol ((int) maxlen, (const char *) p);
13573 p += strnlen ((char *) p, maxlen) + 1;
13574 }
13575 else
13576 {
13577 printf (_("<corrupt>"));
13578 p = (unsigned char *) end;
13579 }
13580 putchar ('\n');
13581 }
13582 return p;
13583 }
13584
13585 if ((tag & 2) == 0 && display_proc_gnu_attribute)
13586 return display_proc_gnu_attribute (p, tag, end);
13587
13588 return display_tag_value (tag, p, end);
13589 }
13590
13591 static unsigned char *
13592 display_power_gnu_attribute (unsigned char * p,
13593 int tag,
13594 const unsigned char * const end)
13595 {
13596 unsigned int len;
13597 unsigned int val;
13598
13599 if (tag == Tag_GNU_Power_ABI_FP)
13600 {
13601 val = read_uleb128 (p, &len, end);
13602 p += len;
13603 printf (" Tag_GNU_Power_ABI_FP: ");
13604 if (len == 0)
13605 {
13606 printf (_("<corrupt>\n"));
13607 return p;
13608 }
13609
13610 if (val > 15)
13611 printf ("(%#x), ", val);
13612
13613 switch (val & 3)
13614 {
13615 case 0:
13616 printf (_("unspecified hard/soft float, "));
13617 break;
13618 case 1:
13619 printf (_("hard float, "));
13620 break;
13621 case 2:
13622 printf (_("soft float, "));
13623 break;
13624 case 3:
13625 printf (_("single-precision hard float, "));
13626 break;
13627 }
13628
13629 switch (val & 0xC)
13630 {
13631 case 0:
13632 printf (_("unspecified long double\n"));
13633 break;
13634 case 4:
13635 printf (_("128-bit IBM long double\n"));
13636 break;
13637 case 8:
13638 printf (_("64-bit long double\n"));
13639 break;
13640 case 12:
13641 printf (_("128-bit IEEE long double\n"));
13642 break;
13643 }
13644 return p;
13645 }
13646
13647 if (tag == Tag_GNU_Power_ABI_Vector)
13648 {
13649 val = read_uleb128 (p, &len, end);
13650 p += len;
13651 printf (" Tag_GNU_Power_ABI_Vector: ");
13652 if (len == 0)
13653 {
13654 printf (_("<corrupt>\n"));
13655 return p;
13656 }
13657
13658 if (val > 3)
13659 printf ("(%#x), ", val);
13660
13661 switch (val & 3)
13662 {
13663 case 0:
13664 printf (_("unspecified\n"));
13665 break;
13666 case 1:
13667 printf (_("generic\n"));
13668 break;
13669 case 2:
13670 printf ("AltiVec\n");
13671 break;
13672 case 3:
13673 printf ("SPE\n");
13674 break;
13675 }
13676 return p;
13677 }
13678
13679 if (tag == Tag_GNU_Power_ABI_Struct_Return)
13680 {
13681 val = read_uleb128 (p, &len, end);
13682 p += len;
13683 printf (" Tag_GNU_Power_ABI_Struct_Return: ");
13684 if (len == 0)
13685 {
13686 printf (_("<corrupt>\n"));
13687 return p;
13688 }
13689
13690 if (val > 2)
13691 printf ("(%#x), ", val);
13692
13693 switch (val & 3)
13694 {
13695 case 0:
13696 printf (_("unspecified\n"));
13697 break;
13698 case 1:
13699 printf ("r3/r4\n");
13700 break;
13701 case 2:
13702 printf (_("memory\n"));
13703 break;
13704 case 3:
13705 printf ("???\n");
13706 break;
13707 }
13708 return p;
13709 }
13710
13711 return display_tag_value (tag & 1, p, end);
13712 }
13713
13714 static unsigned char *
13715 display_s390_gnu_attribute (unsigned char * p,
13716 int tag,
13717 const unsigned char * const end)
13718 {
13719 unsigned int len;
13720 int val;
13721
13722 if (tag == Tag_GNU_S390_ABI_Vector)
13723 {
13724 val = read_uleb128 (p, &len, end);
13725 p += len;
13726 printf (" Tag_GNU_S390_ABI_Vector: ");
13727
13728 switch (val)
13729 {
13730 case 0:
13731 printf (_("any\n"));
13732 break;
13733 case 1:
13734 printf (_("software\n"));
13735 break;
13736 case 2:
13737 printf (_("hardware\n"));
13738 break;
13739 default:
13740 printf ("??? (%d)\n", val);
13741 break;
13742 }
13743 return p;
13744 }
13745
13746 return display_tag_value (tag & 1, p, end);
13747 }
13748
13749 static void
13750 display_sparc_hwcaps (int mask)
13751 {
13752 if (mask)
13753 {
13754 int first = 1;
13755
13756 if (mask & ELF_SPARC_HWCAP_MUL32)
13757 fputs ("mul32", stdout), first = 0;
13758 if (mask & ELF_SPARC_HWCAP_DIV32)
13759 printf ("%sdiv32", first ? "" : "|"), first = 0;
13760 if (mask & ELF_SPARC_HWCAP_FSMULD)
13761 printf ("%sfsmuld", first ? "" : "|"), first = 0;
13762 if (mask & ELF_SPARC_HWCAP_V8PLUS)
13763 printf ("%sv8plus", first ? "" : "|"), first = 0;
13764 if (mask & ELF_SPARC_HWCAP_POPC)
13765 printf ("%spopc", first ? "" : "|"), first = 0;
13766 if (mask & ELF_SPARC_HWCAP_VIS)
13767 printf ("%svis", first ? "" : "|"), first = 0;
13768 if (mask & ELF_SPARC_HWCAP_VIS2)
13769 printf ("%svis2", first ? "" : "|"), first = 0;
13770 if (mask & ELF_SPARC_HWCAP_ASI_BLK_INIT)
13771 printf ("%sASIBlkInit", first ? "" : "|"), first = 0;
13772 if (mask & ELF_SPARC_HWCAP_FMAF)
13773 printf ("%sfmaf", first ? "" : "|"), first = 0;
13774 if (mask & ELF_SPARC_HWCAP_VIS3)
13775 printf ("%svis3", first ? "" : "|"), first = 0;
13776 if (mask & ELF_SPARC_HWCAP_HPC)
13777 printf ("%shpc", first ? "" : "|"), first = 0;
13778 if (mask & ELF_SPARC_HWCAP_RANDOM)
13779 printf ("%srandom", first ? "" : "|"), first = 0;
13780 if (mask & ELF_SPARC_HWCAP_TRANS)
13781 printf ("%strans", first ? "" : "|"), first = 0;
13782 if (mask & ELF_SPARC_HWCAP_FJFMAU)
13783 printf ("%sfjfmau", first ? "" : "|"), first = 0;
13784 if (mask & ELF_SPARC_HWCAP_IMA)
13785 printf ("%sima", first ? "" : "|"), first = 0;
13786 if (mask & ELF_SPARC_HWCAP_ASI_CACHE_SPARING)
13787 printf ("%scspare", first ? "" : "|"), first = 0;
13788 }
13789 else
13790 fputc ('0', stdout);
13791 fputc ('\n', stdout);
13792 }
13793
13794 static void
13795 display_sparc_hwcaps2 (int mask)
13796 {
13797 if (mask)
13798 {
13799 int first = 1;
13800
13801 if (mask & ELF_SPARC_HWCAP2_FJATHPLUS)
13802 fputs ("fjathplus", stdout), first = 0;
13803 if (mask & ELF_SPARC_HWCAP2_VIS3B)
13804 printf ("%svis3b", first ? "" : "|"), first = 0;
13805 if (mask & ELF_SPARC_HWCAP2_ADP)
13806 printf ("%sadp", first ? "" : "|"), first = 0;
13807 if (mask & ELF_SPARC_HWCAP2_SPARC5)
13808 printf ("%ssparc5", first ? "" : "|"), first = 0;
13809 if (mask & ELF_SPARC_HWCAP2_MWAIT)
13810 printf ("%smwait", first ? "" : "|"), first = 0;
13811 if (mask & ELF_SPARC_HWCAP2_XMPMUL)
13812 printf ("%sxmpmul", first ? "" : "|"), first = 0;
13813 if (mask & ELF_SPARC_HWCAP2_XMONT)
13814 printf ("%sxmont2", first ? "" : "|"), first = 0;
13815 if (mask & ELF_SPARC_HWCAP2_NSEC)
13816 printf ("%snsec", first ? "" : "|"), first = 0;
13817 if (mask & ELF_SPARC_HWCAP2_FJATHHPC)
13818 printf ("%sfjathhpc", first ? "" : "|"), first = 0;
13819 if (mask & ELF_SPARC_HWCAP2_FJDES)
13820 printf ("%sfjdes", first ? "" : "|"), first = 0;
13821 if (mask & ELF_SPARC_HWCAP2_FJAES)
13822 printf ("%sfjaes", first ? "" : "|"), first = 0;
13823 }
13824 else
13825 fputc ('0', stdout);
13826 fputc ('\n', stdout);
13827 }
13828
13829 static unsigned char *
13830 display_sparc_gnu_attribute (unsigned char * p,
13831 int tag,
13832 const unsigned char * const end)
13833 {
13834 unsigned int len;
13835 int val;
13836
13837 if (tag == Tag_GNU_Sparc_HWCAPS)
13838 {
13839 val = read_uleb128 (p, &len, end);
13840 p += len;
13841 printf (" Tag_GNU_Sparc_HWCAPS: ");
13842 display_sparc_hwcaps (val);
13843 return p;
13844 }
13845 if (tag == Tag_GNU_Sparc_HWCAPS2)
13846 {
13847 val = read_uleb128 (p, &len, end);
13848 p += len;
13849 printf (" Tag_GNU_Sparc_HWCAPS2: ");
13850 display_sparc_hwcaps2 (val);
13851 return p;
13852 }
13853
13854 return display_tag_value (tag, p, end);
13855 }
13856
13857 static void
13858 print_mips_fp_abi_value (int val)
13859 {
13860 switch (val)
13861 {
13862 case Val_GNU_MIPS_ABI_FP_ANY:
13863 printf (_("Hard or soft float\n"));
13864 break;
13865 case Val_GNU_MIPS_ABI_FP_DOUBLE:
13866 printf (_("Hard float (double precision)\n"));
13867 break;
13868 case Val_GNU_MIPS_ABI_FP_SINGLE:
13869 printf (_("Hard float (single precision)\n"));
13870 break;
13871 case Val_GNU_MIPS_ABI_FP_SOFT:
13872 printf (_("Soft float\n"));
13873 break;
13874 case Val_GNU_MIPS_ABI_FP_OLD_64:
13875 printf (_("Hard float (MIPS32r2 64-bit FPU 12 callee-saved)\n"));
13876 break;
13877 case Val_GNU_MIPS_ABI_FP_XX:
13878 printf (_("Hard float (32-bit CPU, Any FPU)\n"));
13879 break;
13880 case Val_GNU_MIPS_ABI_FP_64:
13881 printf (_("Hard float (32-bit CPU, 64-bit FPU)\n"));
13882 break;
13883 case Val_GNU_MIPS_ABI_FP_64A:
13884 printf (_("Hard float compat (32-bit CPU, 64-bit FPU)\n"));
13885 break;
13886 case Val_GNU_MIPS_ABI_FP_NAN2008:
13887 printf (_("NaN 2008 compatibility\n"));
13888 break;
13889 default:
13890 printf ("??? (%d)\n", val);
13891 break;
13892 }
13893 }
13894
13895 static unsigned char *
13896 display_mips_gnu_attribute (unsigned char * p,
13897 int tag,
13898 const unsigned char * const end)
13899 {
13900 if (tag == Tag_GNU_MIPS_ABI_FP)
13901 {
13902 unsigned int len;
13903 int val;
13904
13905 val = read_uleb128 (p, &len, end);
13906 p += len;
13907 printf (" Tag_GNU_MIPS_ABI_FP: ");
13908
13909 print_mips_fp_abi_value (val);
13910
13911 return p;
13912 }
13913
13914 if (tag == Tag_GNU_MIPS_ABI_MSA)
13915 {
13916 unsigned int len;
13917 int val;
13918
13919 val = read_uleb128 (p, &len, end);
13920 p += len;
13921 printf (" Tag_GNU_MIPS_ABI_MSA: ");
13922
13923 switch (val)
13924 {
13925 case Val_GNU_MIPS_ABI_MSA_ANY:
13926 printf (_("Any MSA or not\n"));
13927 break;
13928 case Val_GNU_MIPS_ABI_MSA_128:
13929 printf (_("128-bit MSA\n"));
13930 break;
13931 default:
13932 printf ("??? (%d)\n", val);
13933 break;
13934 }
13935 return p;
13936 }
13937
13938 return display_tag_value (tag & 1, p, end);
13939 }
13940
13941 static unsigned char *
13942 display_tic6x_attribute (unsigned char * p,
13943 const unsigned char * const end)
13944 {
13945 int tag;
13946 unsigned int len;
13947 int val;
13948
13949 tag = read_uleb128 (p, &len, end);
13950 p += len;
13951
13952 switch (tag)
13953 {
13954 case Tag_ISA:
13955 val = read_uleb128 (p, &len, end);
13956 p += len;
13957 printf (" Tag_ISA: ");
13958
13959 switch (val)
13960 {
13961 case C6XABI_Tag_ISA_none:
13962 printf (_("None\n"));
13963 break;
13964 case C6XABI_Tag_ISA_C62X:
13965 printf ("C62x\n");
13966 break;
13967 case C6XABI_Tag_ISA_C67X:
13968 printf ("C67x\n");
13969 break;
13970 case C6XABI_Tag_ISA_C67XP:
13971 printf ("C67x+\n");
13972 break;
13973 case C6XABI_Tag_ISA_C64X:
13974 printf ("C64x\n");
13975 break;
13976 case C6XABI_Tag_ISA_C64XP:
13977 printf ("C64x+\n");
13978 break;
13979 case C6XABI_Tag_ISA_C674X:
13980 printf ("C674x\n");
13981 break;
13982 default:
13983 printf ("??? (%d)\n", val);
13984 break;
13985 }
13986 return p;
13987
13988 case Tag_ABI_wchar_t:
13989 val = read_uleb128 (p, &len, end);
13990 p += len;
13991 printf (" Tag_ABI_wchar_t: ");
13992 switch (val)
13993 {
13994 case 0:
13995 printf (_("Not used\n"));
13996 break;
13997 case 1:
13998 printf (_("2 bytes\n"));
13999 break;
14000 case 2:
14001 printf (_("4 bytes\n"));
14002 break;
14003 default:
14004 printf ("??? (%d)\n", val);
14005 break;
14006 }
14007 return p;
14008
14009 case Tag_ABI_stack_align_needed:
14010 val = read_uleb128 (p, &len, end);
14011 p += len;
14012 printf (" Tag_ABI_stack_align_needed: ");
14013 switch (val)
14014 {
14015 case 0:
14016 printf (_("8-byte\n"));
14017 break;
14018 case 1:
14019 printf (_("16-byte\n"));
14020 break;
14021 default:
14022 printf ("??? (%d)\n", val);
14023 break;
14024 }
14025 return p;
14026
14027 case Tag_ABI_stack_align_preserved:
14028 val = read_uleb128 (p, &len, end);
14029 p += len;
14030 printf (" Tag_ABI_stack_align_preserved: ");
14031 switch (val)
14032 {
14033 case 0:
14034 printf (_("8-byte\n"));
14035 break;
14036 case 1:
14037 printf (_("16-byte\n"));
14038 break;
14039 default:
14040 printf ("??? (%d)\n", val);
14041 break;
14042 }
14043 return p;
14044
14045 case Tag_ABI_DSBT:
14046 val = read_uleb128 (p, &len, end);
14047 p += len;
14048 printf (" Tag_ABI_DSBT: ");
14049 switch (val)
14050 {
14051 case 0:
14052 printf (_("DSBT addressing not used\n"));
14053 break;
14054 case 1:
14055 printf (_("DSBT addressing used\n"));
14056 break;
14057 default:
14058 printf ("??? (%d)\n", val);
14059 break;
14060 }
14061 return p;
14062
14063 case Tag_ABI_PID:
14064 val = read_uleb128 (p, &len, end);
14065 p += len;
14066 printf (" Tag_ABI_PID: ");
14067 switch (val)
14068 {
14069 case 0:
14070 printf (_("Data addressing position-dependent\n"));
14071 break;
14072 case 1:
14073 printf (_("Data addressing position-independent, GOT near DP\n"));
14074 break;
14075 case 2:
14076 printf (_("Data addressing position-independent, GOT far from DP\n"));
14077 break;
14078 default:
14079 printf ("??? (%d)\n", val);
14080 break;
14081 }
14082 return p;
14083
14084 case Tag_ABI_PIC:
14085 val = read_uleb128 (p, &len, end);
14086 p += len;
14087 printf (" Tag_ABI_PIC: ");
14088 switch (val)
14089 {
14090 case 0:
14091 printf (_("Code addressing position-dependent\n"));
14092 break;
14093 case 1:
14094 printf (_("Code addressing position-independent\n"));
14095 break;
14096 default:
14097 printf ("??? (%d)\n", val);
14098 break;
14099 }
14100 return p;
14101
14102 case Tag_ABI_array_object_alignment:
14103 val = read_uleb128 (p, &len, end);
14104 p += len;
14105 printf (" Tag_ABI_array_object_alignment: ");
14106 switch (val)
14107 {
14108 case 0:
14109 printf (_("8-byte\n"));
14110 break;
14111 case 1:
14112 printf (_("4-byte\n"));
14113 break;
14114 case 2:
14115 printf (_("16-byte\n"));
14116 break;
14117 default:
14118 printf ("??? (%d)\n", val);
14119 break;
14120 }
14121 return p;
14122
14123 case Tag_ABI_array_object_align_expected:
14124 val = read_uleb128 (p, &len, end);
14125 p += len;
14126 printf (" Tag_ABI_array_object_align_expected: ");
14127 switch (val)
14128 {
14129 case 0:
14130 printf (_("8-byte\n"));
14131 break;
14132 case 1:
14133 printf (_("4-byte\n"));
14134 break;
14135 case 2:
14136 printf (_("16-byte\n"));
14137 break;
14138 default:
14139 printf ("??? (%d)\n", val);
14140 break;
14141 }
14142 return p;
14143
14144 case Tag_ABI_compatibility:
14145 {
14146 val = read_uleb128 (p, &len, end);
14147 p += len;
14148 printf (" Tag_ABI_compatibility: ");
14149 printf (_("flag = %d, vendor = "), val);
14150 if (p < end - 1)
14151 {
14152 size_t maxlen = (end - p) - 1;
14153
14154 print_symbol ((int) maxlen, (const char *) p);
14155 p += strnlen ((char *) p, maxlen) + 1;
14156 }
14157 else
14158 {
14159 printf (_("<corrupt>"));
14160 p = (unsigned char *) end;
14161 }
14162 putchar ('\n');
14163 return p;
14164 }
14165
14166 case Tag_ABI_conformance:
14167 {
14168 printf (" Tag_ABI_conformance: \"");
14169 if (p < end - 1)
14170 {
14171 size_t maxlen = (end - p) - 1;
14172
14173 print_symbol ((int) maxlen, (const char *) p);
14174 p += strnlen ((char *) p, maxlen) + 1;
14175 }
14176 else
14177 {
14178 printf (_("<corrupt>"));
14179 p = (unsigned char *) end;
14180 }
14181 printf ("\"\n");
14182 return p;
14183 }
14184 }
14185
14186 return display_tag_value (tag, p, end);
14187 }
14188
14189 static void
14190 display_raw_attribute (unsigned char * p, unsigned char * end)
14191 {
14192 unsigned long addr = 0;
14193 size_t bytes = end - p;
14194
14195 assert (end > p);
14196 while (bytes)
14197 {
14198 int j;
14199 int k;
14200 int lbytes = (bytes > 16 ? 16 : bytes);
14201
14202 printf (" 0x%8.8lx ", addr);
14203
14204 for (j = 0; j < 16; j++)
14205 {
14206 if (j < lbytes)
14207 printf ("%2.2x", p[j]);
14208 else
14209 printf (" ");
14210
14211 if ((j & 3) == 3)
14212 printf (" ");
14213 }
14214
14215 for (j = 0; j < lbytes; j++)
14216 {
14217 k = p[j];
14218 if (k >= ' ' && k < 0x7f)
14219 printf ("%c", k);
14220 else
14221 printf (".");
14222 }
14223
14224 putchar ('\n');
14225
14226 p += lbytes;
14227 bytes -= lbytes;
14228 addr += lbytes;
14229 }
14230
14231 putchar ('\n');
14232 }
14233
14234 static unsigned char *
14235 display_msp430x_attribute (unsigned char * p,
14236 const unsigned char * const end)
14237 {
14238 unsigned int len;
14239 int val;
14240 int tag;
14241
14242 tag = read_uleb128 (p, & len, end);
14243 p += len;
14244
14245 switch (tag)
14246 {
14247 case OFBA_MSPABI_Tag_ISA:
14248 val = read_uleb128 (p, &len, end);
14249 p += len;
14250 printf (" Tag_ISA: ");
14251 switch (val)
14252 {
14253 case 0: printf (_("None\n")); break;
14254 case 1: printf (_("MSP430\n")); break;
14255 case 2: printf (_("MSP430X\n")); break;
14256 default: printf ("??? (%d)\n", val); break;
14257 }
14258 break;
14259
14260 case OFBA_MSPABI_Tag_Code_Model:
14261 val = read_uleb128 (p, &len, end);
14262 p += len;
14263 printf (" Tag_Code_Model: ");
14264 switch (val)
14265 {
14266 case 0: printf (_("None\n")); break;
14267 case 1: printf (_("Small\n")); break;
14268 case 2: printf (_("Large\n")); break;
14269 default: printf ("??? (%d)\n", val); break;
14270 }
14271 break;
14272
14273 case OFBA_MSPABI_Tag_Data_Model:
14274 val = read_uleb128 (p, &len, end);
14275 p += len;
14276 printf (" Tag_Data_Model: ");
14277 switch (val)
14278 {
14279 case 0: printf (_("None\n")); break;
14280 case 1: printf (_("Small\n")); break;
14281 case 2: printf (_("Large\n")); break;
14282 case 3: printf (_("Restricted Large\n")); break;
14283 default: printf ("??? (%d)\n", val); break;
14284 }
14285 break;
14286
14287 default:
14288 printf (_(" <unknown tag %d>: "), tag);
14289
14290 if (tag & 1)
14291 {
14292 putchar ('"');
14293 if (p < end - 1)
14294 {
14295 size_t maxlen = (end - p) - 1;
14296
14297 print_symbol ((int) maxlen, (const char *) p);
14298 p += strnlen ((char *) p, maxlen) + 1;
14299 }
14300 else
14301 {
14302 printf (_("<corrupt>"));
14303 p = (unsigned char *) end;
14304 }
14305 printf ("\"\n");
14306 }
14307 else
14308 {
14309 val = read_uleb128 (p, &len, end);
14310 p += len;
14311 printf ("%d (0x%x)\n", val, val);
14312 }
14313 break;
14314 }
14315
14316 assert (p <= end);
14317 return p;
14318 }
14319
14320 static int
14321 process_attributes (FILE * file,
14322 const char * public_name,
14323 unsigned int proc_type,
14324 unsigned char * (* display_pub_attribute) (unsigned char *, const unsigned char * const),
14325 unsigned char * (* display_proc_gnu_attribute) (unsigned char *, int, const unsigned char * const))
14326 {
14327 Elf_Internal_Shdr * sect;
14328 unsigned i;
14329
14330 /* Find the section header so that we get the size. */
14331 for (i = 0, sect = section_headers;
14332 i < elf_header.e_shnum;
14333 i++, sect++)
14334 {
14335 unsigned char * contents;
14336 unsigned char * p;
14337
14338 if (sect->sh_type != proc_type && sect->sh_type != SHT_GNU_ATTRIBUTES)
14339 continue;
14340
14341 contents = (unsigned char *) get_data (NULL, file, sect->sh_offset, 1,
14342 sect->sh_size, _("attributes"));
14343 if (contents == NULL)
14344 continue;
14345
14346 p = contents;
14347 if (*p == 'A')
14348 {
14349 bfd_vma section_len;
14350
14351 section_len = sect->sh_size - 1;
14352 p++;
14353
14354 while (section_len > 0)
14355 {
14356 bfd_vma attr_len;
14357 unsigned int namelen;
14358 bfd_boolean public_section;
14359 bfd_boolean gnu_section;
14360
14361 if (section_len <= 4)
14362 {
14363 error (_("Tag section ends prematurely\n"));
14364 break;
14365 }
14366 attr_len = byte_get (p, 4);
14367 p += 4;
14368
14369 if (attr_len > section_len)
14370 {
14371 error (_("Bad attribute length (%u > %u)\n"),
14372 (unsigned) attr_len, (unsigned) section_len);
14373 attr_len = section_len;
14374 }
14375 /* PR 17531: file: 001-101425-0.004 */
14376 else if (attr_len < 5)
14377 {
14378 error (_("Attribute length of %u is too small\n"), (unsigned) attr_len);
14379 break;
14380 }
14381
14382 section_len -= attr_len;
14383 attr_len -= 4;
14384
14385 namelen = strnlen ((char *) p, attr_len) + 1;
14386 if (namelen == 0 || namelen >= attr_len)
14387 {
14388 error (_("Corrupt attribute section name\n"));
14389 break;
14390 }
14391
14392 printf (_("Attribute Section: "));
14393 print_symbol (INT_MAX, (const char *) p);
14394 putchar ('\n');
14395
14396 if (public_name && streq ((char *) p, public_name))
14397 public_section = TRUE;
14398 else
14399 public_section = FALSE;
14400
14401 if (streq ((char *) p, "gnu"))
14402 gnu_section = TRUE;
14403 else
14404 gnu_section = FALSE;
14405
14406 p += namelen;
14407 attr_len -= namelen;
14408
14409 while (attr_len > 0 && p < contents + sect->sh_size)
14410 {
14411 int tag;
14412 int val;
14413 bfd_vma size;
14414 unsigned char * end;
14415
14416 /* PR binutils/17531: Safe handling of corrupt files. */
14417 if (attr_len < 6)
14418 {
14419 error (_("Unused bytes at end of section\n"));
14420 section_len = 0;
14421 break;
14422 }
14423
14424 tag = *(p++);
14425 size = byte_get (p, 4);
14426 if (size > attr_len)
14427 {
14428 error (_("Bad subsection length (%u > %u)\n"),
14429 (unsigned) size, (unsigned) attr_len);
14430 size = attr_len;
14431 }
14432 /* PR binutils/17531: Safe handling of corrupt files. */
14433 if (size < 6)
14434 {
14435 error (_("Bad subsection length (%u < 6)\n"),
14436 (unsigned) size);
14437 section_len = 0;
14438 break;
14439 }
14440
14441 attr_len -= size;
14442 end = p + size - 1;
14443 assert (end <= contents + sect->sh_size);
14444 p += 4;
14445
14446 switch (tag)
14447 {
14448 case 1:
14449 printf (_("File Attributes\n"));
14450 break;
14451 case 2:
14452 printf (_("Section Attributes:"));
14453 goto do_numlist;
14454 case 3:
14455 printf (_("Symbol Attributes:"));
14456 /* Fall through. */
14457 do_numlist:
14458 for (;;)
14459 {
14460 unsigned int j;
14461
14462 val = read_uleb128 (p, &j, end);
14463 p += j;
14464 if (val == 0)
14465 break;
14466 printf (" %d", val);
14467 }
14468 printf ("\n");
14469 break;
14470 default:
14471 printf (_("Unknown tag: %d\n"), tag);
14472 public_section = FALSE;
14473 break;
14474 }
14475
14476 if (public_section && display_pub_attribute != NULL)
14477 {
14478 while (p < end)
14479 p = display_pub_attribute (p, end);
14480 assert (p <= end);
14481 }
14482 else if (gnu_section && display_proc_gnu_attribute != NULL)
14483 {
14484 while (p < end)
14485 p = display_gnu_attribute (p,
14486 display_proc_gnu_attribute,
14487 end);
14488 assert (p <= end);
14489 }
14490 else if (p < end)
14491 {
14492 printf (_(" Unknown attribute:\n"));
14493 display_raw_attribute (p, end);
14494 p = end;
14495 }
14496 else
14497 attr_len = 0;
14498 }
14499 }
14500 }
14501 else
14502 printf (_("Unknown format '%c' (%d)\n"), *p, *p);
14503
14504 free (contents);
14505 }
14506 return 1;
14507 }
14508
14509 static int
14510 process_arm_specific (FILE * file)
14511 {
14512 return process_attributes (file, "aeabi", SHT_ARM_ATTRIBUTES,
14513 display_arm_attribute, NULL);
14514 }
14515
14516 static int
14517 process_power_specific (FILE * file)
14518 {
14519 return process_attributes (file, NULL, SHT_GNU_ATTRIBUTES, NULL,
14520 display_power_gnu_attribute);
14521 }
14522
14523 static int
14524 process_s390_specific (FILE * file)
14525 {
14526 return process_attributes (file, NULL, SHT_GNU_ATTRIBUTES, NULL,
14527 display_s390_gnu_attribute);
14528 }
14529
14530 static int
14531 process_sparc_specific (FILE * file)
14532 {
14533 return process_attributes (file, NULL, SHT_GNU_ATTRIBUTES, NULL,
14534 display_sparc_gnu_attribute);
14535 }
14536
14537 static int
14538 process_tic6x_specific (FILE * file)
14539 {
14540 return process_attributes (file, "c6xabi", SHT_C6000_ATTRIBUTES,
14541 display_tic6x_attribute, NULL);
14542 }
14543
14544 static int
14545 process_msp430x_specific (FILE * file)
14546 {
14547 return process_attributes (file, "mspabi", SHT_MSP430_ATTRIBUTES,
14548 display_msp430x_attribute, NULL);
14549 }
14550
14551 /* DATA points to the contents of a MIPS GOT that starts at VMA PLTGOT.
14552 Print the Address, Access and Initial fields of an entry at VMA ADDR
14553 and return the VMA of the next entry, or -1 if there was a problem.
14554 Does not read from DATA_END or beyond. */
14555
14556 static bfd_vma
14557 print_mips_got_entry (unsigned char * data, bfd_vma pltgot, bfd_vma addr,
14558 unsigned char * data_end)
14559 {
14560 printf (" ");
14561 print_vma (addr, LONG_HEX);
14562 printf (" ");
14563 if (addr < pltgot + 0xfff0)
14564 printf ("%6d(gp)", (int) (addr - pltgot - 0x7ff0));
14565 else
14566 printf ("%10s", "");
14567 printf (" ");
14568 if (data == NULL)
14569 printf ("%*s", is_32bit_elf ? 8 : 16, _("<unknown>"));
14570 else
14571 {
14572 bfd_vma entry;
14573 unsigned char * from = data + addr - pltgot;
14574
14575 if (from + (is_32bit_elf ? 4 : 8) > data_end)
14576 {
14577 warn (_("MIPS GOT entry extends beyond the end of available data\n"));
14578 printf ("%*s", is_32bit_elf ? 8 : 16, _("<corrupt>"));
14579 return (bfd_vma) -1;
14580 }
14581 else
14582 {
14583 entry = byte_get (data + addr - pltgot, is_32bit_elf ? 4 : 8);
14584 print_vma (entry, LONG_HEX);
14585 }
14586 }
14587 return addr + (is_32bit_elf ? 4 : 8);
14588 }
14589
14590 /* DATA points to the contents of a MIPS PLT GOT that starts at VMA
14591 PLTGOT. Print the Address and Initial fields of an entry at VMA
14592 ADDR and return the VMA of the next entry. */
14593
14594 static bfd_vma
14595 print_mips_pltgot_entry (unsigned char * data, bfd_vma pltgot, bfd_vma addr)
14596 {
14597 printf (" ");
14598 print_vma (addr, LONG_HEX);
14599 printf (" ");
14600 if (data == NULL)
14601 printf ("%*s", is_32bit_elf ? 8 : 16, _("<unknown>"));
14602 else
14603 {
14604 bfd_vma entry;
14605
14606 entry = byte_get (data + addr - pltgot, is_32bit_elf ? 4 : 8);
14607 print_vma (entry, LONG_HEX);
14608 }
14609 return addr + (is_32bit_elf ? 4 : 8);
14610 }
14611
14612 static void
14613 print_mips_ases (unsigned int mask)
14614 {
14615 if (mask & AFL_ASE_DSP)
14616 fputs ("\n\tDSP ASE", stdout);
14617 if (mask & AFL_ASE_DSPR2)
14618 fputs ("\n\tDSP R2 ASE", stdout);
14619 if (mask & AFL_ASE_DSPR3)
14620 fputs ("\n\tDSP R3 ASE", stdout);
14621 if (mask & AFL_ASE_EVA)
14622 fputs ("\n\tEnhanced VA Scheme", stdout);
14623 if (mask & AFL_ASE_MCU)
14624 fputs ("\n\tMCU (MicroController) ASE", stdout);
14625 if (mask & AFL_ASE_MDMX)
14626 fputs ("\n\tMDMX ASE", stdout);
14627 if (mask & AFL_ASE_MIPS3D)
14628 fputs ("\n\tMIPS-3D ASE", stdout);
14629 if (mask & AFL_ASE_MT)
14630 fputs ("\n\tMT ASE", stdout);
14631 if (mask & AFL_ASE_SMARTMIPS)
14632 fputs ("\n\tSmartMIPS ASE", stdout);
14633 if (mask & AFL_ASE_VIRT)
14634 fputs ("\n\tVZ ASE", stdout);
14635 if (mask & AFL_ASE_MSA)
14636 fputs ("\n\tMSA ASE", stdout);
14637 if (mask & AFL_ASE_MIPS16)
14638 fputs ("\n\tMIPS16 ASE", stdout);
14639 if (mask & AFL_ASE_MICROMIPS)
14640 fputs ("\n\tMICROMIPS ASE", stdout);
14641 if (mask & AFL_ASE_XPA)
14642 fputs ("\n\tXPA ASE", stdout);
14643 if (mask == 0)
14644 fprintf (stdout, "\n\t%s", _("None"));
14645 else if ((mask & ~AFL_ASE_MASK) != 0)
14646 fprintf (stdout, "\n\t%s (%x)", _("Unknown"), mask & ~AFL_ASE_MASK);
14647 }
14648
14649 static void
14650 print_mips_isa_ext (unsigned int isa_ext)
14651 {
14652 switch (isa_ext)
14653 {
14654 case 0:
14655 fputs (_("None"), stdout);
14656 break;
14657 case AFL_EXT_XLR:
14658 fputs ("RMI XLR", stdout);
14659 break;
14660 case AFL_EXT_OCTEON3:
14661 fputs ("Cavium Networks Octeon3", stdout);
14662 break;
14663 case AFL_EXT_OCTEON2:
14664 fputs ("Cavium Networks Octeon2", stdout);
14665 break;
14666 case AFL_EXT_OCTEONP:
14667 fputs ("Cavium Networks OcteonP", stdout);
14668 break;
14669 case AFL_EXT_LOONGSON_3A:
14670 fputs ("Loongson 3A", stdout);
14671 break;
14672 case AFL_EXT_OCTEON:
14673 fputs ("Cavium Networks Octeon", stdout);
14674 break;
14675 case AFL_EXT_5900:
14676 fputs ("Toshiba R5900", stdout);
14677 break;
14678 case AFL_EXT_4650:
14679 fputs ("MIPS R4650", stdout);
14680 break;
14681 case AFL_EXT_4010:
14682 fputs ("LSI R4010", stdout);
14683 break;
14684 case AFL_EXT_4100:
14685 fputs ("NEC VR4100", stdout);
14686 break;
14687 case AFL_EXT_3900:
14688 fputs ("Toshiba R3900", stdout);
14689 break;
14690 case AFL_EXT_10000:
14691 fputs ("MIPS R10000", stdout);
14692 break;
14693 case AFL_EXT_SB1:
14694 fputs ("Broadcom SB-1", stdout);
14695 break;
14696 case AFL_EXT_4111:
14697 fputs ("NEC VR4111/VR4181", stdout);
14698 break;
14699 case AFL_EXT_4120:
14700 fputs ("NEC VR4120", stdout);
14701 break;
14702 case AFL_EXT_5400:
14703 fputs ("NEC VR5400", stdout);
14704 break;
14705 case AFL_EXT_5500:
14706 fputs ("NEC VR5500", stdout);
14707 break;
14708 case AFL_EXT_LOONGSON_2E:
14709 fputs ("ST Microelectronics Loongson 2E", stdout);
14710 break;
14711 case AFL_EXT_LOONGSON_2F:
14712 fputs ("ST Microelectronics Loongson 2F", stdout);
14713 break;
14714 default:
14715 fprintf (stdout, "%s (%d)", _("Unknown"), isa_ext);
14716 }
14717 }
14718
14719 static int
14720 get_mips_reg_size (int reg_size)
14721 {
14722 return (reg_size == AFL_REG_NONE) ? 0
14723 : (reg_size == AFL_REG_32) ? 32
14724 : (reg_size == AFL_REG_64) ? 64
14725 : (reg_size == AFL_REG_128) ? 128
14726 : -1;
14727 }
14728
14729 static int
14730 process_mips_specific (FILE * file)
14731 {
14732 Elf_Internal_Dyn * entry;
14733 Elf_Internal_Shdr *sect = NULL;
14734 size_t liblist_offset = 0;
14735 size_t liblistno = 0;
14736 size_t conflictsno = 0;
14737 size_t options_offset = 0;
14738 size_t conflicts_offset = 0;
14739 size_t pltrelsz = 0;
14740 size_t pltrel = 0;
14741 bfd_vma pltgot = 0;
14742 bfd_vma mips_pltgot = 0;
14743 bfd_vma jmprel = 0;
14744 bfd_vma local_gotno = 0;
14745 bfd_vma gotsym = 0;
14746 bfd_vma symtabno = 0;
14747
14748 process_attributes (file, NULL, SHT_GNU_ATTRIBUTES, NULL,
14749 display_mips_gnu_attribute);
14750
14751 sect = find_section (".MIPS.abiflags");
14752
14753 if (sect != NULL)
14754 {
14755 Elf_External_ABIFlags_v0 *abiflags_ext;
14756 Elf_Internal_ABIFlags_v0 abiflags_in;
14757
14758 if (sizeof (Elf_External_ABIFlags_v0) != sect->sh_size)
14759 fputs ("\nCorrupt ABI Flags section.\n", stdout);
14760 else
14761 {
14762 abiflags_ext = get_data (NULL, file, sect->sh_offset, 1,
14763 sect->sh_size, _("MIPS ABI Flags section"));
14764 if (abiflags_ext)
14765 {
14766 abiflags_in.version = BYTE_GET (abiflags_ext->version);
14767 abiflags_in.isa_level = BYTE_GET (abiflags_ext->isa_level);
14768 abiflags_in.isa_rev = BYTE_GET (abiflags_ext->isa_rev);
14769 abiflags_in.gpr_size = BYTE_GET (abiflags_ext->gpr_size);
14770 abiflags_in.cpr1_size = BYTE_GET (abiflags_ext->cpr1_size);
14771 abiflags_in.cpr2_size = BYTE_GET (abiflags_ext->cpr2_size);
14772 abiflags_in.fp_abi = BYTE_GET (abiflags_ext->fp_abi);
14773 abiflags_in.isa_ext = BYTE_GET (abiflags_ext->isa_ext);
14774 abiflags_in.ases = BYTE_GET (abiflags_ext->ases);
14775 abiflags_in.flags1 = BYTE_GET (abiflags_ext->flags1);
14776 abiflags_in.flags2 = BYTE_GET (abiflags_ext->flags2);
14777
14778 printf ("\nMIPS ABI Flags Version: %d\n", abiflags_in.version);
14779 printf ("\nISA: MIPS%d", abiflags_in.isa_level);
14780 if (abiflags_in.isa_rev > 1)
14781 printf ("r%d", abiflags_in.isa_rev);
14782 printf ("\nGPR size: %d",
14783 get_mips_reg_size (abiflags_in.gpr_size));
14784 printf ("\nCPR1 size: %d",
14785 get_mips_reg_size (abiflags_in.cpr1_size));
14786 printf ("\nCPR2 size: %d",
14787 get_mips_reg_size (abiflags_in.cpr2_size));
14788 fputs ("\nFP ABI: ", stdout);
14789 print_mips_fp_abi_value (abiflags_in.fp_abi);
14790 fputs ("ISA Extension: ", stdout);
14791 print_mips_isa_ext (abiflags_in.isa_ext);
14792 fputs ("\nASEs:", stdout);
14793 print_mips_ases (abiflags_in.ases);
14794 printf ("\nFLAGS 1: %8.8lx", abiflags_in.flags1);
14795 printf ("\nFLAGS 2: %8.8lx", abiflags_in.flags2);
14796 fputc ('\n', stdout);
14797 free (abiflags_ext);
14798 }
14799 }
14800 }
14801
14802 /* We have a lot of special sections. Thanks SGI! */
14803 if (dynamic_section == NULL)
14804 /* No information available. */
14805 return 0;
14806
14807 for (entry = dynamic_section;
14808 /* PR 17531 file: 012-50589-0.004. */
14809 entry < dynamic_section + dynamic_nent && entry->d_tag != DT_NULL;
14810 ++entry)
14811 switch (entry->d_tag)
14812 {
14813 case DT_MIPS_LIBLIST:
14814 liblist_offset
14815 = offset_from_vma (file, entry->d_un.d_val,
14816 liblistno * sizeof (Elf32_External_Lib));
14817 break;
14818 case DT_MIPS_LIBLISTNO:
14819 liblistno = entry->d_un.d_val;
14820 break;
14821 case DT_MIPS_OPTIONS:
14822 options_offset = offset_from_vma (file, entry->d_un.d_val, 0);
14823 break;
14824 case DT_MIPS_CONFLICT:
14825 conflicts_offset
14826 = offset_from_vma (file, entry->d_un.d_val,
14827 conflictsno * sizeof (Elf32_External_Conflict));
14828 break;
14829 case DT_MIPS_CONFLICTNO:
14830 conflictsno = entry->d_un.d_val;
14831 break;
14832 case DT_PLTGOT:
14833 pltgot = entry->d_un.d_ptr;
14834 break;
14835 case DT_MIPS_LOCAL_GOTNO:
14836 local_gotno = entry->d_un.d_val;
14837 break;
14838 case DT_MIPS_GOTSYM:
14839 gotsym = entry->d_un.d_val;
14840 break;
14841 case DT_MIPS_SYMTABNO:
14842 symtabno = entry->d_un.d_val;
14843 break;
14844 case DT_MIPS_PLTGOT:
14845 mips_pltgot = entry->d_un.d_ptr;
14846 break;
14847 case DT_PLTREL:
14848 pltrel = entry->d_un.d_val;
14849 break;
14850 case DT_PLTRELSZ:
14851 pltrelsz = entry->d_un.d_val;
14852 break;
14853 case DT_JMPREL:
14854 jmprel = entry->d_un.d_ptr;
14855 break;
14856 default:
14857 break;
14858 }
14859
14860 if (liblist_offset != 0 && liblistno != 0 && do_dynamic)
14861 {
14862 Elf32_External_Lib * elib;
14863 size_t cnt;
14864
14865 elib = (Elf32_External_Lib *) get_data (NULL, file, liblist_offset,
14866 liblistno,
14867 sizeof (Elf32_External_Lib),
14868 _("liblist section data"));
14869 if (elib)
14870 {
14871 printf (_("\nSection '.liblist' contains %lu entries:\n"),
14872 (unsigned long) liblistno);
14873 fputs (_(" Library Time Stamp Checksum Version Flags\n"),
14874 stdout);
14875
14876 for (cnt = 0; cnt < liblistno; ++cnt)
14877 {
14878 Elf32_Lib liblist;
14879 time_t atime;
14880 char timebuf[128];
14881 struct tm * tmp;
14882
14883 liblist.l_name = BYTE_GET (elib[cnt].l_name);
14884 atime = BYTE_GET (elib[cnt].l_time_stamp);
14885 liblist.l_checksum = BYTE_GET (elib[cnt].l_checksum);
14886 liblist.l_version = BYTE_GET (elib[cnt].l_version);
14887 liblist.l_flags = BYTE_GET (elib[cnt].l_flags);
14888
14889 tmp = gmtime (&atime);
14890 snprintf (timebuf, sizeof (timebuf),
14891 "%04u-%02u-%02uT%02u:%02u:%02u",
14892 tmp->tm_year + 1900, tmp->tm_mon + 1, tmp->tm_mday,
14893 tmp->tm_hour, tmp->tm_min, tmp->tm_sec);
14894
14895 printf ("%3lu: ", (unsigned long) cnt);
14896 if (VALID_DYNAMIC_NAME (liblist.l_name))
14897 print_symbol (20, GET_DYNAMIC_NAME (liblist.l_name));
14898 else
14899 printf (_("<corrupt: %9ld>"), liblist.l_name);
14900 printf (" %s %#10lx %-7ld", timebuf, liblist.l_checksum,
14901 liblist.l_version);
14902
14903 if (liblist.l_flags == 0)
14904 puts (_(" NONE"));
14905 else
14906 {
14907 static const struct
14908 {
14909 const char * name;
14910 int bit;
14911 }
14912 l_flags_vals[] =
14913 {
14914 { " EXACT_MATCH", LL_EXACT_MATCH },
14915 { " IGNORE_INT_VER", LL_IGNORE_INT_VER },
14916 { " REQUIRE_MINOR", LL_REQUIRE_MINOR },
14917 { " EXPORTS", LL_EXPORTS },
14918 { " DELAY_LOAD", LL_DELAY_LOAD },
14919 { " DELTA", LL_DELTA }
14920 };
14921 int flags = liblist.l_flags;
14922 size_t fcnt;
14923
14924 for (fcnt = 0; fcnt < ARRAY_SIZE (l_flags_vals); ++fcnt)
14925 if ((flags & l_flags_vals[fcnt].bit) != 0)
14926 {
14927 fputs (l_flags_vals[fcnt].name, stdout);
14928 flags ^= l_flags_vals[fcnt].bit;
14929 }
14930 if (flags != 0)
14931 printf (" %#x", (unsigned int) flags);
14932
14933 puts ("");
14934 }
14935 }
14936
14937 free (elib);
14938 }
14939 }
14940
14941 if (options_offset != 0)
14942 {
14943 Elf_External_Options * eopt;
14944 Elf_Internal_Options * iopt;
14945 Elf_Internal_Options * option;
14946 size_t offset;
14947 int cnt;
14948 sect = section_headers;
14949
14950 /* Find the section header so that we get the size. */
14951 sect = find_section_by_type (SHT_MIPS_OPTIONS);
14952 /* PR 17533 file: 012-277276-0.004. */
14953 if (sect == NULL)
14954 {
14955 error (_("No MIPS_OPTIONS header found\n"));
14956 return 0;
14957 }
14958
14959 eopt = (Elf_External_Options *) get_data (NULL, file, options_offset, 1,
14960 sect->sh_size, _("options"));
14961 if (eopt)
14962 {
14963 iopt = (Elf_Internal_Options *)
14964 cmalloc ((sect->sh_size / sizeof (eopt)), sizeof (* iopt));
14965 if (iopt == NULL)
14966 {
14967 error (_("Out of memory allocating space for MIPS options\n"));
14968 return 0;
14969 }
14970
14971 offset = cnt = 0;
14972 option = iopt;
14973
14974 while (offset <= sect->sh_size - sizeof (* eopt))
14975 {
14976 Elf_External_Options * eoption;
14977
14978 eoption = (Elf_External_Options *) ((char *) eopt + offset);
14979
14980 option->kind = BYTE_GET (eoption->kind);
14981 option->size = BYTE_GET (eoption->size);
14982 option->section = BYTE_GET (eoption->section);
14983 option->info = BYTE_GET (eoption->info);
14984
14985 /* PR 17531: file: ffa0fa3b. */
14986 if (option->size < sizeof (* eopt)
14987 || offset + option->size > sect->sh_size)
14988 {
14989 error (_("Invalid size (%u) for MIPS option\n"), option->size);
14990 return 0;
14991 }
14992 offset += option->size;
14993
14994 ++option;
14995 ++cnt;
14996 }
14997
14998 printf (_("\nSection '%s' contains %d entries:\n"),
14999 printable_section_name (sect), cnt);
15000
15001 option = iopt;
15002 offset = 0;
15003
15004 while (cnt-- > 0)
15005 {
15006 size_t len;
15007
15008 switch (option->kind)
15009 {
15010 case ODK_NULL:
15011 /* This shouldn't happen. */
15012 printf (" NULL %d %lx", option->section, option->info);
15013 break;
15014 case ODK_REGINFO:
15015 printf (" REGINFO ");
15016 if (elf_header.e_machine == EM_MIPS)
15017 {
15018 /* 32bit form. */
15019 Elf32_External_RegInfo * ereg;
15020 Elf32_RegInfo reginfo;
15021
15022 ereg = (Elf32_External_RegInfo *) (option + 1);
15023 reginfo.ri_gprmask = BYTE_GET (ereg->ri_gprmask);
15024 reginfo.ri_cprmask[0] = BYTE_GET (ereg->ri_cprmask[0]);
15025 reginfo.ri_cprmask[1] = BYTE_GET (ereg->ri_cprmask[1]);
15026 reginfo.ri_cprmask[2] = BYTE_GET (ereg->ri_cprmask[2]);
15027 reginfo.ri_cprmask[3] = BYTE_GET (ereg->ri_cprmask[3]);
15028 reginfo.ri_gp_value = BYTE_GET (ereg->ri_gp_value);
15029
15030 printf ("GPR %08lx GP 0x%lx\n",
15031 reginfo.ri_gprmask,
15032 (unsigned long) reginfo.ri_gp_value);
15033 printf (" CPR0 %08lx CPR1 %08lx CPR2 %08lx CPR3 %08lx\n",
15034 reginfo.ri_cprmask[0], reginfo.ri_cprmask[1],
15035 reginfo.ri_cprmask[2], reginfo.ri_cprmask[3]);
15036 }
15037 else
15038 {
15039 /* 64 bit form. */
15040 Elf64_External_RegInfo * ereg;
15041 Elf64_Internal_RegInfo reginfo;
15042
15043 ereg = (Elf64_External_RegInfo *) (option + 1);
15044 reginfo.ri_gprmask = BYTE_GET (ereg->ri_gprmask);
15045 reginfo.ri_cprmask[0] = BYTE_GET (ereg->ri_cprmask[0]);
15046 reginfo.ri_cprmask[1] = BYTE_GET (ereg->ri_cprmask[1]);
15047 reginfo.ri_cprmask[2] = BYTE_GET (ereg->ri_cprmask[2]);
15048 reginfo.ri_cprmask[3] = BYTE_GET (ereg->ri_cprmask[3]);
15049 reginfo.ri_gp_value = BYTE_GET (ereg->ri_gp_value);
15050
15051 printf ("GPR %08lx GP 0x",
15052 reginfo.ri_gprmask);
15053 printf_vma (reginfo.ri_gp_value);
15054 printf ("\n");
15055
15056 printf (" CPR0 %08lx CPR1 %08lx CPR2 %08lx CPR3 %08lx\n",
15057 reginfo.ri_cprmask[0], reginfo.ri_cprmask[1],
15058 reginfo.ri_cprmask[2], reginfo.ri_cprmask[3]);
15059 }
15060 ++option;
15061 continue;
15062 case ODK_EXCEPTIONS:
15063 fputs (" EXCEPTIONS fpe_min(", stdout);
15064 process_mips_fpe_exception (option->info & OEX_FPU_MIN);
15065 fputs (") fpe_max(", stdout);
15066 process_mips_fpe_exception ((option->info & OEX_FPU_MAX) >> 8);
15067 fputs (")", stdout);
15068
15069 if (option->info & OEX_PAGE0)
15070 fputs (" PAGE0", stdout);
15071 if (option->info & OEX_SMM)
15072 fputs (" SMM", stdout);
15073 if (option->info & OEX_FPDBUG)
15074 fputs (" FPDBUG", stdout);
15075 if (option->info & OEX_DISMISS)
15076 fputs (" DISMISS", stdout);
15077 break;
15078 case ODK_PAD:
15079 fputs (" PAD ", stdout);
15080 if (option->info & OPAD_PREFIX)
15081 fputs (" PREFIX", stdout);
15082 if (option->info & OPAD_POSTFIX)
15083 fputs (" POSTFIX", stdout);
15084 if (option->info & OPAD_SYMBOL)
15085 fputs (" SYMBOL", stdout);
15086 break;
15087 case ODK_HWPATCH:
15088 fputs (" HWPATCH ", stdout);
15089 if (option->info & OHW_R4KEOP)
15090 fputs (" R4KEOP", stdout);
15091 if (option->info & OHW_R8KPFETCH)
15092 fputs (" R8KPFETCH", stdout);
15093 if (option->info & OHW_R5KEOP)
15094 fputs (" R5KEOP", stdout);
15095 if (option->info & OHW_R5KCVTL)
15096 fputs (" R5KCVTL", stdout);
15097 break;
15098 case ODK_FILL:
15099 fputs (" FILL ", stdout);
15100 /* XXX Print content of info word? */
15101 break;
15102 case ODK_TAGS:
15103 fputs (" TAGS ", stdout);
15104 /* XXX Print content of info word? */
15105 break;
15106 case ODK_HWAND:
15107 fputs (" HWAND ", stdout);
15108 if (option->info & OHWA0_R4KEOP_CHECKED)
15109 fputs (" R4KEOP_CHECKED", stdout);
15110 if (option->info & OHWA0_R4KEOP_CLEAN)
15111 fputs (" R4KEOP_CLEAN", stdout);
15112 break;
15113 case ODK_HWOR:
15114 fputs (" HWOR ", stdout);
15115 if (option->info & OHWA0_R4KEOP_CHECKED)
15116 fputs (" R4KEOP_CHECKED", stdout);
15117 if (option->info & OHWA0_R4KEOP_CLEAN)
15118 fputs (" R4KEOP_CLEAN", stdout);
15119 break;
15120 case ODK_GP_GROUP:
15121 printf (" GP_GROUP %#06lx self-contained %#06lx",
15122 option->info & OGP_GROUP,
15123 (option->info & OGP_SELF) >> 16);
15124 break;
15125 case ODK_IDENT:
15126 printf (" IDENT %#06lx self-contained %#06lx",
15127 option->info & OGP_GROUP,
15128 (option->info & OGP_SELF) >> 16);
15129 break;
15130 default:
15131 /* This shouldn't happen. */
15132 printf (" %3d ??? %d %lx",
15133 option->kind, option->section, option->info);
15134 break;
15135 }
15136
15137 len = sizeof (* eopt);
15138 while (len < option->size)
15139 {
15140 unsigned char datum = * ((unsigned char *) eopt + offset + len);
15141
15142 if (ISPRINT (datum))
15143 printf ("%c", datum);
15144 else
15145 printf ("\\%03o", datum);
15146 len ++;
15147 }
15148 fputs ("\n", stdout);
15149
15150 offset += option->size;
15151 ++option;
15152 }
15153
15154 free (eopt);
15155 }
15156 }
15157
15158 if (conflicts_offset != 0 && conflictsno != 0)
15159 {
15160 Elf32_Conflict * iconf;
15161 size_t cnt;
15162
15163 if (dynamic_symbols == NULL)
15164 {
15165 error (_("conflict list found without a dynamic symbol table\n"));
15166 return 0;
15167 }
15168
15169 iconf = (Elf32_Conflict *) cmalloc (conflictsno, sizeof (* iconf));
15170 if (iconf == NULL)
15171 {
15172 error (_("Out of memory allocating space for dynamic conflicts\n"));
15173 return 0;
15174 }
15175
15176 if (is_32bit_elf)
15177 {
15178 Elf32_External_Conflict * econf32;
15179
15180 econf32 = (Elf32_External_Conflict *)
15181 get_data (NULL, file, conflicts_offset, conflictsno,
15182 sizeof (* econf32), _("conflict"));
15183 if (!econf32)
15184 return 0;
15185
15186 for (cnt = 0; cnt < conflictsno; ++cnt)
15187 iconf[cnt] = BYTE_GET (econf32[cnt]);
15188
15189 free (econf32);
15190 }
15191 else
15192 {
15193 Elf64_External_Conflict * econf64;
15194
15195 econf64 = (Elf64_External_Conflict *)
15196 get_data (NULL, file, conflicts_offset, conflictsno,
15197 sizeof (* econf64), _("conflict"));
15198 if (!econf64)
15199 return 0;
15200
15201 for (cnt = 0; cnt < conflictsno; ++cnt)
15202 iconf[cnt] = BYTE_GET (econf64[cnt]);
15203
15204 free (econf64);
15205 }
15206
15207 printf (_("\nSection '.conflict' contains %lu entries:\n"),
15208 (unsigned long) conflictsno);
15209 puts (_(" Num: Index Value Name"));
15210
15211 for (cnt = 0; cnt < conflictsno; ++cnt)
15212 {
15213 printf ("%5lu: %8lu ", (unsigned long) cnt, iconf[cnt]);
15214
15215 if (iconf[cnt] >= num_dynamic_syms)
15216 printf (_("<corrupt symbol index>"));
15217 else
15218 {
15219 Elf_Internal_Sym * psym;
15220
15221 psym = & dynamic_symbols[iconf[cnt]];
15222 print_vma (psym->st_value, FULL_HEX);
15223 putchar (' ');
15224 if (VALID_DYNAMIC_NAME (psym->st_name))
15225 print_symbol (25, GET_DYNAMIC_NAME (psym->st_name));
15226 else
15227 printf (_("<corrupt: %14ld>"), psym->st_name);
15228 }
15229 putchar ('\n');
15230 }
15231
15232 free (iconf);
15233 }
15234
15235 if (pltgot != 0 && local_gotno != 0)
15236 {
15237 bfd_vma ent, local_end, global_end;
15238 size_t i, offset;
15239 unsigned char * data;
15240 unsigned char * data_end;
15241 int addr_size;
15242
15243 ent = pltgot;
15244 addr_size = (is_32bit_elf ? 4 : 8);
15245 local_end = pltgot + local_gotno * addr_size;
15246
15247 /* PR binutils/17533 file: 012-111227-0.004 */
15248 if (symtabno < gotsym)
15249 {
15250 error (_("The GOT symbol offset (%lu) is greater than the symbol table size (%lu)\n"),
15251 (unsigned long) gotsym, (unsigned long) symtabno);
15252 return 0;
15253 }
15254
15255 global_end = local_end + (symtabno - gotsym) * addr_size;
15256 /* PR 17531: file: 54c91a34. */
15257 if (global_end < local_end)
15258 {
15259 error (_("Too many GOT symbols: %lu\n"), (unsigned long) symtabno);
15260 return 0;
15261 }
15262
15263 offset = offset_from_vma (file, pltgot, global_end - pltgot);
15264 data = (unsigned char *) get_data (NULL, file, offset,
15265 global_end - pltgot, 1,
15266 _("Global Offset Table data"));
15267 if (data == NULL)
15268 return 0;
15269 data_end = data + (global_end - pltgot);
15270
15271 printf (_("\nPrimary GOT:\n"));
15272 printf (_(" Canonical gp value: "));
15273 print_vma (pltgot + 0x7ff0, LONG_HEX);
15274 printf ("\n\n");
15275
15276 printf (_(" Reserved entries:\n"));
15277 printf (_(" %*s %10s %*s Purpose\n"),
15278 addr_size * 2, _("Address"), _("Access"),
15279 addr_size * 2, _("Initial"));
15280 ent = print_mips_got_entry (data, pltgot, ent, data_end);
15281 printf (_(" Lazy resolver\n"));
15282 if (ent == (bfd_vma) -1)
15283 goto got_print_fail;
15284 if (data
15285 && (byte_get (data + ent - pltgot, addr_size)
15286 >> (addr_size * 8 - 1)) != 0)
15287 {
15288 ent = print_mips_got_entry (data, pltgot, ent, data_end);
15289 printf (_(" Module pointer (GNU extension)\n"));
15290 if (ent == (bfd_vma) -1)
15291 goto got_print_fail;
15292 }
15293 printf ("\n");
15294
15295 if (ent < local_end)
15296 {
15297 printf (_(" Local entries:\n"));
15298 printf (" %*s %10s %*s\n",
15299 addr_size * 2, _("Address"), _("Access"),
15300 addr_size * 2, _("Initial"));
15301 while (ent < local_end)
15302 {
15303 ent = print_mips_got_entry (data, pltgot, ent, data_end);
15304 printf ("\n");
15305 if (ent == (bfd_vma) -1)
15306 goto got_print_fail;
15307 }
15308 printf ("\n");
15309 }
15310
15311 if (gotsym < symtabno)
15312 {
15313 int sym_width;
15314
15315 printf (_(" Global entries:\n"));
15316 printf (" %*s %10s %*s %*s %-7s %3s %s\n",
15317 addr_size * 2, _("Address"),
15318 _("Access"),
15319 addr_size * 2, _("Initial"),
15320 addr_size * 2, _("Sym.Val."),
15321 _("Type"),
15322 /* Note for translators: "Ndx" = abbreviated form of "Index". */
15323 _("Ndx"), _("Name"));
15324
15325 sym_width = (is_32bit_elf ? 80 : 160) - 28 - addr_size * 6 - 1;
15326
15327 for (i = gotsym; i < symtabno; i++)
15328 {
15329 ent = print_mips_got_entry (data, pltgot, ent, data_end);
15330 printf (" ");
15331
15332 if (dynamic_symbols == NULL)
15333 printf (_("<no dynamic symbols>"));
15334 else if (i < num_dynamic_syms)
15335 {
15336 Elf_Internal_Sym * psym = dynamic_symbols + i;
15337
15338 print_vma (psym->st_value, LONG_HEX);
15339 printf (" %-7s %3s ",
15340 get_symbol_type (ELF_ST_TYPE (psym->st_info)),
15341 get_symbol_index_type (psym->st_shndx));
15342
15343 if (VALID_DYNAMIC_NAME (psym->st_name))
15344 print_symbol (sym_width, GET_DYNAMIC_NAME (psym->st_name));
15345 else
15346 printf (_("<corrupt: %14ld>"), psym->st_name);
15347 }
15348 else
15349 printf (_("<symbol index %lu exceeds number of dynamic symbols>"),
15350 (unsigned long) i);
15351
15352 printf ("\n");
15353 if (ent == (bfd_vma) -1)
15354 break;
15355 }
15356 printf ("\n");
15357 }
15358
15359 got_print_fail:
15360 if (data)
15361 free (data);
15362 }
15363
15364 if (mips_pltgot != 0 && jmprel != 0 && pltrel != 0 && pltrelsz != 0)
15365 {
15366 bfd_vma ent, end;
15367 size_t offset, rel_offset;
15368 unsigned long count, i;
15369 unsigned char * data;
15370 int addr_size, sym_width;
15371 Elf_Internal_Rela * rels;
15372
15373 rel_offset = offset_from_vma (file, jmprel, pltrelsz);
15374 if (pltrel == DT_RELA)
15375 {
15376 if (!slurp_rela_relocs (file, rel_offset, pltrelsz, &rels, &count))
15377 return 0;
15378 }
15379 else
15380 {
15381 if (!slurp_rel_relocs (file, rel_offset, pltrelsz, &rels, &count))
15382 return 0;
15383 }
15384
15385 ent = mips_pltgot;
15386 addr_size = (is_32bit_elf ? 4 : 8);
15387 end = mips_pltgot + (2 + count) * addr_size;
15388
15389 offset = offset_from_vma (file, mips_pltgot, end - mips_pltgot);
15390 data = (unsigned char *) get_data (NULL, file, offset, end - mips_pltgot,
15391 1, _("Procedure Linkage Table data"));
15392 if (data == NULL)
15393 return 0;
15394
15395 printf ("\nPLT GOT:\n\n");
15396 printf (_(" Reserved entries:\n"));
15397 printf (_(" %*s %*s Purpose\n"),
15398 addr_size * 2, _("Address"), addr_size * 2, _("Initial"));
15399 ent = print_mips_pltgot_entry (data, mips_pltgot, ent);
15400 printf (_(" PLT lazy resolver\n"));
15401 ent = print_mips_pltgot_entry (data, mips_pltgot, ent);
15402 printf (_(" Module pointer\n"));
15403 printf ("\n");
15404
15405 printf (_(" Entries:\n"));
15406 printf (" %*s %*s %*s %-7s %3s %s\n",
15407 addr_size * 2, _("Address"),
15408 addr_size * 2, _("Initial"),
15409 addr_size * 2, _("Sym.Val."), _("Type"), _("Ndx"), _("Name"));
15410 sym_width = (is_32bit_elf ? 80 : 160) - 17 - addr_size * 6 - 1;
15411 for (i = 0; i < count; i++)
15412 {
15413 unsigned long idx = get_reloc_symindex (rels[i].r_info);
15414
15415 ent = print_mips_pltgot_entry (data, mips_pltgot, ent);
15416 printf (" ");
15417
15418 if (idx >= num_dynamic_syms)
15419 printf (_("<corrupt symbol index: %lu>"), idx);
15420 else
15421 {
15422 Elf_Internal_Sym * psym = dynamic_symbols + idx;
15423
15424 print_vma (psym->st_value, LONG_HEX);
15425 printf (" %-7s %3s ",
15426 get_symbol_type (ELF_ST_TYPE (psym->st_info)),
15427 get_symbol_index_type (psym->st_shndx));
15428 if (VALID_DYNAMIC_NAME (psym->st_name))
15429 print_symbol (sym_width, GET_DYNAMIC_NAME (psym->st_name));
15430 else
15431 printf (_("<corrupt: %14ld>"), psym->st_name);
15432 }
15433 printf ("\n");
15434 }
15435 printf ("\n");
15436
15437 if (data)
15438 free (data);
15439 free (rels);
15440 }
15441
15442 return 1;
15443 }
15444
15445 static int
15446 process_nds32_specific (FILE * file)
15447 {
15448 Elf_Internal_Shdr *sect = NULL;
15449
15450 sect = find_section (".nds32_e_flags");
15451 if (sect != NULL)
15452 {
15453 unsigned int *flag;
15454
15455 printf ("\nNDS32 elf flags section:\n");
15456 flag = get_data (NULL, file, sect->sh_offset, 1,
15457 sect->sh_size, _("NDS32 elf flags section"));
15458
15459 switch ((*flag) & 0x3)
15460 {
15461 case 0:
15462 printf ("(VEC_SIZE):\tNo entry.\n");
15463 break;
15464 case 1:
15465 printf ("(VEC_SIZE):\t4 bytes\n");
15466 break;
15467 case 2:
15468 printf ("(VEC_SIZE):\t16 bytes\n");
15469 break;
15470 case 3:
15471 printf ("(VEC_SIZE):\treserved\n");
15472 break;
15473 }
15474 }
15475
15476 return TRUE;
15477 }
15478
15479 static int
15480 process_gnu_liblist (FILE * file)
15481 {
15482 Elf_Internal_Shdr * section;
15483 Elf_Internal_Shdr * string_sec;
15484 Elf32_External_Lib * elib;
15485 char * strtab;
15486 size_t strtab_size;
15487 size_t cnt;
15488 unsigned i;
15489
15490 if (! do_arch)
15491 return 0;
15492
15493 for (i = 0, section = section_headers;
15494 i < elf_header.e_shnum;
15495 i++, section++)
15496 {
15497 switch (section->sh_type)
15498 {
15499 case SHT_GNU_LIBLIST:
15500 if (section->sh_link >= elf_header.e_shnum)
15501 break;
15502
15503 elib = (Elf32_External_Lib *)
15504 get_data (NULL, file, section->sh_offset, 1, section->sh_size,
15505 _("liblist section data"));
15506
15507 if (elib == NULL)
15508 break;
15509 string_sec = section_headers + section->sh_link;
15510
15511 strtab = (char *) get_data (NULL, file, string_sec->sh_offset, 1,
15512 string_sec->sh_size,
15513 _("liblist string table"));
15514 if (strtab == NULL
15515 || section->sh_entsize != sizeof (Elf32_External_Lib))
15516 {
15517 free (elib);
15518 free (strtab);
15519 break;
15520 }
15521 strtab_size = string_sec->sh_size;
15522
15523 printf (_("\nLibrary list section '%s' contains %lu entries:\n"),
15524 printable_section_name (section),
15525 (unsigned long) (section->sh_size / sizeof (Elf32_External_Lib)));
15526
15527 puts (_(" Library Time Stamp Checksum Version Flags"));
15528
15529 for (cnt = 0; cnt < section->sh_size / sizeof (Elf32_External_Lib);
15530 ++cnt)
15531 {
15532 Elf32_Lib liblist;
15533 time_t atime;
15534 char timebuf[128];
15535 struct tm * tmp;
15536
15537 liblist.l_name = BYTE_GET (elib[cnt].l_name);
15538 atime = BYTE_GET (elib[cnt].l_time_stamp);
15539 liblist.l_checksum = BYTE_GET (elib[cnt].l_checksum);
15540 liblist.l_version = BYTE_GET (elib[cnt].l_version);
15541 liblist.l_flags = BYTE_GET (elib[cnt].l_flags);
15542
15543 tmp = gmtime (&atime);
15544 snprintf (timebuf, sizeof (timebuf),
15545 "%04u-%02u-%02uT%02u:%02u:%02u",
15546 tmp->tm_year + 1900, tmp->tm_mon + 1, tmp->tm_mday,
15547 tmp->tm_hour, tmp->tm_min, tmp->tm_sec);
15548
15549 printf ("%3lu: ", (unsigned long) cnt);
15550 if (do_wide)
15551 printf ("%-20s", liblist.l_name < strtab_size
15552 ? strtab + liblist.l_name : _("<corrupt>"));
15553 else
15554 printf ("%-20.20s", liblist.l_name < strtab_size
15555 ? strtab + liblist.l_name : _("<corrupt>"));
15556 printf (" %s %#010lx %-7ld %-7ld\n", timebuf, liblist.l_checksum,
15557 liblist.l_version, liblist.l_flags);
15558 }
15559
15560 free (elib);
15561 free (strtab);
15562 }
15563 }
15564
15565 return 1;
15566 }
15567
15568 static const char *
15569 get_note_type (unsigned e_type)
15570 {
15571 static char buff[64];
15572
15573 if (elf_header.e_type == ET_CORE)
15574 switch (e_type)
15575 {
15576 case NT_AUXV:
15577 return _("NT_AUXV (auxiliary vector)");
15578 case NT_PRSTATUS:
15579 return _("NT_PRSTATUS (prstatus structure)");
15580 case NT_FPREGSET:
15581 return _("NT_FPREGSET (floating point registers)");
15582 case NT_PRPSINFO:
15583 return _("NT_PRPSINFO (prpsinfo structure)");
15584 case NT_TASKSTRUCT:
15585 return _("NT_TASKSTRUCT (task structure)");
15586 case NT_PRXFPREG:
15587 return _("NT_PRXFPREG (user_xfpregs structure)");
15588 case NT_PPC_VMX:
15589 return _("NT_PPC_VMX (ppc Altivec registers)");
15590 case NT_PPC_VSX:
15591 return _("NT_PPC_VSX (ppc VSX registers)");
15592 case NT_386_TLS:
15593 return _("NT_386_TLS (x86 TLS information)");
15594 case NT_386_IOPERM:
15595 return _("NT_386_IOPERM (x86 I/O permissions)");
15596 case NT_X86_XSTATE:
15597 return _("NT_X86_XSTATE (x86 XSAVE extended state)");
15598 case NT_S390_HIGH_GPRS:
15599 return _("NT_S390_HIGH_GPRS (s390 upper register halves)");
15600 case NT_S390_TIMER:
15601 return _("NT_S390_TIMER (s390 timer register)");
15602 case NT_S390_TODCMP:
15603 return _("NT_S390_TODCMP (s390 TOD comparator register)");
15604 case NT_S390_TODPREG:
15605 return _("NT_S390_TODPREG (s390 TOD programmable register)");
15606 case NT_S390_CTRS:
15607 return _("NT_S390_CTRS (s390 control registers)");
15608 case NT_S390_PREFIX:
15609 return _("NT_S390_PREFIX (s390 prefix register)");
15610 case NT_S390_LAST_BREAK:
15611 return _("NT_S390_LAST_BREAK (s390 last breaking event address)");
15612 case NT_S390_SYSTEM_CALL:
15613 return _("NT_S390_SYSTEM_CALL (s390 system call restart data)");
15614 case NT_S390_TDB:
15615 return _("NT_S390_TDB (s390 transaction diagnostic block)");
15616 case NT_S390_VXRS_LOW:
15617 return _("NT_S390_VXRS_LOW (s390 vector registers 0-15 upper half)");
15618 case NT_S390_VXRS_HIGH:
15619 return _("NT_S390_VXRS_HIGH (s390 vector registers 16-31)");
15620 case NT_ARM_VFP:
15621 return _("NT_ARM_VFP (arm VFP registers)");
15622 case NT_ARM_TLS:
15623 return _("NT_ARM_TLS (AArch TLS registers)");
15624 case NT_ARM_HW_BREAK:
15625 return _("NT_ARM_HW_BREAK (AArch hardware breakpoint registers)");
15626 case NT_ARM_HW_WATCH:
15627 return _("NT_ARM_HW_WATCH (AArch hardware watchpoint registers)");
15628 case NT_PSTATUS:
15629 return _("NT_PSTATUS (pstatus structure)");
15630 case NT_FPREGS:
15631 return _("NT_FPREGS (floating point registers)");
15632 case NT_PSINFO:
15633 return _("NT_PSINFO (psinfo structure)");
15634 case NT_LWPSTATUS:
15635 return _("NT_LWPSTATUS (lwpstatus_t structure)");
15636 case NT_LWPSINFO:
15637 return _("NT_LWPSINFO (lwpsinfo_t structure)");
15638 case NT_WIN32PSTATUS:
15639 return _("NT_WIN32PSTATUS (win32_pstatus structure)");
15640 case NT_SIGINFO:
15641 return _("NT_SIGINFO (siginfo_t data)");
15642 case NT_FILE:
15643 return _("NT_FILE (mapped files)");
15644 default:
15645 break;
15646 }
15647 else
15648 switch (e_type)
15649 {
15650 case NT_VERSION:
15651 return _("NT_VERSION (version)");
15652 case NT_ARCH:
15653 return _("NT_ARCH (architecture)");
15654 default:
15655 break;
15656 }
15657
15658 snprintf (buff, sizeof (buff), _("Unknown note type: (0x%08x)"), e_type);
15659 return buff;
15660 }
15661
15662 static int
15663 print_core_note (Elf_Internal_Note *pnote)
15664 {
15665 unsigned int addr_size = is_32bit_elf ? 4 : 8;
15666 bfd_vma count, page_size;
15667 unsigned char *descdata, *filenames, *descend;
15668
15669 if (pnote->type != NT_FILE)
15670 return 1;
15671
15672 #ifndef BFD64
15673 if (!is_32bit_elf)
15674 {
15675 printf (_(" Cannot decode 64-bit note in 32-bit build\n"));
15676 /* Still "successful". */
15677 return 1;
15678 }
15679 #endif
15680
15681 if (pnote->descsz < 2 * addr_size)
15682 {
15683 printf (_(" Malformed note - too short for header\n"));
15684 return 0;
15685 }
15686
15687 descdata = (unsigned char *) pnote->descdata;
15688 descend = descdata + pnote->descsz;
15689
15690 if (descdata[pnote->descsz - 1] != '\0')
15691 {
15692 printf (_(" Malformed note - does not end with \\0\n"));
15693 return 0;
15694 }
15695
15696 count = byte_get (descdata, addr_size);
15697 descdata += addr_size;
15698
15699 page_size = byte_get (descdata, addr_size);
15700 descdata += addr_size;
15701
15702 if (pnote->descsz < 2 * addr_size + count * 3 * addr_size)
15703 {
15704 printf (_(" Malformed note - too short for supplied file count\n"));
15705 return 0;
15706 }
15707
15708 printf (_(" Page size: "));
15709 print_vma (page_size, DEC);
15710 printf ("\n");
15711
15712 printf (_(" %*s%*s%*s\n"),
15713 (int) (2 + 2 * addr_size), _("Start"),
15714 (int) (4 + 2 * addr_size), _("End"),
15715 (int) (4 + 2 * addr_size), _("Page Offset"));
15716 filenames = descdata + count * 3 * addr_size;
15717 while (count-- > 0)
15718 {
15719 bfd_vma start, end, file_ofs;
15720
15721 if (filenames == descend)
15722 {
15723 printf (_(" Malformed note - filenames end too early\n"));
15724 return 0;
15725 }
15726
15727 start = byte_get (descdata, addr_size);
15728 descdata += addr_size;
15729 end = byte_get (descdata, addr_size);
15730 descdata += addr_size;
15731 file_ofs = byte_get (descdata, addr_size);
15732 descdata += addr_size;
15733
15734 printf (" ");
15735 print_vma (start, FULL_HEX);
15736 printf (" ");
15737 print_vma (end, FULL_HEX);
15738 printf (" ");
15739 print_vma (file_ofs, FULL_HEX);
15740 printf ("\n %s\n", filenames);
15741
15742 filenames += 1 + strlen ((char *) filenames);
15743 }
15744
15745 return 1;
15746 }
15747
15748 static const char *
15749 get_gnu_elf_note_type (unsigned e_type)
15750 {
15751 /* NB/ Keep this switch statement in sync with print_gnu_note (). */
15752 switch (e_type)
15753 {
15754 case NT_GNU_ABI_TAG:
15755 return _("NT_GNU_ABI_TAG (ABI version tag)");
15756 case NT_GNU_HWCAP:
15757 return _("NT_GNU_HWCAP (DSO-supplied software HWCAP info)");
15758 case NT_GNU_BUILD_ID:
15759 return _("NT_GNU_BUILD_ID (unique build ID bitstring)");
15760 case NT_GNU_GOLD_VERSION:
15761 return _("NT_GNU_GOLD_VERSION (gold version)");
15762 default:
15763 {
15764 static char buff[64];
15765
15766 snprintf (buff, sizeof (buff), _("Unknown note type: (0x%08x)"), e_type);
15767 return buff;
15768 }
15769 }
15770 }
15771
15772 static int
15773 print_gnu_note (Elf_Internal_Note *pnote)
15774 {
15775 /* NB/ Keep this switch statement in sync with get_gnu_elf_note_type (). */
15776 switch (pnote->type)
15777 {
15778 case NT_GNU_BUILD_ID:
15779 {
15780 unsigned long i;
15781
15782 printf (_(" Build ID: "));
15783 for (i = 0; i < pnote->descsz; ++i)
15784 printf ("%02x", pnote->descdata[i] & 0xff);
15785 printf ("\n");
15786 }
15787 break;
15788
15789 case NT_GNU_ABI_TAG:
15790 {
15791 unsigned long os, major, minor, subminor;
15792 const char *osname;
15793
15794 /* PR 17531: file: 030-599401-0.004. */
15795 if (pnote->descsz < 16)
15796 {
15797 printf (_(" <corrupt GNU_ABI_TAG>\n"));
15798 break;
15799 }
15800
15801 os = byte_get ((unsigned char *) pnote->descdata, 4);
15802 major = byte_get ((unsigned char *) pnote->descdata + 4, 4);
15803 minor = byte_get ((unsigned char *) pnote->descdata + 8, 4);
15804 subminor = byte_get ((unsigned char *) pnote->descdata + 12, 4);
15805
15806 switch (os)
15807 {
15808 case GNU_ABI_TAG_LINUX:
15809 osname = "Linux";
15810 break;
15811 case GNU_ABI_TAG_HURD:
15812 osname = "Hurd";
15813 break;
15814 case GNU_ABI_TAG_SOLARIS:
15815 osname = "Solaris";
15816 break;
15817 case GNU_ABI_TAG_FREEBSD:
15818 osname = "FreeBSD";
15819 break;
15820 case GNU_ABI_TAG_NETBSD:
15821 osname = "NetBSD";
15822 break;
15823 case GNU_ABI_TAG_SYLLABLE:
15824 osname = "Syllable";
15825 break;
15826 case GNU_ABI_TAG_NACL:
15827 osname = "NaCl";
15828 break;
15829 default:
15830 osname = "Unknown";
15831 break;
15832 }
15833
15834 printf (_(" OS: %s, ABI: %ld.%ld.%ld\n"), osname,
15835 major, minor, subminor);
15836 }
15837 break;
15838
15839 case NT_GNU_GOLD_VERSION:
15840 {
15841 unsigned long i;
15842
15843 printf (_(" Version: "));
15844 for (i = 0; i < pnote->descsz && pnote->descdata[i] != '\0'; ++i)
15845 printf ("%c", pnote->descdata[i]);
15846 printf ("\n");
15847 }
15848 break;
15849
15850 case NT_GNU_HWCAP:
15851 {
15852 unsigned long num_entries, mask;
15853
15854 /* Hardware capabilities information. Word 0 is the number of entries.
15855 Word 1 is a bitmask of enabled entries. The rest of the descriptor
15856 is a series of entries, where each entry is a single byte followed
15857 by a nul terminated string. The byte gives the bit number to test
15858 if enabled in the bitmask. */
15859 printf (_(" Hardware Capabilities: "));
15860 if (pnote->descsz < 8)
15861 {
15862 printf (_("<corrupt GNU_HWCAP>\n"));
15863 break;
15864 }
15865 num_entries = byte_get ((unsigned char *) pnote->descdata, 4);
15866 mask = byte_get ((unsigned char *) pnote->descdata + 4, 4);
15867 printf (_("num entries: %ld, enabled mask: %lx\n"), num_entries, mask);
15868 /* FIXME: Add code to display the entries... */
15869 }
15870 break;
15871
15872 default:
15873 /* Handle unrecognised types. An error message should have already been
15874 created by get_gnu_elf_note_type(), so all that we need to do is to
15875 display the data. */
15876 {
15877 unsigned long i;
15878
15879 printf (_(" Description data: "));
15880 for (i = 0; i < pnote->descsz; ++i)
15881 printf ("%02x ", pnote->descdata[i] & 0xff);
15882 printf ("\n");
15883 }
15884 break;
15885 }
15886
15887 return 1;
15888 }
15889
15890 static const char *
15891 get_v850_elf_note_type (enum v850_notes n_type)
15892 {
15893 static char buff[64];
15894
15895 switch (n_type)
15896 {
15897 case V850_NOTE_ALIGNMENT: return _("Alignment of 8-byte objects");
15898 case V850_NOTE_DATA_SIZE: return _("Sizeof double and long double");
15899 case V850_NOTE_FPU_INFO: return _("Type of FPU support needed");
15900 case V850_NOTE_SIMD_INFO: return _("Use of SIMD instructions");
15901 case V850_NOTE_CACHE_INFO: return _("Use of cache");
15902 case V850_NOTE_MMU_INFO: return _("Use of MMU");
15903 default:
15904 snprintf (buff, sizeof (buff), _("Unknown note type: (0x%08x)"), n_type);
15905 return buff;
15906 }
15907 }
15908
15909 static int
15910 print_v850_note (Elf_Internal_Note * pnote)
15911 {
15912 unsigned int val;
15913
15914 if (pnote->descsz != 4)
15915 return 0;
15916 val = byte_get ((unsigned char *) pnote->descdata, pnote->descsz);
15917
15918 if (val == 0)
15919 {
15920 printf (_("not set\n"));
15921 return 1;
15922 }
15923
15924 switch (pnote->type)
15925 {
15926 case V850_NOTE_ALIGNMENT:
15927 switch (val)
15928 {
15929 case EF_RH850_DATA_ALIGN4: printf (_("4-byte\n")); return 1;
15930 case EF_RH850_DATA_ALIGN8: printf (_("8-byte\n")); return 1;
15931 }
15932 break;
15933
15934 case V850_NOTE_DATA_SIZE:
15935 switch (val)
15936 {
15937 case EF_RH850_DOUBLE32: printf (_("4-bytes\n")); return 1;
15938 case EF_RH850_DOUBLE64: printf (_("8-bytes\n")); return 1;
15939 }
15940 break;
15941
15942 case V850_NOTE_FPU_INFO:
15943 switch (val)
15944 {
15945 case EF_RH850_FPU20: printf (_("FPU-2.0\n")); return 1;
15946 case EF_RH850_FPU30: printf (_("FPU-3.0\n")); return 1;
15947 }
15948 break;
15949
15950 case V850_NOTE_MMU_INFO:
15951 case V850_NOTE_CACHE_INFO:
15952 case V850_NOTE_SIMD_INFO:
15953 if (val == EF_RH850_SIMD)
15954 {
15955 printf (_("yes\n"));
15956 return 1;
15957 }
15958 break;
15959
15960 default:
15961 /* An 'unknown note type' message will already have been displayed. */
15962 break;
15963 }
15964
15965 printf (_("unknown value: %x\n"), val);
15966 return 0;
15967 }
15968
15969 static int
15970 process_netbsd_elf_note (Elf_Internal_Note * pnote)
15971 {
15972 unsigned int version;
15973
15974 switch (pnote->type)
15975 {
15976 case NT_NETBSD_IDENT:
15977 version = byte_get ((unsigned char *) pnote->descdata, sizeof (version));
15978 if ((version / 10000) % 100)
15979 printf (" NetBSD\t\t0x%08lx\tIDENT %u (%u.%u%s%c)\n", pnote->descsz,
15980 version, version / 100000000, (version / 1000000) % 100,
15981 (version / 10000) % 100 > 26 ? "Z" : "",
15982 'A' + (version / 10000) % 26);
15983 else
15984 printf (" NetBSD\t\t0x%08lx\tIDENT %u (%u.%u.%u)\n", pnote->descsz,
15985 version, version / 100000000, (version / 1000000) % 100,
15986 (version / 100) % 100);
15987 return 1;
15988
15989 case NT_NETBSD_MARCH:
15990 printf (" NetBSD\t0x%08lx\tMARCH <%s>\n", pnote->descsz,
15991 pnote->descdata);
15992 return 1;
15993
15994 default:
15995 break;
15996 }
15997
15998 printf (" NetBSD\t0x%08lx\tUnknown note type: (0x%08lx)\n", pnote->descsz,
15999 pnote->type);
16000 return 1;
16001 }
16002
16003 static const char *
16004 get_freebsd_elfcore_note_type (unsigned e_type)
16005 {
16006 switch (e_type)
16007 {
16008 case NT_FREEBSD_THRMISC:
16009 return _("NT_THRMISC (thrmisc structure)");
16010 case NT_FREEBSD_PROCSTAT_PROC:
16011 return _("NT_PROCSTAT_PROC (proc data)");
16012 case NT_FREEBSD_PROCSTAT_FILES:
16013 return _("NT_PROCSTAT_FILES (files data)");
16014 case NT_FREEBSD_PROCSTAT_VMMAP:
16015 return _("NT_PROCSTAT_VMMAP (vmmap data)");
16016 case NT_FREEBSD_PROCSTAT_GROUPS:
16017 return _("NT_PROCSTAT_GROUPS (groups data)");
16018 case NT_FREEBSD_PROCSTAT_UMASK:
16019 return _("NT_PROCSTAT_UMASK (umask data)");
16020 case NT_FREEBSD_PROCSTAT_RLIMIT:
16021 return _("NT_PROCSTAT_RLIMIT (rlimit data)");
16022 case NT_FREEBSD_PROCSTAT_OSREL:
16023 return _("NT_PROCSTAT_OSREL (osreldate data)");
16024 case NT_FREEBSD_PROCSTAT_PSSTRINGS:
16025 return _("NT_PROCSTAT_PSSTRINGS (ps_strings data)");
16026 case NT_FREEBSD_PROCSTAT_AUXV:
16027 return _("NT_PROCSTAT_AUXV (auxv data)");
16028 }
16029 return get_note_type (e_type);
16030 }
16031
16032 static const char *
16033 get_netbsd_elfcore_note_type (unsigned e_type)
16034 {
16035 static char buff[64];
16036
16037 if (e_type == NT_NETBSDCORE_PROCINFO)
16038 {
16039 /* NetBSD core "procinfo" structure. */
16040 return _("NetBSD procinfo structure");
16041 }
16042
16043 /* As of Jan 2002 there are no other machine-independent notes
16044 defined for NetBSD core files. If the note type is less
16045 than the start of the machine-dependent note types, we don't
16046 understand it. */
16047
16048 if (e_type < NT_NETBSDCORE_FIRSTMACH)
16049 {
16050 snprintf (buff, sizeof (buff), _("Unknown note type: (0x%08x)"), e_type);
16051 return buff;
16052 }
16053
16054 switch (elf_header.e_machine)
16055 {
16056 /* On the Alpha, SPARC (32-bit and 64-bit), PT_GETREGS == mach+0
16057 and PT_GETFPREGS == mach+2. */
16058
16059 case EM_OLD_ALPHA:
16060 case EM_ALPHA:
16061 case EM_SPARC:
16062 case EM_SPARC32PLUS:
16063 case EM_SPARCV9:
16064 switch (e_type)
16065 {
16066 case NT_NETBSDCORE_FIRSTMACH + 0:
16067 return _("PT_GETREGS (reg structure)");
16068 case NT_NETBSDCORE_FIRSTMACH + 2:
16069 return _("PT_GETFPREGS (fpreg structure)");
16070 default:
16071 break;
16072 }
16073 break;
16074
16075 /* On all other arch's, PT_GETREGS == mach+1 and
16076 PT_GETFPREGS == mach+3. */
16077 default:
16078 switch (e_type)
16079 {
16080 case NT_NETBSDCORE_FIRSTMACH + 1:
16081 return _("PT_GETREGS (reg structure)");
16082 case NT_NETBSDCORE_FIRSTMACH + 3:
16083 return _("PT_GETFPREGS (fpreg structure)");
16084 default:
16085 break;
16086 }
16087 }
16088
16089 snprintf (buff, sizeof (buff), "PT_FIRSTMACH+%d",
16090 e_type - NT_NETBSDCORE_FIRSTMACH);
16091 return buff;
16092 }
16093
16094 static const char *
16095 get_stapsdt_note_type (unsigned e_type)
16096 {
16097 static char buff[64];
16098
16099 switch (e_type)
16100 {
16101 case NT_STAPSDT:
16102 return _("NT_STAPSDT (SystemTap probe descriptors)");
16103
16104 default:
16105 break;
16106 }
16107
16108 snprintf (buff, sizeof (buff), _("Unknown note type: (0x%08x)"), e_type);
16109 return buff;
16110 }
16111
16112 static int
16113 print_stapsdt_note (Elf_Internal_Note *pnote)
16114 {
16115 int addr_size = is_32bit_elf ? 4 : 8;
16116 char *data = pnote->descdata;
16117 char *data_end = pnote->descdata + pnote->descsz;
16118 bfd_vma pc, base_addr, semaphore;
16119 char *provider, *probe, *arg_fmt;
16120
16121 pc = byte_get ((unsigned char *) data, addr_size);
16122 data += addr_size;
16123 base_addr = byte_get ((unsigned char *) data, addr_size);
16124 data += addr_size;
16125 semaphore = byte_get ((unsigned char *) data, addr_size);
16126 data += addr_size;
16127
16128 provider = data;
16129 data += strlen (data) + 1;
16130 probe = data;
16131 data += strlen (data) + 1;
16132 arg_fmt = data;
16133 data += strlen (data) + 1;
16134
16135 printf (_(" Provider: %s\n"), provider);
16136 printf (_(" Name: %s\n"), probe);
16137 printf (_(" Location: "));
16138 print_vma (pc, FULL_HEX);
16139 printf (_(", Base: "));
16140 print_vma (base_addr, FULL_HEX);
16141 printf (_(", Semaphore: "));
16142 print_vma (semaphore, FULL_HEX);
16143 printf ("\n");
16144 printf (_(" Arguments: %s\n"), arg_fmt);
16145
16146 return data == data_end;
16147 }
16148
16149 static const char *
16150 get_ia64_vms_note_type (unsigned e_type)
16151 {
16152 static char buff[64];
16153
16154 switch (e_type)
16155 {
16156 case NT_VMS_MHD:
16157 return _("NT_VMS_MHD (module header)");
16158 case NT_VMS_LNM:
16159 return _("NT_VMS_LNM (language name)");
16160 case NT_VMS_SRC:
16161 return _("NT_VMS_SRC (source files)");
16162 case NT_VMS_TITLE:
16163 return "NT_VMS_TITLE";
16164 case NT_VMS_EIDC:
16165 return _("NT_VMS_EIDC (consistency check)");
16166 case NT_VMS_FPMODE:
16167 return _("NT_VMS_FPMODE (FP mode)");
16168 case NT_VMS_LINKTIME:
16169 return "NT_VMS_LINKTIME";
16170 case NT_VMS_IMGNAM:
16171 return _("NT_VMS_IMGNAM (image name)");
16172 case NT_VMS_IMGID:
16173 return _("NT_VMS_IMGID (image id)");
16174 case NT_VMS_LINKID:
16175 return _("NT_VMS_LINKID (link id)");
16176 case NT_VMS_IMGBID:
16177 return _("NT_VMS_IMGBID (build id)");
16178 case NT_VMS_GSTNAM:
16179 return _("NT_VMS_GSTNAM (sym table name)");
16180 case NT_VMS_ORIG_DYN:
16181 return "NT_VMS_ORIG_DYN";
16182 case NT_VMS_PATCHTIME:
16183 return "NT_VMS_PATCHTIME";
16184 default:
16185 snprintf (buff, sizeof (buff), _("Unknown note type: (0x%08x)"), e_type);
16186 return buff;
16187 }
16188 }
16189
16190 static int
16191 print_ia64_vms_note (Elf_Internal_Note * pnote)
16192 {
16193 switch (pnote->type)
16194 {
16195 case NT_VMS_MHD:
16196 if (pnote->descsz > 36)
16197 {
16198 size_t l = strlen (pnote->descdata + 34);
16199 printf (_(" Creation date : %.17s\n"), pnote->descdata);
16200 printf (_(" Last patch date: %.17s\n"), pnote->descdata + 17);
16201 printf (_(" Module name : %s\n"), pnote->descdata + 34);
16202 printf (_(" Module version : %s\n"), pnote->descdata + 34 + l + 1);
16203 }
16204 else
16205 printf (_(" Invalid size\n"));
16206 break;
16207 case NT_VMS_LNM:
16208 printf (_(" Language: %s\n"), pnote->descdata);
16209 break;
16210 #ifdef BFD64
16211 case NT_VMS_FPMODE:
16212 printf (_(" Floating Point mode: "));
16213 printf ("0x%016" BFD_VMA_FMT "x\n",
16214 (bfd_vma) byte_get ((unsigned char *)pnote->descdata, 8));
16215 break;
16216 case NT_VMS_LINKTIME:
16217 printf (_(" Link time: "));
16218 print_vms_time
16219 ((bfd_int64_t) byte_get ((unsigned char *)pnote->descdata, 8));
16220 printf ("\n");
16221 break;
16222 case NT_VMS_PATCHTIME:
16223 printf (_(" Patch time: "));
16224 print_vms_time
16225 ((bfd_int64_t) byte_get ((unsigned char *)pnote->descdata, 8));
16226 printf ("\n");
16227 break;
16228 case NT_VMS_ORIG_DYN:
16229 printf (_(" Major id: %u, minor id: %u\n"),
16230 (unsigned) byte_get ((unsigned char *)pnote->descdata, 4),
16231 (unsigned) byte_get ((unsigned char *)pnote->descdata + 4, 4));
16232 printf (_(" Last modified : "));
16233 print_vms_time
16234 ((bfd_int64_t) byte_get ((unsigned char *)pnote->descdata + 8, 8));
16235 printf (_("\n Link flags : "));
16236 printf ("0x%016" BFD_VMA_FMT "x\n",
16237 (bfd_vma) byte_get ((unsigned char *)pnote->descdata + 16, 8));
16238 printf (_(" Header flags: 0x%08x\n"),
16239 (unsigned) byte_get ((unsigned char *)pnote->descdata + 24, 4));
16240 printf (_(" Image id : %s\n"), pnote->descdata + 32);
16241 break;
16242 #endif
16243 case NT_VMS_IMGNAM:
16244 printf (_(" Image name: %s\n"), pnote->descdata);
16245 break;
16246 case NT_VMS_GSTNAM:
16247 printf (_(" Global symbol table name: %s\n"), pnote->descdata);
16248 break;
16249 case NT_VMS_IMGID:
16250 printf (_(" Image id: %s\n"), pnote->descdata);
16251 break;
16252 case NT_VMS_LINKID:
16253 printf (_(" Linker id: %s\n"), pnote->descdata);
16254 break;
16255 default:
16256 break;
16257 }
16258 return 1;
16259 }
16260
16261 /* Note that by the ELF standard, the name field is already null byte
16262 terminated, and namesz includes the terminating null byte.
16263 I.E. the value of namesz for the name "FSF" is 4.
16264
16265 If the value of namesz is zero, there is no name present. */
16266 static int
16267 process_note (Elf_Internal_Note * pnote,
16268 FILE * file ATTRIBUTE_UNUSED,
16269 Elf_Internal_Shdr * section ATTRIBUTE_UNUSED)
16270 {
16271 const char * name = pnote->namesz ? pnote->namedata : "(NONE)";
16272 const char * nt;
16273
16274 if (pnote->namesz == 0)
16275 /* If there is no note name, then use the default set of
16276 note type strings. */
16277 nt = get_note_type (pnote->type);
16278
16279 else if (const_strneq (pnote->namedata, "GNU"))
16280 /* GNU-specific object file notes. */
16281 nt = get_gnu_elf_note_type (pnote->type);
16282
16283 else if (const_strneq (pnote->namedata, "FreeBSD"))
16284 /* FreeBSD-specific core file notes. */
16285 nt = get_freebsd_elfcore_note_type (pnote->type);
16286
16287 else if (const_strneq (pnote->namedata, "NetBSD-CORE"))
16288 /* NetBSD-specific core file notes. */
16289 nt = get_netbsd_elfcore_note_type (pnote->type);
16290
16291 else if (const_strneq (pnote->namedata, "NetBSD"))
16292 /* NetBSD-specific core file notes. */
16293 return process_netbsd_elf_note (pnote);
16294
16295 else if (strneq (pnote->namedata, "SPU/", 4))
16296 {
16297 /* SPU-specific core file notes. */
16298 nt = pnote->namedata + 4;
16299 name = "SPU";
16300 }
16301
16302 else if (const_strneq (pnote->namedata, "IPF/VMS"))
16303 /* VMS/ia64-specific file notes. */
16304 nt = get_ia64_vms_note_type (pnote->type);
16305
16306 else if (const_strneq (pnote->namedata, "stapsdt"))
16307 nt = get_stapsdt_note_type (pnote->type);
16308
16309 else
16310 /* Don't recognize this note name; just use the default set of
16311 note type strings. */
16312 nt = get_note_type (pnote->type);
16313
16314 printf (" ");
16315 print_symbol (-20, name);
16316 printf (" 0x%08lx\t%s\n", pnote->descsz, nt);
16317
16318 if (const_strneq (pnote->namedata, "IPF/VMS"))
16319 return print_ia64_vms_note (pnote);
16320 else if (const_strneq (pnote->namedata, "GNU"))
16321 return print_gnu_note (pnote);
16322 else if (const_strneq (pnote->namedata, "stapsdt"))
16323 return print_stapsdt_note (pnote);
16324 else if (const_strneq (pnote->namedata, "CORE"))
16325 return print_core_note (pnote);
16326
16327 else if (pnote->descsz)
16328 {
16329 unsigned long i;
16330
16331 printf (_(" description data: "));
16332 for (i = 0; i < pnote->descsz; i++)
16333 printf ("%02x ", pnote->descdata[i]);
16334 printf ("\n");
16335 }
16336
16337 return 1;
16338 }
16339
16340 static int
16341 process_notes_at (FILE * file,
16342 Elf_Internal_Shdr * section,
16343 bfd_vma offset,
16344 bfd_vma length)
16345 {
16346 Elf_External_Note * pnotes;
16347 Elf_External_Note * external;
16348 char * end;
16349 int res = 1;
16350
16351 if (length <= 0)
16352 return 0;
16353
16354 if (section)
16355 {
16356 pnotes = (Elf_External_Note *) get_section_contents (section, file);
16357 if (pnotes)
16358 apply_relocations (file, section, (unsigned char *) pnotes, length, NULL, NULL);
16359 }
16360 else
16361 pnotes = (Elf_External_Note *) get_data (NULL, file, offset, 1, length,
16362 _("notes"));
16363 if (pnotes == NULL)
16364 return 0;
16365
16366 external = pnotes;
16367
16368 if (section)
16369 printf (_("\nDisplaying notes found in: %s\n"), printable_section_name (section));
16370 else
16371 printf (_("\nDisplaying notes found at file offset 0x%08lx with length 0x%08lx:\n"),
16372 (unsigned long) offset, (unsigned long) length);
16373
16374 printf (_(" %-20s %10s\tDescription\n"), _("Owner"), _("Data size"));
16375
16376 end = (char *) pnotes + length;
16377 while ((char *) external < end)
16378 {
16379 Elf_Internal_Note inote;
16380 size_t min_notesz;
16381 char *next;
16382 char * temp = NULL;
16383 size_t data_remaining = end - (char *) external;
16384
16385 if (!is_ia64_vms ())
16386 {
16387 /* PR binutils/15191
16388 Make sure that there is enough data to read. */
16389 min_notesz = offsetof (Elf_External_Note, name);
16390 if (data_remaining < min_notesz)
16391 {
16392 warn (_("Corrupt note: only %d bytes remain, not enough for a full note\n"),
16393 (int) data_remaining);
16394 break;
16395 }
16396 inote.type = BYTE_GET (external->type);
16397 inote.namesz = BYTE_GET (external->namesz);
16398 inote.namedata = external->name;
16399 inote.descsz = BYTE_GET (external->descsz);
16400 inote.descdata = inote.namedata + align_power (inote.namesz, 2);
16401 /* PR 17531: file: 3443835e. */
16402 if (inote.descdata < (char *) pnotes || inote.descdata > end)
16403 {
16404 warn (_("Corrupt note: name size is too big: %lx\n"), inote.namesz);
16405 inote.descdata = inote.namedata;
16406 inote.namesz = 0;
16407 }
16408
16409 inote.descpos = offset + (inote.descdata - (char *) pnotes);
16410 next = inote.descdata + align_power (inote.descsz, 2);
16411 }
16412 else
16413 {
16414 Elf64_External_VMS_Note *vms_external;
16415
16416 /* PR binutils/15191
16417 Make sure that there is enough data to read. */
16418 min_notesz = offsetof (Elf64_External_VMS_Note, name);
16419 if (data_remaining < min_notesz)
16420 {
16421 warn (_("Corrupt note: only %d bytes remain, not enough for a full note\n"),
16422 (int) data_remaining);
16423 break;
16424 }
16425
16426 vms_external = (Elf64_External_VMS_Note *) external;
16427 inote.type = BYTE_GET (vms_external->type);
16428 inote.namesz = BYTE_GET (vms_external->namesz);
16429 inote.namedata = vms_external->name;
16430 inote.descsz = BYTE_GET (vms_external->descsz);
16431 inote.descdata = inote.namedata + align_power (inote.namesz, 3);
16432 inote.descpos = offset + (inote.descdata - (char *) pnotes);
16433 next = inote.descdata + align_power (inote.descsz, 3);
16434 }
16435
16436 if (inote.descdata < (char *) external + min_notesz
16437 || next < (char *) external + min_notesz
16438 /* PR binutils/17531: file: id:000000,sig:11,src:006986,op:havoc,rep:4. */
16439 || inote.namedata + inote.namesz < inote.namedata
16440 || inote.descdata + inote.descsz < inote.descdata
16441 || data_remaining < (size_t)(next - (char *) external))
16442 {
16443 warn (_("note with invalid namesz and/or descsz found at offset 0x%lx\n"),
16444 (unsigned long) ((char *) external - (char *) pnotes));
16445 warn (_(" type: 0x%lx, namesize: 0x%08lx, descsize: 0x%08lx\n"),
16446 inote.type, inote.namesz, inote.descsz);
16447 break;
16448 }
16449
16450 external = (Elf_External_Note *) next;
16451
16452 /* Verify that name is null terminated. It appears that at least
16453 one version of Linux (RedHat 6.0) generates corefiles that don't
16454 comply with the ELF spec by failing to include the null byte in
16455 namesz. */
16456 if (inote.namedata[inote.namesz - 1] != '\0')
16457 {
16458 temp = (char *) malloc (inote.namesz + 1);
16459 if (temp == NULL)
16460 {
16461 error (_("Out of memory allocating space for inote name\n"));
16462 res = 0;
16463 break;
16464 }
16465
16466 strncpy (temp, inote.namedata, inote.namesz);
16467 temp[inote.namesz] = 0;
16468
16469 /* warn (_("'%s' NOTE name not properly null terminated\n"), temp); */
16470 inote.namedata = temp;
16471 }
16472
16473 res &= process_note (& inote, file, section);
16474
16475 if (temp != NULL)
16476 {
16477 free (temp);
16478 temp = NULL;
16479 }
16480 }
16481
16482 free (pnotes);
16483
16484 return res;
16485 }
16486
16487 static int
16488 process_corefile_note_segments (FILE * file)
16489 {
16490 Elf_Internal_Phdr * segment;
16491 unsigned int i;
16492 int res = 1;
16493
16494 if (! get_program_headers (file))
16495 return 0;
16496
16497 for (i = 0, segment = program_headers;
16498 i < elf_header.e_phnum;
16499 i++, segment++)
16500 {
16501 if (segment->p_type == PT_NOTE)
16502 res &= process_notes_at (file, NULL,
16503 (bfd_vma) segment->p_offset,
16504 (bfd_vma) segment->p_filesz);
16505 }
16506
16507 return res;
16508 }
16509
16510 static int
16511 process_v850_notes (FILE * file, bfd_vma offset, bfd_vma length)
16512 {
16513 Elf_External_Note * pnotes;
16514 Elf_External_Note * external;
16515 char * end;
16516 int res = 1;
16517
16518 if (length <= 0)
16519 return 0;
16520
16521 pnotes = (Elf_External_Note *) get_data (NULL, file, offset, 1, length,
16522 _("v850 notes"));
16523 if (pnotes == NULL)
16524 return 0;
16525
16526 external = pnotes;
16527 end = (char*) pnotes + length;
16528
16529 printf (_("\nDisplaying contents of Renesas V850 notes section at offset 0x%lx with length 0x%lx:\n"),
16530 (unsigned long) offset, (unsigned long) length);
16531
16532 while ((char *) external + sizeof (Elf_External_Note) < end)
16533 {
16534 Elf_External_Note * next;
16535 Elf_Internal_Note inote;
16536
16537 inote.type = BYTE_GET (external->type);
16538 inote.namesz = BYTE_GET (external->namesz);
16539 inote.namedata = external->name;
16540 inote.descsz = BYTE_GET (external->descsz);
16541 inote.descdata = inote.namedata + align_power (inote.namesz, 2);
16542 inote.descpos = offset + (inote.descdata - (char *) pnotes);
16543
16544 if (inote.descdata < (char *) pnotes || inote.descdata >= end)
16545 {
16546 warn (_("Corrupt note: name size is too big: %lx\n"), inote.namesz);
16547 inote.descdata = inote.namedata;
16548 inote.namesz = 0;
16549 }
16550
16551 next = (Elf_External_Note *) (inote.descdata + align_power (inote.descsz, 2));
16552
16553 if ( ((char *) next > end)
16554 || ((char *) next < (char *) pnotes))
16555 {
16556 warn (_("corrupt descsz found in note at offset 0x%lx\n"),
16557 (unsigned long) ((char *) external - (char *) pnotes));
16558 warn (_(" type: 0x%lx, namesize: 0x%lx, descsize: 0x%lx\n"),
16559 inote.type, inote.namesz, inote.descsz);
16560 break;
16561 }
16562
16563 external = next;
16564
16565 /* Prevent out-of-bounds indexing. */
16566 if ( inote.namedata + inote.namesz > end
16567 || inote.namedata + inote.namesz < inote.namedata)
16568 {
16569 warn (_("corrupt namesz found in note at offset 0x%lx\n"),
16570 (unsigned long) ((char *) external - (char *) pnotes));
16571 warn (_(" type: 0x%lx, namesize: 0x%lx, descsize: 0x%lx\n"),
16572 inote.type, inote.namesz, inote.descsz);
16573 break;
16574 }
16575
16576 printf (" %s: ", get_v850_elf_note_type (inote.type));
16577
16578 if (! print_v850_note (& inote))
16579 {
16580 res = 0;
16581 printf ("<corrupt sizes: namesz: %lx, descsz: %lx>\n",
16582 inote.namesz, inote.descsz);
16583 }
16584 }
16585
16586 free (pnotes);
16587
16588 return res;
16589 }
16590
16591 static int
16592 process_note_sections (FILE * file)
16593 {
16594 Elf_Internal_Shdr * section;
16595 unsigned long i;
16596 int n = 0;
16597 int res = 1;
16598
16599 for (i = 0, section = section_headers;
16600 i < elf_header.e_shnum && section != NULL;
16601 i++, section++)
16602 {
16603 if (section->sh_type == SHT_NOTE)
16604 {
16605 res &= process_notes_at (file, section,
16606 (bfd_vma) section->sh_offset,
16607 (bfd_vma) section->sh_size);
16608 n++;
16609 }
16610
16611 if (( elf_header.e_machine == EM_V800
16612 || elf_header.e_machine == EM_V850
16613 || elf_header.e_machine == EM_CYGNUS_V850)
16614 && section->sh_type == SHT_RENESAS_INFO)
16615 {
16616 res &= process_v850_notes (file,
16617 (bfd_vma) section->sh_offset,
16618 (bfd_vma) section->sh_size);
16619 n++;
16620 }
16621 }
16622
16623 if (n == 0)
16624 /* Try processing NOTE segments instead. */
16625 return process_corefile_note_segments (file);
16626
16627 return res;
16628 }
16629
16630 static int
16631 process_notes (FILE * file)
16632 {
16633 /* If we have not been asked to display the notes then do nothing. */
16634 if (! do_notes)
16635 return 1;
16636
16637 if (elf_header.e_type != ET_CORE)
16638 return process_note_sections (file);
16639
16640 /* No program headers means no NOTE segment. */
16641 if (elf_header.e_phnum > 0)
16642 return process_corefile_note_segments (file);
16643
16644 printf (_("No note segments present in the core file.\n"));
16645 return 1;
16646 }
16647
16648 static int
16649 process_arch_specific (FILE * file)
16650 {
16651 if (! do_arch)
16652 return 1;
16653
16654 switch (elf_header.e_machine)
16655 {
16656 case EM_ARM:
16657 return process_arm_specific (file);
16658 case EM_MIPS:
16659 case EM_MIPS_RS3_LE:
16660 return process_mips_specific (file);
16661 break;
16662 case EM_NDS32:
16663 return process_nds32_specific (file);
16664 break;
16665 case EM_PPC:
16666 case EM_PPC64:
16667 return process_power_specific (file);
16668 break;
16669 case EM_S390:
16670 case EM_S390_OLD:
16671 return process_s390_specific (file);
16672 break;
16673 case EM_SPARC:
16674 case EM_SPARC32PLUS:
16675 case EM_SPARCV9:
16676 return process_sparc_specific (file);
16677 break;
16678 case EM_TI_C6000:
16679 return process_tic6x_specific (file);
16680 break;
16681 case EM_MSP430:
16682 return process_msp430x_specific (file);
16683 default:
16684 break;
16685 }
16686 return 1;
16687 }
16688
16689 static int
16690 get_file_header (FILE * file)
16691 {
16692 /* Read in the identity array. */
16693 if (fread (elf_header.e_ident, EI_NIDENT, 1, file) != 1)
16694 return 0;
16695
16696 /* Determine how to read the rest of the header. */
16697 switch (elf_header.e_ident[EI_DATA])
16698 {
16699 default:
16700 case ELFDATANONE:
16701 case ELFDATA2LSB:
16702 byte_get = byte_get_little_endian;
16703 byte_put = byte_put_little_endian;
16704 break;
16705 case ELFDATA2MSB:
16706 byte_get = byte_get_big_endian;
16707 byte_put = byte_put_big_endian;
16708 break;
16709 }
16710
16711 /* For now we only support 32 bit and 64 bit ELF files. */
16712 is_32bit_elf = (elf_header.e_ident[EI_CLASS] != ELFCLASS64);
16713
16714 /* Read in the rest of the header. */
16715 if (is_32bit_elf)
16716 {
16717 Elf32_External_Ehdr ehdr32;
16718
16719 if (fread (ehdr32.e_type, sizeof (ehdr32) - EI_NIDENT, 1, file) != 1)
16720 return 0;
16721
16722 elf_header.e_type = BYTE_GET (ehdr32.e_type);
16723 elf_header.e_machine = BYTE_GET (ehdr32.e_machine);
16724 elf_header.e_version = BYTE_GET (ehdr32.e_version);
16725 elf_header.e_entry = BYTE_GET (ehdr32.e_entry);
16726 elf_header.e_phoff = BYTE_GET (ehdr32.e_phoff);
16727 elf_header.e_shoff = BYTE_GET (ehdr32.e_shoff);
16728 elf_header.e_flags = BYTE_GET (ehdr32.e_flags);
16729 elf_header.e_ehsize = BYTE_GET (ehdr32.e_ehsize);
16730 elf_header.e_phentsize = BYTE_GET (ehdr32.e_phentsize);
16731 elf_header.e_phnum = BYTE_GET (ehdr32.e_phnum);
16732 elf_header.e_shentsize = BYTE_GET (ehdr32.e_shentsize);
16733 elf_header.e_shnum = BYTE_GET (ehdr32.e_shnum);
16734 elf_header.e_shstrndx = BYTE_GET (ehdr32.e_shstrndx);
16735 }
16736 else
16737 {
16738 Elf64_External_Ehdr ehdr64;
16739
16740 /* If we have been compiled with sizeof (bfd_vma) == 4, then
16741 we will not be able to cope with the 64bit data found in
16742 64 ELF files. Detect this now and abort before we start
16743 overwriting things. */
16744 if (sizeof (bfd_vma) < 8)
16745 {
16746 error (_("This instance of readelf has been built without support for a\n\
16747 64 bit data type and so it cannot read 64 bit ELF files.\n"));
16748 return 0;
16749 }
16750
16751 if (fread (ehdr64.e_type, sizeof (ehdr64) - EI_NIDENT, 1, file) != 1)
16752 return 0;
16753
16754 elf_header.e_type = BYTE_GET (ehdr64.e_type);
16755 elf_header.e_machine = BYTE_GET (ehdr64.e_machine);
16756 elf_header.e_version = BYTE_GET (ehdr64.e_version);
16757 elf_header.e_entry = BYTE_GET (ehdr64.e_entry);
16758 elf_header.e_phoff = BYTE_GET (ehdr64.e_phoff);
16759 elf_header.e_shoff = BYTE_GET (ehdr64.e_shoff);
16760 elf_header.e_flags = BYTE_GET (ehdr64.e_flags);
16761 elf_header.e_ehsize = BYTE_GET (ehdr64.e_ehsize);
16762 elf_header.e_phentsize = BYTE_GET (ehdr64.e_phentsize);
16763 elf_header.e_phnum = BYTE_GET (ehdr64.e_phnum);
16764 elf_header.e_shentsize = BYTE_GET (ehdr64.e_shentsize);
16765 elf_header.e_shnum = BYTE_GET (ehdr64.e_shnum);
16766 elf_header.e_shstrndx = BYTE_GET (ehdr64.e_shstrndx);
16767 }
16768
16769 if (elf_header.e_shoff)
16770 {
16771 /* There may be some extensions in the first section header. Don't
16772 bomb if we can't read it. */
16773 if (is_32bit_elf)
16774 get_32bit_section_headers (file, TRUE);
16775 else
16776 get_64bit_section_headers (file, TRUE);
16777 }
16778
16779 return 1;
16780 }
16781
16782 /* Process one ELF object file according to the command line options.
16783 This file may actually be stored in an archive. The file is
16784 positioned at the start of the ELF object. */
16785
16786 static int
16787 process_object (char * file_name, FILE * file)
16788 {
16789 unsigned int i;
16790
16791 if (! get_file_header (file))
16792 {
16793 error (_("%s: Failed to read file header\n"), file_name);
16794 return 1;
16795 }
16796
16797 /* Initialise per file variables. */
16798 for (i = ARRAY_SIZE (version_info); i--;)
16799 version_info[i] = 0;
16800
16801 for (i = ARRAY_SIZE (dynamic_info); i--;)
16802 dynamic_info[i] = 0;
16803 dynamic_info_DT_GNU_HASH = 0;
16804
16805 /* Process the file. */
16806 if (show_name)
16807 printf (_("\nFile: %s\n"), file_name);
16808
16809 /* Initialise the dump_sects array from the cmdline_dump_sects array.
16810 Note we do this even if cmdline_dump_sects is empty because we
16811 must make sure that the dump_sets array is zeroed out before each
16812 object file is processed. */
16813 if (num_dump_sects > num_cmdline_dump_sects)
16814 memset (dump_sects, 0, num_dump_sects * sizeof (* dump_sects));
16815
16816 if (num_cmdline_dump_sects > 0)
16817 {
16818 if (num_dump_sects == 0)
16819 /* A sneaky way of allocating the dump_sects array. */
16820 request_dump_bynumber (num_cmdline_dump_sects, 0);
16821
16822 assert (num_dump_sects >= num_cmdline_dump_sects);
16823 memcpy (dump_sects, cmdline_dump_sects,
16824 num_cmdline_dump_sects * sizeof (* dump_sects));
16825 }
16826
16827 if (! process_file_header ())
16828 return 1;
16829
16830 if (! process_section_headers (file))
16831 {
16832 /* Without loaded section headers we cannot process lots of
16833 things. */
16834 do_unwind = do_version = do_dump = do_arch = 0;
16835
16836 if (! do_using_dynamic)
16837 do_syms = do_dyn_syms = do_reloc = 0;
16838 }
16839
16840 if (! process_section_groups (file))
16841 {
16842 /* Without loaded section groups we cannot process unwind. */
16843 do_unwind = 0;
16844 }
16845
16846 if (process_program_headers (file))
16847 process_dynamic_section (file);
16848
16849 process_relocs (file);
16850
16851 process_unwind (file);
16852
16853 process_symbol_table (file);
16854
16855 process_syminfo (file);
16856
16857 process_version_sections (file);
16858
16859 process_section_contents (file);
16860
16861 process_notes (file);
16862
16863 process_gnu_liblist (file);
16864
16865 process_arch_specific (file);
16866
16867 if (program_headers)
16868 {
16869 free (program_headers);
16870 program_headers = NULL;
16871 }
16872
16873 if (section_headers)
16874 {
16875 free (section_headers);
16876 section_headers = NULL;
16877 }
16878
16879 if (string_table)
16880 {
16881 free (string_table);
16882 string_table = NULL;
16883 string_table_length = 0;
16884 }
16885
16886 if (dynamic_strings)
16887 {
16888 free (dynamic_strings);
16889 dynamic_strings = NULL;
16890 dynamic_strings_length = 0;
16891 }
16892
16893 if (dynamic_symbols)
16894 {
16895 free (dynamic_symbols);
16896 dynamic_symbols = NULL;
16897 num_dynamic_syms = 0;
16898 }
16899
16900 if (dynamic_syminfo)
16901 {
16902 free (dynamic_syminfo);
16903 dynamic_syminfo = NULL;
16904 }
16905
16906 if (dynamic_section)
16907 {
16908 free (dynamic_section);
16909 dynamic_section = NULL;
16910 }
16911
16912 if (section_headers_groups)
16913 {
16914 free (section_headers_groups);
16915 section_headers_groups = NULL;
16916 }
16917
16918 if (section_groups)
16919 {
16920 struct group_list * g;
16921 struct group_list * next;
16922
16923 for (i = 0; i < group_count; i++)
16924 {
16925 for (g = section_groups [i].root; g != NULL; g = next)
16926 {
16927 next = g->next;
16928 free (g);
16929 }
16930 }
16931
16932 free (section_groups);
16933 section_groups = NULL;
16934 }
16935
16936 free_debug_memory ();
16937
16938 return 0;
16939 }
16940
16941 /* Process an ELF archive.
16942 On entry the file is positioned just after the ARMAG string. */
16943
16944 static int
16945 process_archive (char * file_name, FILE * file, bfd_boolean is_thin_archive)
16946 {
16947 struct archive_info arch;
16948 struct archive_info nested_arch;
16949 size_t got;
16950 int ret;
16951
16952 show_name = 1;
16953
16954 /* The ARCH structure is used to hold information about this archive. */
16955 arch.file_name = NULL;
16956 arch.file = NULL;
16957 arch.index_array = NULL;
16958 arch.sym_table = NULL;
16959 arch.longnames = NULL;
16960
16961 /* The NESTED_ARCH structure is used as a single-item cache of information
16962 about a nested archive (when members of a thin archive reside within
16963 another regular archive file). */
16964 nested_arch.file_name = NULL;
16965 nested_arch.file = NULL;
16966 nested_arch.index_array = NULL;
16967 nested_arch.sym_table = NULL;
16968 nested_arch.longnames = NULL;
16969
16970 if (setup_archive (&arch, file_name, file, is_thin_archive, do_archive_index) != 0)
16971 {
16972 ret = 1;
16973 goto out;
16974 }
16975
16976 if (do_archive_index)
16977 {
16978 if (arch.sym_table == NULL)
16979 error (_("%s: unable to dump the index as none was found\n"), file_name);
16980 else
16981 {
16982 unsigned long i, l;
16983 unsigned long current_pos;
16984
16985 printf (_("Index of archive %s: (%lu entries, 0x%lx bytes in the symbol table)\n"),
16986 file_name, (unsigned long) arch.index_num, arch.sym_size);
16987 current_pos = ftell (file);
16988
16989 for (i = l = 0; i < arch.index_num; i++)
16990 {
16991 if ((i == 0) || ((i > 0) && (arch.index_array[i] != arch.index_array[i - 1])))
16992 {
16993 char * member_name;
16994
16995 member_name = get_archive_member_name_at (&arch, arch.index_array[i], &nested_arch);
16996
16997 if (member_name != NULL)
16998 {
16999 char * qualified_name = make_qualified_name (&arch, &nested_arch, member_name);
17000
17001 if (qualified_name != NULL)
17002 {
17003 printf (_("Contents of binary %s at offset "), qualified_name);
17004 (void) print_vma (arch.index_array[i], PREFIX_HEX);
17005 putchar ('\n');
17006 free (qualified_name);
17007 }
17008 }
17009 }
17010
17011 if (l >= arch.sym_size)
17012 {
17013 error (_("%s: end of the symbol table reached before the end of the index\n"),
17014 file_name);
17015 break;
17016 }
17017 /* PR 17531: file: 0b6630b2. */
17018 printf ("\t%.*s\n", (int) (arch.sym_size - l), arch.sym_table + l);
17019 l += strnlen (arch.sym_table + l, arch.sym_size - l) + 1;
17020 }
17021
17022 if (arch.uses_64bit_indicies)
17023 l = (l + 7) & ~ 7;
17024 else
17025 l += l & 1;
17026
17027 if (l < arch.sym_size)
17028 error (_("%s: %ld bytes remain in the symbol table, but without corresponding entries in the index table\n"),
17029 file_name, arch.sym_size - l);
17030
17031 if (fseek (file, current_pos, SEEK_SET) != 0)
17032 {
17033 error (_("%s: failed to seek back to start of object files in the archive\n"), file_name);
17034 ret = 1;
17035 goto out;
17036 }
17037 }
17038
17039 if (!do_dynamic && !do_syms && !do_reloc && !do_unwind && !do_sections
17040 && !do_segments && !do_header && !do_dump && !do_version
17041 && !do_histogram && !do_debugging && !do_arch && !do_notes
17042 && !do_section_groups && !do_dyn_syms)
17043 {
17044 ret = 0; /* Archive index only. */
17045 goto out;
17046 }
17047 }
17048
17049 ret = 0;
17050
17051 while (1)
17052 {
17053 char * name;
17054 size_t namelen;
17055 char * qualified_name;
17056
17057 /* Read the next archive header. */
17058 if (fseek (file, arch.next_arhdr_offset, SEEK_SET) != 0)
17059 {
17060 error (_("%s: failed to seek to next archive header\n"), file_name);
17061 return 1;
17062 }
17063 got = fread (&arch.arhdr, 1, sizeof arch.arhdr, file);
17064 if (got != sizeof arch.arhdr)
17065 {
17066 if (got == 0)
17067 break;
17068 error (_("%s: failed to read archive header\n"), file_name);
17069 ret = 1;
17070 break;
17071 }
17072 if (memcmp (arch.arhdr.ar_fmag, ARFMAG, 2) != 0)
17073 {
17074 error (_("%s: did not find a valid archive header\n"), arch.file_name);
17075 ret = 1;
17076 break;
17077 }
17078
17079 arch.next_arhdr_offset += sizeof arch.arhdr;
17080
17081 archive_file_size = strtoul (arch.arhdr.ar_size, NULL, 10);
17082 if (archive_file_size & 01)
17083 ++archive_file_size;
17084
17085 name = get_archive_member_name (&arch, &nested_arch);
17086 if (name == NULL)
17087 {
17088 error (_("%s: bad archive file name\n"), file_name);
17089 ret = 1;
17090 break;
17091 }
17092 namelen = strlen (name);
17093
17094 qualified_name = make_qualified_name (&arch, &nested_arch, name);
17095 if (qualified_name == NULL)
17096 {
17097 error (_("%s: bad archive file name\n"), file_name);
17098 ret = 1;
17099 break;
17100 }
17101
17102 if (is_thin_archive && arch.nested_member_origin == 0)
17103 {
17104 /* This is a proxy for an external member of a thin archive. */
17105 FILE * member_file;
17106 char * member_file_name = adjust_relative_path (file_name, name, namelen);
17107 if (member_file_name == NULL)
17108 {
17109 ret = 1;
17110 break;
17111 }
17112
17113 member_file = fopen (member_file_name, "rb");
17114 if (member_file == NULL)
17115 {
17116 error (_("Input file '%s' is not readable.\n"), member_file_name);
17117 free (member_file_name);
17118 ret = 1;
17119 break;
17120 }
17121
17122 archive_file_offset = arch.nested_member_origin;
17123
17124 ret |= process_object (qualified_name, member_file);
17125
17126 fclose (member_file);
17127 free (member_file_name);
17128 }
17129 else if (is_thin_archive)
17130 {
17131 /* PR 15140: Allow for corrupt thin archives. */
17132 if (nested_arch.file == NULL)
17133 {
17134 error (_("%s: contains corrupt thin archive: %s\n"),
17135 file_name, name);
17136 ret = 1;
17137 break;
17138 }
17139
17140 /* This is a proxy for a member of a nested archive. */
17141 archive_file_offset = arch.nested_member_origin + sizeof arch.arhdr;
17142
17143 /* The nested archive file will have been opened and setup by
17144 get_archive_member_name. */
17145 if (fseek (nested_arch.file, archive_file_offset, SEEK_SET) != 0)
17146 {
17147 error (_("%s: failed to seek to archive member.\n"), nested_arch.file_name);
17148 ret = 1;
17149 break;
17150 }
17151
17152 ret |= process_object (qualified_name, nested_arch.file);
17153 }
17154 else
17155 {
17156 archive_file_offset = arch.next_arhdr_offset;
17157 arch.next_arhdr_offset += archive_file_size;
17158
17159 ret |= process_object (qualified_name, file);
17160 }
17161
17162 if (dump_sects != NULL)
17163 {
17164 free (dump_sects);
17165 dump_sects = NULL;
17166 num_dump_sects = 0;
17167 }
17168
17169 free (qualified_name);
17170 }
17171
17172 out:
17173 if (nested_arch.file != NULL)
17174 fclose (nested_arch.file);
17175 release_archive (&nested_arch);
17176 release_archive (&arch);
17177
17178 return ret;
17179 }
17180
17181 static int
17182 process_file (char * file_name)
17183 {
17184 FILE * file;
17185 struct stat statbuf;
17186 char armag[SARMAG];
17187 int ret;
17188
17189 if (stat (file_name, &statbuf) < 0)
17190 {
17191 if (errno == ENOENT)
17192 error (_("'%s': No such file\n"), file_name);
17193 else
17194 error (_("Could not locate '%s'. System error message: %s\n"),
17195 file_name, strerror (errno));
17196 return 1;
17197 }
17198
17199 if (! S_ISREG (statbuf.st_mode))
17200 {
17201 error (_("'%s' is not an ordinary file\n"), file_name);
17202 return 1;
17203 }
17204
17205 file = fopen (file_name, "rb");
17206 if (file == NULL)
17207 {
17208 error (_("Input file '%s' is not readable.\n"), file_name);
17209 return 1;
17210 }
17211
17212 if (fread (armag, SARMAG, 1, file) != 1)
17213 {
17214 error (_("%s: Failed to read file's magic number\n"), file_name);
17215 fclose (file);
17216 return 1;
17217 }
17218
17219 current_file_size = (bfd_size_type) statbuf.st_size;
17220
17221 if (memcmp (armag, ARMAG, SARMAG) == 0)
17222 ret = process_archive (file_name, file, FALSE);
17223 else if (memcmp (armag, ARMAGT, SARMAG) == 0)
17224 ret = process_archive (file_name, file, TRUE);
17225 else
17226 {
17227 if (do_archive_index)
17228 error (_("File %s is not an archive so its index cannot be displayed.\n"),
17229 file_name);
17230
17231 rewind (file);
17232 archive_file_size = archive_file_offset = 0;
17233 ret = process_object (file_name, file);
17234 }
17235
17236 fclose (file);
17237
17238 current_file_size = 0;
17239 return ret;
17240 }
17241
17242 #ifdef SUPPORT_DISASSEMBLY
17243 /* Needed by the i386 disassembler. For extra credit, someone could
17244 fix this so that we insert symbolic addresses here, esp for GOT/PLT
17245 symbols. */
17246
17247 void
17248 print_address (unsigned int addr, FILE * outfile)
17249 {
17250 fprintf (outfile,"0x%8.8x", addr);
17251 }
17252
17253 /* Needed by the i386 disassembler. */
17254 void
17255 db_task_printsym (unsigned int addr)
17256 {
17257 print_address (addr, stderr);
17258 }
17259 #endif
17260
17261 int
17262 main (int argc, char ** argv)
17263 {
17264 int err;
17265
17266 #if defined (HAVE_SETLOCALE) && defined (HAVE_LC_MESSAGES)
17267 setlocale (LC_MESSAGES, "");
17268 #endif
17269 #if defined (HAVE_SETLOCALE)
17270 setlocale (LC_CTYPE, "");
17271 #endif
17272 bindtextdomain (PACKAGE, LOCALEDIR);
17273 textdomain (PACKAGE);
17274
17275 expandargv (&argc, &argv);
17276
17277 parse_args (argc, argv);
17278
17279 if (num_dump_sects > 0)
17280 {
17281 /* Make a copy of the dump_sects array. */
17282 cmdline_dump_sects = (dump_type *)
17283 malloc (num_dump_sects * sizeof (* dump_sects));
17284 if (cmdline_dump_sects == NULL)
17285 error (_("Out of memory allocating dump request table.\n"));
17286 else
17287 {
17288 memcpy (cmdline_dump_sects, dump_sects,
17289 num_dump_sects * sizeof (* dump_sects));
17290 num_cmdline_dump_sects = num_dump_sects;
17291 }
17292 }
17293
17294 if (optind < (argc - 1))
17295 show_name = 1;
17296 else if (optind >= argc)
17297 {
17298 warn (_("Nothing to do.\n"));
17299 usage (stderr);
17300 }
17301
17302 err = 0;
17303 while (optind < argc)
17304 err |= process_file (argv[optind++]);
17305
17306 if (dump_sects != NULL)
17307 free (dump_sects);
17308 if (cmdline_dump_sects != NULL)
17309 free (cmdline_dump_sects);
17310
17311 return err;
17312 }