1 /*-
2 * Copyright (c) 2009-2015 Kai Wang
3 * All rights reserved.
4 *
5 * Redistribution and use in source and binary forms, with or without
6 * modification, are permitted provided that the following conditions
7 * are met:
8 * 1. Redistributions of source code must retain the above copyright
9 * notice, this list of conditions and the following disclaimer.
10 * 2. Redistributions in binary form must reproduce the above copyright
11 * notice, this list of conditions and the following disclaimer in the
12 * documentation and/or other materials provided with the distribution.
13 *
14 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
15 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
16 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
17 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
18 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
19 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
20 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
21 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
22 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
23 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
24 * SUCH DAMAGE.
25 */
26
27 #include <sys/param.h>
28 #include <sys/queue.h>
29
30 #include <ar.h>
31 #include <assert.h>
32 #include <capsicum_helpers.h>
33 #include <ctype.h>
34 #include <dwarf.h>
35 #include <err.h>
36 #include <fcntl.h>
37 #include <gelf.h>
38 #include <getopt.h>
39 #include <libdwarf.h>
40 #include <libelftc.h>
41 #include <libgen.h>
42 #include <stdarg.h>
43 #include <stdbool.h>
44 #include <stdint.h>
45 #include <stdio.h>
46 #include <stdlib.h>
47 #include <string.h>
48 #include <time.h>
49 #include <unistd.h>
50 #include <vis.h>
51 #include <zlib.h>
52
53 #include <libcasper.h>
54 #include <casper/cap_fileargs.h>
55
56 #include "_elftc.h"
57
58 ELFTC_VCSID("$Id: readelf.c 3769 2019-06-29 15:15:02Z emaste $");
59
60 /* Backwards compatability for older FreeBSD releases. */
61 #ifndef STB_GNU_UNIQUE
62 #define STB_GNU_UNIQUE 10
63 #endif
64 #ifndef STT_SPARC_REGISTER
65 #define STT_SPARC_REGISTER 13
66 #endif
67
68
69 /*
70 * readelf(1) options.
71 */
72 #define RE_AA 0x00000001
73 #define RE_C 0x00000002
74 #define RE_DD 0x00000004
75 #define RE_D 0x00000008
76 #define RE_G 0x00000010
77 #define RE_H 0x00000020
78 #define RE_II 0x00000040
79 #define RE_I 0x00000080
80 #define RE_L 0x00000100
81 #define RE_NN 0x00000200
82 #define RE_N 0x00000400
83 #define RE_P 0x00000800
84 #define RE_R 0x00001000
85 #define RE_SS 0x00002000
86 #define RE_S 0x00004000
87 #define RE_T 0x00008000
88 #define RE_U 0x00010000
89 #define RE_VV 0x00020000
90 #define RE_WW 0x00040000
91 #define RE_W 0x00080000
92 #define RE_X 0x00100000
93 #define RE_Z 0x00200000
94
95 /*
96 * dwarf dump options.
97 */
98 #define DW_A 0x00000001
99 #define DW_FF 0x00000002
100 #define DW_F 0x00000004
101 #define DW_I 0x00000008
102 #define DW_LL 0x00000010
103 #define DW_L 0x00000020
104 #define DW_M 0x00000040
105 #define DW_O 0x00000080
106 #define DW_P 0x00000100
107 #define DW_RR 0x00000200
108 #define DW_R 0x00000400
109 #define DW_S 0x00000800
110
111 #define DW_DEFAULT_OPTIONS (DW_A | DW_F | DW_I | DW_L | DW_O | DW_P | \
112 DW_R | DW_RR | DW_S)
113
114 /*
115 * readelf(1) run control flags.
116 */
117 #define DISPLAY_FILENAME 0x0001
118
119 /*
120 * Internal data structure for sections.
121 */
122 struct section {
123 const char *name; /* section name */
124 Elf_Scn *scn; /* section scn */
125 uint64_t off; /* section offset */
126 uint64_t sz; /* section size */
127 uint64_t entsize; /* section entsize */
128 uint64_t align; /* section alignment */
129 uint64_t type; /* section type */
130 uint64_t flags; /* section flags */
131 uint64_t addr; /* section virtual addr */
132 uint32_t link; /* section link ndx */
133 uint32_t info; /* section info ndx */
134 };
135
136 struct dumpop {
137 union {
138 size_t si; /* section index */
139 const char *sn; /* section name */
140 } u;
141 enum {
142 DUMP_BY_INDEX = 0,
143 DUMP_BY_NAME
144 } type; /* dump type */
145 #define HEX_DUMP 0x0001
146 #define STR_DUMP 0x0002
147 int op; /* dump operation */
148 STAILQ_ENTRY(dumpop) dumpop_list;
149 };
150
151 struct symver {
152 const char *name;
153 int type;
154 };
155
156 /*
157 * Structure encapsulates the global data for readelf(1).
158 */
159 struct readelf {
160 const char *filename; /* current processing file. */
161 int options; /* command line options. */
162 int flags; /* run control flags. */
163 int dop; /* dwarf dump options. */
164 Elf *elf; /* underlying ELF descriptor. */
165 Elf *ar; /* archive ELF descriptor. */
166 Dwarf_Debug dbg; /* DWARF handle. */
167 Dwarf_Half cu_psize; /* DWARF CU pointer size. */
168 Dwarf_Half cu_osize; /* DWARF CU offset size. */
169 Dwarf_Half cu_ver; /* DWARF CU version. */
170 GElf_Ehdr ehdr; /* ELF header. */
171 int ec; /* ELF class. */
172 size_t shnum; /* #sections. */
173 struct section *vd_s; /* Verdef section. */
174 struct section *vn_s; /* Verneed section. */
175 struct section *vs_s; /* Versym section. */
176 uint16_t *vs; /* Versym array. */
177 int vs_sz; /* Versym array size. */
178 struct symver *ver; /* Version array. */
179 int ver_sz; /* Size of version array. */
180 struct section *sl; /* list of sections. */
181 STAILQ_HEAD(, dumpop) v_dumpop; /* list of dump ops. */
182 uint64_t (*dw_read)(Elf_Data *, uint64_t *, int);
183 uint64_t (*dw_decode)(uint8_t **, int);
184 };
185
186 enum options
187 {
188 OPTION_DEBUG_DUMP
189 };
190
191 static struct option longopts[] = {
192 {"all", no_argument, NULL, 'a'},
193 {"arch-specific", no_argument, NULL, 'A'},
194 {"archive-index", no_argument, NULL, 'c'},
195 {"debug-dump", optional_argument, NULL, OPTION_DEBUG_DUMP},
196 {"decompress", no_argument, 0, 'z'},
197 {"dynamic", no_argument, NULL, 'd'},
198 {"file-header", no_argument, NULL, 'h'},
199 {"full-section-name", no_argument, NULL, 'N'},
200 {"headers", no_argument, NULL, 'e'},
201 {"help", no_argument, 0, 'H'},
202 {"hex-dump", required_argument, NULL, 'x'},
203 {"histogram", no_argument, NULL, 'I'},
204 {"notes", no_argument, NULL, 'n'},
205 {"program-headers", no_argument, NULL, 'l'},
206 {"relocs", no_argument, NULL, 'r'},
207 {"sections", no_argument, NULL, 'S'},
208 {"section-headers", no_argument, NULL, 'S'},
209 {"section-groups", no_argument, NULL, 'g'},
210 {"section-details", no_argument, NULL, 't'},
211 {"segments", no_argument, NULL, 'l'},
212 {"string-dump", required_argument, NULL, 'p'},
213 {"symbols", no_argument, NULL, 's'},
214 {"syms", no_argument, NULL, 's'},
215 {"unwind", no_argument, NULL, 'u'},
216 {"use-dynamic", no_argument, NULL, 'D'},
217 {"version-info", no_argument, 0, 'V'},
218 {"version", no_argument, 0, 'v'},
219 {"wide", no_argument, 0, 'W'},
220 {NULL, 0, NULL, 0}
221 };
222
223 struct eflags_desc {
224 uint64_t flag;
225 const char *desc;
226 };
227
228 struct flag_desc {
229 uint64_t flag;
230 const char *desc;
231 };
232
233 struct flag_desc_list {
234 uint32_t type;
235 const char *desc_str;
236 struct flag_desc *desc;
237 };
238
239 struct mips_option {
240 uint64_t flag;
241 const char *desc;
242 };
243
244 struct loc_at {
245 Dwarf_Attribute la_at;
246 Dwarf_Unsigned la_off;
247 Dwarf_Unsigned la_lowpc;
248 Dwarf_Half la_cu_psize;
249 Dwarf_Half la_cu_osize;
250 Dwarf_Half la_cu_ver;
251 };
252
253 static void add_dumpop(struct readelf *re, size_t si, const char *sn, int op,
254 int t);
255 static const char *aeabi_adv_simd_arch(uint64_t simd);
256 static const char *aeabi_align_needed(uint64_t an);
257 static const char *aeabi_align_preserved(uint64_t ap);
258 static const char *aeabi_arm_isa(uint64_t ai);
259 static const char *aeabi_cpu_arch(uint64_t arch);
260 static const char *aeabi_cpu_arch_profile(uint64_t pf);
261 static const char *aeabi_div(uint64_t du);
262 static const char *aeabi_enum_size(uint64_t es);
263 static const char *aeabi_fp_16bit_format(uint64_t fp16);
264 static const char *aeabi_fp_arch(uint64_t fp);
265 static const char *aeabi_fp_denormal(uint64_t fd);
266 static const char *aeabi_fp_exceptions(uint64_t fe);
267 static const char *aeabi_fp_hpext(uint64_t fh);
268 static const char *aeabi_fp_number_model(uint64_t fn);
269 static const char *aeabi_fp_optm_goal(uint64_t fog);
270 static const char *aeabi_fp_rounding(uint64_t fr);
271 static const char *aeabi_hardfp(uint64_t hfp);
272 static const char *aeabi_mpext(uint64_t mp);
273 static const char *aeabi_optm_goal(uint64_t og);
274 static const char *aeabi_pcs_config(uint64_t pcs);
275 static const char *aeabi_pcs_got(uint64_t got);
276 static const char *aeabi_pcs_r9(uint64_t r9);
277 static const char *aeabi_pcs_ro(uint64_t ro);
278 static const char *aeabi_pcs_rw(uint64_t rw);
279 static const char *aeabi_pcs_wchar_t(uint64_t wt);
280 static const char *aeabi_t2ee(uint64_t t2ee);
281 static const char *aeabi_thumb_isa(uint64_t ti);
282 static const char *aeabi_fp_user_exceptions(uint64_t fu);
283 static const char *aeabi_unaligned_access(uint64_t ua);
284 static const char *aeabi_vfp_args(uint64_t va);
285 static const char *aeabi_virtual(uint64_t vt);
286 static const char *aeabi_wmmx_arch(uint64_t wmmx);
287 static const char *aeabi_wmmx_args(uint64_t wa);
288 static const char *elf_class(unsigned int class);
289 static const char *elf_endian(unsigned int endian);
290 static const char *elf_machine(unsigned int mach);
291 static const char *elf_osabi(unsigned int abi);
292 static const char *elf_type(unsigned int type);
293 static const char *elf_ver(unsigned int ver);
294 static const char *dt_type(unsigned int mach, unsigned int dtype);
295 static bool dump_ar(struct readelf *re, int);
296 static void dump_arm_attributes(struct readelf *re, uint8_t *p, uint8_t *pe);
297 static void dump_attributes(struct readelf *re);
298 static uint8_t *dump_compatibility_tag(uint8_t *p, uint8_t *pe);
299 static void dump_dwarf(struct readelf *re);
300 static void dump_dwarf_abbrev(struct readelf *re);
301 static void dump_dwarf_aranges(struct readelf *re);
302 static void dump_dwarf_block(struct readelf *re, uint8_t *b,
303 Dwarf_Unsigned len);
304 static void dump_dwarf_die(struct readelf *re, Dwarf_Die die, int level);
305 static void dump_dwarf_frame(struct readelf *re, int alt);
306 static void dump_dwarf_frame_inst(struct readelf *re, Dwarf_Cie cie,
307 uint8_t *insts, Dwarf_Unsigned len, Dwarf_Unsigned caf, Dwarf_Signed daf,
308 Dwarf_Addr pc, Dwarf_Debug dbg);
309 static int dump_dwarf_frame_regtable(struct readelf *re, Dwarf_Fde fde,
310 Dwarf_Addr pc, Dwarf_Unsigned func_len, Dwarf_Half cie_ra);
311 static void dump_dwarf_frame_section(struct readelf *re, struct section *s,
312 int alt);
313 static void dump_dwarf_info(struct readelf *re, Dwarf_Bool is_info);
314 static void dump_dwarf_macinfo(struct readelf *re);
315 static void dump_dwarf_line(struct readelf *re);
316 static void dump_dwarf_line_decoded(struct readelf *re);
317 static void dump_dwarf_loc(struct readelf *re, Dwarf_Loc *lr);
318 static void dump_dwarf_loclist(struct readelf *re);
319 static void dump_dwarf_pubnames(struct readelf *re);
320 static void dump_dwarf_ranges(struct readelf *re);
321 static void dump_dwarf_ranges_foreach(struct readelf *re, Dwarf_Die die,
322 Dwarf_Addr base);
323 static void dump_dwarf_str(struct readelf *re);
324 static void dump_eflags(struct readelf *re, uint64_t e_flags);
325 static bool dump_elf(struct readelf *re);
326 static void dump_flags(struct flag_desc *fd, uint64_t flags);
327 static void dump_dyn_val(struct readelf *re, GElf_Dyn *dyn, uint32_t stab);
328 static void dump_dynamic(struct readelf *re);
329 static void dump_liblist(struct readelf *re);
330 static void dump_mips_abiflags(struct readelf *re, struct section *s);
331 static void dump_mips_attributes(struct readelf *re, uint8_t *p, uint8_t *pe);
332 static void dump_mips_odk_reginfo(struct readelf *re, uint8_t *p, size_t sz);
333 static void dump_mips_options(struct readelf *re, struct section *s);
334 static void dump_mips_option_flags(const char *name, struct mips_option *opt,
335 uint64_t info);
336 static void dump_mips_reginfo(struct readelf *re, struct section *s);
337 static void dump_mips_specific_info(struct readelf *re);
338 static void dump_notes(struct readelf *re);
339 static void dump_notes_content(struct readelf *re, const char *buf, size_t sz,
340 off_t off);
341 static void dump_notes_data(struct readelf *re, const char *name,
342 uint32_t type, const char *buf, size_t sz);
343 static void dump_svr4_hash(struct section *s);
344 static void dump_svr4_hash64(struct readelf *re, struct section *s);
345 static void dump_gnu_hash(struct readelf *re, struct section *s);
346 static void dump_gnu_property_type_0(struct readelf *re, const char *buf,
347 size_t sz);
348 static void dump_hash(struct readelf *re);
349 static void dump_phdr(struct readelf *re);
350 static void dump_ppc_attributes(uint8_t *p, uint8_t *pe);
351 static void dump_section_groups(struct readelf *re);
352 static void dump_symtab(struct readelf *re, int i);
353 static void dump_symtabs(struct readelf *re);
354 static uint8_t *dump_unknown_tag(uint64_t tag, uint8_t *p, uint8_t *pe);
355 static void dump_ver(struct readelf *re);
356 static void dump_verdef(struct readelf *re, int dump);
357 static void dump_verneed(struct readelf *re, int dump);
358 static void dump_versym(struct readelf *re);
359 static const char *dwarf_reg(unsigned int mach, unsigned int reg);
360 static const char *dwarf_regname(struct readelf *re, unsigned int num);
361 static struct dumpop *find_dumpop(struct readelf *re, size_t si,
362 const char *sn, int op, int t);
363 static int get_ent_count(struct section *s, int *ent_count);
364 static int get_mips_register_size(uint8_t flag);
365 static char *get_regoff_str(struct readelf *re, Dwarf_Half reg,
366 Dwarf_Addr off);
367 static const char *get_string(struct readelf *re, int strtab, size_t off);
368 static const char *get_symbol_name(struct readelf *re, int symtab, int i);
369 static uint64_t get_symbol_value(struct readelf *re, int symtab, int i);
370 static void load_sections(struct readelf *re);
371 static int loc_at_comparator(const void *la1, const void *la2);
372 static const char *mips_abi_fp(uint64_t fp);
373 static const char *note_type(const char *note_name, unsigned int et,
374 unsigned int nt);
375 static const char *note_type_fdo(unsigned int nt);
376 static const char *note_type_freebsd(unsigned int nt);
377 static const char *note_type_freebsd_core(unsigned int nt);
378 static const char *note_type_go(unsigned int nt);
379 static const char *note_type_gnu(unsigned int nt);
380 static const char *note_type_linux_core(unsigned int nt);
381 static const char *note_type_netbsd(unsigned int nt);
382 static const char *note_type_openbsd(unsigned int nt);
383 static const char *note_type_unknown(unsigned int nt);
384 static const char *note_type_xen(unsigned int nt);
385 static const char *option_kind(uint8_t kind);
386 static const char *phdr_type(unsigned int mach, unsigned int ptype);
387 static const char *ppc_abi_fp(uint64_t fp);
388 static const char *ppc_abi_vector(uint64_t vec);
389 static void readelf_usage(int status);
390 static void readelf_version(void);
391 static void search_loclist_at(struct readelf *re, Dwarf_Die die,
392 Dwarf_Unsigned lowpc, struct loc_at **la_list,
393 size_t *la_list_len, size_t *la_list_cap);
394 static void search_ver(struct readelf *re);
395 static const char *section_type(unsigned int mach, unsigned int stype);
396 static void set_cu_context(struct readelf *re, Dwarf_Half psize,
397 Dwarf_Half osize, Dwarf_Half ver);
398 static const char *st_bind(unsigned int sbind);
399 static const char *st_shndx(unsigned int shndx);
400 static const char *st_type(unsigned int mach, unsigned int os,
401 unsigned int stype);
402 static const char *st_vis(unsigned int svis);
403 static const char *top_tag(unsigned int tag);
404 static void unload_sections(struct readelf *re);
405 static uint64_t _read_lsb(Elf_Data *d, uint64_t *offsetp,
406 int bytes_to_read);
407 static uint64_t _read_msb(Elf_Data *d, uint64_t *offsetp,
408 int bytes_to_read);
409 static uint64_t _decode_lsb(uint8_t **data, int bytes_to_read);
410 static uint64_t _decode_msb(uint8_t **data, int bytes_to_read);
411 static int64_t _decode_sleb128(uint8_t **dp, uint8_t *dpe);
412 static uint64_t _decode_uleb128(uint8_t **dp, uint8_t *dpe);
413
414 static struct eflags_desc arm_eflags_desc[] = {
415 {EF_ARM_RELEXEC, "relocatable executable"},
416 {EF_ARM_HASENTRY, "has entry point"},
417 {EF_ARM_SYMSARESORTED, "sorted symbol tables"},
418 {EF_ARM_DYNSYMSUSESEGIDX, "dynamic symbols use segment index"},
419 {EF_ARM_MAPSYMSFIRST, "mapping symbols precede others"},
420 {EF_ARM_BE8, "BE8"},
421 {EF_ARM_LE8, "LE8"},
422 {EF_ARM_INTERWORK, "interworking enabled"},
423 {EF_ARM_APCS_26, "uses APCS/26"},
424 {EF_ARM_APCS_FLOAT, "uses APCS/float"},
425 {EF_ARM_PIC, "position independent"},
426 {EF_ARM_ALIGN8, "8 bit structure alignment"},
427 {EF_ARM_NEW_ABI, "uses new ABI"},
428 {EF_ARM_OLD_ABI, "uses old ABI"},
429 {EF_ARM_SOFT_FLOAT, "software FP"},
430 {EF_ARM_VFP_FLOAT, "VFP"},
431 {EF_ARM_MAVERICK_FLOAT, "Maverick FP"},
432 {0, NULL}
433 };
434
435 static struct eflags_desc mips_eflags_desc[] = {
436 {EF_MIPS_NOREORDER, "noreorder"},
437 {EF_MIPS_PIC, "pic"},
438 {EF_MIPS_CPIC, "cpic"},
439 {EF_MIPS_UCODE, "ugen_reserved"},
440 {EF_MIPS_ABI2, "abi2"},
441 {EF_MIPS_OPTIONS_FIRST, "odk first"},
442 {EF_MIPS_ARCH_ASE_MDMX, "mdmx"},
443 {EF_MIPS_ARCH_ASE_M16, "mips16"},
444 {0, NULL}
445 };
446
447 static struct eflags_desc powerpc_eflags_desc[] = {
448 {EF_PPC_EMB, "emb"},
449 {EF_PPC_RELOCATABLE, "relocatable"},
450 {EF_PPC_RELOCATABLE_LIB, "relocatable-lib"},
451 {0, NULL}
452 };
453
454 static struct eflags_desc riscv_eflags_desc[] = {
455 {EF_RISCV_RVC, "RVC"},
456 {EF_RISCV_RVE, "RVE"},
457 {EF_RISCV_TSO, "TSO"},
458 {0, NULL}
459 };
460
461 static struct eflags_desc sparc_eflags_desc[] = {
462 {EF_SPARC_32PLUS, "v8+"},
463 {EF_SPARC_SUN_US1, "ultrasparcI"},
464 {EF_SPARC_HAL_R1, "halr1"},
465 {EF_SPARC_SUN_US3, "ultrasparcIII"},
466 {0, NULL}
467 };
468
469 static const char *
elf_osabi(unsigned int abi)470 elf_osabi(unsigned int abi)
471 {
472 static char s_abi[32];
473
474 switch(abi) {
475 case ELFOSABI_NONE: return "NONE";
476 case ELFOSABI_HPUX: return "HPUX";
477 case ELFOSABI_NETBSD: return "NetBSD";
478 case ELFOSABI_GNU: return "GNU";
479 case ELFOSABI_HURD: return "HURD";
480 case ELFOSABI_86OPEN: return "86OPEN";
481 case ELFOSABI_SOLARIS: return "Solaris";
482 case ELFOSABI_AIX: return "AIX";
483 case ELFOSABI_IRIX: return "IRIX";
484 case ELFOSABI_FREEBSD: return "FreeBSD";
485 case ELFOSABI_TRU64: return "TRU64";
486 case ELFOSABI_MODESTO: return "MODESTO";
487 case ELFOSABI_OPENBSD: return "OpenBSD";
488 case ELFOSABI_OPENVMS: return "OpenVMS";
489 case ELFOSABI_NSK: return "NSK";
490 case ELFOSABI_CLOUDABI: return "CloudABI";
491 case ELFOSABI_ARM_AEABI: return "ARM EABI";
492 case ELFOSABI_ARM: return "ARM";
493 case ELFOSABI_STANDALONE: return "StandAlone";
494 default:
495 snprintf(s_abi, sizeof(s_abi), "<unknown: %#x>", abi);
496 return (s_abi);
497 }
498 };
499
500 static const char *
elf_machine(unsigned int mach)501 elf_machine(unsigned int mach)
502 {
503 static char s_mach[32];
504
505 switch (mach) {
506 case EM_NONE: return "Unknown machine";
507 case EM_M32: return "AT&T WE32100";
508 case EM_SPARC: return "Sun SPARC";
509 case EM_386: return "Intel i386";
510 case EM_68K: return "Motorola 68000";
511 case EM_IAMCU: return "Intel MCU";
512 case EM_88K: return "Motorola 88000";
513 case EM_860: return "Intel i860";
514 case EM_MIPS: return "MIPS R3000 Big-Endian only";
515 case EM_S370: return "IBM System/370";
516 case EM_MIPS_RS3_LE: return "MIPS R3000 Little-Endian";
517 case EM_PARISC: return "HP PA-RISC";
518 case EM_VPP500: return "Fujitsu VPP500";
519 case EM_SPARC32PLUS: return "SPARC v8plus";
520 case EM_960: return "Intel 80960";
521 case EM_PPC: return "PowerPC 32-bit";
522 case EM_PPC64: return "PowerPC 64-bit";
523 case EM_S390: return "IBM System/390";
524 case EM_V800: return "NEC V800";
525 case EM_FR20: return "Fujitsu FR20";
526 case EM_RH32: return "TRW RH-32";
527 case EM_RCE: return "Motorola RCE";
528 case EM_ARM: return "ARM";
529 case EM_SH: return "Hitachi SH";
530 case EM_SPARCV9: return "SPARC v9 64-bit";
531 case EM_TRICORE: return "Siemens TriCore embedded processor";
532 case EM_ARC: return "Argonaut RISC Core";
533 case EM_H8_300: return "Hitachi H8/300";
534 case EM_H8_300H: return "Hitachi H8/300H";
535 case EM_H8S: return "Hitachi H8S";
536 case EM_H8_500: return "Hitachi H8/500";
537 case EM_IA_64: return "Intel IA-64 Processor";
538 case EM_MIPS_X: return "Stanford MIPS-X";
539 case EM_COLDFIRE: return "Motorola ColdFire";
540 case EM_68HC12: return "Motorola M68HC12";
541 case EM_MMA: return "Fujitsu MMA";
542 case EM_PCP: return "Siemens PCP";
543 case EM_NCPU: return "Sony nCPU";
544 case EM_NDR1: return "Denso NDR1 microprocessor";
545 case EM_STARCORE: return "Motorola Star*Core processor";
546 case EM_ME16: return "Toyota ME16 processor";
547 case EM_ST100: return "STMicroelectronics ST100 processor";
548 case EM_TINYJ: return "Advanced Logic Corp. TinyJ processor";
549 case EM_X86_64: return "Advanced Micro Devices x86-64";
550 case EM_PDSP: return "Sony DSP Processor";
551 case EM_FX66: return "Siemens FX66 microcontroller";
552 case EM_ST9PLUS: return "STMicroelectronics ST9+ 8/16 microcontroller";
553 case EM_ST7: return "STmicroelectronics ST7 8-bit microcontroller";
554 case EM_68HC16: return "Motorola MC68HC16 microcontroller";
555 case EM_68HC11: return "Motorola MC68HC11 microcontroller";
556 case EM_68HC08: return "Motorola MC68HC08 microcontroller";
557 case EM_68HC05: return "Motorola MC68HC05 microcontroller";
558 case EM_SVX: return "Silicon Graphics SVx";
559 case EM_ST19: return "STMicroelectronics ST19 8-bit mc";
560 case EM_VAX: return "Digital VAX";
561 case EM_CRIS: return "Axis Communications 32-bit embedded processor";
562 case EM_JAVELIN: return "Infineon Tech. 32bit embedded processor";
563 case EM_FIREPATH: return "Element 14 64-bit DSP Processor";
564 case EM_ZSP: return "LSI Logic 16-bit DSP Processor";
565 case EM_MMIX: return "Donald Knuth's educational 64-bit proc";
566 case EM_HUANY: return "Harvard University MI object files";
567 case EM_PRISM: return "SiTera Prism";
568 case EM_AVR: return "Atmel AVR 8-bit microcontroller";
569 case EM_FR30: return "Fujitsu FR30";
570 case EM_D10V: return "Mitsubishi D10V";
571 case EM_D30V: return "Mitsubishi D30V";
572 case EM_V850: return "NEC v850";
573 case EM_M32R: return "Mitsubishi M32R";
574 case EM_MN10300: return "Matsushita MN10300";
575 case EM_MN10200: return "Matsushita MN10200";
576 case EM_PJ: return "picoJava";
577 case EM_OPENRISC: return "OpenRISC 32-bit embedded processor";
578 case EM_ARC_A5: return "ARC Cores Tangent-A5";
579 case EM_XTENSA: return "Tensilica Xtensa Architecture";
580 case EM_VIDEOCORE: return "Alphamosaic VideoCore processor";
581 case EM_TMM_GPP: return "Thompson Multimedia General Purpose Processor";
582 case EM_NS32K: return "National Semiconductor 32000 series";
583 case EM_TPC: return "Tenor Network TPC processor";
584 case EM_SNP1K: return "Trebia SNP 1000 processor";
585 case EM_ST200: return "STMicroelectronics ST200 microcontroller";
586 case EM_IP2K: return "Ubicom IP2xxx microcontroller family";
587 case EM_MAX: return "MAX Processor";
588 case EM_CR: return "National Semiconductor CompactRISC microprocessor";
589 case EM_F2MC16: return "Fujitsu F2MC16";
590 case EM_MSP430: return "TI embedded microcontroller msp430";
591 case EM_BLACKFIN: return "Analog Devices Blackfin (DSP) processor";
592 case EM_SE_C33: return "S1C33 Family of Seiko Epson processors";
593 case EM_SEP: return "Sharp embedded microprocessor";
594 case EM_ARCA: return "Arca RISC Microprocessor";
595 case EM_UNICORE: return "Microprocessor series from PKU-Unity Ltd";
596 case EM_AARCH64: return "AArch64";
597 case EM_RISCV: return "RISC-V";
598 default:
599 snprintf(s_mach, sizeof(s_mach), "<unknown: %#x>", mach);
600 return (s_mach);
601 }
602
603 }
604
605 static const char *
elf_class(unsigned int class)606 elf_class(unsigned int class)
607 {
608 static char s_class[32];
609
610 switch (class) {
611 case ELFCLASSNONE: return "none";
612 case ELFCLASS32: return "ELF32";
613 case ELFCLASS64: return "ELF64";
614 default:
615 snprintf(s_class, sizeof(s_class), "<unknown: %#x>", class);
616 return (s_class);
617 }
618 }
619
620 static const char *
elf_endian(unsigned int endian)621 elf_endian(unsigned int endian)
622 {
623 static char s_endian[32];
624
625 switch (endian) {
626 case ELFDATANONE: return "none";
627 case ELFDATA2LSB: return "2's complement, little endian";
628 case ELFDATA2MSB: return "2's complement, big endian";
629 default:
630 snprintf(s_endian, sizeof(s_endian), "<unknown: %#x>", endian);
631 return (s_endian);
632 }
633 }
634
635 static const char *
elf_type(unsigned int type)636 elf_type(unsigned int type)
637 {
638 static char s_type[32];
639
640 switch (type) {
641 case ET_NONE: return "NONE (None)";
642 case ET_REL: return "REL (Relocatable file)";
643 case ET_EXEC: return "EXEC (Executable file)";
644 case ET_DYN: return "DYN (Shared object file)";
645 case ET_CORE: return "CORE (Core file)";
646 default:
647 if (type >= ET_LOPROC)
648 snprintf(s_type, sizeof(s_type), "<proc: %#x>", type);
649 else if (type >= ET_LOOS && type <= ET_HIOS)
650 snprintf(s_type, sizeof(s_type), "<os: %#x>", type);
651 else
652 snprintf(s_type, sizeof(s_type), "<unknown: %#x>",
653 type);
654 return (s_type);
655 }
656 }
657
658 static const char *
elf_ver(unsigned int ver)659 elf_ver(unsigned int ver)
660 {
661 static char s_ver[32];
662
663 switch (ver) {
664 case EV_CURRENT: return "(current)";
665 case EV_NONE: return "(none)";
666 default:
667 snprintf(s_ver, sizeof(s_ver), "<unknown: %#x>",
668 ver);
669 return (s_ver);
670 }
671 }
672
673 static const char *
phdr_type(unsigned int mach,unsigned int ptype)674 phdr_type(unsigned int mach, unsigned int ptype)
675 {
676 static char s_ptype[32];
677
678 if (ptype >= PT_LOPROC && ptype <= PT_HIPROC) {
679 switch (mach) {
680 case EM_ARM:
681 switch (ptype) {
682 case PT_ARM_ARCHEXT: return "ARM_ARCHEXT";
683 case PT_ARM_EXIDX: return "ARM_EXIDX";
684 }
685 break;
686 }
687 snprintf(s_ptype, sizeof(s_ptype), "LOPROC+%#x",
688 ptype - PT_LOPROC);
689 return (s_ptype);
690 }
691
692 switch (ptype) {
693 case PT_NULL: return "NULL";
694 case PT_LOAD: return "LOAD";
695 case PT_DYNAMIC: return "DYNAMIC";
696 case PT_INTERP: return "INTERP";
697 case PT_NOTE: return "NOTE";
698 case PT_SHLIB: return "SHLIB";
699 case PT_PHDR: return "PHDR";
700 case PT_TLS: return "TLS";
701 case PT_GNU_EH_FRAME: return "GNU_EH_FRAME";
702 case PT_GNU_STACK: return "GNU_STACK";
703 case PT_GNU_RELRO: return "GNU_RELRO";
704 case PT_OPENBSD_RANDOMIZE: return "OPENBSD_RANDOMIZE";
705 case PT_OPENBSD_WXNEEDED: return "OPENBSD_WXNEEDED";
706 case PT_OPENBSD_BOOTDATA: return "OPENBSD_BOOTDATA";
707 default:
708 if (ptype >= PT_LOOS && ptype <= PT_HIOS)
709 snprintf(s_ptype, sizeof(s_ptype), "LOOS+%#x",
710 ptype - PT_LOOS);
711 else
712 snprintf(s_ptype, sizeof(s_ptype), "<unknown: %#x>",
713 ptype);
714 return (s_ptype);
715 }
716 }
717
718 static const char *
section_type(unsigned int mach,unsigned int stype)719 section_type(unsigned int mach, unsigned int stype)
720 {
721 static char s_stype[32];
722
723 if (stype >= SHT_LOPROC && stype <= SHT_HIPROC) {
724 switch (mach) {
725 case EM_ARM:
726 switch (stype) {
727 case SHT_ARM_EXIDX: return "ARM_EXIDX";
728 case SHT_ARM_PREEMPTMAP: return "ARM_PREEMPTMAP";
729 case SHT_ARM_ATTRIBUTES: return "ARM_ATTRIBUTES";
730 case SHT_ARM_DEBUGOVERLAY: return "ARM_DEBUGOVERLAY";
731 case SHT_ARM_OVERLAYSECTION: return "ARM_OVERLAYSECTION";
732 }
733 break;
734 case EM_X86_64:
735 switch (stype) {
736 case SHT_X86_64_UNWIND: return "X86_64_UNWIND";
737 default:
738 break;
739 }
740 break;
741 case EM_MIPS:
742 case EM_MIPS_RS3_LE:
743 switch (stype) {
744 case SHT_MIPS_LIBLIST: return "MIPS_LIBLIST";
745 case SHT_MIPS_MSYM: return "MIPS_MSYM";
746 case SHT_MIPS_CONFLICT: return "MIPS_CONFLICT";
747 case SHT_MIPS_GPTAB: return "MIPS_GPTAB";
748 case SHT_MIPS_UCODE: return "MIPS_UCODE";
749 case SHT_MIPS_DEBUG: return "MIPS_DEBUG";
750 case SHT_MIPS_REGINFO: return "MIPS_REGINFO";
751 case SHT_MIPS_PACKAGE: return "MIPS_PACKAGE";
752 case SHT_MIPS_PACKSYM: return "MIPS_PACKSYM";
753 case SHT_MIPS_RELD: return "MIPS_RELD";
754 case SHT_MIPS_IFACE: return "MIPS_IFACE";
755 case SHT_MIPS_CONTENT: return "MIPS_CONTENT";
756 case SHT_MIPS_OPTIONS: return "MIPS_OPTIONS";
757 case SHT_MIPS_DELTASYM: return "MIPS_DELTASYM";
758 case SHT_MIPS_DELTAINST: return "MIPS_DELTAINST";
759 case SHT_MIPS_DELTACLASS: return "MIPS_DELTACLASS";
760 case SHT_MIPS_DWARF: return "MIPS_DWARF";
761 case SHT_MIPS_DELTADECL: return "MIPS_DELTADECL";
762 case SHT_MIPS_SYMBOL_LIB: return "MIPS_SYMBOL_LIB";
763 case SHT_MIPS_EVENTS: return "MIPS_EVENTS";
764 case SHT_MIPS_TRANSLATE: return "MIPS_TRANSLATE";
765 case SHT_MIPS_PIXIE: return "MIPS_PIXIE";
766 case SHT_MIPS_XLATE: return "MIPS_XLATE";
767 case SHT_MIPS_XLATE_DEBUG: return "MIPS_XLATE_DEBUG";
768 case SHT_MIPS_WHIRL: return "MIPS_WHIRL";
769 case SHT_MIPS_EH_REGION: return "MIPS_EH_REGION";
770 case SHT_MIPS_XLATE_OLD: return "MIPS_XLATE_OLD";
771 case SHT_MIPS_PDR_EXCEPTION: return "MIPS_PDR_EXCEPTION";
772 case SHT_MIPS_ABIFLAGS: return "MIPS_ABIFLAGS";
773 default:
774 break;
775 }
776 break;
777 default:
778 break;
779 }
780
781 snprintf(s_stype, sizeof(s_stype), "LOPROC+%#x",
782 stype - SHT_LOPROC);
783 return (s_stype);
784 }
785
786 switch (stype) {
787 case SHT_NULL: return "NULL";
788 case SHT_PROGBITS: return "PROGBITS";
789 case SHT_SYMTAB: return "SYMTAB";
790 case SHT_STRTAB: return "STRTAB";
791 case SHT_RELA: return "RELA";
792 case SHT_HASH: return "HASH";
793 case SHT_DYNAMIC: return "DYNAMIC";
794 case SHT_NOTE: return "NOTE";
795 case SHT_NOBITS: return "NOBITS";
796 case SHT_REL: return "REL";
797 case SHT_SHLIB: return "SHLIB";
798 case SHT_DYNSYM: return "DYNSYM";
799 case SHT_INIT_ARRAY: return "INIT_ARRAY";
800 case SHT_FINI_ARRAY: return "FINI_ARRAY";
801 case SHT_PREINIT_ARRAY: return "PREINIT_ARRAY";
802 case SHT_GROUP: return "GROUP";
803 case SHT_SYMTAB_SHNDX: return "SYMTAB_SHNDX";
804 case SHT_SUNW_dof: return "SUNW_dof";
805 case SHT_SUNW_cap: return "SUNW_cap";
806 case SHT_GNU_HASH: return "GNU_HASH";
807 case SHT_SUNW_ANNOTATE: return "SUNW_ANNOTATE";
808 case SHT_SUNW_DEBUGSTR: return "SUNW_DEBUGSTR";
809 case SHT_SUNW_DEBUG: return "SUNW_DEBUG";
810 case SHT_SUNW_move: return "SUNW_move";
811 case SHT_SUNW_COMDAT: return "SUNW_COMDAT";
812 case SHT_SUNW_syminfo: return "SUNW_syminfo";
813 case SHT_SUNW_verdef: return "SUNW_verdef";
814 case SHT_SUNW_verneed: return "SUNW_verneed";
815 case SHT_SUNW_versym: return "SUNW_versym";
816 default:
817 if (stype >= SHT_LOOS && stype <= SHT_HIOS)
818 snprintf(s_stype, sizeof(s_stype), "LOOS+%#x",
819 stype - SHT_LOOS);
820 else if (stype >= SHT_LOUSER)
821 snprintf(s_stype, sizeof(s_stype), "LOUSER+%#x",
822 stype - SHT_LOUSER);
823 else
824 snprintf(s_stype, sizeof(s_stype), "<unknown: %#x>",
825 stype);
826 return (s_stype);
827 }
828 }
829
830 static const char *
dt_type(unsigned int mach,unsigned int dtype)831 dt_type(unsigned int mach, unsigned int dtype)
832 {
833 static char s_dtype[32];
834
835 switch (dtype) {
836 case DT_NULL: return "NULL";
837 case DT_NEEDED: return "NEEDED";
838 case DT_PLTRELSZ: return "PLTRELSZ";
839 case DT_PLTGOT: return "PLTGOT";
840 case DT_HASH: return "HASH";
841 case DT_STRTAB: return "STRTAB";
842 case DT_SYMTAB: return "SYMTAB";
843 case DT_RELA: return "RELA";
844 case DT_RELASZ: return "RELASZ";
845 case DT_RELAENT: return "RELAENT";
846 case DT_STRSZ: return "STRSZ";
847 case DT_SYMENT: return "SYMENT";
848 case DT_INIT: return "INIT";
849 case DT_FINI: return "FINI";
850 case DT_SONAME: return "SONAME";
851 case DT_RPATH: return "RPATH";
852 case DT_SYMBOLIC: return "SYMBOLIC";
853 case DT_REL: return "REL";
854 case DT_RELSZ: return "RELSZ";
855 case DT_RELENT: return "RELENT";
856 case DT_PLTREL: return "PLTREL";
857 case DT_DEBUG: return "DEBUG";
858 case DT_TEXTREL: return "TEXTREL";
859 case DT_JMPREL: return "JMPREL";
860 case DT_BIND_NOW: return "BIND_NOW";
861 case DT_INIT_ARRAY: return "INIT_ARRAY";
862 case DT_FINI_ARRAY: return "FINI_ARRAY";
863 case DT_INIT_ARRAYSZ: return "INIT_ARRAYSZ";
864 case DT_FINI_ARRAYSZ: return "FINI_ARRAYSZ";
865 case DT_RUNPATH: return "RUNPATH";
866 case DT_FLAGS: return "FLAGS";
867 case DT_PREINIT_ARRAY: return "PREINIT_ARRAY";
868 case DT_PREINIT_ARRAYSZ: return "PREINIT_ARRAYSZ";
869 case DT_SUNW_AUXILIARY: return "SUNW_AUXILIARY";
870 case DT_SUNW_RTLDINF: return "SUNW_RTLDINF";
871 case DT_SUNW_FILTER: return "SUNW_FILTER";
872 case DT_SUNW_CAP: return "SUNW_CAP";
873 case DT_SUNW_ASLR: return "SUNW_ASLR";
874 case DT_SYMTAB_SHNDX: return "SYMTAB_SHNDX";
875 case DT_CHECKSUM: return "CHECKSUM";
876 case DT_PLTPADSZ: return "PLTPADSZ";
877 case DT_MOVEENT: return "MOVEENT";
878 case DT_MOVESZ: return "MOVESZ";
879 case DT_FEATURE: return "FEATURE";
880 case DT_POSFLAG_1: return "POSFLAG_1";
881 case DT_SYMINSZ: return "SYMINSZ";
882 case DT_SYMINENT: return "SYMINENT";
883 case DT_GNU_HASH: return "GNU_HASH";
884 case DT_TLSDESC_PLT: return "DT_TLSDESC_PLT";
885 case DT_TLSDESC_GOT: return "DT_TLSDESC_GOT";
886 case DT_GNU_CONFLICT: return "GNU_CONFLICT";
887 case DT_GNU_LIBLIST: return "GNU_LIBLIST";
888 case DT_CONFIG: return "CONFIG";
889 case DT_DEPAUDIT: return "DEPAUDIT";
890 case DT_AUDIT: return "AUDIT";
891 case DT_PLTPAD: return "PLTPAD";
892 case DT_MOVETAB: return "MOVETAB";
893 case DT_SYMINFO: return "SYMINFO";
894 case DT_VERSYM: return "VERSYM";
895 case DT_RELACOUNT: return "RELACOUNT";
896 case DT_RELCOUNT: return "RELCOUNT";
897 case DT_FLAGS_1: return "FLAGS_1";
898 case DT_VERDEF: return "VERDEF";
899 case DT_VERDEFNUM: return "VERDEFNUM";
900 case DT_VERNEED: return "VERNEED";
901 case DT_VERNEEDNUM: return "VERNEEDNUM";
902 case DT_AUXILIARY: return "AUXILIARY";
903 case DT_USED: return "USED";
904 case DT_FILTER: return "FILTER";
905 case DT_GNU_PRELINKED: return "GNU_PRELINKED";
906 case DT_GNU_CONFLICTSZ: return "GNU_CONFLICTSZ";
907 case DT_GNU_LIBLISTSZ: return "GNU_LIBLISTSZ";
908 }
909
910 if (dtype >= DT_LOPROC && dtype <= DT_HIPROC) {
911 switch (mach) {
912 case EM_ARM:
913 switch (dtype) {
914 case DT_ARM_SYMTABSZ:
915 return "ARM_SYMTABSZ";
916 default:
917 break;
918 }
919 break;
920 case EM_MIPS:
921 case EM_MIPS_RS3_LE:
922 switch (dtype) {
923 case DT_MIPS_RLD_VERSION:
924 return "MIPS_RLD_VERSION";
925 case DT_MIPS_TIME_STAMP:
926 return "MIPS_TIME_STAMP";
927 case DT_MIPS_ICHECKSUM:
928 return "MIPS_ICHECKSUM";
929 case DT_MIPS_IVERSION:
930 return "MIPS_IVERSION";
931 case DT_MIPS_FLAGS:
932 return "MIPS_FLAGS";
933 case DT_MIPS_BASE_ADDRESS:
934 return "MIPS_BASE_ADDRESS";
935 case DT_MIPS_CONFLICT:
936 return "MIPS_CONFLICT";
937 case DT_MIPS_LIBLIST:
938 return "MIPS_LIBLIST";
939 case DT_MIPS_LOCAL_GOTNO:
940 return "MIPS_LOCAL_GOTNO";
941 case DT_MIPS_CONFLICTNO:
942 return "MIPS_CONFLICTNO";
943 case DT_MIPS_LIBLISTNO:
944 return "MIPS_LIBLISTNO";
945 case DT_MIPS_SYMTABNO:
946 return "MIPS_SYMTABNO";
947 case DT_MIPS_UNREFEXTNO:
948 return "MIPS_UNREFEXTNO";
949 case DT_MIPS_GOTSYM:
950 return "MIPS_GOTSYM";
951 case DT_MIPS_HIPAGENO:
952 return "MIPS_HIPAGENO";
953 case DT_MIPS_RLD_MAP:
954 return "MIPS_RLD_MAP";
955 case DT_MIPS_DELTA_CLASS:
956 return "MIPS_DELTA_CLASS";
957 case DT_MIPS_DELTA_CLASS_NO:
958 return "MIPS_DELTA_CLASS_NO";
959 case DT_MIPS_DELTA_INSTANCE:
960 return "MIPS_DELTA_INSTANCE";
961 case DT_MIPS_DELTA_INSTANCE_NO:
962 return "MIPS_DELTA_INSTANCE_NO";
963 case DT_MIPS_DELTA_RELOC:
964 return "MIPS_DELTA_RELOC";
965 case DT_MIPS_DELTA_RELOC_NO:
966 return "MIPS_DELTA_RELOC_NO";
967 case DT_MIPS_DELTA_SYM:
968 return "MIPS_DELTA_SYM";
969 case DT_MIPS_DELTA_SYM_NO:
970 return "MIPS_DELTA_SYM_NO";
971 case DT_MIPS_DELTA_CLASSSYM:
972 return "MIPS_DELTA_CLASSSYM";
973 case DT_MIPS_DELTA_CLASSSYM_NO:
974 return "MIPS_DELTA_CLASSSYM_NO";
975 case DT_MIPS_CXX_FLAGS:
976 return "MIPS_CXX_FLAGS";
977 case DT_MIPS_PIXIE_INIT:
978 return "MIPS_PIXIE_INIT";
979 case DT_MIPS_SYMBOL_LIB:
980 return "MIPS_SYMBOL_LIB";
981 case DT_MIPS_LOCALPAGE_GOTIDX:
982 return "MIPS_LOCALPAGE_GOTIDX";
983 case DT_MIPS_LOCAL_GOTIDX:
984 return "MIPS_LOCAL_GOTIDX";
985 case DT_MIPS_HIDDEN_GOTIDX:
986 return "MIPS_HIDDEN_GOTIDX";
987 case DT_MIPS_PROTECTED_GOTIDX:
988 return "MIPS_PROTECTED_GOTIDX";
989 case DT_MIPS_OPTIONS:
990 return "MIPS_OPTIONS";
991 case DT_MIPS_INTERFACE:
992 return "MIPS_INTERFACE";
993 case DT_MIPS_DYNSTR_ALIGN:
994 return "MIPS_DYNSTR_ALIGN";
995 case DT_MIPS_INTERFACE_SIZE:
996 return "MIPS_INTERFACE_SIZE";
997 case DT_MIPS_RLD_TEXT_RESOLVE_ADDR:
998 return "MIPS_RLD_TEXT_RESOLVE_ADDR";
999 case DT_MIPS_PERF_SUFFIX:
1000 return "MIPS_PERF_SUFFIX";
1001 case DT_MIPS_COMPACT_SIZE:
1002 return "MIPS_COMPACT_SIZE";
1003 case DT_MIPS_GP_VALUE:
1004 return "MIPS_GP_VALUE";
1005 case DT_MIPS_AUX_DYNAMIC:
1006 return "MIPS_AUX_DYNAMIC";
1007 case DT_MIPS_PLTGOT:
1008 return "MIPS_PLTGOT";
1009 case DT_MIPS_RLD_OBJ_UPDATE:
1010 return "MIPS_RLD_OBJ_UPDATE";
1011 case DT_MIPS_RWPLT:
1012 return "MIPS_RWPLT";
1013 default:
1014 break;
1015 }
1016 break;
1017 case EM_SPARC:
1018 case EM_SPARC32PLUS:
1019 case EM_SPARCV9:
1020 switch (dtype) {
1021 case DT_SPARC_REGISTER:
1022 return "DT_SPARC_REGISTER";
1023 default:
1024 break;
1025 }
1026 break;
1027 default:
1028 break;
1029 }
1030 }
1031
1032 snprintf(s_dtype, sizeof(s_dtype), "<unknown: %#x>", dtype);
1033 return (s_dtype);
1034 }
1035
1036 static const char *
st_bind(unsigned int sbind)1037 st_bind(unsigned int sbind)
1038 {
1039 static char s_sbind[32];
1040
1041 switch (sbind) {
1042 case STB_LOCAL: return "LOCAL";
1043 case STB_GLOBAL: return "GLOBAL";
1044 case STB_WEAK: return "WEAK";
1045 case STB_GNU_UNIQUE: return "UNIQUE";
1046 default:
1047 if (sbind >= STB_LOOS && sbind <= STB_HIOS)
1048 return "OS";
1049 else if (sbind >= STB_LOPROC && sbind <= STB_HIPROC)
1050 return "PROC";
1051 else
1052 snprintf(s_sbind, sizeof(s_sbind), "<unknown: %#x>",
1053 sbind);
1054 return (s_sbind);
1055 }
1056 }
1057
1058 static const char *
st_type(unsigned int mach,unsigned int os,unsigned int stype)1059 st_type(unsigned int mach, unsigned int os, unsigned int stype)
1060 {
1061 static char s_stype[32];
1062
1063 switch (stype) {
1064 case STT_NOTYPE: return "NOTYPE";
1065 case STT_OBJECT: return "OBJECT";
1066 case STT_FUNC: return "FUNC";
1067 case STT_SECTION: return "SECTION";
1068 case STT_FILE: return "FILE";
1069 case STT_COMMON: return "COMMON";
1070 case STT_TLS: return "TLS";
1071 default:
1072 if (stype >= STT_LOOS && stype <= STT_HIOS) {
1073 if ((os == ELFOSABI_GNU || os == ELFOSABI_FREEBSD) &&
1074 stype == STT_GNU_IFUNC)
1075 return "IFUNC";
1076 snprintf(s_stype, sizeof(s_stype), "OS+%#x",
1077 stype - STT_LOOS);
1078 } else if (stype >= STT_LOPROC && stype <= STT_HIPROC) {
1079 if (mach == EM_SPARCV9 && stype == STT_SPARC_REGISTER)
1080 return "REGISTER";
1081 snprintf(s_stype, sizeof(s_stype), "PROC+%#x",
1082 stype - STT_LOPROC);
1083 } else
1084 snprintf(s_stype, sizeof(s_stype), "<unknown: %#x>",
1085 stype);
1086 return (s_stype);
1087 }
1088 }
1089
1090 static const char *
st_vis(unsigned int svis)1091 st_vis(unsigned int svis)
1092 {
1093 static char s_svis[32];
1094
1095 switch(svis) {
1096 case STV_DEFAULT: return "DEFAULT";
1097 case STV_INTERNAL: return "INTERNAL";
1098 case STV_HIDDEN: return "HIDDEN";
1099 case STV_PROTECTED: return "PROTECTED";
1100 default:
1101 snprintf(s_svis, sizeof(s_svis), "<unknown: %#x>", svis);
1102 return (s_svis);
1103 }
1104 }
1105
1106 static const char *
st_shndx(unsigned int shndx)1107 st_shndx(unsigned int shndx)
1108 {
1109 static char s_shndx[32];
1110
1111 switch (shndx) {
1112 case SHN_UNDEF: return "UND";
1113 case SHN_ABS: return "ABS";
1114 case SHN_COMMON: return "COM";
1115 default:
1116 if (shndx >= SHN_LOPROC && shndx <= SHN_HIPROC)
1117 return "PRC";
1118 else if (shndx >= SHN_LOOS && shndx <= SHN_HIOS)
1119 return "OS";
1120 else
1121 snprintf(s_shndx, sizeof(s_shndx), "%u", shndx);
1122 return (s_shndx);
1123 }
1124 }
1125
1126 static struct {
1127 const char *ln;
1128 char sn;
1129 int value;
1130 } section_flag[] = {
1131 {"WRITE", 'W', SHF_WRITE},
1132 {"ALLOC", 'A', SHF_ALLOC},
1133 {"EXEC", 'X', SHF_EXECINSTR},
1134 {"MERGE", 'M', SHF_MERGE},
1135 {"STRINGS", 'S', SHF_STRINGS},
1136 {"INFO LINK", 'I', SHF_INFO_LINK},
1137 {"OS NONCONF", 'O', SHF_OS_NONCONFORMING},
1138 {"GROUP", 'G', SHF_GROUP},
1139 {"TLS", 'T', SHF_TLS},
1140 {"COMPRESSED", 'C', SHF_COMPRESSED},
1141 {NULL, 0, 0}
1142 };
1143
1144 static const char *
note_type(const char * name,unsigned int et,unsigned int nt)1145 note_type(const char *name, unsigned int et, unsigned int nt)
1146 {
1147 if ((strcmp(name, "CORE") == 0 || strcmp(name, "LINUX") == 0) &&
1148 et == ET_CORE)
1149 return note_type_linux_core(nt);
1150 else if (strcmp(name, "FreeBSD") == 0)
1151 if (et == ET_CORE)
1152 return note_type_freebsd_core(nt);
1153 else
1154 return note_type_freebsd(nt);
1155 else if (strcmp(name, "FDO") == 0 && et != ET_CORE)
1156 return note_type_fdo(nt);
1157 else if (strcmp(name, "GNU") == 0 && et != ET_CORE)
1158 return note_type_gnu(nt);
1159 else if (strcmp(name, "Go") == 0 && et != ET_CORE)
1160 return note_type_go(nt);
1161 else if (strcmp(name, "NetBSD") == 0 && et != ET_CORE)
1162 return note_type_netbsd(nt);
1163 else if (strcmp(name, "OpenBSD") == 0 && et != ET_CORE)
1164 return note_type_openbsd(nt);
1165 else if (strcmp(name, "Xen") == 0 && et != ET_CORE)
1166 return note_type_xen(nt);
1167 return note_type_unknown(nt);
1168 }
1169
1170 static const char *
note_type_fdo(unsigned int nt)1171 note_type_fdo(unsigned int nt)
1172 {
1173 switch (nt) {
1174 case NT_FDO_PACKAGING_METADATA: return "NT_FDO_PACKAGING_METADATA";
1175 default: return (note_type_unknown(nt));
1176 }
1177 }
1178
1179 static const char *
note_type_freebsd(unsigned int nt)1180 note_type_freebsd(unsigned int nt)
1181 {
1182 switch (nt) {
1183 case 1: return "NT_FREEBSD_ABI_TAG";
1184 case 2: return "NT_FREEBSD_NOINIT_TAG";
1185 case 3: return "NT_FREEBSD_ARCH_TAG";
1186 case 4: return "NT_FREEBSD_FEATURE_CTL";
1187 default: return (note_type_unknown(nt));
1188 }
1189 }
1190
1191 static const char *
note_type_freebsd_core(unsigned int nt)1192 note_type_freebsd_core(unsigned int nt)
1193 {
1194 switch (nt) {
1195 case 1: return "NT_PRSTATUS";
1196 case 2: return "NT_FPREGSET";
1197 case 3: return "NT_PRPSINFO";
1198 case 7: return "NT_THRMISC";
1199 case 8: return "NT_PROCSTAT_PROC";
1200 case 9: return "NT_PROCSTAT_FILES";
1201 case 10: return "NT_PROCSTAT_VMMAP";
1202 case 11: return "NT_PROCSTAT_GROUPS";
1203 case 12: return "NT_PROCSTAT_UMASK";
1204 case 13: return "NT_PROCSTAT_RLIMIT";
1205 case 14: return "NT_PROCSTAT_OSREL";
1206 case 15: return "NT_PROCSTAT_PSSTRINGS";
1207 case 16: return "NT_PROCSTAT_AUXV";
1208 case 17: return "NT_PTLWPINFO";
1209 case 0x100: return "NT_PPC_VMX (ppc Altivec registers)";
1210 case 0x102: return "NT_PPC_VSX (ppc VSX registers)";
1211 case 0x200: return "NT_X86_SEGBASES (x86 segment base registers)";
1212 case 0x202: return "NT_X86_XSTATE (x86 XSAVE extended state)";
1213 case 0x400: return "NT_ARM_VFP (arm VFP registers)";
1214 case 0x401: return "NT_ARM_TLS (arm TLS register)";
1215 case 0x406: return "NT_ARM_ADDR_MASK (arm address mask)";
1216 default: return (note_type_unknown(nt));
1217 }
1218 }
1219
1220 static const char *
note_type_linux_core(unsigned int nt)1221 note_type_linux_core(unsigned int nt)
1222 {
1223 switch (nt) {
1224 case 1: return "NT_PRSTATUS (Process status)";
1225 case 2: return "NT_FPREGSET (Floating point information)";
1226 case 3: return "NT_PRPSINFO (Process information)";
1227 case 4: return "NT_TASKSTRUCT (Task structure)";
1228 case 6: return "NT_AUXV (Auxiliary vector)";
1229 case 10: return "NT_PSTATUS (Linux process status)";
1230 case 12: return "NT_FPREGS (Linux floating point regset)";
1231 case 13: return "NT_PSINFO (Linux process information)";
1232 case 16: return "NT_LWPSTATUS (Linux lwpstatus_t type)";
1233 case 17: return "NT_LWPSINFO (Linux lwpinfo_t type)";
1234 case 18: return "NT_WIN32PSTATUS (win32_pstatus structure)";
1235 case 0x100: return "NT_PPC_VMX (ppc Altivec registers)";
1236 case 0x102: return "NT_PPC_VSX (ppc VSX registers)";
1237 case 0x202: return "NT_X86_XSTATE (x86 XSAVE extended state)";
1238 case 0x300: return "NT_S390_HIGH_GPRS (s390 upper register halves)";
1239 case 0x301: return "NT_S390_TIMER (s390 timer register)";
1240 case 0x302: return "NT_S390_TODCMP (s390 TOD comparator register)";
1241 case 0x303: return "NT_S390_TODPREG (s390 TOD programmable register)";
1242 case 0x304: return "NT_S390_CTRS (s390 control registers)";
1243 case 0x305: return "NT_S390_PREFIX (s390 prefix register)";
1244 case 0x400: return "NT_ARM_VFP (arm VFP registers)";
1245 case 0x401: return "NT_ARM_TLS (arm TLS register)";
1246 case 0x402: return "NT_ARM_HW_BREAK (arm hardware breakpoint registers)";
1247 case 0x403: return "NT_ARM_HW_WATCH (arm hardware watchpoint registers)";
1248 case 0x404: return "NT_ARM_SYSTEM_CALL (arm system call number)";
1249 case 0x405: return "NT_ARM_SVE (arm scalable vector extension registers)";
1250 case 0x406: return "NT_ARM_PAC_MASK (arm pointer authentication code mask)";
1251 case 0x407: return "NT_ARM_PACA_KEYS (arm pointer authentication address keys)";
1252 case 0x408: return "NT_ARM_PACG_KEYS (arm pointer authentication generic keys)";
1253 case 0x409: return "NT_ARM_TAGGED_ADDR_CTRL (arm64 tagged address control)";
1254 case 0x40a: return "NT_ARM_PAC_ENABLED_KEYS (arm64 ptr auth enabled keys)";
1255 case 0x46494c45UL: return "NT_FILE (mapped files)";
1256 case 0x46E62B7FUL: return "NT_PRXFPREG (Linux user_xfpregs structure)";
1257 case 0x53494749UL: return "NT_SIGINFO (siginfo_t data)";
1258 default: return (note_type_unknown(nt));
1259 }
1260 }
1261
1262 static const char *
note_type_gnu(unsigned int nt)1263 note_type_gnu(unsigned int nt)
1264 {
1265 switch (nt) {
1266 case 1: return "NT_GNU_ABI_TAG";
1267 case 2: return "NT_GNU_HWCAP (Hardware capabilities)";
1268 case 3: return "NT_GNU_BUILD_ID (Build id set by ld(1))";
1269 case 4: return "NT_GNU_GOLD_VERSION (GNU gold version)";
1270 case 5: return "NT_GNU_PROPERTY_TYPE_0";
1271 default: return (note_type_unknown(nt));
1272 }
1273 }
1274
1275 static const char *
note_type_go(unsigned int nt)1276 note_type_go(unsigned int nt)
1277 {
1278 switch (nt) {
1279 case 4: return "elfGoBuildIDTag";
1280 default: return (note_type_unknown(nt));
1281 }
1282 }
1283
1284 static const char *
note_type_netbsd(unsigned int nt)1285 note_type_netbsd(unsigned int nt)
1286 {
1287 switch (nt) {
1288 case 1: return "NT_NETBSD_IDENT";
1289 default: return (note_type_unknown(nt));
1290 }
1291 }
1292
1293 static const char *
note_type_openbsd(unsigned int nt)1294 note_type_openbsd(unsigned int nt)
1295 {
1296 switch (nt) {
1297 case 1: return "NT_OPENBSD_IDENT";
1298 default: return (note_type_unknown(nt));
1299 }
1300 }
1301
1302 static const char *
note_type_unknown(unsigned int nt)1303 note_type_unknown(unsigned int nt)
1304 {
1305 static char s_nt[32];
1306
1307 snprintf(s_nt, sizeof(s_nt),
1308 nt >= 0x100 ? "<unknown: 0x%x>" : "<unknown: %u>", nt);
1309 return (s_nt);
1310 }
1311
1312 static const char *
note_type_xen(unsigned int nt)1313 note_type_xen(unsigned int nt)
1314 {
1315 switch (nt) {
1316 case 0: return "XEN_ELFNOTE_INFO";
1317 case 1: return "XEN_ELFNOTE_ENTRY";
1318 case 2: return "XEN_ELFNOTE_HYPERCALL_PAGE";
1319 case 3: return "XEN_ELFNOTE_VIRT_BASE";
1320 case 4: return "XEN_ELFNOTE_PADDR_OFFSET";
1321 case 5: return "XEN_ELFNOTE_XEN_VERSION";
1322 case 6: return "XEN_ELFNOTE_GUEST_OS";
1323 case 7: return "XEN_ELFNOTE_GUEST_VERSION";
1324 case 8: return "XEN_ELFNOTE_LOADER";
1325 case 9: return "XEN_ELFNOTE_PAE_MODE";
1326 case 10: return "XEN_ELFNOTE_FEATURES";
1327 case 11: return "XEN_ELFNOTE_BSD_SYMTAB";
1328 case 12: return "XEN_ELFNOTE_HV_START_LOW";
1329 case 13: return "XEN_ELFNOTE_L1_MFN_VALID";
1330 case 14: return "XEN_ELFNOTE_SUSPEND_CANCEL";
1331 case 15: return "XEN_ELFNOTE_INIT_P2M";
1332 case 16: return "XEN_ELFNOTE_MOD_START_PFN";
1333 case 17: return "XEN_ELFNOTE_SUPPORTED_FEATURES";
1334 case 18: return "XEN_ELFNOTE_PHYS32_ENTRY";
1335 default: return (note_type_unknown(nt));
1336 }
1337 }
1338
1339 static struct {
1340 const char *name;
1341 int value;
1342 } l_flag[] = {
1343 {"EXACT_MATCH", LL_EXACT_MATCH},
1344 {"IGNORE_INT_VER", LL_IGNORE_INT_VER},
1345 {"REQUIRE_MINOR", LL_REQUIRE_MINOR},
1346 {"EXPORTS", LL_EXPORTS},
1347 {"DELAY_LOAD", LL_DELAY_LOAD},
1348 {"DELTA", LL_DELTA},
1349 {NULL, 0}
1350 };
1351
1352 static struct mips_option mips_exceptions_option[] = {
1353 {OEX_PAGE0, "PAGE0"},
1354 {OEX_SMM, "SMM"},
1355 {OEX_PRECISEFP, "PRECISEFP"},
1356 {OEX_DISMISS, "DISMISS"},
1357 {0, NULL}
1358 };
1359
1360 static struct mips_option mips_pad_option[] = {
1361 {OPAD_PREFIX, "PREFIX"},
1362 {OPAD_POSTFIX, "POSTFIX"},
1363 {OPAD_SYMBOL, "SYMBOL"},
1364 {0, NULL}
1365 };
1366
1367 static struct mips_option mips_hwpatch_option[] = {
1368 {OHW_R4KEOP, "R4KEOP"},
1369 {OHW_R8KPFETCH, "R8KPFETCH"},
1370 {OHW_R5KEOP, "R5KEOP"},
1371 {OHW_R5KCVTL, "R5KCVTL"},
1372 {0, NULL}
1373 };
1374
1375 static struct mips_option mips_hwa_option[] = {
1376 {OHWA0_R4KEOP_CHECKED, "R4KEOP_CHECKED"},
1377 {OHWA0_R4KEOP_CLEAN, "R4KEOP_CLEAN"},
1378 {0, NULL}
1379 };
1380
1381 static struct mips_option mips_hwo_option[] = {
1382 {OHWO0_FIXADE, "FIXADE"},
1383 {0, NULL}
1384 };
1385
1386 static const char *
option_kind(uint8_t kind)1387 option_kind(uint8_t kind)
1388 {
1389 static char s_kind[32];
1390
1391 switch (kind) {
1392 case ODK_NULL: return "NULL";
1393 case ODK_REGINFO: return "REGINFO";
1394 case ODK_EXCEPTIONS: return "EXCEPTIONS";
1395 case ODK_PAD: return "PAD";
1396 case ODK_HWPATCH: return "HWPATCH";
1397 case ODK_FILL: return "FILL";
1398 case ODK_TAGS: return "TAGS";
1399 case ODK_HWAND: return "HWAND";
1400 case ODK_HWOR: return "HWOR";
1401 case ODK_GP_GROUP: return "GP_GROUP";
1402 case ODK_IDENT: return "IDENT";
1403 default:
1404 snprintf(s_kind, sizeof(s_kind), "<unknown: %u>", kind);
1405 return (s_kind);
1406 }
1407 }
1408
1409 static const char *
top_tag(unsigned int tag)1410 top_tag(unsigned int tag)
1411 {
1412 static char s_top_tag[32];
1413
1414 switch (tag) {
1415 case 1: return "File Attributes";
1416 case 2: return "Section Attributes";
1417 case 3: return "Symbol Attributes";
1418 default:
1419 snprintf(s_top_tag, sizeof(s_top_tag), "Unknown tag: %u", tag);
1420 return (s_top_tag);
1421 }
1422 }
1423
1424 static const char *
aeabi_cpu_arch(uint64_t arch)1425 aeabi_cpu_arch(uint64_t arch)
1426 {
1427 static char s_cpu_arch[32];
1428
1429 switch (arch) {
1430 case 0: return "Pre-V4";
1431 case 1: return "ARM v4";
1432 case 2: return "ARM v4T";
1433 case 3: return "ARM v5T";
1434 case 4: return "ARM v5TE";
1435 case 5: return "ARM v5TEJ";
1436 case 6: return "ARM v6";
1437 case 7: return "ARM v6KZ";
1438 case 8: return "ARM v6T2";
1439 case 9: return "ARM v6K";
1440 case 10: return "ARM v7";
1441 case 11: return "ARM v6-M";
1442 case 12: return "ARM v6S-M";
1443 case 13: return "ARM v7E-M";
1444 default:
1445 snprintf(s_cpu_arch, sizeof(s_cpu_arch),
1446 "Unknown (%ju)", (uintmax_t) arch);
1447 return (s_cpu_arch);
1448 }
1449 }
1450
1451 static const char *
aeabi_cpu_arch_profile(uint64_t pf)1452 aeabi_cpu_arch_profile(uint64_t pf)
1453 {
1454 static char s_arch_profile[32];
1455
1456 switch (pf) {
1457 case 0:
1458 return "Not applicable";
1459 case 0x41: /* 'A' */
1460 return "Application Profile";
1461 case 0x52: /* 'R' */
1462 return "Real-Time Profile";
1463 case 0x4D: /* 'M' */
1464 return "Microcontroller Profile";
1465 case 0x53: /* 'S' */
1466 return "Application or Real-Time Profile";
1467 default:
1468 snprintf(s_arch_profile, sizeof(s_arch_profile),
1469 "Unknown (%ju)\n", (uintmax_t) pf);
1470 return (s_arch_profile);
1471 }
1472 }
1473
1474 static const char *
aeabi_arm_isa(uint64_t ai)1475 aeabi_arm_isa(uint64_t ai)
1476 {
1477 static char s_ai[32];
1478
1479 switch (ai) {
1480 case 0: return "No";
1481 case 1: return "Yes";
1482 default:
1483 snprintf(s_ai, sizeof(s_ai), "Unknown (%ju)\n",
1484 (uintmax_t) ai);
1485 return (s_ai);
1486 }
1487 }
1488
1489 static const char *
aeabi_thumb_isa(uint64_t ti)1490 aeabi_thumb_isa(uint64_t ti)
1491 {
1492 static char s_ti[32];
1493
1494 switch (ti) {
1495 case 0: return "No";
1496 case 1: return "16-bit Thumb";
1497 case 2: return "32-bit Thumb";
1498 default:
1499 snprintf(s_ti, sizeof(s_ti), "Unknown (%ju)\n",
1500 (uintmax_t) ti);
1501 return (s_ti);
1502 }
1503 }
1504
1505 static const char *
aeabi_fp_arch(uint64_t fp)1506 aeabi_fp_arch(uint64_t fp)
1507 {
1508 static char s_fp_arch[32];
1509
1510 switch (fp) {
1511 case 0: return "No";
1512 case 1: return "VFPv1";
1513 case 2: return "VFPv2";
1514 case 3: return "VFPv3";
1515 case 4: return "VFPv3-D16";
1516 case 5: return "VFPv4";
1517 case 6: return "VFPv4-D16";
1518 default:
1519 snprintf(s_fp_arch, sizeof(s_fp_arch), "Unknown (%ju)",
1520 (uintmax_t) fp);
1521 return (s_fp_arch);
1522 }
1523 }
1524
1525 static const char *
aeabi_wmmx_arch(uint64_t wmmx)1526 aeabi_wmmx_arch(uint64_t wmmx)
1527 {
1528 static char s_wmmx[32];
1529
1530 switch (wmmx) {
1531 case 0: return "No";
1532 case 1: return "WMMXv1";
1533 case 2: return "WMMXv2";
1534 default:
1535 snprintf(s_wmmx, sizeof(s_wmmx), "Unknown (%ju)",
1536 (uintmax_t) wmmx);
1537 return (s_wmmx);
1538 }
1539 }
1540
1541 static const char *
aeabi_adv_simd_arch(uint64_t simd)1542 aeabi_adv_simd_arch(uint64_t simd)
1543 {
1544 static char s_simd[32];
1545
1546 switch (simd) {
1547 case 0: return "No";
1548 case 1: return "NEONv1";
1549 case 2: return "NEONv2";
1550 default:
1551 snprintf(s_simd, sizeof(s_simd), "Unknown (%ju)",
1552 (uintmax_t) simd);
1553 return (s_simd);
1554 }
1555 }
1556
1557 static const char *
aeabi_pcs_config(uint64_t pcs)1558 aeabi_pcs_config(uint64_t pcs)
1559 {
1560 static char s_pcs[32];
1561
1562 switch (pcs) {
1563 case 0: return "None";
1564 case 1: return "Bare platform";
1565 case 2: return "Linux";
1566 case 3: return "Linux DSO";
1567 case 4: return "Palm OS 2004";
1568 case 5: return "Palm OS (future)";
1569 case 6: return "Symbian OS 2004";
1570 case 7: return "Symbian OS (future)";
1571 default:
1572 snprintf(s_pcs, sizeof(s_pcs), "Unknown (%ju)",
1573 (uintmax_t) pcs);
1574 return (s_pcs);
1575 }
1576 }
1577
1578 static const char *
aeabi_pcs_r9(uint64_t r9)1579 aeabi_pcs_r9(uint64_t r9)
1580 {
1581 static char s_r9[32];
1582
1583 switch (r9) {
1584 case 0: return "V6";
1585 case 1: return "SB";
1586 case 2: return "TLS pointer";
1587 case 3: return "Unused";
1588 default:
1589 snprintf(s_r9, sizeof(s_r9), "Unknown (%ju)", (uintmax_t) r9);
1590 return (s_r9);
1591 }
1592 }
1593
1594 static const char *
aeabi_pcs_rw(uint64_t rw)1595 aeabi_pcs_rw(uint64_t rw)
1596 {
1597 static char s_rw[32];
1598
1599 switch (rw) {
1600 case 0: return "Absolute";
1601 case 1: return "PC-relative";
1602 case 2: return "SB-relative";
1603 case 3: return "None";
1604 default:
1605 snprintf(s_rw, sizeof(s_rw), "Unknown (%ju)", (uintmax_t) rw);
1606 return (s_rw);
1607 }
1608 }
1609
1610 static const char *
aeabi_pcs_ro(uint64_t ro)1611 aeabi_pcs_ro(uint64_t ro)
1612 {
1613 static char s_ro[32];
1614
1615 switch (ro) {
1616 case 0: return "Absolute";
1617 case 1: return "PC-relative";
1618 case 2: return "None";
1619 default:
1620 snprintf(s_ro, sizeof(s_ro), "Unknown (%ju)", (uintmax_t) ro);
1621 return (s_ro);
1622 }
1623 }
1624
1625 static const char *
aeabi_pcs_got(uint64_t got)1626 aeabi_pcs_got(uint64_t got)
1627 {
1628 static char s_got[32];
1629
1630 switch (got) {
1631 case 0: return "None";
1632 case 1: return "direct";
1633 case 2: return "indirect via GOT";
1634 default:
1635 snprintf(s_got, sizeof(s_got), "Unknown (%ju)",
1636 (uintmax_t) got);
1637 return (s_got);
1638 }
1639 }
1640
1641 static const char *
aeabi_pcs_wchar_t(uint64_t wt)1642 aeabi_pcs_wchar_t(uint64_t wt)
1643 {
1644 static char s_wt[32];
1645
1646 switch (wt) {
1647 case 0: return "None";
1648 case 2: return "wchar_t size 2";
1649 case 4: return "wchar_t size 4";
1650 default:
1651 snprintf(s_wt, sizeof(s_wt), "Unknown (%ju)", (uintmax_t) wt);
1652 return (s_wt);
1653 }
1654 }
1655
1656 static const char *
aeabi_enum_size(uint64_t es)1657 aeabi_enum_size(uint64_t es)
1658 {
1659 static char s_es[32];
1660
1661 switch (es) {
1662 case 0: return "None";
1663 case 1: return "smallest";
1664 case 2: return "32-bit";
1665 case 3: return "visible 32-bit";
1666 default:
1667 snprintf(s_es, sizeof(s_es), "Unknown (%ju)", (uintmax_t) es);
1668 return (s_es);
1669 }
1670 }
1671
1672 static const char *
aeabi_align_needed(uint64_t an)1673 aeabi_align_needed(uint64_t an)
1674 {
1675 static char s_align_n[64];
1676
1677 switch (an) {
1678 case 0: return "No";
1679 case 1: return "8-byte align";
1680 case 2: return "4-byte align";
1681 case 3: return "Reserved";
1682 default:
1683 if (an >= 4 && an <= 12)
1684 snprintf(s_align_n, sizeof(s_align_n), "8-byte align"
1685 " and up to 2^%ju-byte extended align",
1686 (uintmax_t) an);
1687 else
1688 snprintf(s_align_n, sizeof(s_align_n), "Unknown (%ju)",
1689 (uintmax_t) an);
1690 return (s_align_n);
1691 }
1692 }
1693
1694 static const char *
aeabi_align_preserved(uint64_t ap)1695 aeabi_align_preserved(uint64_t ap)
1696 {
1697 static char s_align_p[128];
1698
1699 switch (ap) {
1700 case 0: return "No";
1701 case 1: return "8-byte align";
1702 case 2: return "8-byte align and SP % 8 == 0";
1703 case 3: return "Reserved";
1704 default:
1705 if (ap >= 4 && ap <= 12)
1706 snprintf(s_align_p, sizeof(s_align_p), "8-byte align"
1707 " and SP %% 8 == 0 and up to 2^%ju-byte extended"
1708 " align", (uintmax_t) ap);
1709 else
1710 snprintf(s_align_p, sizeof(s_align_p), "Unknown (%ju)",
1711 (uintmax_t) ap);
1712 return (s_align_p);
1713 }
1714 }
1715
1716 static const char *
aeabi_fp_rounding(uint64_t fr)1717 aeabi_fp_rounding(uint64_t fr)
1718 {
1719 static char s_fp_r[32];
1720
1721 switch (fr) {
1722 case 0: return "Unused";
1723 case 1: return "Needed";
1724 default:
1725 snprintf(s_fp_r, sizeof(s_fp_r), "Unknown (%ju)",
1726 (uintmax_t) fr);
1727 return (s_fp_r);
1728 }
1729 }
1730
1731 static const char *
aeabi_fp_denormal(uint64_t fd)1732 aeabi_fp_denormal(uint64_t fd)
1733 {
1734 static char s_fp_d[32];
1735
1736 switch (fd) {
1737 case 0: return "Unused";
1738 case 1: return "Needed";
1739 case 2: return "Sign Only";
1740 default:
1741 snprintf(s_fp_d, sizeof(s_fp_d), "Unknown (%ju)",
1742 (uintmax_t) fd);
1743 return (s_fp_d);
1744 }
1745 }
1746
1747 static const char *
aeabi_fp_exceptions(uint64_t fe)1748 aeabi_fp_exceptions(uint64_t fe)
1749 {
1750 static char s_fp_e[32];
1751
1752 switch (fe) {
1753 case 0: return "Unused";
1754 case 1: return "Needed";
1755 default:
1756 snprintf(s_fp_e, sizeof(s_fp_e), "Unknown (%ju)",
1757 (uintmax_t) fe);
1758 return (s_fp_e);
1759 }
1760 }
1761
1762 static const char *
aeabi_fp_user_exceptions(uint64_t fu)1763 aeabi_fp_user_exceptions(uint64_t fu)
1764 {
1765 static char s_fp_u[32];
1766
1767 switch (fu) {
1768 case 0: return "Unused";
1769 case 1: return "Needed";
1770 default:
1771 snprintf(s_fp_u, sizeof(s_fp_u), "Unknown (%ju)",
1772 (uintmax_t) fu);
1773 return (s_fp_u);
1774 }
1775 }
1776
1777 static const char *
aeabi_fp_number_model(uint64_t fn)1778 aeabi_fp_number_model(uint64_t fn)
1779 {
1780 static char s_fp_n[32];
1781
1782 switch (fn) {
1783 case 0: return "Unused";
1784 case 1: return "IEEE 754 normal";
1785 case 2: return "RTABI";
1786 case 3: return "IEEE 754";
1787 default:
1788 snprintf(s_fp_n, sizeof(s_fp_n), "Unknown (%ju)",
1789 (uintmax_t) fn);
1790 return (s_fp_n);
1791 }
1792 }
1793
1794 static const char *
aeabi_fp_16bit_format(uint64_t fp16)1795 aeabi_fp_16bit_format(uint64_t fp16)
1796 {
1797 static char s_fp_16[64];
1798
1799 switch (fp16) {
1800 case 0: return "None";
1801 case 1: return "IEEE 754";
1802 case 2: return "VFPv3/Advanced SIMD (alternative format)";
1803 default:
1804 snprintf(s_fp_16, sizeof(s_fp_16), "Unknown (%ju)",
1805 (uintmax_t) fp16);
1806 return (s_fp_16);
1807 }
1808 }
1809
1810 static const char *
aeabi_mpext(uint64_t mp)1811 aeabi_mpext(uint64_t mp)
1812 {
1813 static char s_mp[32];
1814
1815 switch (mp) {
1816 case 0: return "Not allowed";
1817 case 1: return "Allowed";
1818 default:
1819 snprintf(s_mp, sizeof(s_mp), "Unknown (%ju)",
1820 (uintmax_t) mp);
1821 return (s_mp);
1822 }
1823 }
1824
1825 static const char *
aeabi_div(uint64_t du)1826 aeabi_div(uint64_t du)
1827 {
1828 static char s_du[32];
1829
1830 switch (du) {
1831 case 0: return "Yes (V7-R/V7-M)";
1832 case 1: return "No";
1833 case 2: return "Yes (V7-A)";
1834 default:
1835 snprintf(s_du, sizeof(s_du), "Unknown (%ju)",
1836 (uintmax_t) du);
1837 return (s_du);
1838 }
1839 }
1840
1841 static const char *
aeabi_t2ee(uint64_t t2ee)1842 aeabi_t2ee(uint64_t t2ee)
1843 {
1844 static char s_t2ee[32];
1845
1846 switch (t2ee) {
1847 case 0: return "Not allowed";
1848 case 1: return "Allowed";
1849 default:
1850 snprintf(s_t2ee, sizeof(s_t2ee), "Unknown(%ju)",
1851 (uintmax_t) t2ee);
1852 return (s_t2ee);
1853 }
1854
1855 }
1856
1857 static const char *
aeabi_hardfp(uint64_t hfp)1858 aeabi_hardfp(uint64_t hfp)
1859 {
1860 static char s_hfp[32];
1861
1862 switch (hfp) {
1863 case 0: return "Tag_FP_arch";
1864 case 1: return "only SP";
1865 case 2: return "only DP";
1866 case 3: return "both SP and DP";
1867 default:
1868 snprintf(s_hfp, sizeof(s_hfp), "Unknown (%ju)",
1869 (uintmax_t) hfp);
1870 return (s_hfp);
1871 }
1872 }
1873
1874 static const char *
aeabi_vfp_args(uint64_t va)1875 aeabi_vfp_args(uint64_t va)
1876 {
1877 static char s_va[32];
1878
1879 switch (va) {
1880 case 0: return "AAPCS (base variant)";
1881 case 1: return "AAPCS (VFP variant)";
1882 case 2: return "toolchain-specific";
1883 default:
1884 snprintf(s_va, sizeof(s_va), "Unknown (%ju)", (uintmax_t) va);
1885 return (s_va);
1886 }
1887 }
1888
1889 static const char *
aeabi_wmmx_args(uint64_t wa)1890 aeabi_wmmx_args(uint64_t wa)
1891 {
1892 static char s_wa[32];
1893
1894 switch (wa) {
1895 case 0: return "AAPCS (base variant)";
1896 case 1: return "Intel WMMX";
1897 case 2: return "toolchain-specific";
1898 default:
1899 snprintf(s_wa, sizeof(s_wa), "Unknown(%ju)", (uintmax_t) wa);
1900 return (s_wa);
1901 }
1902 }
1903
1904 static const char *
aeabi_unaligned_access(uint64_t ua)1905 aeabi_unaligned_access(uint64_t ua)
1906 {
1907 static char s_ua[32];
1908
1909 switch (ua) {
1910 case 0: return "Not allowed";
1911 case 1: return "Allowed";
1912 default:
1913 snprintf(s_ua, sizeof(s_ua), "Unknown(%ju)", (uintmax_t) ua);
1914 return (s_ua);
1915 }
1916 }
1917
1918 static const char *
aeabi_fp_hpext(uint64_t fh)1919 aeabi_fp_hpext(uint64_t fh)
1920 {
1921 static char s_fh[32];
1922
1923 switch (fh) {
1924 case 0: return "Not allowed";
1925 case 1: return "Allowed";
1926 default:
1927 snprintf(s_fh, sizeof(s_fh), "Unknown(%ju)", (uintmax_t) fh);
1928 return (s_fh);
1929 }
1930 }
1931
1932 static const char *
aeabi_optm_goal(uint64_t og)1933 aeabi_optm_goal(uint64_t og)
1934 {
1935 static char s_og[32];
1936
1937 switch (og) {
1938 case 0: return "None";
1939 case 1: return "Speed";
1940 case 2: return "Speed aggressive";
1941 case 3: return "Space";
1942 case 4: return "Space aggressive";
1943 case 5: return "Debugging";
1944 case 6: return "Best Debugging";
1945 default:
1946 snprintf(s_og, sizeof(s_og), "Unknown(%ju)", (uintmax_t) og);
1947 return (s_og);
1948 }
1949 }
1950
1951 static const char *
aeabi_fp_optm_goal(uint64_t fog)1952 aeabi_fp_optm_goal(uint64_t fog)
1953 {
1954 static char s_fog[32];
1955
1956 switch (fog) {
1957 case 0: return "None";
1958 case 1: return "Speed";
1959 case 2: return "Speed aggressive";
1960 case 3: return "Space";
1961 case 4: return "Space aggressive";
1962 case 5: return "Accurary";
1963 case 6: return "Best Accurary";
1964 default:
1965 snprintf(s_fog, sizeof(s_fog), "Unknown(%ju)",
1966 (uintmax_t) fog);
1967 return (s_fog);
1968 }
1969 }
1970
1971 static const char *
aeabi_virtual(uint64_t vt)1972 aeabi_virtual(uint64_t vt)
1973 {
1974 static char s_virtual[64];
1975
1976 switch (vt) {
1977 case 0: return "No";
1978 case 1: return "TrustZone";
1979 case 2: return "Virtualization extension";
1980 case 3: return "TrustZone and virtualization extension";
1981 default:
1982 snprintf(s_virtual, sizeof(s_virtual), "Unknown(%ju)",
1983 (uintmax_t) vt);
1984 return (s_virtual);
1985 }
1986 }
1987
1988 static struct {
1989 uint64_t tag;
1990 const char *s_tag;
1991 const char *(*get_desc)(uint64_t val);
1992 } aeabi_tags[] = {
1993 {4, "Tag_CPU_raw_name", NULL},
1994 {5, "Tag_CPU_name", NULL},
1995 {6, "Tag_CPU_arch", aeabi_cpu_arch},
1996 {7, "Tag_CPU_arch_profile", aeabi_cpu_arch_profile},
1997 {8, "Tag_ARM_ISA_use", aeabi_arm_isa},
1998 {9, "Tag_THUMB_ISA_use", aeabi_thumb_isa},
1999 {10, "Tag_FP_arch", aeabi_fp_arch},
2000 {11, "Tag_WMMX_arch", aeabi_wmmx_arch},
2001 {12, "Tag_Advanced_SIMD_arch", aeabi_adv_simd_arch},
2002 {13, "Tag_PCS_config", aeabi_pcs_config},
2003 {14, "Tag_ABI_PCS_R9_use", aeabi_pcs_r9},
2004 {15, "Tag_ABI_PCS_RW_data", aeabi_pcs_rw},
2005 {16, "Tag_ABI_PCS_RO_data", aeabi_pcs_ro},
2006 {17, "Tag_ABI_PCS_GOT_use", aeabi_pcs_got},
2007 {18, "Tag_ABI_PCS_wchar_t", aeabi_pcs_wchar_t},
2008 {19, "Tag_ABI_FP_rounding", aeabi_fp_rounding},
2009 {20, "Tag_ABI_FP_denormal", aeabi_fp_denormal},
2010 {21, "Tag_ABI_FP_exceptions", aeabi_fp_exceptions},
2011 {22, "Tag_ABI_FP_user_exceptions", aeabi_fp_user_exceptions},
2012 {23, "Tag_ABI_FP_number_model", aeabi_fp_number_model},
2013 {24, "Tag_ABI_align_needed", aeabi_align_needed},
2014 {25, "Tag_ABI_align_preserved", aeabi_align_preserved},
2015 {26, "Tag_ABI_enum_size", aeabi_enum_size},
2016 {27, "Tag_ABI_HardFP_use", aeabi_hardfp},
2017 {28, "Tag_ABI_VFP_args", aeabi_vfp_args},
2018 {29, "Tag_ABI_WMMX_args", aeabi_wmmx_args},
2019 {30, "Tag_ABI_optimization_goals", aeabi_optm_goal},
2020 {31, "Tag_ABI_FP_optimization_goals", aeabi_fp_optm_goal},
2021 {32, "Tag_compatibility", NULL},
2022 {34, "Tag_CPU_unaligned_access", aeabi_unaligned_access},
2023 {36, "Tag_FP_HP_extension", aeabi_fp_hpext},
2024 {38, "Tag_ABI_FP_16bit_format", aeabi_fp_16bit_format},
2025 {42, "Tag_MPextension_use", aeabi_mpext},
2026 {44, "Tag_DIV_use", aeabi_div},
2027 {64, "Tag_nodefaults", NULL},
2028 {65, "Tag_also_compatible_with", NULL},
2029 {66, "Tag_T2EE_use", aeabi_t2ee},
2030 {67, "Tag_conformance", NULL},
2031 {68, "Tag_Virtualization_use", aeabi_virtual},
2032 {70, "Tag_MPextension_use", aeabi_mpext},
2033 };
2034
2035 static const char *
mips_abi_fp(uint64_t fp)2036 mips_abi_fp(uint64_t fp)
2037 {
2038 static char s_mips_abi_fp[64];
2039
2040 switch (fp) {
2041 case 0: return "N/A";
2042 case 1: return "Hard float (double precision)";
2043 case 2: return "Hard float (single precision)";
2044 case 3: return "Soft float";
2045 case 4: return "64-bit float (-mips32r2 -mfp64)";
2046 default:
2047 snprintf(s_mips_abi_fp, sizeof(s_mips_abi_fp), "Unknown(%ju)",
2048 (uintmax_t) fp);
2049 return (s_mips_abi_fp);
2050 }
2051 }
2052
2053 static const char *
ppc_abi_fp(uint64_t fp)2054 ppc_abi_fp(uint64_t fp)
2055 {
2056 static char s_ppc_abi_fp[64];
2057
2058 switch (fp) {
2059 case 0: return "N/A";
2060 case 1: return "Hard float (double precision)";
2061 case 2: return "Soft float";
2062 case 3: return "Hard float (single precision)";
2063 default:
2064 snprintf(s_ppc_abi_fp, sizeof(s_ppc_abi_fp), "Unknown(%ju)",
2065 (uintmax_t) fp);
2066 return (s_ppc_abi_fp);
2067 }
2068 }
2069
2070 static const char *
ppc_abi_vector(uint64_t vec)2071 ppc_abi_vector(uint64_t vec)
2072 {
2073 static char s_vec[64];
2074
2075 switch (vec) {
2076 case 0: return "N/A";
2077 case 1: return "Generic purpose registers";
2078 case 2: return "AltiVec registers";
2079 case 3: return "SPE registers";
2080 default:
2081 snprintf(s_vec, sizeof(s_vec), "Unknown(%ju)", (uintmax_t) vec);
2082 return (s_vec);
2083 }
2084 }
2085
2086 static const char *
dwarf_reg(unsigned int mach,unsigned int reg)2087 dwarf_reg(unsigned int mach, unsigned int reg)
2088 {
2089
2090 switch (mach) {
2091 case EM_386:
2092 case EM_IAMCU:
2093 switch (reg) {
2094 case 0: return "eax";
2095 case 1: return "ecx";
2096 case 2: return "edx";
2097 case 3: return "ebx";
2098 case 4: return "esp";
2099 case 5: return "ebp";
2100 case 6: return "esi";
2101 case 7: return "edi";
2102 case 8: return "eip";
2103 case 9: return "eflags";
2104 case 11: return "st0";
2105 case 12: return "st1";
2106 case 13: return "st2";
2107 case 14: return "st3";
2108 case 15: return "st4";
2109 case 16: return "st5";
2110 case 17: return "st6";
2111 case 18: return "st7";
2112 case 21: return "xmm0";
2113 case 22: return "xmm1";
2114 case 23: return "xmm2";
2115 case 24: return "xmm3";
2116 case 25: return "xmm4";
2117 case 26: return "xmm5";
2118 case 27: return "xmm6";
2119 case 28: return "xmm7";
2120 case 29: return "mm0";
2121 case 30: return "mm1";
2122 case 31: return "mm2";
2123 case 32: return "mm3";
2124 case 33: return "mm4";
2125 case 34: return "mm5";
2126 case 35: return "mm6";
2127 case 36: return "mm7";
2128 case 37: return "fcw";
2129 case 38: return "fsw";
2130 case 39: return "mxcsr";
2131 case 40: return "es";
2132 case 41: return "cs";
2133 case 42: return "ss";
2134 case 43: return "ds";
2135 case 44: return "fs";
2136 case 45: return "gs";
2137 case 48: return "tr";
2138 case 49: return "ldtr";
2139 default: return (NULL);
2140 }
2141 case EM_RISCV:
2142 switch (reg) {
2143 case 0: return "zero";
2144 case 1: return "ra";
2145 case 2: return "sp";
2146 case 3: return "gp";
2147 case 4: return "tp";
2148 case 5: return "t0";
2149 case 6: return "t1";
2150 case 7: return "t2";
2151 case 8: return "s0";
2152 case 9: return "s1";
2153 case 10: return "a0";
2154 case 11: return "a1";
2155 case 12: return "a2";
2156 case 13: return "a3";
2157 case 14: return "a4";
2158 case 15: return "a5";
2159 case 16: return "a6";
2160 case 17: return "a7";
2161 case 18: return "s2";
2162 case 19: return "s3";
2163 case 20: return "s4";
2164 case 21: return "s5";
2165 case 22: return "s6";
2166 case 23: return "s7";
2167 case 24: return "s8";
2168 case 25: return "s9";
2169 case 26: return "s10";
2170 case 27: return "s11";
2171 case 28: return "t3";
2172 case 29: return "t4";
2173 case 30: return "t5";
2174 case 31: return "t6";
2175 case 32: return "ft0";
2176 case 33: return "ft1";
2177 case 34: return "ft2";
2178 case 35: return "ft3";
2179 case 36: return "ft4";
2180 case 37: return "ft5";
2181 case 38: return "ft6";
2182 case 39: return "ft7";
2183 case 40: return "fs0";
2184 case 41: return "fs1";
2185 case 42: return "fa0";
2186 case 43: return "fa1";
2187 case 44: return "fa2";
2188 case 45: return "fa3";
2189 case 46: return "fa4";
2190 case 47: return "fa5";
2191 case 48: return "fa6";
2192 case 49: return "fa7";
2193 case 50: return "fs2";
2194 case 51: return "fs3";
2195 case 52: return "fs4";
2196 case 53: return "fs5";
2197 case 54: return "fs6";
2198 case 55: return "fs7";
2199 case 56: return "fs8";
2200 case 57: return "fs9";
2201 case 58: return "fs10";
2202 case 59: return "fs11";
2203 case 60: return "ft8";
2204 case 61: return "ft9";
2205 case 62: return "ft10";
2206 case 63: return "ft11";
2207 default: return (NULL);
2208 }
2209 case EM_X86_64:
2210 switch (reg) {
2211 case 0: return "rax";
2212 case 1: return "rdx";
2213 case 2: return "rcx";
2214 case 3: return "rbx";
2215 case 4: return "rsi";
2216 case 5: return "rdi";
2217 case 6: return "rbp";
2218 case 7: return "rsp";
2219 case 16: return "rip";
2220 case 17: return "xmm0";
2221 case 18: return "xmm1";
2222 case 19: return "xmm2";
2223 case 20: return "xmm3";
2224 case 21: return "xmm4";
2225 case 22: return "xmm5";
2226 case 23: return "xmm6";
2227 case 24: return "xmm7";
2228 case 25: return "xmm8";
2229 case 26: return "xmm9";
2230 case 27: return "xmm10";
2231 case 28: return "xmm11";
2232 case 29: return "xmm12";
2233 case 30: return "xmm13";
2234 case 31: return "xmm14";
2235 case 32: return "xmm15";
2236 case 33: return "st0";
2237 case 34: return "st1";
2238 case 35: return "st2";
2239 case 36: return "st3";
2240 case 37: return "st4";
2241 case 38: return "st5";
2242 case 39: return "st6";
2243 case 40: return "st7";
2244 case 41: return "mm0";
2245 case 42: return "mm1";
2246 case 43: return "mm2";
2247 case 44: return "mm3";
2248 case 45: return "mm4";
2249 case 46: return "mm5";
2250 case 47: return "mm6";
2251 case 48: return "mm7";
2252 case 49: return "rflags";
2253 case 50: return "es";
2254 case 51: return "cs";
2255 case 52: return "ss";
2256 case 53: return "ds";
2257 case 54: return "fs";
2258 case 55: return "gs";
2259 case 58: return "fs.base";
2260 case 59: return "gs.base";
2261 case 62: return "tr";
2262 case 63: return "ldtr";
2263 case 64: return "mxcsr";
2264 case 65: return "fcw";
2265 case 66: return "fsw";
2266 default: return (NULL);
2267 }
2268 default:
2269 return (NULL);
2270 }
2271 }
2272
2273 static void
dump_ehdr(struct readelf * re)2274 dump_ehdr(struct readelf *re)
2275 {
2276 size_t phnum, shnum, shstrndx;
2277 int i;
2278
2279 printf("ELF Header:\n");
2280
2281 /* e_ident[]. */
2282 printf(" Magic: ");
2283 for (i = 0; i < EI_NIDENT; i++)
2284 printf("%.2x ", re->ehdr.e_ident[i]);
2285 putchar('\n');
2286
2287 /* EI_CLASS. */
2288 printf("%-37s%s\n", " Class:", elf_class(re->ehdr.e_ident[EI_CLASS]));
2289
2290 /* EI_DATA. */
2291 printf("%-37s%s\n", " Data:", elf_endian(re->ehdr.e_ident[EI_DATA]));
2292
2293 /* EI_VERSION. */
2294 printf("%-37s%d %s\n", " Version:", re->ehdr.e_ident[EI_VERSION],
2295 elf_ver(re->ehdr.e_ident[EI_VERSION]));
2296
2297 /* EI_OSABI. */
2298 printf("%-37s%s\n", " OS/ABI:", elf_osabi(re->ehdr.e_ident[EI_OSABI]));
2299
2300 /* EI_ABIVERSION. */
2301 printf("%-37s%d\n", " ABI Version:", re->ehdr.e_ident[EI_ABIVERSION]);
2302
2303 /* e_type. */
2304 printf("%-37s%s\n", " Type:", elf_type(re->ehdr.e_type));
2305
2306 /* e_machine. */
2307 printf("%-37s%s\n", " Machine:", elf_machine(re->ehdr.e_machine));
2308
2309 /* e_version. */
2310 printf("%-37s%#x\n", " Version:", re->ehdr.e_version);
2311
2312 /* e_entry. */
2313 printf("%-37s%#jx\n", " Entry point address:",
2314 (uintmax_t)re->ehdr.e_entry);
2315
2316 /* e_phoff. */
2317 printf("%-37s%ju (bytes into file)\n", " Start of program headers:",
2318 (uintmax_t)re->ehdr.e_phoff);
2319
2320 /* e_shoff. */
2321 printf("%-37s%ju (bytes into file)\n", " Start of section headers:",
2322 (uintmax_t)re->ehdr.e_shoff);
2323
2324 /* e_flags. */
2325 printf("%-37s%#x", " Flags:", re->ehdr.e_flags);
2326 dump_eflags(re, re->ehdr.e_flags);
2327 putchar('\n');
2328
2329 /* e_ehsize. */
2330 printf("%-37s%u (bytes)\n", " Size of this header:",
2331 re->ehdr.e_ehsize);
2332
2333 /* e_phentsize. */
2334 printf("%-37s%u (bytes)\n", " Size of program headers:",
2335 re->ehdr.e_phentsize);
2336
2337 /* e_phnum. */
2338 printf("%-37s%u", " Number of program headers:", re->ehdr.e_phnum);
2339 if (re->ehdr.e_phnum == PN_XNUM) {
2340 /* Extended program header numbering is in use. */
2341 if (elf_getphnum(re->elf, &phnum))
2342 printf(" (%zu)", phnum);
2343 }
2344 putchar('\n');
2345
2346 /* e_shentsize. */
2347 printf("%-37s%u (bytes)\n", " Size of section headers:",
2348 re->ehdr.e_shentsize);
2349
2350 /* e_shnum. */
2351 printf("%-37s%u", " Number of section headers:", re->ehdr.e_shnum);
2352 if (re->ehdr.e_shnum == SHN_UNDEF) {
2353 /* Extended section numbering is in use. */
2354 if (elf_getshnum(re->elf, &shnum))
2355 printf(" (%ju)", (uintmax_t)shnum);
2356 }
2357 putchar('\n');
2358
2359 /* e_shstrndx. */
2360 printf("%-37s%u", " Section header string table index:",
2361 re->ehdr.e_shstrndx);
2362 if (re->ehdr.e_shstrndx == SHN_XINDEX) {
2363 /* Extended section numbering is in use. */
2364 if (elf_getshstrndx(re->elf, &shstrndx))
2365 printf(" (%ju)", (uintmax_t)shstrndx);
2366 }
2367 putchar('\n');
2368 }
2369
2370 static void
dump_eflags(struct readelf * re,uint64_t e_flags)2371 dump_eflags(struct readelf *re, uint64_t e_flags)
2372 {
2373 struct eflags_desc *edesc;
2374 int arm_eabi;
2375
2376 edesc = NULL;
2377 switch (re->ehdr.e_machine) {
2378 case EM_ARM:
2379 arm_eabi = (e_flags & EF_ARM_EABIMASK) >> 24;
2380 if (arm_eabi == 0)
2381 printf(", GNU EABI");
2382 else if (arm_eabi <= 5)
2383 printf(", Version%d EABI", arm_eabi);
2384 edesc = arm_eflags_desc;
2385 break;
2386 case EM_MIPS:
2387 case EM_MIPS_RS3_LE:
2388 switch ((e_flags & EF_MIPS_ARCH) >> 28) {
2389 case 0: printf(", mips1"); break;
2390 case 1: printf(", mips2"); break;
2391 case 2: printf(", mips3"); break;
2392 case 3: printf(", mips4"); break;
2393 case 4: printf(", mips5"); break;
2394 case 5: printf(", mips32"); break;
2395 case 6: printf(", mips64"); break;
2396 case 7: printf(", mips32r2"); break;
2397 case 8: printf(", mips64r2"); break;
2398 default: break;
2399 }
2400 switch ((e_flags & 0x00FF0000) >> 16) {
2401 case 0x81: printf(", 3900"); break;
2402 case 0x82: printf(", 4010"); break;
2403 case 0x83: printf(", 4100"); break;
2404 case 0x85: printf(", 4650"); break;
2405 case 0x87: printf(", 4120"); break;
2406 case 0x88: printf(", 4111"); break;
2407 case 0x8a: printf(", sb1"); break;
2408 case 0x8b: printf(", octeon"); break;
2409 case 0x8c: printf(", xlr"); break;
2410 case 0x91: printf(", 5400"); break;
2411 case 0x98: printf(", 5500"); break;
2412 case 0x99: printf(", 9000"); break;
2413 case 0xa0: printf(", loongson-2e"); break;
2414 case 0xa1: printf(", loongson-2f"); break;
2415 default: break;
2416 }
2417 switch ((e_flags & 0x0000F000) >> 12) {
2418 case 1: printf(", o32"); break;
2419 case 2: printf(", o64"); break;
2420 case 3: printf(", eabi32"); break;
2421 case 4: printf(", eabi64"); break;
2422 default: break;
2423 }
2424 edesc = mips_eflags_desc;
2425 break;
2426 case EM_PPC64:
2427 switch (e_flags) {
2428 case 0: printf(", Unspecified or Power ELF V1 ABI"); break;
2429 case 1: printf(", Power ELF V1 ABI"); break;
2430 case 2: printf(", OpenPOWER ELF V2 ABI"); break;
2431 default: break;
2432 }
2433 /* FALLTHROUGH */
2434 case EM_PPC:
2435 edesc = powerpc_eflags_desc;
2436 break;
2437 case EM_RISCV:
2438 switch (e_flags & EF_RISCV_FLOAT_ABI_MASK) {
2439 case EF_RISCV_FLOAT_ABI_SOFT:
2440 printf(", soft-float ABI");
2441 break;
2442 case EF_RISCV_FLOAT_ABI_SINGLE:
2443 printf(", single-float ABI");
2444 break;
2445 case EF_RISCV_FLOAT_ABI_DOUBLE:
2446 printf(", double-float ABI");
2447 break;
2448 case EF_RISCV_FLOAT_ABI_QUAD:
2449 printf(", quad-float ABI");
2450 break;
2451 }
2452 edesc = riscv_eflags_desc;
2453 break;
2454 case EM_SPARC:
2455 case EM_SPARC32PLUS:
2456 case EM_SPARCV9:
2457 switch ((e_flags & EF_SPARCV9_MM)) {
2458 case EF_SPARCV9_TSO: printf(", tso"); break;
2459 case EF_SPARCV9_PSO: printf(", pso"); break;
2460 case EF_SPARCV9_MM: printf(", rmo"); break;
2461 default: break;
2462 }
2463 edesc = sparc_eflags_desc;
2464 break;
2465 default:
2466 break;
2467 }
2468
2469 if (edesc != NULL) {
2470 while (edesc->desc != NULL) {
2471 if (e_flags & edesc->flag)
2472 printf(", %s", edesc->desc);
2473 edesc++;
2474 }
2475 }
2476 }
2477
2478 static void
dump_phdr(struct readelf * re)2479 dump_phdr(struct readelf *re)
2480 {
2481 const char *rawfile;
2482 GElf_Phdr phdr;
2483 size_t phnum, size;
2484 int i, j;
2485
2486 #define PH_HDR "Type", "Offset", "VirtAddr", "PhysAddr", "FileSiz", \
2487 "MemSiz", "Flg", "Align"
2488 #define PH_CT phdr_type(re->ehdr.e_machine, phdr.p_type), \
2489 (uintmax_t)phdr.p_offset, (uintmax_t)phdr.p_vaddr, \
2490 (uintmax_t)phdr.p_paddr, (uintmax_t)phdr.p_filesz, \
2491 (uintmax_t)phdr.p_memsz, \
2492 phdr.p_flags & PF_R ? 'R' : ' ', \
2493 phdr.p_flags & PF_W ? 'W' : ' ', \
2494 phdr.p_flags & PF_X ? 'E' : ' ', \
2495 (uintmax_t)phdr.p_align
2496
2497 if (elf_getphnum(re->elf, &phnum) == 0) {
2498 warnx("elf_getphnum failed: %s", elf_errmsg(-1));
2499 return;
2500 }
2501 if (phnum == 0) {
2502 printf("\nThere are no program headers in this file.\n");
2503 return;
2504 }
2505
2506 printf("\nElf file type is %s", elf_type(re->ehdr.e_type));
2507 printf("\nEntry point 0x%jx\n", (uintmax_t)re->ehdr.e_entry);
2508 printf("There are %ju program headers, starting at offset %ju\n",
2509 (uintmax_t)phnum, (uintmax_t)re->ehdr.e_phoff);
2510
2511 /* Dump program headers. */
2512 printf("\nProgram Headers:\n");
2513 if (re->ec == ELFCLASS32)
2514 printf(" %-15s%-9s%-11s%-11s%-8s%-8s%-4s%s\n", PH_HDR);
2515 else if (re->options & RE_WW)
2516 printf(" %-15s%-9s%-19s%-19s%-9s%-9s%-4s%s\n", PH_HDR);
2517 else
2518 printf(" %-15s%-19s%-19s%s\n %-19s%-20s"
2519 "%-7s%s\n", PH_HDR);
2520 for (i = 0; (size_t) i < phnum; i++) {
2521 if (gelf_getphdr(re->elf, i, &phdr) != &phdr) {
2522 warnx("gelf_getphdr failed: %s", elf_errmsg(-1));
2523 continue;
2524 }
2525 /* TODO: Add arch-specific segment type dump. */
2526 if (re->ec == ELFCLASS32)
2527 printf(" %-14.14s 0x%6.6jx 0x%8.8jx 0x%8.8jx "
2528 "0x%5.5jx 0x%5.5jx %c%c%c %#jx\n", PH_CT);
2529 else if (re->options & RE_WW)
2530 printf(" %-14.14s 0x%6.6jx 0x%16.16jx 0x%16.16jx "
2531 "0x%6.6jx 0x%6.6jx %c%c%c %#jx\n", PH_CT);
2532 else
2533 printf(" %-14.14s 0x%16.16jx 0x%16.16jx 0x%16.16jx\n"
2534 " 0x%16.16jx 0x%16.16jx %c%c%c"
2535 " %#jx\n", PH_CT);
2536 if (phdr.p_type == PT_INTERP) {
2537 if ((rawfile = elf_rawfile(re->elf, &size)) == NULL) {
2538 warnx("elf_rawfile failed: %s", elf_errmsg(-1));
2539 continue;
2540 }
2541 if (phdr.p_offset >= size) {
2542 warnx("invalid program header offset");
2543 continue;
2544 }
2545 printf(" [Requesting program interpreter: %s]\n",
2546 rawfile + phdr.p_offset);
2547 }
2548 }
2549
2550 /* Dump section to segment mapping. */
2551 if (re->shnum == 0)
2552 return;
2553 printf("\n Section to Segment mapping:\n");
2554 printf(" Segment Sections...\n");
2555 for (i = 0; (size_t)i < phnum; i++) {
2556 if (gelf_getphdr(re->elf, i, &phdr) != &phdr) {
2557 warnx("gelf_getphdr failed: %s", elf_errmsg(-1));
2558 continue;
2559 }
2560 printf(" %2.2d ", i);
2561 /* skip NULL section. */
2562 for (j = 1; (size_t)j < re->shnum; j++) {
2563 if (re->sl[j].off < phdr.p_offset)
2564 continue;
2565 if (re->sl[j].off + re->sl[j].sz >
2566 phdr.p_offset + phdr.p_filesz &&
2567 re->sl[j].type != SHT_NOBITS)
2568 continue;
2569 if (re->sl[j].addr < phdr.p_vaddr ||
2570 re->sl[j].addr + re->sl[j].sz >
2571 phdr.p_vaddr + phdr.p_memsz)
2572 continue;
2573 if (phdr.p_type == PT_TLS &&
2574 (re->sl[j].flags & SHF_TLS) == 0)
2575 continue;
2576 printf("%s ", re->sl[j].name);
2577 }
2578 printf("\n");
2579 }
2580 #undef PH_HDR
2581 #undef PH_CT
2582 }
2583
2584 static char *
section_flags(struct readelf * re,struct section * s)2585 section_flags(struct readelf *re, struct section *s)
2586 {
2587 #define BUF_SZ 256
2588 static char buf[BUF_SZ];
2589 int i, p, nb;
2590
2591 p = 0;
2592 nb = re->ec == ELFCLASS32 ? 8 : 16;
2593 if (re->options & RE_T) {
2594 snprintf(buf, BUF_SZ, "[%*.*jx]: ", nb, nb,
2595 (uintmax_t)s->flags);
2596 p += nb + 4;
2597 }
2598 for (i = 0; section_flag[i].ln != NULL; i++) {
2599 if ((s->flags & section_flag[i].value) == 0)
2600 continue;
2601 if (re->options & RE_T) {
2602 snprintf(&buf[p], BUF_SZ - p, "%s, ",
2603 section_flag[i].ln);
2604 p += strlen(section_flag[i].ln) + 2;
2605 } else
2606 buf[p++] = section_flag[i].sn;
2607 }
2608 if (re->options & RE_T && p > nb + 4)
2609 p -= 2;
2610 buf[p] = '\0';
2611
2612 return (buf);
2613 }
2614
2615 static void
dump_shdr(struct readelf * re)2616 dump_shdr(struct readelf *re)
2617 {
2618 struct section *s;
2619 int i;
2620
2621 #define S_HDR "[Nr] Name", "Type", "Addr", "Off", "Size", "ES", \
2622 "Flg", "Lk", "Inf", "Al"
2623 #define S_HDRL "[Nr] Name", "Type", "Address", "Offset", "Size", \
2624 "EntSize", "Flags", "Link", "Info", "Align"
2625 #define ST_HDR "[Nr] Name", "Type", "Addr", "Off", "Size", "ES", \
2626 "Lk", "Inf", "Al", "Flags"
2627 #define ST_HDRL "[Nr] Name", "Type", "Address", "Offset", "Link", \
2628 "Size", "EntSize", "Info", "Align", "Flags"
2629 #define S_CT i, s->name, section_type(re->ehdr.e_machine, s->type), \
2630 (uintmax_t)s->addr, (uintmax_t)s->off, (uintmax_t)s->sz,\
2631 (uintmax_t)s->entsize, section_flags(re, s), \
2632 s->link, s->info, (uintmax_t)s->align
2633 #define ST_CT i, s->name, section_type(re->ehdr.e_machine, s->type), \
2634 (uintmax_t)s->addr, (uintmax_t)s->off, (uintmax_t)s->sz,\
2635 (uintmax_t)s->entsize, s->link, s->info, \
2636 (uintmax_t)s->align, section_flags(re, s)
2637 #define ST_CTL i, s->name, section_type(re->ehdr.e_machine, s->type), \
2638 (uintmax_t)s->addr, (uintmax_t)s->off, s->link, \
2639 (uintmax_t)s->sz, (uintmax_t)s->entsize, s->info, \
2640 (uintmax_t)s->align, section_flags(re, s)
2641
2642 if (re->shnum == 0) {
2643 printf("\nThere are no sections in this file.\n");
2644 return;
2645 }
2646 printf("There are %ju section headers, starting at offset 0x%jx:\n",
2647 (uintmax_t)re->shnum, (uintmax_t)re->ehdr.e_shoff);
2648 printf("\nSection Headers:\n");
2649 if (re->ec == ELFCLASS32) {
2650 if (re->options & RE_T)
2651 printf(" %s\n %-16s%-9s%-7s%-7s%-5s%-3s%-4s%s\n"
2652 "%12s\n", ST_HDR);
2653 else
2654 printf(" %-23s%-16s%-9s%-7s%-7s%-3s%-4s%-3s%-4s%s\n",
2655 S_HDR);
2656 } else if (re->options & RE_WW) {
2657 if (re->options & RE_T)
2658 printf(" %s\n %-16s%-17s%-7s%-7s%-5s%-3s%-4s%s\n"
2659 "%12s\n", ST_HDR);
2660 else
2661 printf(" %-23s%-16s%-17s%-7s%-7s%-3s%-4s%-3s%-4s%s\n",
2662 S_HDR);
2663 } else {
2664 if (re->options & RE_T)
2665 printf(" %s\n %-18s%-17s%-18s%s\n %-18s"
2666 "%-17s%-18s%s\n%12s\n", ST_HDRL);
2667 else
2668 printf(" %-23s%-17s%-18s%s\n %-18s%-17s%-7s%"
2669 "-6s%-6s%s\n", S_HDRL);
2670 }
2671 for (i = 0; (size_t)i < re->shnum; i++) {
2672 s = &re->sl[i];
2673 if (re->ec == ELFCLASS32) {
2674 if (re->options & RE_T)
2675 printf(" [%2d] %s\n %-15.15s %8.8jx"
2676 " %6.6jx %6.6jx %2.2jx %2u %3u %2ju\n"
2677 " %s\n", ST_CT);
2678 else
2679 if (re->options & RE_WW)
2680 printf(" [%2d] %-17s %-15.15s "
2681 "%8.8jx %6.6jx %6.6jx %2.2jx %3s "
2682 "%2u %3u %2ju\n", S_CT);
2683 else
2684 printf(" [%2d] %-17.17s %-15.15s "
2685 "%8.8jx %6.6jx %6.6jx %2.2jx %3s "
2686 "%2u %3u %2ju\n", S_CT);
2687 } else if (re->options & RE_WW) {
2688 if (re->options & RE_T)
2689 printf(" [%2d] %s\n %-15.15s %16.16jx"
2690 " %6.6jx %6.6jx %2.2jx %2u %3u %2ju\n"
2691 " %s\n", ST_CT);
2692 else
2693 printf(" [%2d] %-17s %-15.15s %16.16jx"
2694 " %6.6jx %6.6jx %2.2jx %3s %2u %3u %2ju\n",
2695 S_CT);
2696 } else {
2697 if (re->options & RE_T)
2698 printf(" [%2d] %s\n %-15.15s %16.16jx"
2699 " %16.16jx %u\n %16.16jx %16.16jx"
2700 " %-16u %ju\n %s\n", ST_CTL);
2701 else
2702 printf(" [%2d] %-17.17s %-15.15s %16.16jx"
2703 " %8.8jx\n %16.16jx %16.16jx "
2704 "%3s %2u %3u %ju\n", S_CT);
2705 }
2706 }
2707 if ((re->options & RE_T) == 0)
2708 printf("Key to Flags:\n W (write), A (alloc),"
2709 " X (execute), M (merge), S (strings)\n"
2710 " I (info), L (link order), G (group), x (unknown)\n"
2711 " O (extra OS processing required)"
2712 " o (OS specific), p (processor specific)\n");
2713
2714 #undef S_HDR
2715 #undef S_HDRL
2716 #undef ST_HDR
2717 #undef ST_HDRL
2718 #undef S_CT
2719 #undef ST_CT
2720 #undef ST_CTL
2721 }
2722
2723 /*
2724 * Return number of entries in the given section. We'd prefer ent_count be a
2725 * size_t *, but libelf APIs already use int for section indices.
2726 */
2727 static int
get_ent_count(struct section * s,int * ent_count)2728 get_ent_count(struct section *s, int *ent_count)
2729 {
2730 if (s->entsize == 0) {
2731 warnx("section %s has entry size 0", s->name);
2732 return (0);
2733 } else if (s->sz / s->entsize > INT_MAX) {
2734 warnx("section %s has invalid section count", s->name);
2735 return (0);
2736 }
2737 *ent_count = (int)(s->sz / s->entsize);
2738 return (1);
2739 }
2740
2741 static void
dump_dynamic(struct readelf * re)2742 dump_dynamic(struct readelf *re)
2743 {
2744 GElf_Dyn dyn;
2745 Elf_Data *d;
2746 struct section *s;
2747 int elferr, i, is_dynamic, j, jmax, nentries;
2748
2749 is_dynamic = 0;
2750
2751 for (i = 0; (size_t)i < re->shnum; i++) {
2752 s = &re->sl[i];
2753 if (s->type != SHT_DYNAMIC)
2754 continue;
2755 (void) elf_errno();
2756 if ((d = elf_getdata(s->scn, NULL)) == NULL) {
2757 elferr = elf_errno();
2758 if (elferr != 0)
2759 warnx("elf_getdata failed: %s", elf_errmsg(-1));
2760 continue;
2761 }
2762 if (d->d_size <= 0)
2763 continue;
2764
2765 is_dynamic = 1;
2766
2767 /* Determine the actual number of table entries. */
2768 nentries = 0;
2769 if (!get_ent_count(s, &jmax))
2770 continue;
2771 for (j = 0; j < jmax; j++) {
2772 if (gelf_getdyn(d, j, &dyn) != &dyn) {
2773 warnx("gelf_getdyn failed: %s",
2774 elf_errmsg(-1));
2775 continue;
2776 }
2777 nentries ++;
2778 if (dyn.d_tag == DT_NULL)
2779 break;
2780 }
2781
2782 printf("\nDynamic section at offset 0x%jx", (uintmax_t)s->off);
2783 printf(" contains %u entries:\n", nentries);
2784
2785 if (re->ec == ELFCLASS32)
2786 printf("%5s%12s%28s\n", "Tag", "Type", "Name/Value");
2787 else
2788 printf("%5s%20s%28s\n", "Tag", "Type", "Name/Value");
2789
2790 for (j = 0; j < nentries; j++) {
2791 if (gelf_getdyn(d, j, &dyn) != &dyn)
2792 continue;
2793 /* Dump dynamic entry type. */
2794 if (re->ec == ELFCLASS32)
2795 printf(" 0x%8.8jx", (uintmax_t)dyn.d_tag);
2796 else
2797 printf(" 0x%16.16jx", (uintmax_t)dyn.d_tag);
2798 printf(" %-20s", dt_type(re->ehdr.e_machine,
2799 dyn.d_tag));
2800 /* Dump dynamic entry value. */
2801 dump_dyn_val(re, &dyn, s->link);
2802 }
2803 }
2804
2805 if (!is_dynamic)
2806 printf("\nThere is no dynamic section in this file.\n");
2807 }
2808
2809 static char *
timestamp(time_t ti)2810 timestamp(time_t ti)
2811 {
2812 static char ts[32];
2813 struct tm *t;
2814
2815 t = gmtime(&ti);
2816 snprintf(ts, sizeof(ts), "%04d-%02d-%02dT%02d:%02d:%02d",
2817 t->tm_year + 1900, t->tm_mon + 1, t->tm_mday, t->tm_hour,
2818 t->tm_min, t->tm_sec);
2819
2820 return (ts);
2821 }
2822
2823 static const char *
dyn_str(struct readelf * re,uint32_t stab,uint64_t d_val)2824 dyn_str(struct readelf *re, uint32_t stab, uint64_t d_val)
2825 {
2826 const char *name;
2827
2828 if (stab == SHN_UNDEF)
2829 name = "ERROR";
2830 else if ((name = elf_strptr(re->elf, stab, d_val)) == NULL) {
2831 (void) elf_errno(); /* clear error */
2832 name = "ERROR";
2833 }
2834
2835 return (name);
2836 }
2837
2838 static void
dump_arch_dyn_val(struct readelf * re,GElf_Dyn * dyn)2839 dump_arch_dyn_val(struct readelf *re, GElf_Dyn *dyn)
2840 {
2841 switch (re->ehdr.e_machine) {
2842 case EM_MIPS:
2843 case EM_MIPS_RS3_LE:
2844 switch (dyn->d_tag) {
2845 case DT_MIPS_RLD_VERSION:
2846 case DT_MIPS_LOCAL_GOTNO:
2847 case DT_MIPS_CONFLICTNO:
2848 case DT_MIPS_LIBLISTNO:
2849 case DT_MIPS_SYMTABNO:
2850 case DT_MIPS_UNREFEXTNO:
2851 case DT_MIPS_GOTSYM:
2852 case DT_MIPS_HIPAGENO:
2853 case DT_MIPS_DELTA_CLASS_NO:
2854 case DT_MIPS_DELTA_INSTANCE_NO:
2855 case DT_MIPS_DELTA_RELOC_NO:
2856 case DT_MIPS_DELTA_SYM_NO:
2857 case DT_MIPS_DELTA_CLASSSYM_NO:
2858 case DT_MIPS_LOCALPAGE_GOTIDX:
2859 case DT_MIPS_LOCAL_GOTIDX:
2860 case DT_MIPS_HIDDEN_GOTIDX:
2861 case DT_MIPS_PROTECTED_GOTIDX:
2862 printf(" %ju\n", (uintmax_t) dyn->d_un.d_val);
2863 break;
2864 case DT_MIPS_ICHECKSUM:
2865 case DT_MIPS_FLAGS:
2866 case DT_MIPS_BASE_ADDRESS:
2867 case DT_MIPS_CONFLICT:
2868 case DT_MIPS_LIBLIST:
2869 case DT_MIPS_RLD_MAP:
2870 case DT_MIPS_DELTA_CLASS:
2871 case DT_MIPS_DELTA_INSTANCE:
2872 case DT_MIPS_DELTA_RELOC:
2873 case DT_MIPS_DELTA_SYM:
2874 case DT_MIPS_DELTA_CLASSSYM:
2875 case DT_MIPS_CXX_FLAGS:
2876 case DT_MIPS_PIXIE_INIT:
2877 case DT_MIPS_SYMBOL_LIB:
2878 case DT_MIPS_OPTIONS:
2879 case DT_MIPS_INTERFACE:
2880 case DT_MIPS_DYNSTR_ALIGN:
2881 case DT_MIPS_INTERFACE_SIZE:
2882 case DT_MIPS_RLD_TEXT_RESOLVE_ADDR:
2883 case DT_MIPS_COMPACT_SIZE:
2884 case DT_MIPS_GP_VALUE:
2885 case DT_MIPS_AUX_DYNAMIC:
2886 case DT_MIPS_PLTGOT:
2887 case DT_MIPS_RLD_OBJ_UPDATE:
2888 case DT_MIPS_RWPLT:
2889 printf(" 0x%jx\n", (uintmax_t) dyn->d_un.d_val);
2890 break;
2891 case DT_MIPS_IVERSION:
2892 case DT_MIPS_PERF_SUFFIX:
2893 case DT_MIPS_TIME_STAMP:
2894 printf(" %s\n", timestamp(dyn->d_un.d_val));
2895 break;
2896 default:
2897 printf("\n");
2898 break;
2899 }
2900 break;
2901 default:
2902 printf("\n");
2903 break;
2904 }
2905 }
2906
2907 static void
dump_flags(struct flag_desc * desc,uint64_t val)2908 dump_flags(struct flag_desc *desc, uint64_t val)
2909 {
2910 struct flag_desc *fd;
2911
2912 for (fd = desc; fd->flag != 0; fd++) {
2913 if (val & fd->flag) {
2914 val &= ~fd->flag;
2915 printf(" %s", fd->desc);
2916 }
2917 }
2918 if (val != 0)
2919 printf(" unknown (0x%jx)", (uintmax_t)val);
2920 printf("\n");
2921 }
2922
2923 static struct flag_desc dt_flags[] = {
2924 { DF_ORIGIN, "ORIGIN" },
2925 { DF_SYMBOLIC, "SYMBOLIC" },
2926 { DF_TEXTREL, "TEXTREL" },
2927 { DF_BIND_NOW, "BIND_NOW" },
2928 { DF_STATIC_TLS, "STATIC_TLS" },
2929 { 0, NULL }
2930 };
2931
2932 static struct flag_desc dt_flags_1[] = {
2933 { DF_1_BIND_NOW, "NOW" },
2934 { DF_1_GLOBAL, "GLOBAL" },
2935 { 0x4, "GROUP" },
2936 { DF_1_NODELETE, "NODELETE" },
2937 { DF_1_LOADFLTR, "LOADFLTR" },
2938 { 0x20, "INITFIRST" },
2939 { DF_1_NOOPEN, "NOOPEN" },
2940 { DF_1_ORIGIN, "ORIGIN" },
2941 { 0x100, "DIRECT" },
2942 { DF_1_INTERPOSE, "INTERPOSE" },
2943 { DF_1_NODEFLIB, "NODEFLIB" },
2944 { 0x1000, "NODUMP" },
2945 { 0x2000, "CONFALT" },
2946 { 0x4000, "ENDFILTEE" },
2947 { 0x8000, "DISPRELDNE" },
2948 { 0x10000, "DISPRELPND" },
2949 { 0x20000, "NODIRECT" },
2950 { 0x40000, "IGNMULDEF" },
2951 { 0x80000, "NOKSYMS" },
2952 { 0x100000, "NOHDR" },
2953 { 0x200000, "EDITED" },
2954 { 0x400000, "NORELOC" },
2955 { 0x800000, "SYMINTPOSE" },
2956 { 0x1000000, "GLOBAUDIT" },
2957 { 0x02000000, "SINGLETON" },
2958 { 0x04000000, "STUB" },
2959 { DF_1_PIE, "PIE" },
2960 { 0, NULL }
2961 };
2962
2963 static void
dump_dyn_val(struct readelf * re,GElf_Dyn * dyn,uint32_t stab)2964 dump_dyn_val(struct readelf *re, GElf_Dyn *dyn, uint32_t stab)
2965 {
2966 const char *name;
2967
2968 if (dyn->d_tag >= DT_LOPROC && dyn->d_tag <= DT_HIPROC &&
2969 dyn->d_tag != DT_AUXILIARY && dyn->d_tag != DT_FILTER) {
2970 dump_arch_dyn_val(re, dyn);
2971 return;
2972 }
2973
2974 /* These entry values are index into the string table. */
2975 name = NULL;
2976 if (dyn->d_tag == DT_AUXILIARY || dyn->d_tag == DT_FILTER ||
2977 dyn->d_tag == DT_NEEDED || dyn->d_tag == DT_SONAME ||
2978 dyn->d_tag == DT_RPATH || dyn->d_tag == DT_RUNPATH)
2979 name = dyn_str(re, stab, dyn->d_un.d_val);
2980
2981 switch(dyn->d_tag) {
2982 case DT_NULL:
2983 case DT_PLTGOT:
2984 case DT_HASH:
2985 case DT_STRTAB:
2986 case DT_SYMTAB:
2987 case DT_RELA:
2988 case DT_INIT:
2989 case DT_SYMBOLIC:
2990 case DT_REL:
2991 case DT_DEBUG:
2992 case DT_TEXTREL:
2993 case DT_JMPREL:
2994 case DT_FINI:
2995 case DT_VERDEF:
2996 case DT_VERNEED:
2997 case DT_VERSYM:
2998 case DT_GNU_HASH:
2999 case DT_GNU_LIBLIST:
3000 case DT_GNU_CONFLICT:
3001 printf(" 0x%jx\n", (uintmax_t) dyn->d_un.d_val);
3002 break;
3003 case DT_PLTRELSZ:
3004 case DT_RELASZ:
3005 case DT_RELAENT:
3006 case DT_STRSZ:
3007 case DT_SYMENT:
3008 case DT_RELSZ:
3009 case DT_RELENT:
3010 case DT_PREINIT_ARRAYSZ:
3011 case DT_INIT_ARRAYSZ:
3012 case DT_FINI_ARRAYSZ:
3013 case DT_GNU_CONFLICTSZ:
3014 case DT_GNU_LIBLISTSZ:
3015 printf(" %ju (bytes)\n", (uintmax_t) dyn->d_un.d_val);
3016 break;
3017 case DT_RELACOUNT:
3018 case DT_RELCOUNT:
3019 case DT_VERDEFNUM:
3020 case DT_VERNEEDNUM:
3021 printf(" %ju\n", (uintmax_t) dyn->d_un.d_val);
3022 break;
3023 case DT_AUXILIARY:
3024 printf(" Auxiliary library: [%s]\n", name);
3025 break;
3026 case DT_FILTER:
3027 printf(" Filter library: [%s]\n", name);
3028 break;
3029 case DT_NEEDED:
3030 printf(" Shared library: [%s]\n", name);
3031 break;
3032 case DT_SONAME:
3033 printf(" Library soname: [%s]\n", name);
3034 break;
3035 case DT_RPATH:
3036 printf(" Library rpath: [%s]\n", name);
3037 break;
3038 case DT_RUNPATH:
3039 printf(" Library runpath: [%s]\n", name);
3040 break;
3041 case DT_PLTREL:
3042 printf(" %s\n", dt_type(re->ehdr.e_machine, dyn->d_un.d_val));
3043 break;
3044 case DT_GNU_PRELINKED:
3045 printf(" %s\n", timestamp(dyn->d_un.d_val));
3046 break;
3047 case DT_FLAGS:
3048 dump_flags(dt_flags, dyn->d_un.d_val);
3049 break;
3050 case DT_FLAGS_1:
3051 dump_flags(dt_flags_1, dyn->d_un.d_val);
3052 break;
3053 default:
3054 printf("\n");
3055 }
3056 }
3057
3058 static void
dump_rel(struct readelf * re,struct section * s,Elf_Data * d)3059 dump_rel(struct readelf *re, struct section *s, Elf_Data *d)
3060 {
3061 GElf_Rel r;
3062 const char *symname;
3063 uint64_t symval;
3064 int i, len;
3065 uint32_t type;
3066 uint8_t type2, type3;
3067
3068 if (s->link >= re->shnum)
3069 return;
3070
3071 #define REL_HDR "r_offset", "r_info", "r_type", "st_value", "st_name"
3072 #define REL_CT32 (uintmax_t)r.r_offset, (uintmax_t)r.r_info, \
3073 elftc_reloc_type_str(re->ehdr.e_machine, \
3074 ELF32_R_TYPE(r.r_info)), (uintmax_t)symval, symname
3075 #define REL_CT64 (uintmax_t)r.r_offset, (uintmax_t)r.r_info, \
3076 elftc_reloc_type_str(re->ehdr.e_machine, type), \
3077 (uintmax_t)symval, symname
3078
3079 printf("\nRelocation section (%s):\n", s->name);
3080 if (re->ec == ELFCLASS32)
3081 printf("%-8s %-8s %-19s %-8s %s\n", REL_HDR);
3082 else {
3083 if (re->options & RE_WW)
3084 printf("%-16s %-16s %-24s %-16s %s\n", REL_HDR);
3085 else
3086 printf("%-12s %-12s %-19s %-16s %s\n", REL_HDR);
3087 }
3088 assert(d->d_size == s->sz);
3089 if (!get_ent_count(s, &len))
3090 return;
3091 for (i = 0; i < len; i++) {
3092 if (gelf_getrel(d, i, &r) != &r) {
3093 warnx("gelf_getrel failed: %s", elf_errmsg(-1));
3094 continue;
3095 }
3096 symname = get_symbol_name(re, s->link, GELF_R_SYM(r.r_info));
3097 symval = get_symbol_value(re, s->link, GELF_R_SYM(r.r_info));
3098 if (re->ec == ELFCLASS32) {
3099 r.r_info = ELF32_R_INFO(ELF64_R_SYM(r.r_info),
3100 ELF64_R_TYPE(r.r_info));
3101 printf("%8.8jx %8.8jx %-19.19s %8.8jx %s\n", REL_CT32);
3102 } else {
3103 type = ELF64_R_TYPE(r.r_info);
3104 if (re->ehdr.e_machine == EM_MIPS) {
3105 type2 = (type >> 8) & 0xFF;
3106 type3 = (type >> 16) & 0xFF;
3107 type = type & 0xFF;
3108 } else {
3109 type2 = type3 = 0;
3110 }
3111 if (re->options & RE_WW)
3112 printf("%16.16jx %16.16jx %-24.24s"
3113 " %16.16jx %s\n", REL_CT64);
3114 else
3115 printf("%12.12jx %12.12jx %-19.19s"
3116 " %16.16jx %s\n", REL_CT64);
3117 if (re->ehdr.e_machine == EM_MIPS) {
3118 if (re->options & RE_WW) {
3119 printf("%32s: %s\n", "Type2",
3120 elftc_reloc_type_str(EM_MIPS,
3121 type2));
3122 printf("%32s: %s\n", "Type3",
3123 elftc_reloc_type_str(EM_MIPS,
3124 type3));
3125 } else {
3126 printf("%24s: %s\n", "Type2",
3127 elftc_reloc_type_str(EM_MIPS,
3128 type2));
3129 printf("%24s: %s\n", "Type3",
3130 elftc_reloc_type_str(EM_MIPS,
3131 type3));
3132 }
3133 }
3134 }
3135 }
3136
3137 #undef REL_HDR
3138 #undef REL_CT
3139 }
3140
3141 static void
dump_rela(struct readelf * re,struct section * s,Elf_Data * d)3142 dump_rela(struct readelf *re, struct section *s, Elf_Data *d)
3143 {
3144 GElf_Rela r;
3145 const char *symname;
3146 uint64_t symval;
3147 int i, len;
3148 uint32_t type;
3149 uint8_t type2, type3;
3150
3151 if (s->link >= re->shnum)
3152 return;
3153
3154 #define RELA_HDR "r_offset", "r_info", "r_type", "st_value", \
3155 "st_name + r_addend"
3156 #define RELA_CT32 (uintmax_t)r.r_offset, (uintmax_t)r.r_info, \
3157 elftc_reloc_type_str(re->ehdr.e_machine, \
3158 ELF32_R_TYPE(r.r_info)), (uintmax_t)symval, symname
3159 #define RELA_CT64 (uintmax_t)r.r_offset, (uintmax_t)r.r_info, \
3160 elftc_reloc_type_str(re->ehdr.e_machine, type), \
3161 (uintmax_t)symval, symname
3162
3163 printf("\nRelocation section with addend (%s):\n", s->name);
3164 if (re->ec == ELFCLASS32)
3165 printf("%-8s %-8s %-19s %-8s %s\n", RELA_HDR);
3166 else {
3167 if (re->options & RE_WW)
3168 printf("%-16s %-16s %-24s %-16s %s\n", RELA_HDR);
3169 else
3170 printf("%-12s %-12s %-19s %-16s %s\n", RELA_HDR);
3171 }
3172 assert(d->d_size == s->sz);
3173 if (!get_ent_count(s, &len))
3174 return;
3175 for (i = 0; i < len; i++) {
3176 if (gelf_getrela(d, i, &r) != &r) {
3177 warnx("gelf_getrel failed: %s", elf_errmsg(-1));
3178 continue;
3179 }
3180 symname = get_symbol_name(re, s->link, GELF_R_SYM(r.r_info));
3181 symval = get_symbol_value(re, s->link, GELF_R_SYM(r.r_info));
3182 if (re->ec == ELFCLASS32) {
3183 r.r_info = ELF32_R_INFO(ELF64_R_SYM(r.r_info),
3184 ELF64_R_TYPE(r.r_info));
3185 printf("%8.8jx %8.8jx %-19.19s %8.8jx %s", RELA_CT32);
3186 printf(" + %x\n", (uint32_t) r.r_addend);
3187 } else {
3188 type = ELF64_R_TYPE(r.r_info);
3189 if (re->ehdr.e_machine == EM_MIPS) {
3190 type2 = (type >> 8) & 0xFF;
3191 type3 = (type >> 16) & 0xFF;
3192 type = type & 0xFF;
3193 } else {
3194 type2 = type3 = 0;
3195 }
3196 if (re->options & RE_WW)
3197 printf("%16.16jx %16.16jx %-24.24s"
3198 " %16.16jx %s", RELA_CT64);
3199 else
3200 printf("%12.12jx %12.12jx %-19.19s"
3201 " %16.16jx %s", RELA_CT64);
3202 printf(" + %jx\n", (uintmax_t) r.r_addend);
3203 if (re->ehdr.e_machine == EM_MIPS) {
3204 if (re->options & RE_WW) {
3205 printf("%32s: %s\n", "Type2",
3206 elftc_reloc_type_str(EM_MIPS,
3207 type2));
3208 printf("%32s: %s\n", "Type3",
3209 elftc_reloc_type_str(EM_MIPS,
3210 type3));
3211 } else {
3212 printf("%24s: %s\n", "Type2",
3213 elftc_reloc_type_str(EM_MIPS,
3214 type2));
3215 printf("%24s: %s\n", "Type3",
3216 elftc_reloc_type_str(EM_MIPS,
3217 type3));
3218 }
3219 }
3220 }
3221 }
3222
3223 #undef RELA_HDR
3224 #undef RELA_CT
3225 }
3226
3227 static void
dump_reloc(struct readelf * re)3228 dump_reloc(struct readelf *re)
3229 {
3230 struct section *s;
3231 Elf_Data *d;
3232 int i, elferr;
3233
3234 for (i = 0; (size_t)i < re->shnum; i++) {
3235 s = &re->sl[i];
3236 if (s->type == SHT_REL || s->type == SHT_RELA) {
3237 (void) elf_errno();
3238 if ((d = elf_getdata(s->scn, NULL)) == NULL) {
3239 elferr = elf_errno();
3240 if (elferr != 0)
3241 warnx("elf_getdata failed: %s",
3242 elf_errmsg(elferr));
3243 continue;
3244 }
3245 if (s->type == SHT_REL)
3246 dump_rel(re, s, d);
3247 else
3248 dump_rela(re, s, d);
3249 }
3250 }
3251 }
3252
3253 static void
dump_symtab(struct readelf * re,int i)3254 dump_symtab(struct readelf *re, int i)
3255 {
3256 struct section *s;
3257 Elf_Data *d;
3258 GElf_Sym sym;
3259 const char *name;
3260 uint32_t stab;
3261 int elferr, j, len;
3262 uint16_t vs;
3263
3264 s = &re->sl[i];
3265 if (s->link >= re->shnum)
3266 return;
3267 stab = s->link;
3268 (void) elf_errno();
3269 if ((d = elf_getdata(s->scn, NULL)) == NULL) {
3270 elferr = elf_errno();
3271 if (elferr != 0)
3272 warnx("elf_getdata failed: %s", elf_errmsg(elferr));
3273 return;
3274 }
3275 if (d->d_size <= 0)
3276 return;
3277 if (!get_ent_count(s, &len))
3278 return;
3279 printf("\nSymbol table '%s' contains %d entries:\n", s->name, len);
3280 printf("%7s%9s%14s%5s%8s%6s%9s%5s\n", "Num:", "Value", "Size", "Type",
3281 "Bind", "Vis", "Ndx", "Name");
3282
3283 for (j = 0; j < len; j++) {
3284 if (gelf_getsym(d, j, &sym) != &sym) {
3285 warnx("gelf_getsym failed: %s", elf_errmsg(-1));
3286 continue;
3287 }
3288 printf("%6d:", j);
3289 printf(" %16.16jx", (uintmax_t) sym.st_value);
3290 printf(" %5ju", (uintmax_t) sym.st_size);
3291 printf(" %-7s", st_type(re->ehdr.e_machine,
3292 re->ehdr.e_ident[EI_OSABI], GELF_ST_TYPE(sym.st_info)));
3293 printf(" %-6s", st_bind(GELF_ST_BIND(sym.st_info)));
3294 printf(" %-8s", st_vis(GELF_ST_VISIBILITY(sym.st_other)));
3295 printf(" %3s", st_shndx(sym.st_shndx));
3296 if ((name = elf_strptr(re->elf, stab, sym.st_name)) != NULL)
3297 printf(" %s", name);
3298 /* Append symbol version string for SHT_DYNSYM symbol table. */
3299 if (s->type == SHT_DYNSYM && re->ver != NULL &&
3300 re->vs != NULL && re->vs[j] > 1) {
3301 vs = re->vs[j] & VERSYM_VERSION;
3302 if (vs >= re->ver_sz || re->ver[vs].name == NULL) {
3303 warnx("invalid versym version index %u", vs);
3304 break;
3305 }
3306 if (re->vs[j] & VERSYM_HIDDEN || re->ver[vs].type == 0)
3307 printf("@%s (%d)", re->ver[vs].name, vs);
3308 else
3309 printf("@@%s (%d)", re->ver[vs].name, vs);
3310 }
3311 putchar('\n');
3312 }
3313
3314 }
3315
3316 static void
dump_symtabs(struct readelf * re)3317 dump_symtabs(struct readelf *re)
3318 {
3319 GElf_Dyn dyn;
3320 Elf_Data *d;
3321 struct section *s;
3322 uint64_t dyn_off;
3323 int elferr, i, len;
3324
3325 /*
3326 * If -D is specified, only dump the symbol table specified by
3327 * the DT_SYMTAB entry in the .dynamic section.
3328 */
3329 dyn_off = 0;
3330 if (re->options & RE_DD) {
3331 s = NULL;
3332 for (i = 0; (size_t)i < re->shnum; i++)
3333 if (re->sl[i].type == SHT_DYNAMIC) {
3334 s = &re->sl[i];
3335 break;
3336 }
3337 if (s == NULL)
3338 return;
3339 (void) elf_errno();
3340 if ((d = elf_getdata(s->scn, NULL)) == NULL) {
3341 elferr = elf_errno();
3342 if (elferr != 0)
3343 warnx("elf_getdata failed: %s", elf_errmsg(-1));
3344 return;
3345 }
3346 if (d->d_size <= 0)
3347 return;
3348 if (!get_ent_count(s, &len))
3349 return;
3350
3351 for (i = 0; i < len; i++) {
3352 if (gelf_getdyn(d, i, &dyn) != &dyn) {
3353 warnx("gelf_getdyn failed: %s", elf_errmsg(-1));
3354 continue;
3355 }
3356 if (dyn.d_tag == DT_SYMTAB) {
3357 dyn_off = dyn.d_un.d_val;
3358 break;
3359 }
3360 }
3361 }
3362
3363 /* Find and dump symbol tables. */
3364 for (i = 0; (size_t)i < re->shnum; i++) {
3365 s = &re->sl[i];
3366 if (s->type == SHT_SYMTAB || s->type == SHT_DYNSYM) {
3367 if (re->options & RE_DD) {
3368 if (dyn_off == s->addr) {
3369 dump_symtab(re, i);
3370 break;
3371 }
3372 } else
3373 dump_symtab(re, i);
3374 }
3375 }
3376 }
3377
3378 static void
dump_svr4_hash(struct section * s)3379 dump_svr4_hash(struct section *s)
3380 {
3381 Elf_Data *d;
3382 uint32_t *buf;
3383 uint32_t nbucket, nchain;
3384 uint32_t *bucket, *chain;
3385 uint32_t *bl, *c, maxl, total;
3386 int elferr, i, j;
3387
3388 /* Read and parse the content of .hash section. */
3389 (void) elf_errno();
3390 if ((d = elf_getdata(s->scn, NULL)) == NULL) {
3391 elferr = elf_errno();
3392 if (elferr != 0)
3393 warnx("elf_getdata failed: %s", elf_errmsg(elferr));
3394 return;
3395 }
3396 if (d->d_size < 2 * sizeof(uint32_t)) {
3397 warnx(".hash section too small");
3398 return;
3399 }
3400 buf = d->d_buf;
3401 nbucket = buf[0];
3402 nchain = buf[1];
3403 if (nbucket <= 0 || nchain <= 0) {
3404 warnx("Malformed .hash section");
3405 return;
3406 }
3407 if (d->d_size != (nbucket + nchain + 2) * sizeof(uint32_t)) {
3408 warnx("Malformed .hash section");
3409 return;
3410 }
3411 bucket = &buf[2];
3412 chain = &buf[2 + nbucket];
3413
3414 maxl = 0;
3415 if ((bl = calloc(nbucket, sizeof(*bl))) == NULL)
3416 errx(EXIT_FAILURE, "calloc failed");
3417 for (i = 0; (uint32_t)i < nbucket; i++)
3418 for (j = bucket[i]; j > 0 && (uint32_t)j < nchain; j = chain[j])
3419 if (++bl[i] > maxl)
3420 maxl = bl[i];
3421 if ((c = calloc(maxl + 1, sizeof(*c))) == NULL)
3422 errx(EXIT_FAILURE, "calloc failed");
3423 for (i = 0; (uint32_t)i < nbucket; i++)
3424 c[bl[i]]++;
3425 printf("\nHistogram for bucket list length (total of %u buckets):\n",
3426 nbucket);
3427 printf(" Length\tNumber\t\t%% of total\tCoverage\n");
3428 total = 0;
3429 for (i = 0; (uint32_t)i <= maxl; i++) {
3430 total += c[i] * i;
3431 printf("%7u\t%-10u\t(%5.1f%%)\t%5.1f%%\n", i, c[i],
3432 c[i] * 100.0 / nbucket, total * 100.0 / (nchain - 1));
3433 }
3434 free(c);
3435 free(bl);
3436 }
3437
3438 static void
dump_svr4_hash64(struct readelf * re,struct section * s)3439 dump_svr4_hash64(struct readelf *re, struct section *s)
3440 {
3441 Elf_Data *d, dst;
3442 uint64_t *buf;
3443 uint64_t nbucket, nchain;
3444 uint64_t *bucket, *chain;
3445 uint64_t *bl, *c, maxl, total;
3446 int elferr, i, j;
3447
3448 /*
3449 * ALPHA uses 64-bit hash entries. Since libelf assumes that
3450 * .hash section contains only 32-bit entry, an explicit
3451 * gelf_xlatetom is needed here.
3452 */
3453 (void) elf_errno();
3454 if ((d = elf_rawdata(s->scn, NULL)) == NULL) {
3455 elferr = elf_errno();
3456 if (elferr != 0)
3457 warnx("elf_rawdata failed: %s",
3458 elf_errmsg(elferr));
3459 return;
3460 }
3461 d->d_type = ELF_T_XWORD;
3462 memcpy(&dst, d, sizeof(Elf_Data));
3463 if (gelf_xlatetom(re->elf, &dst, d,
3464 re->ehdr.e_ident[EI_DATA]) != &dst) {
3465 warnx("gelf_xlatetom failed: %s", elf_errmsg(-1));
3466 return;
3467 }
3468 if (dst.d_size < 2 * sizeof(uint64_t)) {
3469 warnx(".hash section too small");
3470 return;
3471 }
3472 buf = dst.d_buf;
3473 nbucket = buf[0];
3474 nchain = buf[1];
3475 if (nbucket <= 0 || nchain <= 0) {
3476 warnx("Malformed .hash section");
3477 return;
3478 }
3479 if (d->d_size != (nbucket + nchain + 2) * sizeof(uint32_t)) {
3480 warnx("Malformed .hash section");
3481 return;
3482 }
3483 bucket = &buf[2];
3484 chain = &buf[2 + nbucket];
3485
3486 maxl = 0;
3487 if ((bl = calloc(nbucket, sizeof(*bl))) == NULL)
3488 errx(EXIT_FAILURE, "calloc failed");
3489 for (i = 0; (uint32_t)i < nbucket; i++)
3490 for (j = bucket[i]; j > 0 && (uint32_t)j < nchain; j = chain[j])
3491 if (++bl[i] > maxl)
3492 maxl = bl[i];
3493 if ((c = calloc(maxl + 1, sizeof(*c))) == NULL)
3494 errx(EXIT_FAILURE, "calloc failed");
3495 for (i = 0; (uint64_t)i < nbucket; i++)
3496 c[bl[i]]++;
3497 printf("Histogram for bucket list length (total of %ju buckets):\n",
3498 (uintmax_t)nbucket);
3499 printf(" Length\tNumber\t\t%% of total\tCoverage\n");
3500 total = 0;
3501 for (i = 0; (uint64_t)i <= maxl; i++) {
3502 total += c[i] * i;
3503 printf("%7u\t%-10ju\t(%5.1f%%)\t%5.1f%%\n", i, (uintmax_t)c[i],
3504 c[i] * 100.0 / nbucket, total * 100.0 / (nchain - 1));
3505 }
3506 free(c);
3507 free(bl);
3508 }
3509
3510 static void
dump_gnu_hash(struct readelf * re,struct section * s)3511 dump_gnu_hash(struct readelf *re, struct section *s)
3512 {
3513 struct section *ds;
3514 Elf_Data *d;
3515 uint32_t *buf;
3516 uint32_t *bucket, *chain;
3517 uint32_t nbucket, nchain, symndx, maskwords;
3518 uint32_t *bl, *c, maxl, total;
3519 int elferr, dynsymcount, i, j;
3520
3521 (void) elf_errno();
3522 if ((d = elf_getdata(s->scn, NULL)) == NULL) {
3523 elferr = elf_errno();
3524 if (elferr != 0)
3525 warnx("elf_getdata failed: %s",
3526 elf_errmsg(elferr));
3527 return;
3528 }
3529 if (d->d_size < 4 * sizeof(uint32_t)) {
3530 warnx(".gnu.hash section too small");
3531 return;
3532 }
3533 buf = d->d_buf;
3534 nbucket = buf[0];
3535 symndx = buf[1];
3536 maskwords = buf[2];
3537 buf += 4;
3538 if (s->link >= re->shnum)
3539 return;
3540 ds = &re->sl[s->link];
3541 if (!get_ent_count(ds, &dynsymcount))
3542 return;
3543 if (symndx >= (uint32_t)dynsymcount) {
3544 warnx("Malformed .gnu.hash section (symndx out of range)");
3545 return;
3546 }
3547 nchain = dynsymcount - symndx;
3548 if (d->d_size != 4 * sizeof(uint32_t) + maskwords *
3549 (re->ec == ELFCLASS32 ? sizeof(uint32_t) : sizeof(uint64_t)) +
3550 (nbucket + nchain) * sizeof(uint32_t)) {
3551 warnx("Malformed .gnu.hash section");
3552 return;
3553 }
3554 bucket = buf + (re->ec == ELFCLASS32 ? maskwords : maskwords * 2);
3555 chain = bucket + nbucket;
3556
3557 maxl = 0;
3558 if ((bl = calloc(nbucket, sizeof(*bl))) == NULL)
3559 errx(EXIT_FAILURE, "calloc failed");
3560 for (i = 0; (uint32_t)i < nbucket; i++)
3561 for (j = bucket[i]; j > 0 && (uint32_t)j - symndx < nchain;
3562 j++) {
3563 if (++bl[i] > maxl)
3564 maxl = bl[i];
3565 if (chain[j - symndx] & 1)
3566 break;
3567 }
3568 if ((c = calloc(maxl + 1, sizeof(*c))) == NULL)
3569 errx(EXIT_FAILURE, "calloc failed");
3570 for (i = 0; (uint32_t)i < nbucket; i++)
3571 c[bl[i]]++;
3572 printf("Histogram for bucket list length (total of %u buckets):\n",
3573 nbucket);
3574 printf(" Length\tNumber\t\t%% of total\tCoverage\n");
3575 total = 0;
3576 for (i = 0; (uint32_t)i <= maxl; i++) {
3577 total += c[i] * i;
3578 printf("%7u\t%-10u\t(%5.1f%%)\t%5.1f%%\n", i, c[i],
3579 c[i] * 100.0 / nbucket, total * 100.0 / (nchain - 1));
3580 }
3581 free(c);
3582 free(bl);
3583 }
3584
3585 static struct flag_desc gnu_property_aarch64_feature_1_and_bits[] = {
3586 { GNU_PROPERTY_AARCH64_FEATURE_1_BTI, "BTI" },
3587 { GNU_PROPERTY_AARCH64_FEATURE_1_PAC, "PAC" },
3588 { 0, NULL }
3589 };
3590
3591 static struct flag_desc_list gnu_property_aarch64[] = {
3592 {
3593 GNU_PROPERTY_AARCH64_FEATURE_1_AND,
3594 "AArch64 features",
3595 gnu_property_aarch64_feature_1_and_bits
3596 },
3597 { 0, NULL, NULL }
3598 };
3599
3600 static struct flag_desc gnu_property_x86_feature_1_and_bits[] = {
3601 { GNU_PROPERTY_X86_FEATURE_1_IBT, "IBT" },
3602 { GNU_PROPERTY_X86_FEATURE_1_SHSTK, "SHSTK" },
3603 { 0, NULL }
3604 };
3605
3606 static struct flag_desc_list gnu_property_x86[] = {
3607 {
3608 GNU_PROPERTY_X86_FEATURE_1_AND,
3609 "x64 features",
3610 gnu_property_x86_feature_1_and_bits
3611 },
3612 { 0, NULL, NULL }
3613 };
3614
3615 static struct {
3616 unsigned int emachine;
3617 struct flag_desc_list *flag_list;
3618 } gnu_property_archs[] = {
3619 { EM_AARCH64, gnu_property_aarch64 },
3620 { EM_X86_64, gnu_property_x86 },
3621 { 0, NULL }
3622 };
3623
3624 static void
dump_gnu_property_type_0(struct readelf * re,const char * buf,size_t sz)3625 dump_gnu_property_type_0(struct readelf *re, const char *buf, size_t sz)
3626 {
3627 struct flag_desc_list *desc_list;
3628 struct flag_desc *desc;
3629 size_t i;
3630 uint32_t type, prop_sz;
3631
3632 printf(" Properties: ");
3633 while (sz > 0) {
3634 if (sz < 8)
3635 goto bad;
3636
3637 type = *(const uint32_t *)(const void *)buf;
3638 prop_sz = *(const uint32_t *)(const void *)(buf + 4);
3639 buf += 8;
3640 sz -= 8;
3641
3642 if (prop_sz > sz)
3643 goto bad;
3644
3645 if (type >= GNU_PROPERTY_LOPROC &&
3646 type <= GNU_PROPERTY_HIPROC) {
3647 desc_list = NULL;
3648 for (i = 0; gnu_property_archs[i].flag_list != NULL;
3649 i++) {
3650 if (gnu_property_archs[i].emachine ==
3651 re->ehdr.e_machine) {
3652 desc_list =
3653 gnu_property_archs[i].flag_list;
3654 break;
3655 }
3656 }
3657 if (desc_list == NULL) {
3658 printf("machine type %x unknown\n",
3659 re->ehdr.e_machine);
3660 goto unknown;
3661 }
3662
3663 desc = NULL;
3664 for (i = 0; desc_list[i].desc != NULL; i++) {
3665 if (desc_list[i].type == type) {
3666 desc = desc_list[i].desc;
3667 break;
3668 }
3669 }
3670 if (desc != NULL) {
3671 printf("%s:", desc_list[i].desc_str);
3672 if (prop_sz != 4)
3673 goto bad;
3674 dump_flags(desc,
3675 *(const uint32_t *)(const void *)buf);
3676 }
3677 }
3678
3679 buf += roundup2(prop_sz, 8);
3680 sz -= roundup2(prop_sz, 8);
3681 }
3682 return;
3683 bad:
3684 printf("corrupt GNU property\n");
3685 unknown:
3686 printf("remaining description data:");
3687 for (i = 0; i < sz; i++)
3688 printf(" %02x", (unsigned char)buf[i]);
3689 printf("\n");
3690 }
3691
3692 static void
dump_hash(struct readelf * re)3693 dump_hash(struct readelf *re)
3694 {
3695 struct section *s;
3696 int i;
3697
3698 for (i = 0; (size_t) i < re->shnum; i++) {
3699 s = &re->sl[i];
3700 if (s->type == SHT_HASH || s->type == SHT_GNU_HASH) {
3701 if (s->type == SHT_GNU_HASH)
3702 dump_gnu_hash(re, s);
3703 else if (re->ehdr.e_machine == EM_ALPHA &&
3704 s->entsize == 8)
3705 dump_svr4_hash64(re, s);
3706 else
3707 dump_svr4_hash(s);
3708 }
3709 }
3710 }
3711
3712 static void
dump_notes(struct readelf * re)3713 dump_notes(struct readelf *re)
3714 {
3715 struct section *s;
3716 const char *rawfile;
3717 GElf_Phdr phdr;
3718 Elf_Data *d;
3719 size_t filesize, phnum;
3720 int i, elferr;
3721
3722 if (re->ehdr.e_type == ET_CORE) {
3723 /*
3724 * Search program headers in the core file for
3725 * PT_NOTE entry.
3726 */
3727 if (elf_getphnum(re->elf, &phnum) == 0) {
3728 warnx("elf_getphnum failed: %s", elf_errmsg(-1));
3729 return;
3730 }
3731 if (phnum == 0)
3732 return;
3733 if ((rawfile = elf_rawfile(re->elf, &filesize)) == NULL) {
3734 warnx("elf_rawfile failed: %s", elf_errmsg(-1));
3735 return;
3736 }
3737 for (i = 0; (size_t) i < phnum; i++) {
3738 if (gelf_getphdr(re->elf, i, &phdr) != &phdr) {
3739 warnx("gelf_getphdr failed: %s",
3740 elf_errmsg(-1));
3741 continue;
3742 }
3743 if (phdr.p_type == PT_NOTE) {
3744 if (phdr.p_offset >= filesize ||
3745 phdr.p_filesz > filesize - phdr.p_offset) {
3746 warnx("invalid PHDR offset");
3747 continue;
3748 }
3749 dump_notes_content(re, rawfile + phdr.p_offset,
3750 phdr.p_filesz, phdr.p_offset);
3751 }
3752 }
3753
3754 } else {
3755 /*
3756 * For objects other than core files, Search for
3757 * SHT_NOTE sections.
3758 */
3759 for (i = 0; (size_t) i < re->shnum; i++) {
3760 s = &re->sl[i];
3761 if (s->type == SHT_NOTE) {
3762 (void) elf_errno();
3763 if ((d = elf_getdata(s->scn, NULL)) == NULL) {
3764 elferr = elf_errno();
3765 if (elferr != 0)
3766 warnx("elf_getdata failed: %s",
3767 elf_errmsg(elferr));
3768 continue;
3769 }
3770 dump_notes_content(re, d->d_buf, d->d_size,
3771 s->off);
3772 }
3773 }
3774 }
3775 }
3776
3777 static struct flag_desc note_feature_ctl_flags[] = {
3778 { NT_FREEBSD_FCTL_ASLR_DISABLE, "ASLR_DISABLE" },
3779 { NT_FREEBSD_FCTL_PROTMAX_DISABLE, "PROTMAX_DISABLE" },
3780 { NT_FREEBSD_FCTL_STKGAP_DISABLE, "STKGAP_DISABLE" },
3781 { NT_FREEBSD_FCTL_WXNEEDED, "WXNEEDED" },
3782 { NT_FREEBSD_FCTL_LA48, "LA48" },
3783 { 0, NULL }
3784 };
3785
3786 static bool
dump_note_string(const char * description,const char * s,size_t len)3787 dump_note_string(const char *description, const char *s, size_t len)
3788 {
3789 size_t i;
3790
3791 if (len == 0 || s[--len] != '\0') {
3792 return (false);
3793 } else {
3794 for (i = 0; i < len; i++)
3795 if (!isprint(s[i]))
3796 return (false);
3797 }
3798
3799 printf(" %s: %s\n", description, s);
3800 return (true);
3801 }
3802
3803 struct note_desc {
3804 uint32_t type;
3805 const char *description;
3806 bool (*fp)(const char *, const char *, size_t);
3807 };
3808
3809 static struct note_desc xen_notes[] = {
3810 { 5, "Xen version", dump_note_string },
3811 { 6, "Guest OS", dump_note_string },
3812 { 7, "Guest version", dump_note_string },
3813 { 8, "Loader", dump_note_string },
3814 { 9, "PAE mode", dump_note_string },
3815 { 10, "Features", dump_note_string },
3816 { 11, "BSD symtab", dump_note_string },
3817 { 0, NULL, NULL }
3818 };
3819
3820 static void
dump_notes_data(struct readelf * re,const char * name,uint32_t type,const char * buf,size_t sz)3821 dump_notes_data(struct readelf *re, const char *name, uint32_t type,
3822 const char *buf, size_t sz)
3823 {
3824 struct note_desc *nd;
3825 size_t i;
3826 const uint32_t *ubuf;
3827
3828 /* Note data is at least 4-byte aligned. */
3829 if (((uintptr_t)buf & 3) != 0) {
3830 warnx("bad note data alignment");
3831 goto unknown;
3832 }
3833 ubuf = (const uint32_t *)(const void *)buf;
3834
3835 if (strcmp(name, "FDO") == 0) {
3836 switch (type) {
3837 case NT_FDO_PACKAGING_METADATA:
3838 {
3839 char *visbuf;
3840
3841 if (sz > SIZE_MAX / 4 - 1) {
3842 warnx("invalid note data");
3843 return;
3844 }
3845 /* Ignore trailing NULs. */
3846 while (sz > 0 && buf[sz - 1] == '\0') {
3847 sz--;
3848 }
3849 if ((visbuf = malloc(sz * 4 + 1)) == NULL) {
3850 err(1, "malloc");
3851 }
3852 (void)strvisx(visbuf, buf, sz, VIS_CSTYLE);
3853 printf(" Package metadata: %s\n", visbuf);
3854 free(visbuf);
3855 return;
3856 }
3857 }
3858 } else if (strcmp(name, "FreeBSD") == 0) {
3859 switch (type) {
3860 case NT_FREEBSD_ABI_TAG:
3861 if (sz != 4)
3862 goto unknown;
3863 printf(" ABI tag: %u\n", ubuf[0]);
3864 return;
3865 /* NT_FREEBSD_NOINIT_TAG carries no data, treat as unknown. */
3866 case NT_FREEBSD_ARCH_TAG:
3867 printf(" Arch tag: %s\n", buf);
3868 return;
3869 case NT_FREEBSD_FEATURE_CTL:
3870 if (sz != 4)
3871 goto unknown;
3872 printf(" Features:");
3873 dump_flags(note_feature_ctl_flags, ubuf[0]);
3874 return;
3875 }
3876 } else if (strcmp(name, "Go") == 0) {
3877 if (type == 4) {
3878 printf(" Build ID: ");
3879 for (i = 0; i < sz; i++) {
3880 printf(isprint(buf[i]) ? "%c" : "<%02x>",
3881 buf[i]);
3882 }
3883 printf("\n");
3884 return;
3885 }
3886 } else if (strcmp(name, "GNU") == 0) {
3887 switch (type) {
3888 case NT_GNU_PROPERTY_TYPE_0:
3889 dump_gnu_property_type_0(re, buf, sz);
3890 return;
3891 case NT_GNU_BUILD_ID:
3892 printf(" Build ID: ");
3893 for (i = 0; i < sz; i++)
3894 printf("%02x", (unsigned char)buf[i]);
3895 printf("\n");
3896 return;
3897 }
3898 } else if (strcmp(name, "Xen") == 0) {
3899 for (nd = xen_notes; nd->description != NULL; nd++) {
3900 if (nd->type == type) {
3901 if (nd->fp(nd->description, buf, sz))
3902 return;
3903 else
3904 break;
3905 }
3906 }
3907 }
3908 unknown:
3909 printf(" description data:");
3910 for (i = 0; i < sz; i++)
3911 printf(" %02x", (unsigned char)buf[i]);
3912 printf("\n");
3913 }
3914
3915 static void
dump_notes_content(struct readelf * re,const char * buf,size_t sz,off_t off)3916 dump_notes_content(struct readelf *re, const char *buf, size_t sz, off_t off)
3917 {
3918 Elf_Note *note;
3919 const char *end, *name;
3920 uint32_t namesz, descsz;
3921
3922 printf("\nNotes at offset %#010jx with length %#010jx:\n",
3923 (uintmax_t) off, (uintmax_t) sz);
3924 printf(" %-13s %-15s %s\n", "Owner", "Data size", "Description");
3925 end = buf + sz;
3926 while (buf < end) {
3927 if (buf + sizeof(*note) > end) {
3928 warnx("invalid note header");
3929 return;
3930 }
3931 note = (Elf_Note *)(uintptr_t) buf;
3932 namesz = roundup2(note->n_namesz, 4);
3933 descsz = roundup2(note->n_descsz, 4);
3934 if (namesz < note->n_namesz || descsz < note->n_descsz ||
3935 buf + namesz + descsz > end) {
3936 warnx("invalid note header");
3937 return;
3938 }
3939 buf += sizeof(Elf_Note);
3940 name = buf;
3941 buf += namesz;
3942 /*
3943 * The name field is required to be nul-terminated, and
3944 * n_namesz includes the terminating nul in observed
3945 * implementations (contrary to the ELF-64 spec). A special
3946 * case is needed for cores generated by some older Linux
3947 * versions, which write a note named "CORE" without a nul
3948 * terminator and n_namesz = 4.
3949 */
3950 if (note->n_namesz == 0)
3951 name = "";
3952 else if (note->n_namesz == 4 && strncmp(name, "CORE", 4) == 0)
3953 name = "CORE";
3954 else if (strnlen(name, note->n_namesz) >= note->n_namesz)
3955 name = "<invalid>";
3956 printf(" %-13s %#010jx", name, (uintmax_t) note->n_descsz);
3957 printf(" %s\n", note_type(name, re->ehdr.e_type,
3958 note->n_type));
3959 dump_notes_data(re, name, note->n_type, buf, note->n_descsz);
3960 buf += descsz;
3961 }
3962 }
3963
3964 /*
3965 * Symbol versioning sections are the same for 32bit and 64bit
3966 * ELF objects.
3967 */
3968 #define Elf_Verdef Elf32_Verdef
3969 #define Elf_Verdaux Elf32_Verdaux
3970 #define Elf_Verneed Elf32_Verneed
3971 #define Elf_Vernaux Elf32_Vernaux
3972
3973 #define SAVE_VERSION_NAME(x, n, t) \
3974 do { \
3975 while (x >= re->ver_sz) { \
3976 nv = realloc(re->ver, \
3977 sizeof(*re->ver) * re->ver_sz * 2); \
3978 if (nv == NULL) { \
3979 warn("realloc failed"); \
3980 free(re->ver); \
3981 return; \
3982 } \
3983 re->ver = nv; \
3984 for (i = re->ver_sz; i < re->ver_sz * 2; i++) { \
3985 re->ver[i].name = NULL; \
3986 re->ver[i].type = 0; \
3987 } \
3988 re->ver_sz *= 2; \
3989 } \
3990 if (x > 1) { \
3991 re->ver[x].name = n; \
3992 re->ver[x].type = t; \
3993 } \
3994 } while (0)
3995
3996
3997 static void
dump_verdef(struct readelf * re,int dump)3998 dump_verdef(struct readelf *re, int dump)
3999 {
4000 struct section *s;
4001 struct symver *nv;
4002 Elf_Data *d;
4003 Elf_Verdef *vd;
4004 Elf_Verdaux *vda;
4005 uint8_t *buf, *end, *buf2;
4006 const char *name;
4007 int elferr, i, j;
4008
4009 if ((s = re->vd_s) == NULL)
4010 return;
4011 if (s->link >= re->shnum)
4012 return;
4013
4014 if (re->ver == NULL) {
4015 re->ver_sz = 16;
4016 if ((re->ver = calloc(re->ver_sz, sizeof(*re->ver))) ==
4017 NULL) {
4018 warn("calloc failed");
4019 return;
4020 }
4021 re->ver[0].name = "*local*";
4022 re->ver[1].name = "*global*";
4023 }
4024
4025 if (dump)
4026 printf("\nVersion definition section (%s):\n", s->name);
4027 (void) elf_errno();
4028 if ((d = elf_getdata(s->scn, NULL)) == NULL) {
4029 elferr = elf_errno();
4030 if (elferr != 0)
4031 warnx("elf_getdata failed: %s", elf_errmsg(elferr));
4032 return;
4033 }
4034 if (d->d_size == 0)
4035 return;
4036
4037 buf = d->d_buf;
4038 end = buf + d->d_size;
4039 while (buf + sizeof(Elf_Verdef) <= end) {
4040 vd = (Elf_Verdef *) (uintptr_t) buf;
4041 if (dump) {
4042 printf(" 0x%4.4lx", (unsigned long)
4043 (buf - (uint8_t *)d->d_buf));
4044 printf(" vd_version: %u vd_flags: %d"
4045 " vd_ndx: %u vd_cnt: %u", vd->vd_version,
4046 vd->vd_flags, vd->vd_ndx, vd->vd_cnt);
4047 }
4048 buf2 = buf + vd->vd_aux;
4049 j = 0;
4050 while (buf2 + sizeof(Elf_Verdaux) <= end && j < vd->vd_cnt) {
4051 vda = (Elf_Verdaux *) (uintptr_t) buf2;
4052 name = get_string(re, s->link, vda->vda_name);
4053 if (j == 0) {
4054 if (dump)
4055 printf(" vda_name: %s\n", name);
4056 SAVE_VERSION_NAME((int)vd->vd_ndx, name, 1);
4057 } else if (dump)
4058 printf(" 0x%4.4lx parent: %s\n",
4059 (unsigned long) (buf2 -
4060 (uint8_t *)d->d_buf), name);
4061 if (vda->vda_next == 0)
4062 break;
4063 buf2 += vda->vda_next;
4064 j++;
4065 }
4066 if (vd->vd_next == 0)
4067 break;
4068 buf += vd->vd_next;
4069 }
4070 }
4071
4072 static void
dump_verneed(struct readelf * re,int dump)4073 dump_verneed(struct readelf *re, int dump)
4074 {
4075 struct section *s;
4076 struct symver *nv;
4077 Elf_Data *d;
4078 Elf_Verneed *vn;
4079 Elf_Vernaux *vna;
4080 uint8_t *buf, *end, *buf2;
4081 const char *name;
4082 int elferr, i, j;
4083
4084 if ((s = re->vn_s) == NULL)
4085 return;
4086 if (s->link >= re->shnum)
4087 return;
4088
4089 if (re->ver == NULL) {
4090 re->ver_sz = 16;
4091 if ((re->ver = calloc(re->ver_sz, sizeof(*re->ver))) ==
4092 NULL) {
4093 warn("calloc failed");
4094 return;
4095 }
4096 re->ver[0].name = "*local*";
4097 re->ver[1].name = "*global*";
4098 }
4099
4100 if (dump)
4101 printf("\nVersion needed section (%s):\n", s->name);
4102 (void) elf_errno();
4103 if ((d = elf_getdata(s->scn, NULL)) == NULL) {
4104 elferr = elf_errno();
4105 if (elferr != 0)
4106 warnx("elf_getdata failed: %s", elf_errmsg(elferr));
4107 return;
4108 }
4109 if (d->d_size == 0)
4110 return;
4111
4112 buf = d->d_buf;
4113 end = buf + d->d_size;
4114 while (buf + sizeof(Elf_Verneed) <= end) {
4115 vn = (Elf_Verneed *) (uintptr_t) buf;
4116 if (dump) {
4117 printf(" 0x%4.4lx", (unsigned long)
4118 (buf - (uint8_t *)d->d_buf));
4119 printf(" vn_version: %u vn_file: %s vn_cnt: %u\n",
4120 vn->vn_version,
4121 get_string(re, s->link, vn->vn_file),
4122 vn->vn_cnt);
4123 }
4124 buf2 = buf + vn->vn_aux;
4125 j = 0;
4126 while (buf2 + sizeof(Elf_Vernaux) <= end && j < vn->vn_cnt) {
4127 vna = (Elf32_Vernaux *) (uintptr_t) buf2;
4128 if (dump)
4129 printf(" 0x%4.4lx", (unsigned long)
4130 (buf2 - (uint8_t *)d->d_buf));
4131 name = get_string(re, s->link, vna->vna_name);
4132 if (dump)
4133 printf(" vna_name: %s vna_flags: %u"
4134 " vna_other: %u\n", name,
4135 vna->vna_flags, vna->vna_other);
4136 SAVE_VERSION_NAME((int)vna->vna_other, name, 0);
4137 if (vna->vna_next == 0)
4138 break;
4139 buf2 += vna->vna_next;
4140 j++;
4141 }
4142 if (vn->vn_next == 0)
4143 break;
4144 buf += vn->vn_next;
4145 }
4146 }
4147
4148 static void
dump_versym(struct readelf * re)4149 dump_versym(struct readelf *re)
4150 {
4151 int i;
4152 uint16_t vs;
4153
4154 if (re->vs_s == NULL || re->ver == NULL || re->vs == NULL)
4155 return;
4156 printf("\nVersion symbol section (%s):\n", re->vs_s->name);
4157 for (i = 0; i < re->vs_sz; i++) {
4158 if ((i & 3) == 0) {
4159 if (i > 0)
4160 putchar('\n');
4161 printf(" %03x:", i);
4162 }
4163 vs = re->vs[i] & VERSYM_VERSION;
4164 if (vs >= re->ver_sz || re->ver[vs].name == NULL) {
4165 warnx("invalid versym version index %u", re->vs[i]);
4166 break;
4167 }
4168 if (re->vs[i] & VERSYM_HIDDEN)
4169 printf(" %3xh %-12s ", vs,
4170 re->ver[re->vs[i] & VERSYM_VERSION].name);
4171 else
4172 printf(" %3x %-12s ", vs, re->ver[re->vs[i]].name);
4173 }
4174 putchar('\n');
4175 }
4176
4177 static void
dump_ver(struct readelf * re)4178 dump_ver(struct readelf *re)
4179 {
4180
4181 if (re->vs_s && re->ver && re->vs)
4182 dump_versym(re);
4183 if (re->vd_s)
4184 dump_verdef(re, 1);
4185 if (re->vn_s)
4186 dump_verneed(re, 1);
4187 }
4188
4189 static void
search_ver(struct readelf * re)4190 search_ver(struct readelf *re)
4191 {
4192 struct section *s;
4193 Elf_Data *d;
4194 int elferr, i;
4195
4196 for (i = 0; (size_t) i < re->shnum; i++) {
4197 s = &re->sl[i];
4198 if (s->type == SHT_SUNW_versym)
4199 re->vs_s = s;
4200 if (s->type == SHT_SUNW_verneed)
4201 re->vn_s = s;
4202 if (s->type == SHT_SUNW_verdef)
4203 re->vd_s = s;
4204 }
4205 if (re->vd_s)
4206 dump_verdef(re, 0);
4207 if (re->vn_s)
4208 dump_verneed(re, 0);
4209 if (re->vs_s && re->ver != NULL) {
4210 (void) elf_errno();
4211 if ((d = elf_getdata(re->vs_s->scn, NULL)) == NULL) {
4212 elferr = elf_errno();
4213 if (elferr != 0)
4214 warnx("elf_getdata failed: %s",
4215 elf_errmsg(elferr));
4216 return;
4217 }
4218 if (d->d_size == 0)
4219 return;
4220 re->vs = d->d_buf;
4221 re->vs_sz = d->d_size / sizeof(Elf32_Half);
4222 }
4223 }
4224
4225 #undef Elf_Verdef
4226 #undef Elf_Verdaux
4227 #undef Elf_Verneed
4228 #undef Elf_Vernaux
4229 #undef SAVE_VERSION_NAME
4230
4231 /*
4232 * Elf32_Lib and Elf64_Lib are identical.
4233 */
4234 #define Elf_Lib Elf32_Lib
4235
4236 static void
dump_liblist(struct readelf * re)4237 dump_liblist(struct readelf *re)
4238 {
4239 struct section *s;
4240 struct tm *t;
4241 time_t ti;
4242 char tbuf[20];
4243 Elf_Data *d;
4244 Elf_Lib *lib;
4245 int i, j, k, elferr, first, len;
4246
4247 for (i = 0; (size_t) i < re->shnum; i++) {
4248 s = &re->sl[i];
4249 if (s->type != SHT_GNU_LIBLIST)
4250 continue;
4251 if (s->link >= re->shnum)
4252 continue;
4253 (void) elf_errno();
4254 if ((d = elf_getdata(s->scn, NULL)) == NULL) {
4255 elferr = elf_errno();
4256 if (elferr != 0)
4257 warnx("elf_getdata failed: %s",
4258 elf_errmsg(elferr));
4259 continue;
4260 }
4261 if (d->d_size <= 0)
4262 continue;
4263 lib = d->d_buf;
4264 if (!get_ent_count(s, &len))
4265 continue;
4266 printf("\nLibrary list section '%s' ", s->name);
4267 printf("contains %d entries:\n", len);
4268 printf("%12s%24s%18s%10s%6s\n", "Library", "Time Stamp",
4269 "Checksum", "Version", "Flags");
4270 for (j = 0; (uint64_t) j < s->sz / s->entsize; j++) {
4271 printf("%3d: ", j);
4272 printf("%-20.20s ",
4273 get_string(re, s->link, lib->l_name));
4274 ti = lib->l_time_stamp;
4275 t = gmtime(&ti);
4276 snprintf(tbuf, sizeof(tbuf), "%04d-%02d-%02dT%02d:%02d"
4277 ":%2d", t->tm_year + 1900, t->tm_mon + 1,
4278 t->tm_mday, t->tm_hour, t->tm_min, t->tm_sec);
4279 printf("%-19.19s ", tbuf);
4280 printf("0x%08x ", lib->l_checksum);
4281 printf("%-7d %#x", lib->l_version, lib->l_flags);
4282 if (lib->l_flags != 0) {
4283 first = 1;
4284 putchar('(');
4285 for (k = 0; l_flag[k].name != NULL; k++) {
4286 if ((l_flag[k].value & lib->l_flags) ==
4287 0)
4288 continue;
4289 if (!first)
4290 putchar(',');
4291 else
4292 first = 0;
4293 printf("%s", l_flag[k].name);
4294 }
4295 putchar(')');
4296 }
4297 putchar('\n');
4298 lib++;
4299 }
4300 }
4301 }
4302
4303 #undef Elf_Lib
4304
4305 static void
dump_section_groups(struct readelf * re)4306 dump_section_groups(struct readelf *re)
4307 {
4308 struct section *s;
4309 const char *symname;
4310 Elf_Data *d;
4311 uint32_t *w;
4312 int i, j, elferr;
4313 size_t n;
4314
4315 for (i = 0; (size_t) i < re->shnum; i++) {
4316 s = &re->sl[i];
4317 if (s->type != SHT_GROUP)
4318 continue;
4319 if (s->link >= re->shnum)
4320 continue;
4321 (void) elf_errno();
4322 if ((d = elf_getdata(s->scn, NULL)) == NULL) {
4323 elferr = elf_errno();
4324 if (elferr != 0)
4325 warnx("elf_getdata failed: %s",
4326 elf_errmsg(elferr));
4327 continue;
4328 }
4329 if (d->d_size <= 0)
4330 continue;
4331
4332 w = d->d_buf;
4333
4334 /* We only support COMDAT section. */
4335 #ifndef GRP_COMDAT
4336 #define GRP_COMDAT 0x1
4337 #endif
4338 if ((*w++ & GRP_COMDAT) == 0)
4339 return;
4340
4341 if (s->entsize == 0)
4342 s->entsize = 4;
4343
4344 symname = get_symbol_name(re, s->link, s->info);
4345 n = s->sz / s->entsize;
4346 if (n-- < 1)
4347 return;
4348
4349 printf("\nCOMDAT group section [%5d] `%s' [%s] contains %ju"
4350 " sections:\n", i, s->name, symname, (uintmax_t)n);
4351 printf(" %-10.10s %s\n", "[Index]", "Name");
4352 for (j = 0; (size_t) j < n; j++, w++) {
4353 if (*w >= re->shnum) {
4354 warnx("invalid section index: %u", *w);
4355 continue;
4356 }
4357 printf(" [%5u] %s\n", *w, re->sl[*w].name);
4358 }
4359 }
4360 }
4361
4362 static uint8_t *
dump_unknown_tag(uint64_t tag,uint8_t * p,uint8_t * pe)4363 dump_unknown_tag(uint64_t tag, uint8_t *p, uint8_t *pe)
4364 {
4365 uint64_t val;
4366
4367 /*
4368 * According to ARM EABI: For tags > 32, even numbered tags have
4369 * a ULEB128 param and odd numbered ones have NUL-terminated
4370 * string param. This rule probably also applies for tags <= 32
4371 * if the object arch is not ARM.
4372 */
4373
4374 printf(" Tag_unknown_%ju: ", (uintmax_t) tag);
4375
4376 if (tag & 1) {
4377 printf("%s\n", (char *) p);
4378 p += strlen((char *) p) + 1;
4379 } else {
4380 val = _decode_uleb128(&p, pe);
4381 printf("%ju\n", (uintmax_t) val);
4382 }
4383
4384 return (p);
4385 }
4386
4387 static uint8_t *
dump_compatibility_tag(uint8_t * p,uint8_t * pe)4388 dump_compatibility_tag(uint8_t *p, uint8_t *pe)
4389 {
4390 uint64_t val;
4391
4392 val = _decode_uleb128(&p, pe);
4393 printf("flag = %ju, vendor = %s\n", (uintmax_t) val, p);
4394 p += strlen((char *) p) + 1;
4395
4396 return (p);
4397 }
4398
4399 static void
dump_arm_attributes(struct readelf * re,uint8_t * p,uint8_t * pe)4400 dump_arm_attributes(struct readelf *re, uint8_t *p, uint8_t *pe)
4401 {
4402 uint64_t tag, val;
4403 size_t i;
4404 int found, desc;
4405
4406 (void) re;
4407
4408 while (p < pe) {
4409 tag = _decode_uleb128(&p, pe);
4410 found = desc = 0;
4411 for (i = 0; i < sizeof(aeabi_tags) / sizeof(aeabi_tags[0]);
4412 i++) {
4413 if (tag == aeabi_tags[i].tag) {
4414 found = 1;
4415 printf(" %s: ", aeabi_tags[i].s_tag);
4416 if (aeabi_tags[i].get_desc) {
4417 desc = 1;
4418 val = _decode_uleb128(&p, pe);
4419 printf("%s\n",
4420 aeabi_tags[i].get_desc(val));
4421 }
4422 break;
4423 }
4424 if (tag < aeabi_tags[i].tag)
4425 break;
4426 }
4427 if (!found) {
4428 p = dump_unknown_tag(tag, p, pe);
4429 continue;
4430 }
4431 if (desc)
4432 continue;
4433
4434 switch (tag) {
4435 case 4: /* Tag_CPU_raw_name */
4436 case 5: /* Tag_CPU_name */
4437 case 67: /* Tag_conformance */
4438 printf("%s\n", (char *) p);
4439 p += strlen((char *) p) + 1;
4440 break;
4441 case 32: /* Tag_compatibility */
4442 p = dump_compatibility_tag(p, pe);
4443 break;
4444 case 64: /* Tag_nodefaults */
4445 /* ignored, written as 0. */
4446 (void) _decode_uleb128(&p, pe);
4447 printf("True\n");
4448 break;
4449 case 65: /* Tag_also_compatible_with */
4450 val = _decode_uleb128(&p, pe);
4451 /* Must be Tag_CPU_arch */
4452 if (val != 6) {
4453 printf("unknown\n");
4454 break;
4455 }
4456 val = _decode_uleb128(&p, pe);
4457 printf("%s\n", aeabi_cpu_arch(val));
4458 /* Skip NUL terminator. */
4459 p++;
4460 break;
4461 default:
4462 putchar('\n');
4463 break;
4464 }
4465 }
4466 }
4467
4468 #ifndef Tag_GNU_MIPS_ABI_FP
4469 #define Tag_GNU_MIPS_ABI_FP 4
4470 #endif
4471
4472 static void
dump_mips_attributes(struct readelf * re,uint8_t * p,uint8_t * pe)4473 dump_mips_attributes(struct readelf *re, uint8_t *p, uint8_t *pe)
4474 {
4475 uint64_t tag, val;
4476
4477 (void) re;
4478
4479 while (p < pe) {
4480 tag = _decode_uleb128(&p, pe);
4481 switch (tag) {
4482 case Tag_GNU_MIPS_ABI_FP:
4483 val = _decode_uleb128(&p, pe);
4484 printf(" Tag_GNU_MIPS_ABI_FP: %s\n", mips_abi_fp(val));
4485 break;
4486 case 32: /* Tag_compatibility */
4487 p = dump_compatibility_tag(p, pe);
4488 break;
4489 default:
4490 p = dump_unknown_tag(tag, p, pe);
4491 break;
4492 }
4493 }
4494 }
4495
4496 #ifndef Tag_GNU_Power_ABI_FP
4497 #define Tag_GNU_Power_ABI_FP 4
4498 #endif
4499
4500 #ifndef Tag_GNU_Power_ABI_Vector
4501 #define Tag_GNU_Power_ABI_Vector 8
4502 #endif
4503
4504 static void
dump_ppc_attributes(uint8_t * p,uint8_t * pe)4505 dump_ppc_attributes(uint8_t *p, uint8_t *pe)
4506 {
4507 uint64_t tag, val;
4508
4509 while (p < pe) {
4510 tag = _decode_uleb128(&p, pe);
4511 switch (tag) {
4512 case Tag_GNU_Power_ABI_FP:
4513 val = _decode_uleb128(&p, pe);
4514 printf(" Tag_GNU_Power_ABI_FP: %s\n", ppc_abi_fp(val));
4515 break;
4516 case Tag_GNU_Power_ABI_Vector:
4517 val = _decode_uleb128(&p, pe);
4518 printf(" Tag_GNU_Power_ABI_Vector: %s\n",
4519 ppc_abi_vector(val));
4520 break;
4521 case 32: /* Tag_compatibility */
4522 p = dump_compatibility_tag(p, pe);
4523 break;
4524 default:
4525 p = dump_unknown_tag(tag, p, pe);
4526 break;
4527 }
4528 }
4529 }
4530
4531 static void
dump_attributes(struct readelf * re)4532 dump_attributes(struct readelf *re)
4533 {
4534 struct section *s;
4535 Elf_Data *d;
4536 uint8_t *p, *pe, *sp;
4537 size_t len, seclen, nlen, sublen;
4538 uint64_t val;
4539 int tag, i, elferr;
4540
4541 for (i = 0; (size_t) i < re->shnum; i++) {
4542 s = &re->sl[i];
4543 if (s->type != SHT_GNU_ATTRIBUTES &&
4544 (re->ehdr.e_machine != EM_ARM || s->type != SHT_LOPROC + 3))
4545 continue;
4546 (void) elf_errno();
4547 if ((d = elf_rawdata(s->scn, NULL)) == NULL) {
4548 elferr = elf_errno();
4549 if (elferr != 0)
4550 warnx("elf_rawdata failed: %s",
4551 elf_errmsg(elferr));
4552 continue;
4553 }
4554 if (d->d_size <= 0)
4555 continue;
4556 p = d->d_buf;
4557 pe = p + d->d_size;
4558 if (*p != 'A') {
4559 printf("Unknown Attribute Section Format: %c\n",
4560 (char) *p);
4561 continue;
4562 }
4563 len = d->d_size - 1;
4564 p++;
4565 while (len > 0) {
4566 if (len < 4) {
4567 warnx("truncated attribute section length");
4568 return;
4569 }
4570 seclen = re->dw_decode(&p, 4);
4571 if (seclen > len) {
4572 warnx("invalid attribute section length");
4573 return;
4574 }
4575 len -= seclen;
4576 nlen = strlen((char *) p) + 1;
4577 if (nlen + 4 > seclen) {
4578 warnx("invalid attribute section name");
4579 return;
4580 }
4581 printf("Attribute Section: %s\n", (char *) p);
4582 p += nlen;
4583 seclen -= nlen + 4;
4584 while (seclen > 0) {
4585 sp = p;
4586 tag = *p++;
4587 sublen = re->dw_decode(&p, 4);
4588 if (sublen > seclen) {
4589 warnx("invalid attribute sub-section"
4590 " length");
4591 return;
4592 }
4593 seclen -= sublen;
4594 printf("%s", top_tag(tag));
4595 if (tag == 2 || tag == 3) {
4596 putchar(':');
4597 for (;;) {
4598 val = _decode_uleb128(&p, pe);
4599 if (val == 0)
4600 break;
4601 printf(" %ju", (uintmax_t) val);
4602 }
4603 }
4604 putchar('\n');
4605 if (re->ehdr.e_machine == EM_ARM &&
4606 s->type == SHT_LOPROC + 3)
4607 dump_arm_attributes(re, p, sp + sublen);
4608 else if (re->ehdr.e_machine == EM_MIPS ||
4609 re->ehdr.e_machine == EM_MIPS_RS3_LE)
4610 dump_mips_attributes(re, p,
4611 sp + sublen);
4612 else if (re->ehdr.e_machine == EM_PPC)
4613 dump_ppc_attributes(p, sp + sublen);
4614 p = sp + sublen;
4615 }
4616 }
4617 }
4618 }
4619
4620 static void
dump_mips_specific_info(struct readelf * re)4621 dump_mips_specific_info(struct readelf *re)
4622 {
4623 struct section *s;
4624 int i;
4625
4626 s = NULL;
4627 for (i = 0; (size_t) i < re->shnum; i++) {
4628 s = &re->sl[i];
4629 if (s->name != NULL && (!strcmp(s->name, ".MIPS.options") ||
4630 (s->type == SHT_MIPS_OPTIONS))) {
4631 dump_mips_options(re, s);
4632 }
4633 }
4634
4635 if (s->name != NULL && (!strcmp(s->name, ".MIPS.abiflags") ||
4636 (s->type == SHT_MIPS_ABIFLAGS)))
4637 dump_mips_abiflags(re, s);
4638
4639 /*
4640 * Dump .reginfo if present (although it will be ignored by an OS if a
4641 * .MIPS.options section is present, according to SGI mips64 spec).
4642 */
4643 for (i = 0; (size_t) i < re->shnum; i++) {
4644 s = &re->sl[i];
4645 if (s->name != NULL && (!strcmp(s->name, ".reginfo") ||
4646 (s->type == SHT_MIPS_REGINFO)))
4647 dump_mips_reginfo(re, s);
4648 }
4649 }
4650
4651 static void
dump_mips_abiflags(struct readelf * re,struct section * s)4652 dump_mips_abiflags(struct readelf *re, struct section *s)
4653 {
4654 Elf_Data *d;
4655 uint8_t *p;
4656 int elferr;
4657 uint32_t isa_ext, ases, flags1, flags2;
4658 uint16_t version;
4659 uint8_t isa_level, isa_rev, gpr_size, cpr1_size, cpr2_size, fp_abi;
4660
4661 if ((d = elf_rawdata(s->scn, NULL)) == NULL) {
4662 elferr = elf_errno();
4663 if (elferr != 0)
4664 warnx("elf_rawdata failed: %s",
4665 elf_errmsg(elferr));
4666 return;
4667 }
4668 if (d->d_size != 24) {
4669 warnx("invalid MIPS abiflags section size");
4670 return;
4671 }
4672
4673 p = d->d_buf;
4674 version = re->dw_decode(&p, 2);
4675 printf("MIPS ABI Flags Version: %u", version);
4676 if (version != 0) {
4677 printf(" (unknown)\n\n");
4678 return;
4679 }
4680 printf("\n\n");
4681
4682 isa_level = re->dw_decode(&p, 1);
4683 isa_rev = re->dw_decode(&p, 1);
4684 gpr_size = re->dw_decode(&p, 1);
4685 cpr1_size = re->dw_decode(&p, 1);
4686 cpr2_size = re->dw_decode(&p, 1);
4687 fp_abi = re->dw_decode(&p, 1);
4688 isa_ext = re->dw_decode(&p, 4);
4689 ases = re->dw_decode(&p, 4);
4690 flags1 = re->dw_decode(&p, 4);
4691 flags2 = re->dw_decode(&p, 4);
4692
4693 printf("ISA: ");
4694 if (isa_rev <= 1)
4695 printf("MIPS%u\n", isa_level);
4696 else
4697 printf("MIPS%ur%u\n", isa_level, isa_rev);
4698 printf("GPR size: %d\n", get_mips_register_size(gpr_size));
4699 printf("CPR1 size: %d\n", get_mips_register_size(cpr1_size));
4700 printf("CPR2 size: %d\n", get_mips_register_size(cpr2_size));
4701 printf("FP ABI: ");
4702 switch (fp_abi) {
4703 case 3:
4704 printf("Soft float");
4705 break;
4706 default:
4707 printf("%u", fp_abi);
4708 break;
4709 }
4710 printf("\nISA Extension: %u\n", isa_ext);
4711 printf("ASEs: %u\n", ases);
4712 printf("FLAGS 1: %08x\n", flags1);
4713 printf("FLAGS 2: %08x\n", flags2);
4714 }
4715
4716 static int
get_mips_register_size(uint8_t flag)4717 get_mips_register_size(uint8_t flag)
4718 {
4719 switch (flag) {
4720 case 0: return 0;
4721 case 1: return 32;
4722 case 2: return 64;
4723 case 3: return 128;
4724 default: return -1;
4725 }
4726 }
4727 static void
dump_mips_reginfo(struct readelf * re,struct section * s)4728 dump_mips_reginfo(struct readelf *re, struct section *s)
4729 {
4730 Elf_Data *d;
4731 int elferr, len;
4732
4733 (void) elf_errno();
4734 if ((d = elf_rawdata(s->scn, NULL)) == NULL) {
4735 elferr = elf_errno();
4736 if (elferr != 0)
4737 warnx("elf_rawdata failed: %s",
4738 elf_errmsg(elferr));
4739 return;
4740 }
4741 if (d->d_size <= 0)
4742 return;
4743 if (!get_ent_count(s, &len))
4744 return;
4745
4746 printf("\nSection '%s' contains %d entries:\n", s->name, len);
4747 dump_mips_odk_reginfo(re, d->d_buf, d->d_size);
4748 }
4749
4750 static void
dump_mips_options(struct readelf * re,struct section * s)4751 dump_mips_options(struct readelf *re, struct section *s)
4752 {
4753 Elf_Data *d;
4754 uint32_t info;
4755 uint16_t sndx;
4756 uint8_t *p, *pe;
4757 uint8_t kind, size;
4758 int elferr;
4759
4760 (void) elf_errno();
4761 if ((d = elf_rawdata(s->scn, NULL)) == NULL) {
4762 elferr = elf_errno();
4763 if (elferr != 0)
4764 warnx("elf_rawdata failed: %s",
4765 elf_errmsg(elferr));
4766 return;
4767 }
4768 if (d->d_size == 0)
4769 return;
4770
4771 printf("\nSection %s contains:\n", s->name);
4772 p = d->d_buf;
4773 pe = p + d->d_size;
4774 while (p < pe) {
4775 if (pe - p < 8) {
4776 warnx("Truncated MIPS option header");
4777 return;
4778 }
4779 kind = re->dw_decode(&p, 1);
4780 size = re->dw_decode(&p, 1);
4781 sndx = re->dw_decode(&p, 2);
4782 info = re->dw_decode(&p, 4);
4783 if (size < 8 || size - 8 > pe - p) {
4784 warnx("Malformed MIPS option header");
4785 return;
4786 }
4787 size -= 8;
4788 switch (kind) {
4789 case ODK_REGINFO:
4790 dump_mips_odk_reginfo(re, p, size);
4791 break;
4792 case ODK_EXCEPTIONS:
4793 printf(" EXCEPTIONS FPU_MIN: %#x\n",
4794 info & OEX_FPU_MIN);
4795 printf("%11.11s FPU_MAX: %#x\n", "",
4796 info & OEX_FPU_MAX);
4797 dump_mips_option_flags("", mips_exceptions_option,
4798 info);
4799 break;
4800 case ODK_PAD:
4801 printf(" %-10.10s section: %ju\n", "OPAD",
4802 (uintmax_t) sndx);
4803 dump_mips_option_flags("", mips_pad_option, info);
4804 break;
4805 case ODK_HWPATCH:
4806 dump_mips_option_flags("HWPATCH", mips_hwpatch_option,
4807 info);
4808 break;
4809 case ODK_HWAND:
4810 dump_mips_option_flags("HWAND", mips_hwa_option, info);
4811 break;
4812 case ODK_HWOR:
4813 dump_mips_option_flags("HWOR", mips_hwo_option, info);
4814 break;
4815 case ODK_FILL:
4816 printf(" %-10.10s %#jx\n", "FILL", (uintmax_t) info);
4817 break;
4818 case ODK_TAGS:
4819 printf(" %-10.10s\n", "TAGS");
4820 break;
4821 case ODK_GP_GROUP:
4822 printf(" %-10.10s GP group number: %#x\n", "GP_GROUP",
4823 info & 0xFFFF);
4824 if (info & 0x10000)
4825 printf(" %-10.10s GP group is "
4826 "self-contained\n", "");
4827 break;
4828 case ODK_IDENT:
4829 printf(" %-10.10s default GP group number: %#x\n",
4830 "IDENT", info & 0xFFFF);
4831 if (info & 0x10000)
4832 printf(" %-10.10s default GP group is "
4833 "self-contained\n", "");
4834 break;
4835 case ODK_PAGESIZE:
4836 printf(" %-10.10s\n", "PAGESIZE");
4837 break;
4838 default:
4839 break;
4840 }
4841 p += size;
4842 }
4843 }
4844
4845 static void
dump_mips_option_flags(const char * name,struct mips_option * opt,uint64_t info)4846 dump_mips_option_flags(const char *name, struct mips_option *opt, uint64_t info)
4847 {
4848 int first;
4849
4850 first = 1;
4851 for (; opt->desc != NULL; opt++) {
4852 if (info & opt->flag) {
4853 printf(" %-10.10s %s\n", first ? name : "",
4854 opt->desc);
4855 first = 0;
4856 }
4857 }
4858 }
4859
4860 static void
dump_mips_odk_reginfo(struct readelf * re,uint8_t * p,size_t sz)4861 dump_mips_odk_reginfo(struct readelf *re, uint8_t *p, size_t sz)
4862 {
4863 uint32_t ri_gprmask;
4864 uint32_t ri_cprmask[4];
4865 uint64_t ri_gp_value;
4866 uint8_t *pe;
4867 int i;
4868
4869 pe = p + sz;
4870 while (p < pe) {
4871 ri_gprmask = re->dw_decode(&p, 4);
4872 /* Skip ri_pad padding field for mips64. */
4873 if (re->ec == ELFCLASS64)
4874 re->dw_decode(&p, 4);
4875 for (i = 0; i < 4; i++)
4876 ri_cprmask[i] = re->dw_decode(&p, 4);
4877 if (re->ec == ELFCLASS32)
4878 ri_gp_value = re->dw_decode(&p, 4);
4879 else
4880 ri_gp_value = re->dw_decode(&p, 8);
4881 printf(" %s ", option_kind(ODK_REGINFO));
4882 printf("ri_gprmask: 0x%08jx\n", (uintmax_t) ri_gprmask);
4883 for (i = 0; i < 4; i++)
4884 printf("%11.11s ri_cprmask[%d]: 0x%08jx\n", "", i,
4885 (uintmax_t) ri_cprmask[i]);
4886 printf("%12.12s", "");
4887 printf("ri_gp_value: %#jx\n", (uintmax_t) ri_gp_value);
4888 }
4889 }
4890
4891 static void
dump_arch_specific_info(struct readelf * re)4892 dump_arch_specific_info(struct readelf *re)
4893 {
4894
4895 dump_liblist(re);
4896 dump_attributes(re);
4897
4898 switch (re->ehdr.e_machine) {
4899 case EM_MIPS:
4900 case EM_MIPS_RS3_LE:
4901 dump_mips_specific_info(re);
4902 default:
4903 break;
4904 }
4905 }
4906
4907 static const char *
dwarf_regname(struct readelf * re,unsigned int num)4908 dwarf_regname(struct readelf *re, unsigned int num)
4909 {
4910 static char rx[32];
4911 const char *rn;
4912
4913 if ((rn = dwarf_reg(re->ehdr.e_machine, num)) != NULL)
4914 return (rn);
4915
4916 snprintf(rx, sizeof(rx), "r%u", num);
4917
4918 return (rx);
4919 }
4920
4921 static void
dump_dwarf_line(struct readelf * re)4922 dump_dwarf_line(struct readelf *re)
4923 {
4924 struct section *s;
4925 Dwarf_Die die;
4926 Dwarf_Error de;
4927 Dwarf_Half tag, version, pointer_size;
4928 Dwarf_Unsigned offset, endoff, length, hdrlen, dirndx, mtime, fsize;
4929 Dwarf_Small minlen, defstmt, lrange, opbase, oplen;
4930 Elf_Data *d;
4931 char *pn;
4932 uint64_t address, file, line, column, isa, opsize, udelta;
4933 int64_t sdelta;
4934 uint8_t *p, *pe;
4935 int8_t lbase;
4936 int i, is_stmt, dwarf_size, elferr, ret;
4937
4938 printf("\nDump of debug contents of section .debug_line:\n");
4939
4940 s = NULL;
4941 for (i = 0; (size_t) i < re->shnum; i++) {
4942 s = &re->sl[i];
4943 if (s->name != NULL && !strcmp(s->name, ".debug_line"))
4944 break;
4945 }
4946 if ((size_t) i >= re->shnum)
4947 return;
4948
4949 (void) elf_errno();
4950 if ((d = elf_getdata(s->scn, NULL)) == NULL) {
4951 elferr = elf_errno();
4952 if (elferr != 0)
4953 warnx("elf_getdata failed: %s", elf_errmsg(-1));
4954 return;
4955 }
4956 if (d->d_size <= 0)
4957 return;
4958
4959 while ((ret = dwarf_next_cu_header(re->dbg, NULL, NULL, NULL, NULL,
4960 NULL, &de)) == DW_DLV_OK) {
4961 die = NULL;
4962 while (dwarf_siblingof(re->dbg, die, &die, &de) == DW_DLV_OK) {
4963 if (dwarf_tag(die, &tag, &de) != DW_DLV_OK) {
4964 warnx("dwarf_tag failed: %s",
4965 dwarf_errmsg(de));
4966 return;
4967 }
4968 /* XXX: What about DW_TAG_partial_unit? */
4969 if (tag == DW_TAG_compile_unit)
4970 break;
4971 }
4972 if (die == NULL) {
4973 warnx("could not find DW_TAG_compile_unit die");
4974 return;
4975 }
4976 if (dwarf_attrval_unsigned(die, DW_AT_stmt_list, &offset,
4977 &de) != DW_DLV_OK) {
4978 dwarf_dealloc(re->dbg, die, DW_DLA_DIE);
4979 continue;
4980 }
4981
4982 length = re->dw_read(d, &offset, 4);
4983 if (length == 0xffffffff) {
4984 dwarf_size = 8;
4985 length = re->dw_read(d, &offset, 8);
4986 } else
4987 dwarf_size = 4;
4988
4989 if (length > d->d_size - offset) {
4990 warnx("invalid .dwarf_line section");
4991 dwarf_dealloc(re->dbg, die, DW_DLA_DIE);
4992 continue;
4993 }
4994
4995 endoff = offset + length;
4996 pe = (uint8_t *) d->d_buf + endoff;
4997 version = re->dw_read(d, &offset, 2);
4998 hdrlen = re->dw_read(d, &offset, dwarf_size);
4999 minlen = re->dw_read(d, &offset, 1);
5000 defstmt = re->dw_read(d, &offset, 1);
5001 lbase = re->dw_read(d, &offset, 1);
5002 lrange = re->dw_read(d, &offset, 1);
5003 opbase = re->dw_read(d, &offset, 1);
5004
5005 printf("\n");
5006 printf(" Length:\t\t\t%ju\n", (uintmax_t) length);
5007 printf(" DWARF version:\t\t%u\n", version);
5008 printf(" Prologue Length:\t\t%ju\n", (uintmax_t) hdrlen);
5009 printf(" Minimum Instruction Length:\t%u\n", minlen);
5010 printf(" Initial value of 'is_stmt':\t%u\n", defstmt);
5011 printf(" Line Base:\t\t\t%d\n", lbase);
5012 printf(" Line Range:\t\t\t%u\n", lrange);
5013 printf(" Opcode Base:\t\t\t%u\n", opbase);
5014 (void) dwarf_get_address_size(re->dbg, &pointer_size, &de);
5015 printf(" (Pointer size:\t\t%u)\n", pointer_size);
5016
5017 printf("\n");
5018 printf(" Opcodes:\n");
5019 for (i = 1; i < opbase; i++) {
5020 oplen = re->dw_read(d, &offset, 1);
5021 printf(" Opcode %d has %u args\n", i, oplen);
5022 }
5023
5024 printf("\n");
5025 printf(" The Directory Table:\n");
5026 p = (uint8_t *) d->d_buf + offset;
5027 while (*p != '\0') {
5028 printf(" %s\n", (char *) p);
5029 p += strlen((char *) p) + 1;
5030 }
5031
5032 p++;
5033 printf("\n");
5034 printf(" The File Name Table:\n");
5035 printf(" Entry\tDir\tTime\tSize\tName\n");
5036 i = 0;
5037 while (*p != '\0') {
5038 i++;
5039 pn = (char *) p;
5040 p += strlen(pn) + 1;
5041 dirndx = _decode_uleb128(&p, pe);
5042 mtime = _decode_uleb128(&p, pe);
5043 fsize = _decode_uleb128(&p, pe);
5044 printf(" %d\t%ju\t%ju\t%ju\t%s\n", i,
5045 (uintmax_t) dirndx, (uintmax_t) mtime,
5046 (uintmax_t) fsize, pn);
5047 }
5048
5049 #define RESET_REGISTERS \
5050 do { \
5051 address = 0; \
5052 file = 1; \
5053 line = 1; \
5054 column = 0; \
5055 is_stmt = defstmt; \
5056 } while(0)
5057
5058 #define LINE(x) (lbase + (((x) - opbase) % lrange))
5059 #define ADDRESS(x) ((((x) - opbase) / lrange) * minlen)
5060
5061 p++;
5062 printf("\n");
5063 printf(" Line Number Statements:\n");
5064
5065 RESET_REGISTERS;
5066
5067 while (p < pe) {
5068
5069 if (*p == 0) {
5070 /*
5071 * Extended Opcodes.
5072 */
5073 p++;
5074 opsize = _decode_uleb128(&p, pe);
5075 printf(" Extended opcode %u: ", *p);
5076 switch (*p) {
5077 case DW_LNE_end_sequence:
5078 p++;
5079 RESET_REGISTERS;
5080 printf("End of Sequence\n");
5081 break;
5082 case DW_LNE_set_address:
5083 p++;
5084 address = re->dw_decode(&p,
5085 pointer_size);
5086 printf("set Address to %#jx\n",
5087 (uintmax_t) address);
5088 break;
5089 case DW_LNE_define_file:
5090 p++;
5091 pn = (char *) p;
5092 p += strlen(pn) + 1;
5093 dirndx = _decode_uleb128(&p, pe);
5094 mtime = _decode_uleb128(&p, pe);
5095 fsize = _decode_uleb128(&p, pe);
5096 printf("define new file: %s\n", pn);
5097 break;
5098 default:
5099 /* Unrecognized extened opcodes. */
5100 p += opsize;
5101 printf("unknown opcode\n");
5102 }
5103 } else if (*p > 0 && *p < opbase) {
5104 /*
5105 * Standard Opcodes.
5106 */
5107 switch(*p++) {
5108 case DW_LNS_copy:
5109 printf(" Copy\n");
5110 break;
5111 case DW_LNS_advance_pc:
5112 udelta = _decode_uleb128(&p, pe) *
5113 minlen;
5114 address += udelta;
5115 printf(" Advance PC by %ju to %#jx\n",
5116 (uintmax_t) udelta,
5117 (uintmax_t) address);
5118 break;
5119 case DW_LNS_advance_line:
5120 sdelta = _decode_sleb128(&p, pe);
5121 line += sdelta;
5122 printf(" Advance Line by %jd to %ju\n",
5123 (intmax_t) sdelta,
5124 (uintmax_t) line);
5125 break;
5126 case DW_LNS_set_file:
5127 file = _decode_uleb128(&p, pe);
5128 printf(" Set File to %ju\n",
5129 (uintmax_t) file);
5130 break;
5131 case DW_LNS_set_column:
5132 column = _decode_uleb128(&p, pe);
5133 printf(" Set Column to %ju\n",
5134 (uintmax_t) column);
5135 break;
5136 case DW_LNS_negate_stmt:
5137 is_stmt = !is_stmt;
5138 printf(" Set is_stmt to %d\n", is_stmt);
5139 break;
5140 case DW_LNS_set_basic_block:
5141 printf(" Set basic block flag\n");
5142 break;
5143 case DW_LNS_const_add_pc:
5144 address += ADDRESS(255);
5145 printf(" Advance PC by constant %ju"
5146 " to %#jx\n",
5147 (uintmax_t) ADDRESS(255),
5148 (uintmax_t) address);
5149 break;
5150 case DW_LNS_fixed_advance_pc:
5151 udelta = re->dw_decode(&p, 2);
5152 address += udelta;
5153 printf(" Advance PC by fixed value "
5154 "%ju to %#jx\n",
5155 (uintmax_t) udelta,
5156 (uintmax_t) address);
5157 break;
5158 case DW_LNS_set_prologue_end:
5159 printf(" Set prologue end flag\n");
5160 break;
5161 case DW_LNS_set_epilogue_begin:
5162 printf(" Set epilogue begin flag\n");
5163 break;
5164 case DW_LNS_set_isa:
5165 isa = _decode_uleb128(&p, pe);
5166 printf(" Set isa to %ju\n",
5167 (uintmax_t) isa);
5168 break;
5169 default:
5170 /* Unrecognized extended opcodes. */
5171 printf(" Unknown extended opcode %u\n",
5172 *(p - 1));
5173 break;
5174 }
5175
5176 } else {
5177 /*
5178 * Special Opcodes.
5179 */
5180 line += LINE(*p);
5181 address += ADDRESS(*p);
5182 printf(" Special opcode %u: advance Address "
5183 "by %ju to %#jx and Line by %jd to %ju\n",
5184 *p - opbase, (uintmax_t) ADDRESS(*p),
5185 (uintmax_t) address, (intmax_t) LINE(*p),
5186 (uintmax_t) line);
5187 p++;
5188 }
5189 }
5190 dwarf_dealloc(re->dbg, die, DW_DLA_DIE);
5191 }
5192 if (ret == DW_DLV_ERROR)
5193 warnx("dwarf_next_cu_header: %s", dwarf_errmsg(de));
5194
5195 #undef RESET_REGISTERS
5196 #undef LINE
5197 #undef ADDRESS
5198 }
5199
5200 static void
dump_dwarf_line_decoded(struct readelf * re)5201 dump_dwarf_line_decoded(struct readelf *re)
5202 {
5203 Dwarf_Die die;
5204 Dwarf_Line *linebuf, ln;
5205 Dwarf_Addr lineaddr;
5206 Dwarf_Signed linecount, srccount;
5207 Dwarf_Unsigned lineno, fn;
5208 Dwarf_Error de;
5209 const char *dir, *file;
5210 char **srcfiles;
5211 int i, ret;
5212
5213 printf("Decoded dump of debug contents of section .debug_line:\n\n");
5214 while ((ret = dwarf_next_cu_header(re->dbg, NULL, NULL, NULL, NULL,
5215 NULL, &de)) == DW_DLV_OK) {
5216 if (dwarf_siblingof(re->dbg, NULL, &die, &de) != DW_DLV_OK)
5217 continue;
5218 if (dwarf_attrval_string(die, DW_AT_name, &file, &de) !=
5219 DW_DLV_OK)
5220 file = NULL;
5221 if (dwarf_attrval_string(die, DW_AT_comp_dir, &dir, &de) !=
5222 DW_DLV_OK)
5223 dir = NULL;
5224 printf("CU: ");
5225 if (dir && file && file[0] != '/')
5226 printf("%s/", dir);
5227 if (file)
5228 printf("%s", file);
5229 putchar('\n');
5230 printf("%-37s %11s %s\n", "Filename", "Line Number",
5231 "Starting Address");
5232 if (dwarf_srclines(die, &linebuf, &linecount, &de) != DW_DLV_OK)
5233 goto done;
5234 if (dwarf_srcfiles(die, &srcfiles, &srccount, &de) != DW_DLV_OK)
5235 goto done;
5236 for (i = 0; i < linecount; i++) {
5237 ln = linebuf[i];
5238 if (dwarf_line_srcfileno(ln, &fn, &de) != DW_DLV_OK)
5239 continue;
5240 if (dwarf_lineno(ln, &lineno, &de) != DW_DLV_OK)
5241 continue;
5242 if (dwarf_lineaddr(ln, &lineaddr, &de) != DW_DLV_OK)
5243 continue;
5244 printf("%-37s %11ju %#18jx\n",
5245 basename(srcfiles[fn - 1]), (uintmax_t) lineno,
5246 (uintmax_t) lineaddr);
5247 }
5248 putchar('\n');
5249 done:
5250 dwarf_dealloc(re->dbg, die, DW_DLA_DIE);
5251 }
5252 }
5253
5254 static void
dump_dwarf_die(struct readelf * re,Dwarf_Die die,int level)5255 dump_dwarf_die(struct readelf *re, Dwarf_Die die, int level)
5256 {
5257 Dwarf_Attribute *attr_list;
5258 Dwarf_Die ret_die;
5259 Dwarf_Off dieoff, cuoff, culen, attroff;
5260 Dwarf_Unsigned ate, lang, v_udata, v_sig;
5261 Dwarf_Signed attr_count, v_sdata;
5262 Dwarf_Off v_off;
5263 Dwarf_Addr v_addr;
5264 Dwarf_Half tag, attr, form;
5265 Dwarf_Block *v_block;
5266 Dwarf_Bool v_bool, is_info;
5267 Dwarf_Sig8 v_sig8;
5268 Dwarf_Error de;
5269 Dwarf_Ptr v_expr;
5270 const char *tag_str, *attr_str, *ate_str, *lang_str;
5271 char unk_tag[32], unk_attr[32];
5272 char *v_str;
5273 uint8_t *b, *p;
5274 int i, j, abc, ret;
5275
5276 if (dwarf_dieoffset(die, &dieoff, &de) != DW_DLV_OK) {
5277 warnx("dwarf_dieoffset failed: %s", dwarf_errmsg(de));
5278 goto cont_search;
5279 }
5280
5281 printf(" <%d><%jx>: ", level, (uintmax_t) dieoff);
5282
5283 if (dwarf_die_CU_offset_range(die, &cuoff, &culen, &de) != DW_DLV_OK) {
5284 warnx("dwarf_die_CU_offset_range failed: %s",
5285 dwarf_errmsg(de));
5286 cuoff = 0;
5287 }
5288
5289 abc = dwarf_die_abbrev_code(die);
5290 if (dwarf_tag(die, &tag, &de) != DW_DLV_OK) {
5291 warnx("dwarf_tag failed: %s", dwarf_errmsg(de));
5292 goto cont_search;
5293 }
5294 if (dwarf_get_TAG_name(tag, &tag_str) != DW_DLV_OK) {
5295 snprintf(unk_tag, sizeof(unk_tag), "[Unknown Tag: %#x]", tag);
5296 tag_str = unk_tag;
5297 }
5298
5299 printf("Abbrev Number: %d (%s)\n", abc, tag_str);
5300
5301 if ((ret = dwarf_attrlist(die, &attr_list, &attr_count, &de)) !=
5302 DW_DLV_OK) {
5303 if (ret == DW_DLV_ERROR)
5304 warnx("dwarf_attrlist failed: %s", dwarf_errmsg(de));
5305 goto cont_search;
5306 }
5307
5308 for (i = 0; i < attr_count; i++) {
5309 if (dwarf_whatform(attr_list[i], &form, &de) != DW_DLV_OK) {
5310 warnx("dwarf_whatform failed: %s", dwarf_errmsg(de));
5311 continue;
5312 }
5313 if (dwarf_whatattr(attr_list[i], &attr, &de) != DW_DLV_OK) {
5314 warnx("dwarf_whatattr failed: %s", dwarf_errmsg(de));
5315 continue;
5316 }
5317 if (dwarf_get_AT_name(attr, &attr_str) != DW_DLV_OK) {
5318 snprintf(unk_attr, sizeof(unk_attr),
5319 "[Unknown AT: %#x]", attr);
5320 attr_str = unk_attr;
5321 }
5322 if (dwarf_attroffset(attr_list[i], &attroff, &de) !=
5323 DW_DLV_OK) {
5324 warnx("dwarf_attroffset failed: %s", dwarf_errmsg(de));
5325 attroff = 0;
5326 }
5327 printf(" <%jx> %-18s: ", (uintmax_t) attroff, attr_str);
5328 switch (form) {
5329 case DW_FORM_ref_addr:
5330 case DW_FORM_sec_offset:
5331 if (dwarf_global_formref(attr_list[i], &v_off, &de) !=
5332 DW_DLV_OK) {
5333 warnx("dwarf_global_formref failed: %s",
5334 dwarf_errmsg(de));
5335 continue;
5336 }
5337 if (form == DW_FORM_ref_addr)
5338 printf("<0x%jx>", (uintmax_t) v_off);
5339 else
5340 printf("0x%jx", (uintmax_t) v_off);
5341 break;
5342
5343 case DW_FORM_ref1:
5344 case DW_FORM_ref2:
5345 case DW_FORM_ref4:
5346 case DW_FORM_ref8:
5347 case DW_FORM_ref_udata:
5348 if (dwarf_formref(attr_list[i], &v_off, &de) !=
5349 DW_DLV_OK) {
5350 warnx("dwarf_formref failed: %s",
5351 dwarf_errmsg(de));
5352 continue;
5353 }
5354 v_off += cuoff;
5355 printf("<0x%jx>", (uintmax_t) v_off);
5356 break;
5357
5358 case DW_FORM_addr:
5359 if (dwarf_formaddr(attr_list[i], &v_addr, &de) !=
5360 DW_DLV_OK) {
5361 warnx("dwarf_formaddr failed: %s",
5362 dwarf_errmsg(de));
5363 continue;
5364 }
5365 printf("%#jx", (uintmax_t) v_addr);
5366 break;
5367
5368 case DW_FORM_data1:
5369 case DW_FORM_data2:
5370 case DW_FORM_data4:
5371 case DW_FORM_data8:
5372 case DW_FORM_udata:
5373 if (dwarf_formudata(attr_list[i], &v_udata, &de) !=
5374 DW_DLV_OK) {
5375 warnx("dwarf_formudata failed: %s",
5376 dwarf_errmsg(de));
5377 continue;
5378 }
5379 if (attr == DW_AT_high_pc)
5380 printf("0x%jx", (uintmax_t) v_udata);
5381 else
5382 printf("%ju", (uintmax_t) v_udata);
5383 break;
5384
5385 case DW_FORM_sdata:
5386 if (dwarf_formsdata(attr_list[i], &v_sdata, &de) !=
5387 DW_DLV_OK) {
5388 warnx("dwarf_formudata failed: %s",
5389 dwarf_errmsg(de));
5390 continue;
5391 }
5392 printf("%jd", (intmax_t) v_sdata);
5393 break;
5394
5395 case DW_FORM_flag:
5396 if (dwarf_formflag(attr_list[i], &v_bool, &de) !=
5397 DW_DLV_OK) {
5398 warnx("dwarf_formflag failed: %s",
5399 dwarf_errmsg(de));
5400 continue;
5401 }
5402 printf("%jd", (intmax_t) v_bool);
5403 break;
5404
5405 case DW_FORM_flag_present:
5406 putchar('1');
5407 break;
5408
5409 case DW_FORM_string:
5410 case DW_FORM_strp:
5411 if (dwarf_formstring(attr_list[i], &v_str, &de) !=
5412 DW_DLV_OK) {
5413 warnx("dwarf_formstring failed: %s",
5414 dwarf_errmsg(de));
5415 continue;
5416 }
5417 if (form == DW_FORM_string)
5418 printf("%s", v_str);
5419 else
5420 printf("(indirect string) %s", v_str);
5421 break;
5422
5423 case DW_FORM_block:
5424 case DW_FORM_block1:
5425 case DW_FORM_block2:
5426 case DW_FORM_block4:
5427 if (dwarf_formblock(attr_list[i], &v_block, &de) !=
5428 DW_DLV_OK) {
5429 warnx("dwarf_formblock failed: %s",
5430 dwarf_errmsg(de));
5431 continue;
5432 }
5433 printf("%ju byte block:", (uintmax_t) v_block->bl_len);
5434 b = v_block->bl_data;
5435 for (j = 0; (Dwarf_Unsigned) j < v_block->bl_len; j++)
5436 printf(" %x", b[j]);
5437 printf("\t(");
5438 dump_dwarf_block(re, v_block->bl_data, v_block->bl_len);
5439 putchar(')');
5440 break;
5441
5442 case DW_FORM_exprloc:
5443 if (dwarf_formexprloc(attr_list[i], &v_udata, &v_expr,
5444 &de) != DW_DLV_OK) {
5445 warnx("dwarf_formexprloc failed: %s",
5446 dwarf_errmsg(de));
5447 continue;
5448 }
5449 printf("%ju byte block:", (uintmax_t) v_udata);
5450 b = v_expr;
5451 for (j = 0; (Dwarf_Unsigned) j < v_udata; j++)
5452 printf(" %x", b[j]);
5453 printf("\t(");
5454 dump_dwarf_block(re, v_expr, v_udata);
5455 putchar(')');
5456 break;
5457
5458 case DW_FORM_ref_sig8:
5459 if (dwarf_formsig8(attr_list[i], &v_sig8, &de) !=
5460 DW_DLV_OK) {
5461 warnx("dwarf_formsig8 failed: %s",
5462 dwarf_errmsg(de));
5463 continue;
5464 }
5465 p = (uint8_t *)(uintptr_t) &v_sig8.signature[0];
5466 v_sig = re->dw_decode(&p, 8);
5467 printf("signature: 0x%jx", (uintmax_t) v_sig);
5468 }
5469 switch (attr) {
5470 case DW_AT_encoding:
5471 if (dwarf_attrval_unsigned(die, attr, &ate, &de) !=
5472 DW_DLV_OK)
5473 break;
5474 if (dwarf_get_ATE_name(ate, &ate_str) != DW_DLV_OK)
5475 ate_str = "DW_ATE_UNKNOWN";
5476 printf("\t(%s)", &ate_str[strlen("DW_ATE_")]);
5477 break;
5478
5479 case DW_AT_language:
5480 if (dwarf_attrval_unsigned(die, attr, &lang, &de) !=
5481 DW_DLV_OK)
5482 break;
5483 if (dwarf_get_LANG_name(lang, &lang_str) != DW_DLV_OK)
5484 break;
5485 printf("\t(%s)", &lang_str[strlen("DW_LANG_")]);
5486 break;
5487
5488 case DW_AT_location:
5489 case DW_AT_string_length:
5490 case DW_AT_return_addr:
5491 case DW_AT_data_member_location:
5492 case DW_AT_frame_base:
5493 case DW_AT_segment:
5494 case DW_AT_static_link:
5495 case DW_AT_use_location:
5496 case DW_AT_vtable_elem_location:
5497 switch (form) {
5498 case DW_FORM_data4:
5499 case DW_FORM_data8:
5500 case DW_FORM_sec_offset:
5501 printf("\t(location list)");
5502 break;
5503 default:
5504 break;
5505 }
5506
5507 default:
5508 break;
5509 }
5510 putchar('\n');
5511 }
5512
5513
5514 cont_search:
5515 /* Search children. */
5516 ret = dwarf_child(die, &ret_die, &de);
5517 if (ret == DW_DLV_ERROR)
5518 warnx("dwarf_child: %s", dwarf_errmsg(de));
5519 else if (ret == DW_DLV_OK)
5520 dump_dwarf_die(re, ret_die, level + 1);
5521
5522 /* Search sibling. */
5523 is_info = dwarf_get_die_infotypes_flag(die);
5524 ret = dwarf_siblingof_b(re->dbg, die, &ret_die, is_info, &de);
5525 if (ret == DW_DLV_ERROR)
5526 warnx("dwarf_siblingof: %s", dwarf_errmsg(de));
5527 else if (ret == DW_DLV_OK)
5528 dump_dwarf_die(re, ret_die, level);
5529
5530 dwarf_dealloc(re->dbg, die, DW_DLA_DIE);
5531 }
5532
5533 static void
set_cu_context(struct readelf * re,Dwarf_Half psize,Dwarf_Half osize,Dwarf_Half ver)5534 set_cu_context(struct readelf *re, Dwarf_Half psize, Dwarf_Half osize,
5535 Dwarf_Half ver)
5536 {
5537
5538 re->cu_psize = psize;
5539 re->cu_osize = osize;
5540 re->cu_ver = ver;
5541 }
5542
5543 static void
dump_dwarf_info(struct readelf * re,Dwarf_Bool is_info)5544 dump_dwarf_info(struct readelf *re, Dwarf_Bool is_info)
5545 {
5546 struct section *s;
5547 Dwarf_Die die;
5548 Dwarf_Error de;
5549 Dwarf_Half tag, version, pointer_size, off_size;
5550 Dwarf_Off cu_offset, cu_length;
5551 Dwarf_Off aboff;
5552 Dwarf_Unsigned typeoff;
5553 Dwarf_Sig8 sig8;
5554 Dwarf_Unsigned sig;
5555 uint8_t *p;
5556 const char *sn;
5557 int i, ret;
5558
5559 sn = is_info ? ".debug_info" : ".debug_types";
5560
5561 s = NULL;
5562 for (i = 0; (size_t) i < re->shnum; i++) {
5563 s = &re->sl[i];
5564 if (s->name != NULL && !strcmp(s->name, sn))
5565 break;
5566 }
5567 if ((size_t) i >= re->shnum)
5568 return;
5569
5570 do {
5571 printf("\nDump of debug contents of section %s:\n", sn);
5572
5573 while ((ret = dwarf_next_cu_header_c(re->dbg, is_info, NULL,
5574 &version, &aboff, &pointer_size, &off_size, NULL, &sig8,
5575 &typeoff, NULL, &de)) == DW_DLV_OK) {
5576 set_cu_context(re, pointer_size, off_size, version);
5577 die = NULL;
5578 while (dwarf_siblingof_b(re->dbg, die, &die, is_info,
5579 &de) == DW_DLV_OK) {
5580 if (dwarf_tag(die, &tag, &de) != DW_DLV_OK) {
5581 warnx("dwarf_tag failed: %s",
5582 dwarf_errmsg(de));
5583 continue;
5584 }
5585 /* XXX: What about DW_TAG_partial_unit? */
5586 if ((is_info && tag == DW_TAG_compile_unit) ||
5587 (!is_info && tag == DW_TAG_type_unit))
5588 break;
5589 }
5590 if (die == NULL && is_info) {
5591 warnx("could not find DW_TAG_compile_unit "
5592 "die");
5593 continue;
5594 } else if (die == NULL && !is_info) {
5595 warnx("could not find DW_TAG_type_unit die");
5596 continue;
5597 }
5598
5599 if (dwarf_die_CU_offset_range(die, &cu_offset,
5600 &cu_length, &de) != DW_DLV_OK) {
5601 warnx("dwarf_die_CU_offset failed: %s",
5602 dwarf_errmsg(de));
5603 continue;
5604 }
5605
5606 cu_length -= off_size == 4 ? 4 : 12;
5607
5608 sig = 0;
5609 if (!is_info) {
5610 p = (uint8_t *)(uintptr_t) &sig8.signature[0];
5611 sig = re->dw_decode(&p, 8);
5612 }
5613
5614 printf("\n Type Unit @ offset 0x%jx:\n",
5615 (uintmax_t) cu_offset);
5616 printf(" Length:\t\t%#jx (%d-bit)\n",
5617 (uintmax_t) cu_length, off_size == 4 ? 32 : 64);
5618 printf(" Version:\t\t%u\n", version);
5619 printf(" Abbrev Offset:\t0x%jx\n",
5620 (uintmax_t) aboff);
5621 printf(" Pointer Size:\t%u\n", pointer_size);
5622 if (!is_info) {
5623 printf(" Signature:\t\t0x%016jx\n",
5624 (uintmax_t) sig);
5625 printf(" Type Offset:\t0x%jx\n",
5626 (uintmax_t) typeoff);
5627 }
5628
5629 dump_dwarf_die(re, die, 0);
5630 }
5631 if (ret == DW_DLV_ERROR)
5632 warnx("dwarf_next_cu_header: %s", dwarf_errmsg(de));
5633 if (is_info)
5634 break;
5635 } while (dwarf_next_types_section(re->dbg, &de) == DW_DLV_OK);
5636 }
5637
5638 static void
dump_dwarf_abbrev(struct readelf * re)5639 dump_dwarf_abbrev(struct readelf *re)
5640 {
5641 Dwarf_Abbrev ab;
5642 Dwarf_Off aboff, atoff;
5643 Dwarf_Unsigned length, attr_count;
5644 Dwarf_Signed flag, form;
5645 Dwarf_Half tag, attr;
5646 Dwarf_Error de;
5647 const char *tag_str, *attr_str, *form_str;
5648 char unk_tag[32], unk_attr[32], unk_form[32];
5649 int i, j, ret;
5650
5651 printf("\nContents of section .debug_abbrev:\n\n");
5652
5653 while ((ret = dwarf_next_cu_header(re->dbg, NULL, NULL, &aboff,
5654 NULL, NULL, &de)) == DW_DLV_OK) {
5655 printf(" Number TAG\n");
5656 i = 0;
5657 while ((ret = dwarf_get_abbrev(re->dbg, aboff, &ab, &length,
5658 &attr_count, &de)) == DW_DLV_OK) {
5659 if (length == 1) {
5660 dwarf_dealloc(re->dbg, ab, DW_DLA_ABBREV);
5661 break;
5662 }
5663 aboff += length;
5664 printf("%4d", ++i);
5665 if (dwarf_get_abbrev_tag(ab, &tag, &de) != DW_DLV_OK) {
5666 warnx("dwarf_get_abbrev_tag failed: %s",
5667 dwarf_errmsg(de));
5668 goto next_abbrev;
5669 }
5670 if (dwarf_get_TAG_name(tag, &tag_str) != DW_DLV_OK) {
5671 snprintf(unk_tag, sizeof(unk_tag),
5672 "[Unknown Tag: %#x]", tag);
5673 tag_str = unk_tag;
5674 }
5675 if (dwarf_get_abbrev_children_flag(ab, &flag, &de) !=
5676 DW_DLV_OK) {
5677 warnx("dwarf_get_abbrev_children_flag failed:"
5678 " %s", dwarf_errmsg(de));
5679 goto next_abbrev;
5680 }
5681 printf(" %s %s\n", tag_str,
5682 flag ? "[has children]" : "[no children]");
5683 for (j = 0; (Dwarf_Unsigned) j < attr_count; j++) {
5684 if (dwarf_get_abbrev_entry(ab, (Dwarf_Signed) j,
5685 &attr, &form, &atoff, &de) != DW_DLV_OK) {
5686 warnx("dwarf_get_abbrev_entry failed:"
5687 " %s", dwarf_errmsg(de));
5688 continue;
5689 }
5690 if (dwarf_get_AT_name(attr, &attr_str) !=
5691 DW_DLV_OK) {
5692 snprintf(unk_attr, sizeof(unk_attr),
5693 "[Unknown AT: %#x]", attr);
5694 attr_str = unk_attr;
5695 }
5696 if (dwarf_get_FORM_name(form, &form_str) !=
5697 DW_DLV_OK) {
5698 snprintf(unk_form, sizeof(unk_form),
5699 "[Unknown Form: %#x]",
5700 (Dwarf_Half) form);
5701 form_str = unk_form;
5702 }
5703 printf(" %-18s %s\n", attr_str, form_str);
5704 }
5705 next_abbrev:
5706 dwarf_dealloc(re->dbg, ab, DW_DLA_ABBREV);
5707 }
5708 if (ret != DW_DLV_OK)
5709 warnx("dwarf_get_abbrev: %s", dwarf_errmsg(de));
5710 }
5711 if (ret == DW_DLV_ERROR)
5712 warnx("dwarf_next_cu_header: %s", dwarf_errmsg(de));
5713 }
5714
5715 static void
dump_dwarf_pubnames(struct readelf * re)5716 dump_dwarf_pubnames(struct readelf *re)
5717 {
5718 struct section *s;
5719 Dwarf_Off die_off;
5720 Dwarf_Unsigned offset, length, nt_cu_offset, nt_cu_length;
5721 Dwarf_Signed cnt;
5722 Dwarf_Global *globs;
5723 Dwarf_Half nt_version;
5724 Dwarf_Error de;
5725 Elf_Data *d;
5726 char *glob_name;
5727 int i, dwarf_size, elferr;
5728
5729 printf("\nContents of the .debug_pubnames section:\n");
5730
5731 s = NULL;
5732 for (i = 0; (size_t) i < re->shnum; i++) {
5733 s = &re->sl[i];
5734 if (s->name != NULL && !strcmp(s->name, ".debug_pubnames"))
5735 break;
5736 }
5737 if ((size_t) i >= re->shnum)
5738 return;
5739
5740 (void) elf_errno();
5741 if ((d = elf_getdata(s->scn, NULL)) == NULL) {
5742 elferr = elf_errno();
5743 if (elferr != 0)
5744 warnx("elf_getdata failed: %s", elf_errmsg(-1));
5745 return;
5746 }
5747 if (d->d_size <= 0)
5748 return;
5749
5750 /* Read in .debug_pubnames section table header. */
5751 offset = 0;
5752 length = re->dw_read(d, &offset, 4);
5753 if (length == 0xffffffff) {
5754 dwarf_size = 8;
5755 length = re->dw_read(d, &offset, 8);
5756 } else
5757 dwarf_size = 4;
5758
5759 if (length > d->d_size - offset) {
5760 warnx("invalid .dwarf_pubnames section");
5761 return;
5762 }
5763
5764 nt_version = re->dw_read(d, &offset, 2);
5765 nt_cu_offset = re->dw_read(d, &offset, dwarf_size);
5766 nt_cu_length = re->dw_read(d, &offset, dwarf_size);
5767 printf(" Length:\t\t\t\t%ju\n", (uintmax_t) length);
5768 printf(" Version:\t\t\t\t%u\n", nt_version);
5769 printf(" Offset into .debug_info section:\t%ju\n",
5770 (uintmax_t) nt_cu_offset);
5771 printf(" Size of area in .debug_info section:\t%ju\n",
5772 (uintmax_t) nt_cu_length);
5773
5774 if (dwarf_get_globals(re->dbg, &globs, &cnt, &de) != DW_DLV_OK) {
5775 warnx("dwarf_get_globals failed: %s", dwarf_errmsg(de));
5776 return;
5777 }
5778
5779 printf("\n Offset Name\n");
5780 for (i = 0; i < cnt; i++) {
5781 if (dwarf_globname(globs[i], &glob_name, &de) != DW_DLV_OK) {
5782 warnx("dwarf_globname failed: %s", dwarf_errmsg(de));
5783 continue;
5784 }
5785 if (dwarf_global_die_offset(globs[i], &die_off, &de) !=
5786 DW_DLV_OK) {
5787 warnx("dwarf_global_die_offset failed: %s",
5788 dwarf_errmsg(de));
5789 continue;
5790 }
5791 printf(" %-11ju %s\n", (uintmax_t) die_off, glob_name);
5792 }
5793 }
5794
5795 static void
dump_dwarf_aranges(struct readelf * re)5796 dump_dwarf_aranges(struct readelf *re)
5797 {
5798 struct section *s;
5799 Dwarf_Arange *aranges;
5800 Dwarf_Addr start;
5801 Dwarf_Unsigned offset, length, as_cu_offset;
5802 Dwarf_Off die_off;
5803 Dwarf_Signed cnt;
5804 Dwarf_Half as_version, as_addrsz, as_segsz;
5805 Dwarf_Error de;
5806 Elf_Data *d;
5807 int i, dwarf_size, elferr;
5808
5809 printf("\nContents of section .debug_aranges:\n");
5810
5811 s = NULL;
5812 for (i = 0; (size_t) i < re->shnum; i++) {
5813 s = &re->sl[i];
5814 if (s->name != NULL && !strcmp(s->name, ".debug_aranges"))
5815 break;
5816 }
5817 if ((size_t) i >= re->shnum)
5818 return;
5819
5820 (void) elf_errno();
5821 if ((d = elf_getdata(s->scn, NULL)) == NULL) {
5822 elferr = elf_errno();
5823 if (elferr != 0)
5824 warnx("elf_getdata failed: %s", elf_errmsg(-1));
5825 return;
5826 }
5827 if (d->d_size <= 0)
5828 return;
5829
5830 /* Read in the .debug_aranges section table header. */
5831 offset = 0;
5832 length = re->dw_read(d, &offset, 4);
5833 if (length == 0xffffffff) {
5834 dwarf_size = 8;
5835 length = re->dw_read(d, &offset, 8);
5836 } else
5837 dwarf_size = 4;
5838
5839 if (length > d->d_size - offset) {
5840 warnx("invalid .dwarf_aranges section");
5841 return;
5842 }
5843
5844 as_version = re->dw_read(d, &offset, 2);
5845 as_cu_offset = re->dw_read(d, &offset, dwarf_size);
5846 as_addrsz = re->dw_read(d, &offset, 1);
5847 as_segsz = re->dw_read(d, &offset, 1);
5848
5849 printf(" Length:\t\t\t%ju\n", (uintmax_t) length);
5850 printf(" Version:\t\t\t%u\n", as_version);
5851 printf(" Offset into .debug_info:\t%ju\n", (uintmax_t) as_cu_offset);
5852 printf(" Pointer Size:\t\t\t%u\n", as_addrsz);
5853 printf(" Segment Size:\t\t\t%u\n", as_segsz);
5854
5855 if (dwarf_get_aranges(re->dbg, &aranges, &cnt, &de) != DW_DLV_OK) {
5856 warnx("dwarf_get_aranges failed: %s", dwarf_errmsg(de));
5857 return;
5858 }
5859
5860 printf("\n Address Length\n");
5861 for (i = 0; i < cnt; i++) {
5862 if (dwarf_get_arange_info(aranges[i], &start, &length,
5863 &die_off, &de) != DW_DLV_OK) {
5864 warnx("dwarf_get_arange_info failed: %s",
5865 dwarf_errmsg(de));
5866 continue;
5867 }
5868 printf(" %08jx %ju\n", (uintmax_t) start,
5869 (uintmax_t) length);
5870 }
5871 }
5872
5873 static void
dump_dwarf_ranges_foreach(struct readelf * re,Dwarf_Die die,Dwarf_Addr base)5874 dump_dwarf_ranges_foreach(struct readelf *re, Dwarf_Die die, Dwarf_Addr base)
5875 {
5876 Dwarf_Attribute *attr_list;
5877 Dwarf_Ranges *ranges;
5878 Dwarf_Die ret_die;
5879 Dwarf_Error de;
5880 Dwarf_Addr base0;
5881 Dwarf_Half attr;
5882 Dwarf_Signed attr_count, cnt;
5883 Dwarf_Unsigned bytecnt;
5884 Dwarf_Off off;
5885 int i, j, ret;
5886
5887 if ((ret = dwarf_attrlist(die, &attr_list, &attr_count, &de)) !=
5888 DW_DLV_OK) {
5889 if (ret == DW_DLV_ERROR)
5890 warnx("dwarf_attrlist failed: %s", dwarf_errmsg(de));
5891 goto cont_search;
5892 }
5893
5894 for (i = 0; i < attr_count; i++) {
5895 if (dwarf_whatattr(attr_list[i], &attr, &de) != DW_DLV_OK) {
5896 warnx("dwarf_whatattr failed: %s", dwarf_errmsg(de));
5897 continue;
5898 }
5899 if (attr != DW_AT_ranges)
5900 continue;
5901 if (dwarf_global_formref(attr_list[i], &off, &de) != DW_DLV_OK) {
5902 warnx("dwarf_global_formref failed: %s",
5903 dwarf_errmsg(de));
5904 continue;
5905 }
5906 if (dwarf_get_ranges(re->dbg, off, &ranges, &cnt,
5907 &bytecnt, &de) != DW_DLV_OK)
5908 continue;
5909 base0 = base;
5910 for (j = 0; j < cnt; j++) {
5911 printf(" %08jx ", (uintmax_t) off);
5912 if (ranges[j].dwr_type == DW_RANGES_END) {
5913 printf("%s\n", "<End of list>");
5914 continue;
5915 } else if (ranges[j].dwr_type ==
5916 DW_RANGES_ADDRESS_SELECTION) {
5917 base0 = ranges[j].dwr_addr2;
5918 continue;
5919 }
5920 if (re->ec == ELFCLASS32)
5921 printf("%08jx %08jx\n",
5922 (uintmax_t) (ranges[j].dwr_addr1 + base0),
5923 (uintmax_t) (ranges[j].dwr_addr2 + base0));
5924 else
5925 printf("%016jx %016jx\n",
5926 (uintmax_t) (ranges[j].dwr_addr1 + base0),
5927 (uintmax_t) (ranges[j].dwr_addr2 + base0));
5928 }
5929 }
5930
5931 cont_search:
5932 /* Search children. */
5933 ret = dwarf_child(die, &ret_die, &de);
5934 if (ret == DW_DLV_ERROR)
5935 warnx("dwarf_child: %s", dwarf_errmsg(de));
5936 else if (ret == DW_DLV_OK)
5937 dump_dwarf_ranges_foreach(re, ret_die, base);
5938
5939 /* Search sibling. */
5940 ret = dwarf_siblingof(re->dbg, die, &ret_die, &de);
5941 if (ret == DW_DLV_ERROR)
5942 warnx("dwarf_siblingof: %s", dwarf_errmsg(de));
5943 else if (ret == DW_DLV_OK)
5944 dump_dwarf_ranges_foreach(re, ret_die, base);
5945
5946 dwarf_dealloc(re->dbg, die, DW_DLA_DIE);
5947 }
5948
5949 static void
dump_dwarf_ranges(struct readelf * re)5950 dump_dwarf_ranges(struct readelf *re)
5951 {
5952 Dwarf_Ranges *ranges;
5953 Dwarf_Die die;
5954 Dwarf_Signed cnt;
5955 Dwarf_Unsigned bytecnt;
5956 Dwarf_Half tag;
5957 Dwarf_Error de;
5958 Dwarf_Unsigned lowpc;
5959 int ret;
5960
5961 if (dwarf_get_ranges(re->dbg, 0, &ranges, &cnt, &bytecnt, &de) !=
5962 DW_DLV_OK)
5963 return;
5964
5965 printf("Contents of the .debug_ranges section:\n\n");
5966 if (re->ec == ELFCLASS32)
5967 printf(" %-8s %-8s %s\n", "Offset", "Begin", "End");
5968 else
5969 printf(" %-8s %-16s %s\n", "Offset", "Begin", "End");
5970
5971 while ((ret = dwarf_next_cu_header(re->dbg, NULL, NULL, NULL, NULL,
5972 NULL, &de)) == DW_DLV_OK) {
5973 die = NULL;
5974 if (dwarf_siblingof(re->dbg, die, &die, &de) != DW_DLV_OK)
5975 continue;
5976 if (dwarf_tag(die, &tag, &de) != DW_DLV_OK) {
5977 warnx("dwarf_tag failed: %s", dwarf_errmsg(de));
5978 continue;
5979 }
5980 /* XXX: What about DW_TAG_partial_unit? */
5981 lowpc = 0;
5982 if (tag == DW_TAG_compile_unit) {
5983 if (dwarf_attrval_unsigned(die, DW_AT_low_pc, &lowpc,
5984 &de) != DW_DLV_OK)
5985 lowpc = 0;
5986 }
5987
5988 dump_dwarf_ranges_foreach(re, die, (Dwarf_Addr) lowpc);
5989 }
5990 putchar('\n');
5991 }
5992
5993 static void
dump_dwarf_macinfo(struct readelf * re)5994 dump_dwarf_macinfo(struct readelf *re)
5995 {
5996 Dwarf_Unsigned offset;
5997 Dwarf_Signed cnt;
5998 Dwarf_Macro_Details *md;
5999 Dwarf_Error de;
6000 const char *mi_str;
6001 char unk_mi[32];
6002 int i;
6003
6004 #define _MAX_MACINFO_ENTRY 65535
6005
6006 printf("\nContents of section .debug_macinfo:\n\n");
6007
6008 offset = 0;
6009 while (dwarf_get_macro_details(re->dbg, offset, _MAX_MACINFO_ENTRY,
6010 &cnt, &md, &de) == DW_DLV_OK) {
6011 for (i = 0; i < cnt; i++) {
6012 offset = md[i].dmd_offset + 1;
6013 if (md[i].dmd_type == 0)
6014 break;
6015 if (dwarf_get_MACINFO_name(md[i].dmd_type, &mi_str) !=
6016 DW_DLV_OK) {
6017 snprintf(unk_mi, sizeof(unk_mi),
6018 "[Unknown MACINFO: %#x]", md[i].dmd_type);
6019 mi_str = unk_mi;
6020 }
6021 printf(" %s", mi_str);
6022 switch (md[i].dmd_type) {
6023 case DW_MACINFO_define:
6024 case DW_MACINFO_undef:
6025 printf(" - lineno : %jd macro : %s\n",
6026 (intmax_t) md[i].dmd_lineno,
6027 md[i].dmd_macro);
6028 break;
6029 case DW_MACINFO_start_file:
6030 printf(" - lineno : %jd filenum : %jd\n",
6031 (intmax_t) md[i].dmd_lineno,
6032 (intmax_t) md[i].dmd_fileindex);
6033 break;
6034 default:
6035 putchar('\n');
6036 break;
6037 }
6038 }
6039 }
6040
6041 #undef _MAX_MACINFO_ENTRY
6042 }
6043
6044 static void
dump_dwarf_frame_inst(struct readelf * re,Dwarf_Cie cie,uint8_t * insts,Dwarf_Unsigned len,Dwarf_Unsigned caf,Dwarf_Signed daf,Dwarf_Addr pc,Dwarf_Debug dbg)6045 dump_dwarf_frame_inst(struct readelf *re, Dwarf_Cie cie, uint8_t *insts,
6046 Dwarf_Unsigned len, Dwarf_Unsigned caf, Dwarf_Signed daf, Dwarf_Addr pc,
6047 Dwarf_Debug dbg)
6048 {
6049 Dwarf_Frame_Op *oplist;
6050 Dwarf_Signed opcnt, delta;
6051 Dwarf_Small op;
6052 Dwarf_Error de;
6053 const char *op_str;
6054 char unk_op[32];
6055 int i;
6056
6057 if (dwarf_expand_frame_instructions(cie, insts, len, &oplist,
6058 &opcnt, &de) != DW_DLV_OK) {
6059 warnx("dwarf_expand_frame_instructions failed: %s",
6060 dwarf_errmsg(de));
6061 return;
6062 }
6063
6064 for (i = 0; i < opcnt; i++) {
6065 if (oplist[i].fp_base_op != 0)
6066 op = oplist[i].fp_base_op << 6;
6067 else
6068 op = oplist[i].fp_extended_op;
6069 if (dwarf_get_CFA_name(op, &op_str) != DW_DLV_OK) {
6070 snprintf(unk_op, sizeof(unk_op), "[Unknown CFA: %#x]",
6071 op);
6072 op_str = unk_op;
6073 }
6074 printf(" %s", op_str);
6075 switch (op) {
6076 case DW_CFA_advance_loc:
6077 delta = oplist[i].fp_offset * caf;
6078 pc += delta;
6079 printf(": %ju to %08jx", (uintmax_t) delta,
6080 (uintmax_t) pc);
6081 break;
6082 case DW_CFA_offset:
6083 case DW_CFA_offset_extended:
6084 case DW_CFA_offset_extended_sf:
6085 delta = oplist[i].fp_offset * daf;
6086 printf(": r%u (%s) at cfa%+jd", oplist[i].fp_register,
6087 dwarf_regname(re, oplist[i].fp_register),
6088 (intmax_t) delta);
6089 break;
6090 case DW_CFA_restore:
6091 printf(": r%u (%s)", oplist[i].fp_register,
6092 dwarf_regname(re, oplist[i].fp_register));
6093 break;
6094 case DW_CFA_set_loc:
6095 pc = oplist[i].fp_offset;
6096 printf(": to %08jx", (uintmax_t) pc);
6097 break;
6098 case DW_CFA_advance_loc1:
6099 case DW_CFA_advance_loc2:
6100 case DW_CFA_advance_loc4:
6101 pc += oplist[i].fp_offset;
6102 printf(": %jd to %08jx", (intmax_t) oplist[i].fp_offset,
6103 (uintmax_t) pc);
6104 break;
6105 case DW_CFA_def_cfa:
6106 printf(": r%u (%s) ofs %ju", oplist[i].fp_register,
6107 dwarf_regname(re, oplist[i].fp_register),
6108 (uintmax_t) oplist[i].fp_offset);
6109 break;
6110 case DW_CFA_def_cfa_sf:
6111 printf(": r%u (%s) ofs %jd", oplist[i].fp_register,
6112 dwarf_regname(re, oplist[i].fp_register),
6113 (intmax_t) (oplist[i].fp_offset * daf));
6114 break;
6115 case DW_CFA_def_cfa_register:
6116 printf(": r%u (%s)", oplist[i].fp_register,
6117 dwarf_regname(re, oplist[i].fp_register));
6118 break;
6119 case DW_CFA_def_cfa_offset:
6120 printf(": %ju", (uintmax_t) oplist[i].fp_offset);
6121 break;
6122 case DW_CFA_def_cfa_offset_sf:
6123 printf(": %jd", (intmax_t) (oplist[i].fp_offset * daf));
6124 break;
6125 default:
6126 break;
6127 }
6128 putchar('\n');
6129 }
6130
6131 dwarf_dealloc(dbg, oplist, DW_DLA_FRAME_BLOCK);
6132 }
6133
6134 static char *
get_regoff_str(struct readelf * re,Dwarf_Half reg,Dwarf_Addr off)6135 get_regoff_str(struct readelf *re, Dwarf_Half reg, Dwarf_Addr off)
6136 {
6137 static char rs[16];
6138
6139 if (reg == DW_FRAME_UNDEFINED_VAL || reg == DW_FRAME_REG_INITIAL_VALUE)
6140 snprintf(rs, sizeof(rs), "%c", 'u');
6141 else if (reg == DW_FRAME_CFA_COL)
6142 snprintf(rs, sizeof(rs), "c%+jd", (intmax_t) off);
6143 else
6144 snprintf(rs, sizeof(rs), "%s%+jd", dwarf_regname(re, reg),
6145 (intmax_t) off);
6146
6147 return (rs);
6148 }
6149
6150 static int
dump_dwarf_frame_regtable(struct readelf * re,Dwarf_Fde fde,Dwarf_Addr pc,Dwarf_Unsigned func_len,Dwarf_Half cie_ra)6151 dump_dwarf_frame_regtable(struct readelf *re, Dwarf_Fde fde, Dwarf_Addr pc,
6152 Dwarf_Unsigned func_len, Dwarf_Half cie_ra)
6153 {
6154 Dwarf_Regtable rt;
6155 Dwarf_Addr row_pc, end_pc, pre_pc, cur_pc;
6156 Dwarf_Error de;
6157 char *vec;
6158 int i;
6159
6160 #define BIT_SET(v, n) (v[(n)>>3] |= 1U << ((n) & 7))
6161 #define BIT_CLR(v, n) (v[(n)>>3] &= ~(1U << ((n) & 7)))
6162 #define BIT_ISSET(v, n) (v[(n)>>3] & (1U << ((n) & 7)))
6163 #define RT(x) rt.rules[(x)]
6164
6165 vec = calloc((DW_REG_TABLE_SIZE + 7) / 8, 1);
6166 if (vec == NULL)
6167 err(EXIT_FAILURE, "calloc failed");
6168
6169 pre_pc = ~((Dwarf_Addr) 0);
6170 cur_pc = pc;
6171 end_pc = pc + func_len;
6172 for (; cur_pc < end_pc; cur_pc++) {
6173 if (dwarf_get_fde_info_for_all_regs(fde, cur_pc, &rt, &row_pc,
6174 &de) != DW_DLV_OK) {
6175 free(vec);
6176 warnx("dwarf_get_fde_info_for_all_regs failed: %s\n",
6177 dwarf_errmsg(de));
6178 return (-1);
6179 }
6180 if (row_pc == pre_pc)
6181 continue;
6182 pre_pc = row_pc;
6183 for (i = 1; i < DW_REG_TABLE_SIZE; i++) {
6184 if (rt.rules[i].dw_regnum != DW_FRAME_REG_INITIAL_VALUE)
6185 BIT_SET(vec, i);
6186 }
6187 }
6188
6189 printf(" LOC CFA ");
6190 for (i = 1; i < DW_REG_TABLE_SIZE; i++) {
6191 if (BIT_ISSET(vec, i)) {
6192 if ((Dwarf_Half) i == cie_ra)
6193 printf("ra ");
6194 else
6195 printf("%-5s",
6196 dwarf_regname(re, (unsigned int) i));
6197 }
6198 }
6199 putchar('\n');
6200
6201 pre_pc = ~((Dwarf_Addr) 0);
6202 cur_pc = pc;
6203 end_pc = pc + func_len;
6204 for (; cur_pc < end_pc; cur_pc++) {
6205 if (dwarf_get_fde_info_for_all_regs(fde, cur_pc, &rt, &row_pc,
6206 &de) != DW_DLV_OK) {
6207 free(vec);
6208 warnx("dwarf_get_fde_info_for_all_regs failed: %s\n",
6209 dwarf_errmsg(de));
6210 return (-1);
6211 }
6212 if (row_pc == pre_pc)
6213 continue;
6214 pre_pc = row_pc;
6215 printf("%08jx ", (uintmax_t) row_pc);
6216 printf("%-8s ", get_regoff_str(re, RT(0).dw_regnum,
6217 RT(0).dw_offset));
6218 for (i = 1; i < DW_REG_TABLE_SIZE; i++) {
6219 if (BIT_ISSET(vec, i)) {
6220 printf("%-5s", get_regoff_str(re,
6221 RT(i).dw_regnum, RT(i).dw_offset));
6222 }
6223 }
6224 putchar('\n');
6225 }
6226
6227 free(vec);
6228
6229 return (0);
6230
6231 #undef BIT_SET
6232 #undef BIT_CLR
6233 #undef BIT_ISSET
6234 #undef RT
6235 }
6236
6237 static void
dump_dwarf_frame_section(struct readelf * re,struct section * s,int alt)6238 dump_dwarf_frame_section(struct readelf *re, struct section *s, int alt)
6239 {
6240 Dwarf_Cie *cie_list, cie, pre_cie;
6241 Dwarf_Fde *fde_list, fde;
6242 Dwarf_Off cie_offset, fde_offset;
6243 Dwarf_Unsigned cie_length, fde_instlen;
6244 Dwarf_Unsigned cie_caf, cie_daf, cie_instlen, func_len, fde_length;
6245 Dwarf_Signed cie_count, fde_count, cie_index;
6246 Dwarf_Addr low_pc;
6247 Dwarf_Half cie_ra;
6248 Dwarf_Small cie_version;
6249 Dwarf_Ptr fde_addr, fde_inst, cie_inst;
6250 char *cie_aug, c;
6251 int i, ret, eh_frame;
6252 Dwarf_Error de;
6253
6254 printf("\nThe section %s contains:\n\n", s->name);
6255
6256 if (!strcmp(s->name, ".debug_frame")) {
6257 eh_frame = 0;
6258 if (dwarf_get_fde_list(re->dbg, &cie_list, &cie_count,
6259 &fde_list, &fde_count, &de) != DW_DLV_OK) {
6260 warnx("dwarf_get_fde_list failed: %s",
6261 dwarf_errmsg(de));
6262 return;
6263 }
6264 } else if (!strcmp(s->name, ".eh_frame")) {
6265 eh_frame = 1;
6266 ret = dwarf_get_fde_list_eh(re->dbg, &cie_list, &cie_count,
6267 &fde_list, &fde_count, &de);
6268 if (ret != DW_DLV_OK) {
6269 if (ret == DW_DLV_ERROR) {
6270 warnx("dwarf_get_fde_list_eh failed: %s",
6271 dwarf_errmsg(de));
6272 }
6273 return;
6274 }
6275 } else
6276 return;
6277
6278 pre_cie = NULL;
6279 for (i = 0; i < fde_count; i++) {
6280 if (dwarf_get_fde_n(fde_list, i, &fde, &de) != DW_DLV_OK) {
6281 warnx("dwarf_get_fde_n failed: %s", dwarf_errmsg(de));
6282 continue;
6283 }
6284 if (dwarf_get_cie_of_fde(fde, &cie, &de) != DW_DLV_OK) {
6285 warnx("dwarf_get_fde_n failed: %s", dwarf_errmsg(de));
6286 continue;
6287 }
6288 if (dwarf_get_fde_range(fde, &low_pc, &func_len, &fde_addr,
6289 &fde_length, &cie_offset, &cie_index, &fde_offset,
6290 &de) != DW_DLV_OK) {
6291 warnx("dwarf_get_fde_range failed: %s",
6292 dwarf_errmsg(de));
6293 continue;
6294 }
6295 if (dwarf_get_fde_instr_bytes(fde, &fde_inst, &fde_instlen,
6296 &de) != DW_DLV_OK) {
6297 warnx("dwarf_get_fde_instr_bytes failed: %s",
6298 dwarf_errmsg(de));
6299 continue;
6300 }
6301 if (pre_cie == NULL || cie != pre_cie) {
6302 pre_cie = cie;
6303 if (dwarf_get_cie_info(cie, &cie_length, &cie_version,
6304 &cie_aug, &cie_caf, &cie_daf, &cie_ra,
6305 &cie_inst, &cie_instlen, &de) != DW_DLV_OK) {
6306 warnx("dwarf_get_cie_info failed: %s",
6307 dwarf_errmsg(de));
6308 continue;
6309 }
6310 printf("%08jx %08jx %8.8jx CIE",
6311 (uintmax_t) cie_offset,
6312 (uintmax_t) cie_length,
6313 (uintmax_t) (eh_frame ? 0 : ~0U));
6314 if (!alt) {
6315 putchar('\n');
6316 printf(" Version:\t\t\t%u\n", cie_version);
6317 printf(" Augmentation:\t\t\t\"");
6318 while ((c = *cie_aug++) != '\0')
6319 putchar(c);
6320 printf("\"\n");
6321 printf(" Code alignment factor:\t%ju\n",
6322 (uintmax_t) cie_caf);
6323 printf(" Data alignment factor:\t%jd\n",
6324 (intmax_t) cie_daf);
6325 printf(" Return address column:\t%ju\n",
6326 (uintmax_t) cie_ra);
6327 putchar('\n');
6328 dump_dwarf_frame_inst(re, cie, cie_inst,
6329 cie_instlen, cie_caf, cie_daf, 0,
6330 re->dbg);
6331 putchar('\n');
6332 } else {
6333 printf(" \"");
6334 while ((c = *cie_aug++) != '\0')
6335 putchar(c);
6336 putchar('"');
6337 printf(" cf=%ju df=%jd ra=%ju\n",
6338 (uintmax_t) cie_caf,
6339 (uintmax_t) cie_daf,
6340 (uintmax_t) cie_ra);
6341 dump_dwarf_frame_regtable(re, fde, low_pc, 1,
6342 cie_ra);
6343 putchar('\n');
6344 }
6345 }
6346 printf("%08jx %08jx %08jx FDE cie=%08jx pc=%08jx..%08jx\n",
6347 (uintmax_t) fde_offset, (uintmax_t) fde_length,
6348 (uintmax_t) cie_offset,
6349 (uintmax_t) (eh_frame ? fde_offset + 4 - cie_offset :
6350 cie_offset),
6351 (uintmax_t) low_pc, (uintmax_t) (low_pc + func_len));
6352 if (!alt)
6353 dump_dwarf_frame_inst(re, cie, fde_inst, fde_instlen,
6354 cie_caf, cie_daf, low_pc, re->dbg);
6355 else
6356 dump_dwarf_frame_regtable(re, fde, low_pc, func_len,
6357 cie_ra);
6358 putchar('\n');
6359 }
6360 }
6361
6362 static void
dump_dwarf_frame(struct readelf * re,int alt)6363 dump_dwarf_frame(struct readelf *re, int alt)
6364 {
6365 struct section *s;
6366 int i;
6367
6368 (void) dwarf_set_frame_cfa_value(re->dbg, DW_FRAME_CFA_COL);
6369
6370 for (i = 0; (size_t) i < re->shnum; i++) {
6371 s = &re->sl[i];
6372 if (s->name != NULL && (!strcmp(s->name, ".debug_frame") ||
6373 !strcmp(s->name, ".eh_frame")))
6374 dump_dwarf_frame_section(re, s, alt);
6375 }
6376 }
6377
6378 static void
dump_dwarf_str(struct readelf * re)6379 dump_dwarf_str(struct readelf *re)
6380 {
6381 struct section *s;
6382 Elf_Data *d;
6383 unsigned char *p;
6384 int elferr, end, i, j;
6385
6386 printf("\nContents of section .debug_str:\n");
6387
6388 s = NULL;
6389 for (i = 0; (size_t) i < re->shnum; i++) {
6390 s = &re->sl[i];
6391 if (s->name != NULL && !strcmp(s->name, ".debug_str"))
6392 break;
6393 }
6394 if ((size_t) i >= re->shnum)
6395 return;
6396
6397 (void) elf_errno();
6398 if ((d = elf_getdata(s->scn, NULL)) == NULL) {
6399 elferr = elf_errno();
6400 if (elferr != 0)
6401 warnx("elf_getdata failed: %s", elf_errmsg(-1));
6402 return;
6403 }
6404 if (d->d_size <= 0)
6405 return;
6406
6407 for (i = 0, p = d->d_buf; (size_t) i < d->d_size; i += 16) {
6408 printf(" 0x%08x", (unsigned int) i);
6409 if ((size_t) i + 16 > d->d_size)
6410 end = d->d_size;
6411 else
6412 end = i + 16;
6413 for (j = i; j < i + 16; j++) {
6414 if ((j - i) % 4 == 0)
6415 putchar(' ');
6416 if (j >= end) {
6417 printf(" ");
6418 continue;
6419 }
6420 printf("%02x", (uint8_t) p[j]);
6421 }
6422 putchar(' ');
6423 for (j = i; j < end; j++) {
6424 if (isprint(p[j]))
6425 putchar(p[j]);
6426 else if (p[j] == 0)
6427 putchar('.');
6428 else
6429 putchar(' ');
6430 }
6431 putchar('\n');
6432 }
6433 }
6434
6435 static int
loc_at_comparator(const void * la1,const void * la2)6436 loc_at_comparator(const void *la1, const void *la2)
6437 {
6438 const struct loc_at *left, *right;
6439
6440 left = (const struct loc_at *)la1;
6441 right = (const struct loc_at *)la2;
6442
6443 if (left->la_off > right->la_off)
6444 return (1);
6445 else if (left->la_off < right->la_off)
6446 return (-1);
6447 else
6448 return (0);
6449 }
6450
6451 static void
search_loclist_at(struct readelf * re,Dwarf_Die die,Dwarf_Unsigned lowpc,struct loc_at ** la_list,size_t * la_list_len,size_t * la_list_cap)6452 search_loclist_at(struct readelf *re, Dwarf_Die die, Dwarf_Unsigned lowpc,
6453 struct loc_at **la_list, size_t *la_list_len, size_t *la_list_cap)
6454 {
6455 struct loc_at *la;
6456 Dwarf_Attribute *attr_list;
6457 Dwarf_Die ret_die;
6458 Dwarf_Unsigned off;
6459 Dwarf_Off ref;
6460 Dwarf_Signed attr_count;
6461 Dwarf_Half attr, form;
6462 Dwarf_Bool is_info;
6463 Dwarf_Error de;
6464 int i, ret;
6465
6466 is_info = dwarf_get_die_infotypes_flag(die);
6467
6468 if ((ret = dwarf_attrlist(die, &attr_list, &attr_count, &de)) !=
6469 DW_DLV_OK) {
6470 if (ret == DW_DLV_ERROR)
6471 warnx("dwarf_attrlist failed: %s", dwarf_errmsg(de));
6472 goto cont_search;
6473 }
6474 for (i = 0; i < attr_count; i++) {
6475 if (dwarf_whatattr(attr_list[i], &attr, &de) != DW_DLV_OK) {
6476 warnx("dwarf_whatattr failed: %s", dwarf_errmsg(de));
6477 continue;
6478 }
6479 if (attr != DW_AT_location &&
6480 attr != DW_AT_string_length &&
6481 attr != DW_AT_return_addr &&
6482 attr != DW_AT_data_member_location &&
6483 attr != DW_AT_frame_base &&
6484 attr != DW_AT_segment &&
6485 attr != DW_AT_static_link &&
6486 attr != DW_AT_use_location &&
6487 attr != DW_AT_vtable_elem_location)
6488 continue;
6489 if (dwarf_whatform(attr_list[i], &form, &de) != DW_DLV_OK) {
6490 warnx("dwarf_whatform failed: %s", dwarf_errmsg(de));
6491 continue;
6492 }
6493 if (form == DW_FORM_data4 || form == DW_FORM_data8) {
6494 if (dwarf_formudata(attr_list[i], &off, &de) !=
6495 DW_DLV_OK) {
6496 warnx("dwarf_formudata failed: %s",
6497 dwarf_errmsg(de));
6498 continue;
6499 }
6500 } else if (form == DW_FORM_sec_offset) {
6501 if (dwarf_global_formref(attr_list[i], &ref, &de) !=
6502 DW_DLV_OK) {
6503 warnx("dwarf_global_formref failed: %s",
6504 dwarf_errmsg(de));
6505 continue;
6506 }
6507 off = ref;
6508 } else
6509 continue;
6510
6511 if (*la_list_cap == *la_list_len) {
6512 *la_list = realloc(*la_list,
6513 *la_list_cap * 2 * sizeof(**la_list));
6514 if (*la_list == NULL)
6515 err(EXIT_FAILURE, "realloc failed");
6516 *la_list_cap *= 2;
6517 }
6518 la = &((*la_list)[*la_list_len]);
6519 la->la_at = attr_list[i];
6520 la->la_off = off;
6521 la->la_lowpc = lowpc;
6522 la->la_cu_psize = re->cu_psize;
6523 la->la_cu_osize = re->cu_osize;
6524 la->la_cu_ver = re->cu_ver;
6525 (*la_list_len)++;
6526 }
6527
6528 cont_search:
6529 /* Search children. */
6530 ret = dwarf_child(die, &ret_die, &de);
6531 if (ret == DW_DLV_ERROR)
6532 warnx("dwarf_child: %s", dwarf_errmsg(de));
6533 else if (ret == DW_DLV_OK)
6534 search_loclist_at(re, ret_die, lowpc, la_list,
6535 la_list_len, la_list_cap);
6536
6537 /* Search sibling. */
6538 ret = dwarf_siblingof_b(re->dbg, die, &ret_die, is_info, &de);
6539 if (ret == DW_DLV_ERROR)
6540 warnx("dwarf_siblingof: %s", dwarf_errmsg(de));
6541 else if (ret == DW_DLV_OK)
6542 search_loclist_at(re, ret_die, lowpc, la_list,
6543 la_list_len, la_list_cap);
6544 }
6545
6546 static void
dump_dwarf_loc(struct readelf * re,Dwarf_Loc * lr)6547 dump_dwarf_loc(struct readelf *re, Dwarf_Loc *lr)
6548 {
6549 const char *op_str;
6550 char unk_op[32];
6551 uint8_t *b, n;
6552 int i;
6553
6554 if (dwarf_get_OP_name(lr->lr_atom, &op_str) !=
6555 DW_DLV_OK) {
6556 snprintf(unk_op, sizeof(unk_op),
6557 "[Unknown OP: %#x]", lr->lr_atom);
6558 op_str = unk_op;
6559 }
6560
6561 printf("%s", op_str);
6562
6563 switch (lr->lr_atom) {
6564 case DW_OP_reg0:
6565 case DW_OP_reg1:
6566 case DW_OP_reg2:
6567 case DW_OP_reg3:
6568 case DW_OP_reg4:
6569 case DW_OP_reg5:
6570 case DW_OP_reg6:
6571 case DW_OP_reg7:
6572 case DW_OP_reg8:
6573 case DW_OP_reg9:
6574 case DW_OP_reg10:
6575 case DW_OP_reg11:
6576 case DW_OP_reg12:
6577 case DW_OP_reg13:
6578 case DW_OP_reg14:
6579 case DW_OP_reg15:
6580 case DW_OP_reg16:
6581 case DW_OP_reg17:
6582 case DW_OP_reg18:
6583 case DW_OP_reg19:
6584 case DW_OP_reg20:
6585 case DW_OP_reg21:
6586 case DW_OP_reg22:
6587 case DW_OP_reg23:
6588 case DW_OP_reg24:
6589 case DW_OP_reg25:
6590 case DW_OP_reg26:
6591 case DW_OP_reg27:
6592 case DW_OP_reg28:
6593 case DW_OP_reg29:
6594 case DW_OP_reg30:
6595 case DW_OP_reg31:
6596 printf(" (%s)", dwarf_regname(re, lr->lr_atom - DW_OP_reg0));
6597 break;
6598
6599 case DW_OP_deref:
6600 case DW_OP_lit0:
6601 case DW_OP_lit1:
6602 case DW_OP_lit2:
6603 case DW_OP_lit3:
6604 case DW_OP_lit4:
6605 case DW_OP_lit5:
6606 case DW_OP_lit6:
6607 case DW_OP_lit7:
6608 case DW_OP_lit8:
6609 case DW_OP_lit9:
6610 case DW_OP_lit10:
6611 case DW_OP_lit11:
6612 case DW_OP_lit12:
6613 case DW_OP_lit13:
6614 case DW_OP_lit14:
6615 case DW_OP_lit15:
6616 case DW_OP_lit16:
6617 case DW_OP_lit17:
6618 case DW_OP_lit18:
6619 case DW_OP_lit19:
6620 case DW_OP_lit20:
6621 case DW_OP_lit21:
6622 case DW_OP_lit22:
6623 case DW_OP_lit23:
6624 case DW_OP_lit24:
6625 case DW_OP_lit25:
6626 case DW_OP_lit26:
6627 case DW_OP_lit27:
6628 case DW_OP_lit28:
6629 case DW_OP_lit29:
6630 case DW_OP_lit30:
6631 case DW_OP_lit31:
6632 case DW_OP_dup:
6633 case DW_OP_drop:
6634 case DW_OP_over:
6635 case DW_OP_swap:
6636 case DW_OP_rot:
6637 case DW_OP_xderef:
6638 case DW_OP_abs:
6639 case DW_OP_and:
6640 case DW_OP_div:
6641 case DW_OP_minus:
6642 case DW_OP_mod:
6643 case DW_OP_mul:
6644 case DW_OP_neg:
6645 case DW_OP_not:
6646 case DW_OP_or:
6647 case DW_OP_plus:
6648 case DW_OP_shl:
6649 case DW_OP_shr:
6650 case DW_OP_shra:
6651 case DW_OP_xor:
6652 case DW_OP_eq:
6653 case DW_OP_ge:
6654 case DW_OP_gt:
6655 case DW_OP_le:
6656 case DW_OP_lt:
6657 case DW_OP_ne:
6658 case DW_OP_nop:
6659 case DW_OP_push_object_address:
6660 case DW_OP_form_tls_address:
6661 case DW_OP_call_frame_cfa:
6662 case DW_OP_stack_value:
6663 case DW_OP_GNU_push_tls_address:
6664 case DW_OP_GNU_uninit:
6665 break;
6666
6667 case DW_OP_const1u:
6668 case DW_OP_pick:
6669 case DW_OP_deref_size:
6670 case DW_OP_xderef_size:
6671 case DW_OP_const2u:
6672 case DW_OP_bra:
6673 case DW_OP_skip:
6674 case DW_OP_const4u:
6675 case DW_OP_const8u:
6676 case DW_OP_constu:
6677 case DW_OP_plus_uconst:
6678 case DW_OP_regx:
6679 case DW_OP_piece:
6680 printf(": %ju", (uintmax_t)
6681 lr->lr_number);
6682 break;
6683
6684 case DW_OP_const1s:
6685 case DW_OP_const2s:
6686 case DW_OP_const4s:
6687 case DW_OP_const8s:
6688 case DW_OP_consts:
6689 printf(": %jd", (intmax_t)
6690 lr->lr_number);
6691 break;
6692
6693 case DW_OP_breg0:
6694 case DW_OP_breg1:
6695 case DW_OP_breg2:
6696 case DW_OP_breg3:
6697 case DW_OP_breg4:
6698 case DW_OP_breg5:
6699 case DW_OP_breg6:
6700 case DW_OP_breg7:
6701 case DW_OP_breg8:
6702 case DW_OP_breg9:
6703 case DW_OP_breg10:
6704 case DW_OP_breg11:
6705 case DW_OP_breg12:
6706 case DW_OP_breg13:
6707 case DW_OP_breg14:
6708 case DW_OP_breg15:
6709 case DW_OP_breg16:
6710 case DW_OP_breg17:
6711 case DW_OP_breg18:
6712 case DW_OP_breg19:
6713 case DW_OP_breg20:
6714 case DW_OP_breg21:
6715 case DW_OP_breg22:
6716 case DW_OP_breg23:
6717 case DW_OP_breg24:
6718 case DW_OP_breg25:
6719 case DW_OP_breg26:
6720 case DW_OP_breg27:
6721 case DW_OP_breg28:
6722 case DW_OP_breg29:
6723 case DW_OP_breg30:
6724 case DW_OP_breg31:
6725 printf(" (%s): %jd",
6726 dwarf_regname(re, lr->lr_atom - DW_OP_breg0),
6727 (intmax_t) lr->lr_number);
6728 break;
6729
6730 case DW_OP_fbreg:
6731 printf(": %jd", (intmax_t)
6732 lr->lr_number);
6733 break;
6734
6735 case DW_OP_bregx:
6736 printf(": %ju (%s) %jd",
6737 (uintmax_t) lr->lr_number,
6738 dwarf_regname(re, (unsigned int) lr->lr_number),
6739 (intmax_t) lr->lr_number2);
6740 break;
6741
6742 case DW_OP_addr:
6743 case DW_OP_GNU_encoded_addr:
6744 printf(": %#jx", (uintmax_t)
6745 lr->lr_number);
6746 break;
6747
6748 case DW_OP_GNU_implicit_pointer:
6749 printf(": <0x%jx> %jd", (uintmax_t) lr->lr_number,
6750 (intmax_t) lr->lr_number2);
6751 break;
6752
6753 case DW_OP_implicit_value:
6754 printf(": %ju byte block:", (uintmax_t) lr->lr_number);
6755 b = (uint8_t *)(uintptr_t) lr->lr_number2;
6756 for (i = 0; (Dwarf_Unsigned) i < lr->lr_number; i++)
6757 printf(" %x", b[i]);
6758 break;
6759
6760 case DW_OP_GNU_entry_value:
6761 printf(": (");
6762 dump_dwarf_block(re, (uint8_t *)(uintptr_t) lr->lr_number2,
6763 lr->lr_number);
6764 putchar(')');
6765 break;
6766
6767 case DW_OP_GNU_const_type:
6768 printf(": <0x%jx> ", (uintmax_t) lr->lr_number);
6769 b = (uint8_t *)(uintptr_t) lr->lr_number2;
6770 n = *b;
6771 for (i = 1; (uint8_t) i < n; i++)
6772 printf(" %x", b[i]);
6773 break;
6774
6775 case DW_OP_GNU_regval_type:
6776 printf(": %ju (%s) <0x%jx>", (uintmax_t) lr->lr_number,
6777 dwarf_regname(re, (unsigned int) lr->lr_number),
6778 (uintmax_t) lr->lr_number2);
6779 break;
6780
6781 case DW_OP_GNU_convert:
6782 case DW_OP_GNU_deref_type:
6783 case DW_OP_GNU_parameter_ref:
6784 case DW_OP_GNU_reinterpret:
6785 printf(": <0x%jx>", (uintmax_t) lr->lr_number);
6786 break;
6787
6788 default:
6789 break;
6790 }
6791 }
6792
6793 static void
dump_dwarf_block(struct readelf * re,uint8_t * b,Dwarf_Unsigned len)6794 dump_dwarf_block(struct readelf *re, uint8_t *b, Dwarf_Unsigned len)
6795 {
6796 Dwarf_Locdesc *llbuf;
6797 Dwarf_Signed lcnt;
6798 Dwarf_Error de;
6799 int i;
6800
6801 if (dwarf_loclist_from_expr_b(re->dbg, b, len, re->cu_psize,
6802 re->cu_osize, re->cu_ver, &llbuf, &lcnt, &de) != DW_DLV_OK) {
6803 warnx("dwarf_loclist_form_expr_b: %s", dwarf_errmsg(de));
6804 return;
6805 }
6806
6807 for (i = 0; (Dwarf_Half) i < llbuf->ld_cents; i++) {
6808 dump_dwarf_loc(re, &llbuf->ld_s[i]);
6809 if (i < llbuf->ld_cents - 1)
6810 printf("; ");
6811 }
6812
6813 dwarf_dealloc(re->dbg, llbuf->ld_s, DW_DLA_LOC_BLOCK);
6814 dwarf_dealloc(re->dbg, llbuf, DW_DLA_LOCDESC);
6815 }
6816
6817 static void
dump_dwarf_loclist(struct readelf * re)6818 dump_dwarf_loclist(struct readelf *re)
6819 {
6820 Dwarf_Die die;
6821 Dwarf_Locdesc **llbuf;
6822 Dwarf_Unsigned lowpc;
6823 Dwarf_Signed lcnt;
6824 Dwarf_Half tag, version, pointer_size, off_size;
6825 Dwarf_Error de;
6826 struct loc_at *la_list, *left, *right, *la;
6827 size_t la_list_len, la_list_cap;
6828 unsigned int duplicates, k;
6829 int i, j, ret, has_content;
6830
6831 la_list_len = 0;
6832 la_list_cap = 200;
6833 if ((la_list = calloc(la_list_cap, sizeof(struct loc_at))) == NULL)
6834 errx(EXIT_FAILURE, "calloc failed");
6835 /* Search .debug_info section. */
6836 while ((ret = dwarf_next_cu_header_b(re->dbg, NULL, &version, NULL,
6837 &pointer_size, &off_size, NULL, NULL, &de)) == DW_DLV_OK) {
6838 set_cu_context(re, pointer_size, off_size, version);
6839 die = NULL;
6840 if (dwarf_siblingof(re->dbg, die, &die, &de) != DW_DLV_OK)
6841 continue;
6842 if (dwarf_tag(die, &tag, &de) != DW_DLV_OK) {
6843 warnx("dwarf_tag failed: %s", dwarf_errmsg(de));
6844 continue;
6845 }
6846 /* XXX: What about DW_TAG_partial_unit? */
6847 lowpc = 0;
6848 if (tag == DW_TAG_compile_unit) {
6849 if (dwarf_attrval_unsigned(die, DW_AT_low_pc,
6850 &lowpc, &de) != DW_DLV_OK)
6851 lowpc = 0;
6852 }
6853
6854 /* Search attributes for reference to .debug_loc section. */
6855 search_loclist_at(re, die, lowpc, &la_list,
6856 &la_list_len, &la_list_cap);
6857 }
6858 if (ret == DW_DLV_ERROR)
6859 warnx("dwarf_next_cu_header: %s", dwarf_errmsg(de));
6860
6861 /* Search .debug_types section. */
6862 do {
6863 while ((ret = dwarf_next_cu_header_c(re->dbg, 0, NULL,
6864 &version, NULL, &pointer_size, &off_size, NULL, NULL,
6865 NULL, NULL, &de)) == DW_DLV_OK) {
6866 set_cu_context(re, pointer_size, off_size, version);
6867 die = NULL;
6868 if (dwarf_siblingof(re->dbg, die, &die, &de) !=
6869 DW_DLV_OK)
6870 continue;
6871 if (dwarf_tag(die, &tag, &de) != DW_DLV_OK) {
6872 warnx("dwarf_tag failed: %s",
6873 dwarf_errmsg(de));
6874 continue;
6875 }
6876
6877 lowpc = 0;
6878 if (tag == DW_TAG_type_unit) {
6879 if (dwarf_attrval_unsigned(die, DW_AT_low_pc,
6880 &lowpc, &de) != DW_DLV_OK)
6881 lowpc = 0;
6882 }
6883
6884 /*
6885 * Search attributes for reference to .debug_loc
6886 * section.
6887 */
6888 search_loclist_at(re, die, lowpc, &la_list,
6889 &la_list_len, &la_list_cap);
6890 }
6891 if (ret == DW_DLV_ERROR)
6892 warnx("dwarf_next_cu_header: %s", dwarf_errmsg(de));
6893 } while (dwarf_next_types_section(re->dbg, &de) == DW_DLV_OK);
6894
6895 if (la_list_len == 0) {
6896 free(la_list);
6897 return;
6898 }
6899
6900 /* Sort la_list using loc_at_comparator. */
6901 qsort(la_list, la_list_len, sizeof(struct loc_at), loc_at_comparator);
6902
6903 /* Get rid of the duplicates in la_list. */
6904 duplicates = 0;
6905 for (k = 1; k < la_list_len; ++k) {
6906 left = &la_list[k - 1 - duplicates];
6907 right = &la_list[k];
6908
6909 if (left->la_off == right->la_off)
6910 duplicates++;
6911 else
6912 la_list[k - duplicates] = *right;
6913 }
6914 la_list_len -= duplicates;
6915
6916 has_content = 0;
6917 for (k = 0; k < la_list_len; ++k) {
6918 la = &la_list[k];
6919 if ((ret = dwarf_loclist_n(la->la_at, &llbuf, &lcnt, &de)) !=
6920 DW_DLV_OK) {
6921 if (ret != DW_DLV_NO_ENTRY)
6922 warnx("dwarf_loclist_n failed: %s",
6923 dwarf_errmsg(de));
6924 continue;
6925 }
6926 if (!has_content) {
6927 has_content = 1;
6928 printf("\nContents of section .debug_loc:\n");
6929 printf(" Offset Begin End Expression\n");
6930 }
6931 set_cu_context(re, la->la_cu_psize, la->la_cu_osize,
6932 la->la_cu_ver);
6933 for (i = 0; i < lcnt; i++) {
6934 printf(" %8.8jx ", (uintmax_t) la->la_off);
6935 if (llbuf[i]->ld_lopc == 0 && llbuf[i]->ld_hipc == 0) {
6936 printf("<End of list>\n");
6937 continue;
6938 }
6939
6940 /* TODO: handle base selection entry. */
6941
6942 printf("%8.8jx %8.8jx ",
6943 (uintmax_t) (la->la_lowpc + llbuf[i]->ld_lopc),
6944 (uintmax_t) (la->la_lowpc + llbuf[i]->ld_hipc));
6945
6946 putchar('(');
6947 for (j = 0; (Dwarf_Half) j < llbuf[i]->ld_cents; j++) {
6948 dump_dwarf_loc(re, &llbuf[i]->ld_s[j]);
6949 if (j < llbuf[i]->ld_cents - 1)
6950 printf("; ");
6951 }
6952 putchar(')');
6953
6954 if (llbuf[i]->ld_lopc == llbuf[i]->ld_hipc)
6955 printf(" (start == end)");
6956 putchar('\n');
6957 }
6958 for (i = 0; i < lcnt; i++) {
6959 dwarf_dealloc(re->dbg, llbuf[i]->ld_s,
6960 DW_DLA_LOC_BLOCK);
6961 dwarf_dealloc(re->dbg, llbuf[i], DW_DLA_LOCDESC);
6962 }
6963 dwarf_dealloc(re->dbg, llbuf, DW_DLA_LIST);
6964 }
6965
6966 if (!has_content)
6967 printf("\nSection '.debug_loc' has no debugging data.\n");
6968
6969 free(la_list);
6970 }
6971
6972 /*
6973 * Retrieve a string using string table section index and the string offset.
6974 */
6975 static const char*
get_string(struct readelf * re,int strtab,size_t off)6976 get_string(struct readelf *re, int strtab, size_t off)
6977 {
6978 const char *name;
6979
6980 if ((name = elf_strptr(re->elf, strtab, off)) == NULL)
6981 return ("");
6982
6983 return (name);
6984 }
6985
6986 /*
6987 * Retrieve the name of a symbol using the section index of the symbol
6988 * table and the index of the symbol within that table.
6989 */
6990 static const char *
get_symbol_name(struct readelf * re,int symtab,int i)6991 get_symbol_name(struct readelf *re, int symtab, int i)
6992 {
6993 struct section *s;
6994 const char *name;
6995 GElf_Sym sym;
6996 Elf_Data *data;
6997 int elferr;
6998
6999 s = &re->sl[symtab];
7000 if (s->type != SHT_SYMTAB && s->type != SHT_DYNSYM)
7001 return ("");
7002 (void) elf_errno();
7003 if ((data = elf_getdata(s->scn, NULL)) == NULL) {
7004 elferr = elf_errno();
7005 if (elferr != 0)
7006 warnx("elf_getdata failed: %s", elf_errmsg(elferr));
7007 return ("");
7008 }
7009 if (gelf_getsym(data, i, &sym) != &sym)
7010 return ("");
7011 /* Return section name for STT_SECTION symbol. */
7012 if (GELF_ST_TYPE(sym.st_info) == STT_SECTION) {
7013 if (sym.st_shndx < re->shnum &&
7014 re->sl[sym.st_shndx].name != NULL)
7015 return (re->sl[sym.st_shndx].name);
7016 return ("");
7017 }
7018 if (s->link >= re->shnum ||
7019 (name = elf_strptr(re->elf, s->link, sym.st_name)) == NULL)
7020 return ("");
7021
7022 return (name);
7023 }
7024
7025 static uint64_t
get_symbol_value(struct readelf * re,int symtab,int i)7026 get_symbol_value(struct readelf *re, int symtab, int i)
7027 {
7028 struct section *s;
7029 GElf_Sym sym;
7030 Elf_Data *data;
7031 int elferr;
7032
7033 s = &re->sl[symtab];
7034 if (s->type != SHT_SYMTAB && s->type != SHT_DYNSYM)
7035 return (0);
7036 (void) elf_errno();
7037 if ((data = elf_getdata(s->scn, NULL)) == NULL) {
7038 elferr = elf_errno();
7039 if (elferr != 0)
7040 warnx("elf_getdata failed: %s", elf_errmsg(elferr));
7041 return (0);
7042 }
7043 if (gelf_getsym(data, i, &sym) != &sym)
7044 return (0);
7045
7046 return (sym.st_value);
7047 }
7048
7049 /*
7050 * Decompress a data section if needed (using ZLIB).
7051 * Returns true if sucessful, false otherwise.
7052 */
decompress_section(struct section * s,unsigned char * compressed_data_buffer,size_t compressed_size,unsigned char ** ret_buf,size_t * ret_sz)7053 static bool decompress_section(struct section *s,
7054 unsigned char *compressed_data_buffer, size_t compressed_size,
7055 unsigned char **ret_buf, size_t *ret_sz)
7056 {
7057 GElf_Shdr sh;
7058
7059 if (gelf_getshdr(s->scn, &sh) == NULL)
7060 errx(EXIT_FAILURE, "gelf_getshdr() failed: %s", elf_errmsg(-1));
7061
7062 if (sh.sh_flags & SHF_COMPRESSED) {
7063 int ret;
7064 GElf_Chdr chdr;
7065 Elf64_Xword inflated_size;
7066 unsigned char *uncompressed_data_buffer = NULL;
7067 Elf64_Xword uncompressed_size;
7068 z_stream strm;
7069
7070 if (gelf_getchdr(s->scn, &chdr) == NULL)
7071 errx(EXIT_FAILURE, "gelf_getchdr() failed: %s", elf_errmsg(-1));
7072 if (chdr.ch_type != ELFCOMPRESS_ZLIB) {
7073 warnx("unknown compression type: %d", chdr.ch_type);
7074 return (false);
7075 }
7076
7077 inflated_size = 0;
7078 uncompressed_size = chdr.ch_size;
7079 uncompressed_data_buffer = malloc(uncompressed_size);
7080 compressed_data_buffer += sizeof(chdr);
7081 compressed_size -= sizeof(chdr);
7082
7083 strm.zalloc = Z_NULL;
7084 strm.zfree = Z_NULL;
7085 strm.opaque = Z_NULL;
7086 strm.avail_in = compressed_size;
7087 strm.avail_out = uncompressed_size;
7088 ret = inflateInit(&strm);
7089
7090 if (ret != Z_OK)
7091 goto fail;
7092 /*
7093 * The section can contain several compressed buffers,
7094 * so decompress in a loop until all data is inflated.
7095 */
7096 while (inflated_size < compressed_size) {
7097 strm.next_in = compressed_data_buffer + inflated_size;
7098 strm.next_out = uncompressed_data_buffer + inflated_size;
7099 ret = inflate(&strm, Z_FINISH);
7100 if (ret != Z_STREAM_END)
7101 goto fail;
7102 inflated_size = uncompressed_size - strm.avail_out;
7103 ret = inflateReset(&strm);
7104 if (ret != Z_OK)
7105 goto fail;
7106 }
7107 if (strm.avail_out != 0)
7108 warnx("Warning: wrong info in compression header.");
7109 ret = inflateEnd(&strm);
7110 if (ret != Z_OK)
7111 goto fail;
7112 *ret_buf = uncompressed_data_buffer;
7113 *ret_sz = uncompressed_size;
7114 return (true);
7115 fail:
7116 inflateEnd(&strm);
7117 if (strm.msg)
7118 warnx("%s", strm.msg);
7119 else
7120 warnx("ZLIB error: %d", ret);
7121 free(uncompressed_data_buffer);
7122 return (false);
7123 }
7124 return (false);
7125 }
7126
7127 static void
hex_dump(struct readelf * re)7128 hex_dump(struct readelf *re)
7129 {
7130 struct section *s;
7131 Elf_Data *d;
7132 uint8_t *buf, *new_buf;
7133 size_t sz, nbytes;
7134 uint64_t addr;
7135 int elferr, i, j;
7136
7137 for (i = 1; (size_t) i < re->shnum; i++) {
7138 new_buf = NULL;
7139 s = &re->sl[i];
7140 if (find_dumpop(re, (size_t) i, s->name, HEX_DUMP, -1) == NULL)
7141 continue;
7142 (void) elf_errno();
7143 if ((d = elf_getdata(s->scn, NULL)) == NULL &&
7144 (d = elf_rawdata(s->scn, NULL)) == NULL) {
7145 elferr = elf_errno();
7146 if (elferr != 0)
7147 warnx("elf_getdata failed: %s",
7148 elf_errmsg(elferr));
7149 continue;
7150 }
7151 (void) elf_errno();
7152 if (d->d_size <= 0 || d->d_buf == NULL) {
7153 printf("\nSection '%s' has no data to dump.\n",
7154 s->name);
7155 continue;
7156 }
7157 buf = d->d_buf;
7158 sz = d->d_size;
7159 addr = s->addr;
7160 if (re->options & RE_Z) {
7161 if (decompress_section(s, d->d_buf, d->d_size,
7162 &new_buf, &sz))
7163 buf = new_buf;
7164 }
7165 printf("\nHex dump of section '%s':\n", s->name);
7166 while (sz > 0) {
7167 printf(" 0x%8.8jx ", (uintmax_t)addr);
7168 nbytes = sz > 16? 16 : sz;
7169 for (j = 0; j < 16; j++) {
7170 if ((size_t)j < nbytes)
7171 printf("%2.2x", buf[j]);
7172 else
7173 printf(" ");
7174 if ((j & 3) == 3)
7175 printf(" ");
7176 }
7177 for (j = 0; (size_t)j < nbytes; j++) {
7178 if (isprint(buf[j]))
7179 printf("%c", buf[j]);
7180 else
7181 printf(".");
7182 }
7183 printf("\n");
7184 buf += nbytes;
7185 addr += nbytes;
7186 sz -= nbytes;
7187 }
7188 free(new_buf);
7189 }
7190 }
7191
7192 static void
str_dump(struct readelf * re)7193 str_dump(struct readelf *re)
7194 {
7195 struct section *s;
7196 Elf_Data *d;
7197 unsigned char *start, *end, *buf_end, *new_buf;
7198 unsigned int len;
7199 size_t sz;
7200 int i, j, elferr, found;
7201
7202 for (i = 1; (size_t) i < re->shnum; i++) {
7203 new_buf = NULL;
7204 s = &re->sl[i];
7205 if (find_dumpop(re, (size_t) i, s->name, STR_DUMP, -1) == NULL)
7206 continue;
7207 (void) elf_errno();
7208 if ((d = elf_getdata(s->scn, NULL)) == NULL &&
7209 (d = elf_rawdata(s->scn, NULL)) == NULL) {
7210 elferr = elf_errno();
7211 if (elferr != 0)
7212 warnx("elf_getdata failed: %s",
7213 elf_errmsg(elferr));
7214 continue;
7215 }
7216 (void) elf_errno();
7217 if (d->d_size <= 0 || d->d_buf == NULL) {
7218 printf("\nSection '%s' has no data to dump.\n",
7219 s->name);
7220 continue;
7221 }
7222 found = 0;
7223 start = d->d_buf;
7224 sz = d->d_size;
7225 if (re->options & RE_Z) {
7226 if (decompress_section(s, d->d_buf, d->d_size,
7227 &new_buf, &sz))
7228 start = new_buf;
7229 }
7230 buf_end = start + sz;
7231 printf("\nString dump of section '%s':\n", s->name);
7232 for (;;) {
7233 while (start < buf_end && !isprint(*start))
7234 start++;
7235 if (start >= buf_end)
7236 break;
7237 end = start + 1;
7238 while (end < buf_end && isprint(*end))
7239 end++;
7240 printf(" [%6lx] ",
7241 (long) (start - (unsigned char *) d->d_buf));
7242 len = end - start;
7243 for (j = 0; (unsigned int) j < len; j++)
7244 putchar(start[j]);
7245 putchar('\n');
7246 found = 1;
7247 if (end >= buf_end)
7248 break;
7249 start = end + 1;
7250 }
7251 free(new_buf);
7252 if (!found)
7253 printf(" No strings found in this section.");
7254 putchar('\n');
7255 }
7256 }
7257
7258 static void
load_sections(struct readelf * re)7259 load_sections(struct readelf *re)
7260 {
7261 struct section *s;
7262 const char *name;
7263 Elf_Scn *scn;
7264 GElf_Shdr sh;
7265 size_t shstrndx, ndx;
7266 int elferr;
7267
7268 /* Allocate storage for internal section list. */
7269 if (!elf_getshnum(re->elf, &re->shnum)) {
7270 warnx("elf_getshnum failed: %s", elf_errmsg(-1));
7271 return;
7272 }
7273 if (re->sl != NULL)
7274 free(re->sl);
7275 if ((re->sl = calloc(re->shnum, sizeof(*re->sl))) == NULL)
7276 err(EXIT_FAILURE, "calloc failed");
7277
7278 /* Get the index of .shstrtab section. */
7279 if (!elf_getshstrndx(re->elf, &shstrndx)) {
7280 warnx("elf_getshstrndx failed: %s", elf_errmsg(-1));
7281 return;
7282 }
7283
7284 if ((scn = elf_getscn(re->elf, 0)) == NULL)
7285 return;
7286
7287 (void) elf_errno();
7288 do {
7289 if (gelf_getshdr(scn, &sh) == NULL) {
7290 warnx("gelf_getshdr failed: %s", elf_errmsg(-1));
7291 (void) elf_errno();
7292 continue;
7293 }
7294 if ((name = elf_strptr(re->elf, shstrndx, sh.sh_name)) == NULL) {
7295 (void) elf_errno();
7296 name = "<no-name>";
7297 }
7298 if ((ndx = elf_ndxscn(scn)) == SHN_UNDEF) {
7299 if ((elferr = elf_errno()) != 0) {
7300 warnx("elf_ndxscn failed: %s",
7301 elf_errmsg(elferr));
7302 continue;
7303 }
7304 }
7305 if (ndx >= re->shnum) {
7306 warnx("section index of '%s' out of range", name);
7307 continue;
7308 }
7309 if (sh.sh_link >= re->shnum)
7310 warnx("section link %llu of '%s' out of range",
7311 (unsigned long long)sh.sh_link, name);
7312 s = &re->sl[ndx];
7313 s->name = name;
7314 s->scn = scn;
7315 s->off = sh.sh_offset;
7316 s->sz = sh.sh_size;
7317 s->entsize = sh.sh_entsize;
7318 s->align = sh.sh_addralign;
7319 s->type = sh.sh_type;
7320 s->flags = sh.sh_flags;
7321 s->addr = sh.sh_addr;
7322 s->link = sh.sh_link;
7323 s->info = sh.sh_info;
7324 } while ((scn = elf_nextscn(re->elf, scn)) != NULL);
7325 elferr = elf_errno();
7326 if (elferr != 0)
7327 warnx("elf_nextscn failed: %s", elf_errmsg(elferr));
7328 }
7329
7330 static void
unload_sections(struct readelf * re)7331 unload_sections(struct readelf *re)
7332 {
7333
7334 if (re->sl != NULL) {
7335 free(re->sl);
7336 re->sl = NULL;
7337 }
7338 re->shnum = 0;
7339 re->vd_s = NULL;
7340 re->vn_s = NULL;
7341 re->vs_s = NULL;
7342 re->vs = NULL;
7343 re->vs_sz = 0;
7344 if (re->ver != NULL) {
7345 free(re->ver);
7346 re->ver = NULL;
7347 re->ver_sz = 0;
7348 }
7349 }
7350
7351 static bool
dump_elf(struct readelf * re)7352 dump_elf(struct readelf *re)
7353 {
7354
7355 /* Fetch ELF header. No need to continue if it fails. */
7356 if (gelf_getehdr(re->elf, &re->ehdr) == NULL) {
7357 warnx("gelf_getehdr failed: %s", elf_errmsg(-1));
7358 return (false);
7359 }
7360 if ((re->ec = gelf_getclass(re->elf)) == ELFCLASSNONE) {
7361 warnx("gelf_getclass failed: %s", elf_errmsg(-1));
7362 return (false);
7363 }
7364 if (re->ehdr.e_ident[EI_DATA] == ELFDATA2MSB) {
7365 re->dw_read = _read_msb;
7366 re->dw_decode = _decode_msb;
7367 } else {
7368 re->dw_read = _read_lsb;
7369 re->dw_decode = _decode_lsb;
7370 }
7371
7372 if (re->options & ~RE_H)
7373 load_sections(re);
7374 if ((re->options & RE_VV) || (re->options & RE_S))
7375 search_ver(re);
7376 if (re->options & RE_H)
7377 dump_ehdr(re);
7378 if (re->options & RE_L)
7379 dump_phdr(re);
7380 if (re->options & RE_SS)
7381 dump_shdr(re);
7382 if (re->options & RE_G)
7383 dump_section_groups(re);
7384 if (re->options & RE_D)
7385 dump_dynamic(re);
7386 if (re->options & RE_R)
7387 dump_reloc(re);
7388 if (re->options & RE_S)
7389 dump_symtabs(re);
7390 if (re->options & RE_N)
7391 dump_notes(re);
7392 if (re->options & RE_II)
7393 dump_hash(re);
7394 if (re->options & RE_X)
7395 hex_dump(re);
7396 if (re->options & RE_P)
7397 str_dump(re);
7398 if (re->options & RE_VV)
7399 dump_ver(re);
7400 if (re->options & RE_AA)
7401 dump_arch_specific_info(re);
7402 if (re->options & RE_W)
7403 dump_dwarf(re);
7404 if (re->options & ~RE_H)
7405 unload_sections(re);
7406 return (true);
7407 }
7408
7409 static void
dump_dwarf(struct readelf * re)7410 dump_dwarf(struct readelf *re)
7411 {
7412 Dwarf_Error de;
7413 int error;
7414
7415 if (dwarf_elf_init(re->elf, DW_DLC_READ, NULL, NULL, &re->dbg, &de)) {
7416 if ((error = dwarf_errno(de)) != DW_DLE_DEBUG_INFO_NULL)
7417 errx(EXIT_FAILURE, "dwarf_elf_init failed: %s",
7418 dwarf_errmsg(de));
7419 return;
7420 }
7421
7422 if (re->dop & DW_A)
7423 dump_dwarf_abbrev(re);
7424 if (re->dop & DW_L)
7425 dump_dwarf_line(re);
7426 if (re->dop & DW_LL)
7427 dump_dwarf_line_decoded(re);
7428 if (re->dop & DW_I) {
7429 dump_dwarf_info(re, 0);
7430 dump_dwarf_info(re, 1);
7431 }
7432 if (re->dop & DW_P)
7433 dump_dwarf_pubnames(re);
7434 if (re->dop & DW_R)
7435 dump_dwarf_aranges(re);
7436 if (re->dop & DW_RR)
7437 dump_dwarf_ranges(re);
7438 if (re->dop & DW_M)
7439 dump_dwarf_macinfo(re);
7440 if (re->dop & DW_F)
7441 dump_dwarf_frame(re, 0);
7442 else if (re->dop & DW_FF)
7443 dump_dwarf_frame(re, 1);
7444 if (re->dop & DW_S)
7445 dump_dwarf_str(re);
7446 if (re->dop & DW_O)
7447 dump_dwarf_loclist(re);
7448
7449 dwarf_finish(re->dbg, &de);
7450 }
7451
7452 static bool
dump_ar(struct readelf * re,int fd)7453 dump_ar(struct readelf *re, int fd)
7454 {
7455 Elf_Arsym *arsym;
7456 Elf_Arhdr *arhdr;
7457 Elf_Cmd cmd;
7458 Elf *e;
7459 size_t sz;
7460 off_t off;
7461 int i;
7462
7463 re->ar = re->elf;
7464
7465 if (re->options & RE_C) {
7466 if ((arsym = elf_getarsym(re->ar, &sz)) == NULL) {
7467 warnx("elf_getarsym() failed: %s", elf_errmsg(-1));
7468 goto process_members;
7469 }
7470 printf("Index of archive %s: (%ju entries)\n", re->filename,
7471 (uintmax_t) sz - 1);
7472 off = 0;
7473 for (i = 0; (size_t) i < sz; i++) {
7474 if (arsym[i].as_name == NULL)
7475 break;
7476 if (arsym[i].as_off != off) {
7477 off = arsym[i].as_off;
7478 if (elf_rand(re->ar, off) != off) {
7479 warnx("elf_rand() failed: %s",
7480 elf_errmsg(-1));
7481 continue;
7482 }
7483 if ((e = elf_begin(fd, ELF_C_READ, re->ar)) ==
7484 NULL) {
7485 warnx("elf_begin() failed: %s",
7486 elf_errmsg(-1));
7487 continue;
7488 }
7489 if ((arhdr = elf_getarhdr(e)) == NULL) {
7490 warnx("elf_getarhdr() failed: %s",
7491 elf_errmsg(-1));
7492 elf_end(e);
7493 continue;
7494 }
7495 printf("Binary %s(%s) contains:\n",
7496 re->filename, arhdr->ar_name);
7497 elf_end(e);
7498 }
7499 printf("\t%s\n", arsym[i].as_name);
7500 }
7501 if (elf_rand(re->ar, SARMAG) != SARMAG) {
7502 warnx("elf_rand() failed: %s", elf_errmsg(-1));
7503 return (false);
7504 }
7505 }
7506
7507 process_members:
7508
7509 if ((re->options & ~RE_C) == 0)
7510 return (true);
7511
7512 cmd = ELF_C_READ;
7513 while ((re->elf = elf_begin(fd, cmd, re->ar)) != NULL) {
7514 if ((arhdr = elf_getarhdr(re->elf)) == NULL) {
7515 warnx("elf_getarhdr() failed: %s", elf_errmsg(-1));
7516 goto next_member;
7517 }
7518 if (strcmp(arhdr->ar_name, "/") == 0 ||
7519 strcmp(arhdr->ar_name, "//") == 0 ||
7520 strcmp(arhdr->ar_name, "__.SYMDEF") == 0)
7521 goto next_member;
7522 printf("\nFile: %s(%s)\n", re->filename, arhdr->ar_name);
7523 dump_elf(re);
7524
7525 next_member:
7526 cmd = elf_next(re->elf);
7527 elf_end(re->elf);
7528 }
7529 re->elf = re->ar;
7530 return (true);
7531 }
7532
7533 static bool
dump_object(struct readelf * re,int fd)7534 dump_object(struct readelf *re, int fd)
7535 {
7536 bool rv = false;
7537
7538 if ((re->flags & DISPLAY_FILENAME) != 0)
7539 printf("\nFile: %s\n", re->filename);
7540
7541 if ((re->elf = elf_begin(fd, ELF_C_READ, NULL)) == NULL) {
7542 warnx("elf_begin() failed: %s", elf_errmsg(-1));
7543 goto done;
7544 }
7545
7546 switch (elf_kind(re->elf)) {
7547 case ELF_K_NONE:
7548 warnx("Not an ELF file.");
7549 goto done;
7550 case ELF_K_ELF:
7551 rv = dump_elf(re);
7552 break;
7553 case ELF_K_AR:
7554 rv = dump_ar(re, fd);
7555 break;
7556 default:
7557 warnx("Internal: libelf returned unknown elf kind.");
7558 }
7559
7560 done:
7561 elf_end(re->elf);
7562 return (rv);
7563 }
7564
7565 static void
add_dumpop(struct readelf * re,size_t si,const char * sn,int op,int t)7566 add_dumpop(struct readelf *re, size_t si, const char *sn, int op, int t)
7567 {
7568 struct dumpop *d;
7569
7570 if ((d = find_dumpop(re, si, sn, -1, t)) == NULL) {
7571 if ((d = calloc(1, sizeof(*d))) == NULL)
7572 err(EXIT_FAILURE, "calloc failed");
7573 if (t == DUMP_BY_INDEX)
7574 d->u.si = si;
7575 else
7576 d->u.sn = sn;
7577 d->type = t;
7578 d->op = op;
7579 STAILQ_INSERT_TAIL(&re->v_dumpop, d, dumpop_list);
7580 } else
7581 d->op |= op;
7582 }
7583
7584 static struct dumpop *
find_dumpop(struct readelf * re,size_t si,const char * sn,int op,int t)7585 find_dumpop(struct readelf *re, size_t si, const char *sn, int op, int t)
7586 {
7587 struct dumpop *d;
7588
7589 STAILQ_FOREACH(d, &re->v_dumpop, dumpop_list) {
7590 if ((op == -1 || op & d->op) &&
7591 (t == -1 || (unsigned) t == d->type)) {
7592 if ((d->type == DUMP_BY_INDEX && d->u.si == si) ||
7593 (d->type == DUMP_BY_NAME && !strcmp(d->u.sn, sn)))
7594 return (d);
7595 }
7596 }
7597
7598 return (NULL);
7599 }
7600
7601 static struct {
7602 const char *ln;
7603 char sn;
7604 int value;
7605 } dwarf_op[] = {
7606 {"rawline", 'l', DW_L},
7607 {"decodedline", 'L', DW_LL},
7608 {"info", 'i', DW_I},
7609 {"abbrev", 'a', DW_A},
7610 {"pubnames", 'p', DW_P},
7611 {"aranges", 'r', DW_R},
7612 {"ranges", 'r', DW_R},
7613 {"Ranges", 'R', DW_RR},
7614 {"macro", 'm', DW_M},
7615 {"frames", 'f', DW_F},
7616 {"frames-interp", 'F', DW_FF},
7617 {"str", 's', DW_S},
7618 {"loc", 'o', DW_O},
7619 {NULL, 0, 0}
7620 };
7621
7622 static void
parse_dwarf_op_short(struct readelf * re,const char * op)7623 parse_dwarf_op_short(struct readelf *re, const char *op)
7624 {
7625 int i;
7626
7627 if (op == NULL) {
7628 re->dop |= DW_DEFAULT_OPTIONS;
7629 return;
7630 }
7631
7632 for (; *op != '\0'; op++) {
7633 for (i = 0; dwarf_op[i].ln != NULL; i++) {
7634 if (dwarf_op[i].sn == *op) {
7635 re->dop |= dwarf_op[i].value;
7636 break;
7637 }
7638 }
7639 }
7640 }
7641
7642 static void
parse_dwarf_op_long(struct readelf * re,const char * op)7643 parse_dwarf_op_long(struct readelf *re, const char *op)
7644 {
7645 char *p, *token, *bp;
7646 int i;
7647
7648 if (op == NULL) {
7649 re->dop |= DW_DEFAULT_OPTIONS;
7650 return;
7651 }
7652
7653 if ((p = strdup(op)) == NULL)
7654 err(EXIT_FAILURE, "strdup failed");
7655 bp = p;
7656
7657 while ((token = strsep(&p, ",")) != NULL) {
7658 for (i = 0; dwarf_op[i].ln != NULL; i++) {
7659 if (!strcmp(token, dwarf_op[i].ln)) {
7660 re->dop |= dwarf_op[i].value;
7661 break;
7662 }
7663 }
7664 }
7665
7666 free(bp);
7667 }
7668
7669 static uint64_t
_read_lsb(Elf_Data * d,uint64_t * offsetp,int bytes_to_read)7670 _read_lsb(Elf_Data *d, uint64_t *offsetp, int bytes_to_read)
7671 {
7672 uint64_t ret;
7673 uint8_t *src;
7674
7675 src = (uint8_t *) d->d_buf + *offsetp;
7676
7677 ret = 0;
7678 switch (bytes_to_read) {
7679 case 8:
7680 ret |= ((uint64_t) src[4]) << 32 | ((uint64_t) src[5]) << 40;
7681 ret |= ((uint64_t) src[6]) << 48 | ((uint64_t) src[7]) << 56;
7682 /* FALLTHROUGH */
7683 case 4:
7684 ret |= ((uint64_t) src[2]) << 16 | ((uint64_t) src[3]) << 24;
7685 /* FALLTHROUGH */
7686 case 2:
7687 ret |= ((uint64_t) src[1]) << 8;
7688 /* FALLTHROUGH */
7689 case 1:
7690 ret |= src[0];
7691 break;
7692 default:
7693 return (0);
7694 }
7695
7696 *offsetp += bytes_to_read;
7697
7698 return (ret);
7699 }
7700
7701 static uint64_t
_read_msb(Elf_Data * d,uint64_t * offsetp,int bytes_to_read)7702 _read_msb(Elf_Data *d, uint64_t *offsetp, int bytes_to_read)
7703 {
7704 uint64_t ret;
7705 uint8_t *src;
7706
7707 src = (uint8_t *) d->d_buf + *offsetp;
7708
7709 switch (bytes_to_read) {
7710 case 1:
7711 ret = src[0];
7712 break;
7713 case 2:
7714 ret = src[1] | ((uint64_t) src[0]) << 8;
7715 break;
7716 case 4:
7717 ret = src[3] | ((uint64_t) src[2]) << 8;
7718 ret |= ((uint64_t) src[1]) << 16 | ((uint64_t) src[0]) << 24;
7719 break;
7720 case 8:
7721 ret = src[7] | ((uint64_t) src[6]) << 8;
7722 ret |= ((uint64_t) src[5]) << 16 | ((uint64_t) src[4]) << 24;
7723 ret |= ((uint64_t) src[3]) << 32 | ((uint64_t) src[2]) << 40;
7724 ret |= ((uint64_t) src[1]) << 48 | ((uint64_t) src[0]) << 56;
7725 break;
7726 default:
7727 return (0);
7728 }
7729
7730 *offsetp += bytes_to_read;
7731
7732 return (ret);
7733 }
7734
7735 static uint64_t
_decode_lsb(uint8_t ** data,int bytes_to_read)7736 _decode_lsb(uint8_t **data, int bytes_to_read)
7737 {
7738 uint64_t ret;
7739 uint8_t *src;
7740
7741 src = *data;
7742
7743 ret = 0;
7744 switch (bytes_to_read) {
7745 case 8:
7746 ret |= ((uint64_t) src[4]) << 32 | ((uint64_t) src[5]) << 40;
7747 ret |= ((uint64_t) src[6]) << 48 | ((uint64_t) src[7]) << 56;
7748 /* FALLTHROUGH */
7749 case 4:
7750 ret |= ((uint64_t) src[2]) << 16 | ((uint64_t) src[3]) << 24;
7751 /* FALLTHROUGH */
7752 case 2:
7753 ret |= ((uint64_t) src[1]) << 8;
7754 /* FALLTHROUGH */
7755 case 1:
7756 ret |= src[0];
7757 break;
7758 default:
7759 return (0);
7760 }
7761
7762 *data += bytes_to_read;
7763
7764 return (ret);
7765 }
7766
7767 static uint64_t
_decode_msb(uint8_t ** data,int bytes_to_read)7768 _decode_msb(uint8_t **data, int bytes_to_read)
7769 {
7770 uint64_t ret;
7771 uint8_t *src;
7772
7773 src = *data;
7774
7775 ret = 0;
7776 switch (bytes_to_read) {
7777 case 1:
7778 ret = src[0];
7779 break;
7780 case 2:
7781 ret = src[1] | ((uint64_t) src[0]) << 8;
7782 break;
7783 case 4:
7784 ret = src[3] | ((uint64_t) src[2]) << 8;
7785 ret |= ((uint64_t) src[1]) << 16 | ((uint64_t) src[0]) << 24;
7786 break;
7787 case 8:
7788 ret = src[7] | ((uint64_t) src[6]) << 8;
7789 ret |= ((uint64_t) src[5]) << 16 | ((uint64_t) src[4]) << 24;
7790 ret |= ((uint64_t) src[3]) << 32 | ((uint64_t) src[2]) << 40;
7791 ret |= ((uint64_t) src[1]) << 48 | ((uint64_t) src[0]) << 56;
7792 break;
7793 default:
7794 return (0);
7795 break;
7796 }
7797
7798 *data += bytes_to_read;
7799
7800 return (ret);
7801 }
7802
7803 static int64_t
_decode_sleb128(uint8_t ** dp,uint8_t * dpe)7804 _decode_sleb128(uint8_t **dp, uint8_t *dpe)
7805 {
7806 int64_t ret = 0;
7807 uint8_t b = 0;
7808 int shift = 0;
7809
7810 uint8_t *src = *dp;
7811
7812 do {
7813 if (src >= dpe)
7814 break;
7815 b = *src++;
7816 ret |= ((b & 0x7f) << shift);
7817 shift += 7;
7818 } while ((b & 0x80) != 0);
7819
7820 if (shift < 32 && (b & 0x40) != 0)
7821 ret |= (-1 << shift);
7822
7823 *dp = src;
7824
7825 return (ret);
7826 }
7827
7828 static uint64_t
_decode_uleb128(uint8_t ** dp,uint8_t * dpe)7829 _decode_uleb128(uint8_t **dp, uint8_t *dpe)
7830 {
7831 uint64_t ret = 0;
7832 uint8_t b;
7833 int shift = 0;
7834
7835 uint8_t *src = *dp;
7836
7837 do {
7838 if (src >= dpe)
7839 break;
7840 b = *src++;
7841 ret |= ((b & 0x7f) << shift);
7842 shift += 7;
7843 } while ((b & 0x80) != 0);
7844
7845 *dp = src;
7846
7847 return (ret);
7848 }
7849
7850 static void
readelf_version(void)7851 readelf_version(void)
7852 {
7853 (void) printf("%s (%s)\n", ELFTC_GETPROGNAME(),
7854 elftc_version());
7855 exit(EXIT_SUCCESS);
7856 }
7857
7858 #define USAGE_MESSAGE "\
7859 Usage: %s [options] file...\n\
7860 Display information about ELF objects and ar(1) archives.\n\n\
7861 Options:\n\
7862 -a | --all Equivalent to specifying options '-dhIlrsASV'.\n\
7863 -c | --archive-index Print the archive symbol table for archives.\n\
7864 -d | --dynamic Print the contents of SHT_DYNAMIC sections.\n\
7865 -e | --headers Print all headers in the object.\n\
7866 -g | --section-groups Print the contents of the section groups.\n\
7867 -h | --file-header Print the file header for the object.\n\
7868 -l | --program-headers Print the PHDR table for the object.\n\
7869 -n | --notes Print the contents of SHT_NOTE sections.\n\
7870 -p INDEX | --string-dump=INDEX\n\
7871 Print the contents of section at index INDEX.\n\
7872 -r | --relocs Print relocation information.\n\
7873 -s | --syms | --symbols Print symbol tables.\n\
7874 -t | --section-details Print additional information about sections.\n\
7875 -v | --version Print a version identifier and exit.\n\
7876 -w[afilmoprsFLR] | --debug-dump={abbrev,aranges,decodedline,frames,\n\
7877 frames-interp,info,loc,macro,pubnames,\n\
7878 ranges,Ranges,rawline,str}\n\
7879 Display DWARF information.\n\
7880 -x INDEX | --hex-dump=INDEX\n\
7881 Display contents of a section as hexadecimal.\n\
7882 -z | --decompress Decompress the contents of a section before displaying it.\n\
7883 -A | --arch-specific (accepted, but ignored)\n\
7884 -D | --use-dynamic Print the symbol table specified by the DT_SYMTAB\n\
7885 entry in the \".dynamic\" section.\n\
7886 -H | --help Print a help message.\n\
7887 -I | --histogram Print information on bucket list lengths for \n\
7888 hash sections.\n\
7889 -N | --full-section-name (accepted, but ignored)\n\
7890 -S | --sections | --section-headers\n\
7891 Print information about section headers.\n\
7892 -V | --version-info Print symbol versoning information.\n\
7893 -W | --wide Print information without wrapping long lines.\n"
7894
7895
7896 static void
readelf_usage(int status)7897 readelf_usage(int status)
7898 {
7899 fprintf(stderr, USAGE_MESSAGE, ELFTC_GETPROGNAME());
7900 exit(status);
7901 }
7902
7903 int
main(int argc,char ** argv)7904 main(int argc, char **argv)
7905 {
7906 cap_rights_t rights;
7907 fileargs_t *fa;
7908 struct readelf *re, re_storage;
7909 unsigned long si;
7910 int fd, opt, i, exit_code;
7911 char *ep;
7912
7913 re = &re_storage;
7914 memset(re, 0, sizeof(*re));
7915 STAILQ_INIT(&re->v_dumpop);
7916
7917 while ((opt = getopt_long(argc, argv, "AacDdegHhIi:lNnp:rSstuVvWw::x:z",
7918 longopts, NULL)) != -1) {
7919 switch(opt) {
7920 case '?':
7921 readelf_usage(EXIT_SUCCESS);
7922 break;
7923 case 'A':
7924 re->options |= RE_AA;
7925 break;
7926 case 'a':
7927 re->options |= RE_AA | RE_D | RE_G | RE_H | RE_II |
7928 RE_L | RE_N | RE_R | RE_SS | RE_S | RE_U | RE_VV;
7929 break;
7930 case 'c':
7931 re->options |= RE_C;
7932 break;
7933 case 'D':
7934 re->options |= RE_DD;
7935 break;
7936 case 'd':
7937 re->options |= RE_D;
7938 break;
7939 case 'e':
7940 re->options |= RE_H | RE_L | RE_SS;
7941 break;
7942 case 'g':
7943 re->options |= RE_G;
7944 break;
7945 case 'H':
7946 readelf_usage(EXIT_SUCCESS);
7947 break;
7948 case 'h':
7949 re->options |= RE_H;
7950 break;
7951 case 'I':
7952 re->options |= RE_II;
7953 break;
7954 case 'i':
7955 /* Not implemented yet. */
7956 break;
7957 case 'l':
7958 re->options |= RE_L;
7959 break;
7960 case 'N':
7961 re->options |= RE_NN;
7962 break;
7963 case 'n':
7964 re->options |= RE_N;
7965 break;
7966 case 'p':
7967 re->options |= RE_P;
7968 si = strtoul(optarg, &ep, 10);
7969 if (*ep == '\0')
7970 add_dumpop(re, (size_t) si, NULL, STR_DUMP,
7971 DUMP_BY_INDEX);
7972 else
7973 add_dumpop(re, 0, optarg, STR_DUMP,
7974 DUMP_BY_NAME);
7975 break;
7976 case 'r':
7977 re->options |= RE_R;
7978 break;
7979 case 'S':
7980 re->options |= RE_SS;
7981 break;
7982 case 's':
7983 re->options |= RE_S;
7984 break;
7985 case 't':
7986 re->options |= RE_SS | RE_T;
7987 break;
7988 case 'u':
7989 re->options |= RE_U;
7990 break;
7991 case 'V':
7992 re->options |= RE_VV;
7993 break;
7994 case 'v':
7995 readelf_version();
7996 break;
7997 case 'W':
7998 re->options |= RE_WW;
7999 break;
8000 case 'w':
8001 re->options |= RE_W;
8002 parse_dwarf_op_short(re, optarg);
8003 break;
8004 case 'x':
8005 re->options |= RE_X;
8006 si = strtoul(optarg, &ep, 10);
8007 if (*ep == '\0')
8008 add_dumpop(re, (size_t) si, NULL, HEX_DUMP,
8009 DUMP_BY_INDEX);
8010 else
8011 add_dumpop(re, 0, optarg, HEX_DUMP,
8012 DUMP_BY_NAME);
8013 break;
8014 case 'z':
8015 re->options |= RE_Z;
8016 break;
8017 case OPTION_DEBUG_DUMP:
8018 re->options |= RE_W;
8019 parse_dwarf_op_long(re, optarg);
8020 }
8021 }
8022
8023 argv += optind;
8024 argc -= optind;
8025
8026 if (argc == 0 || re->options == 0)
8027 readelf_usage(EXIT_FAILURE);
8028
8029 if (argc > 1)
8030 re->flags |= DISPLAY_FILENAME;
8031
8032 if (elf_version(EV_CURRENT) == EV_NONE)
8033 errx(EXIT_FAILURE, "ELF library initialization failed: %s",
8034 elf_errmsg(-1));
8035
8036 cap_rights_init(&rights, CAP_FCNTL, CAP_FSTAT, CAP_MMAP_R, CAP_SEEK);
8037 fa = fileargs_init(argc, argv, O_RDONLY, 0, &rights, FA_OPEN);
8038 if (fa == NULL)
8039 err(1, "Unable to initialize casper fileargs");
8040
8041 caph_cache_catpages();
8042 if (caph_limit_stdio() < 0) {
8043 fileargs_free(fa);
8044 err(1, "Unable to limit stdio rights");
8045 }
8046 if (caph_enter_casper() < 0) {
8047 fileargs_free(fa);
8048 err(1, "Unable to enter capability mode");
8049 }
8050
8051 exit_code = EXIT_SUCCESS;
8052 for (i = 0; i < argc; i++) {
8053 re->filename = argv[i];
8054 fd = fileargs_open(fa, re->filename);
8055 if (fd < 0) {
8056 warn("open %s failed", re->filename);
8057 exit_code = EXIT_FAILURE;
8058 } else {
8059 if (!dump_object(re, fd))
8060 exit_code = EXIT_FAILURE;
8061 close(fd);
8062 }
8063 }
8064
8065 exit(exit_code);
8066 }
8067