| xj | b04a402 | 2021-11-25 15:01:52 +0800 | [diff] [blame] | 1 | // SPDX-License-Identifier: GPL-2.0 | 
 | 2 | #include <fcntl.h> | 
 | 3 | #include <stdio.h> | 
 | 4 | #include <errno.h> | 
 | 5 | #include <string.h> | 
 | 6 | #include <unistd.h> | 
 | 7 | #include <inttypes.h> | 
 | 8 |  | 
 | 9 | #include "symbol.h" | 
 | 10 | #include "demangle-java.h" | 
 | 11 | #include "demangle-rust.h" | 
 | 12 | #include "machine.h" | 
 | 13 | #include "vdso.h" | 
 | 14 | #include "debug.h" | 
 | 15 | #include "sane_ctype.h" | 
 | 16 | #include <symbol/kallsyms.h> | 
 | 17 |  | 
 | 18 | #ifndef EM_AARCH64 | 
 | 19 | #define EM_AARCH64	183  /* ARM 64 bit */ | 
 | 20 | #endif | 
 | 21 |  | 
 | 22 | typedef Elf64_Nhdr GElf_Nhdr; | 
 | 23 |  | 
 | 24 | #ifdef HAVE_CPLUS_DEMANGLE_SUPPORT | 
 | 25 | extern char *cplus_demangle(const char *, int); | 
 | 26 |  | 
 | 27 | static inline char *bfd_demangle(void __maybe_unused *v, const char *c, int i) | 
 | 28 | { | 
 | 29 | 	return cplus_demangle(c, i); | 
 | 30 | } | 
 | 31 | #else | 
 | 32 | #ifdef NO_DEMANGLE | 
 | 33 | static inline char *bfd_demangle(void __maybe_unused *v, | 
 | 34 | 				 const char __maybe_unused *c, | 
 | 35 | 				 int __maybe_unused i) | 
 | 36 | { | 
 | 37 | 	return NULL; | 
 | 38 | } | 
 | 39 | #else | 
 | 40 | #define PACKAGE 'perf' | 
 | 41 | #include <bfd.h> | 
 | 42 | #endif | 
 | 43 | #endif | 
 | 44 |  | 
 | 45 | #ifndef HAVE_ELF_GETPHDRNUM_SUPPORT | 
 | 46 | static int elf_getphdrnum(Elf *elf, size_t *dst) | 
 | 47 | { | 
 | 48 | 	GElf_Ehdr gehdr; | 
 | 49 | 	GElf_Ehdr *ehdr; | 
 | 50 |  | 
 | 51 | 	ehdr = gelf_getehdr(elf, &gehdr); | 
 | 52 | 	if (!ehdr) | 
 | 53 | 		return -1; | 
 | 54 |  | 
 | 55 | 	*dst = ehdr->e_phnum; | 
 | 56 |  | 
 | 57 | 	return 0; | 
 | 58 | } | 
 | 59 | #endif | 
 | 60 |  | 
 | 61 | #ifndef HAVE_ELF_GETSHDRSTRNDX_SUPPORT | 
 | 62 | static int elf_getshdrstrndx(Elf *elf __maybe_unused, size_t *dst __maybe_unused) | 
 | 63 | { | 
 | 64 | 	pr_err("%s: update your libelf to > 0.140, this one lacks elf_getshdrstrndx().\n", __func__); | 
 | 65 | 	return -1; | 
 | 66 | } | 
 | 67 | #endif | 
 | 68 |  | 
 | 69 | #ifndef NT_GNU_BUILD_ID | 
 | 70 | #define NT_GNU_BUILD_ID 3 | 
 | 71 | #endif | 
 | 72 |  | 
 | 73 | /** | 
 | 74 |  * elf_symtab__for_each_symbol - iterate thru all the symbols | 
 | 75 |  * | 
 | 76 |  * @syms: struct elf_symtab instance to iterate | 
 | 77 |  * @idx: uint32_t idx | 
 | 78 |  * @sym: GElf_Sym iterator | 
 | 79 |  */ | 
 | 80 | #define elf_symtab__for_each_symbol(syms, nr_syms, idx, sym) \ | 
 | 81 | 	for (idx = 0, gelf_getsym(syms, idx, &sym);\ | 
 | 82 | 	     idx < nr_syms; \ | 
 | 83 | 	     idx++, gelf_getsym(syms, idx, &sym)) | 
 | 84 |  | 
 | 85 | static inline uint8_t elf_sym__type(const GElf_Sym *sym) | 
 | 86 | { | 
 | 87 | 	return GELF_ST_TYPE(sym->st_info); | 
 | 88 | } | 
 | 89 |  | 
 | 90 | static inline uint8_t elf_sym__visibility(const GElf_Sym *sym) | 
 | 91 | { | 
 | 92 | 	return GELF_ST_VISIBILITY(sym->st_other); | 
 | 93 | } | 
 | 94 |  | 
 | 95 | #ifndef STT_GNU_IFUNC | 
 | 96 | #define STT_GNU_IFUNC 10 | 
 | 97 | #endif | 
 | 98 |  | 
 | 99 | static inline int elf_sym__is_function(const GElf_Sym *sym) | 
 | 100 | { | 
 | 101 | 	return (elf_sym__type(sym) == STT_FUNC || | 
 | 102 | 		elf_sym__type(sym) == STT_GNU_IFUNC) && | 
 | 103 | 	       sym->st_name != 0 && | 
 | 104 | 	       sym->st_shndx != SHN_UNDEF; | 
 | 105 | } | 
 | 106 |  | 
 | 107 | static inline bool elf_sym__is_object(const GElf_Sym *sym) | 
 | 108 | { | 
 | 109 | 	return elf_sym__type(sym) == STT_OBJECT && | 
 | 110 | 		sym->st_name != 0 && | 
 | 111 | 		sym->st_shndx != SHN_UNDEF; | 
 | 112 | } | 
 | 113 |  | 
 | 114 | static inline int elf_sym__is_label(const GElf_Sym *sym) | 
 | 115 | { | 
 | 116 | 	return elf_sym__type(sym) == STT_NOTYPE && | 
 | 117 | 		sym->st_name != 0 && | 
 | 118 | 		sym->st_shndx != SHN_UNDEF && | 
 | 119 | 		sym->st_shndx != SHN_ABS && | 
 | 120 | 		elf_sym__visibility(sym) != STV_HIDDEN && | 
 | 121 | 		elf_sym__visibility(sym) != STV_INTERNAL; | 
 | 122 | } | 
 | 123 |  | 
 | 124 | static bool elf_sym__filter(GElf_Sym *sym) | 
 | 125 | { | 
 | 126 | 	return elf_sym__is_function(sym) || elf_sym__is_object(sym); | 
 | 127 | } | 
 | 128 |  | 
 | 129 | static inline const char *elf_sym__name(const GElf_Sym *sym, | 
 | 130 | 					const Elf_Data *symstrs) | 
 | 131 | { | 
 | 132 | 	return symstrs->d_buf + sym->st_name; | 
 | 133 | } | 
 | 134 |  | 
 | 135 | static inline const char *elf_sec__name(const GElf_Shdr *shdr, | 
 | 136 | 					const Elf_Data *secstrs) | 
 | 137 | { | 
 | 138 | 	return secstrs->d_buf + shdr->sh_name; | 
 | 139 | } | 
 | 140 |  | 
 | 141 | static inline int elf_sec__is_text(const GElf_Shdr *shdr, | 
 | 142 | 					const Elf_Data *secstrs) | 
 | 143 | { | 
 | 144 | 	return strstr(elf_sec__name(shdr, secstrs), "text") != NULL; | 
 | 145 | } | 
 | 146 |  | 
 | 147 | static inline bool elf_sec__is_data(const GElf_Shdr *shdr, | 
 | 148 | 				    const Elf_Data *secstrs) | 
 | 149 | { | 
 | 150 | 	return strstr(elf_sec__name(shdr, secstrs), "data") != NULL; | 
 | 151 | } | 
 | 152 |  | 
 | 153 | static bool elf_sec__filter(GElf_Shdr *shdr, Elf_Data *secstrs) | 
 | 154 | { | 
 | 155 | 	return elf_sec__is_text(shdr, secstrs) ||  | 
 | 156 | 	       elf_sec__is_data(shdr, secstrs); | 
 | 157 | } | 
 | 158 |  | 
 | 159 | static size_t elf_addr_to_index(Elf *elf, GElf_Addr addr) | 
 | 160 | { | 
 | 161 | 	Elf_Scn *sec = NULL; | 
 | 162 | 	GElf_Shdr shdr; | 
 | 163 | 	size_t cnt = 1; | 
 | 164 |  | 
 | 165 | 	while ((sec = elf_nextscn(elf, sec)) != NULL) { | 
 | 166 | 		gelf_getshdr(sec, &shdr); | 
 | 167 |  | 
 | 168 | 		if ((addr >= shdr.sh_addr) && | 
 | 169 | 		    (addr < (shdr.sh_addr + shdr.sh_size))) | 
 | 170 | 			return cnt; | 
 | 171 |  | 
 | 172 | 		++cnt; | 
 | 173 | 	} | 
 | 174 |  | 
 | 175 | 	return -1; | 
 | 176 | } | 
 | 177 |  | 
 | 178 | Elf_Scn *elf_section_by_name(Elf *elf, GElf_Ehdr *ep, | 
 | 179 | 			     GElf_Shdr *shp, const char *name, size_t *idx) | 
 | 180 | { | 
 | 181 | 	Elf_Scn *sec = NULL; | 
 | 182 | 	size_t cnt = 1; | 
 | 183 |  | 
 | 184 | 	/* Elf is corrupted/truncated, avoid calling elf_strptr. */ | 
 | 185 | 	if (!elf_rawdata(elf_getscn(elf, ep->e_shstrndx), NULL)) | 
 | 186 | 		return NULL; | 
 | 187 |  | 
 | 188 | 	while ((sec = elf_nextscn(elf, sec)) != NULL) { | 
 | 189 | 		char *str; | 
 | 190 |  | 
 | 191 | 		gelf_getshdr(sec, shp); | 
 | 192 | 		str = elf_strptr(elf, ep->e_shstrndx, shp->sh_name); | 
 | 193 | 		if (str && !strcmp(name, str)) { | 
 | 194 | 			if (idx) | 
 | 195 | 				*idx = cnt; | 
 | 196 | 			return sec; | 
 | 197 | 		} | 
 | 198 | 		++cnt; | 
 | 199 | 	} | 
 | 200 |  | 
 | 201 | 	return NULL; | 
 | 202 | } | 
 | 203 |  | 
 | 204 | static bool want_demangle(bool is_kernel_sym) | 
 | 205 | { | 
 | 206 | 	return is_kernel_sym ? symbol_conf.demangle_kernel : symbol_conf.demangle; | 
 | 207 | } | 
 | 208 |  | 
 | 209 | static char *demangle_sym(struct dso *dso, int kmodule, const char *elf_name) | 
 | 210 | { | 
 | 211 | 	int demangle_flags = verbose > 0 ? (DMGL_PARAMS | DMGL_ANSI) : DMGL_NO_OPTS; | 
 | 212 | 	char *demangled = NULL; | 
 | 213 |  | 
 | 214 | 	/* | 
 | 215 | 	 * We need to figure out if the object was created from C++ sources | 
 | 216 | 	 * DWARF DW_compile_unit has this, but we don't always have access | 
 | 217 | 	 * to it... | 
 | 218 | 	 */ | 
 | 219 | 	if (!want_demangle(dso->kernel || kmodule)) | 
 | 220 | 	    return demangled; | 
 | 221 |  | 
 | 222 | 	demangled = bfd_demangle(NULL, elf_name, demangle_flags); | 
 | 223 | 	if (demangled == NULL) | 
 | 224 | 		demangled = java_demangle_sym(elf_name, JAVA_DEMANGLE_NORET); | 
 | 225 | 	else if (rust_is_mangled(demangled)) | 
 | 226 | 		/* | 
 | 227 | 		    * Input to Rust demangling is the BFD-demangled | 
 | 228 | 		    * name which it Rust-demangles in place. | 
 | 229 | 		    */ | 
 | 230 | 		rust_demangle_sym(demangled); | 
 | 231 |  | 
 | 232 | 	return demangled; | 
 | 233 | } | 
 | 234 |  | 
 | 235 | #define elf_section__for_each_rel(reldata, pos, pos_mem, idx, nr_entries) \ | 
 | 236 | 	for (idx = 0, pos = gelf_getrel(reldata, 0, &pos_mem); \ | 
 | 237 | 	     idx < nr_entries; \ | 
 | 238 | 	     ++idx, pos = gelf_getrel(reldata, idx, &pos_mem)) | 
 | 239 |  | 
 | 240 | #define elf_section__for_each_rela(reldata, pos, pos_mem, idx, nr_entries) \ | 
 | 241 | 	for (idx = 0, pos = gelf_getrela(reldata, 0, &pos_mem); \ | 
 | 242 | 	     idx < nr_entries; \ | 
 | 243 | 	     ++idx, pos = gelf_getrela(reldata, idx, &pos_mem)) | 
 | 244 |  | 
 | 245 | /* | 
 | 246 |  * We need to check if we have a .dynsym, so that we can handle the | 
 | 247 |  * .plt, synthesizing its symbols, that aren't on the symtabs (be it | 
 | 248 |  * .dynsym or .symtab). | 
 | 249 |  * And always look at the original dso, not at debuginfo packages, that | 
 | 250 |  * have the PLT data stripped out (shdr_rel_plt.sh_type == SHT_NOBITS). | 
 | 251 |  */ | 
 | 252 | int dso__synthesize_plt_symbols(struct dso *dso, struct symsrc *ss) | 
 | 253 | { | 
 | 254 | 	uint32_t nr_rel_entries, idx; | 
 | 255 | 	GElf_Sym sym; | 
 | 256 | 	u64 plt_offset, plt_header_size, plt_entry_size; | 
 | 257 | 	GElf_Shdr shdr_plt; | 
 | 258 | 	struct symbol *f; | 
 | 259 | 	GElf_Shdr shdr_rel_plt, shdr_dynsym; | 
 | 260 | 	Elf_Data *reldata, *syms, *symstrs; | 
 | 261 | 	Elf_Scn *scn_plt_rel, *scn_symstrs, *scn_dynsym; | 
 | 262 | 	size_t dynsym_idx; | 
 | 263 | 	GElf_Ehdr ehdr; | 
 | 264 | 	char sympltname[1024]; | 
 | 265 | 	Elf *elf; | 
 | 266 | 	int nr = 0, symidx, err = 0; | 
 | 267 |  | 
 | 268 | 	if (!ss->dynsym) | 
 | 269 | 		return 0; | 
 | 270 |  | 
 | 271 | 	elf = ss->elf; | 
 | 272 | 	ehdr = ss->ehdr; | 
 | 273 |  | 
 | 274 | 	scn_dynsym = ss->dynsym; | 
 | 275 | 	shdr_dynsym = ss->dynshdr; | 
 | 276 | 	dynsym_idx = ss->dynsym_idx; | 
 | 277 |  | 
 | 278 | 	if (scn_dynsym == NULL) | 
 | 279 | 		goto out_elf_end; | 
 | 280 |  | 
 | 281 | 	scn_plt_rel = elf_section_by_name(elf, &ehdr, &shdr_rel_plt, | 
 | 282 | 					  ".rela.plt", NULL); | 
 | 283 | 	if (scn_plt_rel == NULL) { | 
 | 284 | 		scn_plt_rel = elf_section_by_name(elf, &ehdr, &shdr_rel_plt, | 
 | 285 | 						  ".rel.plt", NULL); | 
 | 286 | 		if (scn_plt_rel == NULL) | 
 | 287 | 			goto out_elf_end; | 
 | 288 | 	} | 
 | 289 |  | 
 | 290 | 	err = -1; | 
 | 291 |  | 
 | 292 | 	if (shdr_rel_plt.sh_link != dynsym_idx) | 
 | 293 | 		goto out_elf_end; | 
 | 294 |  | 
 | 295 | 	if (elf_section_by_name(elf, &ehdr, &shdr_plt, ".plt", NULL) == NULL) | 
 | 296 | 		goto out_elf_end; | 
 | 297 |  | 
 | 298 | 	/* | 
 | 299 | 	 * Fetch the relocation section to find the idxes to the GOT | 
 | 300 | 	 * and the symbols in the .dynsym they refer to. | 
 | 301 | 	 */ | 
 | 302 | 	reldata = elf_getdata(scn_plt_rel, NULL); | 
 | 303 | 	if (reldata == NULL) | 
 | 304 | 		goto out_elf_end; | 
 | 305 |  | 
 | 306 | 	syms = elf_getdata(scn_dynsym, NULL); | 
 | 307 | 	if (syms == NULL) | 
 | 308 | 		goto out_elf_end; | 
 | 309 |  | 
 | 310 | 	scn_symstrs = elf_getscn(elf, shdr_dynsym.sh_link); | 
 | 311 | 	if (scn_symstrs == NULL) | 
 | 312 | 		goto out_elf_end; | 
 | 313 |  | 
 | 314 | 	symstrs = elf_getdata(scn_symstrs, NULL); | 
 | 315 | 	if (symstrs == NULL) | 
 | 316 | 		goto out_elf_end; | 
 | 317 |  | 
 | 318 | 	if (symstrs->d_size == 0) | 
 | 319 | 		goto out_elf_end; | 
 | 320 |  | 
 | 321 | 	nr_rel_entries = shdr_rel_plt.sh_size / shdr_rel_plt.sh_entsize; | 
 | 322 | 	plt_offset = shdr_plt.sh_offset; | 
 | 323 | 	switch (ehdr.e_machine) { | 
 | 324 | 		case EM_ARM: | 
 | 325 | 			plt_header_size = 20; | 
 | 326 | 			plt_entry_size = 12; | 
 | 327 | 			break; | 
 | 328 |  | 
 | 329 | 		case EM_AARCH64: | 
 | 330 | 			plt_header_size = 32; | 
 | 331 | 			plt_entry_size = 16; | 
 | 332 | 			break; | 
 | 333 |  | 
 | 334 | 		case EM_SPARC: | 
 | 335 | 			plt_header_size = 48; | 
 | 336 | 			plt_entry_size = 12; | 
 | 337 | 			break; | 
 | 338 |  | 
 | 339 | 		case EM_SPARCV9: | 
 | 340 | 			plt_header_size = 128; | 
 | 341 | 			plt_entry_size = 32; | 
 | 342 | 			break; | 
 | 343 |  | 
 | 344 | 		default: /* FIXME: s390/alpha/mips/parisc/poperpc/sh/xtensa need to be checked */ | 
 | 345 | 			plt_header_size = shdr_plt.sh_entsize; | 
 | 346 | 			plt_entry_size = shdr_plt.sh_entsize; | 
 | 347 | 			break; | 
 | 348 | 	} | 
 | 349 | 	plt_offset += plt_header_size; | 
 | 350 |  | 
 | 351 | 	if (shdr_rel_plt.sh_type == SHT_RELA) { | 
 | 352 | 		GElf_Rela pos_mem, *pos; | 
 | 353 |  | 
 | 354 | 		elf_section__for_each_rela(reldata, pos, pos_mem, idx, | 
 | 355 | 					   nr_rel_entries) { | 
 | 356 | 			const char *elf_name = NULL; | 
 | 357 | 			char *demangled = NULL; | 
 | 358 | 			symidx = GELF_R_SYM(pos->r_info); | 
 | 359 | 			gelf_getsym(syms, symidx, &sym); | 
 | 360 |  | 
 | 361 | 			elf_name = elf_sym__name(&sym, symstrs); | 
 | 362 | 			demangled = demangle_sym(dso, 0, elf_name); | 
 | 363 | 			if (demangled != NULL) | 
 | 364 | 				elf_name = demangled; | 
 | 365 | 			snprintf(sympltname, sizeof(sympltname), | 
 | 366 | 				 "%s@plt", elf_name); | 
 | 367 | 			free(demangled); | 
 | 368 |  | 
 | 369 | 			f = symbol__new(plt_offset, plt_entry_size, | 
 | 370 | 					STB_GLOBAL, STT_FUNC, sympltname); | 
 | 371 | 			if (!f) | 
 | 372 | 				goto out_elf_end; | 
 | 373 |  | 
 | 374 | 			plt_offset += plt_entry_size; | 
 | 375 | 			symbols__insert(&dso->symbols, f); | 
 | 376 | 			++nr; | 
 | 377 | 		} | 
 | 378 | 	} else if (shdr_rel_plt.sh_type == SHT_REL) { | 
 | 379 | 		GElf_Rel pos_mem, *pos; | 
 | 380 | 		elf_section__for_each_rel(reldata, pos, pos_mem, idx, | 
 | 381 | 					  nr_rel_entries) { | 
 | 382 | 			const char *elf_name = NULL; | 
 | 383 | 			char *demangled = NULL; | 
 | 384 | 			symidx = GELF_R_SYM(pos->r_info); | 
 | 385 | 			gelf_getsym(syms, symidx, &sym); | 
 | 386 |  | 
 | 387 | 			elf_name = elf_sym__name(&sym, symstrs); | 
 | 388 | 			demangled = demangle_sym(dso, 0, elf_name); | 
 | 389 | 			if (demangled != NULL) | 
 | 390 | 				elf_name = demangled; | 
 | 391 | 			snprintf(sympltname, sizeof(sympltname), | 
 | 392 | 				 "%s@plt", elf_name); | 
 | 393 | 			free(demangled); | 
 | 394 |  | 
 | 395 | 			f = symbol__new(plt_offset, plt_entry_size, | 
 | 396 | 					STB_GLOBAL, STT_FUNC, sympltname); | 
 | 397 | 			if (!f) | 
 | 398 | 				goto out_elf_end; | 
 | 399 |  | 
 | 400 | 			plt_offset += plt_entry_size; | 
 | 401 | 			symbols__insert(&dso->symbols, f); | 
 | 402 | 			++nr; | 
 | 403 | 		} | 
 | 404 | 	} | 
 | 405 |  | 
 | 406 | 	err = 0; | 
 | 407 | out_elf_end: | 
 | 408 | 	if (err == 0) | 
 | 409 | 		return nr; | 
 | 410 | 	pr_debug("%s: problems reading %s PLT info.\n", | 
 | 411 | 		 __func__, dso->long_name); | 
 | 412 | 	return 0; | 
 | 413 | } | 
 | 414 |  | 
 | 415 | char *dso__demangle_sym(struct dso *dso, int kmodule, const char *elf_name) | 
 | 416 | { | 
 | 417 | 	return demangle_sym(dso, kmodule, elf_name); | 
 | 418 | } | 
 | 419 |  | 
 | 420 | /* | 
 | 421 |  * Align offset to 4 bytes as needed for note name and descriptor data. | 
 | 422 |  */ | 
 | 423 | #define NOTE_ALIGN(n) (((n) + 3) & -4U) | 
 | 424 |  | 
 | 425 | static int elf_read_build_id(Elf *elf, void *bf, size_t size) | 
 | 426 | { | 
 | 427 | 	int err = -1; | 
 | 428 | 	GElf_Ehdr ehdr; | 
 | 429 | 	GElf_Shdr shdr; | 
 | 430 | 	Elf_Data *data; | 
 | 431 | 	Elf_Scn *sec; | 
 | 432 | 	Elf_Kind ek; | 
 | 433 | 	void *ptr; | 
 | 434 |  | 
 | 435 | 	if (size < BUILD_ID_SIZE) | 
 | 436 | 		goto out; | 
 | 437 |  | 
 | 438 | 	ek = elf_kind(elf); | 
 | 439 | 	if (ek != ELF_K_ELF) | 
 | 440 | 		goto out; | 
 | 441 |  | 
 | 442 | 	if (gelf_getehdr(elf, &ehdr) == NULL) { | 
 | 443 | 		pr_err("%s: cannot get elf header.\n", __func__); | 
 | 444 | 		goto out; | 
 | 445 | 	} | 
 | 446 |  | 
 | 447 | 	/* | 
 | 448 | 	 * Check following sections for notes: | 
 | 449 | 	 *   '.note.gnu.build-id' | 
 | 450 | 	 *   '.notes' | 
 | 451 | 	 *   '.note' (VDSO specific) | 
 | 452 | 	 */ | 
 | 453 | 	do { | 
 | 454 | 		sec = elf_section_by_name(elf, &ehdr, &shdr, | 
 | 455 | 					  ".note.gnu.build-id", NULL); | 
 | 456 | 		if (sec) | 
 | 457 | 			break; | 
 | 458 |  | 
 | 459 | 		sec = elf_section_by_name(elf, &ehdr, &shdr, | 
 | 460 | 					  ".notes", NULL); | 
 | 461 | 		if (sec) | 
 | 462 | 			break; | 
 | 463 |  | 
 | 464 | 		sec = elf_section_by_name(elf, &ehdr, &shdr, | 
 | 465 | 					  ".note", NULL); | 
 | 466 | 		if (sec) | 
 | 467 | 			break; | 
 | 468 |  | 
 | 469 | 		return err; | 
 | 470 |  | 
 | 471 | 	} while (0); | 
 | 472 |  | 
 | 473 | 	data = elf_getdata(sec, NULL); | 
 | 474 | 	if (data == NULL) | 
 | 475 | 		goto out; | 
 | 476 |  | 
 | 477 | 	ptr = data->d_buf; | 
 | 478 | 	while (ptr < (data->d_buf + data->d_size)) { | 
 | 479 | 		GElf_Nhdr *nhdr = ptr; | 
 | 480 | 		size_t namesz = NOTE_ALIGN(nhdr->n_namesz), | 
 | 481 | 		       descsz = NOTE_ALIGN(nhdr->n_descsz); | 
 | 482 | 		const char *name; | 
 | 483 |  | 
 | 484 | 		ptr += sizeof(*nhdr); | 
 | 485 | 		name = ptr; | 
 | 486 | 		ptr += namesz; | 
 | 487 | 		if (nhdr->n_type == NT_GNU_BUILD_ID && | 
 | 488 | 		    nhdr->n_namesz == sizeof("GNU")) { | 
 | 489 | 			if (memcmp(name, "GNU", sizeof("GNU")) == 0) { | 
 | 490 | 				size_t sz = min(size, descsz); | 
 | 491 | 				memcpy(bf, ptr, sz); | 
 | 492 | 				memset(bf + sz, 0, size - sz); | 
 | 493 | 				err = descsz; | 
 | 494 | 				break; | 
 | 495 | 			} | 
 | 496 | 		} | 
 | 497 | 		ptr += descsz; | 
 | 498 | 	} | 
 | 499 |  | 
 | 500 | out: | 
 | 501 | 	return err; | 
 | 502 | } | 
 | 503 |  | 
 | 504 | int filename__read_build_id(const char *filename, void *bf, size_t size) | 
 | 505 | { | 
 | 506 | 	int fd, err = -1; | 
 | 507 | 	Elf *elf; | 
 | 508 |  | 
 | 509 | 	if (size < BUILD_ID_SIZE) | 
 | 510 | 		goto out; | 
 | 511 |  | 
 | 512 | 	fd = open(filename, O_RDONLY); | 
 | 513 | 	if (fd < 0) | 
 | 514 | 		goto out; | 
 | 515 |  | 
 | 516 | 	elf = elf_begin(fd, PERF_ELF_C_READ_MMAP, NULL); | 
 | 517 | 	if (elf == NULL) { | 
 | 518 | 		pr_debug2("%s: cannot read %s ELF file.\n", __func__, filename); | 
 | 519 | 		goto out_close; | 
 | 520 | 	} | 
 | 521 |  | 
 | 522 | 	err = elf_read_build_id(elf, bf, size); | 
 | 523 |  | 
 | 524 | 	elf_end(elf); | 
 | 525 | out_close: | 
 | 526 | 	close(fd); | 
 | 527 | out: | 
 | 528 | 	return err; | 
 | 529 | } | 
 | 530 |  | 
 | 531 | int sysfs__read_build_id(const char *filename, void *build_id, size_t size) | 
 | 532 | { | 
 | 533 | 	int fd, err = -1; | 
 | 534 |  | 
 | 535 | 	if (size < BUILD_ID_SIZE) | 
 | 536 | 		goto out; | 
 | 537 |  | 
 | 538 | 	fd = open(filename, O_RDONLY); | 
 | 539 | 	if (fd < 0) | 
 | 540 | 		goto out; | 
 | 541 |  | 
 | 542 | 	while (1) { | 
 | 543 | 		char bf[BUFSIZ]; | 
 | 544 | 		GElf_Nhdr nhdr; | 
 | 545 | 		size_t namesz, descsz; | 
 | 546 |  | 
 | 547 | 		if (read(fd, &nhdr, sizeof(nhdr)) != sizeof(nhdr)) | 
 | 548 | 			break; | 
 | 549 |  | 
 | 550 | 		namesz = NOTE_ALIGN(nhdr.n_namesz); | 
 | 551 | 		descsz = NOTE_ALIGN(nhdr.n_descsz); | 
 | 552 | 		if (nhdr.n_type == NT_GNU_BUILD_ID && | 
 | 553 | 		    nhdr.n_namesz == sizeof("GNU")) { | 
 | 554 | 			if (read(fd, bf, namesz) != (ssize_t)namesz) | 
 | 555 | 				break; | 
 | 556 | 			if (memcmp(bf, "GNU", sizeof("GNU")) == 0) { | 
 | 557 | 				size_t sz = min(descsz, size); | 
 | 558 | 				if (read(fd, build_id, sz) == (ssize_t)sz) { | 
 | 559 | 					memset(build_id + sz, 0, size - sz); | 
 | 560 | 					err = 0; | 
 | 561 | 					break; | 
 | 562 | 				} | 
 | 563 | 			} else if (read(fd, bf, descsz) != (ssize_t)descsz) | 
 | 564 | 				break; | 
 | 565 | 		} else { | 
 | 566 | 			int n = namesz + descsz; | 
 | 567 |  | 
 | 568 | 			if (n > (int)sizeof(bf)) { | 
 | 569 | 				n = sizeof(bf); | 
 | 570 | 				pr_debug("%s: truncating reading of build id in sysfs file %s: n_namesz=%u, n_descsz=%u.\n", | 
 | 571 | 					 __func__, filename, nhdr.n_namesz, nhdr.n_descsz); | 
 | 572 | 			} | 
 | 573 | 			if (read(fd, bf, n) != n) | 
 | 574 | 				break; | 
 | 575 | 		} | 
 | 576 | 	} | 
 | 577 | 	close(fd); | 
 | 578 | out: | 
 | 579 | 	return err; | 
 | 580 | } | 
 | 581 |  | 
 | 582 | int filename__read_debuglink(const char *filename, char *debuglink, | 
 | 583 | 			     size_t size) | 
 | 584 | { | 
 | 585 | 	int fd, err = -1; | 
 | 586 | 	Elf *elf; | 
 | 587 | 	GElf_Ehdr ehdr; | 
 | 588 | 	GElf_Shdr shdr; | 
 | 589 | 	Elf_Data *data; | 
 | 590 | 	Elf_Scn *sec; | 
 | 591 | 	Elf_Kind ek; | 
 | 592 |  | 
 | 593 | 	fd = open(filename, O_RDONLY); | 
 | 594 | 	if (fd < 0) | 
 | 595 | 		goto out; | 
 | 596 |  | 
 | 597 | 	elf = elf_begin(fd, PERF_ELF_C_READ_MMAP, NULL); | 
 | 598 | 	if (elf == NULL) { | 
 | 599 | 		pr_debug2("%s: cannot read %s ELF file.\n", __func__, filename); | 
 | 600 | 		goto out_close; | 
 | 601 | 	} | 
 | 602 |  | 
 | 603 | 	ek = elf_kind(elf); | 
 | 604 | 	if (ek != ELF_K_ELF) | 
 | 605 | 		goto out_elf_end; | 
 | 606 |  | 
 | 607 | 	if (gelf_getehdr(elf, &ehdr) == NULL) { | 
 | 608 | 		pr_err("%s: cannot get elf header.\n", __func__); | 
 | 609 | 		goto out_elf_end; | 
 | 610 | 	} | 
 | 611 |  | 
 | 612 | 	sec = elf_section_by_name(elf, &ehdr, &shdr, | 
 | 613 | 				  ".gnu_debuglink", NULL); | 
 | 614 | 	if (sec == NULL) | 
 | 615 | 		goto out_elf_end; | 
 | 616 |  | 
 | 617 | 	data = elf_getdata(sec, NULL); | 
 | 618 | 	if (data == NULL) | 
 | 619 | 		goto out_elf_end; | 
 | 620 |  | 
 | 621 | 	/* the start of this section is a zero-terminated string */ | 
 | 622 | 	strncpy(debuglink, data->d_buf, size); | 
 | 623 |  | 
 | 624 | 	err = 0; | 
 | 625 |  | 
 | 626 | out_elf_end: | 
 | 627 | 	elf_end(elf); | 
 | 628 | out_close: | 
 | 629 | 	close(fd); | 
 | 630 | out: | 
 | 631 | 	return err; | 
 | 632 | } | 
 | 633 |  | 
 | 634 | static int dso__swap_init(struct dso *dso, unsigned char eidata) | 
 | 635 | { | 
 | 636 | 	static unsigned int const endian = 1; | 
 | 637 |  | 
 | 638 | 	dso->needs_swap = DSO_SWAP__NO; | 
 | 639 |  | 
 | 640 | 	switch (eidata) { | 
 | 641 | 	case ELFDATA2LSB: | 
 | 642 | 		/* We are big endian, DSO is little endian. */ | 
 | 643 | 		if (*(unsigned char const *)&endian != 1) | 
 | 644 | 			dso->needs_swap = DSO_SWAP__YES; | 
 | 645 | 		break; | 
 | 646 |  | 
 | 647 | 	case ELFDATA2MSB: | 
 | 648 | 		/* We are little endian, DSO is big endian. */ | 
 | 649 | 		if (*(unsigned char const *)&endian != 0) | 
 | 650 | 			dso->needs_swap = DSO_SWAP__YES; | 
 | 651 | 		break; | 
 | 652 |  | 
 | 653 | 	default: | 
 | 654 | 		pr_err("unrecognized DSO data encoding %d\n", eidata); | 
 | 655 | 		return -EINVAL; | 
 | 656 | 	} | 
 | 657 |  | 
 | 658 | 	return 0; | 
 | 659 | } | 
 | 660 |  | 
 | 661 | bool symsrc__possibly_runtime(struct symsrc *ss) | 
 | 662 | { | 
 | 663 | 	return ss->dynsym || ss->opdsec; | 
 | 664 | } | 
 | 665 |  | 
 | 666 | bool symsrc__has_symtab(struct symsrc *ss) | 
 | 667 | { | 
 | 668 | 	return ss->symtab != NULL; | 
 | 669 | } | 
 | 670 |  | 
 | 671 | void symsrc__destroy(struct symsrc *ss) | 
 | 672 | { | 
 | 673 | 	zfree(&ss->name); | 
 | 674 | 	elf_end(ss->elf); | 
 | 675 | 	close(ss->fd); | 
 | 676 | } | 
 | 677 |  | 
 | 678 | bool __weak elf__needs_adjust_symbols(GElf_Ehdr ehdr) | 
 | 679 | { | 
 | 680 | 	return ehdr.e_type == ET_EXEC || ehdr.e_type == ET_REL; | 
 | 681 | } | 
 | 682 |  | 
 | 683 | int symsrc__init(struct symsrc *ss, struct dso *dso, const char *name, | 
 | 684 | 		 enum dso_binary_type type) | 
 | 685 | { | 
 | 686 | 	int err = -1; | 
 | 687 | 	GElf_Ehdr ehdr; | 
 | 688 | 	Elf *elf; | 
 | 689 | 	int fd; | 
 | 690 |  | 
 | 691 | 	if (dso__needs_decompress(dso)) { | 
 | 692 | 		fd = dso__decompress_kmodule_fd(dso, name); | 
 | 693 | 		if (fd < 0) | 
 | 694 | 			return -1; | 
 | 695 |  | 
 | 696 | 		type = dso->symtab_type; | 
 | 697 | 	} else { | 
 | 698 | 		fd = open(name, O_RDONLY); | 
 | 699 | 		if (fd < 0) { | 
 | 700 | 			dso->load_errno = errno; | 
 | 701 | 			return -1; | 
 | 702 | 		} | 
 | 703 | 	} | 
 | 704 |  | 
 | 705 | 	elf = elf_begin(fd, PERF_ELF_C_READ_MMAP, NULL); | 
 | 706 | 	if (elf == NULL) { | 
 | 707 | 		pr_debug("%s: cannot read %s ELF file.\n", __func__, name); | 
 | 708 | 		dso->load_errno = DSO_LOAD_ERRNO__INVALID_ELF; | 
 | 709 | 		goto out_close; | 
 | 710 | 	} | 
 | 711 |  | 
 | 712 | 	if (gelf_getehdr(elf, &ehdr) == NULL) { | 
 | 713 | 		dso->load_errno = DSO_LOAD_ERRNO__INVALID_ELF; | 
 | 714 | 		pr_debug("%s: cannot get elf header.\n", __func__); | 
 | 715 | 		goto out_elf_end; | 
 | 716 | 	} | 
 | 717 |  | 
 | 718 | 	if (dso__swap_init(dso, ehdr.e_ident[EI_DATA])) { | 
 | 719 | 		dso->load_errno = DSO_LOAD_ERRNO__INTERNAL_ERROR; | 
 | 720 | 		goto out_elf_end; | 
 | 721 | 	} | 
 | 722 |  | 
 | 723 | 	/* Always reject images with a mismatched build-id: */ | 
 | 724 | 	if (dso->has_build_id && !symbol_conf.ignore_vmlinux_buildid) { | 
 | 725 | 		u8 build_id[BUILD_ID_SIZE]; | 
 | 726 |  | 
 | 727 | 		if (elf_read_build_id(elf, build_id, BUILD_ID_SIZE) < 0) { | 
 | 728 | 			dso->load_errno = DSO_LOAD_ERRNO__CANNOT_READ_BUILDID; | 
 | 729 | 			goto out_elf_end; | 
 | 730 | 		} | 
 | 731 |  | 
 | 732 | 		if (!dso__build_id_equal(dso, build_id)) { | 
 | 733 | 			pr_debug("%s: build id mismatch for %s.\n", __func__, name); | 
 | 734 | 			dso->load_errno = DSO_LOAD_ERRNO__MISMATCHING_BUILDID; | 
 | 735 | 			goto out_elf_end; | 
 | 736 | 		} | 
 | 737 | 	} | 
 | 738 |  | 
 | 739 | 	ss->is_64_bit = (gelf_getclass(elf) == ELFCLASS64); | 
 | 740 |  | 
 | 741 | 	ss->symtab = elf_section_by_name(elf, &ehdr, &ss->symshdr, ".symtab", | 
 | 742 | 			NULL); | 
 | 743 | 	if (ss->symshdr.sh_type != SHT_SYMTAB) | 
 | 744 | 		ss->symtab = NULL; | 
 | 745 |  | 
 | 746 | 	ss->dynsym_idx = 0; | 
 | 747 | 	ss->dynsym = elf_section_by_name(elf, &ehdr, &ss->dynshdr, ".dynsym", | 
 | 748 | 			&ss->dynsym_idx); | 
 | 749 | 	if (ss->dynshdr.sh_type != SHT_DYNSYM) | 
 | 750 | 		ss->dynsym = NULL; | 
 | 751 |  | 
 | 752 | 	ss->opdidx = 0; | 
 | 753 | 	ss->opdsec = elf_section_by_name(elf, &ehdr, &ss->opdshdr, ".opd", | 
 | 754 | 			&ss->opdidx); | 
 | 755 | 	if (ss->opdshdr.sh_type != SHT_PROGBITS) | 
 | 756 | 		ss->opdsec = NULL; | 
 | 757 |  | 
 | 758 | 	if (dso->kernel == DSO_TYPE_USER) | 
 | 759 | 		ss->adjust_symbols = true; | 
 | 760 | 	else | 
 | 761 | 		ss->adjust_symbols = elf__needs_adjust_symbols(ehdr); | 
 | 762 |  | 
 | 763 | 	ss->name   = strdup(name); | 
 | 764 | 	if (!ss->name) { | 
 | 765 | 		dso->load_errno = errno; | 
 | 766 | 		goto out_elf_end; | 
 | 767 | 	} | 
 | 768 |  | 
 | 769 | 	ss->elf    = elf; | 
 | 770 | 	ss->fd     = fd; | 
 | 771 | 	ss->ehdr   = ehdr; | 
 | 772 | 	ss->type   = type; | 
 | 773 |  | 
 | 774 | 	return 0; | 
 | 775 |  | 
 | 776 | out_elf_end: | 
 | 777 | 	elf_end(elf); | 
 | 778 | out_close: | 
 | 779 | 	close(fd); | 
 | 780 | 	return err; | 
 | 781 | } | 
 | 782 |  | 
 | 783 | /** | 
 | 784 |  * ref_reloc_sym_not_found - has kernel relocation symbol been found. | 
 | 785 |  * @kmap: kernel maps and relocation reference symbol | 
 | 786 |  * | 
 | 787 |  * This function returns %true if we are dealing with the kernel maps and the | 
 | 788 |  * relocation reference symbol has not yet been found.  Otherwise %false is | 
 | 789 |  * returned. | 
 | 790 |  */ | 
 | 791 | static bool ref_reloc_sym_not_found(struct kmap *kmap) | 
 | 792 | { | 
 | 793 | 	return kmap && kmap->ref_reloc_sym && kmap->ref_reloc_sym->name && | 
 | 794 | 	       !kmap->ref_reloc_sym->unrelocated_addr; | 
 | 795 | } | 
 | 796 |  | 
 | 797 | /** | 
 | 798 |  * ref_reloc - kernel relocation offset. | 
 | 799 |  * @kmap: kernel maps and relocation reference symbol | 
 | 800 |  * | 
 | 801 |  * This function returns the offset of kernel addresses as determined by using | 
 | 802 |  * the relocation reference symbol i.e. if the kernel has not been relocated | 
 | 803 |  * then the return value is zero. | 
 | 804 |  */ | 
 | 805 | static u64 ref_reloc(struct kmap *kmap) | 
 | 806 | { | 
 | 807 | 	if (kmap && kmap->ref_reloc_sym && | 
 | 808 | 	    kmap->ref_reloc_sym->unrelocated_addr) | 
 | 809 | 		return kmap->ref_reloc_sym->addr - | 
 | 810 | 		       kmap->ref_reloc_sym->unrelocated_addr; | 
 | 811 | 	return 0; | 
 | 812 | } | 
 | 813 |  | 
 | 814 | void __weak arch__sym_update(struct symbol *s __maybe_unused, | 
 | 815 | 		GElf_Sym *sym __maybe_unused) { } | 
 | 816 |  | 
 | 817 | static int dso__process_kernel_symbol(struct dso *dso, struct map *map, | 
 | 818 | 				      GElf_Sym *sym, GElf_Shdr *shdr, | 
 | 819 | 				      struct map_groups *kmaps, struct kmap *kmap, | 
 | 820 | 				      struct dso **curr_dsop, struct map **curr_mapp, | 
 | 821 | 				      const char *section_name, | 
 | 822 | 				      bool adjust_kernel_syms, bool kmodule, bool *remap_kernel) | 
 | 823 | { | 
 | 824 | 	struct dso *curr_dso = *curr_dsop; | 
 | 825 | 	struct map *curr_map; | 
 | 826 | 	char dso_name[PATH_MAX]; | 
 | 827 |  | 
 | 828 | 	/* Adjust symbol to map to file offset */ | 
 | 829 | 	if (adjust_kernel_syms) | 
 | 830 | 		sym->st_value -= shdr->sh_addr - shdr->sh_offset; | 
 | 831 |  | 
 | 832 | 	if (strcmp(section_name, (curr_dso->short_name + dso->short_name_len)) == 0) | 
 | 833 | 		return 0; | 
 | 834 |  | 
 | 835 | 	if (strcmp(section_name, ".text") == 0) { | 
 | 836 | 		/* | 
 | 837 | 		 * The initial kernel mapping is based on | 
 | 838 | 		 * kallsyms and identity maps.  Overwrite it to | 
 | 839 | 		 * map to the kernel dso. | 
 | 840 | 		 */ | 
 | 841 | 		if (*remap_kernel && dso->kernel) { | 
 | 842 | 			*remap_kernel = false; | 
 | 843 | 			map->start = shdr->sh_addr + ref_reloc(kmap); | 
 | 844 | 			map->end = map->start + shdr->sh_size; | 
 | 845 | 			map->pgoff = shdr->sh_offset; | 
 | 846 | 			map->map_ip = map__map_ip; | 
 | 847 | 			map->unmap_ip = map__unmap_ip; | 
 | 848 | 			/* Ensure maps are correctly ordered */ | 
 | 849 | 			if (kmaps) { | 
 | 850 | 				map__get(map); | 
 | 851 | 				map_groups__remove(kmaps, map); | 
 | 852 | 				map_groups__insert(kmaps, map); | 
 | 853 | 				map__put(map); | 
 | 854 | 			} | 
 | 855 | 		} | 
 | 856 |  | 
 | 857 | 		/* | 
 | 858 | 		 * The initial module mapping is based on | 
 | 859 | 		 * /proc/modules mapped to offset zero. | 
 | 860 | 		 * Overwrite it to map to the module dso. | 
 | 861 | 		 */ | 
 | 862 | 		if (*remap_kernel && kmodule) { | 
 | 863 | 			*remap_kernel = false; | 
 | 864 | 			map->pgoff = shdr->sh_offset; | 
 | 865 | 		} | 
 | 866 |  | 
 | 867 | 		*curr_mapp = map; | 
 | 868 | 		*curr_dsop = dso; | 
 | 869 | 		return 0; | 
 | 870 | 	} | 
 | 871 |  | 
 | 872 | 	if (!kmap) | 
 | 873 | 		return 0; | 
 | 874 |  | 
 | 875 | 	snprintf(dso_name, sizeof(dso_name), "%s%s", dso->short_name, section_name); | 
 | 876 |  | 
 | 877 | 	curr_map = map_groups__find_by_name(kmaps, dso_name); | 
 | 878 | 	if (curr_map == NULL) { | 
 | 879 | 		u64 start = sym->st_value; | 
 | 880 |  | 
 | 881 | 		if (kmodule) | 
 | 882 | 			start += map->start + shdr->sh_offset; | 
 | 883 |  | 
 | 884 | 		curr_dso = dso__new(dso_name); | 
 | 885 | 		if (curr_dso == NULL) | 
 | 886 | 			return -1; | 
 | 887 | 		curr_dso->kernel = dso->kernel; | 
 | 888 | 		curr_dso->long_name = dso->long_name; | 
 | 889 | 		curr_dso->long_name_len = dso->long_name_len; | 
 | 890 | 		curr_map = map__new2(start, curr_dso); | 
 | 891 | 		dso__put(curr_dso); | 
 | 892 | 		if (curr_map == NULL) | 
 | 893 | 			return -1; | 
 | 894 |  | 
 | 895 | 		if (adjust_kernel_syms) { | 
 | 896 | 			curr_map->start  = shdr->sh_addr + ref_reloc(kmap); | 
 | 897 | 			curr_map->end	 = curr_map->start + shdr->sh_size; | 
 | 898 | 			curr_map->pgoff	 = shdr->sh_offset; | 
 | 899 | 		} else { | 
 | 900 | 			curr_map->map_ip = curr_map->unmap_ip = identity__map_ip; | 
 | 901 | 		} | 
 | 902 | 		curr_dso->symtab_type = dso->symtab_type; | 
 | 903 | 		map_groups__insert(kmaps, curr_map); | 
 | 904 | 		/* | 
 | 905 | 		 * Add it before we drop the referece to curr_map, i.e. while | 
 | 906 | 		 * we still are sure to have a reference to this DSO via | 
 | 907 | 		 * *curr_map->dso. | 
 | 908 | 		 */ | 
 | 909 | 		dsos__add(&map->groups->machine->dsos, curr_dso); | 
 | 910 | 		/* kmaps already got it */ | 
 | 911 | 		map__put(curr_map); | 
 | 912 | 		dso__set_loaded(curr_dso); | 
 | 913 | 		*curr_mapp = curr_map; | 
 | 914 | 		*curr_dsop = curr_dso; | 
 | 915 | 	} else | 
 | 916 | 		*curr_dsop = curr_map->dso; | 
 | 917 |  | 
 | 918 | 	return 0; | 
 | 919 | } | 
 | 920 |  | 
 | 921 | int dso__load_sym(struct dso *dso, struct map *map, struct symsrc *syms_ss, | 
 | 922 | 		  struct symsrc *runtime_ss, int kmodule) | 
 | 923 | { | 
 | 924 | 	struct kmap *kmap = dso->kernel ? map__kmap(map) : NULL; | 
 | 925 | 	struct map_groups *kmaps = kmap ? map__kmaps(map) : NULL; | 
 | 926 | 	struct map *curr_map = map; | 
 | 927 | 	struct dso *curr_dso = dso; | 
 | 928 | 	Elf_Data *symstrs, *secstrs; | 
 | 929 | 	uint32_t nr_syms; | 
 | 930 | 	int err = -1; | 
 | 931 | 	uint32_t idx; | 
 | 932 | 	GElf_Ehdr ehdr; | 
 | 933 | 	GElf_Shdr shdr; | 
 | 934 | 	GElf_Shdr tshdr; | 
 | 935 | 	Elf_Data *syms, *opddata = NULL; | 
 | 936 | 	GElf_Sym sym; | 
 | 937 | 	Elf_Scn *sec, *sec_strndx; | 
 | 938 | 	Elf *elf; | 
 | 939 | 	int nr = 0; | 
 | 940 | 	bool remap_kernel = false, adjust_kernel_syms = false; | 
 | 941 |  | 
 | 942 | 	if (kmap && !kmaps) | 
 | 943 | 		return -1; | 
 | 944 |  | 
 | 945 | 	dso->symtab_type = syms_ss->type; | 
 | 946 | 	dso->is_64_bit = syms_ss->is_64_bit; | 
 | 947 | 	dso->rel = syms_ss->ehdr.e_type == ET_REL; | 
 | 948 |  | 
 | 949 | 	/* | 
 | 950 | 	 * Modules may already have symbols from kallsyms, but those symbols | 
 | 951 | 	 * have the wrong values for the dso maps, so remove them. | 
 | 952 | 	 */ | 
 | 953 | 	if (kmodule && syms_ss->symtab) | 
 | 954 | 		symbols__delete(&dso->symbols); | 
 | 955 |  | 
 | 956 | 	if (!syms_ss->symtab) { | 
 | 957 | 		/* | 
 | 958 | 		 * If the vmlinux is stripped, fail so we will fall back | 
 | 959 | 		 * to using kallsyms. The vmlinux runtime symbols aren't | 
 | 960 | 		 * of much use. | 
 | 961 | 		 */ | 
 | 962 | 		if (dso->kernel) | 
 | 963 | 			goto out_elf_end; | 
 | 964 |  | 
 | 965 | 		syms_ss->symtab  = syms_ss->dynsym; | 
 | 966 | 		syms_ss->symshdr = syms_ss->dynshdr; | 
 | 967 | 	} | 
 | 968 |  | 
 | 969 | 	elf = syms_ss->elf; | 
 | 970 | 	ehdr = syms_ss->ehdr; | 
 | 971 | 	sec = syms_ss->symtab; | 
 | 972 | 	shdr = syms_ss->symshdr; | 
 | 973 |  | 
 | 974 | 	if (elf_section_by_name(runtime_ss->elf, &runtime_ss->ehdr, &tshdr, | 
 | 975 | 				".text", NULL)) | 
 | 976 | 		dso->text_offset = tshdr.sh_addr - tshdr.sh_offset; | 
 | 977 |  | 
 | 978 | 	if (runtime_ss->opdsec) | 
 | 979 | 		opddata = elf_rawdata(runtime_ss->opdsec, NULL); | 
 | 980 |  | 
 | 981 | 	syms = elf_getdata(sec, NULL); | 
 | 982 | 	if (syms == NULL) | 
 | 983 | 		goto out_elf_end; | 
 | 984 |  | 
 | 985 | 	sec = elf_getscn(elf, shdr.sh_link); | 
 | 986 | 	if (sec == NULL) | 
 | 987 | 		goto out_elf_end; | 
 | 988 |  | 
 | 989 | 	symstrs = elf_getdata(sec, NULL); | 
 | 990 | 	if (symstrs == NULL) | 
 | 991 | 		goto out_elf_end; | 
 | 992 |  | 
 | 993 | 	sec_strndx = elf_getscn(runtime_ss->elf, runtime_ss->ehdr.e_shstrndx); | 
 | 994 | 	if (sec_strndx == NULL) | 
 | 995 | 		goto out_elf_end; | 
 | 996 |  | 
 | 997 | 	secstrs = elf_getdata(sec_strndx, NULL); | 
 | 998 | 	if (secstrs == NULL) | 
 | 999 | 		goto out_elf_end; | 
 | 1000 |  | 
 | 1001 | 	nr_syms = shdr.sh_size / shdr.sh_entsize; | 
 | 1002 |  | 
 | 1003 | 	memset(&sym, 0, sizeof(sym)); | 
 | 1004 |  | 
 | 1005 | 	/* | 
 | 1006 | 	 * The kernel relocation symbol is needed in advance in order to adjust | 
 | 1007 | 	 * kernel maps correctly. | 
 | 1008 | 	 */ | 
 | 1009 | 	if (ref_reloc_sym_not_found(kmap)) { | 
 | 1010 | 		elf_symtab__for_each_symbol(syms, nr_syms, idx, sym) { | 
 | 1011 | 			const char *elf_name = elf_sym__name(&sym, symstrs); | 
 | 1012 |  | 
 | 1013 | 			if (strcmp(elf_name, kmap->ref_reloc_sym->name)) | 
 | 1014 | 				continue; | 
 | 1015 | 			kmap->ref_reloc_sym->unrelocated_addr = sym.st_value; | 
 | 1016 | 			map->reloc = kmap->ref_reloc_sym->addr - | 
 | 1017 | 				     kmap->ref_reloc_sym->unrelocated_addr; | 
 | 1018 | 			break; | 
 | 1019 | 		} | 
 | 1020 | 	} | 
 | 1021 |  | 
 | 1022 | 	/* | 
 | 1023 | 	 * Handle any relocation of vdso necessary because older kernels | 
 | 1024 | 	 * attempted to prelink vdso to its virtual address. | 
 | 1025 | 	 */ | 
 | 1026 | 	if (dso__is_vdso(dso)) | 
 | 1027 | 		map->reloc = map->start - dso->text_offset; | 
 | 1028 |  | 
 | 1029 | 	dso->adjust_symbols = runtime_ss->adjust_symbols || ref_reloc(kmap); | 
 | 1030 | 	/* | 
 | 1031 | 	 * Initial kernel and module mappings do not map to the dso. | 
 | 1032 | 	 * Flag the fixups. | 
 | 1033 | 	 */ | 
 | 1034 | 	if (dso->kernel || kmodule) { | 
 | 1035 | 		remap_kernel = true; | 
 | 1036 | 		adjust_kernel_syms = dso->adjust_symbols; | 
 | 1037 | 	} | 
 | 1038 | 	elf_symtab__for_each_symbol(syms, nr_syms, idx, sym) { | 
 | 1039 | 		struct symbol *f; | 
 | 1040 | 		const char *elf_name = elf_sym__name(&sym, symstrs); | 
 | 1041 | 		char *demangled = NULL; | 
 | 1042 | 		int is_label = elf_sym__is_label(&sym); | 
 | 1043 | 		const char *section_name; | 
 | 1044 | 		bool used_opd = false; | 
 | 1045 |  | 
 | 1046 | 		if (!is_label && !elf_sym__filter(&sym)) | 
 | 1047 | 			continue; | 
 | 1048 |  | 
 | 1049 | 		/* Reject ARM ELF "mapping symbols": these aren't unique and | 
 | 1050 | 		 * don't identify functions, so will confuse the profile | 
 | 1051 | 		 * output: */ | 
 | 1052 | 		if (ehdr.e_machine == EM_ARM || ehdr.e_machine == EM_AARCH64) { | 
 | 1053 | 			if (elf_name[0] == '$' && strchr("adtx", elf_name[1]) | 
 | 1054 | 			    && (elf_name[2] == '\0' || elf_name[2] == '.')) | 
 | 1055 | 				continue; | 
 | 1056 | 		} | 
 | 1057 |  | 
 | 1058 | 		if (runtime_ss->opdsec && sym.st_shndx == runtime_ss->opdidx) { | 
 | 1059 | 			u32 offset = sym.st_value - syms_ss->opdshdr.sh_addr; | 
 | 1060 | 			u64 *opd = opddata->d_buf + offset; | 
 | 1061 | 			sym.st_value = DSO__SWAP(dso, u64, *opd); | 
 | 1062 | 			sym.st_shndx = elf_addr_to_index(runtime_ss->elf, | 
 | 1063 | 					sym.st_value); | 
 | 1064 | 			used_opd = true; | 
 | 1065 | 		} | 
 | 1066 | 		/* | 
 | 1067 | 		 * When loading symbols in a data mapping, ABS symbols (which | 
 | 1068 | 		 * has a value of SHN_ABS in its st_shndx) failed at | 
 | 1069 | 		 * elf_getscn().  And it marks the loading as a failure so | 
 | 1070 | 		 * already loaded symbols cannot be fixed up. | 
 | 1071 | 		 * | 
 | 1072 | 		 * I'm not sure what should be done. Just ignore them for now. | 
 | 1073 | 		 * - Namhyung Kim | 
 | 1074 | 		 */ | 
 | 1075 | 		if (sym.st_shndx == SHN_ABS) | 
 | 1076 | 			continue; | 
 | 1077 |  | 
 | 1078 | 		sec = elf_getscn(runtime_ss->elf, sym.st_shndx); | 
 | 1079 | 		if (!sec) | 
 | 1080 | 			goto out_elf_end; | 
 | 1081 |  | 
 | 1082 | 		gelf_getshdr(sec, &shdr); | 
 | 1083 |  | 
 | 1084 | 		if (is_label && !elf_sec__filter(&shdr, secstrs)) | 
 | 1085 | 			continue; | 
 | 1086 |  | 
 | 1087 | 		section_name = elf_sec__name(&shdr, secstrs); | 
 | 1088 |  | 
 | 1089 | 		/* On ARM, symbols for thumb functions have 1 added to | 
 | 1090 | 		 * the symbol address as a flag - remove it */ | 
 | 1091 | 		if ((ehdr.e_machine == EM_ARM) && | 
 | 1092 | 		    (GELF_ST_TYPE(sym.st_info) == STT_FUNC) && | 
 | 1093 | 		    (sym.st_value & 1)) | 
 | 1094 | 			--sym.st_value; | 
 | 1095 |  | 
 | 1096 | 		if (dso->kernel || kmodule) { | 
 | 1097 | 			if (dso__process_kernel_symbol(dso, map, &sym, &shdr, kmaps, kmap, &curr_dso, &curr_map, | 
 | 1098 | 						       section_name, adjust_kernel_syms, kmodule, &remap_kernel)) | 
 | 1099 | 				goto out_elf_end; | 
 | 1100 | 		} else if ((used_opd && runtime_ss->adjust_symbols) || | 
 | 1101 | 			   (!used_opd && syms_ss->adjust_symbols)) { | 
 | 1102 | 			pr_debug4("%s: adjusting symbol: st_value: %#" PRIx64 " " | 
 | 1103 | 				  "sh_addr: %#" PRIx64 " sh_offset: %#" PRIx64 "\n", __func__, | 
 | 1104 | 				  (u64)sym.st_value, (u64)shdr.sh_addr, | 
 | 1105 | 				  (u64)shdr.sh_offset); | 
 | 1106 | 			sym.st_value -= shdr.sh_addr - shdr.sh_offset; | 
 | 1107 | 		} | 
 | 1108 |  | 
 | 1109 | 		demangled = demangle_sym(dso, kmodule, elf_name); | 
 | 1110 | 		if (demangled != NULL) | 
 | 1111 | 			elf_name = demangled; | 
 | 1112 |  | 
 | 1113 | 		f = symbol__new(sym.st_value, sym.st_size, | 
 | 1114 | 				GELF_ST_BIND(sym.st_info), | 
 | 1115 | 				GELF_ST_TYPE(sym.st_info), elf_name); | 
 | 1116 | 		free(demangled); | 
 | 1117 | 		if (!f) | 
 | 1118 | 			goto out_elf_end; | 
 | 1119 |  | 
 | 1120 | 		arch__sym_update(f, &sym); | 
 | 1121 |  | 
 | 1122 | 		__symbols__insert(&curr_dso->symbols, f, dso->kernel); | 
 | 1123 | 		nr++; | 
 | 1124 | 	} | 
 | 1125 |  | 
 | 1126 | 	/* | 
 | 1127 | 	 * For misannotated, zeroed, ASM function sizes. | 
 | 1128 | 	 */ | 
 | 1129 | 	if (nr > 0) { | 
 | 1130 | 		symbols__fixup_end(&dso->symbols); | 
 | 1131 | 		symbols__fixup_duplicate(&dso->symbols); | 
 | 1132 | 		if (kmap) { | 
 | 1133 | 			/* | 
 | 1134 | 			 * We need to fixup this here too because we create new | 
 | 1135 | 			 * maps here, for things like vsyscall sections. | 
 | 1136 | 			 */ | 
 | 1137 | 			map_groups__fixup_end(kmaps); | 
 | 1138 | 		} | 
 | 1139 | 	} | 
 | 1140 | 	err = nr; | 
 | 1141 | out_elf_end: | 
 | 1142 | 	return err; | 
 | 1143 | } | 
 | 1144 |  | 
 | 1145 | static int elf_read_maps(Elf *elf, bool exe, mapfn_t mapfn, void *data) | 
 | 1146 | { | 
 | 1147 | 	GElf_Phdr phdr; | 
 | 1148 | 	size_t i, phdrnum; | 
 | 1149 | 	int err; | 
 | 1150 | 	u64 sz; | 
 | 1151 |  | 
 | 1152 | 	if (elf_getphdrnum(elf, &phdrnum)) | 
 | 1153 | 		return -1; | 
 | 1154 |  | 
 | 1155 | 	for (i = 0; i < phdrnum; i++) { | 
 | 1156 | 		if (gelf_getphdr(elf, i, &phdr) == NULL) | 
 | 1157 | 			return -1; | 
 | 1158 | 		if (phdr.p_type != PT_LOAD) | 
 | 1159 | 			continue; | 
 | 1160 | 		if (exe) { | 
 | 1161 | 			if (!(phdr.p_flags & PF_X)) | 
 | 1162 | 				continue; | 
 | 1163 | 		} else { | 
 | 1164 | 			if (!(phdr.p_flags & PF_R)) | 
 | 1165 | 				continue; | 
 | 1166 | 		} | 
 | 1167 | 		sz = min(phdr.p_memsz, phdr.p_filesz); | 
 | 1168 | 		if (!sz) | 
 | 1169 | 			continue; | 
 | 1170 | 		err = mapfn(phdr.p_vaddr, sz, phdr.p_offset, data); | 
 | 1171 | 		if (err) | 
 | 1172 | 			return err; | 
 | 1173 | 	} | 
 | 1174 | 	return 0; | 
 | 1175 | } | 
 | 1176 |  | 
 | 1177 | int file__read_maps(int fd, bool exe, mapfn_t mapfn, void *data, | 
 | 1178 | 		    bool *is_64_bit) | 
 | 1179 | { | 
 | 1180 | 	int err; | 
 | 1181 | 	Elf *elf; | 
 | 1182 |  | 
 | 1183 | 	elf = elf_begin(fd, PERF_ELF_C_READ_MMAP, NULL); | 
 | 1184 | 	if (elf == NULL) | 
 | 1185 | 		return -1; | 
 | 1186 |  | 
 | 1187 | 	if (is_64_bit) | 
 | 1188 | 		*is_64_bit = (gelf_getclass(elf) == ELFCLASS64); | 
 | 1189 |  | 
 | 1190 | 	err = elf_read_maps(elf, exe, mapfn, data); | 
 | 1191 |  | 
 | 1192 | 	elf_end(elf); | 
 | 1193 | 	return err; | 
 | 1194 | } | 
 | 1195 |  | 
 | 1196 | enum dso_type dso__type_fd(int fd) | 
 | 1197 | { | 
 | 1198 | 	enum dso_type dso_type = DSO__TYPE_UNKNOWN; | 
 | 1199 | 	GElf_Ehdr ehdr; | 
 | 1200 | 	Elf_Kind ek; | 
 | 1201 | 	Elf *elf; | 
 | 1202 |  | 
 | 1203 | 	elf = elf_begin(fd, PERF_ELF_C_READ_MMAP, NULL); | 
 | 1204 | 	if (elf == NULL) | 
 | 1205 | 		goto out; | 
 | 1206 |  | 
 | 1207 | 	ek = elf_kind(elf); | 
 | 1208 | 	if (ek != ELF_K_ELF) | 
 | 1209 | 		goto out_end; | 
 | 1210 |  | 
 | 1211 | 	if (gelf_getclass(elf) == ELFCLASS64) { | 
 | 1212 | 		dso_type = DSO__TYPE_64BIT; | 
 | 1213 | 		goto out_end; | 
 | 1214 | 	} | 
 | 1215 |  | 
 | 1216 | 	if (gelf_getehdr(elf, &ehdr) == NULL) | 
 | 1217 | 		goto out_end; | 
 | 1218 |  | 
 | 1219 | 	if (ehdr.e_machine == EM_X86_64) | 
 | 1220 | 		dso_type = DSO__TYPE_X32BIT; | 
 | 1221 | 	else | 
 | 1222 | 		dso_type = DSO__TYPE_32BIT; | 
 | 1223 | out_end: | 
 | 1224 | 	elf_end(elf); | 
 | 1225 | out: | 
 | 1226 | 	return dso_type; | 
 | 1227 | } | 
 | 1228 |  | 
 | 1229 | static int copy_bytes(int from, off_t from_offs, int to, off_t to_offs, u64 len) | 
 | 1230 | { | 
 | 1231 | 	ssize_t r; | 
 | 1232 | 	size_t n; | 
 | 1233 | 	int err = -1; | 
 | 1234 | 	char *buf = malloc(page_size); | 
 | 1235 |  | 
 | 1236 | 	if (buf == NULL) | 
 | 1237 | 		return -1; | 
 | 1238 |  | 
 | 1239 | 	if (lseek(to, to_offs, SEEK_SET) != to_offs) | 
 | 1240 | 		goto out; | 
 | 1241 |  | 
 | 1242 | 	if (lseek(from, from_offs, SEEK_SET) != from_offs) | 
 | 1243 | 		goto out; | 
 | 1244 |  | 
 | 1245 | 	while (len) { | 
 | 1246 | 		n = page_size; | 
 | 1247 | 		if (len < n) | 
 | 1248 | 			n = len; | 
 | 1249 | 		/* Use read because mmap won't work on proc files */ | 
 | 1250 | 		r = read(from, buf, n); | 
 | 1251 | 		if (r < 0) | 
 | 1252 | 			goto out; | 
 | 1253 | 		if (!r) | 
 | 1254 | 			break; | 
 | 1255 | 		n = r; | 
 | 1256 | 		r = write(to, buf, n); | 
 | 1257 | 		if (r < 0) | 
 | 1258 | 			goto out; | 
 | 1259 | 		if ((size_t)r != n) | 
 | 1260 | 			goto out; | 
 | 1261 | 		len -= n; | 
 | 1262 | 	} | 
 | 1263 |  | 
 | 1264 | 	err = 0; | 
 | 1265 | out: | 
 | 1266 | 	free(buf); | 
 | 1267 | 	return err; | 
 | 1268 | } | 
 | 1269 |  | 
 | 1270 | struct kcore { | 
 | 1271 | 	int fd; | 
 | 1272 | 	int elfclass; | 
 | 1273 | 	Elf *elf; | 
 | 1274 | 	GElf_Ehdr ehdr; | 
 | 1275 | }; | 
 | 1276 |  | 
 | 1277 | static int kcore__open(struct kcore *kcore, const char *filename) | 
 | 1278 | { | 
 | 1279 | 	GElf_Ehdr *ehdr; | 
 | 1280 |  | 
 | 1281 | 	kcore->fd = open(filename, O_RDONLY); | 
 | 1282 | 	if (kcore->fd == -1) | 
 | 1283 | 		return -1; | 
 | 1284 |  | 
 | 1285 | 	kcore->elf = elf_begin(kcore->fd, ELF_C_READ, NULL); | 
 | 1286 | 	if (!kcore->elf) | 
 | 1287 | 		goto out_close; | 
 | 1288 |  | 
 | 1289 | 	kcore->elfclass = gelf_getclass(kcore->elf); | 
 | 1290 | 	if (kcore->elfclass == ELFCLASSNONE) | 
 | 1291 | 		goto out_end; | 
 | 1292 |  | 
 | 1293 | 	ehdr = gelf_getehdr(kcore->elf, &kcore->ehdr); | 
 | 1294 | 	if (!ehdr) | 
 | 1295 | 		goto out_end; | 
 | 1296 |  | 
 | 1297 | 	return 0; | 
 | 1298 |  | 
 | 1299 | out_end: | 
 | 1300 | 	elf_end(kcore->elf); | 
 | 1301 | out_close: | 
 | 1302 | 	close(kcore->fd); | 
 | 1303 | 	return -1; | 
 | 1304 | } | 
 | 1305 |  | 
 | 1306 | static int kcore__init(struct kcore *kcore, char *filename, int elfclass, | 
 | 1307 | 		       bool temp) | 
 | 1308 | { | 
 | 1309 | 	kcore->elfclass = elfclass; | 
 | 1310 |  | 
 | 1311 | 	if (temp) | 
 | 1312 | 		kcore->fd = mkstemp(filename); | 
 | 1313 | 	else | 
 | 1314 | 		kcore->fd = open(filename, O_WRONLY | O_CREAT | O_EXCL, 0400); | 
 | 1315 | 	if (kcore->fd == -1) | 
 | 1316 | 		return -1; | 
 | 1317 |  | 
 | 1318 | 	kcore->elf = elf_begin(kcore->fd, ELF_C_WRITE, NULL); | 
 | 1319 | 	if (!kcore->elf) | 
 | 1320 | 		goto out_close; | 
 | 1321 |  | 
 | 1322 | 	if (!gelf_newehdr(kcore->elf, elfclass)) | 
 | 1323 | 		goto out_end; | 
 | 1324 |  | 
 | 1325 | 	memset(&kcore->ehdr, 0, sizeof(GElf_Ehdr)); | 
 | 1326 |  | 
 | 1327 | 	return 0; | 
 | 1328 |  | 
 | 1329 | out_end: | 
 | 1330 | 	elf_end(kcore->elf); | 
 | 1331 | out_close: | 
 | 1332 | 	close(kcore->fd); | 
 | 1333 | 	unlink(filename); | 
 | 1334 | 	return -1; | 
 | 1335 | } | 
 | 1336 |  | 
 | 1337 | static void kcore__close(struct kcore *kcore) | 
 | 1338 | { | 
 | 1339 | 	elf_end(kcore->elf); | 
 | 1340 | 	close(kcore->fd); | 
 | 1341 | } | 
 | 1342 |  | 
 | 1343 | static int kcore__copy_hdr(struct kcore *from, struct kcore *to, size_t count) | 
 | 1344 | { | 
 | 1345 | 	GElf_Ehdr *ehdr = &to->ehdr; | 
 | 1346 | 	GElf_Ehdr *kehdr = &from->ehdr; | 
 | 1347 |  | 
 | 1348 | 	memcpy(ehdr->e_ident, kehdr->e_ident, EI_NIDENT); | 
 | 1349 | 	ehdr->e_type      = kehdr->e_type; | 
 | 1350 | 	ehdr->e_machine   = kehdr->e_machine; | 
 | 1351 | 	ehdr->e_version   = kehdr->e_version; | 
 | 1352 | 	ehdr->e_entry     = 0; | 
 | 1353 | 	ehdr->e_shoff     = 0; | 
 | 1354 | 	ehdr->e_flags     = kehdr->e_flags; | 
 | 1355 | 	ehdr->e_phnum     = count; | 
 | 1356 | 	ehdr->e_shentsize = 0; | 
 | 1357 | 	ehdr->e_shnum     = 0; | 
 | 1358 | 	ehdr->e_shstrndx  = 0; | 
 | 1359 |  | 
 | 1360 | 	if (from->elfclass == ELFCLASS32) { | 
 | 1361 | 		ehdr->e_phoff     = sizeof(Elf32_Ehdr); | 
 | 1362 | 		ehdr->e_ehsize    = sizeof(Elf32_Ehdr); | 
 | 1363 | 		ehdr->e_phentsize = sizeof(Elf32_Phdr); | 
 | 1364 | 	} else { | 
 | 1365 | 		ehdr->e_phoff     = sizeof(Elf64_Ehdr); | 
 | 1366 | 		ehdr->e_ehsize    = sizeof(Elf64_Ehdr); | 
 | 1367 | 		ehdr->e_phentsize = sizeof(Elf64_Phdr); | 
 | 1368 | 	} | 
 | 1369 |  | 
 | 1370 | 	if (!gelf_update_ehdr(to->elf, ehdr)) | 
 | 1371 | 		return -1; | 
 | 1372 |  | 
 | 1373 | 	if (!gelf_newphdr(to->elf, count)) | 
 | 1374 | 		return -1; | 
 | 1375 |  | 
 | 1376 | 	return 0; | 
 | 1377 | } | 
 | 1378 |  | 
 | 1379 | static int kcore__add_phdr(struct kcore *kcore, int idx, off_t offset, | 
 | 1380 | 			   u64 addr, u64 len) | 
 | 1381 | { | 
 | 1382 | 	GElf_Phdr phdr = { | 
 | 1383 | 		.p_type		= PT_LOAD, | 
 | 1384 | 		.p_flags	= PF_R | PF_W | PF_X, | 
 | 1385 | 		.p_offset	= offset, | 
 | 1386 | 		.p_vaddr	= addr, | 
 | 1387 | 		.p_paddr	= 0, | 
 | 1388 | 		.p_filesz	= len, | 
 | 1389 | 		.p_memsz	= len, | 
 | 1390 | 		.p_align	= page_size, | 
 | 1391 | 	}; | 
 | 1392 |  | 
 | 1393 | 	if (!gelf_update_phdr(kcore->elf, idx, &phdr)) | 
 | 1394 | 		return -1; | 
 | 1395 |  | 
 | 1396 | 	return 0; | 
 | 1397 | } | 
 | 1398 |  | 
 | 1399 | static off_t kcore__write(struct kcore *kcore) | 
 | 1400 | { | 
 | 1401 | 	return elf_update(kcore->elf, ELF_C_WRITE); | 
 | 1402 | } | 
 | 1403 |  | 
 | 1404 | struct phdr_data { | 
 | 1405 | 	off_t offset; | 
 | 1406 | 	off_t rel; | 
 | 1407 | 	u64 addr; | 
 | 1408 | 	u64 len; | 
 | 1409 | 	struct list_head node; | 
 | 1410 | 	struct phdr_data *remaps; | 
 | 1411 | }; | 
 | 1412 |  | 
 | 1413 | struct sym_data { | 
 | 1414 | 	u64 addr; | 
 | 1415 | 	struct list_head node; | 
 | 1416 | }; | 
 | 1417 |  | 
 | 1418 | struct kcore_copy_info { | 
 | 1419 | 	u64 stext; | 
 | 1420 | 	u64 etext; | 
 | 1421 | 	u64 first_symbol; | 
 | 1422 | 	u64 last_symbol; | 
 | 1423 | 	u64 first_module; | 
 | 1424 | 	u64 last_module_symbol; | 
 | 1425 | 	size_t phnum; | 
 | 1426 | 	struct list_head phdrs; | 
 | 1427 | 	struct list_head syms; | 
 | 1428 | }; | 
 | 1429 |  | 
 | 1430 | #define kcore_copy__for_each_phdr(k, p) \ | 
 | 1431 | 	list_for_each_entry((p), &(k)->phdrs, node) | 
 | 1432 |  | 
 | 1433 | static struct phdr_data *phdr_data__new(u64 addr, u64 len, off_t offset) | 
 | 1434 | { | 
 | 1435 | 	struct phdr_data *p = zalloc(sizeof(*p)); | 
 | 1436 |  | 
 | 1437 | 	if (p) { | 
 | 1438 | 		p->addr   = addr; | 
 | 1439 | 		p->len    = len; | 
 | 1440 | 		p->offset = offset; | 
 | 1441 | 	} | 
 | 1442 |  | 
 | 1443 | 	return p; | 
 | 1444 | } | 
 | 1445 |  | 
 | 1446 | static struct phdr_data *kcore_copy_info__addnew(struct kcore_copy_info *kci, | 
 | 1447 | 						 u64 addr, u64 len, | 
 | 1448 | 						 off_t offset) | 
 | 1449 | { | 
 | 1450 | 	struct phdr_data *p = phdr_data__new(addr, len, offset); | 
 | 1451 |  | 
 | 1452 | 	if (p) | 
 | 1453 | 		list_add_tail(&p->node, &kci->phdrs); | 
 | 1454 |  | 
 | 1455 | 	return p; | 
 | 1456 | } | 
 | 1457 |  | 
 | 1458 | static void kcore_copy__free_phdrs(struct kcore_copy_info *kci) | 
 | 1459 | { | 
 | 1460 | 	struct phdr_data *p, *tmp; | 
 | 1461 |  | 
 | 1462 | 	list_for_each_entry_safe(p, tmp, &kci->phdrs, node) { | 
 | 1463 | 		list_del(&p->node); | 
 | 1464 | 		free(p); | 
 | 1465 | 	} | 
 | 1466 | } | 
 | 1467 |  | 
 | 1468 | static struct sym_data *kcore_copy__new_sym(struct kcore_copy_info *kci, | 
 | 1469 | 					    u64 addr) | 
 | 1470 | { | 
 | 1471 | 	struct sym_data *s = zalloc(sizeof(*s)); | 
 | 1472 |  | 
 | 1473 | 	if (s) { | 
 | 1474 | 		s->addr = addr; | 
 | 1475 | 		list_add_tail(&s->node, &kci->syms); | 
 | 1476 | 	} | 
 | 1477 |  | 
 | 1478 | 	return s; | 
 | 1479 | } | 
 | 1480 |  | 
 | 1481 | static void kcore_copy__free_syms(struct kcore_copy_info *kci) | 
 | 1482 | { | 
 | 1483 | 	struct sym_data *s, *tmp; | 
 | 1484 |  | 
 | 1485 | 	list_for_each_entry_safe(s, tmp, &kci->syms, node) { | 
 | 1486 | 		list_del(&s->node); | 
 | 1487 | 		free(s); | 
 | 1488 | 	} | 
 | 1489 | } | 
 | 1490 |  | 
 | 1491 | static int kcore_copy__process_kallsyms(void *arg, const char *name, char type, | 
 | 1492 | 					u64 start) | 
 | 1493 | { | 
 | 1494 | 	struct kcore_copy_info *kci = arg; | 
 | 1495 |  | 
 | 1496 | 	if (!kallsyms__is_function(type)) | 
 | 1497 | 		return 0; | 
 | 1498 |  | 
 | 1499 | 	if (strchr(name, '[')) { | 
 | 1500 | 		if (start > kci->last_module_symbol) | 
 | 1501 | 			kci->last_module_symbol = start; | 
 | 1502 | 		return 0; | 
 | 1503 | 	} | 
 | 1504 |  | 
 | 1505 | 	if (!kci->first_symbol || start < kci->first_symbol) | 
 | 1506 | 		kci->first_symbol = start; | 
 | 1507 |  | 
 | 1508 | 	if (!kci->last_symbol || start > kci->last_symbol) | 
 | 1509 | 		kci->last_symbol = start; | 
 | 1510 |  | 
 | 1511 | 	if (!strcmp(name, "_stext")) { | 
 | 1512 | 		kci->stext = start; | 
 | 1513 | 		return 0; | 
 | 1514 | 	} | 
 | 1515 |  | 
 | 1516 | 	if (!strcmp(name, "_etext")) { | 
 | 1517 | 		kci->etext = start; | 
 | 1518 | 		return 0; | 
 | 1519 | 	} | 
 | 1520 |  | 
 | 1521 | 	if (is_entry_trampoline(name) && !kcore_copy__new_sym(kci, start)) | 
 | 1522 | 		return -1; | 
 | 1523 |  | 
 | 1524 | 	return 0; | 
 | 1525 | } | 
 | 1526 |  | 
 | 1527 | static int kcore_copy__parse_kallsyms(struct kcore_copy_info *kci, | 
 | 1528 | 				      const char *dir) | 
 | 1529 | { | 
 | 1530 | 	char kallsyms_filename[PATH_MAX]; | 
 | 1531 |  | 
 | 1532 | 	scnprintf(kallsyms_filename, PATH_MAX, "%s/kallsyms", dir); | 
 | 1533 |  | 
 | 1534 | 	if (symbol__restricted_filename(kallsyms_filename, "/proc/kallsyms")) | 
 | 1535 | 		return -1; | 
 | 1536 |  | 
 | 1537 | 	if (kallsyms__parse(kallsyms_filename, kci, | 
 | 1538 | 			    kcore_copy__process_kallsyms) < 0) | 
 | 1539 | 		return -1; | 
 | 1540 |  | 
 | 1541 | 	return 0; | 
 | 1542 | } | 
 | 1543 |  | 
 | 1544 | static int kcore_copy__process_modules(void *arg, | 
 | 1545 | 				       const char *name __maybe_unused, | 
 | 1546 | 				       u64 start, u64 size __maybe_unused) | 
 | 1547 | { | 
 | 1548 | 	struct kcore_copy_info *kci = arg; | 
 | 1549 |  | 
 | 1550 | 	if (!kci->first_module || start < kci->first_module) | 
 | 1551 | 		kci->first_module = start; | 
 | 1552 |  | 
 | 1553 | 	return 0; | 
 | 1554 | } | 
 | 1555 |  | 
 | 1556 | static int kcore_copy__parse_modules(struct kcore_copy_info *kci, | 
 | 1557 | 				     const char *dir) | 
 | 1558 | { | 
 | 1559 | 	char modules_filename[PATH_MAX]; | 
 | 1560 |  | 
 | 1561 | 	scnprintf(modules_filename, PATH_MAX, "%s/modules", dir); | 
 | 1562 |  | 
 | 1563 | 	if (symbol__restricted_filename(modules_filename, "/proc/modules")) | 
 | 1564 | 		return -1; | 
 | 1565 |  | 
 | 1566 | 	if (modules__parse(modules_filename, kci, | 
 | 1567 | 			   kcore_copy__process_modules) < 0) | 
 | 1568 | 		return -1; | 
 | 1569 |  | 
 | 1570 | 	return 0; | 
 | 1571 | } | 
 | 1572 |  | 
 | 1573 | static int kcore_copy__map(struct kcore_copy_info *kci, u64 start, u64 end, | 
 | 1574 | 			   u64 pgoff, u64 s, u64 e) | 
 | 1575 | { | 
 | 1576 | 	u64 len, offset; | 
 | 1577 |  | 
 | 1578 | 	if (s < start || s >= end) | 
 | 1579 | 		return 0; | 
 | 1580 |  | 
 | 1581 | 	offset = (s - start) + pgoff; | 
 | 1582 | 	len = e < end ? e - s : end - s; | 
 | 1583 |  | 
 | 1584 | 	return kcore_copy_info__addnew(kci, s, len, offset) ? 0 : -1; | 
 | 1585 | } | 
 | 1586 |  | 
 | 1587 | static int kcore_copy__read_map(u64 start, u64 len, u64 pgoff, void *data) | 
 | 1588 | { | 
 | 1589 | 	struct kcore_copy_info *kci = data; | 
 | 1590 | 	u64 end = start + len; | 
 | 1591 | 	struct sym_data *sdat; | 
 | 1592 |  | 
 | 1593 | 	if (kcore_copy__map(kci, start, end, pgoff, kci->stext, kci->etext)) | 
 | 1594 | 		return -1; | 
 | 1595 |  | 
 | 1596 | 	if (kcore_copy__map(kci, start, end, pgoff, kci->first_module, | 
 | 1597 | 			    kci->last_module_symbol)) | 
 | 1598 | 		return -1; | 
 | 1599 |  | 
 | 1600 | 	list_for_each_entry(sdat, &kci->syms, node) { | 
 | 1601 | 		u64 s = round_down(sdat->addr, page_size); | 
 | 1602 |  | 
 | 1603 | 		if (kcore_copy__map(kci, start, end, pgoff, s, s + len)) | 
 | 1604 | 			return -1; | 
 | 1605 | 	} | 
 | 1606 |  | 
 | 1607 | 	return 0; | 
 | 1608 | } | 
 | 1609 |  | 
 | 1610 | static int kcore_copy__read_maps(struct kcore_copy_info *kci, Elf *elf) | 
 | 1611 | { | 
 | 1612 | 	if (elf_read_maps(elf, true, kcore_copy__read_map, kci) < 0) | 
 | 1613 | 		return -1; | 
 | 1614 |  | 
 | 1615 | 	return 0; | 
 | 1616 | } | 
 | 1617 |  | 
 | 1618 | static void kcore_copy__find_remaps(struct kcore_copy_info *kci) | 
 | 1619 | { | 
 | 1620 | 	struct phdr_data *p, *k = NULL; | 
 | 1621 | 	u64 kend; | 
 | 1622 |  | 
 | 1623 | 	if (!kci->stext) | 
 | 1624 | 		return; | 
 | 1625 |  | 
 | 1626 | 	/* Find phdr that corresponds to the kernel map (contains stext) */ | 
 | 1627 | 	kcore_copy__for_each_phdr(kci, p) { | 
 | 1628 | 		u64 pend = p->addr + p->len - 1; | 
 | 1629 |  | 
 | 1630 | 		if (p->addr <= kci->stext && pend >= kci->stext) { | 
 | 1631 | 			k = p; | 
 | 1632 | 			break; | 
 | 1633 | 		} | 
 | 1634 | 	} | 
 | 1635 |  | 
 | 1636 | 	if (!k) | 
 | 1637 | 		return; | 
 | 1638 |  | 
 | 1639 | 	kend = k->offset + k->len; | 
 | 1640 |  | 
 | 1641 | 	/* Find phdrs that remap the kernel */ | 
 | 1642 | 	kcore_copy__for_each_phdr(kci, p) { | 
 | 1643 | 		u64 pend = p->offset + p->len; | 
 | 1644 |  | 
 | 1645 | 		if (p == k) | 
 | 1646 | 			continue; | 
 | 1647 |  | 
 | 1648 | 		if (p->offset >= k->offset && pend <= kend) | 
 | 1649 | 			p->remaps = k; | 
 | 1650 | 	} | 
 | 1651 | } | 
 | 1652 |  | 
 | 1653 | static void kcore_copy__layout(struct kcore_copy_info *kci) | 
 | 1654 | { | 
 | 1655 | 	struct phdr_data *p; | 
 | 1656 | 	off_t rel = 0; | 
 | 1657 |  | 
 | 1658 | 	kcore_copy__find_remaps(kci); | 
 | 1659 |  | 
 | 1660 | 	kcore_copy__for_each_phdr(kci, p) { | 
 | 1661 | 		if (!p->remaps) { | 
 | 1662 | 			p->rel = rel; | 
 | 1663 | 			rel += p->len; | 
 | 1664 | 		} | 
 | 1665 | 		kci->phnum += 1; | 
 | 1666 | 	} | 
 | 1667 |  | 
 | 1668 | 	kcore_copy__for_each_phdr(kci, p) { | 
 | 1669 | 		struct phdr_data *k = p->remaps; | 
 | 1670 |  | 
 | 1671 | 		if (k) | 
 | 1672 | 			p->rel = p->offset - k->offset + k->rel; | 
 | 1673 | 	} | 
 | 1674 | } | 
 | 1675 |  | 
 | 1676 | static int kcore_copy__calc_maps(struct kcore_copy_info *kci, const char *dir, | 
 | 1677 | 				 Elf *elf) | 
 | 1678 | { | 
 | 1679 | 	if (kcore_copy__parse_kallsyms(kci, dir)) | 
 | 1680 | 		return -1; | 
 | 1681 |  | 
 | 1682 | 	if (kcore_copy__parse_modules(kci, dir)) | 
 | 1683 | 		return -1; | 
 | 1684 |  | 
 | 1685 | 	if (kci->stext) | 
 | 1686 | 		kci->stext = round_down(kci->stext, page_size); | 
 | 1687 | 	else | 
 | 1688 | 		kci->stext = round_down(kci->first_symbol, page_size); | 
 | 1689 |  | 
 | 1690 | 	if (kci->etext) { | 
 | 1691 | 		kci->etext = round_up(kci->etext, page_size); | 
 | 1692 | 	} else if (kci->last_symbol) { | 
 | 1693 | 		kci->etext = round_up(kci->last_symbol, page_size); | 
 | 1694 | 		kci->etext += page_size; | 
 | 1695 | 	} | 
 | 1696 |  | 
 | 1697 | 	kci->first_module = round_down(kci->first_module, page_size); | 
 | 1698 |  | 
 | 1699 | 	if (kci->last_module_symbol) { | 
 | 1700 | 		kci->last_module_symbol = round_up(kci->last_module_symbol, | 
 | 1701 | 						   page_size); | 
 | 1702 | 		kci->last_module_symbol += page_size; | 
 | 1703 | 	} | 
 | 1704 |  | 
 | 1705 | 	if (!kci->stext || !kci->etext) | 
 | 1706 | 		return -1; | 
 | 1707 |  | 
 | 1708 | 	if (kci->first_module && !kci->last_module_symbol) | 
 | 1709 | 		return -1; | 
 | 1710 |  | 
 | 1711 | 	if (kcore_copy__read_maps(kci, elf)) | 
 | 1712 | 		return -1; | 
 | 1713 |  | 
 | 1714 | 	kcore_copy__layout(kci); | 
 | 1715 |  | 
 | 1716 | 	return 0; | 
 | 1717 | } | 
 | 1718 |  | 
 | 1719 | static int kcore_copy__copy_file(const char *from_dir, const char *to_dir, | 
 | 1720 | 				 const char *name) | 
 | 1721 | { | 
 | 1722 | 	char from_filename[PATH_MAX]; | 
 | 1723 | 	char to_filename[PATH_MAX]; | 
 | 1724 |  | 
 | 1725 | 	scnprintf(from_filename, PATH_MAX, "%s/%s", from_dir, name); | 
 | 1726 | 	scnprintf(to_filename, PATH_MAX, "%s/%s", to_dir, name); | 
 | 1727 |  | 
 | 1728 | 	return copyfile_mode(from_filename, to_filename, 0400); | 
 | 1729 | } | 
 | 1730 |  | 
 | 1731 | static int kcore_copy__unlink(const char *dir, const char *name) | 
 | 1732 | { | 
 | 1733 | 	char filename[PATH_MAX]; | 
 | 1734 |  | 
 | 1735 | 	scnprintf(filename, PATH_MAX, "%s/%s", dir, name); | 
 | 1736 |  | 
 | 1737 | 	return unlink(filename); | 
 | 1738 | } | 
 | 1739 |  | 
 | 1740 | static int kcore_copy__compare_fds(int from, int to) | 
 | 1741 | { | 
 | 1742 | 	char *buf_from; | 
 | 1743 | 	char *buf_to; | 
 | 1744 | 	ssize_t ret; | 
 | 1745 | 	size_t len; | 
 | 1746 | 	int err = -1; | 
 | 1747 |  | 
 | 1748 | 	buf_from = malloc(page_size); | 
 | 1749 | 	buf_to = malloc(page_size); | 
 | 1750 | 	if (!buf_from || !buf_to) | 
 | 1751 | 		goto out; | 
 | 1752 |  | 
 | 1753 | 	while (1) { | 
 | 1754 | 		/* Use read because mmap won't work on proc files */ | 
 | 1755 | 		ret = read(from, buf_from, page_size); | 
 | 1756 | 		if (ret < 0) | 
 | 1757 | 			goto out; | 
 | 1758 |  | 
 | 1759 | 		if (!ret) | 
 | 1760 | 			break; | 
 | 1761 |  | 
 | 1762 | 		len = ret; | 
 | 1763 |  | 
 | 1764 | 		if (readn(to, buf_to, len) != (int)len) | 
 | 1765 | 			goto out; | 
 | 1766 |  | 
 | 1767 | 		if (memcmp(buf_from, buf_to, len)) | 
 | 1768 | 			goto out; | 
 | 1769 | 	} | 
 | 1770 |  | 
 | 1771 | 	err = 0; | 
 | 1772 | out: | 
 | 1773 | 	free(buf_to); | 
 | 1774 | 	free(buf_from); | 
 | 1775 | 	return err; | 
 | 1776 | } | 
 | 1777 |  | 
 | 1778 | static int kcore_copy__compare_files(const char *from_filename, | 
 | 1779 | 				     const char *to_filename) | 
 | 1780 | { | 
 | 1781 | 	int from, to, err = -1; | 
 | 1782 |  | 
 | 1783 | 	from = open(from_filename, O_RDONLY); | 
 | 1784 | 	if (from < 0) | 
 | 1785 | 		return -1; | 
 | 1786 |  | 
 | 1787 | 	to = open(to_filename, O_RDONLY); | 
 | 1788 | 	if (to < 0) | 
 | 1789 | 		goto out_close_from; | 
 | 1790 |  | 
 | 1791 | 	err = kcore_copy__compare_fds(from, to); | 
 | 1792 |  | 
 | 1793 | 	close(to); | 
 | 1794 | out_close_from: | 
 | 1795 | 	close(from); | 
 | 1796 | 	return err; | 
 | 1797 | } | 
 | 1798 |  | 
 | 1799 | static int kcore_copy__compare_file(const char *from_dir, const char *to_dir, | 
 | 1800 | 				    const char *name) | 
 | 1801 | { | 
 | 1802 | 	char from_filename[PATH_MAX]; | 
 | 1803 | 	char to_filename[PATH_MAX]; | 
 | 1804 |  | 
 | 1805 | 	scnprintf(from_filename, PATH_MAX, "%s/%s", from_dir, name); | 
 | 1806 | 	scnprintf(to_filename, PATH_MAX, "%s/%s", to_dir, name); | 
 | 1807 |  | 
 | 1808 | 	return kcore_copy__compare_files(from_filename, to_filename); | 
 | 1809 | } | 
 | 1810 |  | 
 | 1811 | /** | 
 | 1812 |  * kcore_copy - copy kallsyms, modules and kcore from one directory to another. | 
 | 1813 |  * @from_dir: from directory | 
 | 1814 |  * @to_dir: to directory | 
 | 1815 |  * | 
 | 1816 |  * This function copies kallsyms, modules and kcore files from one directory to | 
 | 1817 |  * another.  kallsyms and modules are copied entirely.  Only code segments are | 
 | 1818 |  * copied from kcore.  It is assumed that two segments suffice: one for the | 
 | 1819 |  * kernel proper and one for all the modules.  The code segments are determined | 
 | 1820 |  * from kallsyms and modules files.  The kernel map starts at _stext or the | 
 | 1821 |  * lowest function symbol, and ends at _etext or the highest function symbol. | 
 | 1822 |  * The module map starts at the lowest module address and ends at the highest | 
 | 1823 |  * module symbol.  Start addresses are rounded down to the nearest page.  End | 
 | 1824 |  * addresses are rounded up to the nearest page.  An extra page is added to the | 
 | 1825 |  * highest kernel symbol and highest module symbol to, hopefully, encompass that | 
 | 1826 |  * symbol too.  Because it contains only code sections, the resulting kcore is | 
 | 1827 |  * unusual.  One significant peculiarity is that the mapping (start -> pgoff) | 
 | 1828 |  * is not the same for the kernel map and the modules map.  That happens because | 
 | 1829 |  * the data is copied adjacently whereas the original kcore has gaps.  Finally, | 
 | 1830 |  * kallsyms and modules files are compared with their copies to check that | 
 | 1831 |  * modules have not been loaded or unloaded while the copies were taking place. | 
 | 1832 |  * | 
 | 1833 |  * Return: %0 on success, %-1 on failure. | 
 | 1834 |  */ | 
 | 1835 | int kcore_copy(const char *from_dir, const char *to_dir) | 
 | 1836 | { | 
 | 1837 | 	struct kcore kcore; | 
 | 1838 | 	struct kcore extract; | 
 | 1839 | 	int idx = 0, err = -1; | 
 | 1840 | 	off_t offset, sz; | 
 | 1841 | 	struct kcore_copy_info kci = { .stext = 0, }; | 
 | 1842 | 	char kcore_filename[PATH_MAX]; | 
 | 1843 | 	char extract_filename[PATH_MAX]; | 
 | 1844 | 	struct phdr_data *p; | 
 | 1845 |  | 
 | 1846 | 	INIT_LIST_HEAD(&kci.phdrs); | 
 | 1847 | 	INIT_LIST_HEAD(&kci.syms); | 
 | 1848 |  | 
 | 1849 | 	if (kcore_copy__copy_file(from_dir, to_dir, "kallsyms")) | 
 | 1850 | 		return -1; | 
 | 1851 |  | 
 | 1852 | 	if (kcore_copy__copy_file(from_dir, to_dir, "modules")) | 
 | 1853 | 		goto out_unlink_kallsyms; | 
 | 1854 |  | 
 | 1855 | 	scnprintf(kcore_filename, PATH_MAX, "%s/kcore", from_dir); | 
 | 1856 | 	scnprintf(extract_filename, PATH_MAX, "%s/kcore", to_dir); | 
 | 1857 |  | 
 | 1858 | 	if (kcore__open(&kcore, kcore_filename)) | 
 | 1859 | 		goto out_unlink_modules; | 
 | 1860 |  | 
 | 1861 | 	if (kcore_copy__calc_maps(&kci, from_dir, kcore.elf)) | 
 | 1862 | 		goto out_kcore_close; | 
 | 1863 |  | 
 | 1864 | 	if (kcore__init(&extract, extract_filename, kcore.elfclass, false)) | 
 | 1865 | 		goto out_kcore_close; | 
 | 1866 |  | 
 | 1867 | 	if (kcore__copy_hdr(&kcore, &extract, kci.phnum)) | 
 | 1868 | 		goto out_extract_close; | 
 | 1869 |  | 
 | 1870 | 	offset = gelf_fsize(extract.elf, ELF_T_EHDR, 1, EV_CURRENT) + | 
 | 1871 | 		 gelf_fsize(extract.elf, ELF_T_PHDR, kci.phnum, EV_CURRENT); | 
 | 1872 | 	offset = round_up(offset, page_size); | 
 | 1873 |  | 
 | 1874 | 	kcore_copy__for_each_phdr(&kci, p) { | 
 | 1875 | 		off_t offs = p->rel + offset; | 
 | 1876 |  | 
 | 1877 | 		if (kcore__add_phdr(&extract, idx++, offs, p->addr, p->len)) | 
 | 1878 | 			goto out_extract_close; | 
 | 1879 | 	} | 
 | 1880 |  | 
 | 1881 | 	sz = kcore__write(&extract); | 
 | 1882 | 	if (sz < 0 || sz > offset) | 
 | 1883 | 		goto out_extract_close; | 
 | 1884 |  | 
 | 1885 | 	kcore_copy__for_each_phdr(&kci, p) { | 
 | 1886 | 		off_t offs = p->rel + offset; | 
 | 1887 |  | 
 | 1888 | 		if (p->remaps) | 
 | 1889 | 			continue; | 
 | 1890 | 		if (copy_bytes(kcore.fd, p->offset, extract.fd, offs, p->len)) | 
 | 1891 | 			goto out_extract_close; | 
 | 1892 | 	} | 
 | 1893 |  | 
 | 1894 | 	if (kcore_copy__compare_file(from_dir, to_dir, "modules")) | 
 | 1895 | 		goto out_extract_close; | 
 | 1896 |  | 
 | 1897 | 	if (kcore_copy__compare_file(from_dir, to_dir, "kallsyms")) | 
 | 1898 | 		goto out_extract_close; | 
 | 1899 |  | 
 | 1900 | 	err = 0; | 
 | 1901 |  | 
 | 1902 | out_extract_close: | 
 | 1903 | 	kcore__close(&extract); | 
 | 1904 | 	if (err) | 
 | 1905 | 		unlink(extract_filename); | 
 | 1906 | out_kcore_close: | 
 | 1907 | 	kcore__close(&kcore); | 
 | 1908 | out_unlink_modules: | 
 | 1909 | 	if (err) | 
 | 1910 | 		kcore_copy__unlink(to_dir, "modules"); | 
 | 1911 | out_unlink_kallsyms: | 
 | 1912 | 	if (err) | 
 | 1913 | 		kcore_copy__unlink(to_dir, "kallsyms"); | 
 | 1914 |  | 
 | 1915 | 	kcore_copy__free_phdrs(&kci); | 
 | 1916 | 	kcore_copy__free_syms(&kci); | 
 | 1917 |  | 
 | 1918 | 	return err; | 
 | 1919 | } | 
 | 1920 |  | 
 | 1921 | int kcore_extract__create(struct kcore_extract *kce) | 
 | 1922 | { | 
 | 1923 | 	struct kcore kcore; | 
 | 1924 | 	struct kcore extract; | 
 | 1925 | 	size_t count = 1; | 
 | 1926 | 	int idx = 0, err = -1; | 
 | 1927 | 	off_t offset = page_size, sz; | 
 | 1928 |  | 
 | 1929 | 	if (kcore__open(&kcore, kce->kcore_filename)) | 
 | 1930 | 		return -1; | 
 | 1931 |  | 
 | 1932 | 	strcpy(kce->extract_filename, PERF_KCORE_EXTRACT); | 
 | 1933 | 	if (kcore__init(&extract, kce->extract_filename, kcore.elfclass, true)) | 
 | 1934 | 		goto out_kcore_close; | 
 | 1935 |  | 
 | 1936 | 	if (kcore__copy_hdr(&kcore, &extract, count)) | 
 | 1937 | 		goto out_extract_close; | 
 | 1938 |  | 
 | 1939 | 	if (kcore__add_phdr(&extract, idx, offset, kce->addr, kce->len)) | 
 | 1940 | 		goto out_extract_close; | 
 | 1941 |  | 
 | 1942 | 	sz = kcore__write(&extract); | 
 | 1943 | 	if (sz < 0 || sz > offset) | 
 | 1944 | 		goto out_extract_close; | 
 | 1945 |  | 
 | 1946 | 	if (copy_bytes(kcore.fd, kce->offs, extract.fd, offset, kce->len)) | 
 | 1947 | 		goto out_extract_close; | 
 | 1948 |  | 
 | 1949 | 	err = 0; | 
 | 1950 |  | 
 | 1951 | out_extract_close: | 
 | 1952 | 	kcore__close(&extract); | 
 | 1953 | 	if (err) | 
 | 1954 | 		unlink(kce->extract_filename); | 
 | 1955 | out_kcore_close: | 
 | 1956 | 	kcore__close(&kcore); | 
 | 1957 |  | 
 | 1958 | 	return err; | 
 | 1959 | } | 
 | 1960 |  | 
 | 1961 | void kcore_extract__delete(struct kcore_extract *kce) | 
 | 1962 | { | 
 | 1963 | 	unlink(kce->extract_filename); | 
 | 1964 | } | 
 | 1965 |  | 
 | 1966 | #ifdef HAVE_GELF_GETNOTE_SUPPORT | 
 | 1967 | /** | 
 | 1968 |  * populate_sdt_note : Parse raw data and identify SDT note | 
 | 1969 |  * @elf: elf of the opened file | 
 | 1970 |  * @data: raw data of a section with description offset applied | 
 | 1971 |  * @len: note description size | 
 | 1972 |  * @type: type of the note | 
 | 1973 |  * @sdt_notes: List to add the SDT note | 
 | 1974 |  * | 
 | 1975 |  * Responsible for parsing the @data in section .note.stapsdt in @elf and | 
 | 1976 |  * if its an SDT note, it appends to @sdt_notes list. | 
 | 1977 |  */ | 
 | 1978 | static int populate_sdt_note(Elf **elf, const char *data, size_t len, | 
 | 1979 | 			     struct list_head *sdt_notes) | 
 | 1980 | { | 
 | 1981 | 	const char *provider, *name, *args; | 
 | 1982 | 	struct sdt_note *tmp = NULL; | 
 | 1983 | 	GElf_Ehdr ehdr; | 
 | 1984 | 	GElf_Addr base_off = 0; | 
 | 1985 | 	GElf_Shdr shdr; | 
 | 1986 | 	int ret = -EINVAL; | 
 | 1987 |  | 
 | 1988 | 	union { | 
 | 1989 | 		Elf64_Addr a64[NR_ADDR]; | 
 | 1990 | 		Elf32_Addr a32[NR_ADDR]; | 
 | 1991 | 	} buf; | 
 | 1992 |  | 
 | 1993 | 	Elf_Data dst = { | 
 | 1994 | 		.d_buf = &buf, .d_type = ELF_T_ADDR, .d_version = EV_CURRENT, | 
 | 1995 | 		.d_size = gelf_fsize((*elf), ELF_T_ADDR, NR_ADDR, EV_CURRENT), | 
 | 1996 | 		.d_off = 0, .d_align = 0 | 
 | 1997 | 	}; | 
 | 1998 | 	Elf_Data src = { | 
 | 1999 | 		.d_buf = (void *) data, .d_type = ELF_T_ADDR, | 
 | 2000 | 		.d_version = EV_CURRENT, .d_size = dst.d_size, .d_off = 0, | 
 | 2001 | 		.d_align = 0 | 
 | 2002 | 	}; | 
 | 2003 |  | 
 | 2004 | 	tmp = (struct sdt_note *)calloc(1, sizeof(struct sdt_note)); | 
 | 2005 | 	if (!tmp) { | 
 | 2006 | 		ret = -ENOMEM; | 
 | 2007 | 		goto out_err; | 
 | 2008 | 	} | 
 | 2009 |  | 
 | 2010 | 	INIT_LIST_HEAD(&tmp->note_list); | 
 | 2011 |  | 
 | 2012 | 	if (len < dst.d_size + 3) | 
 | 2013 | 		goto out_free_note; | 
 | 2014 |  | 
 | 2015 | 	/* Translation from file representation to memory representation */ | 
 | 2016 | 	if (gelf_xlatetom(*elf, &dst, &src, | 
 | 2017 | 			  elf_getident(*elf, NULL)[EI_DATA]) == NULL) { | 
 | 2018 | 		pr_err("gelf_xlatetom : %s\n", elf_errmsg(-1)); | 
 | 2019 | 		goto out_free_note; | 
 | 2020 | 	} | 
 | 2021 |  | 
 | 2022 | 	/* Populate the fields of sdt_note */ | 
 | 2023 | 	provider = data + dst.d_size; | 
 | 2024 |  | 
 | 2025 | 	name = (const char *)memchr(provider, '\0', data + len - provider); | 
 | 2026 | 	if (name++ == NULL) | 
 | 2027 | 		goto out_free_note; | 
 | 2028 |  | 
 | 2029 | 	tmp->provider = strdup(provider); | 
 | 2030 | 	if (!tmp->provider) { | 
 | 2031 | 		ret = -ENOMEM; | 
 | 2032 | 		goto out_free_note; | 
 | 2033 | 	} | 
 | 2034 | 	tmp->name = strdup(name); | 
 | 2035 | 	if (!tmp->name) { | 
 | 2036 | 		ret = -ENOMEM; | 
 | 2037 | 		goto out_free_prov; | 
 | 2038 | 	} | 
 | 2039 |  | 
 | 2040 | 	args = memchr(name, '\0', data + len - name); | 
 | 2041 |  | 
 | 2042 | 	/* | 
 | 2043 | 	 * There is no argument if: | 
 | 2044 | 	 * - We reached the end of the note; | 
 | 2045 | 	 * - There is not enough room to hold a potential string; | 
 | 2046 | 	 * - The argument string is empty or just contains ':'. | 
 | 2047 | 	 */ | 
 | 2048 | 	if (args == NULL || data + len - args < 2 || | 
 | 2049 | 		args[1] == ':' || args[1] == '\0') | 
 | 2050 | 		tmp->args = NULL; | 
 | 2051 | 	else { | 
 | 2052 | 		tmp->args = strdup(++args); | 
 | 2053 | 		if (!tmp->args) { | 
 | 2054 | 			ret = -ENOMEM; | 
 | 2055 | 			goto out_free_name; | 
 | 2056 | 		} | 
 | 2057 | 	} | 
 | 2058 |  | 
 | 2059 | 	if (gelf_getclass(*elf) == ELFCLASS32) { | 
 | 2060 | 		memcpy(&tmp->addr, &buf, 3 * sizeof(Elf32_Addr)); | 
 | 2061 | 		tmp->bit32 = true; | 
 | 2062 | 	} else { | 
 | 2063 | 		memcpy(&tmp->addr, &buf, 3 * sizeof(Elf64_Addr)); | 
 | 2064 | 		tmp->bit32 = false; | 
 | 2065 | 	} | 
 | 2066 |  | 
 | 2067 | 	if (!gelf_getehdr(*elf, &ehdr)) { | 
 | 2068 | 		pr_debug("%s : cannot get elf header.\n", __func__); | 
 | 2069 | 		ret = -EBADF; | 
 | 2070 | 		goto out_free_args; | 
 | 2071 | 	} | 
 | 2072 |  | 
 | 2073 | 	/* Adjust the prelink effect : | 
 | 2074 | 	 * Find out the .stapsdt.base section. | 
 | 2075 | 	 * This scn will help us to handle prelinking (if present). | 
 | 2076 | 	 * Compare the retrieved file offset of the base section with the | 
 | 2077 | 	 * base address in the description of the SDT note. If its different, | 
 | 2078 | 	 * then accordingly, adjust the note location. | 
 | 2079 | 	 */ | 
 | 2080 | 	if (elf_section_by_name(*elf, &ehdr, &shdr, SDT_BASE_SCN, NULL)) { | 
 | 2081 | 		base_off = shdr.sh_offset; | 
 | 2082 | 		if (base_off) { | 
 | 2083 | 			if (tmp->bit32) | 
 | 2084 | 				tmp->addr.a32[0] = tmp->addr.a32[0] + base_off - | 
 | 2085 | 					tmp->addr.a32[1]; | 
 | 2086 | 			else | 
 | 2087 | 				tmp->addr.a64[0] = tmp->addr.a64[0] + base_off - | 
 | 2088 | 					tmp->addr.a64[1]; | 
 | 2089 | 		} | 
 | 2090 | 	} | 
 | 2091 |  | 
 | 2092 | 	list_add_tail(&tmp->note_list, sdt_notes); | 
 | 2093 | 	return 0; | 
 | 2094 |  | 
 | 2095 | out_free_args: | 
 | 2096 | 	free(tmp->args); | 
 | 2097 | out_free_name: | 
 | 2098 | 	free(tmp->name); | 
 | 2099 | out_free_prov: | 
 | 2100 | 	free(tmp->provider); | 
 | 2101 | out_free_note: | 
 | 2102 | 	free(tmp); | 
 | 2103 | out_err: | 
 | 2104 | 	return ret; | 
 | 2105 | } | 
 | 2106 |  | 
 | 2107 | /** | 
 | 2108 |  * construct_sdt_notes_list : constructs a list of SDT notes | 
 | 2109 |  * @elf : elf to look into | 
 | 2110 |  * @sdt_notes : empty list_head | 
 | 2111 |  * | 
 | 2112 |  * Scans the sections in 'elf' for the section | 
 | 2113 |  * .note.stapsdt. It, then calls populate_sdt_note to find | 
 | 2114 |  * out the SDT events and populates the 'sdt_notes'. | 
 | 2115 |  */ | 
 | 2116 | static int construct_sdt_notes_list(Elf *elf, struct list_head *sdt_notes) | 
 | 2117 | { | 
 | 2118 | 	GElf_Ehdr ehdr; | 
 | 2119 | 	Elf_Scn *scn = NULL; | 
 | 2120 | 	Elf_Data *data; | 
 | 2121 | 	GElf_Shdr shdr; | 
 | 2122 | 	size_t shstrndx, next; | 
 | 2123 | 	GElf_Nhdr nhdr; | 
 | 2124 | 	size_t name_off, desc_off, offset; | 
 | 2125 | 	int ret = 0; | 
 | 2126 |  | 
 | 2127 | 	if (gelf_getehdr(elf, &ehdr) == NULL) { | 
 | 2128 | 		ret = -EBADF; | 
 | 2129 | 		goto out_ret; | 
 | 2130 | 	} | 
 | 2131 | 	if (elf_getshdrstrndx(elf, &shstrndx) != 0) { | 
 | 2132 | 		ret = -EBADF; | 
 | 2133 | 		goto out_ret; | 
 | 2134 | 	} | 
 | 2135 |  | 
 | 2136 | 	/* Look for the required section */ | 
 | 2137 | 	scn = elf_section_by_name(elf, &ehdr, &shdr, SDT_NOTE_SCN, NULL); | 
 | 2138 | 	if (!scn) { | 
 | 2139 | 		ret = -ENOENT; | 
 | 2140 | 		goto out_ret; | 
 | 2141 | 	} | 
 | 2142 |  | 
 | 2143 | 	if ((shdr.sh_type != SHT_NOTE) || (shdr.sh_flags & SHF_ALLOC)) { | 
 | 2144 | 		ret = -ENOENT; | 
 | 2145 | 		goto out_ret; | 
 | 2146 | 	} | 
 | 2147 |  | 
 | 2148 | 	data = elf_getdata(scn, NULL); | 
 | 2149 |  | 
 | 2150 | 	/* Get the SDT notes */ | 
 | 2151 | 	for (offset = 0; (next = gelf_getnote(data, offset, &nhdr, &name_off, | 
 | 2152 | 					      &desc_off)) > 0; offset = next) { | 
 | 2153 | 		if (nhdr.n_namesz == sizeof(SDT_NOTE_NAME) && | 
 | 2154 | 		    !memcmp(data->d_buf + name_off, SDT_NOTE_NAME, | 
 | 2155 | 			    sizeof(SDT_NOTE_NAME))) { | 
 | 2156 | 			/* Check the type of the note */ | 
 | 2157 | 			if (nhdr.n_type != SDT_NOTE_TYPE) | 
 | 2158 | 				goto out_ret; | 
 | 2159 |  | 
 | 2160 | 			ret = populate_sdt_note(&elf, ((data->d_buf) + desc_off), | 
 | 2161 | 						nhdr.n_descsz, sdt_notes); | 
 | 2162 | 			if (ret < 0) | 
 | 2163 | 				goto out_ret; | 
 | 2164 | 		} | 
 | 2165 | 	} | 
 | 2166 | 	if (list_empty(sdt_notes)) | 
 | 2167 | 		ret = -ENOENT; | 
 | 2168 |  | 
 | 2169 | out_ret: | 
 | 2170 | 	return ret; | 
 | 2171 | } | 
 | 2172 |  | 
 | 2173 | /** | 
 | 2174 |  * get_sdt_note_list : Wrapper to construct a list of sdt notes | 
 | 2175 |  * @head : empty list_head | 
 | 2176 |  * @target : file to find SDT notes from | 
 | 2177 |  * | 
 | 2178 |  * This opens the file, initializes | 
 | 2179 |  * the ELF and then calls construct_sdt_notes_list. | 
 | 2180 |  */ | 
 | 2181 | int get_sdt_note_list(struct list_head *head, const char *target) | 
 | 2182 | { | 
 | 2183 | 	Elf *elf; | 
 | 2184 | 	int fd, ret; | 
 | 2185 |  | 
 | 2186 | 	fd = open(target, O_RDONLY); | 
 | 2187 | 	if (fd < 0) | 
 | 2188 | 		return -EBADF; | 
 | 2189 |  | 
 | 2190 | 	elf = elf_begin(fd, PERF_ELF_C_READ_MMAP, NULL); | 
 | 2191 | 	if (!elf) { | 
 | 2192 | 		ret = -EBADF; | 
 | 2193 | 		goto out_close; | 
 | 2194 | 	} | 
 | 2195 | 	ret = construct_sdt_notes_list(elf, head); | 
 | 2196 | 	elf_end(elf); | 
 | 2197 | out_close: | 
 | 2198 | 	close(fd); | 
 | 2199 | 	return ret; | 
 | 2200 | } | 
 | 2201 |  | 
 | 2202 | /** | 
 | 2203 |  * cleanup_sdt_note_list : free the sdt notes' list | 
 | 2204 |  * @sdt_notes: sdt notes' list | 
 | 2205 |  * | 
 | 2206 |  * Free up the SDT notes in @sdt_notes. | 
 | 2207 |  * Returns the number of SDT notes free'd. | 
 | 2208 |  */ | 
 | 2209 | int cleanup_sdt_note_list(struct list_head *sdt_notes) | 
 | 2210 | { | 
 | 2211 | 	struct sdt_note *tmp, *pos; | 
 | 2212 | 	int nr_free = 0; | 
 | 2213 |  | 
 | 2214 | 	list_for_each_entry_safe(pos, tmp, sdt_notes, note_list) { | 
 | 2215 | 		list_del(&pos->note_list); | 
 | 2216 | 		free(pos->name); | 
 | 2217 | 		free(pos->provider); | 
 | 2218 | 		free(pos); | 
 | 2219 | 		nr_free++; | 
 | 2220 | 	} | 
 | 2221 | 	return nr_free; | 
 | 2222 | } | 
 | 2223 |  | 
 | 2224 | /** | 
 | 2225 |  * sdt_notes__get_count: Counts the number of sdt events | 
 | 2226 |  * @start: list_head to sdt_notes list | 
 | 2227 |  * | 
 | 2228 |  * Returns the number of SDT notes in a list | 
 | 2229 |  */ | 
 | 2230 | int sdt_notes__get_count(struct list_head *start) | 
 | 2231 | { | 
 | 2232 | 	struct sdt_note *sdt_ptr; | 
 | 2233 | 	int count = 0; | 
 | 2234 |  | 
 | 2235 | 	list_for_each_entry(sdt_ptr, start, note_list) | 
 | 2236 | 		count++; | 
 | 2237 | 	return count; | 
 | 2238 | } | 
 | 2239 | #endif | 
 | 2240 |  | 
 | 2241 | void symbol__elf_init(void) | 
 | 2242 | { | 
 | 2243 | 	elf_version(EV_CURRENT); | 
 | 2244 | } |