1 1.1 christos /* Generic symbol-table support for the BFD library. 2 1.10 christos Copyright (C) 1990-2025 Free Software Foundation, Inc. 3 1.1 christos Written by Cygnus Support. 4 1.1 christos 5 1.1 christos This file is part of BFD, the Binary File Descriptor library. 6 1.1 christos 7 1.1 christos This program is free software; you can redistribute it and/or modify 8 1.1 christos it under the terms of the GNU General Public License as published by 9 1.1 christos the Free Software Foundation; either version 3 of the License, or 10 1.1 christos (at your option) any later version. 11 1.1 christos 12 1.1 christos This program is distributed in the hope that it will be useful, 13 1.1 christos but WITHOUT ANY WARRANTY; without even the implied warranty of 14 1.1 christos MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the 15 1.1 christos GNU General Public License for more details. 16 1.1 christos 17 1.1 christos You should have received a copy of the GNU General Public License 18 1.1 christos along with this program; if not, write to the Free Software 19 1.1 christos Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston, 20 1.1 christos MA 02110-1301, USA. */ 21 1.1 christos 22 1.1 christos /* 23 1.1 christos SECTION 24 1.1 christos Symbols 25 1.1 christos 26 1.1 christos BFD tries to maintain as much symbol information as it can when 27 1.1 christos it moves information from file to file. BFD passes information 28 1.1 christos to applications though the <<asymbol>> structure. When the 29 1.1 christos application requests the symbol table, BFD reads the table in 30 1.1 christos the native form and translates parts of it into the internal 31 1.1 christos format. To maintain more than the information passed to 32 1.1 christos applications, some targets keep some information ``behind the 33 1.1 christos scenes'' in a structure only the particular back end knows 34 1.1 christos about. For example, the coff back end keeps the original 35 1.1 christos symbol table structure as well as the canonical structure when 36 1.1 christos a BFD is read in. On output, the coff back end can reconstruct 37 1.1 christos the output symbol table so that no information is lost, even 38 1.1 christos information unique to coff which BFD doesn't know or 39 1.1 christos understand. If a coff symbol table were read, but were written 40 1.1 christos through an a.out back end, all the coff specific information 41 1.1 christos would be lost. The symbol table of a BFD 42 1.1 christos is not necessarily read in until a canonicalize request is 43 1.1 christos made. Then the BFD back end fills in a table provided by the 44 1.1 christos application with pointers to the canonical information. To 45 1.1 christos output symbols, the application provides BFD with a table of 46 1.1 christos pointers to pointers to <<asymbol>>s. This allows applications 47 1.1 christos like the linker to output a symbol as it was read, since the ``behind 48 1.1 christos the scenes'' information will be still available. 49 1.1 christos @menu 50 1.1 christos @* Reading Symbols:: 51 1.1 christos @* Writing Symbols:: 52 1.1 christos @* Mini Symbols:: 53 1.1 christos @* typedef asymbol:: 54 1.1 christos @* symbol handling functions:: 55 1.1 christos @end menu 56 1.1 christos 57 1.1 christos INODE 58 1.1 christos Reading Symbols, Writing Symbols, Symbols, Symbols 59 1.1 christos SUBSECTION 60 1.1 christos Reading symbols 61 1.1 christos 62 1.1 christos There are two stages to reading a symbol table from a BFD: 63 1.1 christos allocating storage, and the actual reading process. This is an 64 1.1 christos excerpt from an application which reads the symbol table: 65 1.1 christos 66 1.6 christos | long storage_needed; 67 1.6 christos | asymbol **symbol_table; 68 1.6 christos | long number_of_symbols; 69 1.6 christos | long i; 70 1.1 christos | 71 1.6 christos | storage_needed = bfd_get_symtab_upper_bound (abfd); 72 1.1 christos | 73 1.1 christos | if (storage_needed < 0) 74 1.1 christos | FAIL 75 1.1 christos | 76 1.6 christos | if (storage_needed == 0) 77 1.6 christos | return; 78 1.3 christos | 79 1.6 christos | symbol_table = xmalloc (storage_needed); 80 1.6 christos | ... 81 1.6 christos | number_of_symbols = 82 1.6 christos | bfd_canonicalize_symtab (abfd, symbol_table); 83 1.1 christos | 84 1.1 christos | if (number_of_symbols < 0) 85 1.1 christos | FAIL 86 1.1 christos | 87 1.6 christos | for (i = 0; i < number_of_symbols; i++) 88 1.6 christos | process_symbol (symbol_table[i]); 89 1.1 christos 90 1.1 christos All storage for the symbols themselves is in an objalloc 91 1.1 christos connected to the BFD; it is freed when the BFD is closed. 92 1.1 christos 93 1.1 christos INODE 94 1.1 christos Writing Symbols, Mini Symbols, Reading Symbols, Symbols 95 1.1 christos SUBSECTION 96 1.1 christos Writing symbols 97 1.1 christos 98 1.1 christos Writing of a symbol table is automatic when a BFD open for 99 1.1 christos writing is closed. The application attaches a vector of 100 1.1 christos pointers to pointers to symbols to the BFD being written, and 101 1.1 christos fills in the symbol count. The close and cleanup code reads 102 1.1 christos through the table provided and performs all the necessary 103 1.1 christos operations. The BFD output code must always be provided with an 104 1.1 christos ``owned'' symbol: one which has come from another BFD, or one 105 1.1 christos which has been created using <<bfd_make_empty_symbol>>. Here is an 106 1.1 christos example showing the creation of a symbol table with only one element: 107 1.1 christos 108 1.6 christos | #include "sysdep.h" 109 1.6 christos | #include "bfd.h" 110 1.6 christos | int main (void) 111 1.6 christos | { 112 1.6 christos | bfd *abfd; 113 1.6 christos | asymbol *ptrs[2]; 114 1.6 christos | asymbol *new; 115 1.1 christos | 116 1.6 christos | abfd = bfd_openw ("foo","a.out-sunos-big"); 117 1.6 christos | bfd_set_format (abfd, bfd_object); 118 1.6 christos | new = bfd_make_empty_symbol (abfd); 119 1.6 christos | new->name = "dummy_symbol"; 120 1.6 christos | new->section = bfd_make_section_old_way (abfd, ".text"); 121 1.6 christos | new->flags = BSF_GLOBAL; 122 1.6 christos | new->value = 0x12345; 123 1.1 christos | 124 1.6 christos | ptrs[0] = new; 125 1.6 christos | ptrs[1] = 0; 126 1.1 christos | 127 1.6 christos | bfd_set_symtab (abfd, ptrs, 1); 128 1.6 christos | bfd_close (abfd); 129 1.6 christos | return 0; 130 1.6 christos | } 131 1.1 christos | 132 1.6 christos | ./makesym 133 1.6 christos | nm foo 134 1.6 christos | 00012345 A dummy_symbol 135 1.1 christos 136 1.1 christos Many formats cannot represent arbitrary symbol information; for 137 1.6 christos instance, the <<a.out>> object format does not allow an 138 1.1 christos arbitrary number of sections. A symbol pointing to a section 139 1.1 christos which is not one of <<.text>>, <<.data>> or <<.bss>> cannot 140 1.1 christos be described. 141 1.1 christos 142 1.1 christos INODE 143 1.1 christos Mini Symbols, typedef asymbol, Writing Symbols, Symbols 144 1.1 christos SUBSECTION 145 1.1 christos Mini Symbols 146 1.1 christos 147 1.1 christos Mini symbols provide read-only access to the symbol table. 148 1.1 christos They use less memory space, but require more time to access. 149 1.1 christos They can be useful for tools like nm or objdump, which may 150 1.1 christos have to handle symbol tables of extremely large executables. 151 1.1 christos 152 1.1 christos The <<bfd_read_minisymbols>> function will read the symbols 153 1.1 christos into memory in an internal form. It will return a <<void *>> 154 1.1 christos pointer to a block of memory, a symbol count, and the size of 155 1.1 christos each symbol. The pointer is allocated using <<malloc>>, and 156 1.1 christos should be freed by the caller when it is no longer needed. 157 1.1 christos 158 1.1 christos The function <<bfd_minisymbol_to_symbol>> will take a pointer 159 1.1 christos to a minisymbol, and a pointer to a structure returned by 160 1.1 christos <<bfd_make_empty_symbol>>, and return a <<asymbol>> structure. 161 1.1 christos The return value may or may not be the same as the value from 162 1.1 christos <<bfd_make_empty_symbol>> which was passed in. 163 1.1 christos 164 1.1 christos */ 165 1.1 christos 166 1.1 christos /* 167 1.1 christos DOCDD 168 1.1 christos INODE 169 1.1 christos typedef asymbol, symbol handling functions, Mini Symbols, Symbols 170 1.1 christos 171 1.1 christos SUBSECTION 172 1.1 christos typedef asymbol 173 1.1 christos 174 1.1 christos An <<asymbol>> has the form: 175 1.1 christos 176 1.1 christos CODE_FRAGMENT 177 1.1 christos .typedef struct bfd_symbol 178 1.1 christos .{ 179 1.1 christos . {* A pointer to the BFD which owns the symbol. This information 180 1.1 christos . is necessary so that a back end can work out what additional 181 1.1 christos . information (invisible to the application writer) is carried 182 1.1 christos . with the symbol. 183 1.1 christos . 184 1.1 christos . This field is *almost* redundant, since you can use section->owner 185 1.1 christos . instead, except that some symbols point to the global sections 186 1.1 christos . bfd_{abs,com,und}_section. This could be fixed by making 187 1.1 christos . these globals be per-bfd (or per-target-flavor). FIXME. *} 188 1.1 christos . struct bfd *the_bfd; {* Use bfd_asymbol_bfd(sym) to access this field. *} 189 1.1 christos . 190 1.1 christos . {* The text of the symbol. The name is left alone, and not copied; the 191 1.1 christos . application may not alter it. *} 192 1.1 christos . const char *name; 193 1.1 christos . 194 1.1 christos . {* The value of the symbol. This really should be a union of a 195 1.1 christos . numeric value with a pointer, since some flags indicate that 196 1.1 christos . a pointer to another symbol is stored here. *} 197 1.1 christos . symvalue value; 198 1.1 christos . 199 1.1 christos . {* Attributes of a symbol. *} 200 1.6 christos .#define BSF_NO_FLAGS 0 201 1.1 christos . 202 1.1 christos . {* The symbol has local scope; <<static>> in <<C>>. The value 203 1.1 christos . is the offset into the section of the data. *} 204 1.6 christos .#define BSF_LOCAL (1 << 0) 205 1.1 christos . 206 1.1 christos . {* The symbol has global scope; initialized data in <<C>>. The 207 1.1 christos . value is the offset into the section of the data. *} 208 1.6 christos .#define BSF_GLOBAL (1 << 1) 209 1.1 christos . 210 1.1 christos . {* The symbol has global scope and is exported. The value is 211 1.1 christos . the offset into the section of the data. *} 212 1.6 christos .#define BSF_EXPORT BSF_GLOBAL {* No real difference. *} 213 1.1 christos . 214 1.1 christos . {* A normal C symbol would be one of: 215 1.5 christos . <<BSF_LOCAL>>, <<BSF_UNDEFINED>> or <<BSF_GLOBAL>>. *} 216 1.1 christos . 217 1.1 christos . {* The symbol is a debugging record. The value has an arbitrary 218 1.1 christos . meaning, unless BSF_DEBUGGING_RELOC is also set. *} 219 1.6 christos .#define BSF_DEBUGGING (1 << 2) 220 1.1 christos . 221 1.1 christos . {* The symbol denotes a function entry point. Used in ELF, 222 1.1 christos . perhaps others someday. *} 223 1.6 christos .#define BSF_FUNCTION (1 << 3) 224 1.1 christos . 225 1.1 christos . {* Used by the linker. *} 226 1.6 christos .#define BSF_KEEP (1 << 5) 227 1.5 christos . 228 1.5 christos . {* An ELF common symbol. *} 229 1.6 christos .#define BSF_ELF_COMMON (1 << 6) 230 1.1 christos . 231 1.1 christos . {* A weak global symbol, overridable without warnings by 232 1.1 christos . a regular global symbol of the same name. *} 233 1.6 christos .#define BSF_WEAK (1 << 7) 234 1.1 christos . 235 1.1 christos . {* This symbol was created to point to a section, e.g. ELF's 236 1.1 christos . STT_SECTION symbols. *} 237 1.6 christos .#define BSF_SECTION_SYM (1 << 8) 238 1.1 christos . 239 1.1 christos . {* The symbol used to be a common symbol, but now it is 240 1.1 christos . allocated. *} 241 1.6 christos .#define BSF_OLD_COMMON (1 << 9) 242 1.1 christos . 243 1.1 christos . {* In some files the type of a symbol sometimes alters its 244 1.1 christos . location in an output file - ie in coff a <<ISFCN>> symbol 245 1.1 christos . which is also <<C_EXT>> symbol appears where it was 246 1.1 christos . declared and not at the end of a section. This bit is set 247 1.1 christos . by the target BFD part to convey this information. *} 248 1.6 christos .#define BSF_NOT_AT_END (1 << 10) 249 1.1 christos . 250 1.1 christos . {* Signal that the symbol is the label of constructor section. *} 251 1.6 christos .#define BSF_CONSTRUCTOR (1 << 11) 252 1.1 christos . 253 1.1 christos . {* Signal that the symbol is a warning symbol. The name is a 254 1.1 christos . warning. The name of the next symbol is the one to warn about; 255 1.1 christos . if a reference is made to a symbol with the same name as the next 256 1.1 christos . symbol, a warning is issued by the linker. *} 257 1.6 christos .#define BSF_WARNING (1 << 12) 258 1.1 christos . 259 1.1 christos . {* Signal that the symbol is indirect. This symbol is an indirect 260 1.1 christos . pointer to the symbol with the same name as the next symbol. *} 261 1.6 christos .#define BSF_INDIRECT (1 << 13) 262 1.1 christos . 263 1.1 christos . {* BSF_FILE marks symbols that contain a file name. This is used 264 1.1 christos . for ELF STT_FILE symbols. *} 265 1.6 christos .#define BSF_FILE (1 << 14) 266 1.1 christos . 267 1.1 christos . {* Symbol is from dynamic linking information. *} 268 1.6 christos .#define BSF_DYNAMIC (1 << 15) 269 1.1 christos . 270 1.1 christos . {* The symbol denotes a data object. Used in ELF, and perhaps 271 1.1 christos . others someday. *} 272 1.6 christos .#define BSF_OBJECT (1 << 16) 273 1.1 christos . 274 1.1 christos . {* This symbol is a debugging symbol. The value is the offset 275 1.1 christos . into the section of the data. BSF_DEBUGGING should be set 276 1.1 christos . as well. *} 277 1.6 christos .#define BSF_DEBUGGING_RELOC (1 << 17) 278 1.1 christos . 279 1.1 christos . {* This symbol is thread local. Used in ELF. *} 280 1.6 christos .#define BSF_THREAD_LOCAL (1 << 18) 281 1.1 christos . 282 1.1 christos . {* This symbol represents a complex relocation expression, 283 1.1 christos . with the expression tree serialized in the symbol name. *} 284 1.6 christos .#define BSF_RELC (1 << 19) 285 1.1 christos . 286 1.1 christos . {* This symbol represents a signed complex relocation expression, 287 1.1 christos . with the expression tree serialized in the symbol name. *} 288 1.6 christos .#define BSF_SRELC (1 << 20) 289 1.1 christos . 290 1.1 christos . {* This symbol was created by bfd_get_synthetic_symtab. *} 291 1.6 christos .#define BSF_SYNTHETIC (1 << 21) 292 1.1 christos . 293 1.1 christos . {* This symbol is an indirect code object. Unrelated to BSF_INDIRECT. 294 1.1 christos . The dynamic linker will compute the value of this symbol by 295 1.1 christos . calling the function that it points to. BSF_FUNCTION must 296 1.1 christos . also be also set. *} 297 1.1 christos .#define BSF_GNU_INDIRECT_FUNCTION (1 << 22) 298 1.1 christos . {* This symbol is a globally unique data object. The dynamic linker 299 1.1 christos . will make sure that in the entire process there is just one symbol 300 1.1 christos . with this name and type in use. BSF_OBJECT must also be set. *} 301 1.6 christos .#define BSF_GNU_UNIQUE (1 << 23) 302 1.1 christos . 303 1.8 christos . {* This section symbol should be included in the symbol table. *} 304 1.8 christos .#define BSF_SECTION_SYM_USED (1 << 24) 305 1.8 christos . 306 1.1 christos . flagword flags; 307 1.1 christos . 308 1.1 christos . {* A pointer to the section to which this symbol is 309 1.1 christos . relative. This will always be non NULL, there are special 310 1.1 christos . sections for undefined and absolute symbols. *} 311 1.1 christos . struct bfd_section *section; 312 1.1 christos . 313 1.1 christos . {* Back end special data. *} 314 1.1 christos . union 315 1.1 christos . { 316 1.1 christos . void *p; 317 1.1 christos . bfd_vma i; 318 1.1 christos . } 319 1.1 christos . udata; 320 1.1 christos .} 321 1.1 christos .asymbol; 322 1.1 christos . 323 1.9 christos 324 1.9 christos EXTERNAL 325 1.9 christos .typedef enum bfd_print_symbol 326 1.9 christos .{ 327 1.9 christos . bfd_print_symbol_name, 328 1.9 christos . bfd_print_symbol_more, 329 1.9 christos . bfd_print_symbol_all 330 1.9 christos .} bfd_print_symbol_type; 331 1.9 christos . 332 1.9 christos .{* Information about a symbol that nm needs. *} 333 1.9 christos . 334 1.9 christos .typedef struct _symbol_info 335 1.9 christos .{ 336 1.9 christos . symvalue value; 337 1.9 christos . char type; 338 1.9 christos . const char *name; {* Symbol name. *} 339 1.9 christos . unsigned char stab_type; {* Stab type. *} 340 1.9 christos . char stab_other; {* Stab other. *} 341 1.9 christos . short stab_desc; {* Stab desc. *} 342 1.9 christos . const char *stab_name; {* String for stab type. *} 343 1.9 christos .} symbol_info; 344 1.9 christos . 345 1.10 christos .{* An empty string that will not match the address of any other 346 1.10 christos . symbol name, even unnamed local symbols which will also have empty 347 1.10 christos . string names. This can be used to flag a symbol as corrupt if its 348 1.10 christos . name uses an out of range string table index. *} 349 1.10 christos .extern const char bfd_symbol_error_name[]; 350 1.1 christos */ 351 1.1 christos 352 1.1 christos #include "sysdep.h" 353 1.1 christos #include "bfd.h" 354 1.1 christos #include "libbfd.h" 355 1.1 christos #include "safe-ctype.h" 356 1.1 christos #include "bfdlink.h" 357 1.1 christos #include "aout/stab_gnu.h" 358 1.1 christos 359 1.10 christos const char bfd_symbol_error_name[] = { 0 }; 360 1.10 christos 361 1.1 christos /* 362 1.1 christos DOCDD 363 1.1 christos INODE 364 1.1 christos symbol handling functions, , typedef asymbol, Symbols 365 1.1 christos SUBSECTION 366 1.1 christos Symbol handling functions 367 1.1 christos */ 368 1.1 christos 369 1.1 christos /* 370 1.1 christos FUNCTION 371 1.1 christos bfd_get_symtab_upper_bound 372 1.1 christos 373 1.1 christos DESCRIPTION 374 1.1 christos Return the number of bytes required to store a vector of pointers 375 1.1 christos to <<asymbols>> for all the symbols in the BFD @var{abfd}, 376 1.1 christos including a terminal NULL pointer. If there are no symbols in 377 1.1 christos the BFD, then return 0. If an error occurs, return -1. 378 1.1 christos 379 1.1 christos .#define bfd_get_symtab_upper_bound(abfd) \ 380 1.6 christos . BFD_SEND (abfd, _bfd_get_symtab_upper_bound, (abfd)) 381 1.1 christos . 382 1.1 christos */ 383 1.1 christos 384 1.1 christos /* 385 1.1 christos FUNCTION 386 1.1 christos bfd_is_local_label 387 1.1 christos 388 1.1 christos SYNOPSIS 389 1.8 christos bool bfd_is_local_label (bfd *abfd, asymbol *sym); 390 1.1 christos 391 1.1 christos DESCRIPTION 392 1.1 christos Return TRUE if the given symbol @var{sym} in the BFD @var{abfd} is 393 1.1 christos a compiler generated local label, else return FALSE. 394 1.1 christos */ 395 1.1 christos 396 1.8 christos bool 397 1.1 christos bfd_is_local_label (bfd *abfd, asymbol *sym) 398 1.1 christos { 399 1.1 christos /* The BSF_SECTION_SYM check is needed for IA-64, where every label that 400 1.1 christos starts with '.' is local. This would accidentally catch section names 401 1.1 christos if we didn't reject them here. */ 402 1.1 christos if ((sym->flags & (BSF_GLOBAL | BSF_WEAK | BSF_FILE | BSF_SECTION_SYM)) != 0) 403 1.8 christos return false; 404 1.10 christos if (sym->name == NULL || sym->name == bfd_symbol_error_name) 405 1.8 christos return false; 406 1.1 christos return bfd_is_local_label_name (abfd, sym->name); 407 1.1 christos } 408 1.1 christos 409 1.1 christos /* 410 1.1 christos FUNCTION 411 1.1 christos bfd_is_local_label_name 412 1.1 christos 413 1.1 christos SYNOPSIS 414 1.8 christos bool bfd_is_local_label_name (bfd *abfd, const char *name); 415 1.1 christos 416 1.1 christos DESCRIPTION 417 1.1 christos Return TRUE if a symbol with the name @var{name} in the BFD 418 1.1 christos @var{abfd} is a compiler generated local label, else return 419 1.1 christos FALSE. This just checks whether the name has the form of a 420 1.1 christos local label. 421 1.1 christos 422 1.1 christos .#define bfd_is_local_label_name(abfd, name) \ 423 1.6 christos . BFD_SEND (abfd, _bfd_is_local_label_name, (abfd, name)) 424 1.1 christos . 425 1.1 christos */ 426 1.1 christos 427 1.1 christos /* 428 1.1 christos FUNCTION 429 1.1 christos bfd_is_target_special_symbol 430 1.1 christos 431 1.1 christos SYNOPSIS 432 1.8 christos bool bfd_is_target_special_symbol (bfd *abfd, asymbol *sym); 433 1.1 christos 434 1.1 christos DESCRIPTION 435 1.1 christos Return TRUE iff a symbol @var{sym} in the BFD @var{abfd} is something 436 1.1 christos special to the particular target represented by the BFD. Such symbols 437 1.1 christos should normally not be mentioned to the user. 438 1.1 christos 439 1.1 christos .#define bfd_is_target_special_symbol(abfd, sym) \ 440 1.6 christos . BFD_SEND (abfd, _bfd_is_target_special_symbol, (abfd, sym)) 441 1.1 christos . 442 1.1 christos */ 443 1.1 christos 444 1.1 christos /* 445 1.1 christos FUNCTION 446 1.1 christos bfd_canonicalize_symtab 447 1.1 christos 448 1.1 christos DESCRIPTION 449 1.1 christos Read the symbols from the BFD @var{abfd}, and fills in 450 1.1 christos the vector @var{location} with pointers to the symbols and 451 1.1 christos a trailing NULL. 452 1.1 christos Return the actual number of symbol pointers, not 453 1.1 christos including the NULL. 454 1.1 christos 455 1.1 christos .#define bfd_canonicalize_symtab(abfd, location) \ 456 1.6 christos . BFD_SEND (abfd, _bfd_canonicalize_symtab, (abfd, location)) 457 1.1 christos . 458 1.1 christos */ 459 1.1 christos 460 1.1 christos /* 461 1.1 christos FUNCTION 462 1.1 christos bfd_set_symtab 463 1.1 christos 464 1.1 christos SYNOPSIS 465 1.8 christos bool bfd_set_symtab 466 1.1 christos (bfd *abfd, asymbol **location, unsigned int count); 467 1.1 christos 468 1.1 christos DESCRIPTION 469 1.1 christos Arrange that when the output BFD @var{abfd} is closed, 470 1.1 christos the table @var{location} of @var{count} pointers to symbols 471 1.1 christos will be written. 472 1.1 christos */ 473 1.1 christos 474 1.8 christos bool 475 1.1 christos bfd_set_symtab (bfd *abfd, asymbol **location, unsigned int symcount) 476 1.1 christos { 477 1.1 christos if (abfd->format != bfd_object || bfd_read_p (abfd)) 478 1.1 christos { 479 1.1 christos bfd_set_error (bfd_error_invalid_operation); 480 1.8 christos return false; 481 1.1 christos } 482 1.1 christos 483 1.7 christos abfd->outsymbols = location; 484 1.7 christos abfd->symcount = symcount; 485 1.8 christos return true; 486 1.1 christos } 487 1.1 christos 488 1.1 christos /* 489 1.1 christos FUNCTION 490 1.1 christos bfd_print_symbol_vandf 491 1.1 christos 492 1.1 christos SYNOPSIS 493 1.1 christos void bfd_print_symbol_vandf (bfd *abfd, void *file, asymbol *symbol); 494 1.1 christos 495 1.1 christos DESCRIPTION 496 1.1 christos Print the value and flags of the @var{symbol} supplied to the 497 1.1 christos stream @var{file}. 498 1.1 christos */ 499 1.1 christos void 500 1.1 christos bfd_print_symbol_vandf (bfd *abfd, void *arg, asymbol *symbol) 501 1.1 christos { 502 1.1 christos FILE *file = (FILE *) arg; 503 1.1 christos 504 1.1 christos flagword type = symbol->flags; 505 1.1 christos 506 1.1 christos if (symbol->section != NULL) 507 1.1 christos bfd_fprintf_vma (abfd, file, symbol->value + symbol->section->vma); 508 1.1 christos else 509 1.1 christos bfd_fprintf_vma (abfd, file, symbol->value); 510 1.1 christos 511 1.1 christos /* This presumes that a symbol can not be both BSF_DEBUGGING and 512 1.1 christos BSF_DYNAMIC, nor more than one of BSF_FUNCTION, BSF_FILE, and 513 1.1 christos BSF_OBJECT. */ 514 1.1 christos fprintf (file, " %c%c%c%c%c%c%c", 515 1.1 christos ((type & BSF_LOCAL) 516 1.1 christos ? (type & BSF_GLOBAL) ? '!' : 'l' 517 1.1 christos : (type & BSF_GLOBAL) ? 'g' 518 1.1 christos : (type & BSF_GNU_UNIQUE) ? 'u' : ' '), 519 1.1 christos (type & BSF_WEAK) ? 'w' : ' ', 520 1.1 christos (type & BSF_CONSTRUCTOR) ? 'C' : ' ', 521 1.1 christos (type & BSF_WARNING) ? 'W' : ' ', 522 1.1 christos (type & BSF_INDIRECT) ? 'I' : (type & BSF_GNU_INDIRECT_FUNCTION) ? 'i' : ' ', 523 1.1 christos (type & BSF_DEBUGGING) ? 'd' : (type & BSF_DYNAMIC) ? 'D' : ' ', 524 1.1 christos ((type & BSF_FUNCTION) 525 1.1 christos ? 'F' 526 1.1 christos : ((type & BSF_FILE) 527 1.1 christos ? 'f' 528 1.1 christos : ((type & BSF_OBJECT) ? 'O' : ' ')))); 529 1.1 christos } 530 1.1 christos 531 1.1 christos /* 532 1.1 christos FUNCTION 533 1.1 christos bfd_make_empty_symbol 534 1.1 christos 535 1.1 christos DESCRIPTION 536 1.1 christos Create a new <<asymbol>> structure for the BFD @var{abfd} 537 1.1 christos and return a pointer to it. 538 1.1 christos 539 1.1 christos This routine is necessary because each back end has private 540 1.1 christos information surrounding the <<asymbol>>. Building your own 541 1.1 christos <<asymbol>> and pointing to it will not create the private 542 1.1 christos information, and will cause problems later on. 543 1.1 christos 544 1.1 christos .#define bfd_make_empty_symbol(abfd) \ 545 1.6 christos . BFD_SEND (abfd, _bfd_make_empty_symbol, (abfd)) 546 1.1 christos . 547 1.1 christos */ 548 1.1 christos 549 1.1 christos /* 550 1.1 christos FUNCTION 551 1.1 christos _bfd_generic_make_empty_symbol 552 1.1 christos 553 1.1 christos SYNOPSIS 554 1.1 christos asymbol *_bfd_generic_make_empty_symbol (bfd *); 555 1.1 christos 556 1.1 christos DESCRIPTION 557 1.1 christos Create a new <<asymbol>> structure for the BFD @var{abfd} 558 1.1 christos and return a pointer to it. Used by core file routines, 559 1.1 christos binary back-end and anywhere else where no private info 560 1.1 christos is needed. 561 1.1 christos */ 562 1.1 christos 563 1.1 christos asymbol * 564 1.1 christos _bfd_generic_make_empty_symbol (bfd *abfd) 565 1.1 christos { 566 1.8 christos size_t amt = sizeof (asymbol); 567 1.1 christos asymbol *new_symbol = (asymbol *) bfd_zalloc (abfd, amt); 568 1.1 christos if (new_symbol) 569 1.1 christos new_symbol->the_bfd = abfd; 570 1.1 christos return new_symbol; 571 1.1 christos } 572 1.1 christos 573 1.1 christos /* 574 1.1 christos FUNCTION 575 1.1 christos bfd_make_debug_symbol 576 1.1 christos 577 1.1 christos DESCRIPTION 578 1.1 christos Create a new <<asymbol>> structure for the BFD @var{abfd}, 579 1.9 christos to be used as a debugging symbol. 580 1.1 christos 581 1.9 christos .#define bfd_make_debug_symbol(abfd) \ 582 1.9 christos . BFD_SEND (abfd, _bfd_make_debug_symbol, (abfd)) 583 1.1 christos . 584 1.1 christos */ 585 1.1 christos 586 1.1 christos struct section_to_type 587 1.1 christos { 588 1.1 christos const char *section; 589 1.1 christos char type; 590 1.1 christos }; 591 1.1 christos 592 1.8 christos /* Map special section names to POSIX/BSD single-character symbol types. 593 1.1 christos This table is probably incomplete. It is sorted for convenience of 594 1.1 christos adding entries. Since it is so short, a linear search is used. */ 595 1.1 christos static const struct section_to_type stt[] = 596 1.1 christos { 597 1.10 christos {".didat", 'i'}, /* MSVC's .didat (delay import) section */ 598 1.6 christos {".drectve", 'i'}, /* MSVC's .drective section */ 599 1.6 christos {".edata", 'e'}, /* MSVC's .edata (export) section */ 600 1.6 christos {".idata", 'i'}, /* MSVC's .idata (import) section */ 601 1.6 christos {".pdata", 'p'}, /* MSVC's .pdata (stack unwind) section */ 602 1.1 christos {0, 0} 603 1.1 christos }; 604 1.1 christos 605 1.1 christos /* Return the single-character symbol type corresponding to 606 1.1 christos section S, or '?' for an unknown COFF section. 607 1.1 christos 608 1.7 christos Check for leading strings which match, followed by a number, '.', 609 1.8 christos or '$' so .idata5 matches the .idata entry. */ 610 1.1 christos 611 1.1 christos static char 612 1.1 christos coff_section_type (const char *s) 613 1.1 christos { 614 1.1 christos const struct section_to_type *t; 615 1.1 christos 616 1.1 christos for (t = &stt[0]; t->section; t++) 617 1.7 christos { 618 1.7 christos size_t len = strlen (t->section); 619 1.7 christos if (strncmp (s, t->section, len) == 0 620 1.7 christos && memchr (".$0123456789", s[len], 13) != 0) 621 1.7 christos return t->type; 622 1.7 christos } 623 1.1 christos 624 1.1 christos return '?'; 625 1.1 christos } 626 1.1 christos 627 1.1 christos /* Return the single-character symbol type corresponding to section 628 1.1 christos SECTION, or '?' for an unknown section. This uses section flags to 629 1.1 christos identify sections. 630 1.1 christos 631 1.8 christos FIXME These types are unhandled: e, i, p. If we handled these also, 632 1.1 christos we could perhaps obsolete coff_section_type. */ 633 1.1 christos 634 1.1 christos static char 635 1.1 christos decode_section_type (const struct bfd_section *section) 636 1.1 christos { 637 1.1 christos if (section->flags & SEC_CODE) 638 1.1 christos return 't'; 639 1.1 christos if (section->flags & SEC_DATA) 640 1.1 christos { 641 1.1 christos if (section->flags & SEC_READONLY) 642 1.1 christos return 'r'; 643 1.1 christos else if (section->flags & SEC_SMALL_DATA) 644 1.1 christos return 'g'; 645 1.1 christos else 646 1.1 christos return 'd'; 647 1.1 christos } 648 1.1 christos if ((section->flags & SEC_HAS_CONTENTS) == 0) 649 1.1 christos { 650 1.1 christos if (section->flags & SEC_SMALL_DATA) 651 1.1 christos return 's'; 652 1.1 christos else 653 1.1 christos return 'b'; 654 1.1 christos } 655 1.1 christos if (section->flags & SEC_DEBUGGING) 656 1.1 christos return 'N'; 657 1.1 christos if ((section->flags & SEC_HAS_CONTENTS) && (section->flags & SEC_READONLY)) 658 1.1 christos return 'n'; 659 1.1 christos 660 1.1 christos return '?'; 661 1.1 christos } 662 1.1 christos 663 1.1 christos /* 664 1.1 christos FUNCTION 665 1.1 christos bfd_decode_symclass 666 1.1 christos 667 1.9 christos SYNOPSIS 668 1.9 christos int bfd_decode_symclass (asymbol *symbol); 669 1.9 christos 670 1.1 christos DESCRIPTION 671 1.1 christos Return a character corresponding to the symbol 672 1.1 christos class of @var{symbol}, or '?' for an unknown class. 673 1.1 christos */ 674 1.1 christos int 675 1.1 christos bfd_decode_symclass (asymbol *symbol) 676 1.1 christos { 677 1.1 christos char c; 678 1.1 christos 679 1.8 christos /* Paranoia... */ 680 1.8 christos if (symbol == NULL || symbol->section == NULL) 681 1.8 christos return '?'; 682 1.8 christos 683 1.1 christos if (symbol->section && bfd_is_com_section (symbol->section)) 684 1.8 christos { 685 1.8 christos if (symbol->section->flags & SEC_SMALL_DATA) 686 1.8 christos return 'c'; 687 1.8 christos else 688 1.8 christos return 'C'; 689 1.8 christos } 690 1.1 christos if (bfd_is_und_section (symbol->section)) 691 1.1 christos { 692 1.1 christos if (symbol->flags & BSF_WEAK) 693 1.1 christos { 694 1.1 christos /* If weak, determine if it's specifically an object 695 1.1 christos or non-object weak. */ 696 1.1 christos if (symbol->flags & BSF_OBJECT) 697 1.1 christos return 'v'; 698 1.1 christos else 699 1.1 christos return 'w'; 700 1.1 christos } 701 1.1 christos else 702 1.1 christos return 'U'; 703 1.1 christos } 704 1.1 christos if (bfd_is_ind_section (symbol->section)) 705 1.1 christos return 'I'; 706 1.1 christos if (symbol->flags & BSF_GNU_INDIRECT_FUNCTION) 707 1.1 christos return 'i'; 708 1.1 christos if (symbol->flags & BSF_WEAK) 709 1.1 christos { 710 1.1 christos /* If weak, determine if it's specifically an object 711 1.1 christos or non-object weak. */ 712 1.1 christos if (symbol->flags & BSF_OBJECT) 713 1.1 christos return 'V'; 714 1.1 christos else 715 1.1 christos return 'W'; 716 1.1 christos } 717 1.1 christos if (symbol->flags & BSF_GNU_UNIQUE) 718 1.1 christos return 'u'; 719 1.1 christos if (!(symbol->flags & (BSF_GLOBAL | BSF_LOCAL))) 720 1.1 christos return '?'; 721 1.1 christos 722 1.1 christos if (bfd_is_abs_section (symbol->section)) 723 1.1 christos c = 'a'; 724 1.1 christos else if (symbol->section) 725 1.1 christos { 726 1.8 christos c = coff_section_type (symbol->section->name); 727 1.1 christos if (c == '?') 728 1.8 christos c = decode_section_type (symbol->section); 729 1.1 christos } 730 1.1 christos else 731 1.1 christos return '?'; 732 1.1 christos if (symbol->flags & BSF_GLOBAL) 733 1.1 christos c = TOUPPER (c); 734 1.1 christos return c; 735 1.1 christos 736 1.1 christos /* We don't have to handle these cases just yet, but we will soon: 737 1.1 christos N_SETV: 'v'; 738 1.1 christos N_SETA: 'l'; 739 1.1 christos N_SETT: 'x'; 740 1.1 christos N_SETD: 'z'; 741 1.1 christos N_SETB: 's'; 742 1.1 christos N_INDR: 'i'; 743 1.1 christos */ 744 1.1 christos } 745 1.1 christos 746 1.1 christos /* 747 1.1 christos FUNCTION 748 1.1 christos bfd_is_undefined_symclass 749 1.1 christos 750 1.9 christos SYNOPSIS 751 1.9 christos bool bfd_is_undefined_symclass (int symclass); 752 1.9 christos 753 1.1 christos DESCRIPTION 754 1.1 christos Returns non-zero if the class symbol returned by 755 1.1 christos bfd_decode_symclass represents an undefined symbol. 756 1.1 christos Returns zero otherwise. 757 1.1 christos */ 758 1.1 christos 759 1.8 christos bool 760 1.1 christos bfd_is_undefined_symclass (int symclass) 761 1.1 christos { 762 1.1 christos return symclass == 'U' || symclass == 'w' || symclass == 'v'; 763 1.1 christos } 764 1.1 christos 765 1.1 christos /* 766 1.1 christos FUNCTION 767 1.1 christos bfd_symbol_info 768 1.1 christos 769 1.9 christos SYNOPSIS 770 1.9 christos void bfd_symbol_info (asymbol *symbol, symbol_info *ret); 771 1.9 christos 772 1.1 christos DESCRIPTION 773 1.1 christos Fill in the basic info about symbol that nm needs. 774 1.1 christos Additional info may be added by the back-ends after 775 1.1 christos calling this function. 776 1.1 christos */ 777 1.1 christos 778 1.1 christos void 779 1.1 christos bfd_symbol_info (asymbol *symbol, symbol_info *ret) 780 1.1 christos { 781 1.1 christos ret->type = bfd_decode_symclass (symbol); 782 1.1 christos 783 1.1 christos if (bfd_is_undefined_symclass (ret->type)) 784 1.1 christos ret->value = 0; 785 1.1 christos else 786 1.1 christos ret->value = symbol->value + symbol->section->vma; 787 1.1 christos 788 1.10 christos ret->name = (symbol->name != bfd_symbol_error_name 789 1.10 christos ? symbol->name : _("<corrupt>")); 790 1.1 christos } 791 1.1 christos 792 1.1 christos /* 793 1.1 christos FUNCTION 794 1.1 christos bfd_copy_private_symbol_data 795 1.1 christos 796 1.1 christos SYNOPSIS 797 1.8 christos bool bfd_copy_private_symbol_data 798 1.1 christos (bfd *ibfd, asymbol *isym, bfd *obfd, asymbol *osym); 799 1.1 christos 800 1.1 christos DESCRIPTION 801 1.1 christos Copy private symbol information from @var{isym} in the BFD 802 1.1 christos @var{ibfd} to the symbol @var{osym} in the BFD @var{obfd}. 803 1.1 christos Return <<TRUE>> on success, <<FALSE>> on error. Possible error 804 1.1 christos returns are: 805 1.1 christos 806 1.1 christos o <<bfd_error_no_memory>> - 807 1.1 christos Not enough memory exists to create private data for @var{osec}. 808 1.1 christos 809 1.1 christos .#define bfd_copy_private_symbol_data(ibfd, isymbol, obfd, osymbol) \ 810 1.6 christos . BFD_SEND (obfd, _bfd_copy_private_symbol_data, \ 811 1.6 christos . (ibfd, isymbol, obfd, osymbol)) 812 1.1 christos . 813 1.1 christos */ 814 1.1 christos 815 1.1 christos /* The generic version of the function which returns mini symbols. 816 1.1 christos This is used when the backend does not provide a more efficient 817 1.1 christos version. It just uses BFD asymbol structures as mini symbols. */ 818 1.1 christos 819 1.1 christos long 820 1.1 christos _bfd_generic_read_minisymbols (bfd *abfd, 821 1.8 christos bool dynamic, 822 1.1 christos void **minisymsp, 823 1.1 christos unsigned int *sizep) 824 1.1 christos { 825 1.1 christos long storage; 826 1.1 christos asymbol **syms = NULL; 827 1.1 christos long symcount; 828 1.1 christos 829 1.1 christos if (dynamic) 830 1.1 christos storage = bfd_get_dynamic_symtab_upper_bound (abfd); 831 1.1 christos else 832 1.1 christos storage = bfd_get_symtab_upper_bound (abfd); 833 1.1 christos if (storage < 0) 834 1.1 christos goto error_return; 835 1.1 christos if (storage == 0) 836 1.1 christos return 0; 837 1.1 christos 838 1.1 christos syms = (asymbol **) bfd_malloc (storage); 839 1.1 christos if (syms == NULL) 840 1.1 christos goto error_return; 841 1.1 christos 842 1.1 christos if (dynamic) 843 1.1 christos symcount = bfd_canonicalize_dynamic_symtab (abfd, syms); 844 1.1 christos else 845 1.1 christos symcount = bfd_canonicalize_symtab (abfd, syms); 846 1.1 christos if (symcount < 0) 847 1.1 christos goto error_return; 848 1.1 christos 849 1.7 christos if (symcount == 0) 850 1.7 christos /* We return 0 above when storage is 0. Exit in the same state 851 1.7 christos here, so as to not complicate callers with having to deal with 852 1.7 christos freeing memory for zero symcount. */ 853 1.7 christos free (syms); 854 1.7 christos else 855 1.7 christos { 856 1.7 christos *minisymsp = syms; 857 1.7 christos *sizep = sizeof (asymbol *); 858 1.7 christos } 859 1.1 christos return symcount; 860 1.1 christos 861 1.1 christos error_return: 862 1.1 christos bfd_set_error (bfd_error_no_symbols); 863 1.8 christos free (syms); 864 1.1 christos return -1; 865 1.1 christos } 866 1.1 christos 867 1.1 christos /* The generic version of the function which converts a minisymbol to 868 1.1 christos an asymbol. We don't worry about the sym argument we are passed; 869 1.1 christos we just return the asymbol the minisymbol points to. */ 870 1.1 christos 871 1.1 christos asymbol * 872 1.1 christos _bfd_generic_minisymbol_to_symbol (bfd *abfd ATTRIBUTE_UNUSED, 873 1.8 christos bool dynamic ATTRIBUTE_UNUSED, 874 1.1 christos const void *minisym, 875 1.1 christos asymbol *sym ATTRIBUTE_UNUSED) 876 1.1 christos { 877 1.1 christos return *(asymbol **) minisym; 878 1.1 christos } 879 1.1 christos 880 1.1 christos /* Look through stabs debugging information in .stab and .stabstr 881 1.1 christos sections to find the source file and line closest to a desired 882 1.1 christos location. This is used by COFF and ELF targets. It sets *pfound 883 1.1 christos to TRUE if it finds some information. The *pinfo field is used to 884 1.1 christos pass cached information in and out of this routine; this first time 885 1.1 christos the routine is called for a BFD, *pinfo should be NULL. The value 886 1.1 christos placed in *pinfo should be saved with the BFD, and passed back each 887 1.1 christos time this function is called. */ 888 1.1 christos 889 1.1 christos /* We use a cache by default. */ 890 1.1 christos 891 1.1 christos #define ENABLE_CACHING 892 1.1 christos 893 1.1 christos /* We keep an array of indexentry structures to record where in the 894 1.1 christos stabs section we should look to find line number information for a 895 1.1 christos particular address. */ 896 1.1 christos 897 1.1 christos struct indexentry 898 1.1 christos { 899 1.1 christos bfd_vma val; 900 1.1 christos bfd_byte *stab; 901 1.1 christos bfd_byte *str; 902 1.1 christos char *directory_name; 903 1.1 christos char *file_name; 904 1.1 christos char *function_name; 905 1.7 christos int idx; 906 1.1 christos }; 907 1.1 christos 908 1.1 christos /* Compare two indexentry structures. This is called via qsort. */ 909 1.1 christos 910 1.1 christos static int 911 1.1 christos cmpindexentry (const void *a, const void *b) 912 1.1 christos { 913 1.1 christos const struct indexentry *contestantA = (const struct indexentry *) a; 914 1.1 christos const struct indexentry *contestantB = (const struct indexentry *) b; 915 1.1 christos 916 1.1 christos if (contestantA->val < contestantB->val) 917 1.1 christos return -1; 918 1.7 christos if (contestantA->val > contestantB->val) 919 1.1 christos return 1; 920 1.7 christos return contestantA->idx - contestantB->idx; 921 1.1 christos } 922 1.1 christos 923 1.1 christos /* A pointer to this structure is stored in *pinfo. */ 924 1.1 christos 925 1.1 christos struct stab_find_info 926 1.1 christos { 927 1.1 christos /* The .stab section. */ 928 1.1 christos asection *stabsec; 929 1.1 christos /* The .stabstr section. */ 930 1.1 christos asection *strsec; 931 1.1 christos /* The contents of the .stab section. */ 932 1.1 christos bfd_byte *stabs; 933 1.1 christos /* The contents of the .stabstr section. */ 934 1.1 christos bfd_byte *strs; 935 1.1 christos 936 1.1 christos /* A table that indexes stabs by memory address. */ 937 1.1 christos struct indexentry *indextable; 938 1.1 christos /* The number of entries in indextable. */ 939 1.1 christos int indextablesize; 940 1.1 christos 941 1.1 christos #ifdef ENABLE_CACHING 942 1.1 christos /* Cached values to restart quickly. */ 943 1.1 christos struct indexentry *cached_indexentry; 944 1.1 christos bfd_vma cached_offset; 945 1.1 christos bfd_byte *cached_stab; 946 1.1 christos char *cached_file_name; 947 1.1 christos #endif 948 1.1 christos 949 1.1 christos /* Saved ptr to malloc'ed filename. */ 950 1.1 christos char *filename; 951 1.1 christos }; 952 1.1 christos 953 1.8 christos bool 954 1.1 christos _bfd_stab_section_find_nearest_line (bfd *abfd, 955 1.1 christos asymbol **symbols, 956 1.1 christos asection *section, 957 1.1 christos bfd_vma offset, 958 1.8 christos bool *pfound, 959 1.1 christos const char **pfilename, 960 1.1 christos const char **pfnname, 961 1.1 christos unsigned int *pline, 962 1.1 christos void **pinfo) 963 1.1 christos { 964 1.1 christos struct stab_find_info *info; 965 1.1 christos bfd_size_type stabsize, strsize; 966 1.1 christos bfd_byte *stab, *str; 967 1.3 christos bfd_byte *nul_fun, *nul_str; 968 1.1 christos bfd_size_type stroff; 969 1.1 christos struct indexentry *indexentry; 970 1.1 christos char *file_name; 971 1.1 christos char *directory_name; 972 1.8 christos bool saw_line, saw_func; 973 1.1 christos 974 1.8 christos *pfound = false; 975 1.1 christos *pfilename = bfd_get_filename (abfd); 976 1.1 christos *pfnname = NULL; 977 1.1 christos *pline = 0; 978 1.1 christos 979 1.1 christos /* Stabs entries use a 12 byte format: 980 1.1 christos 4 byte string table index 981 1.1 christos 1 byte stab type 982 1.1 christos 1 byte stab other field 983 1.1 christos 2 byte stab desc field 984 1.1 christos 4 byte stab value 985 1.1 christos FIXME: This will have to change for a 64 bit object format. 986 1.1 christos 987 1.1 christos The stabs symbols are divided into compilation units. For the 988 1.1 christos first entry in each unit, the type of 0, the value is the length 989 1.1 christos of the string table for this unit, and the desc field is the 990 1.1 christos number of stabs symbols for this unit. */ 991 1.1 christos 992 1.1 christos #define STRDXOFF (0) 993 1.1 christos #define TYPEOFF (4) 994 1.1 christos #define OTHEROFF (5) 995 1.1 christos #define DESCOFF (6) 996 1.1 christos #define VALOFF (8) 997 1.1 christos #define STABSIZE (12) 998 1.1 christos 999 1.1 christos info = (struct stab_find_info *) *pinfo; 1000 1.1 christos if (info != NULL) 1001 1.1 christos { 1002 1.1 christos if (info->stabsec == NULL || info->strsec == NULL) 1003 1.1 christos { 1004 1.9 christos /* No usable stabs debugging information. */ 1005 1.8 christos return true; 1006 1.1 christos } 1007 1.1 christos 1008 1.1 christos stabsize = (info->stabsec->rawsize 1009 1.1 christos ? info->stabsec->rawsize 1010 1.1 christos : info->stabsec->size); 1011 1.1 christos strsize = (info->strsec->rawsize 1012 1.1 christos ? info->strsec->rawsize 1013 1.1 christos : info->strsec->size); 1014 1.1 christos } 1015 1.1 christos else 1016 1.1 christos { 1017 1.1 christos long reloc_size, reloc_count; 1018 1.1 christos arelent **reloc_vector; 1019 1.1 christos int i; 1020 1.1 christos char *function_name; 1021 1.1 christos bfd_size_type amt = sizeof *info; 1022 1.1 christos 1023 1.1 christos info = (struct stab_find_info *) bfd_zalloc (abfd, amt); 1024 1.1 christos if (info == NULL) 1025 1.8 christos return false; 1026 1.9 christos *pinfo = info; 1027 1.1 christos 1028 1.1 christos /* FIXME: When using the linker --split-by-file or 1029 1.1 christos --split-by-reloc options, it is possible for the .stab and 1030 1.1 christos .stabstr sections to be split. We should handle that. */ 1031 1.1 christos 1032 1.1 christos info->stabsec = bfd_get_section_by_name (abfd, ".stab"); 1033 1.1 christos info->strsec = bfd_get_section_by_name (abfd, ".stabstr"); 1034 1.1 christos 1035 1.1 christos if (info->stabsec == NULL || info->strsec == NULL) 1036 1.1 christos { 1037 1.1 christos /* Try SOM section names. */ 1038 1.1 christos info->stabsec = bfd_get_section_by_name (abfd, "$GDB_SYMBOLS$"); 1039 1.1 christos info->strsec = bfd_get_section_by_name (abfd, "$GDB_STRINGS$"); 1040 1.3 christos 1041 1.1 christos if (info->stabsec == NULL || info->strsec == NULL) 1042 1.9 christos return true; 1043 1.1 christos } 1044 1.1 christos 1045 1.9 christos if ((info->stabsec->flags & SEC_HAS_CONTENTS) == 0 1046 1.9 christos || (info->strsec->flags & SEC_HAS_CONTENTS) == 0) 1047 1.9 christos goto out; 1048 1.9 christos 1049 1.1 christos stabsize = (info->stabsec->rawsize 1050 1.1 christos ? info->stabsec->rawsize 1051 1.1 christos : info->stabsec->size); 1052 1.3 christos stabsize = (stabsize / STABSIZE) * STABSIZE; 1053 1.1 christos strsize = (info->strsec->rawsize 1054 1.1 christos ? info->strsec->rawsize 1055 1.1 christos : info->strsec->size); 1056 1.1 christos 1057 1.9 christos if (stabsize == 0 || strsize == 0) 1058 1.9 christos goto out; 1059 1.1 christos 1060 1.9 christos if (!bfd_malloc_and_get_section (abfd, info->stabsec, &info->stabs)) 1061 1.9 christos goto out; 1062 1.9 christos if (!bfd_malloc_and_get_section (abfd, info->strsec, &info->strs)) 1063 1.9 christos goto out1; 1064 1.1 christos 1065 1.7 christos /* Stab strings ought to be nul terminated. Ensure the last one 1066 1.7 christos is, to prevent running off the end of the buffer. */ 1067 1.7 christos info->strs[strsize - 1] = 0; 1068 1.7 christos 1069 1.1 christos /* If this is a relocatable object file, we have to relocate 1070 1.1 christos the entries in .stab. This should always be simple 32 bit 1071 1.1 christos relocations against symbols defined in this object file, so 1072 1.1 christos this should be no big deal. */ 1073 1.1 christos reloc_size = bfd_get_reloc_upper_bound (abfd, info->stabsec); 1074 1.1 christos if (reloc_size < 0) 1075 1.9 christos goto out2; 1076 1.1 christos reloc_vector = (arelent **) bfd_malloc (reloc_size); 1077 1.1 christos if (reloc_vector == NULL && reloc_size != 0) 1078 1.9 christos goto out2; 1079 1.1 christos reloc_count = bfd_canonicalize_reloc (abfd, info->stabsec, reloc_vector, 1080 1.1 christos symbols); 1081 1.1 christos if (reloc_count < 0) 1082 1.1 christos { 1083 1.9 christos out3: 1084 1.8 christos free (reloc_vector); 1085 1.9 christos out2: 1086 1.9 christos free (info->strs); 1087 1.9 christos info->strs = NULL; 1088 1.9 christos out1: 1089 1.9 christos free (info->stabs); 1090 1.9 christos info->stabs = NULL; 1091 1.9 christos out: 1092 1.9 christos info->stabsec = NULL; 1093 1.8 christos return false; 1094 1.1 christos } 1095 1.1 christos if (reloc_count > 0) 1096 1.1 christos { 1097 1.1 christos arelent **pr; 1098 1.1 christos 1099 1.1 christos for (pr = reloc_vector; *pr != NULL; pr++) 1100 1.1 christos { 1101 1.1 christos arelent *r; 1102 1.1 christos unsigned long val; 1103 1.1 christos asymbol *sym; 1104 1.7 christos bfd_size_type octets; 1105 1.1 christos 1106 1.1 christos r = *pr; 1107 1.1 christos /* Ignore R_*_NONE relocs. */ 1108 1.1 christos if (r->howto->dst_mask == 0) 1109 1.1 christos continue; 1110 1.1 christos 1111 1.7 christos octets = r->address * bfd_octets_per_byte (abfd, NULL); 1112 1.1 christos if (r->howto->rightshift != 0 1113 1.8 christos || bfd_get_reloc_size (r->howto) != 4 1114 1.1 christos || r->howto->bitsize != 32 1115 1.1 christos || r->howto->pc_relative 1116 1.1 christos || r->howto->bitpos != 0 1117 1.7 christos || r->howto->dst_mask != 0xffffffff 1118 1.9 christos || octets > stabsize - 4) 1119 1.1 christos { 1120 1.6 christos _bfd_error_handler 1121 1.6 christos (_("unsupported .stab relocation")); 1122 1.1 christos bfd_set_error (bfd_error_invalid_operation); 1123 1.9 christos goto out3; 1124 1.1 christos } 1125 1.1 christos 1126 1.7 christos val = bfd_get_32 (abfd, info->stabs + octets); 1127 1.1 christos val &= r->howto->src_mask; 1128 1.1 christos sym = *r->sym_ptr_ptr; 1129 1.1 christos val += sym->value + sym->section->vma + r->addend; 1130 1.7 christos bfd_put_32 (abfd, (bfd_vma) val, info->stabs + octets); 1131 1.1 christos } 1132 1.1 christos } 1133 1.1 christos 1134 1.8 christos free (reloc_vector); 1135 1.1 christos 1136 1.1 christos /* First time through this function, build a table matching 1137 1.1 christos function VM addresses to stabs, then sort based on starting 1138 1.1 christos VM address. Do this in two passes: once to count how many 1139 1.1 christos table entries we'll need, and a second to actually build the 1140 1.1 christos table. */ 1141 1.1 christos 1142 1.1 christos info->indextablesize = 0; 1143 1.3 christos nul_fun = NULL; 1144 1.1 christos for (stab = info->stabs; stab < info->stabs + stabsize; stab += STABSIZE) 1145 1.1 christos { 1146 1.1 christos if (stab[TYPEOFF] == (bfd_byte) N_SO) 1147 1.1 christos { 1148 1.1 christos /* if we did not see a function def, leave space for one. */ 1149 1.3 christos if (nul_fun != NULL) 1150 1.1 christos ++info->indextablesize; 1151 1.1 christos 1152 1.3 christos /* N_SO with null name indicates EOF */ 1153 1.3 christos if (bfd_get_32 (abfd, stab + STRDXOFF) == 0) 1154 1.3 christos nul_fun = NULL; 1155 1.3 christos else 1156 1.3 christos { 1157 1.3 christos nul_fun = stab; 1158 1.1 christos 1159 1.3 christos /* two N_SO's in a row is a filename and directory. Skip */ 1160 1.3 christos if (stab + STABSIZE + TYPEOFF < info->stabs + stabsize 1161 1.3 christos && *(stab + STABSIZE + TYPEOFF) == (bfd_byte) N_SO) 1162 1.3 christos stab += STABSIZE; 1163 1.1 christos } 1164 1.1 christos } 1165 1.3 christos else if (stab[TYPEOFF] == (bfd_byte) N_FUN 1166 1.3 christos && bfd_get_32 (abfd, stab + STRDXOFF) != 0) 1167 1.1 christos { 1168 1.3 christos nul_fun = NULL; 1169 1.1 christos ++info->indextablesize; 1170 1.1 christos } 1171 1.1 christos } 1172 1.1 christos 1173 1.3 christos if (nul_fun != NULL) 1174 1.1 christos ++info->indextablesize; 1175 1.1 christos 1176 1.1 christos if (info->indextablesize == 0) 1177 1.9 christos { 1178 1.9 christos free (info->strs); 1179 1.9 christos info->strs = NULL; 1180 1.9 christos free (info->stabs); 1181 1.9 christos info->stabs = NULL; 1182 1.9 christos info->stabsec = NULL; 1183 1.9 christos return true; 1184 1.9 christos } 1185 1.1 christos ++info->indextablesize; 1186 1.1 christos 1187 1.1 christos amt = info->indextablesize; 1188 1.1 christos amt *= sizeof (struct indexentry); 1189 1.9 christos info->indextable = (struct indexentry *) bfd_malloc (amt); 1190 1.1 christos if (info->indextable == NULL) 1191 1.9 christos goto out3; 1192 1.1 christos 1193 1.1 christos file_name = NULL; 1194 1.1 christos directory_name = NULL; 1195 1.3 christos nul_fun = NULL; 1196 1.3 christos stroff = 0; 1197 1.1 christos 1198 1.3 christos for (i = 0, stab = info->stabs, nul_str = str = info->strs; 1199 1.1 christos i < info->indextablesize && stab < info->stabs + stabsize; 1200 1.1 christos stab += STABSIZE) 1201 1.1 christos { 1202 1.1 christos switch (stab[TYPEOFF]) 1203 1.1 christos { 1204 1.1 christos case 0: 1205 1.1 christos /* This is the first entry in a compilation unit. */ 1206 1.1 christos if ((bfd_size_type) ((info->strs + strsize) - str) < stroff) 1207 1.1 christos break; 1208 1.1 christos str += stroff; 1209 1.1 christos stroff = bfd_get_32 (abfd, stab + VALOFF); 1210 1.1 christos break; 1211 1.1 christos 1212 1.1 christos case N_SO: 1213 1.1 christos /* The main file name. */ 1214 1.1 christos 1215 1.1 christos /* The following code creates a new indextable entry with 1216 1.6 christos a NULL function name if there were no N_FUNs in a file. 1217 1.6 christos Note that a N_SO without a file name is an EOF and 1218 1.6 christos there could be 2 N_SO following it with the new filename 1219 1.6 christos and directory. */ 1220 1.3 christos if (nul_fun != NULL) 1221 1.1 christos { 1222 1.3 christos info->indextable[i].val = bfd_get_32 (abfd, nul_fun + VALOFF); 1223 1.3 christos info->indextable[i].stab = nul_fun; 1224 1.3 christos info->indextable[i].str = nul_str; 1225 1.1 christos info->indextable[i].directory_name = directory_name; 1226 1.1 christos info->indextable[i].file_name = file_name; 1227 1.1 christos info->indextable[i].function_name = NULL; 1228 1.7 christos info->indextable[i].idx = i; 1229 1.1 christos ++i; 1230 1.1 christos } 1231 1.1 christos 1232 1.3 christos directory_name = NULL; 1233 1.1 christos file_name = (char *) str + bfd_get_32 (abfd, stab + STRDXOFF); 1234 1.3 christos if (file_name == (char *) str) 1235 1.1 christos { 1236 1.1 christos file_name = NULL; 1237 1.3 christos nul_fun = NULL; 1238 1.1 christos } 1239 1.1 christos else 1240 1.1 christos { 1241 1.3 christos nul_fun = stab; 1242 1.3 christos nul_str = str; 1243 1.7 christos if (file_name >= (char *) info->strs + strsize 1244 1.7 christos || file_name < (char *) str) 1245 1.3 christos file_name = NULL; 1246 1.3 christos if (stab + STABSIZE + TYPEOFF < info->stabs + stabsize 1247 1.3 christos && *(stab + STABSIZE + TYPEOFF) == (bfd_byte) N_SO) 1248 1.1 christos { 1249 1.1 christos /* Two consecutive N_SOs are a directory and a 1250 1.1 christos file name. */ 1251 1.1 christos stab += STABSIZE; 1252 1.1 christos directory_name = file_name; 1253 1.1 christos file_name = ((char *) str 1254 1.1 christos + bfd_get_32 (abfd, stab + STRDXOFF)); 1255 1.7 christos if (file_name >= (char *) info->strs + strsize 1256 1.7 christos || file_name < (char *) str) 1257 1.3 christos file_name = NULL; 1258 1.1 christos } 1259 1.1 christos } 1260 1.1 christos break; 1261 1.1 christos 1262 1.1 christos case N_SOL: 1263 1.1 christos /* The name of an include file. */ 1264 1.1 christos file_name = (char *) str + bfd_get_32 (abfd, stab + STRDXOFF); 1265 1.3 christos /* PR 17512: file: 0c680a1f. */ 1266 1.3 christos /* PR 17512: file: 5da8aec4. */ 1267 1.7 christos if (file_name >= (char *) info->strs + strsize 1268 1.7 christos || file_name < (char *) str) 1269 1.3 christos file_name = NULL; 1270 1.1 christos break; 1271 1.1 christos 1272 1.1 christos case N_FUN: 1273 1.1 christos /* A function name. */ 1274 1.3 christos function_name = (char *) str + bfd_get_32 (abfd, stab + STRDXOFF); 1275 1.3 christos if (function_name == (char *) str) 1276 1.1 christos continue; 1277 1.7 christos if (function_name >= (char *) info->strs + strsize 1278 1.7 christos || function_name < (char *) str) 1279 1.3 christos function_name = NULL; 1280 1.1 christos 1281 1.3 christos nul_fun = NULL; 1282 1.1 christos info->indextable[i].val = bfd_get_32 (abfd, stab + VALOFF); 1283 1.1 christos info->indextable[i].stab = stab; 1284 1.1 christos info->indextable[i].str = str; 1285 1.1 christos info->indextable[i].directory_name = directory_name; 1286 1.1 christos info->indextable[i].file_name = file_name; 1287 1.1 christos info->indextable[i].function_name = function_name; 1288 1.7 christos info->indextable[i].idx = i; 1289 1.1 christos ++i; 1290 1.1 christos break; 1291 1.1 christos } 1292 1.1 christos } 1293 1.1 christos 1294 1.3 christos if (nul_fun != NULL) 1295 1.1 christos { 1296 1.3 christos info->indextable[i].val = bfd_get_32 (abfd, nul_fun + VALOFF); 1297 1.3 christos info->indextable[i].stab = nul_fun; 1298 1.3 christos info->indextable[i].str = nul_str; 1299 1.1 christos info->indextable[i].directory_name = directory_name; 1300 1.1 christos info->indextable[i].file_name = file_name; 1301 1.1 christos info->indextable[i].function_name = NULL; 1302 1.7 christos info->indextable[i].idx = i; 1303 1.1 christos ++i; 1304 1.1 christos } 1305 1.1 christos 1306 1.1 christos info->indextable[i].val = (bfd_vma) -1; 1307 1.1 christos info->indextable[i].stab = info->stabs + stabsize; 1308 1.1 christos info->indextable[i].str = str; 1309 1.1 christos info->indextable[i].directory_name = NULL; 1310 1.1 christos info->indextable[i].file_name = NULL; 1311 1.1 christos info->indextable[i].function_name = NULL; 1312 1.7 christos info->indextable[i].idx = i; 1313 1.1 christos ++i; 1314 1.1 christos 1315 1.1 christos info->indextablesize = i; 1316 1.1 christos qsort (info->indextable, (size_t) i, sizeof (struct indexentry), 1317 1.1 christos cmpindexentry); 1318 1.1 christos } 1319 1.1 christos 1320 1.1 christos /* We are passed a section relative offset. The offsets in the 1321 1.1 christos stabs information are absolute. */ 1322 1.7 christos offset += bfd_section_vma (section); 1323 1.1 christos 1324 1.1 christos #ifdef ENABLE_CACHING 1325 1.1 christos if (info->cached_indexentry != NULL 1326 1.1 christos && offset >= info->cached_offset 1327 1.1 christos && offset < (info->cached_indexentry + 1)->val) 1328 1.1 christos { 1329 1.1 christos stab = info->cached_stab; 1330 1.1 christos indexentry = info->cached_indexentry; 1331 1.1 christos file_name = info->cached_file_name; 1332 1.1 christos } 1333 1.1 christos else 1334 1.1 christos #endif 1335 1.1 christos { 1336 1.1 christos long low, high; 1337 1.1 christos long mid = -1; 1338 1.1 christos 1339 1.1 christos /* Cache non-existent or invalid. Do binary search on 1340 1.6 christos indextable. */ 1341 1.1 christos indexentry = NULL; 1342 1.1 christos 1343 1.1 christos low = 0; 1344 1.1 christos high = info->indextablesize - 1; 1345 1.1 christos while (low != high) 1346 1.1 christos { 1347 1.1 christos mid = (high + low) / 2; 1348 1.1 christos if (offset >= info->indextable[mid].val 1349 1.1 christos && offset < info->indextable[mid + 1].val) 1350 1.1 christos { 1351 1.1 christos indexentry = &info->indextable[mid]; 1352 1.1 christos break; 1353 1.1 christos } 1354 1.1 christos 1355 1.1 christos if (info->indextable[mid].val > offset) 1356 1.1 christos high = mid; 1357 1.1 christos else 1358 1.1 christos low = mid + 1; 1359 1.1 christos } 1360 1.1 christos 1361 1.1 christos if (indexentry == NULL) 1362 1.8 christos return true; 1363 1.1 christos 1364 1.1 christos stab = indexentry->stab + STABSIZE; 1365 1.1 christos file_name = indexentry->file_name; 1366 1.1 christos } 1367 1.1 christos 1368 1.1 christos directory_name = indexentry->directory_name; 1369 1.1 christos str = indexentry->str; 1370 1.1 christos 1371 1.8 christos saw_line = false; 1372 1.8 christos saw_func = false; 1373 1.1 christos for (; stab < (indexentry+1)->stab; stab += STABSIZE) 1374 1.1 christos { 1375 1.8 christos bool done; 1376 1.1 christos bfd_vma val; 1377 1.1 christos 1378 1.8 christos done = false; 1379 1.1 christos 1380 1.1 christos switch (stab[TYPEOFF]) 1381 1.1 christos { 1382 1.1 christos case N_SOL: 1383 1.1 christos /* The name of an include file. */ 1384 1.1 christos val = bfd_get_32 (abfd, stab + VALOFF); 1385 1.1 christos if (val <= offset) 1386 1.1 christos { 1387 1.1 christos file_name = (char *) str + bfd_get_32 (abfd, stab + STRDXOFF); 1388 1.7 christos if (file_name >= (char *) info->strs + strsize 1389 1.7 christos || file_name < (char *) str) 1390 1.3 christos file_name = NULL; 1391 1.1 christos *pline = 0; 1392 1.1 christos } 1393 1.1 christos break; 1394 1.1 christos 1395 1.1 christos case N_SLINE: 1396 1.1 christos case N_DSLINE: 1397 1.1 christos case N_BSLINE: 1398 1.1 christos /* A line number. If the function was specified, then the value 1399 1.1 christos is relative to the start of the function. Otherwise, the 1400 1.1 christos value is an absolute address. */ 1401 1.1 christos val = ((indexentry->function_name ? indexentry->val : 0) 1402 1.1 christos + bfd_get_32 (abfd, stab + VALOFF)); 1403 1.1 christos /* If this line starts before our desired offset, or if it's 1404 1.1 christos the first line we've been able to find, use it. The 1405 1.1 christos !saw_line check works around a bug in GCC 2.95.3, which emits 1406 1.1 christos the first N_SLINE late. */ 1407 1.1 christos if (!saw_line || val <= offset) 1408 1.1 christos { 1409 1.1 christos *pline = bfd_get_16 (abfd, stab + DESCOFF); 1410 1.1 christos 1411 1.1 christos #ifdef ENABLE_CACHING 1412 1.1 christos info->cached_stab = stab; 1413 1.1 christos info->cached_offset = val; 1414 1.1 christos info->cached_file_name = file_name; 1415 1.1 christos info->cached_indexentry = indexentry; 1416 1.1 christos #endif 1417 1.1 christos } 1418 1.1 christos if (val > offset) 1419 1.8 christos done = true; 1420 1.8 christos saw_line = true; 1421 1.1 christos break; 1422 1.1 christos 1423 1.1 christos case N_FUN: 1424 1.1 christos case N_SO: 1425 1.1 christos if (saw_func || saw_line) 1426 1.8 christos done = true; 1427 1.8 christos saw_func = true; 1428 1.1 christos break; 1429 1.1 christos } 1430 1.1 christos 1431 1.1 christos if (done) 1432 1.1 christos break; 1433 1.1 christos } 1434 1.1 christos 1435 1.8 christos *pfound = true; 1436 1.1 christos 1437 1.1 christos if (file_name == NULL || IS_ABSOLUTE_PATH (file_name) 1438 1.1 christos || directory_name == NULL) 1439 1.1 christos *pfilename = file_name; 1440 1.1 christos else 1441 1.1 christos { 1442 1.1 christos size_t dirlen; 1443 1.1 christos 1444 1.1 christos dirlen = strlen (directory_name); 1445 1.1 christos if (info->filename == NULL 1446 1.1 christos || filename_ncmp (info->filename, directory_name, dirlen) != 0 1447 1.1 christos || filename_cmp (info->filename + dirlen, file_name) != 0) 1448 1.1 christos { 1449 1.1 christos size_t len; 1450 1.1 christos 1451 1.1 christos /* Don't free info->filename here. objdump and other 1452 1.1 christos apps keep a copy of a previously returned file name 1453 1.1 christos pointer. */ 1454 1.1 christos len = strlen (file_name) + 1; 1455 1.1 christos info->filename = (char *) bfd_alloc (abfd, dirlen + len); 1456 1.1 christos if (info->filename == NULL) 1457 1.8 christos return false; 1458 1.1 christos memcpy (info->filename, directory_name, dirlen); 1459 1.1 christos memcpy (info->filename + dirlen, file_name, len); 1460 1.1 christos } 1461 1.1 christos 1462 1.1 christos *pfilename = info->filename; 1463 1.1 christos } 1464 1.1 christos 1465 1.1 christos if (indexentry->function_name != NULL) 1466 1.1 christos { 1467 1.1 christos char *s; 1468 1.1 christos 1469 1.1 christos /* This will typically be something like main:F(0,1), so we want 1470 1.6 christos to clobber the colon. It's OK to change the name, since the 1471 1.6 christos string is in our own local storage anyhow. */ 1472 1.1 christos s = strchr (indexentry->function_name, ':'); 1473 1.1 christos if (s != NULL) 1474 1.1 christos *s = '\0'; 1475 1.1 christos 1476 1.1 christos *pfnname = indexentry->function_name; 1477 1.1 christos } 1478 1.1 christos 1479 1.8 christos return true; 1480 1.1 christos } 1481 1.6 christos 1482 1.9 christos void 1483 1.9 christos _bfd_stab_cleanup (bfd *abfd ATTRIBUTE_UNUSED, void **pinfo) 1484 1.9 christos { 1485 1.9 christos struct stab_find_info *info = (struct stab_find_info *) *pinfo; 1486 1.9 christos if (info == NULL) 1487 1.9 christos return; 1488 1.9 christos 1489 1.9 christos free (info->indextable); 1490 1.9 christos free (info->strs); 1491 1.9 christos free (info->stabs); 1492 1.9 christos } 1493 1.9 christos 1494 1.6 christos long 1495 1.6 christos _bfd_nosymbols_canonicalize_symtab (bfd *abfd ATTRIBUTE_UNUSED, 1496 1.6 christos asymbol **location ATTRIBUTE_UNUSED) 1497 1.6 christos { 1498 1.6 christos return 0; 1499 1.6 christos } 1500 1.6 christos 1501 1.6 christos void 1502 1.6 christos _bfd_nosymbols_print_symbol (bfd *abfd ATTRIBUTE_UNUSED, 1503 1.6 christos void *afile ATTRIBUTE_UNUSED, 1504 1.6 christos asymbol *symbol ATTRIBUTE_UNUSED, 1505 1.6 christos bfd_print_symbol_type how ATTRIBUTE_UNUSED) 1506 1.6 christos { 1507 1.6 christos } 1508 1.6 christos 1509 1.6 christos void 1510 1.6 christos _bfd_nosymbols_get_symbol_info (bfd *abfd ATTRIBUTE_UNUSED, 1511 1.6 christos asymbol *sym ATTRIBUTE_UNUSED, 1512 1.6 christos symbol_info *ret ATTRIBUTE_UNUSED) 1513 1.6 christos { 1514 1.6 christos } 1515 1.6 christos 1516 1.6 christos const char * 1517 1.6 christos _bfd_nosymbols_get_symbol_version_string (bfd *abfd, 1518 1.6 christos asymbol *symbol ATTRIBUTE_UNUSED, 1519 1.8 christos bool base_p ATTRIBUTE_UNUSED, 1520 1.8 christos bool *hidden ATTRIBUTE_UNUSED) 1521 1.6 christos { 1522 1.6 christos return (const char *) _bfd_ptr_bfd_null_error (abfd); 1523 1.6 christos } 1524 1.6 christos 1525 1.8 christos bool 1526 1.6 christos _bfd_nosymbols_bfd_is_local_label_name (bfd *abfd ATTRIBUTE_UNUSED, 1527 1.6 christos const char *name ATTRIBUTE_UNUSED) 1528 1.6 christos { 1529 1.8 christos return false; 1530 1.6 christos } 1531 1.6 christos 1532 1.6 christos alent * 1533 1.6 christos _bfd_nosymbols_get_lineno (bfd *abfd, asymbol *sym ATTRIBUTE_UNUSED) 1534 1.6 christos { 1535 1.6 christos return (alent *) _bfd_ptr_bfd_null_error (abfd); 1536 1.6 christos } 1537 1.6 christos 1538 1.8 christos bool 1539 1.6 christos _bfd_nosymbols_find_nearest_line 1540 1.6 christos (bfd *abfd, 1541 1.6 christos asymbol **symbols ATTRIBUTE_UNUSED, 1542 1.6 christos asection *section ATTRIBUTE_UNUSED, 1543 1.6 christos bfd_vma offset ATTRIBUTE_UNUSED, 1544 1.6 christos const char **filename_ptr ATTRIBUTE_UNUSED, 1545 1.6 christos const char **functionname_ptr ATTRIBUTE_UNUSED, 1546 1.6 christos unsigned int *line_ptr ATTRIBUTE_UNUSED, 1547 1.6 christos unsigned int *discriminator_ptr ATTRIBUTE_UNUSED) 1548 1.6 christos { 1549 1.6 christos return _bfd_bool_bfd_false_error (abfd); 1550 1.6 christos } 1551 1.6 christos 1552 1.8 christos bool 1553 1.9 christos _bfd_nosymbols_find_nearest_line_with_alt 1554 1.9 christos (bfd *abfd, 1555 1.9 christos const char *alt_filename ATTRIBUTE_UNUSED, 1556 1.9 christos asymbol **symbols ATTRIBUTE_UNUSED, 1557 1.9 christos asection *section ATTRIBUTE_UNUSED, 1558 1.9 christos bfd_vma offset ATTRIBUTE_UNUSED, 1559 1.9 christos const char **filename_ptr ATTRIBUTE_UNUSED, 1560 1.9 christos const char **functionname_ptr ATTRIBUTE_UNUSED, 1561 1.9 christos unsigned int *line_ptr ATTRIBUTE_UNUSED, 1562 1.9 christos unsigned int *discriminator_ptr ATTRIBUTE_UNUSED) 1563 1.9 christos { 1564 1.9 christos return _bfd_bool_bfd_false_error (abfd); 1565 1.9 christos } 1566 1.9 christos 1567 1.9 christos bool 1568 1.6 christos _bfd_nosymbols_find_line (bfd *abfd, 1569 1.6 christos asymbol **symbols ATTRIBUTE_UNUSED, 1570 1.6 christos asymbol *symbol ATTRIBUTE_UNUSED, 1571 1.6 christos const char **filename_ptr ATTRIBUTE_UNUSED, 1572 1.6 christos unsigned int *line_ptr ATTRIBUTE_UNUSED) 1573 1.6 christos { 1574 1.6 christos return _bfd_bool_bfd_false_error (abfd); 1575 1.6 christos } 1576 1.6 christos 1577 1.8 christos bool 1578 1.6 christos _bfd_nosymbols_find_inliner_info 1579 1.6 christos (bfd *abfd, 1580 1.6 christos const char **filename_ptr ATTRIBUTE_UNUSED, 1581 1.6 christos const char **functionname_ptr ATTRIBUTE_UNUSED, 1582 1.6 christos unsigned int *line_ptr ATTRIBUTE_UNUSED) 1583 1.6 christos { 1584 1.6 christos return _bfd_bool_bfd_false_error (abfd); 1585 1.6 christos } 1586 1.6 christos 1587 1.6 christos asymbol * 1588 1.9 christos _bfd_nosymbols_bfd_make_debug_symbol (bfd *abfd) 1589 1.6 christos { 1590 1.6 christos return (asymbol *) _bfd_ptr_bfd_null_error (abfd); 1591 1.6 christos } 1592 1.6 christos 1593 1.6 christos long 1594 1.6 christos _bfd_nosymbols_read_minisymbols (bfd *abfd, 1595 1.8 christos bool dynamic ATTRIBUTE_UNUSED, 1596 1.6 christos void **minisymsp ATTRIBUTE_UNUSED, 1597 1.6 christos unsigned int *sizep ATTRIBUTE_UNUSED) 1598 1.6 christos { 1599 1.6 christos return _bfd_long_bfd_n1_error (abfd); 1600 1.6 christos } 1601 1.6 christos 1602 1.6 christos asymbol * 1603 1.6 christos _bfd_nosymbols_minisymbol_to_symbol (bfd *abfd, 1604 1.8 christos bool dynamic ATTRIBUTE_UNUSED, 1605 1.6 christos const void *minisym ATTRIBUTE_UNUSED, 1606 1.6 christos asymbol *sym ATTRIBUTE_UNUSED) 1607 1.6 christos { 1608 1.6 christos return (asymbol *) _bfd_ptr_bfd_null_error (abfd); 1609 1.6 christos } 1610 1.6 christos 1611 1.6 christos long 1612 1.6 christos _bfd_nodynamic_get_synthetic_symtab (bfd *abfd, 1613 1.6 christos long symcount ATTRIBUTE_UNUSED, 1614 1.6 christos asymbol **syms ATTRIBUTE_UNUSED, 1615 1.6 christos long dynsymcount ATTRIBUTE_UNUSED, 1616 1.6 christos asymbol **dynsyms ATTRIBUTE_UNUSED, 1617 1.6 christos asymbol **ret ATTRIBUTE_UNUSED) 1618 1.6 christos { 1619 1.6 christos return _bfd_long_bfd_n1_error (abfd); 1620 1.6 christos } 1621