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c906108c | 1 | /* Definitions for symbol file management in GDB. |
af5f3db6 AC |
2 | |
3 | Copyright 1992, 1993, 1994, 1995, 1996, 1997, 1998, 1999, 2000, | |
4 | 2001, 2002 Free Software Foundation, Inc. | |
c906108c | 5 | |
c5aa993b | 6 | This file is part of GDB. |
c906108c | 7 | |
c5aa993b JM |
8 | This program is free software; you can redistribute it and/or modify |
9 | it under the terms of the GNU General Public License as published by | |
10 | the Free Software Foundation; either version 2 of the License, or | |
11 | (at your option) any later version. | |
c906108c | 12 | |
c5aa993b JM |
13 | This program is distributed in the hope that it will be useful, |
14 | but WITHOUT ANY WARRANTY; without even the implied warranty of | |
15 | MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the | |
16 | GNU General Public License for more details. | |
c906108c | 17 | |
c5aa993b JM |
18 | You should have received a copy of the GNU General Public License |
19 | along with this program; if not, write to the Free Software | |
20 | Foundation, Inc., 59 Temple Place - Suite 330, | |
21 | Boston, MA 02111-1307, USA. */ | |
c906108c SS |
22 | |
23 | #if !defined (OBJFILES_H) | |
24 | #define OBJFILES_H | |
25 | ||
3956d554 JB |
26 | #include "gdb_obstack.h" /* For obstack internals. */ |
27 | #include "symfile.h" /* For struct psymbol_allocation_list */ | |
28 | ||
af5f3db6 | 29 | struct bcache; |
08c0b5bc | 30 | |
c906108c SS |
31 | /* This structure maintains information on a per-objfile basis about the |
32 | "entry point" of the objfile, and the scope within which the entry point | |
33 | exists. It is possible that gdb will see more than one objfile that is | |
34 | executable, each with its own entry point. | |
35 | ||
36 | For example, for dynamically linked executables in SVR4, the dynamic linker | |
37 | code is contained within the shared C library, which is actually executable | |
38 | and is run by the kernel first when an exec is done of a user executable | |
39 | that is dynamically linked. The dynamic linker within the shared C library | |
40 | then maps in the various program segments in the user executable and jumps | |
41 | to the user executable's recorded entry point, as if the call had been made | |
42 | directly by the kernel. | |
43 | ||
44 | The traditional gdb method of using this info is to use the recorded entry | |
45 | point to set the variables entry_file_lowpc and entry_file_highpc from | |
46 | the debugging information, where these values are the starting address | |
47 | (inclusive) and ending address (exclusive) of the instruction space in the | |
48 | executable which correspond to the "startup file", I.E. crt0.o in most | |
49 | cases. This file is assumed to be a startup file and frames with pc's | |
50 | inside it are treated as nonexistent. Setting these variables is necessary | |
51 | so that backtraces do not fly off the bottom of the stack. | |
52 | ||
53 | Gdb also supports an alternate method to avoid running off the bottom | |
54 | of the stack. | |
55 | ||
56 | There are two frames that are "special", the frame for the function | |
57 | containing the process entry point, since it has no predecessor frame, | |
58 | and the frame for the function containing the user code entry point | |
59 | (the main() function), since all the predecessor frames are for the | |
60 | process startup code. Since we have no guarantee that the linked | |
61 | in startup modules have any debugging information that gdb can use, | |
62 | we need to avoid following frame pointers back into frames that might | |
63 | have been built in the startup code, as we might get hopelessly | |
64 | confused. However, we almost always have debugging information | |
65 | available for main(). | |
66 | ||
67 | These variables are used to save the range of PC values which are valid | |
68 | within the main() function and within the function containing the process | |
69 | entry point. If we always consider the frame for main() as the outermost | |
70 | frame when debugging user code, and the frame for the process entry | |
71 | point function as the outermost frame when debugging startup code, then | |
72 | all we have to do is have FRAME_CHAIN_VALID return false whenever a | |
73 | frame's current PC is within the range specified by these variables. | |
74 | In essence, we set "ceilings" in the frame chain beyond which we will | |
75 | not proceed when following the frame chain back up the stack. | |
76 | ||
77 | A nice side effect is that we can still debug startup code without | |
78 | running off the end of the frame chain, assuming that we have usable | |
79 | debugging information in the startup modules, and if we choose to not | |
80 | use the block at main, or can't find it for some reason, everything | |
81 | still works as before. And if we have no startup code debugging | |
82 | information but we do have usable information for main(), backtraces | |
83 | from user code don't go wandering off into the startup code. | |
84 | ||
85 | To use this method, define your FRAME_CHAIN_VALID macro like: | |
86 | ||
c5aa993b JM |
87 | #define FRAME_CHAIN_VALID(chain, thisframe) \ |
88 | (chain != 0 \ | |
89 | && !(inside_main_func ((thisframe)->pc)) \ | |
90 | && !(inside_entry_func ((thisframe)->pc))) | |
c906108c SS |
91 | |
92 | and add initializations of the four scope controlling variables inside | |
93 | the object file / debugging information processing modules. */ | |
94 | ||
95 | struct entry_info | |
c5aa993b | 96 | { |
c906108c | 97 | |
c5aa993b JM |
98 | /* The value we should use for this objects entry point. |
99 | The illegal/unknown value needs to be something other than 0, ~0 | |
100 | for instance, which is much less likely than 0. */ | |
c906108c | 101 | |
c5aa993b | 102 | CORE_ADDR entry_point; |
c906108c | 103 | |
c5aa993b | 104 | #define INVALID_ENTRY_POINT (~0) /* ~0 will not be in any file, we hope. */ |
c906108c | 105 | |
c5aa993b JM |
106 | /* Start (inclusive) and end (exclusive) of function containing the |
107 | entry point. */ | |
c906108c | 108 | |
c5aa993b JM |
109 | CORE_ADDR entry_func_lowpc; |
110 | CORE_ADDR entry_func_highpc; | |
c906108c | 111 | |
c5aa993b JM |
112 | /* Start (inclusive) and end (exclusive) of object file containing the |
113 | entry point. */ | |
c906108c | 114 | |
c5aa993b JM |
115 | CORE_ADDR entry_file_lowpc; |
116 | CORE_ADDR entry_file_highpc; | |
117 | ||
118 | /* Start (inclusive) and end (exclusive) of the user code main() function. */ | |
119 | ||
120 | CORE_ADDR main_func_lowpc; | |
121 | CORE_ADDR main_func_highpc; | |
c906108c SS |
122 | |
123 | /* Use these values when any of the above ranges is invalid. */ | |
124 | ||
125 | /* We use these values because it guarantees that there is no number that is | |
126 | both >= LOWPC && < HIGHPC. It is also highly unlikely that 3 is a valid | |
127 | module or function start address (as opposed to 0). */ | |
128 | ||
129 | #define INVALID_ENTRY_LOWPC (3) | |
130 | #define INVALID_ENTRY_HIGHPC (1) | |
131 | ||
c5aa993b | 132 | }; |
c906108c SS |
133 | |
134 | /* Sections in an objfile. | |
135 | ||
136 | It is strange that we have both this notion of "sections" | |
137 | and the one used by section_offsets. Section as used | |
138 | here, (currently at least) means a BFD section, and the sections | |
139 | are set up from the BFD sections in allocate_objfile. | |
140 | ||
141 | The sections in section_offsets have their meaning determined by | |
142 | the symbol format, and they are set up by the sym_offsets function | |
143 | for that symbol file format. | |
144 | ||
145 | I'm not sure this could or should be changed, however. */ | |
146 | ||
c5aa993b JM |
147 | struct obj_section |
148 | { | |
149 | CORE_ADDR addr; /* lowest address in section */ | |
150 | CORE_ADDR endaddr; /* 1+highest address in section */ | |
c906108c | 151 | |
c5aa993b JM |
152 | /* This field is being used for nefarious purposes by syms_from_objfile. |
153 | It is said to be redundant with section_offsets; it's not really being | |
154 | used that way, however, it's some sort of hack I don't understand | |
155 | and am not going to try to eliminate (yet, anyway). FIXME. | |
c906108c | 156 | |
c5aa993b JM |
157 | It was documented as "offset between (end)addr and actual memory |
158 | addresses", but that's not true; addr & endaddr are actual memory | |
159 | addresses. */ | |
160 | CORE_ADDR offset; | |
c906108c | 161 | |
c5aa993b | 162 | sec_ptr the_bfd_section; /* BFD section pointer */ |
c906108c | 163 | |
c5aa993b JM |
164 | /* Objfile this section is part of. */ |
165 | struct objfile *objfile; | |
c906108c | 166 | |
c5aa993b JM |
167 | /* True if this "overlay section" is mapped into an "overlay region". */ |
168 | int ovly_mapped; | |
169 | }; | |
c906108c SS |
170 | |
171 | /* An import entry contains information about a symbol that | |
172 | is used in this objfile but not defined in it, and so needs | |
173 | to be imported from some other objfile */ | |
c5aa993b JM |
174 | /* Currently we just store the name; no attributes. 1997-08-05 */ |
175 | typedef char *ImportEntry; | |
c906108c SS |
176 | |
177 | ||
178 | /* An export entry contains information about a symbol that | |
179 | is defined in this objfile and available for use in other | |
c5aa993b JM |
180 | objfiles */ |
181 | typedef struct | |
182 | { | |
183 | char *name; /* name of exported symbol */ | |
184 | int address; /* offset subject to relocation */ | |
185 | /* Currently no other attributes 1997-08-05 */ | |
186 | } | |
187 | ExportEntry; | |
c906108c SS |
188 | |
189 | ||
c906108c SS |
190 | /* The "objstats" structure provides a place for gdb to record some |
191 | interesting information about its internal state at runtime, on a | |
192 | per objfile basis, such as information about the number of symbols | |
193 | read, size of string table (if any), etc. */ | |
194 | ||
c5aa993b JM |
195 | struct objstats |
196 | { | |
197 | int n_minsyms; /* Number of minimal symbols read */ | |
198 | int n_psyms; /* Number of partial symbols read */ | |
199 | int n_syms; /* Number of full symbols read */ | |
200 | int n_stabs; /* Number of ".stabs" read (if applicable) */ | |
201 | int n_types; /* Number of types */ | |
202 | int sz_strtab; /* Size of stringtable, (if applicable) */ | |
203 | }; | |
c906108c SS |
204 | |
205 | #define OBJSTAT(objfile, expr) (objfile -> stats.expr) | |
206 | #define OBJSTATS struct objstats stats | |
a14ed312 KB |
207 | extern void print_objfile_statistics (void); |
208 | extern void print_symbol_bcache_statistics (void); | |
c906108c | 209 | |
9227b5eb | 210 | /* Number of entries in the minimal symbol hash table. */ |
375f3d86 | 211 | #define MINIMAL_SYMBOL_HASH_SIZE 2039 |
9227b5eb | 212 | |
c906108c SS |
213 | /* Master structure for keeping track of each file from which |
214 | gdb reads symbols. There are several ways these get allocated: 1. | |
215 | The main symbol file, symfile_objfile, set by the symbol-file command, | |
216 | 2. Additional symbol files added by the add-symbol-file command, | |
217 | 3. Shared library objfiles, added by ADD_SOLIB, 4. symbol files | |
218 | for modules that were loaded when GDB attached to a remote system | |
219 | (see remote-vx.c). */ | |
220 | ||
221 | struct objfile | |
c5aa993b | 222 | { |
c906108c | 223 | |
c5aa993b JM |
224 | /* All struct objfile's are chained together by their next pointers. |
225 | The global variable "object_files" points to the first link in this | |
226 | chain. | |
c906108c | 227 | |
c5aa993b JM |
228 | FIXME: There is a problem here if the objfile is reusable, and if |
229 | multiple users are to be supported. The problem is that the objfile | |
230 | list is linked through a member of the objfile struct itself, which | |
231 | is only valid for one gdb process. The list implementation needs to | |
232 | be changed to something like: | |
c906108c | 233 | |
c5aa993b | 234 | struct list {struct list *next; struct objfile *objfile}; |
c906108c | 235 | |
c5aa993b JM |
236 | where the list structure is completely maintained separately within |
237 | each gdb process. */ | |
c906108c | 238 | |
c5aa993b | 239 | struct objfile *next; |
c906108c | 240 | |
c5aa993b | 241 | /* The object file's name. Malloc'd; free it if you free this struct. */ |
c906108c | 242 | |
c5aa993b | 243 | char *name; |
c906108c | 244 | |
c5aa993b | 245 | /* Some flag bits for this objfile. */ |
c906108c | 246 | |
c5aa993b | 247 | unsigned short flags; |
c906108c | 248 | |
c5aa993b JM |
249 | /* Each objfile points to a linked list of symtabs derived from this file, |
250 | one symtab structure for each compilation unit (source file). Each link | |
251 | in the symtab list contains a backpointer to this objfile. */ | |
c906108c | 252 | |
c5aa993b | 253 | struct symtab *symtabs; |
c906108c | 254 | |
c5aa993b JM |
255 | /* Each objfile points to a linked list of partial symtabs derived from |
256 | this file, one partial symtab structure for each compilation unit | |
257 | (source file). */ | |
c906108c | 258 | |
c5aa993b | 259 | struct partial_symtab *psymtabs; |
c906108c | 260 | |
c5aa993b | 261 | /* List of freed partial symtabs, available for re-use */ |
c906108c | 262 | |
c5aa993b | 263 | struct partial_symtab *free_psymtabs; |
c906108c | 264 | |
c5aa993b JM |
265 | /* The object file's BFD. Can be null if the objfile contains only |
266 | minimal symbols, e.g. the run time common symbols for SunOS4. */ | |
c906108c | 267 | |
c5aa993b | 268 | bfd *obfd; |
c906108c | 269 | |
c5aa993b JM |
270 | /* The modification timestamp of the object file, as of the last time |
271 | we read its symbols. */ | |
c906108c | 272 | |
c5aa993b | 273 | long mtime; |
c906108c | 274 | |
c5aa993b JM |
275 | /* Obstacks to hold objects that should be freed when we load a new symbol |
276 | table from this object file. */ | |
c906108c | 277 | |
c5aa993b JM |
278 | struct obstack psymbol_obstack; /* Partial symbols */ |
279 | struct obstack symbol_obstack; /* Full symbols */ | |
280 | struct obstack type_obstack; /* Types */ | |
c906108c | 281 | |
c5aa993b JM |
282 | /* A byte cache where we can stash arbitrary "chunks" of bytes that |
283 | will not change. */ | |
c906108c | 284 | |
af5f3db6 AC |
285 | struct bcache *psymbol_cache; /* Byte cache for partial syms */ |
286 | struct bcache *macro_cache; /* Byte cache for macros */ | |
c906108c | 287 | |
c5aa993b JM |
288 | /* Vectors of all partial symbols read in from file. The actual data |
289 | is stored in the psymbol_obstack. */ | |
c906108c | 290 | |
c5aa993b JM |
291 | struct psymbol_allocation_list global_psymbols; |
292 | struct psymbol_allocation_list static_psymbols; | |
c906108c | 293 | |
c5aa993b JM |
294 | /* Each file contains a pointer to an array of minimal symbols for all |
295 | global symbols that are defined within the file. The array is terminated | |
296 | by a "null symbol", one that has a NULL pointer for the name and a zero | |
297 | value for the address. This makes it easy to walk through the array | |
298 | when passed a pointer to somewhere in the middle of it. There is also | |
299 | a count of the number of symbols, which does not include the terminating | |
300 | null symbol. The array itself, as well as all the data that it points | |
301 | to, should be allocated on the symbol_obstack for this file. */ | |
c906108c | 302 | |
c5aa993b JM |
303 | struct minimal_symbol *msymbols; |
304 | int minimal_symbol_count; | |
c906108c | 305 | |
9227b5eb JB |
306 | /* This is a hash table used to index the minimal symbols by name. */ |
307 | ||
308 | struct minimal_symbol *msymbol_hash[MINIMAL_SYMBOL_HASH_SIZE]; | |
309 | ||
310 | /* This hash table is used to index the minimal symbols by their | |
311 | demangled names. */ | |
312 | ||
313 | struct minimal_symbol *msymbol_demangled_hash[MINIMAL_SYMBOL_HASH_SIZE]; | |
314 | ||
c5aa993b JM |
315 | /* For object file formats which don't specify fundamental types, gdb |
316 | can create such types. For now, it maintains a vector of pointers | |
317 | to these internally created fundamental types on a per objfile basis, | |
318 | however it really should ultimately keep them on a per-compilation-unit | |
319 | basis, to account for linkage-units that consist of a number of | |
320 | compilation units that may have different fundamental types, such as | |
321 | linking C modules with ADA modules, or linking C modules that are | |
322 | compiled with 32-bit ints with C modules that are compiled with 64-bit | |
323 | ints (not inherently evil with a smarter linker). */ | |
c906108c | 324 | |
c5aa993b | 325 | struct type **fundamental_types; |
c906108c | 326 | |
c5aa993b JM |
327 | /* The mmalloc() malloc-descriptor for this objfile if we are using |
328 | the memory mapped malloc() package to manage storage for this objfile's | |
329 | data. NULL if we are not. */ | |
c906108c | 330 | |
c5aa993b | 331 | PTR md; |
c906108c | 332 | |
c5aa993b JM |
333 | /* The file descriptor that was used to obtain the mmalloc descriptor |
334 | for this objfile. If we call mmalloc_detach with the malloc descriptor | |
335 | we should then close this file descriptor. */ | |
c906108c | 336 | |
c5aa993b | 337 | int mmfd; |
c906108c | 338 | |
c5aa993b JM |
339 | /* Structure which keeps track of functions that manipulate objfile's |
340 | of the same type as this objfile. I.E. the function to read partial | |
341 | symbols for example. Note that this structure is in statically | |
342 | allocated memory, and is shared by all objfiles that use the | |
343 | object module reader of this type. */ | |
c906108c | 344 | |
c5aa993b | 345 | struct sym_fns *sf; |
c906108c | 346 | |
c5aa993b JM |
347 | /* The per-objfile information about the entry point, the scope (file/func) |
348 | containing the entry point, and the scope of the user's main() func. */ | |
c906108c | 349 | |
c5aa993b | 350 | struct entry_info ei; |
c906108c | 351 | |
c5aa993b JM |
352 | /* Information about stabs. Will be filled in with a dbx_symfile_info |
353 | struct by those readers that need it. */ | |
c906108c | 354 | |
c5aa993b | 355 | struct dbx_symfile_info *sym_stab_info; |
c906108c | 356 | |
c5aa993b JM |
357 | /* Hook for information for use by the symbol reader (currently used |
358 | for information shared by sym_init and sym_read). It is | |
359 | typically a pointer to malloc'd memory. The symbol reader's finish | |
360 | function is responsible for freeing the memory thusly allocated. */ | |
c906108c | 361 | |
c5aa993b | 362 | PTR sym_private; |
c906108c | 363 | |
c5aa993b JM |
364 | /* Hook for target-architecture-specific information. This must |
365 | point to memory allocated on one of the obstacks in this objfile, | |
366 | so that it gets freed automatically when reading a new object | |
367 | file. */ | |
c906108c | 368 | |
c5f10366 | 369 | void *obj_private; |
c906108c | 370 | |
c5aa993b JM |
371 | /* Set of relocation offsets to apply to each section. |
372 | Currently on the psymbol_obstack (which makes no sense, but I'm | |
373 | not sure it's harming anything). | |
c906108c | 374 | |
c5aa993b JM |
375 | These offsets indicate that all symbols (including partial and |
376 | minimal symbols) which have been read have been relocated by this | |
377 | much. Symbols which are yet to be read need to be relocated by | |
378 | it. */ | |
c906108c | 379 | |
c5aa993b JM |
380 | struct section_offsets *section_offsets; |
381 | int num_sections; | |
c906108c | 382 | |
b8fbeb18 EZ |
383 | /* Indexes in the section_offsets array. These are initialized by the |
384 | *_symfile_offsets() family of functions (som_symfile_offsets, | |
385 | xcoff_symfile_offsets, default_symfile_offsets). In theory they | |
386 | should correspond to the section indexes used by bfd for the | |
387 | current objfile. The exception to this for the time being is the | |
388 | SOM version. */ | |
389 | ||
390 | int sect_index_text; | |
391 | int sect_index_data; | |
392 | int sect_index_bss; | |
393 | int sect_index_rodata; | |
394 | ||
96baa820 | 395 | /* These pointers are used to locate the section table, which |
5c44784c | 396 | among other things, is used to map pc addresses into sections. |
96baa820 JM |
397 | SECTIONS points to the first entry in the table, and |
398 | SECTIONS_END points to the first location past the last entry | |
399 | in the table. Currently the table is stored on the | |
400 | psymbol_obstack (which makes no sense, but I'm not sure it's | |
401 | harming anything). */ | |
c906108c | 402 | |
c5aa993b JM |
403 | struct obj_section |
404 | *sections, *sections_end; | |
c906108c | 405 | |
c5aa993b JM |
406 | /* two auxiliary fields, used to hold the fp of separate symbol files */ |
407 | FILE *auxf1, *auxf2; | |
c906108c | 408 | |
c5aa993b JM |
409 | /* Imported symbols */ |
410 | ImportEntry *import_list; | |
411 | int import_list_size; | |
c906108c | 412 | |
c5aa993b JM |
413 | /* Exported symbols */ |
414 | ExportEntry *export_list; | |
415 | int export_list_size; | |
c906108c | 416 | |
c5aa993b JM |
417 | /* Place to stash various statistics about this objfile */ |
418 | OBJSTATS; | |
419 | }; | |
c906108c SS |
420 | |
421 | /* Defines for the objfile flag word. */ | |
422 | ||
423 | /* Gdb can arrange to allocate storage for all objects related to a | |
424 | particular objfile in a designated section of its address space, | |
425 | managed at a low level by mmap() and using a special version of | |
426 | malloc that handles malloc/free/realloc on top of the mmap() interface. | |
427 | This allows the "internal gdb state" for a particular objfile to be | |
428 | dumped to a gdb state file and subsequently reloaded at a later time. */ | |
429 | ||
430 | #define OBJF_MAPPED (1 << 0) /* Objfile data is mmap'd */ | |
431 | ||
432 | /* When using mapped/remapped predigested gdb symbol information, we need | |
433 | a flag that indicates that we have previously done an initial symbol | |
434 | table read from this particular objfile. We can't just look for the | |
435 | absence of any of the three symbol tables (msymbols, psymtab, symtab) | |
436 | because if the file has no symbols for example, none of these will | |
437 | exist. */ | |
438 | ||
439 | #define OBJF_SYMS (1 << 1) /* Have tried to read symbols */ | |
440 | ||
441 | /* When an object file has its functions reordered (currently Irix-5.2 | |
442 | shared libraries exhibit this behaviour), we will need an expensive | |
443 | algorithm to locate a partial symtab or symtab via an address. | |
444 | To avoid this penalty for normal object files, we use this flag, | |
445 | whose setting is determined upon symbol table read in. */ | |
446 | ||
447 | #define OBJF_REORDERED (1 << 2) /* Functions are reordered */ | |
c5aa993b | 448 | |
2df3850c JM |
449 | /* Distinguish between an objfile for a shared library and a "vanilla" |
450 | objfile. (If not set, the objfile may still actually be a solib. | |
451 | This can happen if the user created the objfile by using the | |
452 | add-symbol-file command. GDB doesn't in that situation actually | |
453 | check whether the file is a solib. Rather, the target's | |
454 | implementation of the solib interface is responsible for setting | |
455 | this flag when noticing solibs used by an inferior.) */ | |
c906108c | 456 | |
c5aa993b | 457 | #define OBJF_SHARED (1 << 3) /* From a shared library */ |
c906108c | 458 | |
2acceee2 JM |
459 | /* User requested that this objfile be read in it's entirety. */ |
460 | ||
461 | #define OBJF_READNOW (1 << 4) /* Immediate full read */ | |
462 | ||
2df3850c JM |
463 | /* This objfile was created because the user explicitly caused it |
464 | (e.g., used the add-symbol-file command). This bit offers a way | |
465 | for run_command to remove old objfile entries which are no longer | |
466 | valid (i.e., are associated with an old inferior), but to preserve | |
467 | ones that the user explicitly loaded via the add-symbol-file | |
468 | command. */ | |
469 | ||
470 | #define OBJF_USERLOADED (1 << 5) /* User loaded */ | |
471 | ||
c906108c SS |
472 | /* The object file that the main symbol table was loaded from (e.g. the |
473 | argument to the "symbol-file" or "file" command). */ | |
474 | ||
475 | extern struct objfile *symfile_objfile; | |
476 | ||
477 | /* The object file that contains the runtime common minimal symbols | |
478 | for SunOS4. Note that this objfile has no associated BFD. */ | |
479 | ||
480 | extern struct objfile *rt_common_objfile; | |
481 | ||
482 | /* When we need to allocate a new type, we need to know which type_obstack | |
483 | to allocate the type on, since there is one for each objfile. The places | |
484 | where types are allocated are deeply buried in function call hierarchies | |
485 | which know nothing about objfiles, so rather than trying to pass a | |
486 | particular objfile down to them, we just do an end run around them and | |
487 | set current_objfile to be whatever objfile we expect to be using at the | |
488 | time types are being allocated. For instance, when we start reading | |
489 | symbols for a particular objfile, we set current_objfile to point to that | |
490 | objfile, and when we are done, we set it back to NULL, to ensure that we | |
491 | never put a type someplace other than where we are expecting to put it. | |
492 | FIXME: Maybe we should review the entire type handling system and | |
493 | see if there is a better way to avoid this problem. */ | |
494 | ||
495 | extern struct objfile *current_objfile; | |
496 | ||
497 | /* All known objfiles are kept in a linked list. This points to the | |
498 | root of this list. */ | |
499 | ||
500 | extern struct objfile *object_files; | |
501 | ||
502 | /* Declarations for functions defined in objfiles.c */ | |
503 | ||
a14ed312 | 504 | extern struct objfile *allocate_objfile (bfd *, int); |
c906108c | 505 | |
a14ed312 | 506 | extern int build_objfile_section_table (struct objfile *); |
c906108c | 507 | |
a14ed312 | 508 | extern void objfile_to_front (struct objfile *); |
c906108c | 509 | |
a14ed312 | 510 | extern void unlink_objfile (struct objfile *); |
c906108c | 511 | |
a14ed312 | 512 | extern void free_objfile (struct objfile *); |
c906108c | 513 | |
74b7792f AC |
514 | extern struct cleanup *make_cleanup_free_objfile (struct objfile *); |
515 | ||
a14ed312 | 516 | extern void free_all_objfiles (void); |
c906108c | 517 | |
a14ed312 | 518 | extern void objfile_relocate (struct objfile *, struct section_offsets *); |
c906108c | 519 | |
a14ed312 | 520 | extern int have_partial_symbols (void); |
c906108c | 521 | |
a14ed312 | 522 | extern int have_full_symbols (void); |
c906108c SS |
523 | |
524 | /* This operation deletes all objfile entries that represent solibs that | |
525 | weren't explicitly loaded by the user, via e.g., the add-symbol-file | |
526 | command. | |
c5aa993b | 527 | */ |
a14ed312 | 528 | extern void objfile_purge_solibs (void); |
c906108c SS |
529 | |
530 | /* Functions for dealing with the minimal symbol table, really a misc | |
531 | address<->symbol mapping for things we don't have debug symbols for. */ | |
532 | ||
a14ed312 | 533 | extern int have_minimal_symbols (void); |
c906108c | 534 | |
a14ed312 | 535 | extern struct obj_section *find_pc_section (CORE_ADDR pc); |
c906108c | 536 | |
a14ed312 KB |
537 | extern struct obj_section *find_pc_sect_section (CORE_ADDR pc, |
538 | asection * section); | |
c906108c | 539 | |
a14ed312 | 540 | extern int in_plt_section (CORE_ADDR, char *); |
c906108c | 541 | |
a14ed312 | 542 | extern int is_in_import_list (char *, struct objfile *); |
7be570e7 | 543 | |
c906108c SS |
544 | /* Traverse all object files. ALL_OBJFILES_SAFE works even if you delete |
545 | the objfile during the traversal. */ | |
546 | ||
547 | #define ALL_OBJFILES(obj) \ | |
548 | for ((obj) = object_files; (obj) != NULL; (obj) = (obj)->next) | |
549 | ||
550 | #define ALL_OBJFILES_SAFE(obj,nxt) \ | |
551 | for ((obj) = object_files; \ | |
552 | (obj) != NULL? ((nxt)=(obj)->next,1) :0; \ | |
553 | (obj) = (nxt)) | |
554 | ||
555 | /* Traverse all symtabs in one objfile. */ | |
556 | ||
557 | #define ALL_OBJFILE_SYMTABS(objfile, s) \ | |
558 | for ((s) = (objfile) -> symtabs; (s) != NULL; (s) = (s) -> next) | |
559 | ||
560 | /* Traverse all psymtabs in one objfile. */ | |
561 | ||
562 | #define ALL_OBJFILE_PSYMTABS(objfile, p) \ | |
563 | for ((p) = (objfile) -> psymtabs; (p) != NULL; (p) = (p) -> next) | |
564 | ||
565 | /* Traverse all minimal symbols in one objfile. */ | |
566 | ||
567 | #define ALL_OBJFILE_MSYMBOLS(objfile, m) \ | |
568 | for ((m) = (objfile) -> msymbols; SYMBOL_NAME(m) != NULL; (m)++) | |
569 | ||
570 | /* Traverse all symtabs in all objfiles. */ | |
571 | ||
572 | #define ALL_SYMTABS(objfile, s) \ | |
573 | ALL_OBJFILES (objfile) \ | |
574 | ALL_OBJFILE_SYMTABS (objfile, s) | |
575 | ||
576 | /* Traverse all psymtabs in all objfiles. */ | |
577 | ||
578 | #define ALL_PSYMTABS(objfile, p) \ | |
579 | ALL_OBJFILES (objfile) \ | |
580 | ALL_OBJFILE_PSYMTABS (objfile, p) | |
581 | ||
582 | /* Traverse all minimal symbols in all objfiles. */ | |
583 | ||
584 | #define ALL_MSYMBOLS(objfile, m) \ | |
585 | ALL_OBJFILES (objfile) \ | |
586 | if ((objfile)->msymbols) \ | |
587 | ALL_OBJFILE_MSYMBOLS (objfile, m) | |
588 | ||
589 | #define ALL_OBJFILE_OSECTIONS(objfile, osect) \ | |
590 | for (osect = objfile->sections; osect < objfile->sections_end; osect++) | |
591 | ||
592 | #define ALL_OBJSECTIONS(objfile, osect) \ | |
593 | ALL_OBJFILES (objfile) \ | |
594 | ALL_OBJFILE_OSECTIONS (objfile, osect) | |
595 | ||
b8fbeb18 | 596 | #define SECT_OFF_DATA(objfile) \ |
8e65ff28 AC |
597 | ((objfile->sect_index_data == -1) \ |
598 | ? (internal_error (__FILE__, __LINE__, "sect_index_data not initialized"), -1) \ | |
599 | : objfile->sect_index_data) | |
b8fbeb18 EZ |
600 | |
601 | #define SECT_OFF_RODATA(objfile) \ | |
8e65ff28 AC |
602 | ((objfile->sect_index_rodata == -1) \ |
603 | ? (internal_error (__FILE__, __LINE__, "sect_index_rodata not initialized"), -1) \ | |
604 | : objfile->sect_index_rodata) | |
b8fbeb18 EZ |
605 | |
606 | #define SECT_OFF_TEXT(objfile) \ | |
8e65ff28 AC |
607 | ((objfile->sect_index_text == -1) \ |
608 | ? (internal_error (__FILE__, __LINE__, "sect_index_text not initialized"), -1) \ | |
609 | : objfile->sect_index_text) | |
b8fbeb18 | 610 | |
a4c8257b EZ |
611 | /* Sometimes the .bss section is missing from the objfile, so we don't |
612 | want to die here. Let the users of SECT_OFF_BSS deal with an | |
613 | uninitialized section index. */ | |
614 | #define SECT_OFF_BSS(objfile) (objfile)->sect_index_bss | |
b8fbeb18 | 615 | |
c5aa993b | 616 | #endif /* !defined (OBJFILES_H) */ |