1 /* -*- tab-width: 8; c-basic-offset: 2 -*- */
4 * File stabs.c - read stabs information from the wine executable itself.
6 * Copyright (C) 1996, Eric Youngdale.
12 #include <sys/types.h>
15 #ifdef HAVE_SYS_MMAN_H
24 #define PATH_MAX _MAX_PATH
30 #if defined(__svr4__) || defined(__sun)
41 #elif defined(__EMX__)
78 struct stab_nlist
*n_next
;
84 unsigned long n_value
;
88 * This is used to keep track of known datatypes so that we don't redefine
89 * them over and over again. It sucks up lots of memory otherwise.
93 struct known_typedef
* next
;
96 struct datatype
* types
[1];
99 #define NR_STAB_HASH 521
101 struct known_typedef
* ktd_head
[NR_STAB_HASH
] = {NULL
,};
103 static unsigned int stab_hash( const char * name
)
105 unsigned int hash
= 0;
113 hash
= (hash
<< 4) + *p
++;
115 if( (tmp
= (hash
& 0xf0000000)) )
121 return hash
% NR_STAB_HASH
;
125 static void stab_strcpy(char * dest
, const char * source
)
128 * A strcpy routine that stops when we hit the ':' character.
129 * Faster than copying the whole thing, and then nuking the
132 while(*source
!= '\0' && *source
!= ':')
137 extern void DEBUG_PrintAType(struct datatype
*, int);
143 struct datatype
** vector
;
147 #define MAX_INCLUDES 256
149 static include_def
* include_defs
= NULL
;
150 static int num_include_def
= 0;
151 static int num_alloc_include_def
= 0;
152 static int cu_include_stack
[MAX_INCLUDES
];
153 static int cu_include_stk_idx
= 0;
154 static struct datatype
** cu_vector
= NULL
;
155 static int cu_nrofentries
= 0;
159 DEBUG_CreateInclude(const char* file
, unsigned long val
)
161 if (num_include_def
== num_alloc_include_def
)
163 num_alloc_include_def
+= 256;
164 include_defs
= DBG_realloc(include_defs
, sizeof(include_defs
[0])*num_alloc_include_def
);
165 memset(include_defs
+num_include_def
, 0, sizeof(include_defs
[0])*256);
167 include_defs
[num_include_def
].name
= DBG_strdup(file
);
168 include_defs
[num_include_def
].value
= val
;
169 include_defs
[num_include_def
].vector
= NULL
;
170 include_defs
[num_include_def
].nrofentries
= 0;
172 return num_include_def
++;
177 DEBUG_FindInclude(const char* file
, unsigned long val
)
181 for (i
= 0; i
< num_include_def
; i
++)
183 if (val
== include_defs
[i
].value
&&
184 strcmp(file
, include_defs
[i
].name
) == 0)
192 DEBUG_AddInclude(int idx
)
194 ++cu_include_stk_idx
;
196 /* is this happen, just bump MAX_INCLUDES */
197 /* we could also handle this as another dynarray */
198 assert(cu_include_stk_idx
< MAX_INCLUDES
);
200 cu_include_stack
[cu_include_stk_idx
] = idx
;
201 return cu_include_stk_idx
;
206 DEBUG_ResetIncludes(void)
209 * The datatypes that we would need to use are reset when
210 * we start a new file. (at least the ones in filenr == 0
212 cu_include_stk_idx
= 0;/* keep 0 as index for the .c file itself */
213 memset(cu_vector
, 0, sizeof(cu_vector
[0]) * cu_nrofentries
);
218 DEBUG_FreeIncludes(void)
222 DEBUG_ResetIncludes();
224 for (i
= 0; i
< num_include_def
; i
++)
226 DBG_free(include_defs
[i
].name
);
227 DBG_free(include_defs
[i
].vector
);
229 DBG_free(include_defs
);
232 num_alloc_include_def
= 0;
238 #define MAX_TD_NESTING 128
242 DEBUG_FileSubNr2StabEnum(int filenr
, int subnr
)
244 struct datatype
** ret
;
246 /* fprintf(stderr, "creating type id for (%d,%d)\n", filenr, subnr); */
248 /* FIXME: I could perhaps create a dummy include_def for each compilation
249 * unit which would allow not to handle those two cases separately
253 if (cu_nrofentries
<= subnr
)
255 cu_vector
= DBG_realloc(cu_vector
, sizeof(cu_vector
[0])*(subnr
+1));
256 memset(cu_vector
+cu_nrofentries
, 0, sizeof(cu_vector
[0])*(subnr
+1-cu_nrofentries
));
257 cu_nrofentries
= subnr
+ 1;
259 ret
= &cu_vector
[subnr
];
265 assert(filenr
<= cu_include_stk_idx
);
267 idef
= &include_defs
[cu_include_stack
[filenr
]];
269 if (idef
->nrofentries
<= subnr
)
271 idef
->vector
= DBG_realloc(idef
->vector
, sizeof(idef
->vector
[0])*(subnr
+1));
272 memset(idef
->vector
+ idef
->nrofentries
, 0, sizeof(idef
->vector
[0])*(subnr
+1-idef
->nrofentries
));
273 idef
->nrofentries
= subnr
+ 1;
275 ret
= &idef
->vector
[subnr
];
277 /* fprintf(stderr,"(%d,%d) is %d\n",filenr,subnr,ret); */
283 DEBUG_ReadTypeEnumBackwards(char*x
) {
290 filenr
=strtol(x
,&x
,10); /* <int> */
292 subnr
=strtol(x
,&x
,10); /* <int> */
295 while ((*x
>='0') && (*x
<='9'))
300 return DEBUG_FileSubNr2StabEnum(filenr
,subnr
);
305 DEBUG_ReadTypeEnum(char **x
) {
310 filenr
=strtol(*x
,x
,10); /* <int> */
312 subnr
=strtol(*x
,x
,10); /* <int> */
316 subnr
= strtol(*x
,x
,10); /* <int> */
318 return DEBUG_FileSubNr2StabEnum(filenr
,subnr
);
323 DEBUG_RegisterTypedef(const char * name
, struct datatype
** types
, int ndef
)
326 struct known_typedef
* ktd
;
331 ktd
= (struct known_typedef
*) DBG_alloc(sizeof(struct known_typedef
)
332 + (ndef
- 1) * sizeof(struct datatype
*));
334 hash
= stab_hash(name
);
336 ktd
->name
= DBG_strdup(name
);
338 memcpy(&ktd
->types
[0], types
, ndef
* sizeof(struct datatype
*));
339 ktd
->next
= ktd_head
[hash
];
340 ktd_head
[hash
] = ktd
;
347 DEBUG_HandlePreviousTypedef(const char * name
, const char * stab
)
350 enum debug_type expect
;
352 struct known_typedef
* ktd
;
355 hash
= stab_hash(name
);
357 for(ktd
= ktd_head
[hash
]; ktd
; ktd
= ktd
->next
)
358 if ((ktd
->name
[0] == name
[0]) && (strcmp(name
, ktd
->name
) == 0) )
362 * Didn't find it. This must be a new one.
368 * Examine the stab to make sure it has the same number of definitions.
371 for(ptr
= strchr(stab
, '='); ptr
; ptr
= strchr(ptr
+1, '='))
373 if( count
>= ktd
->ndefs
)
377 * Make sure the types of all of the objects is consistent with
378 * what we have already parsed.
392 case '(': /* it's mainly a ref to another typedef, skip it */
409 fprintf(stderr
, "Unknown type (%c).\n",ptr
[1]);
412 if( expect
!= -1 && expect
!= DEBUG_GetType(ktd
->types
[count
]) )
417 if( ktd
->ndefs
!= count
)
421 * Go through, dig out all of the type numbers, and substitute the
422 * appropriate things.
425 for(ptr
= strchr(stab
, '='); ptr
; ptr
= strchr(ptr
+1, '='))
426 *DEBUG_ReadTypeEnumBackwards(ptr
-1) = ktd
->types
[count
++];
431 static int DEBUG_FreeRegisteredTypedefs()
435 struct known_typedef
* ktd
;
436 struct known_typedef
* next
;
439 for(j
=0; j
< NR_STAB_HASH
; j
++ )
441 for(ktd
= ktd_head
[j
]; ktd
; ktd
= next
)
457 DEBUG_ParseTypedefStab(char * ptr
, const char * typename
)
462 struct datatype
* curr_type
;
463 struct datatype
* datatype
;
464 struct datatype
* curr_types
[MAX_TD_NESTING
];
465 char element_name
[1024];
468 const char * orig_typename
;
474 orig_typename
= typename
;
476 if( DEBUG_HandlePreviousTypedef(typename
, ptr
) )
480 * Go from back to front. First we go through and figure out what
481 * type numbers we need, and register those types. Then we go in
482 * and fill the details.
485 for( c
= strchr(ptr
, '='); c
!= NULL
; c
= strchr(c
+ 1, '=') )
488 * Back up until we get to a non-numeric character, to get datatype
490 struct datatype
** dt
= DEBUG_ReadTypeEnumBackwards(c
-1);
492 if( ntypes
>= MAX_TD_NESTING
)
495 * If this ever happens, just bump the counter.
497 fprintf(stderr
, "Typedef nesting overflow\n");
504 *dt
= DEBUG_NewDataType(DT_POINTER
, NULL
);
505 curr_types
[ntypes
++] = *dt
;
509 *dt
= DEBUG_NewDataType(DT_STRUCT
, typename
);
510 curr_types
[ntypes
++] = *dt
;
513 *dt
= DEBUG_NewDataType(DT_ARRAY
, NULL
);
514 curr_types
[ntypes
++] = *dt
;
517 /* will be handled in next loop,
518 * just a ref to another type
520 curr_types
[ntypes
++] = NULL
;
524 *dt
= DEBUG_NewDataType(DT_BASIC
, typename
);
525 curr_types
[ntypes
++] = *dt
;
528 stab_strcpy(element_name
, c
+ 3);
529 *dt
= DEBUG_NewDataType(DT_STRUCT
, element_name
);
530 curr_types
[ntypes
++] = *dt
;
533 *dt
= DEBUG_NewDataType(DT_ENUM
, NULL
);
534 curr_types
[ntypes
++] = *dt
;
537 *dt
= DEBUG_NewDataType(DT_FUNC
, NULL
);
538 curr_types
[ntypes
++] = *dt
;
541 fprintf(stderr
, "Unknown type (%c).\n",c
[1]);
549 * OK, now take a second sweep through. Now we will be digging
550 * out the definitions of the various components, and storing
551 * them in the skeletons that we have already allocated. We take
552 * a right-to left search as this is much easier to parse.
554 for( c
= strrchr(ptr
, '='); c
!= NULL
; c
= strrchr(ptr
, '=') )
556 struct datatype
** dt
= DEBUG_ReadTypeEnumBackwards(c
-1);
557 struct datatype
** dt2
;
578 datatype
= *DEBUG_ReadTypeEnum(&tc
);
579 DEBUG_SetPointerType(curr_type
, datatype
);
587 dt2
= DEBUG_ReadTypeEnum(&tc
);
593 else if (!*dt
&& !*dt2
)
595 /* this should be a basic type, define it */
596 *dt2
= *dt
= DEBUG_NewDataType(DT_BASIC
, typename
);
600 fprintf(stderr
, "Unknown condition %p %p (%s)\n", *dt
, *dt2
, ptr
);
606 curr_types
[ntp
--] = *dt
;
612 * We have already handled these above.
618 /* ar<typeinfo_nodef>;<int>;<int>;<typeinfo>,<int>,<int>;; */
622 DEBUG_ReadTypeEnum(&tc
);
624 arrmin
= strtol(tc
, &tc
, 10); /* <int> */
626 arrmax
= strtol(tc
, &tc
, 10); /* <int> */
628 datatype
= *DEBUG_ReadTypeEnum(&tc
); /* <typeinfo> */
633 DEBUG_SetArrayParams(curr_type
, arrmin
, arrmax
, datatype
);
641 if( DEBUG_SetStructSize(curr_type
, strtol(tc
, &tc
, 10)) == FALSE
)
644 * We have already filled out this structure. Nothing to do,
645 * so just skip forward to the end of the definition.
647 while( tc
[0] != ';' && tc
[1] != ';' )
660 * Now parse the individual elements of the structure/union.
671 datatype
= *DEBUG_ReadTypeEnum(&tc
);
674 offset
= strtol(tc
, &tc
, 10);
676 size
= strtol(tc
, &tc
, 10);
679 DEBUG_AddStructElement(curr_type
, element_name
, datatype
,
684 /* ... but proceed parsing to the end of the stab */
685 fprintf(stderr
, "failure on %s %s\n", ptr
, ti
);
692 /* if we had a undeclared value this one is undeclared too.
693 * remove it from the stab_types.
694 * I just set it to NULL to detect bugs in my thoughtprocess.
695 * FIXME: leaks the memory for the structure elements.
696 * FIXME: such structures should have been optimized away
710 * Now parse the individual elements of the structure/union.
719 offset
= strtol(tc
, &tc
, 10);
721 DEBUG_AddStructElement(curr_type
, element_name
, NULL
, offset
, 0);
729 fprintf(stderr
, "Unknown type (%c).\n",c
[1]);
734 * Now register the type so that if we encounter it again, we will know
737 DEBUG_RegisterTypedef(orig_typename
, curr_types
, ntypes
);
742 static struct datatype
*
743 DEBUG_ParseStabType(const char * stab
)
748 * Look through the stab definition, and figure out what datatype
749 * this represents. If we have something we know about, assign the
752 c
= strchr(stab
, ':');
758 * The next character says more about the type (i.e. data, function, etc)
759 * of symbol. Skip it.
764 * The next is either an integer or a (integer,integer).
765 * The DEBUG_ReadTypeEnum takes care that stab_types is large enough.
767 return *DEBUG_ReadTypeEnum(&c
);
771 DEBUG_ParseStabs(char * addr
, unsigned int load_offset
,
772 unsigned int staboff
, int stablen
,
773 unsigned int strtaboff
, int strtablen
)
775 struct name_hash
* curr_func
= NULL
;
776 struct wine_locals
* curr_loc
= NULL
;
777 struct name_hash
* curr_sym
= NULL
;
778 char currpath
[PATH_MAX
];
788 struct stab_nlist
* stab_ptr
;
791 char * subpath
= NULL
;
794 nstab
= stablen
/ sizeof(struct stab_nlist
);
795 stab_ptr
= (struct stab_nlist
*) (addr
+ staboff
);
796 strs
= (char *) (addr
+ strtaboff
);
798 memset(currpath
, 0, sizeof(currpath
));
801 * Allocate a buffer into which we can build stab strings for cases
802 * where the stab is continued over multiple lines.
805 stabbuff
= (char *) DBG_alloc(stabbufflen
);
809 for(i
=0; i
< nstab
; i
++, stab_ptr
++ )
811 ptr
= strs
+ (unsigned int) stab_ptr
->n_un
.n_name
;
812 if( ptr
[strlen(ptr
) - 1] == '\\' )
815 * Indicates continuation. Append this to the buffer, and go onto the
816 * next record. Repeat the process until we find a stab without the
817 * '/' character, as this indicates we have the whole thing.
820 if( strlen(stabbuff
) + len
> stabbufflen
)
822 stabbufflen
+= 65536;
823 stabbuff
= (char *) DBG_realloc(stabbuff
, stabbufflen
);
825 strncat(stabbuff
, ptr
, len
- 1);
828 else if( stabbuff
[0] != '\0' )
830 strcat( stabbuff
, ptr
);
834 if( strchr(ptr
, '=') != NULL
)
837 * The stabs aren't in writable memory, so copy it over so we are
838 * sure we can scribble on it.
840 if( ptr
!= stabbuff
)
842 strcpy(stabbuff
, ptr
);
845 stab_strcpy(symname
, ptr
);
846 DEBUG_ParseTypedefStab(ptr
, symname
);
849 switch(stab_ptr
->n_type
)
853 * These are useless with ELF. They have no value, and you have to
854 * read the normal symbol table to get the address. Thus we
855 * ignore them, and when we process the normal symbol table
856 * we should do the right thing.
858 * With a.out, they actually do make some amount of sense.
861 new_addr
.type
= DEBUG_ParseStabType(ptr
);
862 new_addr
.off
= load_offset
+ stab_ptr
->n_value
;
864 stab_strcpy(symname
, ptr
);
866 curr_sym
= DEBUG_AddSymbol( symname
, &new_addr
, currpath
,
867 SYM_WINE
| SYM_DATA
| SYM_INVALID
);
869 curr_sym
= DEBUG_AddSymbol( symname
, &new_addr
, currpath
,
870 SYM_WINE
| SYM_DATA
);
876 * We need to keep track of these so we get symbol scoping
877 * right for local variables. For now, we just ignore them.
878 * The hooks are already there for dealing with this however,
879 * so all we need to do is to keep count of the nesting level,
880 * and find the RBRAC for each matching LBRAC.
886 * These are static symbols and BSS symbols.
889 new_addr
.type
= DEBUG_ParseStabType(ptr
);
890 new_addr
.off
= load_offset
+ stab_ptr
->n_value
;
892 stab_strcpy(symname
, ptr
);
893 curr_sym
= DEBUG_AddSymbol( symname
, &new_addr
, currpath
,
894 SYM_WINE
| SYM_DATA
);
898 * These are function parameters.
900 if( (curr_func
!= NULL
)
901 && (stab_ptr
->n_value
!= 0) )
903 stab_strcpy(symname
, ptr
);
904 curr_loc
= DEBUG_AddLocal( curr_func
, 0,
905 stab_ptr
->n_value
, 0, 0, symname
);
906 DEBUG_SetLocalSymbolType( curr_loc
, DEBUG_ParseStabType(ptr
) );
910 if( curr_func
!= NULL
)
912 stab_strcpy(symname
, ptr
);
913 curr_loc
= DEBUG_AddLocal( curr_func
, stab_ptr
->n_value
,
915 DEBUG_SetLocalSymbolType( curr_loc
, DEBUG_ParseStabType(ptr
) );
919 if( (curr_func
!= NULL
)
920 && (stab_ptr
->n_value
!= 0) )
922 stab_strcpy(symname
, ptr
);
923 curr_loc
= DEBUG_AddLocal( curr_func
, 0,
924 stab_ptr
->n_value
, 0, 0, symname
);
925 DEBUG_SetLocalSymbolType( curr_loc
, DEBUG_ParseStabType(ptr
) );
927 else if (curr_func
== NULL
)
929 stab_strcpy(symname
, ptr
);
934 * This is a line number. These are always relative to the start
935 * of the function (N_FUN), and this makes the lookup easier.
937 if( curr_func
!= NULL
)
940 DEBUG_AddLineNumber(curr_func
, stab_ptr
->n_desc
,
945 * This isn't right. The order of the stabs is different under
946 * a.out, and as a result we would end up attaching the line
947 * number to the wrong function.
949 DEBUG_AddLineNumber(curr_func
, stab_ptr
->n_desc
,
950 stab_ptr
->n_value
- curr_func
->addr
.off
);
957 * First, clean up the previous function we were working on.
959 DEBUG_Normalize(curr_func
);
962 * For now, just declare the various functions. Later
963 * on, we will add the line number information and the
969 new_addr
.type
= DEBUG_ParseStabType(ptr
);
970 new_addr
.off
= load_offset
+ stab_ptr
->n_value
;
972 * Copy the string to a temp buffer so we
973 * can kill everything after the ':'. We do
974 * it this way because otherwise we end up dirtying
975 * all of the pages related to the stabs, and that
976 * sucks up swap space like crazy.
978 stab_strcpy(symname
, ptr
);
979 curr_func
= DEBUG_AddSymbol( symname
, &new_addr
, currpath
,
980 SYM_WINE
| SYM_FUNC
);
985 * Don't add line number information for this function
993 * This indicates a new source file. Append the records
994 * together, to build the correct path name.
998 * With a.out, there is no NULL string N_SO entry at the end of
999 * the file. Thus when we find non-consecutive entries,
1000 * we consider that a new file is started.
1002 if( last_nso
< i
-1 )
1005 DEBUG_Normalize(curr_func
);
1016 DEBUG_Normalize(curr_func
);
1022 strcat(currpath
, ptr
);
1024 strcpy(currpath
, ptr
);
1026 DEBUG_ResetIncludes();
1032 * This indicates we are including stuff from an include file.
1033 * If this is the main source, enable the debug stuff, otherwise
1036 if( subpath
== NULL
|| strcmp(ptr
, subpath
) == 0 )
1043 DEBUG_Normalize(curr_func
);
1049 strtabinc
= stab_ptr
->n_value
;
1050 DEBUG_Normalize(curr_func
);
1055 * Ignore this. We don't care what it points to.
1059 DEBUG_AddInclude(DEBUG_CreateInclude(ptr
, stab_ptr
->n_value
));
1064 DEBUG_AddInclude(DEBUG_FindInclude(ptr
, stab_ptr
->n_value
));
1068 * Always ignore these. GCC doesn't even generate them.
1072 fprintf(stderr
, "Unkown stab type 0x%02x\n", stab_ptr
->n_type
);
1079 fprintf(stderr
, "%d %x %s\n", stab_ptr
->n_type
,
1080 (unsigned int) stab_ptr
->n_value
,
1081 strs
+ (unsigned int) stab_ptr
->n_un
.n_name
);
1085 DEBUG_FreeRegisteredTypedefs();
1086 DEBUG_FreeIncludes();
1094 * Walk through the entire symbol table and add any symbols we find there.
1095 * This can be used in cases where we have stripped ELF shared libraries,
1096 * or it can be used in cases where we have data symbols for which the address
1097 * isn't encoded in the stabs.
1099 * This is all really quite easy, since we don't have to worry about line
1100 * numbers or local data variables.
1104 DEBUG_ProcessElfSymtab(char * addr
, unsigned int load_offset
,
1105 Elf32_Shdr
* symtab
, Elf32_Shdr
* strtab
)
1107 char * curfile
= NULL
;
1108 struct name_hash
* curr_sym
= NULL
;
1118 symp
= (Elf32_Sym
*) (addr
+ symtab
->sh_offset
);
1119 nsym
= symtab
->sh_size
/ sizeof(*symp
);
1120 strp
= (char *) (addr
+ strtab
->sh_offset
);
1122 for(i
=0; i
< nsym
; i
++, symp
++)
1125 * Ignore certain types of entries which really aren't of that much
1128 if( ELF32_ST_TYPE(symp
->st_info
) == STT_SECTION
)
1133 symname
= strp
+ symp
->st_name
;
1136 * Save the name of the current file, so we have a way of tracking
1137 * static functions/data.
1139 if( ELF32_ST_TYPE(symp
->st_info
) == STT_FILE
)
1147 * See if we already have something for this symbol.
1148 * If so, ignore this entry, because it would have come from the
1149 * stabs or from a previous symbol. If the value is different,
1150 * we will have to keep the darned thing, because there can be
1151 * multiple local symbols by the same name.
1153 if( (DEBUG_GetSymbolValue(symname
, -1, &new_addr
, FALSE
) == TRUE
)
1154 && (new_addr
.off
== (load_offset
+ symp
->st_value
)) )
1158 new_addr
.type
= NULL
;
1159 new_addr
.off
= load_offset
+ symp
->st_value
;
1160 flags
= SYM_WINE
| (ELF32_ST_BIND(symp
->st_info
) == STT_FUNC
1161 ? SYM_FUNC
: SYM_DATA
);
1162 if( ELF32_ST_BIND(symp
->st_info
) == STB_GLOBAL
)
1163 curr_sym
= DEBUG_AddSymbol( symname
, &new_addr
, NULL
, flags
);
1165 curr_sym
= DEBUG_AddSymbol( symname
, &new_addr
, curfile
, flags
);
1168 * Record the size of the symbol. This can come in handy in
1169 * some cases. Not really used yet, however.
1171 if( symp
->st_size
!= 0 )
1172 DEBUG_SetSymbolSize(curr_sym
, symp
->st_size
);
1180 DEBUG_ProcessElfObject(const char * filename
, unsigned int load_offset
)
1183 struct stat statbuf
;
1186 char * addr
= (char *) 0xffffffff;
1197 * Make sure we can stat and open this file.
1199 if( filename
== NULL
)
1202 status
= stat(filename
, &statbuf
);
1205 char *s
,*t
,*fn
,*paths
;
1206 if (strchr(filename
,'/'))
1208 paths
= DBG_strdup(getenv("PATH"));
1213 fn
= (char*)DBG_alloc(strlen(filename
)+1+strlen(s
)+1);
1216 strcat(fn
,filename
);
1217 if ((rtn
= DEBUG_ProcessElfObject(fn
,load_offset
))) {
1223 if (t
) s
= t
+1; else break;
1225 if (!s
|| !*s
) fprintf(stderr
," not found");
1231 * Now open the file, so that we can mmap() it.
1233 fd
= open(filename
, O_RDONLY
);
1239 * Now mmap() the file.
1241 addr
= mmap(0, statbuf
.st_size
, PROT_READ
,
1242 MAP_PRIVATE
, fd
, 0);
1243 if( addr
== (char *) 0xffffffff )
1247 * Next, we need to find a few of the internal ELF headers within
1248 * this thing. We need the main executable header, and the section
1251 ehptr
= (Elf32_Ehdr
*) addr
;
1253 if( load_offset
== 0 )
1254 DEBUG_RegisterELFDebugInfo(ehptr
->e_entry
, statbuf
.st_size
, filename
);
1256 DEBUG_RegisterELFDebugInfo(load_offset
, statbuf
.st_size
, filename
);
1258 spnt
= (Elf32_Shdr
*) (addr
+ ehptr
->e_shoff
);
1259 nsect
= ehptr
->e_shnum
;
1260 shstrtab
= (addr
+ spnt
[ehptr
->e_shstrndx
].sh_offset
);
1262 stabsect
= stabstrsect
= -1;
1264 for(i
=0; i
< nsect
; i
++)
1266 if( strcmp(shstrtab
+ spnt
[i
].sh_name
, ".stab") == 0 )
1269 if( strcmp(shstrtab
+ spnt
[i
].sh_name
, ".stabstr") == 0 )
1273 if( stabsect
== -1 || stabstrsect
== -1 )
1277 * OK, now just parse all of the stabs.
1279 rtn
= DEBUG_ParseStabs(addr
, load_offset
,
1280 spnt
[stabsect
].sh_offset
,
1281 spnt
[stabsect
].sh_size
,
1282 spnt
[stabstrsect
].sh_offset
,
1283 spnt
[stabstrsect
].sh_size
);
1288 for(i
=0; i
< nsect
; i
++)
1290 if( (strcmp(shstrtab
+ spnt
[i
].sh_name
, ".symtab") == 0)
1291 && (spnt
[i
].sh_type
== SHT_SYMTAB
) )
1292 DEBUG_ProcessElfSymtab(addr
, load_offset
,
1293 spnt
+ i
, spnt
+ spnt
[i
].sh_link
);
1295 if( (strcmp(shstrtab
+ spnt
[i
].sh_name
, ".dynsym") == 0)
1296 && (spnt
[i
].sh_type
== SHT_DYNSYM
) )
1297 DEBUG_ProcessElfSymtab(addr
, load_offset
,
1298 spnt
+ i
, spnt
+ spnt
[i
].sh_link
);
1303 if( addr
!= (char *) 0xffffffff )
1304 munmap(addr
, statbuf
.st_size
);
1314 DEBUG_ReadExecutableDbgInfo(void)
1317 const char * exe_name
;
1319 struct r_debug
* dbg_hdr
;
1320 struct link_map
* lpnt
= NULL
;
1322 extern Elf32_Dyn _DYNAMIC
[] __attribute__ ((weak
));
1324 extern Elf32_Dyn _DYNAMIC
[];
1332 * Make sure we can stat and open this file.
1334 if( exe_name
== NULL
)
1337 fprintf( stderr
, "Loading symbols: %s", exe_name
);
1338 rowcount
= 17 + strlen(exe_name
);
1339 DEBUG_ProcessElfObject(exe_name
, 0);
1342 * Finally walk the tables that the dynamic loader maintains to find all
1343 * of the other shared libraries which might be loaded. Perform the
1344 * same step for all of these.
1346 if( (&_DYNAMIC
== NULL
) || (_DYNAMIC
== NULL
) )
1352 * Now walk the dynamic section (of the executable, looking for a DT_DEBUG
1355 for(; dynpnt
->d_tag
!= DT_NULL
; dynpnt
++)
1356 if( dynpnt
->d_tag
== DT_DEBUG
)
1359 if( (dynpnt
->d_tag
!= DT_DEBUG
)
1360 || (dynpnt
->d_un
.d_ptr
== 0) )
1364 * OK, now dig into the actual tables themselves.
1366 dbg_hdr
= (struct r_debug
*) dynpnt
->d_un
.d_ptr
;
1367 lpnt
= dbg_hdr
->r_map
;
1370 * Now walk the linked list. In all known ELF implementations,
1371 * the dynamic loader maintains this linked list for us. In some
1372 * cases the first entry doesn't appear with a name, in other cases it
1375 for(; lpnt
; lpnt
= lpnt
->l_next
)
1378 * We already got the stuff for the executable using the
1379 * argv[0] entry above. Here we only need to concentrate on any
1380 * shared libraries which may be loaded.
1382 ehdr
= (Elf32_Ehdr
*) lpnt
->l_addr
;
1383 if( (lpnt
->l_addr
== 0) || (ehdr
->e_type
!= ET_DYN
) )
1386 if( lpnt
->l_name
!= NULL
)
1388 if (rowcount
+ strlen(lpnt
->l_name
) > 76)
1390 fprintf( stderr
, "\n " );
1393 fprintf( stderr
, " %s", lpnt
->l_name
);
1394 rowcount
+= strlen(lpnt
->l_name
) + 1;
1395 DEBUG_ProcessElfObject(lpnt
->l_name
, lpnt
->l_addr
);
1402 fprintf( stderr
, "\n" );
1407 #else /* !__ELF__ */
1414 DEBUG_ReadExecutableDbgInfo(void)
1416 char * addr
= (char *) 0xffffffff;
1421 unsigned int staboff
;
1422 struct stat statbuf
;
1424 unsigned int stroff
;
1429 * Make sure we can stat and open this file.
1431 if( exe_name
== NULL
)
1434 status
= stat(exe_name
, &statbuf
);
1439 * Now open the file, so that we can mmap() it.
1441 fd
= open(exe_name
, O_RDONLY
);
1447 * Now mmap() the file.
1449 addr
= mmap(0, statbuf
.st_size
, PROT_READ
,
1450 MAP_PRIVATE
, fd
, 0);
1451 if( addr
== (char *) 0xffffffff )
1454 ahdr
= (struct exec
*) addr
;
1456 staboff
= N_SYMOFF(*ahdr
);
1457 stroff
= N_STROFF(*ahdr
);
1458 rtn
= DEBUG_ParseStabs(addr
, 0,
1462 statbuf
.st_size
- stroff
);
1465 * Give a nice status message here...
1467 fprintf( stderr
, "Loading symbols: %s", exe_name
);
1473 if( addr
!= (char *) 0xffffffff )
1474 munmap(addr
, statbuf
.st_size
);
1484 * Non-linux, non-ELF platforms.
1487 DEBUG_ReadExecutableDbgInfo(void)
1493 #endif /* __ELF__ */