* Makefile.in: Add rule for xcoffexec.o like that for paread.o.
[binutils-gdb.git] / gdb / xcoffread.c
1 /* Read AIX xcoff symbol tables and convert to internal format, for GDB.
2 Copyright 1986, 1987, 1988, 1989, 1990, 1991, 1992, 1993
3 Free Software Foundation, Inc.
4 Derived from coffread.c, dbxread.c, and a lot of hacking.
5 Contributed by IBM Corporation.
6
7 This file is part of GDB.
8
9 This program is free software; you can redistribute it and/or modify
10 it under the terms of the GNU General Public License as published by
11 the Free Software Foundation; either version 2 of the License, or
12 (at your option) any later version.
13
14 This program is distributed in the hope that it will be useful,
15 but WITHOUT ANY WARRANTY; without even the implied warranty of
16 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 GNU General Public License for more details.
18
19 You should have received a copy of the GNU General Public License
20 along with this program; if not, write to the Free Software
21 Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. */
22
23 /* Native only: Need struct tbtable in <sys/debug.h> from host, and
24 need xcoff_add_toc_to_loadinfo in rs6000-tdep.c from target.
25 need xcoff_init_loadinfo ditto.
26 However, if you grab <sys/debug.h> and make it available on your
27 host, and define FAKING_RS6000, then this code will compile. */
28
29 #include "defs.h"
30 #include "bfd.h"
31
32 #include <sys/types.h>
33 #include <fcntl.h>
34 #include <ctype.h>
35
36 #include "obstack.h"
37 #include <sys/param.h>
38 #ifndef NO_SYS_FILE
39 #include <sys/file.h>
40 #endif
41 #include <sys/stat.h>
42 #include <sys/debug.h>
43
44 #include "symtab.h"
45 #include "gdbtypes.h"
46 #include "symfile.h"
47 #include "objfiles.h"
48 #include "buildsym.h"
49 #include "stabsread.h"
50 #include "complaints.h"
51
52 #include "coff/internal.h" /* FIXME, internal data from BFD */
53 #include "libcoff.h" /* FIXME, internal data from BFD */
54 #include "coff/rs6000.h" /* FIXME, raw file-format guts of xcoff */
55
56 /* For interface with stabsread.c. */
57 #include "aout/stab_gnu.h"
58
59 /* Define this if you want gdb to ignore typdef stabs. This was needed for
60 one of Transarc, to reduce the size of the symbol table. Types won't be
61 recognized, but tag names will be. */
62
63 /* #define NO_TYPEDEFS 1 */
64
65 /* Simplified internal version of coff symbol table information */
66
67 struct coff_symbol {
68 char *c_name;
69 int c_symnum; /* symbol number of this entry */
70 int c_nsyms; /* 0 if syment only, 1 if syment + auxent */
71 long c_value;
72 unsigned char c_sclass;
73 int c_secnum;
74 unsigned int c_type;
75 };
76
77 /* The COFF line table, in raw form. */
78 static char *linetab = NULL; /* Its actual contents */
79 static long linetab_offset; /* Its offset in the file */
80 static unsigned long linetab_size; /* Its size */
81
82 /* last function's saved coff symbol `cs' */
83
84 static struct coff_symbol fcn_cs_saved;
85
86 static bfd *symfile_bfd;
87
88 /* Core address of start and end of text of current source file.
89 This is calculated from the first function seen after a C_FILE
90 symbol. */
91
92
93 static CORE_ADDR cur_src_end_addr;
94
95 /* Core address of the end of the first object file. */
96
97 static CORE_ADDR first_object_file_end;
98
99 /* pointer to the string table */
100 static char *strtbl;
101
102 /* length of the string table */
103 static int strtbl_len;
104
105 /* pointer to debug section */
106 static char *debugsec;
107
108 /* pointer to the a.out symbol table */
109 static char *symtbl;
110
111 /* Number of symbols in symtbl. */
112 static int symtbl_num_syms;
113
114 /* initial symbol-table-debug-string vector length */
115
116 #define INITIAL_STABVECTOR_LENGTH 40
117
118 /* Nonzero if within a function (so symbols should be local,
119 if nothing says specifically). */
120
121 int within_function;
122
123 /* Local variables that hold the shift and mask values for the
124 COFF file that we are currently reading. These come back to us
125 from BFD, and are referenced by their macro names, as well as
126 internally to the BTYPE, ISPTR, ISFCN, ISARY, ISTAG, and DECREF
127 macros from ../internalcoff.h . */
128
129 static unsigned local_n_btshft;
130 static unsigned local_n_tmask;
131
132 #undef N_BTSHFT
133 #define N_BTSHFT local_n_btshft
134 #undef N_TMASK
135 #define N_TMASK local_n_tmask
136
137 /* Local variables that hold the sizes in the file of various COFF structures.
138 (We only need to know this to read them from the file -- BFD will then
139 translate the data in them, into `internal_xxx' structs in the right
140 byte order, alignment, etc.) */
141
142 static unsigned local_symesz;
143
144 struct coff_symfile_info {
145 file_ptr min_lineno_offset; /* Where in file lowest line#s are */
146 file_ptr max_lineno_offset; /* 1+last byte of line#s in file */
147 };
148
149 static struct complaint rsym_complaint =
150 {"Non-stab C_RSYM `%s' needs special handling", 0, 0};
151
152 static struct complaint storclass_complaint =
153 {"Unexpected storage class: %d", 0, 0};
154
155 static struct complaint bf_notfound_complaint =
156 {"line numbers off, `.bf' symbol not found", 0, 0};
157
158 static void
159 enter_line_range PARAMS ((struct subfile *, unsigned, unsigned,
160 CORE_ADDR, CORE_ADDR, unsigned *));
161
162 static void
163 free_debugsection PARAMS ((void));
164
165 static int
166 init_debugsection PARAMS ((bfd *));
167
168 static int
169 init_stringtab PARAMS ((bfd *, file_ptr, struct objfile *));
170
171 static void
172 xcoff_symfile_init PARAMS ((struct objfile *));
173
174 static void
175 xcoff_new_init PARAMS ((struct objfile *));
176
177 #ifdef __STDC__
178 struct section_offset;
179 #endif
180
181 static void
182 xcoff_symfile_read PARAMS ((struct objfile *, struct section_offset *, int));
183
184 static void
185 xcoff_symfile_finish PARAMS ((struct objfile *));
186
187 static struct section_offsets *
188 xcoff_symfile_offsets PARAMS ((struct objfile *, CORE_ADDR));
189
190 static int
191 init_lineno PARAMS ((bfd *, file_ptr, int));
192
193 static void
194 find_linenos PARAMS ((bfd *, sec_ptr, PTR));
195
196 static void
197 read_symbol PARAMS ((struct internal_syment *, int));
198
199 static int
200 read_symbol_lineno PARAMS ((int));
201
202 static int
203 read_symbol_nvalue PARAMS ((int));
204
205 static struct symbol *
206 process_xcoff_symbol PARAMS ((struct coff_symbol *, struct objfile *));
207
208 static void
209 read_xcoff_symtab PARAMS ((struct objfile *, int));
210
211 static void
212 add_stab_to_list PARAMS ((char *, struct pending_stabs **));
213
214 /* add a given stab string into given stab vector. */
215
216 static void
217 add_stab_to_list (stabname, stabvector)
218 char *stabname;
219 struct pending_stabs **stabvector;
220 {
221 if ( *stabvector == NULL) {
222 *stabvector = (struct pending_stabs *)
223 xmalloc (sizeof (struct pending_stabs) +
224 INITIAL_STABVECTOR_LENGTH * sizeof (char*));
225 (*stabvector)->count = 0;
226 (*stabvector)->length = INITIAL_STABVECTOR_LENGTH;
227 }
228 else if ((*stabvector)->count >= (*stabvector)->length) {
229 (*stabvector)->length += INITIAL_STABVECTOR_LENGTH;
230 *stabvector = (struct pending_stabs *)
231 xrealloc ((char *) *stabvector, sizeof (struct pending_stabs) +
232 (*stabvector)->length * sizeof (char*));
233 }
234 (*stabvector)->stab [(*stabvector)->count++] = stabname;
235 }
236 \f
237 /* Linenos are processed on a file-by-file basis.
238
239 Two reasons:
240
241 1) xlc (IBM's native c compiler) postpones static function code
242 emission to the end of a compilation unit. This way it can
243 determine if those functions (statics) are needed or not, and
244 can do some garbage collection (I think). This makes line
245 numbers and corresponding addresses unordered, and we end up
246 with a line table like:
247
248
249 lineno addr
250 foo() 10 0x100
251 20 0x200
252 30 0x300
253
254 foo3() 70 0x400
255 80 0x500
256 90 0x600
257
258 static foo2()
259 40 0x700
260 50 0x800
261 60 0x900
262
263 and that breaks gdb's binary search on line numbers, if the
264 above table is not sorted on line numbers. And that sort
265 should be on function based, since gcc can emit line numbers
266 like:
267
268 10 0x100 - for the init/test part of a for stmt.
269 20 0x200
270 30 0x300
271 10 0x400 - for the increment part of a for stmt.
272
273 arrange_linetable() will do this sorting.
274
275 2) aix symbol table might look like:
276
277 c_file // beginning of a new file
278 .bi // beginning of include file
279 .ei // end of include file
280 .bi
281 .ei
282
283 basically, .bi/.ei pairs do not necessarily encapsulate
284 their scope. They need to be recorded, and processed later
285 on when we come the end of the compilation unit.
286 Include table (inclTable) and process_linenos() handle
287 that. */
288
289 /* compare line table entry addresses. */
290
291 static int
292 compare_lte (lte1, lte2)
293 struct linetable_entry *lte1, *lte2;
294 {
295 return lte1->pc - lte2->pc;
296 }
297
298 /* Give a line table with function entries are marked, arrange its functions
299 in assending order and strip off function entry markers and return it in
300 a newly created table. If the old one is good enough, return the old one. */
301
302 static struct linetable *
303 arrange_linetable (oldLineTb)
304 struct linetable *oldLineTb; /* old linetable */
305 {
306 int ii, jj,
307 newline, /* new line count */
308 function_count; /* # of functions */
309
310 struct linetable_entry *fentry; /* function entry vector */
311 int fentry_size; /* # of function entries */
312 struct linetable *newLineTb; /* new line table */
313
314 #define NUM_OF_FUNCTIONS 20
315
316 fentry_size = NUM_OF_FUNCTIONS;
317 fentry = (struct linetable_entry*)
318 xmalloc (fentry_size * sizeof (struct linetable_entry));
319
320 for (function_count=0, ii=0; ii <oldLineTb->nitems; ++ii) {
321
322 if (oldLineTb->item[ii].line == 0) { /* function entry found. */
323
324 if (function_count >= fentry_size) { /* make sure you have room. */
325 fentry_size *= 2;
326 fentry = (struct linetable_entry*)
327 xrealloc (fentry, fentry_size * sizeof (struct linetable_entry));
328 }
329 fentry[function_count].line = ii;
330 fentry[function_count].pc = oldLineTb->item[ii].pc;
331 ++function_count;
332 }
333 }
334
335 if (function_count == 0) {
336 free (fentry);
337 return oldLineTb;
338 }
339 else if (function_count > 1)
340 qsort (fentry, function_count, sizeof(struct linetable_entry), compare_lte);
341
342 /* allocate a new line table. */
343 newLineTb = (struct linetable *)
344 xmalloc
345 (sizeof (struct linetable) +
346 (oldLineTb->nitems - function_count) * sizeof (struct linetable_entry));
347
348 /* if line table does not start with a function beginning, copy up until
349 a function begin. */
350
351 newline = 0;
352 if (oldLineTb->item[0].line != 0)
353 for (newline=0;
354 newline < oldLineTb->nitems && oldLineTb->item[newline].line; ++newline)
355 newLineTb->item[newline] = oldLineTb->item[newline];
356
357 /* Now copy function lines one by one. */
358
359 for (ii=0; ii < function_count; ++ii) {
360 for (jj = fentry[ii].line + 1;
361 jj < oldLineTb->nitems && oldLineTb->item[jj].line != 0;
362 ++jj, ++newline)
363 newLineTb->item[newline] = oldLineTb->item[jj];
364 }
365 free (fentry);
366 newLineTb->nitems = oldLineTb->nitems - function_count;
367 return newLineTb;
368 }
369
370
371
372 /* We try to detect the beginning of a compilation unit. That info will
373 be used as an entry in line number recording routines (enter_line_range) */
374
375 static unsigned first_fun_line_offset;
376 static unsigned first_fun_bf;
377
378 #define mark_first_line(OFFSET, SYMNUM) \
379 if (!first_fun_line_offset) { \
380 first_fun_line_offset = OFFSET; \
381 first_fun_bf = SYMNUM; \
382 }
383
384
385 /* include file support: C_BINCL/C_EINCL pairs will be kept in the
386 following `IncludeChain'. At the end of each symtab (end_symtab),
387 we will determine if we should create additional symtab's to
388 represent if (the include files. */
389
390
391 typedef struct _inclTable {
392 char *name; /* include filename */
393
394 /* Offsets to the line table. end points to the last entry which is
395 part of this include file. */
396 int begin, end;
397
398 struct subfile *subfile;
399 unsigned funStartLine; /* start line # of its function */
400 } InclTable;
401
402 #define INITIAL_INCLUDE_TABLE_LENGTH 20
403 static InclTable *inclTable; /* global include table */
404 static int inclIndx; /* last entry to table */
405 static int inclLength; /* table length */
406 static int inclDepth; /* nested include depth */
407
408
409 static void
410 record_include_begin (cs)
411 struct coff_symbol *cs;
412 {
413 if (inclDepth)
414 {
415 /* In xcoff, we assume include files cannot be nested (not in .c files
416 of course, but in corresponding .s files.). */
417
418 /* This can happen with old versions of GCC.
419 GCC 2.3.3-930426 does not exhibit this on a test case which
420 a user said produced the message for him. */
421 struct complaint msg = {"Nested C_BINCL symbols", 0, 0};
422 complain (&msg);
423 }
424 ++inclDepth;
425
426 /* allocate an include file, or make room for the new entry */
427 if (inclLength == 0) {
428 inclTable = (InclTable*)
429 xmalloc (sizeof (InclTable) * INITIAL_INCLUDE_TABLE_LENGTH);
430 bzero (inclTable, sizeof (InclTable) * INITIAL_INCLUDE_TABLE_LENGTH);
431 inclLength = INITIAL_INCLUDE_TABLE_LENGTH;
432 inclIndx = 0;
433 }
434 else if (inclIndx >= inclLength) {
435 inclLength += INITIAL_INCLUDE_TABLE_LENGTH;
436 inclTable = (InclTable*)
437 xrealloc (inclTable, sizeof (InclTable) * inclLength);
438 bzero (inclTable+inclLength-INITIAL_INCLUDE_TABLE_LENGTH,
439 sizeof (InclTable)*INITIAL_INCLUDE_TABLE_LENGTH);
440 }
441
442 inclTable [inclIndx].name = cs->c_name;
443 inclTable [inclIndx].begin = cs->c_value;
444 }
445
446
447 static void
448 record_include_end (cs)
449 struct coff_symbol *cs;
450 {
451 InclTable *pTbl;
452
453 if (inclDepth == 0)
454 {
455 struct complaint msg = {"Mismatched C_BINCL/C_EINCL pair", 0, 0};
456 complain (&msg);
457 }
458
459 pTbl = &inclTable [inclIndx];
460 pTbl->end = cs->c_value;
461
462 --inclDepth;
463 ++inclIndx;
464 }
465
466
467 /* given the start and end addresses of a compilation unit (or a csect, at times)
468 process its lines and create appropriate line vectors. */
469
470 static void
471 process_linenos (start, end)
472 CORE_ADDR start, end;
473 {
474 char *pp;
475 int offset, ii;
476
477 struct subfile main_subfile; /* subfile structure for the main
478 compilation unit. */
479
480 /* in the main source file, any time we see a function entry, we reset
481 this variable to function's absolute starting line number. All the
482 following line numbers in the function are relative to this, and
483 we record absolute line numbers in record_line(). */
484
485 int main_source_baseline = 0;
486
487
488 unsigned *firstLine;
489 CORE_ADDR addr;
490
491 if (!(offset = first_fun_line_offset))
492 goto return_after_cleanup;
493
494 bzero (&main_subfile, sizeof (main_subfile));
495 first_fun_line_offset = 0;
496
497 if (inclIndx == 0)
498 /* All source lines were in the main source file. None in include files. */
499
500 enter_line_range (&main_subfile, offset, 0, start, end,
501 &main_source_baseline);
502
503 /* else, there was source with line numbers in include files */
504 else {
505
506 main_source_baseline = 0;
507 for (ii=0; ii < inclIndx; ++ii) {
508
509 struct subfile *tmpSubfile;
510
511 /* if there is main file source before include file, enter it. */
512 if (offset < inclTable[ii].begin) {
513 enter_line_range
514 (&main_subfile, offset, inclTable[ii].begin - LINESZ, start, 0,
515 &main_source_baseline);
516 }
517
518 /* Have a new subfile for the include file */
519
520 tmpSubfile = inclTable[ii].subfile = (struct subfile*)
521 xmalloc (sizeof (struct subfile));
522
523 bzero (tmpSubfile, sizeof (struct subfile));
524 firstLine = &(inclTable[ii].funStartLine);
525
526 /* enter include file's lines now. */
527 enter_line_range (tmpSubfile, inclTable[ii].begin,
528 inclTable[ii].end, start, 0, firstLine);
529
530 offset = inclTable[ii].end + LINESZ;
531 }
532
533 /* all the include files' line have been processed at this point. Now,
534 enter remaining lines of the main file, if any left. */
535 if (offset < (linetab_offset + linetab_size + 1 - LINESZ)) {
536 enter_line_range (&main_subfile, offset, 0, start, end,
537 &main_source_baseline);
538 }
539 }
540
541 /* Process main file's line numbers. */
542 if (main_subfile.line_vector) {
543 struct linetable *lineTb, *lv;
544
545 lv = main_subfile.line_vector;
546
547 /* Line numbers are not necessarily ordered. xlc compilation will
548 put static function to the end. */
549
550 lineTb = arrange_linetable (lv);
551 if (lv == lineTb) {
552 current_subfile->line_vector = (struct linetable *)
553 xrealloc (lv, (sizeof (struct linetable)
554 + lv->nitems * sizeof (struct linetable_entry)));
555
556 }
557 else {
558 free (lv);
559 current_subfile->line_vector = lineTb;
560 }
561
562 current_subfile->line_vector_length =
563 current_subfile->line_vector->nitems;
564 }
565
566 /* Now, process included files' line numbers. */
567
568 for (ii=0; ii < inclIndx; ++ii) {
569
570 if ( (inclTable[ii].subfile)->line_vector) { /* Useless if!!! FIXMEmgo */
571 struct linetable *lineTb, *lv;
572
573 lv = (inclTable[ii].subfile)->line_vector;
574
575 /* Line numbers are not necessarily ordered. xlc compilation will
576 put static function to the end. */
577
578 lineTb = arrange_linetable (lv);
579
580 push_subfile ();
581
582 /* For the same include file, we might want to have more than one subfile.
583 This happens if we have something like:
584
585 ......
586 #include "foo.h"
587 ......
588 #include "foo.h"
589 ......
590
591 while foo.h including code in it. (stupid but possible)
592 Since start_subfile() looks at the name and uses an existing one if finds,
593 we need to provide a fake name and fool it. */
594
595 /* start_subfile (inclTable[ii].name, (char*)0); */
596 start_subfile (" ?", (char*)0);
597 free (current_subfile->name);
598 current_subfile->name = strdup (inclTable[ii].name);
599
600 if (lv == lineTb) {
601 current_subfile->line_vector = (struct linetable *)
602 xrealloc (lv, (sizeof (struct linetable)
603 + lv->nitems * sizeof (struct linetable_entry)));
604
605 }
606 else {
607 free (lv);
608 current_subfile->line_vector = lineTb;
609 }
610
611 current_subfile->line_vector_length =
612 current_subfile->line_vector->nitems;
613 start_subfile (pop_subfile (), (char*)0);
614 }
615 }
616
617 return_after_cleanup:
618
619 /* We don't want to keep alloc/free'ing the global include file table. */
620 inclIndx = 0;
621
622 /* start with a fresh subfile structure for the next file. */
623 bzero (&main_subfile, sizeof (struct subfile));
624 }
625
626 void
627 aix_process_linenos ()
628 {
629 /* process line numbers and enter them into line vector */
630 process_linenos (last_source_start_addr, cur_src_end_addr);
631 }
632
633
634 /* Enter a given range of lines into the line vector.
635 can be called in the following two ways:
636 enter_line_range (subfile, beginoffset, endoffset, startaddr, 0, firstLine) or
637 enter_line_range (subfile, beginoffset, 0, startaddr, endaddr, firstLine)
638
639 endoffset points to the last line table entry that we should pay
640 attention to. */
641
642 static void
643 enter_line_range (subfile, beginoffset, endoffset, startaddr, endaddr, firstLine)
644 struct subfile *subfile;
645 unsigned beginoffset, endoffset; /* offsets to line table */
646 CORE_ADDR startaddr, endaddr;
647 unsigned *firstLine;
648 {
649 char *pp, *limit;
650 CORE_ADDR addr;
651
652 /* Do Byte swapping, if needed. FIXME! */
653 #define P_LINENO(PP) (*(unsigned short*)((struct external_lineno*)(PP))->l_lnno)
654 #define P_LINEADDR(PP) (*(long*)((struct external_lineno*)(PP))->l_addr.l_paddr)
655 #define P_LINESYM(PP) (*(long*)((struct external_lineno*)(PP))->l_addr.l_symndx)
656
657 pp = &linetab [beginoffset - linetab_offset];
658 if (endoffset != 0 && endoffset - linetab_offset >= linetab_size)
659 {
660 static struct complaint msg =
661 {"Bad line table offset in C_EINCL directive", 0, 0};
662 complain (&msg);
663 return;
664 }
665 limit = endoffset ? &linetab [endoffset - linetab_offset]
666 : &linetab [linetab_size -1];
667
668 while (pp <= limit) {
669
670 /* find the address this line represents */
671 addr = P_LINENO(pp) ?
672 P_LINEADDR(pp) : read_symbol_nvalue (P_LINESYM(pp));
673
674 if (addr < startaddr || (endaddr && addr >= endaddr))
675 return;
676
677 if (P_LINENO(pp) == 0) {
678 *firstLine = read_symbol_lineno (P_LINESYM(pp));
679 record_line (subfile, 0, addr);
680 --(*firstLine);
681 }
682 else
683 record_line (subfile, *firstLine + P_LINENO(pp), addr);
684
685 pp += LINESZ;
686 }
687 }
688
689 typedef struct {
690 int fsize; /* file size */
691 int fixedparms; /* number of fixed parms */
692 int floatparms; /* number of float parms */
693 unsigned int parminfo; /* parameter info.
694 See /usr/include/sys/debug.h
695 tbtable_ext.parminfo */
696 int framesize; /* function frame size */
697 } TracebackInfo;
698
699
700 /* Given a function symbol, return its traceback information. */
701
702 TracebackInfo *
703 retrieve_tracebackinfo (abfd, textsec, cs)
704 bfd *abfd;
705 sec_ptr textsec;
706 struct coff_symbol *cs;
707 {
708 #define TBTABLE_BUFSIZ 2000
709
710 static TracebackInfo tbInfo;
711 struct tbtable *ptb;
712
713 static char buffer [TBTABLE_BUFSIZ];
714
715 int *pinsn;
716 int bytesread=0; /* total # of bytes read so far */
717 int bufferbytes; /* number of bytes in the buffer */
718
719 int functionstart = cs->c_value - textsec->vma;
720
721 bzero (&tbInfo, sizeof (tbInfo));
722
723 /* keep reading blocks of data from the text section, until finding a zero
724 word and a traceback table. */
725
726 /* Note: The logical thing way to write this code would be to assign
727 to bufferbytes within the while condition. But that triggers a
728 compiler (xlc in AIX 3.2) bug, so simplify it... */
729 bufferbytes =
730 (TBTABLE_BUFSIZ < (textsec->_raw_size - functionstart - bytesread) ?
731 TBTABLE_BUFSIZ : (textsec->_raw_size - functionstart - bytesread));
732 while (bufferbytes
733 && (bfd_get_section_contents
734 (abfd, textsec, buffer,
735 (file_ptr)(functionstart + bytesread), bufferbytes)))
736 {
737 bytesread += bufferbytes;
738 pinsn = (int*) buffer;
739
740 /* if this is the first time we filled the buffer, retrieve function
741 framesize info. */
742
743 if (bytesread == bufferbytes) {
744
745 /* skip over unrelated instructions */
746
747 if (*pinsn == 0x7c0802a6) /* mflr r0 */
748 ++pinsn;
749 if ((*pinsn & 0xfc00003e) == 0x7c000026) /* mfcr Rx */
750 ++pinsn;
751 if ((*pinsn & 0xfc000000) == 0x48000000) /* bl foo, save fprs */
752 ++pinsn;
753 if ((*pinsn & 0xfc1f0000) == 0xbc010000) /* stm Rx, NUM(r1) */
754 ++pinsn;
755
756 do {
757 int tmp = (*pinsn >> 16) & 0xffff;
758
759 if (tmp == 0x9421) { /* stu r1, NUM(r1) */
760 tbInfo.framesize = 0x10000 - (*pinsn & 0xffff);
761 break;
762 }
763 else if ((*pinsn == 0x93e1fffc) || /* st r31,-4(r1) */
764 (tmp == 0x9001)) /* st r0, NUM(r1) */
765 ;
766 /* else, could not find a frame size. */
767 else
768 return NULL;
769
770 } while (++pinsn && *pinsn);
771
772 if (!tbInfo.framesize)
773 return NULL;
774
775 }
776
777 /* look for a zero word. */
778
779 while (*pinsn && (pinsn < (int*)(buffer + bufferbytes - sizeof(int))))
780 ++pinsn;
781
782 if (pinsn >= (int*)(buffer + bufferbytes))
783 continue;
784
785 if (*pinsn == 0) {
786
787 /* function size is the amount of bytes we have skipped so far. */
788 tbInfo.fsize = bytesread - (buffer + bufferbytes - (char*)pinsn);
789
790 ++pinsn;
791
792 /* if we don't have the whole traceback table in the buffer, re-read
793 the whole thing. */
794
795 /* This is how much to read to get the traceback table.
796 8 bytes of the traceback table are always present, plus we
797 look at parminfo. */
798 #define MIN_TBTABSIZ 12
799
800 if ((char*)pinsn > (buffer + bufferbytes - MIN_TBTABSIZ)) {
801
802 /* In case if we are *very* close to the end of the text section
803 and cannot read properly from that point on, abort by returning
804 NULL.
805
806 This could happen if the traceback table is only 8 bytes,
807 but we try to read 12 bytes of it.
808 Handle this case more graciously -- FIXME */
809
810 if (!bfd_get_section_contents (
811 abfd, textsec, buffer,
812 (file_ptr)(functionstart +
813 bytesread - (buffer + bufferbytes - (char*)pinsn)),MIN_TBTABSIZ))
814 { printf ("Abnormal return!..\n"); return NULL; }
815
816 ptb = (struct tbtable *)buffer;
817 }
818 else
819 ptb = (struct tbtable *)pinsn;
820
821 tbInfo.fixedparms = ptb->tb.fixedparms;
822 tbInfo.floatparms = ptb->tb.floatparms;
823 tbInfo.parminfo = ptb->tb_ext.parminfo;
824 return &tbInfo;
825 }
826 bufferbytes =
827 (TBTABLE_BUFSIZ < (textsec->_raw_size - functionstart - bytesread) ?
828 TBTABLE_BUFSIZ : (textsec->_raw_size - functionstart - bytesread));
829 }
830 return NULL;
831 }
832
833 #if 0
834 /* Given a function symbol, return a pointer to its traceback table. */
835
836 struct tbtable *
837 retrieve_traceback (abfd, textsec, cs, size)
838 bfd *abfd;
839 sec_ptr textsec;
840 struct coff_symbol *cs;
841 int *size; /* return function size */
842 {
843 #define TBTABLE_BUFSIZ 2000
844 #define MIN_TBTABSIZ 50 /* minimum buffer size to hold a
845 traceback table. */
846
847 static char buffer [TBTABLE_BUFSIZ];
848
849 int *pinsn;
850 int bytesread=0; /* total # of bytes read so far */
851 int bufferbytes; /* number of bytes in the buffer */
852
853 int functionstart = cs->c_value - textsec->filepos + textsec->vma;
854 *size = 0;
855
856 /* keep reading blocks of data from the text section, until finding a zero
857 word and a traceback table. */
858
859 while (bfd_get_section_contents (abfd, textsec, buffer,
860 (file_ptr)(functionstart + bytesread),
861 bufferbytes = (
862 (TBTABLE_BUFSIZ < (textsec->size - functionstart - bytesread)) ?
863 TBTABLE_BUFSIZ : (textsec->size - functionstart - bytesread))))
864 {
865 bytesread += bufferbytes;
866 pinsn = (int*) buffer;
867
868 /* look for a zero word. */
869
870 while (*pinsn && (pinsn < (int*)(buffer + bufferbytes - sizeof(int))))
871 ++pinsn;
872
873 if (pinsn >= (int*)(buffer + bufferbytes))
874 continue;
875
876 if (*pinsn == 0) {
877
878 /* function size is the amount of bytes we have skipped so far. */
879 *size = bytesread - (buffer + bufferbytes - pinsn);
880
881 ++pinsn;
882
883 /* if we don't have the whole traceback table in the buffer, re-read
884 the whole thing. */
885
886 if ((char*)pinsn > (buffer + bufferbytes - MIN_TBTABSIZ)) {
887
888 /* In case if we are *very* close to the end of the text section
889 and cannot read properly from that point on, abort for now.
890 Handle this case more graciously -- FIXME */
891
892 if (!bfd_get_section_contents (
893 abfd, textsec, buffer,
894 (file_ptr)(functionstart +
895 bytesread - (buffer + bufferbytes - pinsn)),MIN_TBTABSIZ))
896 /* abort (); */ { printf ("abort!!!\n"); return NULL; }
897
898 return (struct tbtable *)buffer;
899 }
900 else
901 return (struct tbtable *)pinsn;
902 }
903 }
904 return NULL;
905 }
906 #endif /* 0 */
907
908
909
910
911 /* Save the vital information for use when closing off the current file.
912 NAME is the file name the symbols came from, START_ADDR is the first
913 text address for the file, and SIZE is the number of bytes of text. */
914
915 #define complete_symtab(name, start_addr) { \
916 last_source_file = savestring (name, strlen (name)); \
917 last_source_start_addr = start_addr; \
918 }
919
920
921 /* Refill the symbol table input buffer
922 and set the variables that control fetching entries from it.
923 Reports an error if no data available.
924 This function can read past the end of the symbol table
925 (into the string table) but this does no harm. */
926
927 /* Reading symbol table has to be fast! Keep the followings as macros, rather
928 than functions. */
929
930 #define RECORD_MINIMAL_SYMBOL(NAME, ADDR, TYPE, ALLOCED, SECTION) \
931 { \
932 char *namestr; \
933 if (ALLOCED) \
934 namestr = (NAME) + 1; \
935 else { \
936 (NAME) = namestr = \
937 obstack_copy0 (&objfile->symbol_obstack, (NAME) + 1, strlen ((NAME)+1)); \
938 (ALLOCED) = 1; \
939 } \
940 prim_record_minimal_symbol_and_info (namestr, (ADDR), (TYPE), \
941 (char *)NULL, (SECTION)); \
942 misc_func_recorded = 1; \
943 }
944
945
946 /* A parameter template, used by ADD_PARM_TO_PENDING. It is initialized
947 in our initializer function at the bottom of the file, to avoid
948 dependencies on the exact "struct symbol" format. */
949
950 static struct symbol parmsym;
951
952 /* Add a parameter to a given pending symbol list. */
953
954 #define ADD_PARM_TO_PENDING(PARM, VALUE, PTYPE, PENDING_SYMBOLS) \
955 { \
956 PARM = (struct symbol *) \
957 obstack_alloc (&objfile->symbol_obstack, sizeof (struct symbol)); \
958 *(PARM) = parmsym; \
959 SYMBOL_TYPE (PARM) = PTYPE; \
960 SYMBOL_VALUE (PARM) = VALUE; \
961 add_symbol_to_list (PARM, &PENDING_SYMBOLS); \
962 }
963
964
965 /* xcoff has static blocks marked in `.bs', `.es' pairs. They cannot be
966 nested. At any given time, a symbol can only be in one static block.
967 This is the base address of current static block, zero if non exists. */
968
969 static int static_block_base = 0;
970
971 /* Section number for the current static block. */
972
973 static int static_block_section = -1;
974
975 /* true if space for symbol name has been allocated. */
976
977 static int symname_alloced = 0;
978
979 /* read the whole symbol table of a given bfd. */
980
981 static void
982 read_xcoff_symtab (objfile, nsyms)
983 struct objfile *objfile; /* Object file we're reading from */
984 int nsyms; /* # of symbols */
985 {
986 bfd *abfd = objfile->obfd;
987 char *raw_symbol; /* Pointer into raw seething symbol table */
988 char *raw_auxptr; /* Pointer to first raw aux entry for sym */
989 sec_ptr textsec; /* Pointer to text section */
990 TracebackInfo *ptb; /* Pointer to traceback table */
991
992 struct internal_syment symbol[1];
993 union internal_auxent main_aux[1];
994 struct coff_symbol cs[1];
995 CORE_ADDR file_start_addr = 0;
996 CORE_ADDR file_end_addr = 0;
997
998 int next_file_symnum = -1;
999 int just_started = 1;
1000 int depth = 0;
1001 int toc_offset = 0; /* toc offset value in data section. */
1002 int val;
1003 int fcn_last_line;
1004 int fcn_start_addr;
1005 long fcn_line_offset;
1006 size_t size;
1007
1008 struct coff_symbol fcn_stab_saved;
1009
1010 /* fcn_cs_saved is global because process_xcoff_symbol needs it. */
1011 union internal_auxent fcn_aux_saved;
1012 struct type *fcn_type_saved = NULL;
1013 struct context_stack *new;
1014
1015 char *filestring = " _start_ "; /* Name of the current file. */
1016
1017 char *last_csect_name; /* last seen csect's name and value */
1018 CORE_ADDR last_csect_val;
1019 int last_csect_sec;
1020 int misc_func_recorded; /* true if any misc. function */
1021
1022 current_objfile = objfile;
1023
1024 /* Get the appropriate COFF "constants" related to the file we're handling. */
1025 N_TMASK = coff_data (abfd)->local_n_tmask;
1026 N_BTSHFT = coff_data (abfd)->local_n_btshft;
1027 local_symesz = coff_data (abfd)->local_symesz;
1028
1029 last_source_file = NULL;
1030 last_csect_name = 0;
1031 last_csect_val = 0;
1032 misc_func_recorded = 0;
1033
1034 start_stabs ();
1035 start_symtab (filestring, (char *)NULL, file_start_addr);
1036 symnum = 0;
1037 first_object_file_end = 0;
1038
1039 /* Allocate space for the entire symbol table at once, and read it
1040 all in. The bfd is already positioned at the beginning of
1041 the symbol table. */
1042
1043 size = coff_data (abfd)->local_symesz * nsyms;
1044 symtbl = xmalloc (size);
1045 symtbl_num_syms = nsyms;
1046
1047 val = bfd_read (symtbl, size, 1, abfd);
1048 if (val != size)
1049 perror_with_name ("reading symbol table");
1050
1051 raw_symbol = symtbl;
1052
1053 textsec = bfd_get_section_by_name (abfd, ".text");
1054 if (!textsec) {
1055 printf ("Unable to locate text section!\n");
1056 }
1057
1058 while (symnum < nsyms) {
1059
1060 QUIT; /* make this command interruptable. */
1061
1062 /* READ_ONE_SYMBOL (symbol, cs, symname_alloced); */
1063 /* read one symbol into `cs' structure. After processing the whole symbol
1064 table, only string table will be kept in memory, symbol table and debug
1065 section of xcoff will be freed. Thus we can mark symbols with names
1066 in string table as `alloced'. */
1067 {
1068 int ii;
1069
1070 /* Swap and align the symbol into a reasonable C structure. */
1071 bfd_coff_swap_sym_in (abfd, raw_symbol, symbol);
1072
1073 cs->c_symnum = symnum;
1074 cs->c_nsyms = symbol->n_numaux;
1075 if (symbol->n_zeroes) {
1076 symname_alloced = 0;
1077 /* We must use the original, unswapped, name here so the name field
1078 pointed to by cs->c_name will persist throughout xcoffread. If
1079 we use the new field, it gets overwritten for each symbol. */
1080 cs->c_name = ((struct external_syment *)raw_symbol)->e.e_name;
1081 /* If it's exactly E_SYMNMLEN characters long it isn't
1082 '\0'-terminated. */
1083 if (cs->c_name[E_SYMNMLEN - 1] != '\0')
1084 {
1085 char *p;
1086 p = obstack_alloc (&objfile->symbol_obstack, E_SYMNMLEN + 1);
1087 strncpy (p, cs->c_name, E_SYMNMLEN);
1088 p[E_SYMNMLEN] = '\0';
1089 cs->c_name = p;
1090 symname_alloced = 1;
1091 }
1092 } else if (symbol->n_sclass & 0x80) {
1093 cs->c_name = debugsec + symbol->n_offset;
1094 symname_alloced = 0;
1095 } else { /* in string table */
1096 cs->c_name = strtbl + (int)symbol->n_offset;
1097 symname_alloced = 1;
1098 }
1099 cs->c_value = symbol->n_value;
1100 cs->c_sclass = symbol->n_sclass;
1101 cs->c_secnum = symbol->n_scnum;
1102 cs->c_type = (unsigned)symbol->n_type;
1103
1104 raw_symbol += coff_data (abfd)->local_symesz;
1105 ++symnum;
1106
1107 raw_auxptr = raw_symbol; /* Save addr of first aux entry */
1108
1109 /* Skip all the auxents associated with this symbol. */
1110 for (ii = symbol->n_numaux; ii; --ii ) {
1111 raw_symbol += coff_data (abfd)->local_auxesz;
1112 ++symnum;
1113 }
1114 }
1115
1116 /* if symbol name starts with ".$" or "$", ignore it. */
1117 if (cs->c_name[0] == '$' || (cs->c_name[1] == '$' && cs->c_name[0] == '.'))
1118 continue;
1119
1120 if (cs->c_symnum == next_file_symnum && cs->c_sclass != C_FILE) {
1121 if (last_source_file)
1122 {
1123 end_symtab (cur_src_end_addr, 1, 0, objfile, textsec->target_index);
1124 end_stabs ();
1125 }
1126
1127 start_stabs ();
1128 start_symtab ("_globals_", (char *)NULL, (CORE_ADDR)0);
1129 cur_src_end_addr = first_object_file_end;
1130 /* done with all files, everything from here on is globals */
1131 }
1132
1133 /* if explicitly specified as a function, treat is as one. */
1134 if (ISFCN(cs->c_type) && cs->c_sclass != C_TPDEF) {
1135 bfd_coff_swap_aux_in (abfd, raw_auxptr, cs->c_type, cs->c_sclass,
1136 main_aux);
1137 goto function_entry_point;
1138 }
1139
1140 if ((cs->c_sclass == C_EXT || cs->c_sclass == C_HIDEXT) && cs->c_nsyms == 1)
1141 {
1142 /* dealing with a symbol with a csect entry. */
1143
1144 # define CSECT(PP) ((PP)->x_csect)
1145 # define CSECT_LEN(PP) (CSECT(PP).x_scnlen)
1146 # define CSECT_ALIGN(PP) (SMTYP_ALIGN(CSECT(PP).x_smtyp))
1147 # define CSECT_SMTYP(PP) (SMTYP_SMTYP(CSECT(PP).x_smtyp))
1148 # define CSECT_SCLAS(PP) (CSECT(PP).x_smclas)
1149
1150 /* Convert the auxent to something we can access. */
1151 bfd_coff_swap_aux_in (abfd, raw_auxptr, cs->c_type, cs->c_sclass,
1152 main_aux);
1153
1154 switch (CSECT_SMTYP (main_aux)) {
1155
1156 case XTY_ER :
1157 continue; /* ignore all external references. */
1158
1159 case XTY_SD : /* a section description. */
1160 {
1161 switch (CSECT_SCLAS (main_aux)) {
1162
1163 case XMC_PR : /* a `.text' csect. */
1164 {
1165
1166 /* A program csect is seen.
1167
1168 We have to allocate one symbol table for each program csect. Normally
1169 gdb prefers one symtab for each compilation unit (CU). In case of AIX, one
1170 CU might include more than one prog csect, and they don't have to be
1171 adjacent in terms of the space they occupy in memory. Thus, one single
1172 CU might get fragmented in the memory and gdb's file start and end address
1173 approach does not work! */
1174
1175 if (last_csect_name) {
1176
1177 /* if no misc. function recorded in the last seen csect, enter
1178 it as a function. This will take care of functions like
1179 strcmp() compiled by xlc. */
1180
1181 if (!misc_func_recorded) {
1182 int alloced = 0;
1183 RECORD_MINIMAL_SYMBOL (last_csect_name, last_csect_val,
1184 mst_text, alloced, last_csect_sec);
1185 }
1186
1187
1188 complete_symtab (filestring, file_start_addr);
1189 cur_src_end_addr = file_end_addr;
1190 end_symtab (file_end_addr, 1, 0, objfile,
1191 textsec->target_index);
1192 end_stabs ();
1193 start_stabs ();
1194 start_symtab ((char *)NULL, (char *)NULL, (CORE_ADDR)0);
1195 }
1196
1197 /* If this is the very first csect seen, basically `__start'. */
1198 if (just_started) {
1199 first_object_file_end = cs->c_value + CSECT_LEN (main_aux);
1200 just_started = 0;
1201 }
1202
1203 file_start_addr = cs->c_value;
1204 file_end_addr = cs->c_value + CSECT_LEN (main_aux);
1205
1206 if (cs->c_name && cs->c_name[0] == '.') {
1207 last_csect_name = cs->c_name;
1208 last_csect_val = cs->c_value;
1209 last_csect_sec = cs->c_secnum;
1210 }
1211 }
1212 misc_func_recorded = 0;
1213 continue;
1214
1215 case XMC_RW :
1216 break;
1217
1218 /* If the section is not a data description, ignore it. Note that
1219 uninitialized data will show up as XTY_CM/XMC_RW pair. */
1220
1221 case XMC_TC0:
1222 if (toc_offset)
1223 warning ("More than one xmc_tc0 symbol found.");
1224 toc_offset = cs->c_value;
1225 continue;
1226
1227 case XMC_TC : /* ignore toc entries */
1228 default : /* any other XMC_XXX */
1229 continue;
1230 }
1231 }
1232 break; /* switch CSECT_SCLAS() */
1233
1234 case XTY_LD :
1235
1236 /* a function entry point. */
1237 if (CSECT_SCLAS (main_aux) == XMC_PR) {
1238
1239 function_entry_point:
1240 RECORD_MINIMAL_SYMBOL (cs->c_name, cs->c_value, mst_text,
1241 symname_alloced, cs->c_secnum);
1242
1243 fcn_line_offset = main_aux->x_sym.x_fcnary.x_fcn.x_lnnoptr;
1244 fcn_start_addr = cs->c_value;
1245
1246 /* save the function header info, which will be used
1247 when `.bf' is seen. */
1248 fcn_cs_saved = *cs;
1249 fcn_aux_saved = *main_aux;
1250
1251
1252 ptb = NULL;
1253
1254 /* If function has two auxent, then debugging information is
1255 already available for it. Process traceback table for
1256 functions with only one auxent. */
1257
1258 if (cs->c_nsyms == 1)
1259 ptb = retrieve_tracebackinfo (abfd, textsec, cs);
1260
1261 else if (cs->c_nsyms != 2)
1262 abort ();
1263
1264 /* If there is traceback info, create and add parameters for it. */
1265
1266 if (ptb && (ptb->fixedparms || ptb->floatparms)) {
1267
1268 int parmcnt = ptb->fixedparms + ptb->floatparms;
1269 char *parmcode = (char*) &ptb->parminfo;
1270 int parmvalue = ptb->framesize + 0x18; /* sizeof(LINK AREA) == 0x18 */
1271 unsigned int ii, mask;
1272
1273 for (ii=0, mask = 0x80000000; ii <parmcnt; ++ii) {
1274 struct symbol *parm;
1275
1276 if (ptb->parminfo & mask) { /* float or double */
1277 mask = mask >> 1;
1278 if (ptb->parminfo & mask) { /* double parm */
1279 ADD_PARM_TO_PENDING
1280 (parm, parmvalue, builtin_type_double, local_symbols);
1281 parmvalue += sizeof (double);
1282 }
1283 else { /* float parm */
1284 ADD_PARM_TO_PENDING
1285 (parm, parmvalue, builtin_type_float, local_symbols);
1286 parmvalue += sizeof (float);
1287 }
1288 }
1289 else { /* fixed parm, use (int*) for hex rep. */
1290 ADD_PARM_TO_PENDING (parm, parmvalue,
1291 lookup_pointer_type (builtin_type_int),
1292 local_symbols);
1293 parmvalue += sizeof (int);
1294 }
1295 mask = mask >> 1;
1296 }
1297
1298 /* Fake this as a function. Needed in process_xcoff_symbol() */
1299 cs->c_type = 32;
1300
1301 finish_block(process_xcoff_symbol (cs, objfile), &local_symbols,
1302 pending_blocks, cs->c_value,
1303 cs->c_value + ptb->fsize, objfile);
1304 }
1305 continue;
1306 }
1307 /* shared library function trampoline code entry point. */
1308 else if (CSECT_SCLAS (main_aux) == XMC_GL) {
1309
1310 /* record trampoline code entries as mst_unknown symbol. When we
1311 lookup mst symbols, we will choose mst_text over mst_unknown. */
1312
1313 #if 1
1314 /* After the implementation of incremental loading of shared
1315 libraries, we don't want to access trampoline entries. This
1316 approach has a consequence of the necessity to bring the whole
1317 shared library at first, in order do anything with it (putting
1318 breakpoints, using malloc, etc). On the other side, this is
1319 consistient with gdb's behaviour on a SUN platform. */
1320
1321 /* Trying to prefer *real* function entry over its trampoline,
1322 by assigning `mst_unknown' type to trampoline entries fails.
1323 Gdb treats those entries as chars. FIXME. */
1324
1325 /* Recording this entry is necessary. Single stepping relies on
1326 this vector to get an idea about function address boundaries. */
1327
1328 prim_record_minimal_symbol_and_info
1329 ("<trampoline>", cs->c_value, mst_unknown,
1330 (char *)NULL, cs->c_secnum);
1331 #else
1332
1333 /* record trampoline code entries as mst_unknown symbol. When we
1334 lookup mst symbols, we will choose mst_text over mst_unknown. */
1335
1336 RECORD_MINIMAL_SYMBOL (cs->c_name, cs->c_value, mst_unknown,
1337 symname_alloced);
1338 #endif
1339 continue;
1340 }
1341 break;
1342
1343 default : /* all other XTY_XXXs */
1344 break;
1345 } /* switch CSECT_SMTYP() */ }
1346
1347 switch (cs->c_sclass) {
1348
1349 case C_FILE:
1350
1351 /* see if the last csect needs to be recorded. */
1352
1353 if (last_csect_name && !misc_func_recorded) {
1354
1355 /* if no misc. function recorded in the last seen csect, enter
1356 it as a function. This will take care of functions like
1357 strcmp() compiled by xlc. */
1358
1359 int alloced = 0;
1360 RECORD_MINIMAL_SYMBOL (last_csect_name, last_csect_val,
1361 mst_text, alloced, last_csect_sec);
1362 }
1363
1364 /* c_value field contains symnum of next .file entry in table
1365 or symnum of first global after last .file. */
1366
1367 next_file_symnum = cs->c_value;
1368
1369 /* complete symbol table for last object file containing
1370 debugging information. */
1371
1372 /* Whether or not there was a csect in the previous file, we have to call
1373 `end_stabs' and `start_stabs' to reset type_vector,
1374 line_vector, etc. structures. */
1375
1376 complete_symtab (filestring, file_start_addr);
1377 cur_src_end_addr = file_end_addr;
1378 end_symtab (file_end_addr, 1, 0, objfile, textsec->target_index);
1379 end_stabs ();
1380 start_stabs ();
1381 start_symtab (cs->c_name, (char *)NULL, (CORE_ADDR)0);
1382 last_csect_name = 0;
1383
1384 /* reset file start and end addresses. A compilation unit with no text
1385 (only data) should have zero file boundaries. */
1386 file_start_addr = file_end_addr = 0;
1387
1388 filestring = cs->c_name;
1389 break;
1390
1391
1392 case C_FUN:
1393 fcn_stab_saved = *cs;
1394 break;
1395
1396
1397 case C_FCN:
1398 if (STREQ (cs->c_name, ".bf")) {
1399
1400 bfd_coff_swap_aux_in (abfd, raw_auxptr, cs->c_type, cs->c_sclass,
1401 main_aux);
1402
1403 within_function = 1;
1404
1405 mark_first_line (fcn_line_offset, cs->c_symnum);
1406
1407 new = push_context (0, fcn_start_addr);
1408
1409 new->name = define_symbol
1410 (fcn_cs_saved.c_value, fcn_stab_saved.c_name, 0, 0, objfile);
1411 if (new->name != NULL)
1412 SYMBOL_SECTION (new->name) = cs->c_secnum;
1413 }
1414 else if (STREQ (cs->c_name, ".ef")) {
1415
1416 bfd_coff_swap_aux_in (abfd, raw_auxptr, cs->c_type, cs->c_sclass,
1417 main_aux);
1418
1419 /* the value of .ef is the address of epilogue code;
1420 not useful for gdb */
1421 /* { main_aux.x_sym.x_misc.x_lnsz.x_lnno
1422 contains number of lines to '}' */
1423
1424 fcn_last_line = main_aux->x_sym.x_misc.x_lnsz.x_lnno;
1425 new = pop_context ();
1426 if (context_stack_depth != 0)
1427 error ("invalid symbol data; .bf/.ef/.bb/.eb symbol mismatch, at symbol %d.",
1428 symnum);
1429
1430 finish_block (new->name, &local_symbols, new->old_blocks,
1431 new->start_addr,
1432 fcn_cs_saved.c_value +
1433 fcn_aux_saved.x_sym.x_misc.x_fsize, objfile);
1434 within_function = 0;
1435 }
1436 break;
1437
1438 case C_BSTAT : /* begin static block */
1439 {
1440 struct internal_syment symbol;
1441
1442 read_symbol (&symbol, cs->c_value);
1443 static_block_base = symbol.n_value;
1444 static_block_section = symbol.n_scnum;
1445 }
1446 break;
1447
1448 case C_ESTAT : /* end of static block */
1449 static_block_base = 0;
1450 static_block_section = -1;
1451 break;
1452
1453 case C_ARG : /* These are not implemented. */
1454 case C_REGPARM :
1455 case C_TPDEF :
1456 case C_STRTAG :
1457 case C_UNTAG :
1458 case C_ENTAG :
1459 printf ("ERROR: Unimplemented storage class: %d.\n", cs->c_sclass);
1460 break;
1461
1462 case C_HIDEXT : /* ignore these.. */
1463 case C_LABEL :
1464 case C_NULL :
1465 break;
1466
1467 case C_BINCL : /* beginning of include file */
1468
1469 /* In xlc output, C_BINCL/C_EINCL pair doesn't show up in sorted
1470 order. Thus, when wee see them, we might not know enough info
1471 to process them. Thus, we'll be saving them into a table
1472 (inclTable) and postpone their processing. */
1473
1474 record_include_begin (cs);
1475 break;
1476
1477 case C_EINCL : /* end of include file */
1478 /* see the comment after case C_BINCL. */
1479 record_include_end (cs);
1480 break;
1481
1482 case C_BLOCK :
1483 if (STREQ (cs->c_name, ".bb")) {
1484 depth++;
1485 new = push_context (depth, cs->c_value);
1486 }
1487 else if (STREQ (cs->c_name, ".eb")) {
1488 new = pop_context ();
1489 if (depth != new->depth)
1490 error ("Invalid symbol data: .bb/.eb symbol mismatch at symbol %d.",
1491 symnum);
1492
1493 depth--;
1494 if (local_symbols && context_stack_depth > 0) {
1495 /* Make a block for the local symbols within. */
1496 finish_block (new->name, &local_symbols, new->old_blocks,
1497 new->start_addr, cs->c_value, objfile);
1498 }
1499 local_symbols = new->locals;
1500 }
1501 break;
1502
1503 default :
1504 process_xcoff_symbol (cs, objfile);
1505 break;
1506 }
1507
1508 } /* while */
1509
1510 if (last_source_file)
1511 {
1512 end_symtab (cur_src_end_addr, 1, 0, objfile, textsec->target_index);
1513 end_stabs ();
1514 }
1515
1516 free (symtbl);
1517 current_objfile = NULL;
1518
1519 /* Record the toc offset value of this symbol table into ldinfo structure.
1520 If no XMC_TC0 is found, toc_offset should be zero. Another place to obtain
1521 this information would be file auxiliary header. */
1522
1523 #ifndef FAKING_RS6000
1524 xcoff_add_toc_to_loadinfo (toc_offset);
1525 #endif
1526 }
1527
1528 #define SYMBOL_DUP(SYMBOL1, SYMBOL2) \
1529 (SYMBOL2) = (struct symbol *) \
1530 obstack_alloc (&objfile->symbol_obstack, sizeof (struct symbol)); \
1531 *(SYMBOL2) = *(SYMBOL1);
1532
1533
1534 #define SYMNAME_ALLOC(NAME, ALLOCED) \
1535 (ALLOCED) ? (NAME) : obstack_copy0 (&objfile->symbol_obstack, (NAME), strlen (NAME));
1536
1537
1538 /* process one xcoff symbol. */
1539
1540 static struct symbol *
1541 process_xcoff_symbol (cs, objfile)
1542 register struct coff_symbol *cs;
1543 struct objfile *objfile;
1544 {
1545 struct symbol onesymbol;
1546 register struct symbol *sym = &onesymbol;
1547 struct symbol *sym2 = NULL;
1548 struct type *ttype;
1549 char *name, *pp, *qq;
1550 int struct_and_type_combined;
1551 int nameless;
1552
1553 name = cs->c_name;
1554 if (name[0] == '.')
1555 ++name;
1556
1557 bzero (sym, sizeof (struct symbol));
1558
1559 /* default assumptions */
1560 SYMBOL_VALUE (sym) = cs->c_value;
1561 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
1562 SYMBOL_SECTION (sym) = cs->c_secnum;
1563
1564 if (ISFCN (cs->c_type)) {
1565
1566 /* At this point, we don't know the type of the function and assume it
1567 is int. This will be patched with the type from its stab entry later
1568 on in patch_block_stabs () */
1569
1570 SYMBOL_NAME (sym) = SYMNAME_ALLOC (name, symname_alloced);
1571 SYMBOL_TYPE (sym) = lookup_function_type (lookup_fundamental_type (objfile, FT_INTEGER));
1572
1573 SYMBOL_CLASS (sym) = LOC_BLOCK;
1574 SYMBOL_DUP (sym, sym2);
1575
1576 if (cs->c_sclass == C_EXT)
1577 add_symbol_to_list (sym2, &global_symbols);
1578 else if (cs->c_sclass == C_HIDEXT || cs->c_sclass == C_STAT)
1579 add_symbol_to_list (sym2, &file_symbols);
1580 }
1581
1582 else {
1583
1584 /* in case we can't figure out the type, default is `int'. */
1585 SYMBOL_TYPE (sym) = lookup_fundamental_type (objfile, FT_INTEGER);
1586
1587 switch (cs->c_sclass)
1588 {
1589 #if 0
1590 case C_FUN:
1591 if (fcn_cs_saved.c_sclass == C_EXT)
1592 add_stab_to_list (name, &global_stabs);
1593 else
1594 add_stab_to_list (name, &file_stabs);
1595 break;
1596 #endif
1597
1598 case C_DECL: /* a type decleration?? */
1599
1600 #if defined(NO_TYPEDEFS)
1601 qq = (char*) strchr (name, ':');
1602 if (!qq) /* skip if there is no ':' */
1603 return NULL;
1604
1605 nameless = (qq == name);
1606
1607 struct_and_type_combined = (qq[1] == 'T' && qq[2] == 't');
1608 pp = qq + (struct_and_type_combined ? 3 : 2);
1609
1610
1611 /* To handle GNU C++ typename abbreviation, we need to be able to fill
1612 in a type's name as soon as space for that type is allocated. */
1613
1614 if (struct_and_type_combined && name != qq) {
1615
1616 int typenums[2];
1617 struct type *tmp_type;
1618 char *tmp_pp = pp;
1619
1620 read_type_number (&tmp_pp, typenums);
1621 tmp_type = dbx_alloc_type (typenums, objfile);
1622
1623 if (tmp_type && !TYPE_NAME (tmp_type) && !nameless)
1624 TYPE_NAME (tmp_type) = SYMBOL_NAME (sym) =
1625 obsavestring (name, qq-name,
1626 &objfile->symbol_obstack);
1627 }
1628 ttype = SYMBOL_TYPE (sym) = read_type (&pp, objfile);
1629
1630 /* if there is no name for this typedef, you don't have to keep its
1631 symbol, since nobody could ask for it. Otherwise, build a symbol
1632 and add it into symbol_list. */
1633
1634 if (nameless)
1635 return;
1636
1637 /* Transarc wants to eliminate type definitions from the symbol table.
1638 Limited debugging capabilities, but faster symbol table processing
1639 and less memory usage. Note that tag definitions (starting with
1640 'T') will remain intact. */
1641
1642 if (qq[1] != 'T' && (!TYPE_NAME (ttype) || *(TYPE_NAME (ttype)) == '\0')) {
1643
1644 if (SYMBOL_NAME (sym))
1645 TYPE_NAME (ttype) = SYMBOL_NAME (sym);
1646 else
1647 TYPE_NAME (ttype) = obsavestring (name, qq-name);
1648
1649 return;
1650 }
1651
1652 /* read_type() will return null if type (or tag) definition was
1653 unnnecessarily duplicated. Also, if the symbol doesn't have a name,
1654 there is no need to keep it in symbol table. */
1655 /* The above argument no longer valid. read_type() never returns NULL. */
1656
1657 if (!ttype)
1658 return NULL;
1659
1660 /* if there is no name for this typedef, you don't have to keep its
1661 symbol, since nobody could ask for it. Otherwise, build a symbol
1662 and add it into symbol_list. */
1663
1664 if (qq[1] == 'T')
1665 SYMBOL_NAMESPACE (sym) = STRUCT_NAMESPACE;
1666 else if (qq[1] == 't')
1667 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
1668 else {
1669 warning ("Unrecognized stab string.\n");
1670 return NULL;
1671 }
1672
1673 SYMBOL_CLASS (sym) = LOC_TYPEDEF;
1674 if (!SYMBOL_NAME (sym))
1675 SYMBOL_NAME (sym) = obsavestring (name, qq-name);
1676
1677 SYMBOL_DUP (sym, sym2);
1678 add_symbol_to_list
1679 (sym2, within_function ? &local_symbols : &file_symbols);
1680
1681 /* For a combination of struct and type, add one more symbol
1682 for the type. */
1683
1684 if (struct_and_type_combined) {
1685 SYMBOL_DUP (sym, sym2);
1686 SYMBOL_NAMESPACE (sym2) = VAR_NAMESPACE;
1687 add_symbol_to_list
1688 (sym2, within_function ? &local_symbols : &file_symbols);
1689 }
1690
1691 /* assign a name to the type node. */
1692
1693 if (!TYPE_NAME (ttype) || *(TYPE_NAME (ttype)) == '\0') {
1694 if (struct_and_type_combined)
1695 TYPE_NAME (ttype) = SYMBOL_NAME (sym);
1696 else if (qq[1] == 'T') /* struct namespace */
1697 TYPE_NAME (ttype) = concat (
1698 TYPE_CODE (ttype) == TYPE_CODE_UNION ? "union " :
1699 TYPE_CODE (ttype) == TYPE_CODE_STRUCT? "struct " : "enum ",
1700 SYMBOL_NAME (sym), NULL);
1701 }
1702 break;
1703
1704 #else /* !NO_TYPEDEFS */
1705 sym = define_symbol (cs->c_value, cs->c_name, 0, 0, objfile);
1706 if (sym != NULL)
1707 SYMBOL_SECTION (sym) = cs->c_secnum;
1708 return sym;
1709 #endif
1710
1711 case C_GSYM:
1712 add_stab_to_list (name, &global_stabs);
1713 break;
1714
1715 case C_PSYM:
1716 case C_RPSYM:
1717
1718 sym = define_symbol (cs->c_value, cs->c_name, 0, 0, objfile);
1719 if (sym != NULL)
1720 {
1721 SYMBOL_SECTION (sym) = cs->c_secnum;
1722 }
1723 return sym;
1724
1725 case C_STSYM:
1726
1727 /* If we are going to use Sun dbx's define_symbol(), we need to
1728 massage our stab string a little. Change 'V' type to 'S' to be
1729 comparible with Sun. */
1730 /* FIXME: I believe this is to avoid a Sun-specific hack somewhere.
1731 Needs more investigation. */
1732
1733 if (*name == ':' || (pp = (char *) index (name, ':')) == NULL)
1734 return NULL;
1735
1736 ++pp;
1737 if (*pp == 'V') *pp = 'S';
1738 sym = define_symbol (cs->c_value, cs->c_name, 0, 0, objfile);
1739 if (sym != NULL)
1740 {
1741 SYMBOL_VALUE (sym) += static_block_base;
1742 SYMBOL_SECTION (sym) = static_block_section;
1743 }
1744 return sym;
1745
1746 case C_LSYM:
1747 sym = define_symbol (cs->c_value, cs->c_name, 0, N_LSYM, objfile);
1748 if (sym != NULL)
1749 {
1750 SYMBOL_SECTION (sym) = cs->c_secnum;
1751 }
1752 return sym;
1753
1754 case C_AUTO:
1755 SYMBOL_CLASS (sym) = LOC_LOCAL;
1756 SYMBOL_NAME (sym) = SYMNAME_ALLOC (name, symname_alloced);
1757 SYMBOL_SECTION (sym) = cs->c_secnum;
1758 SYMBOL_DUP (sym, sym2);
1759 add_symbol_to_list (sym2, &local_symbols);
1760 break;
1761
1762 case C_EXT:
1763 SYMBOL_CLASS (sym) = LOC_STATIC;
1764 SYMBOL_NAME (sym) = SYMNAME_ALLOC (name, symname_alloced);
1765 SYMBOL_SECTION (sym) = cs->c_secnum;
1766 SYMBOL_DUP (sym, sym2);
1767 add_symbol_to_list (sym2, &global_symbols);
1768 break;
1769
1770 case C_STAT:
1771 SYMBOL_CLASS (sym) = LOC_STATIC;
1772 SYMBOL_NAME (sym) = SYMNAME_ALLOC (name, symname_alloced);
1773 SYMBOL_SECTION (sym) = cs->c_secnum;
1774 SYMBOL_DUP (sym, sym2);
1775 add_symbol_to_list
1776 (sym2, within_function ? &local_symbols : &file_symbols);
1777 break;
1778
1779 case C_REG:
1780 printf ("ERROR! C_REG is not fully implemented!\n");
1781 SYMBOL_CLASS (sym) = LOC_REGISTER;
1782 SYMBOL_NAME (sym) = SYMNAME_ALLOC (name, symname_alloced);
1783 SYMBOL_SECTION (sym) = cs->c_secnum;
1784 SYMBOL_DUP (sym, sym2);
1785 add_symbol_to_list (sym2, &local_symbols);
1786 break;
1787
1788 case C_RSYM:
1789 pp = (char*) strchr (name, ':');
1790 if (pp) {
1791 sym = define_symbol (cs->c_value, cs->c_name, 0, 0, objfile);
1792 if (sym != NULL)
1793 SYMBOL_SECTION (sym) = cs->c_secnum;
1794 return sym;
1795 }
1796 else {
1797 complain (&rsym_complaint, name);
1798 return NULL;
1799 }
1800
1801 default :
1802 complain (&storclass_complaint, cs->c_sclass);
1803 return NULL;
1804 }
1805 }
1806 return sym2;
1807 }
1808
1809 /* Set *SYMBOL to symbol number symno in symtbl. */
1810 static void
1811 read_symbol (symbol, symno)
1812 struct internal_syment *symbol;
1813 int symno;
1814 {
1815 if (symno < 0 || symno >= symtbl_num_syms)
1816 {
1817 struct complaint msg =
1818 {"Invalid symbol offset", 0, 0};
1819 complain (&msg);
1820 symbol->n_value = 0;
1821 symbol->n_scnum = -1;
1822 return;
1823 }
1824 bfd_coff_swap_sym_in (symfile_bfd, symtbl + (symno*local_symesz), symbol);
1825 }
1826
1827 /* Get value corresponding to symbol number symno in symtbl. */
1828
1829 static int
1830 read_symbol_nvalue (symno)
1831 int symno;
1832 {
1833 struct internal_syment symbol[1];
1834
1835 read_symbol (symbol, symno);
1836 return symbol->n_value;
1837 }
1838
1839
1840 /* Find the address of the function corresponding to symno, where
1841 symno is the symbol pointed to by the linetable. */
1842
1843 static int
1844 read_symbol_lineno (symno)
1845 int symno;
1846 {
1847 struct internal_syment symbol[1];
1848 union internal_auxent main_aux[1];
1849
1850 /* Note that just searching for a short distance (e.g. 50 symbols)
1851 is not enough, at least in the following case.
1852
1853 .extern foo
1854 [many .stabx entries]
1855 [a few functions, referring to foo]
1856 .globl foo
1857 .bf
1858
1859 What happens here is that the assembler moves the .stabx entries
1860 to right before the ".bf" for foo, but the symbol for "foo" is before
1861 all the stabx entries. See PR gdb/2222. */
1862 while (symno < symtbl_num_syms) {
1863 bfd_coff_swap_sym_in (symfile_bfd,
1864 symtbl + (symno*local_symesz), symbol);
1865 if (symbol->n_sclass == C_FCN && STREQ (symbol->n_name, ".bf"))
1866 goto gotit;
1867 symno += symbol->n_numaux+1;
1868 }
1869
1870 complain (&bf_notfound_complaint);
1871 return 0;
1872
1873 gotit:
1874 /* take aux entry and return its lineno */
1875 symno++;
1876 bfd_coff_swap_aux_in (symfile_bfd, symtbl+(symno*local_symesz),
1877 symbol->n_type, symbol->n_sclass, main_aux);
1878
1879 return main_aux->x_sym.x_misc.x_lnsz.x_lnno;
1880 }
1881
1882 /* Support for line number handling */
1883
1884 /* This function is called for every section; it finds the outer limits
1885 * of the line table (minimum and maximum file offset) so that the
1886 * mainline code can read the whole thing for efficiency.
1887 */
1888 static void
1889 find_linenos(abfd, asect, vpinfo)
1890 bfd *abfd;
1891 sec_ptr asect;
1892 PTR vpinfo;
1893 {
1894 struct coff_symfile_info *info;
1895 int size, count;
1896 file_ptr offset, maxoff;
1897
1898 count = asect->lineno_count;
1899
1900 if (!STREQ (asect->name, ".text") || count == 0)
1901 return;
1902
1903 size = count * coff_data (symfile_bfd)->local_linesz;
1904 info = (struct coff_symfile_info *)vpinfo;
1905 offset = asect->line_filepos;
1906 maxoff = offset + size;
1907
1908 if (offset < info->min_lineno_offset || info->min_lineno_offset == 0)
1909 info->min_lineno_offset = offset;
1910
1911 if (maxoff > info->max_lineno_offset)
1912 info->max_lineno_offset = maxoff;
1913 }
1914
1915
1916 /* Read in all the line numbers for fast lookups later. Leave them in
1917 external (unswapped) format in memory; we'll swap them as we enter
1918 them into GDB's data structures. */
1919
1920 static int
1921 init_lineno (abfd, offset, size)
1922 bfd *abfd;
1923 file_ptr offset;
1924 int size;
1925 {
1926 int val;
1927
1928 if (bfd_seek(abfd, offset, L_SET) < 0)
1929 return -1;
1930
1931 linetab = (char *) xmalloc(size);
1932
1933 val = bfd_read(linetab, 1, size, abfd);
1934 if (val != size)
1935 return -1;
1936
1937 linetab_offset = offset;
1938 linetab_size = size;
1939 make_cleanup (free, linetab); /* Be sure it gets de-allocated. */
1940 return 0;
1941 }
1942 \f
1943 /* dbx allows the text of a symbol name to be continued into the
1944 next symbol name! When such a continuation is encountered
1945 (a \ at the end of the text of a name)
1946 call this function to get the continuation. */
1947 /* So far, I haven't seen this happenning xlc output. I doubt we'll need this
1948 for xcoff. */
1949
1950 #undef next_symbol_text
1951 #define next_symbol_text() \
1952 printf ("Gdb Error: symbol names on multiple lines not implemented.\n")
1953
1954
1955 static void
1956 xcoff_new_init (objfile)
1957 struct objfile *objfile;
1958 {
1959 }
1960
1961
1962 /* xcoff_symfile_init()
1963 is the xcoff-specific initialization routine for reading symbols.
1964 It is passed an objfile which contains, among other things,
1965 the BFD for the file whose symbols are being read, and a slot for
1966 a pointer to "private data" which we fill with cookies and other
1967 treats for xcoff_symfile_read().
1968
1969 We will only be called if this is an XCOFF or XCOFF-like file.
1970 BFD handles figuring out the format of the file, and code in symfile.c
1971 uses BFD's determination to vector to us.
1972
1973 The ultimate result is a new symtab (or, FIXME, eventually a psymtab). */
1974
1975 static void
1976 xcoff_symfile_init (objfile)
1977 struct objfile *objfile;
1978 {
1979 bfd *abfd = objfile->obfd;
1980
1981 /* Allocate struct to keep track of the symfile */
1982 objfile -> sym_private = xmmalloc (objfile -> md,
1983 sizeof (struct coff_symfile_info));
1984 init_entry_point_info (objfile);
1985 }
1986
1987 /* Perform any local cleanups required when we are done with a particular
1988 objfile. I.E, we are in the process of discarding all symbol information
1989 for an objfile, freeing up all memory held for it, and unlinking the
1990 objfile struct from the global list of known objfiles. */
1991
1992 static void
1993 xcoff_symfile_finish (objfile)
1994 struct objfile *objfile;
1995 {
1996 if (objfile -> sym_private != NULL)
1997 {
1998 mfree (objfile -> md, objfile -> sym_private);
1999 }
2000
2001 /* Start with a fresh include table for the next objfile. */
2002
2003 if (inclTable)
2004 {
2005 free (inclTable);
2006 inclTable = NULL;
2007 }
2008 inclIndx = inclLength = inclDepth = 0;
2009 }
2010
2011
2012 static int
2013 init_stringtab(abfd, offset, objfile)
2014 bfd *abfd;
2015 file_ptr offset;
2016 struct objfile *objfile;
2017 {
2018 long length;
2019 int val;
2020 unsigned char lengthbuf[4];
2021
2022 if (bfd_seek(abfd, offset, L_SET) < 0)
2023 return -1;
2024
2025 val = bfd_read((char *)lengthbuf, 1, sizeof lengthbuf, abfd);
2026 length = bfd_h_get_32(abfd, lengthbuf);
2027
2028 /* If no string table is needed, then the file may end immediately
2029 after the symbols. Just return with `strtbl' set to null. */
2030
2031 if (val != sizeof length || length < sizeof length)
2032 return 0;
2033
2034 /* Allocate string table from symbol_obstack. We will need this table
2035 as long as we have its symbol table around. */
2036
2037 strtbl = (char*) obstack_alloc (&objfile->symbol_obstack, length);
2038 if (strtbl == NULL)
2039 return -1;
2040
2041 bcopy(&length, strtbl, sizeof length);
2042 if (length == sizeof length)
2043 return 0;
2044
2045 val = bfd_read(strtbl + sizeof length, 1, length - sizeof length, abfd);
2046
2047 if (val != length - sizeof length || strtbl[length - 1] != '\0')
2048 return -1;
2049
2050 return 0;
2051 }
2052
2053 static int
2054 init_debugsection(abfd)
2055 bfd *abfd;
2056 {
2057 register sec_ptr secp;
2058 bfd_size_type length;
2059
2060 if (debugsec) {
2061 free(debugsec);
2062 debugsec = NULL;
2063 }
2064
2065 secp = bfd_get_section_by_name(abfd, ".debug");
2066 if (!secp)
2067 return 0;
2068
2069 if (!(length = bfd_section_size(abfd, secp)))
2070 return 0;
2071
2072 debugsec = (char *) xmalloc ((unsigned)length);
2073 if (debugsec == NULL)
2074 return -1;
2075
2076 if (!bfd_get_section_contents(abfd, secp, debugsec, (file_ptr) 0, length)) {
2077 printf ("Can't read .debug section from symbol file\n");
2078 return -1;
2079 }
2080 return 0;
2081 }
2082
2083 static void
2084 free_debugsection()
2085 {
2086 if (debugsec)
2087 free(debugsec);
2088 debugsec = NULL;
2089 }
2090
2091
2092 /* xcoff version of symbol file read. */
2093
2094 static void
2095 xcoff_symfile_read (objfile, section_offset, mainline)
2096 struct objfile *objfile;
2097 struct section_offset *section_offset;
2098 int mainline;
2099 {
2100 int num_symbols; /* # of symbols */
2101 file_ptr symtab_offset; /* symbol table and */
2102 file_ptr stringtab_offset; /* string table file offsets */
2103 int val;
2104 bfd *abfd;
2105 struct coff_symfile_info *info;
2106 char *name;
2107
2108 info = (struct coff_symfile_info *) objfile -> sym_private;
2109 symfile_bfd = abfd = objfile->obfd;
2110 name = objfile->name;
2111
2112 num_symbols = bfd_get_symcount (abfd); /* # of symbols */
2113 symtab_offset = obj_sym_filepos (abfd); /* symbol table file offset */
2114 stringtab_offset = symtab_offset +
2115 num_symbols * coff_data(abfd)->local_symesz;
2116
2117 info->min_lineno_offset = 0;
2118 info->max_lineno_offset = 0;
2119 bfd_map_over_sections (abfd, find_linenos, info);
2120
2121 /* FIXME! This stuff should move into symfile_init */
2122 if (info->min_lineno_offset != 0
2123 && info->max_lineno_offset > info->min_lineno_offset) {
2124
2125 /* only read in the line # table if one exists */
2126 val = init_lineno(abfd, info->min_lineno_offset,
2127 (int) (info->max_lineno_offset - info->min_lineno_offset));
2128
2129 if (val < 0)
2130 error("\"%s\": error reading line numbers\n", name);
2131 }
2132
2133 if (num_symbols > 0)
2134 {
2135 val = init_stringtab(abfd, stringtab_offset, objfile);
2136 if (val < 0) {
2137 error ("\"%s\": can't get string table", name);
2138 }
2139
2140 if (init_debugsection(abfd) < 0) {
2141 error ("Error reading .debug section of `%s'\n", name);
2142 }
2143 }
2144
2145 /* Position to read the symbol table. Do not read it all at once. */
2146 val = bfd_seek(abfd, symtab_offset, L_SET);
2147 if (val < 0)
2148 perror_with_name(name);
2149
2150 if (bfd_tell(abfd) != symtab_offset)
2151 fatal("bfd? BFD!");
2152
2153 init_minimal_symbol_collection ();
2154 make_cleanup (discard_minimal_symbols, 0);
2155
2156 #ifndef FAKING_RS6000
2157 /* Initialize load info structure. */
2158 if (mainline)
2159 xcoff_init_loadinfo ();
2160 #endif
2161
2162 /* Now that the executable file is positioned at symbol table,
2163 process it and define symbols accordingly. */
2164
2165 read_xcoff_symtab(objfile, num_symbols);
2166
2167 /* Free debug section. */
2168 free_debugsection ();
2169
2170 /* Sort symbols alphabetically within each block. */
2171 sort_all_symtab_syms ();
2172
2173 /* Install any minimal symbols that have been collected as the current
2174 minimal symbols for this objfile. */
2175
2176 install_minimal_symbols (objfile);
2177 }
2178
2179 /* XCOFF-specific parsing routine for section offsets. */
2180
2181 static int largest_section;
2182
2183 static void
2184 note_one_section (abfd, asect, ptr)
2185 bfd *abfd;
2186 asection *asect;
2187 PTR ptr;
2188 {
2189 if (asect->target_index > largest_section)
2190 largest_section = asect->target_index;
2191 }
2192
2193 static
2194 struct section_offsets *
2195 xcoff_symfile_offsets (objfile, addr)
2196 struct objfile *objfile;
2197 CORE_ADDR addr;
2198 {
2199 struct section_offsets *section_offsets;
2200 int i;
2201
2202 largest_section = 0;
2203 bfd_map_over_sections (objfile->obfd, note_one_section, NULL);
2204 objfile->num_sections = largest_section + 1;
2205 section_offsets = (struct section_offsets *)
2206 obstack_alloc
2207 (&objfile -> psymbol_obstack,
2208 sizeof (struct section_offsets)
2209 + sizeof (section_offsets->offsets) * (objfile->num_sections));
2210
2211 /* syms_from_objfile kindly subtracts from addr the bfd_section_vma
2212 of the .text section. This strikes me as wrong--whether the
2213 offset to be applied to symbol reading is relative to the start
2214 address of the section depends on the symbol format. In any
2215 event, this whole "addr" concept is pretty broken (it doesn't
2216 handle any section but .text sensibly), so just ignore the addr
2217 parameter and use 0. That matches the fact that xcoff_symfile_read
2218 ignores the section_offsets). */
2219 for (i = 0; i < objfile->num_sections; i++)
2220 ANOFFSET (section_offsets, i) = 0;
2221
2222 return section_offsets;
2223 }
2224 /* Register our ability to parse symbols for xcoff BFD files. */
2225
2226 static struct sym_fns xcoff_sym_fns =
2227 {
2228 "aixcoff-rs6000", /* sym_name: name or name prefix of BFD target type */
2229 15, /* sym_namelen: number of significant sym_name chars */
2230 xcoff_new_init, /* sym_new_init: init anything gbl to entire symtab */
2231 xcoff_symfile_init, /* sym_init: read initial info, setup for sym_read() */
2232 xcoff_symfile_read, /* sym_read: read a symbol file into symtab */
2233 xcoff_symfile_finish, /* sym_finish: finished with file, cleanup */
2234 xcoff_symfile_offsets, /* sym_offsets: xlate offsets ext->int form */
2235 NULL /* next: pointer to next struct sym_fns */
2236 };
2237
2238 void
2239 _initialize_xcoffread ()
2240 {
2241 add_symtab_fns(&xcoff_sym_fns);
2242
2243 /* Initialize symbol template later used for arguments. */
2244 SYMBOL_NAME (&parmsym) = "";
2245 SYMBOL_INIT_LANGUAGE_SPECIFIC (&parmsym, language_c);
2246 SYMBOL_NAMESPACE (&parmsym) = VAR_NAMESPACE;
2247 SYMBOL_CLASS (&parmsym) = LOC_ARG;
2248 /* Its other fields are zero, or are filled in later. */
2249 }