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CommitLineData
7ed49443
JB
1/* Abstraction of GNU v3 abi.
2 Contributed by Jim Blandy <jimb@redhat.com>
451fbdda 3
6aba47ca 4 Copyright (C) 2001, 2002, 2003, 2005, 2006, 2007
0d5de010 5 Free Software Foundation, Inc.
7ed49443
JB
6
7 This file is part of GDB.
8
9 This program is free software; you can redistribute it and/or
10 modify it under the terms of the GNU General Public License as
11 published by the Free Software Foundation; either version 2 of the
12 License, or (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
197e01b6
EZ
21 Foundation, Inc., 51 Franklin Street, Fifth Floor,
22 Boston, MA 02110-1301, USA. */
7ed49443
JB
23
24#include "defs.h"
25#include "value.h"
26#include "cp-abi.h"
362ff856 27#include "cp-support.h"
7ed49443 28#include "demangle.h"
b18be20d 29#include "objfiles.h"
0d5de010
DJ
30#include "valprint.h"
31
3d499020 32#include "gdb_assert.h"
5f8a3188 33#include "gdb_string.h"
7ed49443 34
b27b8843 35static struct cp_abi_ops gnu_v3_abi_ops;
7ed49443
JB
36
37static int
38gnuv3_is_vtable_name (const char *name)
39{
40 return strncmp (name, "_ZTV", 4) == 0;
41}
42
43static int
44gnuv3_is_operator_name (const char *name)
45{
46 return strncmp (name, "operator", 8) == 0;
47}
48
49
50/* To help us find the components of a vtable, we build ourselves a
51 GDB type object representing the vtable structure. Following the
52 V3 ABI, it goes something like this:
53
54 struct gdb_gnu_v3_abi_vtable {
55
56 / * An array of virtual call and virtual base offsets. The real
57 length of this array depends on the class hierarchy; we use
58 negative subscripts to access the elements. Yucky, but
59 better than the alternatives. * /
60 ptrdiff_t vcall_and_vbase_offsets[0];
61
62 / * The offset from a virtual pointer referring to this table
63 to the top of the complete object. * /
64 ptrdiff_t offset_to_top;
65
66 / * The type_info pointer for this class. This is really a
67 std::type_info *, but GDB doesn't really look at the
68 type_info object itself, so we don't bother to get the type
69 exactly right. * /
70 void *type_info;
71
72 / * Virtual table pointers in objects point here. * /
73
74 / * Virtual function pointers. Like the vcall/vbase array, the
75 real length of this table depends on the class hierarchy. * /
76 void (*virtual_functions[0]) ();
77
78 };
79
80 The catch, of course, is that the exact layout of this table
81 depends on the ABI --- word size, endianness, alignment, etc. So
82 the GDB type object is actually a per-architecture kind of thing.
83
84 vtable_type_gdbarch_data is a gdbarch per-architecture data pointer
85 which refers to the struct type * for this structure, laid out
86 appropriately for the architecture. */
b27b8843 87static struct gdbarch_data *vtable_type_gdbarch_data;
7ed49443
JB
88
89
90/* Human-readable names for the numbers of the fields above. */
91enum {
92 vtable_field_vcall_and_vbase_offsets,
93 vtable_field_offset_to_top,
94 vtable_field_type_info,
95 vtable_field_virtual_functions
96};
97
98
99/* Return a GDB type representing `struct gdb_gnu_v3_abi_vtable',
100 described above, laid out appropriately for ARCH.
101
102 We use this function as the gdbarch per-architecture data
103 initialization function. We assume that the gdbarch framework
104 calls the per-architecture data initialization functions after it
105 sets current_gdbarch to the new architecture. */
106static void *
107build_gdb_vtable_type (struct gdbarch *arch)
108{
109 struct type *t;
110 struct field *field_list, *field;
111 int offset;
112
113 struct type *void_ptr_type
114 = lookup_pointer_type (builtin_type_void);
115 struct type *ptr_to_void_fn_type
116 = lookup_pointer_type (lookup_function_type (builtin_type_void));
117
118 /* ARCH can't give us the true ptrdiff_t type, so we guess. */
119 struct type *ptrdiff_type
819844ad
UW
120 = init_type (TYPE_CODE_INT,
121 gdbarch_ptr_bit (current_gdbarch) / TARGET_CHAR_BIT, 0,
7ed49443
JB
122 "ptrdiff_t", 0);
123
124 /* We assume no padding is necessary, since GDB doesn't know
125 anything about alignment at the moment. If this assumption bites
126 us, we should add a gdbarch method which, given a type, returns
127 the alignment that type requires, and then use that here. */
128
129 /* Build the field list. */
130 field_list = xmalloc (sizeof (struct field [4]));
131 memset (field_list, 0, sizeof (struct field [4]));
132 field = &field_list[0];
133 offset = 0;
134
135 /* ptrdiff_t vcall_and_vbase_offsets[0]; */
136 FIELD_NAME (*field) = "vcall_and_vbase_offsets";
137 FIELD_TYPE (*field)
138 = create_array_type (0, ptrdiff_type,
139 create_range_type (0, builtin_type_int, 0, -1));
140 FIELD_BITPOS (*field) = offset * TARGET_CHAR_BIT;
141 offset += TYPE_LENGTH (FIELD_TYPE (*field));
142 field++;
143
144 /* ptrdiff_t offset_to_top; */
145 FIELD_NAME (*field) = "offset_to_top";
146 FIELD_TYPE (*field) = ptrdiff_type;
147 FIELD_BITPOS (*field) = offset * TARGET_CHAR_BIT;
148 offset += TYPE_LENGTH (FIELD_TYPE (*field));
149 field++;
150
151 /* void *type_info; */
152 FIELD_NAME (*field) = "type_info";
153 FIELD_TYPE (*field) = void_ptr_type;
154 FIELD_BITPOS (*field) = offset * TARGET_CHAR_BIT;
155 offset += TYPE_LENGTH (FIELD_TYPE (*field));
156 field++;
157
158 /* void (*virtual_functions[0]) (); */
159 FIELD_NAME (*field) = "virtual_functions";
160 FIELD_TYPE (*field)
161 = create_array_type (0, ptr_to_void_fn_type,
162 create_range_type (0, builtin_type_int, 0, -1));
163 FIELD_BITPOS (*field) = offset * TARGET_CHAR_BIT;
164 offset += TYPE_LENGTH (FIELD_TYPE (*field));
165 field++;
166
167 /* We assumed in the allocation above that there were four fields. */
3d499020 168 gdb_assert (field == (field_list + 4));
7ed49443
JB
169
170 t = init_type (TYPE_CODE_STRUCT, offset, 0, 0, 0);
171 TYPE_NFIELDS (t) = field - field_list;
172 TYPE_FIELDS (t) = field_list;
173 TYPE_TAG_NAME (t) = "gdb_gnu_v3_abi_vtable";
174
175 return t;
176}
177
178
179/* Return the offset from the start of the imaginary `struct
180 gdb_gnu_v3_abi_vtable' object to the vtable's "address point"
181 (i.e., where objects' virtual table pointers point). */
182static int
5ae5f592 183vtable_address_point_offset (void)
7ed49443 184{
451fbdda
AC
185 struct type *vtable_type = gdbarch_data (current_gdbarch,
186 vtable_type_gdbarch_data);
7ed49443
JB
187
188 return (TYPE_FIELD_BITPOS (vtable_type, vtable_field_virtual_functions)
189 / TARGET_CHAR_BIT);
190}
191
192
193static struct type *
194gnuv3_rtti_type (struct value *value,
195 int *full_p, int *top_p, int *using_enc_p)
196{
451fbdda
AC
197 struct type *vtable_type = gdbarch_data (current_gdbarch,
198 vtable_type_gdbarch_data);
df407dfe 199 struct type *values_type = check_typedef (value_type (value));
7ed49443
JB
200 CORE_ADDR vtable_address;
201 struct value *vtable;
202 struct minimal_symbol *vtable_symbol;
203 const char *vtable_symbol_name;
204 const char *class_name;
7ed49443 205 struct type *run_time_type;
21cfb3b6 206 struct type *base_type;
7ed49443
JB
207 LONGEST offset_to_top;
208
209 /* We only have RTTI for class objects. */
df407dfe 210 if (TYPE_CODE (values_type) != TYPE_CODE_CLASS)
7ed49443
JB
211 return NULL;
212
df407dfe 213 /* If we can't find the virtual table pointer for values_type, we
7ed49443 214 can't find the RTTI. */
df407dfe
AC
215 fill_in_vptr_fieldno (values_type);
216 if (TYPE_VPTR_FIELDNO (values_type) == -1)
7ed49443
JB
217 return NULL;
218
21cfb3b6
DJ
219 if (using_enc_p)
220 *using_enc_p = 0;
221
7ed49443 222 /* Fetch VALUE's virtual table pointer, and tweak it to point at
21cfb3b6 223 an instance of our imaginary gdb_gnu_v3_abi_vtable structure. */
df407dfe
AC
224 base_type = check_typedef (TYPE_VPTR_BASETYPE (values_type));
225 if (values_type != base_type)
21cfb3b6
DJ
226 {
227 value = value_cast (base_type, value);
228 if (using_enc_p)
229 *using_enc_p = 1;
230 }
7ed49443 231 vtable_address
df407dfe 232 = value_as_address (value_field (value, TYPE_VPTR_FIELDNO (values_type)));
7ed49443 233 vtable = value_at_lazy (vtable_type,
00a4c844 234 vtable_address - vtable_address_point_offset ());
7ed49443
JB
235
236 /* Find the linker symbol for this vtable. */
237 vtable_symbol
238 = lookup_minimal_symbol_by_pc (VALUE_ADDRESS (vtable)
df407dfe 239 + value_offset (vtable)
13c3b5f5 240 + value_embedded_offset (vtable));
7ed49443
JB
241 if (! vtable_symbol)
242 return NULL;
243
244 /* The symbol's demangled name should be something like "vtable for
245 CLASS", where CLASS is the name of the run-time type of VALUE.
246 If we didn't like this approach, we could instead look in the
247 type_info object itself to get the class name. But this way
248 should work just as well, and doesn't read target memory. */
249 vtable_symbol_name = SYMBOL_DEMANGLED_NAME (vtable_symbol);
98081e55
PB
250 if (vtable_symbol_name == NULL
251 || strncmp (vtable_symbol_name, "vtable for ", 11))
f773fdbb 252 {
8a3fe4f8 253 warning (_("can't find linker symbol for virtual table for `%s' value"),
df407dfe 254 TYPE_NAME (values_type));
f773fdbb 255 if (vtable_symbol_name)
8a3fe4f8 256 warning (_(" found `%s' instead"), vtable_symbol_name);
f773fdbb
JM
257 return NULL;
258 }
7ed49443
JB
259 class_name = vtable_symbol_name + 11;
260
261 /* Try to look up the class name as a type name. */
362ff856
MC
262 /* FIXME: chastain/2003-11-26: block=NULL is bogus. See pr gdb/1465. */
263 run_time_type = cp_lookup_rtti_type (class_name, NULL);
264 if (run_time_type == NULL)
265 return NULL;
7ed49443
JB
266
267 /* Get the offset from VALUE to the top of the complete object.
268 NOTE: this is the reverse of the meaning of *TOP_P. */
269 offset_to_top
270 = value_as_long (value_field (vtable, vtable_field_offset_to_top));
271
272 if (full_p)
13c3b5f5 273 *full_p = (- offset_to_top == value_embedded_offset (value)
4754a64e 274 && (TYPE_LENGTH (value_enclosing_type (value))
7ed49443
JB
275 >= TYPE_LENGTH (run_time_type)));
276 if (top_p)
277 *top_p = - offset_to_top;
7ed49443
JB
278
279 return run_time_type;
280}
281
0d5de010
DJ
282/* Find the vtable for CONTAINER and return a value of the correct
283 vtable type for this architecture. */
7ed49443
JB
284
285static struct value *
0d5de010 286gnuv3_get_vtable (struct value *container)
7ed49443 287{
451fbdda
AC
288 struct type *vtable_type = gdbarch_data (current_gdbarch,
289 vtable_type_gdbarch_data);
0d5de010
DJ
290 struct type *vtable_pointer_type;
291 struct value *vtable_pointer;
292 CORE_ADDR vtable_pointer_address, vtable_address;
293
294 /* We do not consult the debug information to find the virtual table.
295 The ABI specifies that it is always at offset zero in any class,
296 and debug information may not represent it. We won't issue an
297 error if there's a class with virtual functions but no virtual table
298 pointer, but something's already gone seriously wrong if that
299 happens.
300
301 We avoid using value_contents on principle, because the object might
302 be large. */
303
304 /* Find the type "pointer to virtual table". */
305 vtable_pointer_type = lookup_pointer_type (vtable_type);
306
307 /* Load it from the start of the class. */
308 vtable_pointer_address = value_as_address (value_addr (container));
309 vtable_pointer = value_at (vtable_pointer_type, vtable_pointer_address);
310 vtable_address = value_as_address (vtable_pointer);
311
312 /* Correct it to point at the start of the virtual table, rather
313 than the address point. */
314 return value_at_lazy (vtable_type,
315 vtable_address - vtable_address_point_offset ());
316}
7ed49443 317
0d5de010
DJ
318/* Return a function pointer for CONTAINER's VTABLE_INDEX'th virtual
319 function, of type FNTYPE. */
7ed49443 320
0d5de010
DJ
321static struct value *
322gnuv3_get_virtual_fn (struct value *container, struct type *fntype,
323 int vtable_index)
324{
325 struct value *vtable = gnuv3_get_vtable (container);
326 struct value *vfn;
7ed49443
JB
327
328 /* Fetch the appropriate function pointer from the vtable. */
329 vfn = value_subscript (value_field (vtable, vtable_field_virtual_functions),
0d5de010 330 value_from_longest (builtin_type_int, vtable_index));
7ed49443 331
0d5de010
DJ
332 /* If this architecture uses function descriptors directly in the vtable,
333 then the address of the vtable entry is actually a "function pointer"
334 (i.e. points to the descriptor). We don't need to scale the index
335 by the size of a function descriptor; GCC does that before outputing
336 debug information. */
337 if (gdbarch_vtable_function_descriptors (current_gdbarch))
338 vfn = value_addr (vfn);
7ed49443 339
0d5de010
DJ
340 /* Cast the function pointer to the appropriate type. */
341 vfn = value_cast (lookup_pointer_type (fntype), vfn);
76b79d6e 342
7ed49443
JB
343 return vfn;
344}
345
0d5de010
DJ
346/* GNU v3 implementation of value_virtual_fn_field. See cp-abi.h
347 for a description of the arguments. */
348
349static struct value *
350gnuv3_virtual_fn_field (struct value **value_p,
351 struct fn_field *f, int j,
352 struct type *vfn_base, int offset)
353{
354 struct type *values_type = check_typedef (value_type (*value_p));
355
356 /* Some simple sanity checks. */
357 if (TYPE_CODE (values_type) != TYPE_CODE_CLASS)
358 error (_("Only classes can have virtual functions."));
359
360 /* Cast our value to the base class which defines this virtual
361 function. This takes care of any necessary `this'
362 adjustments. */
363 if (vfn_base != values_type)
364 *value_p = value_cast (vfn_base, *value_p);
365
366 return gnuv3_get_virtual_fn (*value_p, TYPE_FN_FIELD_TYPE (f, j),
367 TYPE_FN_FIELD_VOFFSET (f, j));
368}
369
1514d34e
DJ
370/* Compute the offset of the baseclass which is
371 the INDEXth baseclass of class TYPE,
372 for value at VALADDR (in host) at ADDRESS (in target).
373 The result is the offset of the baseclass value relative
374 to (the address of)(ARG) + OFFSET.
375
376 -1 is returned on error. */
b9362cc7 377static int
96ce45ca 378gnuv3_baseclass_offset (struct type *type, int index, const bfd_byte *valaddr,
1514d34e
DJ
379 CORE_ADDR address)
380{
451fbdda
AC
381 struct type *vtable_type = gdbarch_data (current_gdbarch,
382 vtable_type_gdbarch_data);
79d5b63a
DJ
383 struct value *vtable;
384 struct type *vbasetype;
1514d34e
DJ
385 struct value *offset_val, *vbase_array;
386 CORE_ADDR vtable_address;
387 long int cur_base_offset, base_offset;
1514d34e
DJ
388
389 /* If it isn't a virtual base, this is easy. The offset is in the
390 type definition. */
391 if (!BASETYPE_VIA_VIRTUAL (type, index))
392 return TYPE_BASECLASS_BITPOS (type, index) / 8;
393
394 /* To access a virtual base, we need to use the vbase offset stored in
395 our vtable. Recent GCC versions provide this information. If it isn't
396 available, we could get what we needed from RTTI, or from drawing the
397 complete inheritance graph based on the debug info. Neither is
398 worthwhile. */
399 cur_base_offset = TYPE_BASECLASS_BITPOS (type, index) / 8;
400 if (cur_base_offset >= - vtable_address_point_offset ())
8a3fe4f8 401 error (_("Expected a negative vbase offset (old compiler?)"));
1514d34e
DJ
402
403 cur_base_offset = cur_base_offset + vtable_address_point_offset ();
404 if ((- cur_base_offset) % TYPE_LENGTH (builtin_type_void_data_ptr) != 0)
8a3fe4f8 405 error (_("Misaligned vbase offset."));
1514d34e
DJ
406 cur_base_offset = cur_base_offset
407 / ((int) TYPE_LENGTH (builtin_type_void_data_ptr));
408
409 /* We're now looking for the cur_base_offset'th entry (negative index)
79d5b63a
DJ
410 in the vcall_and_vbase_offsets array. We used to cast the object to
411 its TYPE_VPTR_BASETYPE, and reference the vtable as TYPE_VPTR_FIELDNO;
412 however, that cast can not be done without calling baseclass_offset again
413 if the TYPE_VPTR_BASETYPE is a virtual base class, as described in the
414 v3 C++ ABI Section 2.4.I.2.b. Fortunately the ABI guarantees that the
415 vtable pointer will be located at the beginning of the object, so we can
416 bypass the casting. Verify that the TYPE_VPTR_FIELDNO is in fact at the
7ed85d26
DJ
417 start of whichever baseclass it resides in, as a sanity measure - iff
418 we have debugging information for that baseclass. */
79d5b63a
DJ
419
420 vbasetype = TYPE_VPTR_BASETYPE (type);
7ed85d26
DJ
421 if (TYPE_VPTR_FIELDNO (vbasetype) < 0)
422 fill_in_vptr_fieldno (vbasetype);
423
424 if (TYPE_VPTR_FIELDNO (vbasetype) >= 0
425 && TYPE_FIELD_BITPOS (vbasetype, TYPE_VPTR_FIELDNO (vbasetype)) != 0)
8a3fe4f8 426 error (_("Illegal vptr offset in class %s"),
79d5b63a
DJ
427 TYPE_NAME (vbasetype) ? TYPE_NAME (vbasetype) : "<unknown>");
428
429 vtable_address = value_as_address (value_at_lazy (builtin_type_void_data_ptr,
00a4c844 430 address));
1514d34e 431 vtable = value_at_lazy (vtable_type,
00a4c844 432 vtable_address - vtable_address_point_offset ());
1514d34e
DJ
433 offset_val = value_from_longest(builtin_type_int, cur_base_offset);
434 vbase_array = value_field (vtable, vtable_field_vcall_and_vbase_offsets);
435 base_offset = value_as_long (value_subscript (vbase_array, offset_val));
436 return base_offset;
437}
7ed49443 438
0d5de010
DJ
439/* Locate a virtual method in DOMAIN or its non-virtual base classes
440 which has virtual table index VOFFSET. The method has an associated
441 "this" adjustment of ADJUSTMENT bytes. */
442
443const char *
444gnuv3_find_method_in (struct type *domain, CORE_ADDR voffset,
445 LONGEST adjustment)
446{
447 int i;
448 const char *physname;
449
450 /* Search this class first. */
451 physname = NULL;
452 if (adjustment == 0)
453 {
454 int len;
455
456 len = TYPE_NFN_FIELDS (domain);
457 for (i = 0; i < len; i++)
458 {
459 int len2, j;
460 struct fn_field *f;
461
462 f = TYPE_FN_FIELDLIST1 (domain, i);
463 len2 = TYPE_FN_FIELDLIST_LENGTH (domain, i);
464
465 check_stub_method_group (domain, i);
466 for (j = 0; j < len2; j++)
467 if (TYPE_FN_FIELD_VOFFSET (f, j) == voffset)
468 return TYPE_FN_FIELD_PHYSNAME (f, j);
469 }
470 }
471
472 /* Next search non-virtual bases. If it's in a virtual base,
473 we're out of luck. */
474 for (i = 0; i < TYPE_N_BASECLASSES (domain); i++)
475 {
476 int pos;
477 struct type *basetype;
478
479 if (BASETYPE_VIA_VIRTUAL (domain, i))
480 continue;
481
482 pos = TYPE_BASECLASS_BITPOS (domain, i) / 8;
483 basetype = TYPE_FIELD_TYPE (domain, i);
484 /* Recurse with a modified adjustment. We don't need to adjust
485 voffset. */
486 if (adjustment >= pos && adjustment < pos + TYPE_LENGTH (basetype))
487 return gnuv3_find_method_in (basetype, voffset, adjustment - pos);
488 }
489
490 return NULL;
491}
492
493/* GNU v3 implementation of cplus_print_method_ptr. */
494
495static void
496gnuv3_print_method_ptr (const gdb_byte *contents,
497 struct type *type,
498 struct ui_file *stream)
499{
500 CORE_ADDR ptr_value;
501 LONGEST adjustment;
502 struct type *domain;
503 int vbit;
504
505 domain = TYPE_DOMAIN_TYPE (type);
506
507 /* Extract the pointer to member. */
508 ptr_value = extract_typed_address (contents, builtin_type_void_func_ptr);
509 contents += TYPE_LENGTH (builtin_type_void_func_ptr);
510 adjustment = extract_signed_integer (contents,
511 TYPE_LENGTH (builtin_type_long));
512
513 if (!gdbarch_vbit_in_delta (current_gdbarch))
514 {
515 vbit = ptr_value & 1;
516 ptr_value = ptr_value ^ vbit;
517 }
518 else
519 {
520 vbit = adjustment & 1;
521 adjustment = adjustment >> 1;
522 }
523
524 /* Check for NULL. */
525 if (ptr_value == 0 && vbit == 0)
526 {
527 fprintf_filtered (stream, "NULL");
528 return;
529 }
530
531 /* Search for a virtual method. */
532 if (vbit)
533 {
534 CORE_ADDR voffset;
535 const char *physname;
536
537 /* It's a virtual table offset, maybe in this class. Search
538 for a field with the correct vtable offset. First convert it
539 to an index, as used in TYPE_FN_FIELD_VOFFSET. */
540 voffset = ptr_value / TYPE_LENGTH (builtin_type_long);
541
542 physname = gnuv3_find_method_in (domain, voffset, adjustment);
543
544 /* If we found a method, print that. We don't bother to disambiguate
545 possible paths to the method based on the adjustment. */
546 if (physname)
547 {
548 char *demangled_name = cplus_demangle (physname,
549 DMGL_ANSI | DMGL_PARAMS);
550 if (demangled_name != NULL)
551 {
552 fprintf_filtered (stream, "&virtual ");
553 fputs_filtered (demangled_name, stream);
554 xfree (demangled_name);
555 return;
556 }
557 }
558 }
559
560 /* We didn't find it; print the raw data. */
561 if (vbit)
562 {
563 fprintf_filtered (stream, "&virtual table offset ");
564 print_longest (stream, 'd', 1, ptr_value);
565 }
566 else
567 print_address_demangle (ptr_value, stream, demangle);
568
569 if (adjustment)
570 {
571 fprintf_filtered (stream, ", this adjustment ");
572 print_longest (stream, 'd', 1, adjustment);
573 }
574}
575
576/* GNU v3 implementation of cplus_method_ptr_size. */
577
578static int
579gnuv3_method_ptr_size (void)
580{
581 return 2 * TYPE_LENGTH (builtin_type_void_data_ptr);
582}
583
584/* GNU v3 implementation of cplus_make_method_ptr. */
585
586static void
587gnuv3_make_method_ptr (gdb_byte *contents, CORE_ADDR value, int is_virtual)
588{
589 int size = TYPE_LENGTH (builtin_type_void_data_ptr);
590
591 /* FIXME drow/2006-12-24: The adjustment of "this" is currently
592 always zero, since the method pointer is of the correct type.
593 But if the method pointer came from a base class, this is
594 incorrect - it should be the offset to the base. The best
595 fix might be to create the pointer to member pointing at the
596 base class and cast it to the derived class, but that requires
597 support for adjusting pointers to members when casting them -
598 not currently supported by GDB. */
599
600 if (!gdbarch_vbit_in_delta (current_gdbarch))
601 {
602 store_unsigned_integer (contents, size, value | is_virtual);
603 store_unsigned_integer (contents + size, size, 0);
604 }
605 else
606 {
607 store_unsigned_integer (contents, size, value);
608 store_unsigned_integer (contents + size, size, is_virtual);
609 }
610}
611
612/* GNU v3 implementation of cplus_method_ptr_to_value. */
613
614static struct value *
615gnuv3_method_ptr_to_value (struct value **this_p, struct value *method_ptr)
616{
617 const gdb_byte *contents = value_contents (method_ptr);
618 CORE_ADDR ptr_value;
619 struct type *final_type, *method_type;
620 LONGEST adjustment;
621 struct value *adjval;
622 int vbit;
623
624 final_type = TYPE_DOMAIN_TYPE (check_typedef (value_type (method_ptr)));
625 final_type = lookup_pointer_type (final_type);
626
627 method_type = TYPE_TARGET_TYPE (check_typedef (value_type (method_ptr)));
628
629 ptr_value = extract_typed_address (contents, builtin_type_void_func_ptr);
630 contents += TYPE_LENGTH (builtin_type_void_func_ptr);
631 adjustment = extract_signed_integer (contents,
632 TYPE_LENGTH (builtin_type_long));
633
634 if (!gdbarch_vbit_in_delta (current_gdbarch))
635 {
636 vbit = ptr_value & 1;
637 ptr_value = ptr_value ^ vbit;
638 }
639 else
640 {
641 vbit = adjustment & 1;
642 adjustment = adjustment >> 1;
643 }
644
645 /* First convert THIS to match the containing type of the pointer to
646 member. This cast may adjust the value of THIS. */
647 *this_p = value_cast (final_type, *this_p);
648
649 /* Then apply whatever adjustment is necessary. This creates a somewhat
650 strange pointer: it claims to have type FINAL_TYPE, but in fact it
651 might not be a valid FINAL_TYPE. For instance, it might be a
652 base class of FINAL_TYPE. And if it's not the primary base class,
653 then printing it out as a FINAL_TYPE object would produce some pretty
654 garbage.
655
656 But we don't really know the type of the first argument in
657 METHOD_TYPE either, which is why this happens. We can't
658 dereference this later as a FINAL_TYPE, but once we arrive in the
659 called method we'll have debugging information for the type of
660 "this" - and that'll match the value we produce here.
661
662 You can provoke this case by casting a Base::* to a Derived::*, for
663 instance. */
664 *this_p = value_cast (builtin_type_void_data_ptr, *this_p);
665 adjval = value_from_longest (builtin_type_long, adjustment);
666 *this_p = value_add (*this_p, adjval);
667 *this_p = value_cast (final_type, *this_p);
668
669 if (vbit)
670 {
671 LONGEST voffset = ptr_value / TYPE_LENGTH (builtin_type_long);
672 return gnuv3_get_virtual_fn (value_ind (*this_p), method_type, voffset);
673 }
674 else
675 return value_from_pointer (lookup_pointer_type (method_type), ptr_value);
676}
677
b18be20d
DJ
678/* Determine if we are currently in a C++ thunk. If so, get the address
679 of the routine we are thunking to and continue to there instead. */
680
681static CORE_ADDR
682gnuv3_skip_trampoline (CORE_ADDR stop_pc)
683{
684 CORE_ADDR real_stop_pc, method_stop_pc;
685 struct minimal_symbol *thunk_sym, *fn_sym;
686 struct obj_section *section;
687 char *thunk_name, *fn_name;
688
e76f05fa 689 real_stop_pc = gdbarch_skip_trampoline_code (current_gdbarch, stop_pc);
b18be20d
DJ
690 if (real_stop_pc == 0)
691 real_stop_pc = stop_pc;
692
693 /* Find the linker symbol for this potential thunk. */
694 thunk_sym = lookup_minimal_symbol_by_pc (real_stop_pc);
695 section = find_pc_section (real_stop_pc);
696 if (thunk_sym == NULL || section == NULL)
697 return 0;
698
699 /* The symbol's demangled name should be something like "virtual
700 thunk to FUNCTION", where FUNCTION is the name of the function
701 being thunked to. */
702 thunk_name = SYMBOL_DEMANGLED_NAME (thunk_sym);
703 if (thunk_name == NULL || strstr (thunk_name, " thunk to ") == NULL)
704 return 0;
705
706 fn_name = strstr (thunk_name, " thunk to ") + strlen (" thunk to ");
707 fn_sym = lookup_minimal_symbol (fn_name, NULL, section->objfile);
708 if (fn_sym == NULL)
709 return 0;
710
711 method_stop_pc = SYMBOL_VALUE_ADDRESS (fn_sym);
e76f05fa
UW
712 real_stop_pc = gdbarch_skip_trampoline_code
713 (current_gdbarch, method_stop_pc);
b18be20d
DJ
714 if (real_stop_pc == 0)
715 real_stop_pc = method_stop_pc;
716
717 return real_stop_pc;
718}
719
7ed49443
JB
720static void
721init_gnuv3_ops (void)
722{
030f20e1 723 vtable_type_gdbarch_data = gdbarch_data_register_post_init (build_gdb_vtable_type);
7ed49443
JB
724
725 gnu_v3_abi_ops.shortname = "gnu-v3";
726 gnu_v3_abi_ops.longname = "GNU G++ Version 3 ABI";
727 gnu_v3_abi_ops.doc = "G++ Version 3 ABI";
358777b0
EZ
728 gnu_v3_abi_ops.is_destructor_name =
729 (enum dtor_kinds (*) (const char *))is_gnu_v3_mangled_dtor;
730 gnu_v3_abi_ops.is_constructor_name =
731 (enum ctor_kinds (*) (const char *))is_gnu_v3_mangled_ctor;
7ed49443
JB
732 gnu_v3_abi_ops.is_vtable_name = gnuv3_is_vtable_name;
733 gnu_v3_abi_ops.is_operator_name = gnuv3_is_operator_name;
734 gnu_v3_abi_ops.rtti_type = gnuv3_rtti_type;
735 gnu_v3_abi_ops.virtual_fn_field = gnuv3_virtual_fn_field;
1514d34e 736 gnu_v3_abi_ops.baseclass_offset = gnuv3_baseclass_offset;
0d5de010
DJ
737 gnu_v3_abi_ops.print_method_ptr = gnuv3_print_method_ptr;
738 gnu_v3_abi_ops.method_ptr_size = gnuv3_method_ptr_size;
739 gnu_v3_abi_ops.make_method_ptr = gnuv3_make_method_ptr;
740 gnu_v3_abi_ops.method_ptr_to_value = gnuv3_method_ptr_to_value;
b18be20d 741 gnu_v3_abi_ops.skip_trampoline = gnuv3_skip_trampoline;
7ed49443
JB
742}
743
b9362cc7 744extern initialize_file_ftype _initialize_gnu_v3_abi; /* -Wmissing-prototypes */
7ed49443
JB
745
746void
747_initialize_gnu_v3_abi (void)
748{
749 init_gnuv3_ops ();
750
fe1f4a5e 751 register_cp_abi (&gnu_v3_abi_ops);
7ed49443 752}