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[deliverable/binutils-gdb.git] / gdb / gnu-v3-abi.c
CommitLineData
7ed49443
JB
1/* Abstraction of GNU v3 abi.
2 Contributed by Jim Blandy <jimb@redhat.com>
451fbdda 3
0fb0cc75 4 Copyright (C) 2001, 2002, 2003, 2005, 2006, 2007, 2008, 2009
0d5de010 5 Free Software Foundation, Inc.
7ed49443
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6
7 This file is part of GDB.
8
a9762ec7
JB
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 3 of the License, or
12 (at your option) any later version.
7ed49443
JB
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
a9762ec7 20 along with this program. If not, see <http://www.gnu.org/licenses/>. */
7ed49443
JB
21
22#include "defs.h"
23#include "value.h"
24#include "cp-abi.h"
362ff856 25#include "cp-support.h"
7ed49443 26#include "demangle.h"
b18be20d 27#include "objfiles.h"
0d5de010
DJ
28#include "valprint.h"
29
3d499020 30#include "gdb_assert.h"
5f8a3188 31#include "gdb_string.h"
7ed49443 32
b27b8843 33static struct cp_abi_ops gnu_v3_abi_ops;
7ed49443
JB
34
35static int
36gnuv3_is_vtable_name (const char *name)
37{
38 return strncmp (name, "_ZTV", 4) == 0;
39}
40
41static int
42gnuv3_is_operator_name (const char *name)
43{
44 return strncmp (name, "operator", 8) == 0;
45}
46
47
ad4820ab
UW
48/* Determine architecture of class DOMAIN. This architecture is used
49 to query C++ ABI details (types, method pointer layout, etc.).
50
51 Note that we assume DOMAIN must have been allocated with an OBJFILE;
52 GDB does not provide any built-in class types. Thus we use the
53 architecture of that OBJFILE to define the C++ ABI. */
54
55static struct gdbarch *
56get_class_arch (struct type *domain)
57{
58 gdb_assert (TYPE_CODE (domain) == TYPE_CODE_CLASS);
59 gdb_assert (TYPE_OBJFILE (domain) != NULL);
60 return get_objfile_arch (TYPE_OBJFILE (domain));
61}
62
7ed49443
JB
63/* To help us find the components of a vtable, we build ourselves a
64 GDB type object representing the vtable structure. Following the
65 V3 ABI, it goes something like this:
66
67 struct gdb_gnu_v3_abi_vtable {
68
69 / * An array of virtual call and virtual base offsets. The real
70 length of this array depends on the class hierarchy; we use
71 negative subscripts to access the elements. Yucky, but
72 better than the alternatives. * /
73 ptrdiff_t vcall_and_vbase_offsets[0];
74
75 / * The offset from a virtual pointer referring to this table
76 to the top of the complete object. * /
77 ptrdiff_t offset_to_top;
78
79 / * The type_info pointer for this class. This is really a
80 std::type_info *, but GDB doesn't really look at the
81 type_info object itself, so we don't bother to get the type
82 exactly right. * /
83 void *type_info;
84
85 / * Virtual table pointers in objects point here. * /
86
87 / * Virtual function pointers. Like the vcall/vbase array, the
88 real length of this table depends on the class hierarchy. * /
89 void (*virtual_functions[0]) ();
90
91 };
92
93 The catch, of course, is that the exact layout of this table
94 depends on the ABI --- word size, endianness, alignment, etc. So
95 the GDB type object is actually a per-architecture kind of thing.
96
97 vtable_type_gdbarch_data is a gdbarch per-architecture data pointer
98 which refers to the struct type * for this structure, laid out
99 appropriately for the architecture. */
b27b8843 100static struct gdbarch_data *vtable_type_gdbarch_data;
7ed49443
JB
101
102
103/* Human-readable names for the numbers of the fields above. */
104enum {
105 vtable_field_vcall_and_vbase_offsets,
106 vtable_field_offset_to_top,
107 vtable_field_type_info,
108 vtable_field_virtual_functions
109};
110
111
112/* Return a GDB type representing `struct gdb_gnu_v3_abi_vtable',
113 described above, laid out appropriately for ARCH.
114
115 We use this function as the gdbarch per-architecture data
9970f04b 116 initialization function. */
7ed49443
JB
117static void *
118build_gdb_vtable_type (struct gdbarch *arch)
119{
120 struct type *t;
121 struct field *field_list, *field;
122 int offset;
123
124 struct type *void_ptr_type
fde6c819 125 = builtin_type (arch)->builtin_data_ptr;
7ed49443 126 struct type *ptr_to_void_fn_type
fde6c819 127 = builtin_type (arch)->builtin_func_ptr;
7ed49443
JB
128
129 /* ARCH can't give us the true ptrdiff_t type, so we guess. */
130 struct type *ptrdiff_type
819844ad 131 = init_type (TYPE_CODE_INT,
9970f04b 132 gdbarch_ptr_bit (arch) / TARGET_CHAR_BIT, 0,
7ed49443
JB
133 "ptrdiff_t", 0);
134
135 /* We assume no padding is necessary, since GDB doesn't know
136 anything about alignment at the moment. If this assumption bites
137 us, we should add a gdbarch method which, given a type, returns
138 the alignment that type requires, and then use that here. */
139
140 /* Build the field list. */
141 field_list = xmalloc (sizeof (struct field [4]));
142 memset (field_list, 0, sizeof (struct field [4]));
143 field = &field_list[0];
144 offset = 0;
145
146 /* ptrdiff_t vcall_and_vbase_offsets[0]; */
147 FIELD_NAME (*field) = "vcall_and_vbase_offsets";
148 FIELD_TYPE (*field)
149 = create_array_type (0, ptrdiff_type,
6d84d3d8 150 create_range_type (0, builtin_type_int32, 0, -1));
7ed49443
JB
151 FIELD_BITPOS (*field) = offset * TARGET_CHAR_BIT;
152 offset += TYPE_LENGTH (FIELD_TYPE (*field));
153 field++;
154
155 /* ptrdiff_t offset_to_top; */
156 FIELD_NAME (*field) = "offset_to_top";
157 FIELD_TYPE (*field) = ptrdiff_type;
158 FIELD_BITPOS (*field) = offset * TARGET_CHAR_BIT;
159 offset += TYPE_LENGTH (FIELD_TYPE (*field));
160 field++;
161
162 /* void *type_info; */
163 FIELD_NAME (*field) = "type_info";
164 FIELD_TYPE (*field) = void_ptr_type;
165 FIELD_BITPOS (*field) = offset * TARGET_CHAR_BIT;
166 offset += TYPE_LENGTH (FIELD_TYPE (*field));
167 field++;
168
169 /* void (*virtual_functions[0]) (); */
170 FIELD_NAME (*field) = "virtual_functions";
171 FIELD_TYPE (*field)
172 = create_array_type (0, ptr_to_void_fn_type,
6d84d3d8 173 create_range_type (0, builtin_type_int32, 0, -1));
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JB
174 FIELD_BITPOS (*field) = offset * TARGET_CHAR_BIT;
175 offset += TYPE_LENGTH (FIELD_TYPE (*field));
176 field++;
177
178 /* We assumed in the allocation above that there were four fields. */
3d499020 179 gdb_assert (field == (field_list + 4));
7ed49443
JB
180
181 t = init_type (TYPE_CODE_STRUCT, offset, 0, 0, 0);
182 TYPE_NFIELDS (t) = field - field_list;
183 TYPE_FIELDS (t) = field_list;
184 TYPE_TAG_NAME (t) = "gdb_gnu_v3_abi_vtable";
185
186 return t;
187}
188
189
ed09d7da
KB
190/* Return the ptrdiff_t type used in the vtable type. */
191static struct type *
192vtable_ptrdiff_type (struct gdbarch *gdbarch)
193{
194 struct type *vtable_type = gdbarch_data (gdbarch, vtable_type_gdbarch_data);
195
196 /* The "offset_to_top" field has the appropriate (ptrdiff_t) type. */
197 return TYPE_FIELD_TYPE (vtable_type, vtable_field_offset_to_top);
198}
199
7ed49443
JB
200/* Return the offset from the start of the imaginary `struct
201 gdb_gnu_v3_abi_vtable' object to the vtable's "address point"
202 (i.e., where objects' virtual table pointers point). */
203static int
ad4820ab 204vtable_address_point_offset (struct gdbarch *gdbarch)
7ed49443 205{
ad4820ab 206 struct type *vtable_type = gdbarch_data (gdbarch, vtable_type_gdbarch_data);
7ed49443
JB
207
208 return (TYPE_FIELD_BITPOS (vtable_type, vtable_field_virtual_functions)
209 / TARGET_CHAR_BIT);
210}
211
212
213static struct type *
214gnuv3_rtti_type (struct value *value,
215 int *full_p, int *top_p, int *using_enc_p)
216{
ad4820ab
UW
217 struct gdbarch *gdbarch;
218 struct type *vtable_type;
df407dfe 219 struct type *values_type = check_typedef (value_type (value));
7ed49443
JB
220 CORE_ADDR vtable_address;
221 struct value *vtable;
222 struct minimal_symbol *vtable_symbol;
223 const char *vtable_symbol_name;
224 const char *class_name;
7ed49443 225 struct type *run_time_type;
21cfb3b6 226 struct type *base_type;
7ed49443 227 LONGEST offset_to_top;
81fe8080
DE
228 struct type *values_type_vptr_basetype;
229 int values_type_vptr_fieldno;
7ed49443
JB
230
231 /* We only have RTTI for class objects. */
df407dfe 232 if (TYPE_CODE (values_type) != TYPE_CODE_CLASS)
7ed49443
JB
233 return NULL;
234
ad4820ab
UW
235 /* This routine may be called for Java types that do not have
236 a proper objfile. Just return NULL for those. */
237 if (!TYPE_OBJFILE (values_type)
238 || !TYPE_OBJFILE (values_type)->obfd)
239 return NULL;
240
241 /* Determine architecture. */
242 gdbarch = get_class_arch (values_type);
243 vtable_type = gdbarch_data (gdbarch, vtable_type_gdbarch_data);
244
df407dfe 245 /* If we can't find the virtual table pointer for values_type, we
7ed49443 246 can't find the RTTI. */
81fe8080
DE
247 values_type_vptr_fieldno = get_vptr_fieldno (values_type,
248 &values_type_vptr_basetype);
249 if (values_type_vptr_fieldno == -1)
7ed49443
JB
250 return NULL;
251
21cfb3b6
DJ
252 if (using_enc_p)
253 *using_enc_p = 0;
254
7ed49443 255 /* Fetch VALUE's virtual table pointer, and tweak it to point at
21cfb3b6 256 an instance of our imaginary gdb_gnu_v3_abi_vtable structure. */
81fe8080 257 base_type = check_typedef (values_type_vptr_basetype);
df407dfe 258 if (values_type != base_type)
21cfb3b6
DJ
259 {
260 value = value_cast (base_type, value);
261 if (using_enc_p)
262 *using_enc_p = 1;
263 }
7ed49443 264 vtable_address
81fe8080 265 = value_as_address (value_field (value, values_type_vptr_fieldno));
ad4820ab
UW
266 vtable
267 = value_at_lazy (vtable_type,
268 vtable_address - vtable_address_point_offset (gdbarch));
7ed49443
JB
269
270 /* Find the linker symbol for this vtable. */
271 vtable_symbol
272 = lookup_minimal_symbol_by_pc (VALUE_ADDRESS (vtable)
df407dfe 273 + value_offset (vtable)
13c3b5f5 274 + value_embedded_offset (vtable));
7ed49443
JB
275 if (! vtable_symbol)
276 return NULL;
277
278 /* The symbol's demangled name should be something like "vtable for
279 CLASS", where CLASS is the name of the run-time type of VALUE.
280 If we didn't like this approach, we could instead look in the
281 type_info object itself to get the class name. But this way
282 should work just as well, and doesn't read target memory. */
283 vtable_symbol_name = SYMBOL_DEMANGLED_NAME (vtable_symbol);
98081e55
PB
284 if (vtable_symbol_name == NULL
285 || strncmp (vtable_symbol_name, "vtable for ", 11))
f773fdbb 286 {
8a3fe4f8 287 warning (_("can't find linker symbol for virtual table for `%s' value"),
df407dfe 288 TYPE_NAME (values_type));
f773fdbb 289 if (vtable_symbol_name)
8a3fe4f8 290 warning (_(" found `%s' instead"), vtable_symbol_name);
f773fdbb
JM
291 return NULL;
292 }
7ed49443
JB
293 class_name = vtable_symbol_name + 11;
294
295 /* Try to look up the class name as a type name. */
362ff856
MC
296 /* FIXME: chastain/2003-11-26: block=NULL is bogus. See pr gdb/1465. */
297 run_time_type = cp_lookup_rtti_type (class_name, NULL);
298 if (run_time_type == NULL)
299 return NULL;
7ed49443
JB
300
301 /* Get the offset from VALUE to the top of the complete object.
302 NOTE: this is the reverse of the meaning of *TOP_P. */
303 offset_to_top
304 = value_as_long (value_field (vtable, vtable_field_offset_to_top));
305
306 if (full_p)
13c3b5f5 307 *full_p = (- offset_to_top == value_embedded_offset (value)
4754a64e 308 && (TYPE_LENGTH (value_enclosing_type (value))
7ed49443
JB
309 >= TYPE_LENGTH (run_time_type)));
310 if (top_p)
311 *top_p = - offset_to_top;
7ed49443
JB
312
313 return run_time_type;
314}
315
0d5de010
DJ
316/* Find the vtable for CONTAINER and return a value of the correct
317 vtable type for this architecture. */
7ed49443
JB
318
319static struct value *
ad4820ab 320gnuv3_get_vtable (struct gdbarch *gdbarch, struct value *container)
7ed49443 321{
ad4820ab 322 struct type *vtable_type = gdbarch_data (gdbarch, vtable_type_gdbarch_data);
0d5de010
DJ
323 struct type *vtable_pointer_type;
324 struct value *vtable_pointer;
325 CORE_ADDR vtable_pointer_address, vtable_address;
326
327 /* We do not consult the debug information to find the virtual table.
328 The ABI specifies that it is always at offset zero in any class,
329 and debug information may not represent it. We won't issue an
330 error if there's a class with virtual functions but no virtual table
331 pointer, but something's already gone seriously wrong if that
332 happens.
333
334 We avoid using value_contents on principle, because the object might
335 be large. */
336
337 /* Find the type "pointer to virtual table". */
338 vtable_pointer_type = lookup_pointer_type (vtable_type);
339
340 /* Load it from the start of the class. */
341 vtable_pointer_address = value_as_address (value_addr (container));
342 vtable_pointer = value_at (vtable_pointer_type, vtable_pointer_address);
343 vtable_address = value_as_address (vtable_pointer);
344
345 /* Correct it to point at the start of the virtual table, rather
346 than the address point. */
347 return value_at_lazy (vtable_type,
ad4820ab 348 vtable_address - vtable_address_point_offset (gdbarch));
0d5de010 349}
7ed49443 350
0d5de010
DJ
351/* Return a function pointer for CONTAINER's VTABLE_INDEX'th virtual
352 function, of type FNTYPE. */
7ed49443 353
0d5de010 354static struct value *
ad4820ab
UW
355gnuv3_get_virtual_fn (struct gdbarch *gdbarch, struct value *container,
356 struct type *fntype, int vtable_index)
0d5de010 357{
ad4820ab 358 struct value *vtable = gnuv3_get_vtable (gdbarch, container);
0d5de010 359 struct value *vfn;
7ed49443
JB
360
361 /* Fetch the appropriate function pointer from the vtable. */
362 vfn = value_subscript (value_field (vtable, vtable_field_virtual_functions),
6d84d3d8 363 value_from_longest (builtin_type_int32, vtable_index));
7ed49443 364
0d5de010
DJ
365 /* If this architecture uses function descriptors directly in the vtable,
366 then the address of the vtable entry is actually a "function pointer"
367 (i.e. points to the descriptor). We don't need to scale the index
368 by the size of a function descriptor; GCC does that before outputing
369 debug information. */
ad4820ab 370 if (gdbarch_vtable_function_descriptors (gdbarch))
0d5de010 371 vfn = value_addr (vfn);
7ed49443 372
0d5de010
DJ
373 /* Cast the function pointer to the appropriate type. */
374 vfn = value_cast (lookup_pointer_type (fntype), vfn);
76b79d6e 375
7ed49443
JB
376 return vfn;
377}
378
0d5de010
DJ
379/* GNU v3 implementation of value_virtual_fn_field. See cp-abi.h
380 for a description of the arguments. */
381
382static struct value *
383gnuv3_virtual_fn_field (struct value **value_p,
384 struct fn_field *f, int j,
385 struct type *vfn_base, int offset)
386{
387 struct type *values_type = check_typedef (value_type (*value_p));
ad4820ab 388 struct gdbarch *gdbarch;
0d5de010
DJ
389
390 /* Some simple sanity checks. */
391 if (TYPE_CODE (values_type) != TYPE_CODE_CLASS)
392 error (_("Only classes can have virtual functions."));
393
ad4820ab
UW
394 /* Determine architecture. */
395 gdbarch = get_class_arch (values_type);
396
0d5de010
DJ
397 /* Cast our value to the base class which defines this virtual
398 function. This takes care of any necessary `this'
399 adjustments. */
400 if (vfn_base != values_type)
401 *value_p = value_cast (vfn_base, *value_p);
402
ad4820ab 403 return gnuv3_get_virtual_fn (gdbarch, *value_p, TYPE_FN_FIELD_TYPE (f, j),
0d5de010
DJ
404 TYPE_FN_FIELD_VOFFSET (f, j));
405}
406
1514d34e
DJ
407/* Compute the offset of the baseclass which is
408 the INDEXth baseclass of class TYPE,
409 for value at VALADDR (in host) at ADDRESS (in target).
410 The result is the offset of the baseclass value relative
411 to (the address of)(ARG) + OFFSET.
412
413 -1 is returned on error. */
b9362cc7 414static int
96ce45ca 415gnuv3_baseclass_offset (struct type *type, int index, const bfd_byte *valaddr,
1514d34e
DJ
416 CORE_ADDR address)
417{
ad4820ab
UW
418 struct gdbarch *gdbarch;
419 struct type *vtable_type;
420 struct type *ptr_type;
79d5b63a
DJ
421 struct value *vtable;
422 struct type *vbasetype;
1514d34e
DJ
423 struct value *offset_val, *vbase_array;
424 CORE_ADDR vtable_address;
425 long int cur_base_offset, base_offset;
81fe8080 426 int vbasetype_vptr_fieldno;
1514d34e 427
ad4820ab
UW
428 /* Determine architecture. */
429 gdbarch = get_class_arch (type);
430 vtable_type = gdbarch_data (gdbarch, vtable_type_gdbarch_data);
431 ptr_type = builtin_type (gdbarch)->builtin_data_ptr;
432
1514d34e
DJ
433 /* If it isn't a virtual base, this is easy. The offset is in the
434 type definition. */
435 if (!BASETYPE_VIA_VIRTUAL (type, index))
436 return TYPE_BASECLASS_BITPOS (type, index) / 8;
437
438 /* To access a virtual base, we need to use the vbase offset stored in
439 our vtable. Recent GCC versions provide this information. If it isn't
440 available, we could get what we needed from RTTI, or from drawing the
441 complete inheritance graph based on the debug info. Neither is
442 worthwhile. */
443 cur_base_offset = TYPE_BASECLASS_BITPOS (type, index) / 8;
ad4820ab 444 if (cur_base_offset >= - vtable_address_point_offset (gdbarch))
8a3fe4f8 445 error (_("Expected a negative vbase offset (old compiler?)"));
1514d34e 446
ad4820ab
UW
447 cur_base_offset = cur_base_offset + vtable_address_point_offset (gdbarch);
448 if ((- cur_base_offset) % TYPE_LENGTH (ptr_type) != 0)
8a3fe4f8 449 error (_("Misaligned vbase offset."));
ad4820ab 450 cur_base_offset = cur_base_offset / ((int) TYPE_LENGTH (ptr_type));
1514d34e
DJ
451
452 /* We're now looking for the cur_base_offset'th entry (negative index)
79d5b63a
DJ
453 in the vcall_and_vbase_offsets array. We used to cast the object to
454 its TYPE_VPTR_BASETYPE, and reference the vtable as TYPE_VPTR_FIELDNO;
455 however, that cast can not be done without calling baseclass_offset again
456 if the TYPE_VPTR_BASETYPE is a virtual base class, as described in the
457 v3 C++ ABI Section 2.4.I.2.b. Fortunately the ABI guarantees that the
458 vtable pointer will be located at the beginning of the object, so we can
459 bypass the casting. Verify that the TYPE_VPTR_FIELDNO is in fact at the
7ed85d26
DJ
460 start of whichever baseclass it resides in, as a sanity measure - iff
461 we have debugging information for that baseclass. */
79d5b63a 462
392452f6 463 vbasetype = check_typedef (TYPE_VPTR_BASETYPE (type));
81fe8080 464 vbasetype_vptr_fieldno = get_vptr_fieldno (vbasetype, NULL);
7ed85d26 465
81fe8080
DE
466 if (vbasetype_vptr_fieldno >= 0
467 && TYPE_FIELD_BITPOS (vbasetype, vbasetype_vptr_fieldno) != 0)
8a3fe4f8 468 error (_("Illegal vptr offset in class %s"),
79d5b63a
DJ
469 TYPE_NAME (vbasetype) ? TYPE_NAME (vbasetype) : "<unknown>");
470
ad4820ab
UW
471 vtable_address = value_as_address (value_at_lazy (ptr_type, address));
472 vtable
473 = value_at_lazy (vtable_type,
474 vtable_address - vtable_address_point_offset (gdbarch));
475 offset_val = value_from_longest (builtin_type_int32, cur_base_offset);
1514d34e
DJ
476 vbase_array = value_field (vtable, vtable_field_vcall_and_vbase_offsets);
477 base_offset = value_as_long (value_subscript (vbase_array, offset_val));
478 return base_offset;
479}
7ed49443 480
0d5de010
DJ
481/* Locate a virtual method in DOMAIN or its non-virtual base classes
482 which has virtual table index VOFFSET. The method has an associated
483 "this" adjustment of ADJUSTMENT bytes. */
484
485const char *
486gnuv3_find_method_in (struct type *domain, CORE_ADDR voffset,
487 LONGEST adjustment)
488{
489 int i;
490 const char *physname;
491
492 /* Search this class first. */
493 physname = NULL;
494 if (adjustment == 0)
495 {
496 int len;
497
498 len = TYPE_NFN_FIELDS (domain);
499 for (i = 0; i < len; i++)
500 {
501 int len2, j;
502 struct fn_field *f;
503
504 f = TYPE_FN_FIELDLIST1 (domain, i);
505 len2 = TYPE_FN_FIELDLIST_LENGTH (domain, i);
506
507 check_stub_method_group (domain, i);
508 for (j = 0; j < len2; j++)
509 if (TYPE_FN_FIELD_VOFFSET (f, j) == voffset)
510 return TYPE_FN_FIELD_PHYSNAME (f, j);
511 }
512 }
513
514 /* Next search non-virtual bases. If it's in a virtual base,
515 we're out of luck. */
516 for (i = 0; i < TYPE_N_BASECLASSES (domain); i++)
517 {
518 int pos;
519 struct type *basetype;
520
521 if (BASETYPE_VIA_VIRTUAL (domain, i))
522 continue;
523
524 pos = TYPE_BASECLASS_BITPOS (domain, i) / 8;
525 basetype = TYPE_FIELD_TYPE (domain, i);
526 /* Recurse with a modified adjustment. We don't need to adjust
527 voffset. */
528 if (adjustment >= pos && adjustment < pos + TYPE_LENGTH (basetype))
529 return gnuv3_find_method_in (basetype, voffset, adjustment - pos);
530 }
531
532 return NULL;
533}
534
fead6908
UW
535/* Decode GNU v3 method pointer. */
536
537static int
ad4820ab
UW
538gnuv3_decode_method_ptr (struct gdbarch *gdbarch,
539 const gdb_byte *contents,
fead6908
UW
540 CORE_ADDR *value_p,
541 LONGEST *adjustment_p)
542{
ad4820ab 543 struct type *funcptr_type = builtin_type (gdbarch)->builtin_func_ptr;
ed09d7da 544 struct type *offset_type = vtable_ptrdiff_type (gdbarch);
fead6908
UW
545 CORE_ADDR ptr_value;
546 LONGEST voffset, adjustment;
547 int vbit;
548
549 /* Extract the pointer to member. The first element is either a pointer
550 or a vtable offset. For pointers, we need to use extract_typed_address
551 to allow the back-end to convert the pointer to a GDB address -- but
552 vtable offsets we must handle as integers. At this point, we do not
553 yet know which case we have, so we extract the value under both
554 interpretations and choose the right one later on. */
555 ptr_value = extract_typed_address (contents, funcptr_type);
556 voffset = extract_signed_integer (contents, TYPE_LENGTH (funcptr_type));
557 contents += TYPE_LENGTH (funcptr_type);
558 adjustment = extract_signed_integer (contents, TYPE_LENGTH (offset_type));
559
ad4820ab 560 if (!gdbarch_vbit_in_delta (gdbarch))
fead6908
UW
561 {
562 vbit = voffset & 1;
563 voffset = voffset ^ vbit;
564 }
565 else
566 {
567 vbit = adjustment & 1;
568 adjustment = adjustment >> 1;
569 }
570
571 *value_p = vbit? voffset : ptr_value;
572 *adjustment_p = adjustment;
573 return vbit;
574}
575
0d5de010
DJ
576/* GNU v3 implementation of cplus_print_method_ptr. */
577
578static void
579gnuv3_print_method_ptr (const gdb_byte *contents,
580 struct type *type,
581 struct ui_file *stream)
582{
ad4820ab
UW
583 struct type *domain = TYPE_DOMAIN_TYPE (type);
584 struct gdbarch *gdbarch = get_class_arch (domain);
0d5de010
DJ
585 CORE_ADDR ptr_value;
586 LONGEST adjustment;
0d5de010
DJ
587 int vbit;
588
0d5de010 589 /* Extract the pointer to member. */
ad4820ab 590 vbit = gnuv3_decode_method_ptr (gdbarch, contents, &ptr_value, &adjustment);
0d5de010
DJ
591
592 /* Check for NULL. */
593 if (ptr_value == 0 && vbit == 0)
594 {
595 fprintf_filtered (stream, "NULL");
596 return;
597 }
598
599 /* Search for a virtual method. */
600 if (vbit)
601 {
602 CORE_ADDR voffset;
603 const char *physname;
604
605 /* It's a virtual table offset, maybe in this class. Search
606 for a field with the correct vtable offset. First convert it
607 to an index, as used in TYPE_FN_FIELD_VOFFSET. */
ed09d7da 608 voffset = ptr_value / TYPE_LENGTH (vtable_ptrdiff_type (gdbarch));
0d5de010
DJ
609
610 physname = gnuv3_find_method_in (domain, voffset, adjustment);
611
612 /* If we found a method, print that. We don't bother to disambiguate
613 possible paths to the method based on the adjustment. */
614 if (physname)
615 {
616 char *demangled_name = cplus_demangle (physname,
617 DMGL_ANSI | DMGL_PARAMS);
618 if (demangled_name != NULL)
619 {
620 fprintf_filtered (stream, "&virtual ");
621 fputs_filtered (demangled_name, stream);
622 xfree (demangled_name);
623 return;
624 }
625 }
626 }
627
628 /* We didn't find it; print the raw data. */
629 if (vbit)
630 {
631 fprintf_filtered (stream, "&virtual table offset ");
632 print_longest (stream, 'd', 1, ptr_value);
633 }
634 else
635 print_address_demangle (ptr_value, stream, demangle);
636
637 if (adjustment)
638 {
639 fprintf_filtered (stream, ", this adjustment ");
640 print_longest (stream, 'd', 1, adjustment);
641 }
642}
643
644/* GNU v3 implementation of cplus_method_ptr_size. */
645
646static int
ad4820ab 647gnuv3_method_ptr_size (struct type *type)
0d5de010 648{
ad4820ab
UW
649 struct type *domain_type = check_typedef (TYPE_DOMAIN_TYPE (type));
650 struct gdbarch *gdbarch = get_class_arch (domain_type);
651 return 2 * TYPE_LENGTH (builtin_type (gdbarch)->builtin_data_ptr);
0d5de010
DJ
652}
653
654/* GNU v3 implementation of cplus_make_method_ptr. */
655
656static void
ad4820ab
UW
657gnuv3_make_method_ptr (struct type *type, gdb_byte *contents,
658 CORE_ADDR value, int is_virtual)
0d5de010 659{
ad4820ab
UW
660 struct type *domain_type = check_typedef (TYPE_DOMAIN_TYPE (type));
661 struct gdbarch *gdbarch = get_class_arch (domain_type);
662 int size = TYPE_LENGTH (builtin_type (gdbarch)->builtin_data_ptr);
0d5de010
DJ
663
664 /* FIXME drow/2006-12-24: The adjustment of "this" is currently
665 always zero, since the method pointer is of the correct type.
666 But if the method pointer came from a base class, this is
667 incorrect - it should be the offset to the base. The best
668 fix might be to create the pointer to member pointing at the
669 base class and cast it to the derived class, but that requires
670 support for adjusting pointers to members when casting them -
671 not currently supported by GDB. */
672
ad4820ab 673 if (!gdbarch_vbit_in_delta (gdbarch))
0d5de010
DJ
674 {
675 store_unsigned_integer (contents, size, value | is_virtual);
676 store_unsigned_integer (contents + size, size, 0);
677 }
678 else
679 {
680 store_unsigned_integer (contents, size, value);
681 store_unsigned_integer (contents + size, size, is_virtual);
682 }
683}
684
685/* GNU v3 implementation of cplus_method_ptr_to_value. */
686
687static struct value *
688gnuv3_method_ptr_to_value (struct value **this_p, struct value *method_ptr)
689{
ad4820ab 690 struct gdbarch *gdbarch;
0d5de010
DJ
691 const gdb_byte *contents = value_contents (method_ptr);
692 CORE_ADDR ptr_value;
ad4820ab 693 struct type *domain_type, *final_type, *method_type;
0d5de010
DJ
694 LONGEST adjustment;
695 struct value *adjval;
696 int vbit;
697
ad4820ab
UW
698 domain_type = TYPE_DOMAIN_TYPE (check_typedef (value_type (method_ptr)));
699 final_type = lookup_pointer_type (domain_type);
0d5de010
DJ
700
701 method_type = TYPE_TARGET_TYPE (check_typedef (value_type (method_ptr)));
702
fead6908 703 /* Extract the pointer to member. */
ad4820ab
UW
704 gdbarch = get_class_arch (domain_type);
705 vbit = gnuv3_decode_method_ptr (gdbarch, contents, &ptr_value, &adjustment);
0d5de010
DJ
706
707 /* First convert THIS to match the containing type of the pointer to
708 member. This cast may adjust the value of THIS. */
709 *this_p = value_cast (final_type, *this_p);
710
711 /* Then apply whatever adjustment is necessary. This creates a somewhat
712 strange pointer: it claims to have type FINAL_TYPE, but in fact it
713 might not be a valid FINAL_TYPE. For instance, it might be a
714 base class of FINAL_TYPE. And if it's not the primary base class,
715 then printing it out as a FINAL_TYPE object would produce some pretty
716 garbage.
717
718 But we don't really know the type of the first argument in
719 METHOD_TYPE either, which is why this happens. We can't
720 dereference this later as a FINAL_TYPE, but once we arrive in the
721 called method we'll have debugging information for the type of
722 "this" - and that'll match the value we produce here.
723
724 You can provoke this case by casting a Base::* to a Derived::*, for
725 instance. */
ad4820ab
UW
726 *this_p = value_cast (builtin_type (gdbarch)->builtin_data_ptr, *this_p);
727 adjval = value_from_longest (builtin_type (gdbarch)->builtin_long,
728 adjustment);
89eef114 729 *this_p = value_ptradd (*this_p, adjval);
0d5de010
DJ
730 *this_p = value_cast (final_type, *this_p);
731
732 if (vbit)
733 {
ad4820ab 734 LONGEST voffset;
ed09d7da 735 voffset = ptr_value / TYPE_LENGTH (vtable_ptrdiff_type (gdbarch));
ad4820ab
UW
736 return gnuv3_get_virtual_fn (gdbarch, value_ind (*this_p),
737 method_type, voffset);
0d5de010
DJ
738 }
739 else
740 return value_from_pointer (lookup_pointer_type (method_type), ptr_value);
741}
742
b18be20d
DJ
743/* Determine if we are currently in a C++ thunk. If so, get the address
744 of the routine we are thunking to and continue to there instead. */
745
746static CORE_ADDR
52f729a7 747gnuv3_skip_trampoline (struct frame_info *frame, CORE_ADDR stop_pc)
b18be20d
DJ
748{
749 CORE_ADDR real_stop_pc, method_stop_pc;
9970f04b 750 struct gdbarch *gdbarch = get_frame_arch (frame);
b18be20d
DJ
751 struct minimal_symbol *thunk_sym, *fn_sym;
752 struct obj_section *section;
753 char *thunk_name, *fn_name;
754
9970f04b 755 real_stop_pc = gdbarch_skip_trampoline_code (gdbarch, frame, stop_pc);
b18be20d
DJ
756 if (real_stop_pc == 0)
757 real_stop_pc = stop_pc;
758
759 /* Find the linker symbol for this potential thunk. */
760 thunk_sym = lookup_minimal_symbol_by_pc (real_stop_pc);
761 section = find_pc_section (real_stop_pc);
762 if (thunk_sym == NULL || section == NULL)
763 return 0;
764
765 /* The symbol's demangled name should be something like "virtual
766 thunk to FUNCTION", where FUNCTION is the name of the function
767 being thunked to. */
768 thunk_name = SYMBOL_DEMANGLED_NAME (thunk_sym);
769 if (thunk_name == NULL || strstr (thunk_name, " thunk to ") == NULL)
770 return 0;
771
772 fn_name = strstr (thunk_name, " thunk to ") + strlen (" thunk to ");
773 fn_sym = lookup_minimal_symbol (fn_name, NULL, section->objfile);
774 if (fn_sym == NULL)
775 return 0;
776
777 method_stop_pc = SYMBOL_VALUE_ADDRESS (fn_sym);
e76f05fa 778 real_stop_pc = gdbarch_skip_trampoline_code
9970f04b 779 (gdbarch, frame, method_stop_pc);
b18be20d
DJ
780 if (real_stop_pc == 0)
781 real_stop_pc = method_stop_pc;
782
783 return real_stop_pc;
784}
785
41f1b697
DJ
786/* Return nonzero if a type should be passed by reference.
787
788 The rule in the v3 ABI document comes from section 3.1.1. If the
789 type has a non-trivial copy constructor or destructor, then the
790 caller must make a copy (by calling the copy constructor if there
791 is one or perform the copy itself otherwise), pass the address of
792 the copy, and then destroy the temporary (if necessary).
793
794 For return values with non-trivial copy constructors or
795 destructors, space will be allocated in the caller, and a pointer
796 will be passed as the first argument (preceding "this").
797
798 We don't have a bulletproof mechanism for determining whether a
799 constructor or destructor is trivial. For GCC and DWARF2 debug
800 information, we can check the artificial flag.
801
802 We don't do anything with the constructors or destructors,
803 but we have to get the argument passing right anyway. */
804static int
805gnuv3_pass_by_reference (struct type *type)
806{
807 int fieldnum, fieldelem;
808
809 CHECK_TYPEDEF (type);
810
811 /* We're only interested in things that can have methods. */
812 if (TYPE_CODE (type) != TYPE_CODE_STRUCT
813 && TYPE_CODE (type) != TYPE_CODE_CLASS
814 && TYPE_CODE (type) != TYPE_CODE_UNION)
815 return 0;
816
817 for (fieldnum = 0; fieldnum < TYPE_NFN_FIELDS (type); fieldnum++)
818 for (fieldelem = 0; fieldelem < TYPE_FN_FIELDLIST_LENGTH (type, fieldnum);
819 fieldelem++)
820 {
821 struct fn_field *fn = TYPE_FN_FIELDLIST1 (type, fieldnum);
822 char *name = TYPE_FN_FIELDLIST_NAME (type, fieldnum);
823 struct type *fieldtype = TYPE_FN_FIELD_TYPE (fn, fieldelem);
824
825 /* If this function is marked as artificial, it is compiler-generated,
826 and we assume it is trivial. */
827 if (TYPE_FN_FIELD_ARTIFICIAL (fn, fieldelem))
828 continue;
829
830 /* If we've found a destructor, we must pass this by reference. */
831 if (name[0] == '~')
832 return 1;
833
834 /* If the mangled name of this method doesn't indicate that it
835 is a constructor, we're not interested.
836
837 FIXME drow/2007-09-23: We could do this using the name of
838 the method and the name of the class instead of dealing
839 with the mangled name. We don't have a convenient function
840 to strip off both leading scope qualifiers and trailing
841 template arguments yet. */
842 if (!is_constructor_name (TYPE_FN_FIELD_PHYSNAME (fn, fieldelem)))
843 continue;
844
845 /* If this method takes two arguments, and the second argument is
846 a reference to this class, then it is a copy constructor. */
847 if (TYPE_NFIELDS (fieldtype) == 2
848 && TYPE_CODE (TYPE_FIELD_TYPE (fieldtype, 1)) == TYPE_CODE_REF
849 && check_typedef (TYPE_TARGET_TYPE (TYPE_FIELD_TYPE (fieldtype, 1))) == type)
850 return 1;
851 }
852
853 /* Even if all the constructors and destructors were artificial, one
854 of them may have invoked a non-artificial constructor or
855 destructor in a base class. If any base class needs to be passed
856 by reference, so does this class. Similarly for members, which
857 are constructed whenever this class is. We do not need to worry
858 about recursive loops here, since we are only looking at members
859 of complete class type. */
860 for (fieldnum = 0; fieldnum < TYPE_NFIELDS (type); fieldnum++)
861 if (gnuv3_pass_by_reference (TYPE_FIELD_TYPE (type, fieldnum)))
862 return 1;
863
864 return 0;
865}
866
7ed49443
JB
867static void
868init_gnuv3_ops (void)
869{
030f20e1 870 vtable_type_gdbarch_data = gdbarch_data_register_post_init (build_gdb_vtable_type);
7ed49443
JB
871
872 gnu_v3_abi_ops.shortname = "gnu-v3";
873 gnu_v3_abi_ops.longname = "GNU G++ Version 3 ABI";
874 gnu_v3_abi_ops.doc = "G++ Version 3 ABI";
358777b0
EZ
875 gnu_v3_abi_ops.is_destructor_name =
876 (enum dtor_kinds (*) (const char *))is_gnu_v3_mangled_dtor;
877 gnu_v3_abi_ops.is_constructor_name =
878 (enum ctor_kinds (*) (const char *))is_gnu_v3_mangled_ctor;
7ed49443
JB
879 gnu_v3_abi_ops.is_vtable_name = gnuv3_is_vtable_name;
880 gnu_v3_abi_ops.is_operator_name = gnuv3_is_operator_name;
881 gnu_v3_abi_ops.rtti_type = gnuv3_rtti_type;
882 gnu_v3_abi_ops.virtual_fn_field = gnuv3_virtual_fn_field;
1514d34e 883 gnu_v3_abi_ops.baseclass_offset = gnuv3_baseclass_offset;
0d5de010
DJ
884 gnu_v3_abi_ops.print_method_ptr = gnuv3_print_method_ptr;
885 gnu_v3_abi_ops.method_ptr_size = gnuv3_method_ptr_size;
886 gnu_v3_abi_ops.make_method_ptr = gnuv3_make_method_ptr;
887 gnu_v3_abi_ops.method_ptr_to_value = gnuv3_method_ptr_to_value;
b18be20d 888 gnu_v3_abi_ops.skip_trampoline = gnuv3_skip_trampoline;
41f1b697 889 gnu_v3_abi_ops.pass_by_reference = gnuv3_pass_by_reference;
7ed49443
JB
890}
891
b9362cc7 892extern initialize_file_ftype _initialize_gnu_v3_abi; /* -Wmissing-prototypes */
7ed49443
JB
893
894void
895_initialize_gnu_v3_abi (void)
896{
897 init_gnuv3_ops ();
898
fe1f4a5e 899 register_cp_abi (&gnu_v3_abi_ops);
7ed49443 900}
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