Fix bug in gdb.ada/bias.exp
[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
b811d2c2 4 Copyright (C) 2001-2020 Free Software Foundation, Inc.
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5
6 This file is part of GDB.
7
a9762ec7
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8 This program is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 3 of the License, or
11 (at your option) any later version.
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12
13 This program is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
17
18 You should have received a copy of the GNU General Public License
a9762ec7 19 along with this program. If not, see <http://www.gnu.org/licenses/>. */
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20
21#include "defs.h"
22#include "value.h"
23#include "cp-abi.h"
362ff856 24#include "cp-support.h"
7ed49443 25#include "demangle.h"
62bf63d7 26#include "dwarf2.h"
b18be20d 27#include "objfiles.h"
0d5de010 28#include "valprint.h"
94af9270 29#include "c-lang.h"
79d43c61 30#include "typeprint.h"
59d3651b 31#include <algorithm>
7f6aba03 32#include "cli/cli-style.h"
7d79de9a 33#include "dwarf2/loc.h"
0d5de010 34
b27b8843 35static struct cp_abi_ops gnu_v3_abi_ops;
7ed49443 36
6e72ca20
TT
37/* A gdbarch key for std::type_info, in the event that it can't be
38 found in the debug info. */
39
40static struct gdbarch_data *std_type_info_gdbarch_data;
41
42
7ed49443
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43static int
44gnuv3_is_vtable_name (const char *name)
45{
61012eef 46 return startswith (name, "_ZTV");
7ed49443
JB
47}
48
49static int
50gnuv3_is_operator_name (const char *name)
51{
8090b426 52 return startswith (name, CP_OPERATOR_STR);
7ed49443
JB
53}
54
55
56/* To help us find the components of a vtable, we build ourselves a
57 GDB type object representing the vtable structure. Following the
58 V3 ABI, it goes something like this:
59
60 struct gdb_gnu_v3_abi_vtable {
61
62 / * An array of virtual call and virtual base offsets. The real
dda83cd7
SM
63 length of this array depends on the class hierarchy; we use
64 negative subscripts to access the elements. Yucky, but
65 better than the alternatives. * /
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JB
66 ptrdiff_t vcall_and_vbase_offsets[0];
67
68 / * The offset from a virtual pointer referring to this table
dda83cd7 69 to the top of the complete object. * /
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70 ptrdiff_t offset_to_top;
71
72 / * The type_info pointer for this class. This is really a
dda83cd7
SM
73 std::type_info *, but GDB doesn't really look at the
74 type_info object itself, so we don't bother to get the type
75 exactly right. * /
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76 void *type_info;
77
78 / * Virtual table pointers in objects point here. * /
79
80 / * Virtual function pointers. Like the vcall/vbase array, the
dda83cd7 81 real length of this table depends on the class hierarchy. * /
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82 void (*virtual_functions[0]) ();
83
84 };
85
86 The catch, of course, is that the exact layout of this table
87 depends on the ABI --- word size, endianness, alignment, etc. So
88 the GDB type object is actually a per-architecture kind of thing.
89
90 vtable_type_gdbarch_data is a gdbarch per-architecture data pointer
91 which refers to the struct type * for this structure, laid out
92 appropriately for the architecture. */
b27b8843 93static struct gdbarch_data *vtable_type_gdbarch_data;
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94
95
96/* Human-readable names for the numbers of the fields above. */
97enum {
98 vtable_field_vcall_and_vbase_offsets,
99 vtable_field_offset_to_top,
100 vtable_field_type_info,
101 vtable_field_virtual_functions
102};
103
104
105/* Return a GDB type representing `struct gdb_gnu_v3_abi_vtable',
106 described above, laid out appropriately for ARCH.
107
108 We use this function as the gdbarch per-architecture data
9970f04b 109 initialization function. */
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JB
110static void *
111build_gdb_vtable_type (struct gdbarch *arch)
112{
113 struct type *t;
114 struct field *field_list, *field;
115 int offset;
116
117 struct type *void_ptr_type
fde6c819 118 = builtin_type (arch)->builtin_data_ptr;
7ed49443 119 struct type *ptr_to_void_fn_type
fde6c819 120 = builtin_type (arch)->builtin_func_ptr;
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121
122 /* ARCH can't give us the true ptrdiff_t type, so we guess. */
123 struct type *ptrdiff_type
e9bb382b 124 = arch_integer_type (arch, gdbarch_ptr_bit (arch), 0, "ptrdiff_t");
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125
126 /* We assume no padding is necessary, since GDB doesn't know
127 anything about alignment at the moment. If this assumption bites
128 us, we should add a gdbarch method which, given a type, returns
129 the alignment that type requires, and then use that here. */
130
131 /* Build the field list. */
8d749320 132 field_list = XCNEWVEC (struct field, 4);
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JB
133 field = &field_list[0];
134 offset = 0;
135
136 /* ptrdiff_t vcall_and_vbase_offsets[0]; */
137 FIELD_NAME (*field) = "vcall_and_vbase_offsets";
5d14b6e5 138 field->set_type (lookup_array_range_type (ptrdiff_type, 0, -1));
f41f5e61 139 SET_FIELD_BITPOS (*field, offset * TARGET_CHAR_BIT);
b6cdac4b 140 offset += TYPE_LENGTH (field->type ());
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141 field++;
142
143 /* ptrdiff_t offset_to_top; */
144 FIELD_NAME (*field) = "offset_to_top";
5d14b6e5 145 field->set_type (ptrdiff_type);
f41f5e61 146 SET_FIELD_BITPOS (*field, offset * TARGET_CHAR_BIT);
b6cdac4b 147 offset += TYPE_LENGTH (field->type ());
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148 field++;
149
150 /* void *type_info; */
151 FIELD_NAME (*field) = "type_info";
5d14b6e5 152 field->set_type (void_ptr_type);
f41f5e61 153 SET_FIELD_BITPOS (*field, offset * TARGET_CHAR_BIT);
b6cdac4b 154 offset += TYPE_LENGTH (field->type ());
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155 field++;
156
157 /* void (*virtual_functions[0]) (); */
158 FIELD_NAME (*field) = "virtual_functions";
5d14b6e5 159 field->set_type (lookup_array_range_type (ptr_to_void_fn_type, 0, -1));
f41f5e61 160 SET_FIELD_BITPOS (*field, offset * TARGET_CHAR_BIT);
b6cdac4b 161 offset += TYPE_LENGTH (field->type ());
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162 field++;
163
164 /* We assumed in the allocation above that there were four fields. */
3d499020 165 gdb_assert (field == (field_list + 4));
7ed49443 166
77b7c781 167 t = arch_type (arch, TYPE_CODE_STRUCT, offset * TARGET_CHAR_BIT, NULL);
5e33d5f4 168 t->set_num_fields (field - field_list);
3cabb6b0 169 t->set_fields (field_list);
d0e39ea2 170 t->set_name ("gdb_gnu_v3_abi_vtable");
e9bb382b 171 INIT_CPLUS_SPECIFIC (t);
7ed49443 172
706d0883 173 return make_type_with_address_space (t, TYPE_INSTANCE_FLAG_CODE_SPACE);
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174}
175
176
ed09d7da
KB
177/* Return the ptrdiff_t type used in the vtable type. */
178static struct type *
179vtable_ptrdiff_type (struct gdbarch *gdbarch)
180{
9a3c8263
SM
181 struct type *vtable_type
182 = (struct type *) gdbarch_data (gdbarch, vtable_type_gdbarch_data);
ed09d7da
KB
183
184 /* The "offset_to_top" field has the appropriate (ptrdiff_t) type. */
940da03e 185 return vtable_type->field (vtable_field_offset_to_top).type ();
ed09d7da
KB
186}
187
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188/* Return the offset from the start of the imaginary `struct
189 gdb_gnu_v3_abi_vtable' object to the vtable's "address point"
190 (i.e., where objects' virtual table pointers point). */
191static int
ad4820ab 192vtable_address_point_offset (struct gdbarch *gdbarch)
7ed49443 193{
9a3c8263
SM
194 struct type *vtable_type
195 = (struct type *) gdbarch_data (gdbarch, vtable_type_gdbarch_data);
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196
197 return (TYPE_FIELD_BITPOS (vtable_type, vtable_field_virtual_functions)
dda83cd7 198 / TARGET_CHAR_BIT);
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199}
200
201
d48cc9dd
DJ
202/* Determine whether structure TYPE is a dynamic class. Cache the
203 result. */
204
205static int
206gnuv3_dynamic_class (struct type *type)
207{
208 int fieldnum, fieldelem;
209
f168693b 210 type = check_typedef (type);
78134374
SM
211 gdb_assert (type->code () == TYPE_CODE_STRUCT
212 || type->code () == TYPE_CODE_UNION);
5f4ce105 213
78134374 214 if (type->code () == TYPE_CODE_UNION)
5f4ce105
DE
215 return 0;
216
d48cc9dd
DJ
217 if (TYPE_CPLUS_DYNAMIC (type))
218 return TYPE_CPLUS_DYNAMIC (type) == 1;
219
220 ALLOCATE_CPLUS_STRUCT_TYPE (type);
221
222 for (fieldnum = 0; fieldnum < TYPE_N_BASECLASSES (type); fieldnum++)
223 if (BASETYPE_VIA_VIRTUAL (type, fieldnum)
940da03e 224 || gnuv3_dynamic_class (type->field (fieldnum).type ()))
d48cc9dd
DJ
225 {
226 TYPE_CPLUS_DYNAMIC (type) = 1;
227 return 1;
228 }
229
230 for (fieldnum = 0; fieldnum < TYPE_NFN_FIELDS (type); fieldnum++)
231 for (fieldelem = 0; fieldelem < TYPE_FN_FIELDLIST_LENGTH (type, fieldnum);
232 fieldelem++)
233 {
234 struct fn_field *f = TYPE_FN_FIELDLIST1 (type, fieldnum);
235
236 if (TYPE_FN_FIELD_VIRTUAL_P (f, fieldelem))
237 {
238 TYPE_CPLUS_DYNAMIC (type) = 1;
239 return 1;
240 }
241 }
242
243 TYPE_CPLUS_DYNAMIC (type) = -1;
244 return 0;
245}
246
247/* Find the vtable for a value of CONTAINER_TYPE located at
248 CONTAINER_ADDR. Return a value of the correct vtable type for this
249 architecture, or NULL if CONTAINER does not have a vtable. */
250
251static struct value *
252gnuv3_get_vtable (struct gdbarch *gdbarch,
253 struct type *container_type, CORE_ADDR container_addr)
254{
9a3c8263
SM
255 struct type *vtable_type
256 = (struct type *) gdbarch_data (gdbarch, vtable_type_gdbarch_data);
d48cc9dd
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257 struct type *vtable_pointer_type;
258 struct value *vtable_pointer;
259 CORE_ADDR vtable_address;
260
f168693b 261 container_type = check_typedef (container_type);
78134374 262 gdb_assert (container_type->code () == TYPE_CODE_STRUCT);
5f4ce105 263
d48cc9dd
DJ
264 /* If this type does not have a virtual table, don't read the first
265 field. */
5f4ce105 266 if (!gnuv3_dynamic_class (container_type))
d48cc9dd
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267 return NULL;
268
269 /* We do not consult the debug information to find the virtual table.
270 The ABI specifies that it is always at offset zero in any class,
271 and debug information may not represent it.
272
273 We avoid using value_contents on principle, because the object might
274 be large. */
275
276 /* Find the type "pointer to virtual table". */
277 vtable_pointer_type = lookup_pointer_type (vtable_type);
278
279 /* Load it from the start of the class. */
280 vtable_pointer = value_at (vtable_pointer_type, container_addr);
281 vtable_address = value_as_address (vtable_pointer);
282
283 /* Correct it to point at the start of the virtual table, rather
284 than the address point. */
285 return value_at_lazy (vtable_type,
0963b4bd
MS
286 vtable_address
287 - vtable_address_point_offset (gdbarch));
d48cc9dd
DJ
288}
289
290
7ed49443
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291static struct type *
292gnuv3_rtti_type (struct value *value,
dda83cd7 293 int *full_p, LONGEST *top_p, int *using_enc_p)
7ed49443 294{
ad4820ab 295 struct gdbarch *gdbarch;
df407dfe 296 struct type *values_type = check_typedef (value_type (value));
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297 struct value *vtable;
298 struct minimal_symbol *vtable_symbol;
299 const char *vtable_symbol_name;
300 const char *class_name;
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301 struct type *run_time_type;
302 LONGEST offset_to_top;
e6a959d6 303 const char *atsign;
7ed49443 304
e95a97d4 305 /* We only have RTTI for dynamic class objects. */
78134374 306 if (values_type->code () != TYPE_CODE_STRUCT
e95a97d4 307 || !gnuv3_dynamic_class (values_type))
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308 return NULL;
309
ad4820ab 310 /* Determine architecture. */
50810684 311 gdbarch = get_type_arch (values_type);
7ed49443 312
21cfb3b6
DJ
313 if (using_enc_p)
314 *using_enc_p = 0;
315
5f4ce105 316 vtable = gnuv3_get_vtable (gdbarch, values_type,
d48cc9dd
DJ
317 value_as_address (value_addr (value)));
318 if (vtable == NULL)
319 return NULL;
320
7ed49443
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321 /* Find the linker symbol for this vtable. */
322 vtable_symbol
42ae5230 323 = lookup_minimal_symbol_by_pc (value_address (vtable)
dda83cd7 324 + value_embedded_offset (vtable)).minsym;
7ed49443
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325 if (! vtable_symbol)
326 return NULL;
327
328 /* The symbol's demangled name should be something like "vtable for
329 CLASS", where CLASS is the name of the run-time type of VALUE.
330 If we didn't like this approach, we could instead look in the
331 type_info object itself to get the class name. But this way
332 should work just as well, and doesn't read target memory. */
c9d95fa3 333 vtable_symbol_name = vtable_symbol->demangled_name ();
98081e55 334 if (vtable_symbol_name == NULL
61012eef 335 || !startswith (vtable_symbol_name, "vtable for "))
f773fdbb 336 {
8a3fe4f8 337 warning (_("can't find linker symbol for virtual table for `%s' value"),
0a07729b 338 TYPE_SAFE_NAME (values_type));
f773fdbb 339 if (vtable_symbol_name)
8a3fe4f8 340 warning (_(" found `%s' instead"), vtable_symbol_name);
f773fdbb
JM
341 return NULL;
342 }
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JB
343 class_name = vtable_symbol_name + 11;
344
8de20a37
TT
345 /* Strip off @plt and version suffixes. */
346 atsign = strchr (class_name, '@');
347 if (atsign != NULL)
348 {
349 char *copy;
350
224c3ddb 351 copy = (char *) alloca (atsign - class_name + 1);
8de20a37
TT
352 memcpy (copy, class_name, atsign - class_name);
353 copy[atsign - class_name] = '\0';
354 class_name = copy;
355 }
356
7ed49443 357 /* Try to look up the class name as a type name. */
0963b4bd 358 /* FIXME: chastain/2003-11-26: block=NULL is bogus. See pr gdb/1465. */
362ff856
MC
359 run_time_type = cp_lookup_rtti_type (class_name, NULL);
360 if (run_time_type == NULL)
361 return NULL;
7ed49443
JB
362
363 /* Get the offset from VALUE to the top of the complete object.
364 NOTE: this is the reverse of the meaning of *TOP_P. */
365 offset_to_top
366 = value_as_long (value_field (vtable, vtable_field_offset_to_top));
367
368 if (full_p)
13c3b5f5 369 *full_p = (- offset_to_top == value_embedded_offset (value)
dda83cd7
SM
370 && (TYPE_LENGTH (value_enclosing_type (value))
371 >= TYPE_LENGTH (run_time_type)));
7ed49443
JB
372 if (top_p)
373 *top_p = - offset_to_top;
7ed49443
JB
374 return run_time_type;
375}
376
0d5de010
DJ
377/* Return a function pointer for CONTAINER's VTABLE_INDEX'th virtual
378 function, of type FNTYPE. */
7ed49443 379
0d5de010 380static struct value *
ad4820ab
UW
381gnuv3_get_virtual_fn (struct gdbarch *gdbarch, struct value *container,
382 struct type *fntype, int vtable_index)
0d5de010 383{
d48cc9dd
DJ
384 struct value *vtable, *vfn;
385
386 /* Every class with virtual functions must have a vtable. */
387 vtable = gnuv3_get_vtable (gdbarch, value_type (container),
388 value_as_address (value_addr (container)));
389 gdb_assert (vtable != NULL);
7ed49443
JB
390
391 /* Fetch the appropriate function pointer from the vtable. */
392 vfn = value_subscript (value_field (vtable, vtable_field_virtual_functions),
dda83cd7 393 vtable_index);
7ed49443 394
0d5de010
DJ
395 /* If this architecture uses function descriptors directly in the vtable,
396 then the address of the vtable entry is actually a "function pointer"
397 (i.e. points to the descriptor). We don't need to scale the index
85102364 398 by the size of a function descriptor; GCC does that before outputting
0d5de010 399 debug information. */
ad4820ab 400 if (gdbarch_vtable_function_descriptors (gdbarch))
0d5de010 401 vfn = value_addr (vfn);
7ed49443 402
0d5de010
DJ
403 /* Cast the function pointer to the appropriate type. */
404 vfn = value_cast (lookup_pointer_type (fntype), vfn);
76b79d6e 405
7ed49443
JB
406 return vfn;
407}
408
0d5de010
DJ
409/* GNU v3 implementation of value_virtual_fn_field. See cp-abi.h
410 for a description of the arguments. */
411
412static struct value *
413gnuv3_virtual_fn_field (struct value **value_p,
dda83cd7 414 struct fn_field *f, int j,
0d5de010
DJ
415 struct type *vfn_base, int offset)
416{
417 struct type *values_type = check_typedef (value_type (*value_p));
ad4820ab 418 struct gdbarch *gdbarch;
0d5de010
DJ
419
420 /* Some simple sanity checks. */
78134374 421 if (values_type->code () != TYPE_CODE_STRUCT)
0d5de010
DJ
422 error (_("Only classes can have virtual functions."));
423
ad4820ab 424 /* Determine architecture. */
50810684 425 gdbarch = get_type_arch (values_type);
ad4820ab 426
0d5de010
DJ
427 /* Cast our value to the base class which defines this virtual
428 function. This takes care of any necessary `this'
429 adjustments. */
430 if (vfn_base != values_type)
431 *value_p = value_cast (vfn_base, *value_p);
432
ad4820ab 433 return gnuv3_get_virtual_fn (gdbarch, *value_p, TYPE_FN_FIELD_TYPE (f, j),
0d5de010
DJ
434 TYPE_FN_FIELD_VOFFSET (f, j));
435}
436
1514d34e
DJ
437/* Compute the offset of the baseclass which is
438 the INDEXth baseclass of class TYPE,
439 for value at VALADDR (in host) at ADDRESS (in target).
440 The result is the offset of the baseclass value relative
441 to (the address of)(ARG) + OFFSET.
442
0963b4bd
MS
443 -1 is returned on error. */
444
b9362cc7 445static int
8af8e3bc 446gnuv3_baseclass_offset (struct type *type, int index,
6b850546 447 const bfd_byte *valaddr, LONGEST embedded_offset,
8af8e3bc 448 CORE_ADDR address, const struct value *val)
1514d34e 449{
ad4820ab 450 struct gdbarch *gdbarch;
ad4820ab 451 struct type *ptr_type;
79d5b63a 452 struct value *vtable;
2497b498 453 struct value *vbase_array;
1514d34e 454 long int cur_base_offset, base_offset;
1514d34e 455
ad4820ab 456 /* Determine architecture. */
50810684 457 gdbarch = get_type_arch (type);
ad4820ab
UW
458 ptr_type = builtin_type (gdbarch)->builtin_data_ptr;
459
1514d34e 460 /* If it isn't a virtual base, this is easy. The offset is in the
9c37b5ae
TT
461 type definition. */
462 if (!BASETYPE_VIA_VIRTUAL (type, index))
1514d34e
DJ
463 return TYPE_BASECLASS_BITPOS (type, index) / 8;
464
7d79de9a
TT
465 /* If we have a DWARF expression for the offset, evaluate it. */
466 if (TYPE_FIELD_LOC_KIND (type, index) == FIELD_LOC_KIND_DWARF_BLOCK)
467 {
468 struct dwarf2_property_baton baton;
469 baton.property_type
940da03e 470 = lookup_pointer_type (type->field (index).type ());
7d79de9a
TT
471 baton.locexpr = *TYPE_FIELD_DWARF_BLOCK (type, index);
472
473 struct dynamic_prop prop;
8c2e4e06 474 prop.set_locexpr (&baton);
7d79de9a
TT
475
476 struct property_addr_info addr_stack;
477 addr_stack.type = type;
478 /* Note that we don't set "valaddr" here. Doing so causes
479 regressions. FIXME. */
480 addr_stack.addr = address + embedded_offset;
481 addr_stack.next = nullptr;
482
483 CORE_ADDR result;
484 if (dwarf2_evaluate_property (&prop, nullptr, &addr_stack, &result,
485 true))
486 return (int) (result - addr_stack.addr);
487 }
488
1514d34e
DJ
489 /* To access a virtual base, we need to use the vbase offset stored in
490 our vtable. Recent GCC versions provide this information. If it isn't
491 available, we could get what we needed from RTTI, or from drawing the
492 complete inheritance graph based on the debug info. Neither is
493 worthwhile. */
494 cur_base_offset = TYPE_BASECLASS_BITPOS (type, index) / 8;
ad4820ab 495 if (cur_base_offset >= - vtable_address_point_offset (gdbarch))
8a3fe4f8 496 error (_("Expected a negative vbase offset (old compiler?)"));
1514d34e 497
ad4820ab
UW
498 cur_base_offset = cur_base_offset + vtable_address_point_offset (gdbarch);
499 if ((- cur_base_offset) % TYPE_LENGTH (ptr_type) != 0)
8a3fe4f8 500 error (_("Misaligned vbase offset."));
ad4820ab 501 cur_base_offset = cur_base_offset / ((int) TYPE_LENGTH (ptr_type));
1514d34e 502
8af8e3bc 503 vtable = gnuv3_get_vtable (gdbarch, type, address + embedded_offset);
d48cc9dd 504 gdb_assert (vtable != NULL);
1514d34e 505 vbase_array = value_field (vtable, vtable_field_vcall_and_vbase_offsets);
2497b498 506 base_offset = value_as_long (value_subscript (vbase_array, cur_base_offset));
1514d34e
DJ
507 return base_offset;
508}
7ed49443 509
0d5de010
DJ
510/* Locate a virtual method in DOMAIN or its non-virtual base classes
511 which has virtual table index VOFFSET. The method has an associated
512 "this" adjustment of ADJUSTMENT bytes. */
513
2c0b251b 514static const char *
0d5de010
DJ
515gnuv3_find_method_in (struct type *domain, CORE_ADDR voffset,
516 LONGEST adjustment)
517{
518 int i;
0d5de010
DJ
519
520 /* Search this class first. */
0d5de010
DJ
521 if (adjustment == 0)
522 {
523 int len;
524
525 len = TYPE_NFN_FIELDS (domain);
526 for (i = 0; i < len; i++)
527 {
528 int len2, j;
529 struct fn_field *f;
530
531 f = TYPE_FN_FIELDLIST1 (domain, i);
532 len2 = TYPE_FN_FIELDLIST_LENGTH (domain, i);
533
534 check_stub_method_group (domain, i);
535 for (j = 0; j < len2; j++)
536 if (TYPE_FN_FIELD_VOFFSET (f, j) == voffset)
537 return TYPE_FN_FIELD_PHYSNAME (f, j);
538 }
539 }
540
541 /* Next search non-virtual bases. If it's in a virtual base,
542 we're out of luck. */
543 for (i = 0; i < TYPE_N_BASECLASSES (domain); i++)
544 {
545 int pos;
546 struct type *basetype;
547
548 if (BASETYPE_VIA_VIRTUAL (domain, i))
549 continue;
550
551 pos = TYPE_BASECLASS_BITPOS (domain, i) / 8;
940da03e 552 basetype = domain->field (i).type ();
0d5de010
DJ
553 /* Recurse with a modified adjustment. We don't need to adjust
554 voffset. */
555 if (adjustment >= pos && adjustment < pos + TYPE_LENGTH (basetype))
556 return gnuv3_find_method_in (basetype, voffset, adjustment - pos);
557 }
558
559 return NULL;
560}
561
fead6908
UW
562/* Decode GNU v3 method pointer. */
563
564static int
ad4820ab
UW
565gnuv3_decode_method_ptr (struct gdbarch *gdbarch,
566 const gdb_byte *contents,
fead6908
UW
567 CORE_ADDR *value_p,
568 LONGEST *adjustment_p)
569{
ad4820ab 570 struct type *funcptr_type = builtin_type (gdbarch)->builtin_func_ptr;
ed09d7da 571 struct type *offset_type = vtable_ptrdiff_type (gdbarch);
e17a4113 572 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
fead6908
UW
573 CORE_ADDR ptr_value;
574 LONGEST voffset, adjustment;
575 int vbit;
576
577 /* Extract the pointer to member. The first element is either a pointer
578 or a vtable offset. For pointers, we need to use extract_typed_address
579 to allow the back-end to convert the pointer to a GDB address -- but
580 vtable offsets we must handle as integers. At this point, we do not
581 yet know which case we have, so we extract the value under both
582 interpretations and choose the right one later on. */
583 ptr_value = extract_typed_address (contents, funcptr_type);
e17a4113
UW
584 voffset = extract_signed_integer (contents,
585 TYPE_LENGTH (funcptr_type), byte_order);
fead6908 586 contents += TYPE_LENGTH (funcptr_type);
e17a4113
UW
587 adjustment = extract_signed_integer (contents,
588 TYPE_LENGTH (offset_type), byte_order);
fead6908 589
ad4820ab 590 if (!gdbarch_vbit_in_delta (gdbarch))
fead6908
UW
591 {
592 vbit = voffset & 1;
593 voffset = voffset ^ vbit;
594 }
595 else
596 {
597 vbit = adjustment & 1;
598 adjustment = adjustment >> 1;
599 }
600
601 *value_p = vbit? voffset : ptr_value;
602 *adjustment_p = adjustment;
603 return vbit;
604}
605
0d5de010
DJ
606/* GNU v3 implementation of cplus_print_method_ptr. */
607
608static void
609gnuv3_print_method_ptr (const gdb_byte *contents,
610 struct type *type,
611 struct ui_file *stream)
612{
09e2d7c7
DE
613 struct type *self_type = TYPE_SELF_TYPE (type);
614 struct gdbarch *gdbarch = get_type_arch (self_type);
0d5de010
DJ
615 CORE_ADDR ptr_value;
616 LONGEST adjustment;
0d5de010
DJ
617 int vbit;
618
0d5de010 619 /* Extract the pointer to member. */
ad4820ab 620 vbit = gnuv3_decode_method_ptr (gdbarch, contents, &ptr_value, &adjustment);
0d5de010
DJ
621
622 /* Check for NULL. */
623 if (ptr_value == 0 && vbit == 0)
624 {
625 fprintf_filtered (stream, "NULL");
626 return;
627 }
628
629 /* Search for a virtual method. */
630 if (vbit)
631 {
632 CORE_ADDR voffset;
633 const char *physname;
634
635 /* It's a virtual table offset, maybe in this class. Search
636 for a field with the correct vtable offset. First convert it
637 to an index, as used in TYPE_FN_FIELD_VOFFSET. */
ed09d7da 638 voffset = ptr_value / TYPE_LENGTH (vtable_ptrdiff_type (gdbarch));
0d5de010 639
09e2d7c7 640 physname = gnuv3_find_method_in (self_type, voffset, adjustment);
0d5de010
DJ
641
642 /* If we found a method, print that. We don't bother to disambiguate
643 possible paths to the method based on the adjustment. */
644 if (physname)
645 {
8de20a37
TT
646 char *demangled_name = gdb_demangle (physname,
647 DMGL_ANSI | DMGL_PARAMS);
d8734c88 648
94af9270
KS
649 fprintf_filtered (stream, "&virtual ");
650 if (demangled_name == NULL)
651 fputs_filtered (physname, stream);
652 else
0d5de010 653 {
0d5de010
DJ
654 fputs_filtered (demangled_name, stream);
655 xfree (demangled_name);
0d5de010 656 }
94af9270 657 return;
0d5de010
DJ
658 }
659 }
94af9270
KS
660 else if (ptr_value != 0)
661 {
662 /* Found a non-virtual function: print out the type. */
663 fputs_filtered ("(", stream);
79d43c61 664 c_print_type (type, "", stream, -1, 0, &type_print_raw_options);
94af9270
KS
665 fputs_filtered (") ", stream);
666 }
0d5de010
DJ
667
668 /* We didn't find it; print the raw data. */
669 if (vbit)
670 {
671 fprintf_filtered (stream, "&virtual table offset ");
672 print_longest (stream, 'd', 1, ptr_value);
673 }
674 else
edf0c1b7
TT
675 {
676 struct value_print_options opts;
677
678 get_user_print_options (&opts);
679 print_address_demangle (&opts, gdbarch, ptr_value, stream, demangle);
680 }
0d5de010
DJ
681
682 if (adjustment)
683 {
684 fprintf_filtered (stream, ", this adjustment ");
685 print_longest (stream, 'd', 1, adjustment);
686 }
687}
688
689/* GNU v3 implementation of cplus_method_ptr_size. */
690
691static int
ad4820ab 692gnuv3_method_ptr_size (struct type *type)
0d5de010 693{
561d3825 694 struct gdbarch *gdbarch = get_type_arch (type);
d8734c88 695
ad4820ab 696 return 2 * TYPE_LENGTH (builtin_type (gdbarch)->builtin_data_ptr);
0d5de010
DJ
697}
698
699/* GNU v3 implementation of cplus_make_method_ptr. */
700
701static void
ad4820ab
UW
702gnuv3_make_method_ptr (struct type *type, gdb_byte *contents,
703 CORE_ADDR value, int is_virtual)
0d5de010 704{
561d3825 705 struct gdbarch *gdbarch = get_type_arch (type);
ad4820ab 706 int size = TYPE_LENGTH (builtin_type (gdbarch)->builtin_data_ptr);
34877895 707 enum bfd_endian byte_order = type_byte_order (type);
0d5de010
DJ
708
709 /* FIXME drow/2006-12-24: The adjustment of "this" is currently
710 always zero, since the method pointer is of the correct type.
711 But if the method pointer came from a base class, this is
712 incorrect - it should be the offset to the base. The best
713 fix might be to create the pointer to member pointing at the
714 base class and cast it to the derived class, but that requires
715 support for adjusting pointers to members when casting them -
716 not currently supported by GDB. */
717
ad4820ab 718 if (!gdbarch_vbit_in_delta (gdbarch))
0d5de010 719 {
e17a4113
UW
720 store_unsigned_integer (contents, size, byte_order, value | is_virtual);
721 store_unsigned_integer (contents + size, size, byte_order, 0);
0d5de010
DJ
722 }
723 else
724 {
e17a4113
UW
725 store_unsigned_integer (contents, size, byte_order, value);
726 store_unsigned_integer (contents + size, size, byte_order, is_virtual);
0d5de010
DJ
727 }
728}
729
730/* GNU v3 implementation of cplus_method_ptr_to_value. */
731
732static struct value *
733gnuv3_method_ptr_to_value (struct value **this_p, struct value *method_ptr)
734{
ad4820ab 735 struct gdbarch *gdbarch;
0d5de010
DJ
736 const gdb_byte *contents = value_contents (method_ptr);
737 CORE_ADDR ptr_value;
09e2d7c7 738 struct type *self_type, *final_type, *method_type;
0d5de010 739 LONGEST adjustment;
0d5de010
DJ
740 int vbit;
741
09e2d7c7
DE
742 self_type = TYPE_SELF_TYPE (check_typedef (value_type (method_ptr)));
743 final_type = lookup_pointer_type (self_type);
0d5de010
DJ
744
745 method_type = TYPE_TARGET_TYPE (check_typedef (value_type (method_ptr)));
746
fead6908 747 /* Extract the pointer to member. */
09e2d7c7 748 gdbarch = get_type_arch (self_type);
ad4820ab 749 vbit = gnuv3_decode_method_ptr (gdbarch, contents, &ptr_value, &adjustment);
0d5de010
DJ
750
751 /* First convert THIS to match the containing type of the pointer to
752 member. This cast may adjust the value of THIS. */
753 *this_p = value_cast (final_type, *this_p);
754
755 /* Then apply whatever adjustment is necessary. This creates a somewhat
756 strange pointer: it claims to have type FINAL_TYPE, but in fact it
757 might not be a valid FINAL_TYPE. For instance, it might be a
758 base class of FINAL_TYPE. And if it's not the primary base class,
759 then printing it out as a FINAL_TYPE object would produce some pretty
760 garbage.
761
762 But we don't really know the type of the first argument in
763 METHOD_TYPE either, which is why this happens. We can't
764 dereference this later as a FINAL_TYPE, but once we arrive in the
765 called method we'll have debugging information for the type of
766 "this" - and that'll match the value we produce here.
767
768 You can provoke this case by casting a Base::* to a Derived::*, for
769 instance. */
ad4820ab 770 *this_p = value_cast (builtin_type (gdbarch)->builtin_data_ptr, *this_p);
2497b498 771 *this_p = value_ptradd (*this_p, adjustment);
0d5de010
DJ
772 *this_p = value_cast (final_type, *this_p);
773
774 if (vbit)
775 {
ad4820ab 776 LONGEST voffset;
d8734c88 777
ed09d7da 778 voffset = ptr_value / TYPE_LENGTH (vtable_ptrdiff_type (gdbarch));
ad4820ab
UW
779 return gnuv3_get_virtual_fn (gdbarch, value_ind (*this_p),
780 method_type, voffset);
0d5de010
DJ
781 }
782 else
783 return value_from_pointer (lookup_pointer_type (method_type), ptr_value);
784}
785
c4aeac85
TT
786/* Objects of this type are stored in a hash table and a vector when
787 printing the vtables for a class. */
788
789struct value_and_voffset
790{
791 /* The value representing the object. */
792 struct value *value;
793
794 /* The maximum vtable offset we've found for any object at this
795 offset in the outermost object. */
796 int max_voffset;
797};
798
c4aeac85
TT
799/* Hash function for value_and_voffset. */
800
801static hashval_t
802hash_value_and_voffset (const void *p)
803{
9a3c8263 804 const struct value_and_voffset *o = (const struct value_and_voffset *) p;
c4aeac85
TT
805
806 return value_address (o->value) + value_embedded_offset (o->value);
807}
808
809/* Equality function for value_and_voffset. */
810
811static int
812eq_value_and_voffset (const void *a, const void *b)
813{
9a3c8263
SM
814 const struct value_and_voffset *ova = (const struct value_and_voffset *) a;
815 const struct value_and_voffset *ovb = (const struct value_and_voffset *) b;
c4aeac85
TT
816
817 return (value_address (ova->value) + value_embedded_offset (ova->value)
818 == value_address (ovb->value) + value_embedded_offset (ovb->value));
819}
820
59d3651b 821/* Comparison function for value_and_voffset. */
c4aeac85 822
59d3651b
TT
823static bool
824compare_value_and_voffset (const struct value_and_voffset *va,
825 const struct value_and_voffset *vb)
c4aeac85 826{
59d3651b
TT
827 CORE_ADDR addra = (value_address (va->value)
828 + value_embedded_offset (va->value));
829 CORE_ADDR addrb = (value_address (vb->value)
830 + value_embedded_offset (vb->value));
831
832 return addra < addrb;
c4aeac85
TT
833}
834
835/* A helper function used when printing vtables. This determines the
836 key (most derived) sub-object at each address and also computes the
837 maximum vtable offset seen for the corresponding vtable. Updates
838 OFFSET_HASH and OFFSET_VEC with a new value_and_voffset object, if
839 needed. VALUE is the object to examine. */
840
841static void
842compute_vtable_size (htab_t offset_hash,
59d3651b 843 std::vector<value_and_voffset *> *offset_vec,
c4aeac85
TT
844 struct value *value)
845{
846 int i;
847 struct type *type = check_typedef (value_type (value));
848 void **slot;
849 struct value_and_voffset search_vo, *current_vo;
c4aeac85 850
78134374 851 gdb_assert (type->code () == TYPE_CODE_STRUCT);
5f4ce105 852
c4aeac85
TT
853 /* If the object is not dynamic, then we are done; as it cannot have
854 dynamic base types either. */
855 if (!gnuv3_dynamic_class (type))
856 return;
857
858 /* Update the hash and the vec, if needed. */
859 search_vo.value = value;
860 slot = htab_find_slot (offset_hash, &search_vo, INSERT);
861 if (*slot)
9a3c8263 862 current_vo = (struct value_and_voffset *) *slot;
c4aeac85
TT
863 else
864 {
865 current_vo = XNEW (struct value_and_voffset);
866 current_vo->value = value;
867 current_vo->max_voffset = -1;
868 *slot = current_vo;
59d3651b 869 offset_vec->push_back (current_vo);
c4aeac85
TT
870 }
871
872 /* Update the value_and_voffset object with the highest vtable
873 offset from this class. */
874 for (i = 0; i < TYPE_NFN_FIELDS (type); ++i)
875 {
876 int j;
877 struct fn_field *fn = TYPE_FN_FIELDLIST1 (type, i);
878
879 for (j = 0; j < TYPE_FN_FIELDLIST_LENGTH (type, i); ++j)
880 {
881 if (TYPE_FN_FIELD_VIRTUAL_P (fn, j))
882 {
883 int voffset = TYPE_FN_FIELD_VOFFSET (fn, j);
884
885 if (voffset > current_vo->max_voffset)
886 current_vo->max_voffset = voffset;
887 }
888 }
889 }
890
891 /* Recurse into base classes. */
892 for (i = 0; i < TYPE_N_BASECLASSES (type); ++i)
893 compute_vtable_size (offset_hash, offset_vec, value_field (value, i));
894}
895
896/* Helper for gnuv3_print_vtable that prints a single vtable. */
897
898static void
899print_one_vtable (struct gdbarch *gdbarch, struct value *value,
900 int max_voffset,
901 struct value_print_options *opts)
902{
903 int i;
904 struct type *type = check_typedef (value_type (value));
905 struct value *vtable;
906 CORE_ADDR vt_addr;
907
908 vtable = gnuv3_get_vtable (gdbarch, type,
909 value_address (value)
910 + value_embedded_offset (value));
911 vt_addr = value_address (value_field (vtable,
912 vtable_field_virtual_functions));
913
914 printf_filtered (_("vtable for '%s' @ %s (subobject @ %s):\n"),
915 TYPE_SAFE_NAME (type),
916 paddress (gdbarch, vt_addr),
917 paddress (gdbarch, (value_address (value)
918 + value_embedded_offset (value))));
919
920 for (i = 0; i <= max_voffset; ++i)
921 {
cafe75b0
JK
922 /* Initialize it just to avoid a GCC false warning. */
923 CORE_ADDR addr = 0;
492d29ea 924 int got_error = 0;
c4aeac85 925 struct value *vfn;
c4aeac85
TT
926
927 printf_filtered ("[%d]: ", i);
928
929 vfn = value_subscript (value_field (vtable,
930 vtable_field_virtual_functions),
931 i);
932
933 if (gdbarch_vtable_function_descriptors (gdbarch))
934 vfn = value_addr (vfn);
935
a70b8144 936 try
c4aeac85
TT
937 {
938 addr = value_as_address (vfn);
939 }
230d2906 940 catch (const gdb_exception_error &ex)
492d29ea 941 {
7f6aba03
TT
942 fprintf_styled (gdb_stdout, metadata_style.style (),
943 _("<error: %s>"), ex.what ());
492d29ea
PA
944 got_error = 1;
945 }
492d29ea
PA
946
947 if (!got_error)
edf0c1b7 948 print_function_pointer_address (opts, gdbarch, addr, gdb_stdout);
c4aeac85
TT
949 printf_filtered ("\n");
950 }
951}
952
953/* Implementation of the print_vtable method. */
954
955static void
956gnuv3_print_vtable (struct value *value)
957{
958 struct gdbarch *gdbarch;
959 struct type *type;
960 struct value *vtable;
961 struct value_print_options opts;
59d3651b 962 int count;
c4aeac85
TT
963
964 value = coerce_ref (value);
965 type = check_typedef (value_type (value));
78134374 966 if (type->code () == TYPE_CODE_PTR)
c4aeac85
TT
967 {
968 value = value_ind (value);
969 type = check_typedef (value_type (value));
970 }
971
972 get_user_print_options (&opts);
973
974 /* Respect 'set print object'. */
975 if (opts.objectprint)
976 {
977 value = value_full_object (value, NULL, 0, 0, 0);
978 type = check_typedef (value_type (value));
979 }
980
981 gdbarch = get_type_arch (type);
5f4ce105
DE
982
983 vtable = NULL;
78134374 984 if (type->code () == TYPE_CODE_STRUCT)
5f4ce105
DE
985 vtable = gnuv3_get_vtable (gdbarch, type,
986 value_as_address (value_addr (value)));
c4aeac85
TT
987
988 if (!vtable)
989 {
990 printf_filtered (_("This object does not have a virtual function table\n"));
991 return;
992 }
993
fc4007c9
TT
994 htab_up offset_hash (htab_create_alloc (1, hash_value_and_voffset,
995 eq_value_and_voffset,
996 xfree, xcalloc, xfree));
59d3651b 997 std::vector<value_and_voffset *> result_vec;
c4aeac85 998
fc4007c9 999 compute_vtable_size (offset_hash.get (), &result_vec, value);
59d3651b
TT
1000 std::sort (result_vec.begin (), result_vec.end (),
1001 compare_value_and_voffset);
c4aeac85
TT
1002
1003 count = 0;
59d3651b 1004 for (value_and_voffset *iter : result_vec)
c4aeac85
TT
1005 {
1006 if (iter->max_voffset >= 0)
1007 {
1008 if (count > 0)
1009 printf_filtered ("\n");
1010 print_one_vtable (gdbarch, iter->value, iter->max_voffset, &opts);
1011 ++count;
1012 }
1013 }
c4aeac85
TT
1014}
1015
6e72ca20
TT
1016/* Return a GDB type representing `struct std::type_info', laid out
1017 appropriately for ARCH.
1018
1019 We use this function as the gdbarch per-architecture data
1020 initialization function. */
1021
1022static void *
1023build_std_type_info_type (struct gdbarch *arch)
1024{
1025 struct type *t;
1026 struct field *field_list, *field;
1027 int offset;
1028 struct type *void_ptr_type
1029 = builtin_type (arch)->builtin_data_ptr;
1030 struct type *char_type
1031 = builtin_type (arch)->builtin_char;
1032 struct type *char_ptr_type
1033 = make_pointer_type (make_cv_type (1, 0, char_type, NULL), NULL);
1034
8d749320 1035 field_list = XCNEWVEC (struct field, 2);
6e72ca20
TT
1036 field = &field_list[0];
1037 offset = 0;
1038
1039 /* The vtable. */
1040 FIELD_NAME (*field) = "_vptr.type_info";
5d14b6e5 1041 field->set_type (void_ptr_type);
6e72ca20 1042 SET_FIELD_BITPOS (*field, offset * TARGET_CHAR_BIT);
b6cdac4b 1043 offset += TYPE_LENGTH (field->type ());
6e72ca20
TT
1044 field++;
1045
1046 /* The name. */
1047 FIELD_NAME (*field) = "__name";
5d14b6e5 1048 field->set_type (char_ptr_type);
6e72ca20 1049 SET_FIELD_BITPOS (*field, offset * TARGET_CHAR_BIT);
b6cdac4b 1050 offset += TYPE_LENGTH (field->type ());
6e72ca20
TT
1051 field++;
1052
1053 gdb_assert (field == (field_list + 2));
1054
77b7c781 1055 t = arch_type (arch, TYPE_CODE_STRUCT, offset * TARGET_CHAR_BIT, NULL);
5e33d5f4 1056 t->set_num_fields (field - field_list);
3cabb6b0 1057 t->set_fields (field_list);
d0e39ea2 1058 t->set_name ("gdb_gnu_v3_type_info");
6e72ca20
TT
1059 INIT_CPLUS_SPECIFIC (t);
1060
1061 return t;
1062}
1063
1064/* Implement the 'get_typeid_type' method. */
1065
1066static struct type *
1067gnuv3_get_typeid_type (struct gdbarch *gdbarch)
1068{
1069 struct symbol *typeinfo;
1070 struct type *typeinfo_type;
1071
d12307c1
PMR
1072 typeinfo = lookup_symbol ("std::type_info", NULL, STRUCT_DOMAIN,
1073 NULL).symbol;
6e72ca20 1074 if (typeinfo == NULL)
9a3c8263
SM
1075 typeinfo_type
1076 = (struct type *) gdbarch_data (gdbarch, std_type_info_gdbarch_data);
6e72ca20
TT
1077 else
1078 typeinfo_type = SYMBOL_TYPE (typeinfo);
1079
1080 return typeinfo_type;
1081}
1082
1083/* Implement the 'get_typeid' method. */
1084
1085static struct value *
1086gnuv3_get_typeid (struct value *value)
1087{
1088 struct type *typeinfo_type;
1089 struct type *type;
1090 struct gdbarch *gdbarch;
6e72ca20 1091 struct value *result;
596dc4ad
TT
1092 std::string type_name;
1093 gdb::unique_xmalloc_ptr<char> canonical;
6e72ca20
TT
1094
1095 /* We have to handle values a bit trickily here, to allow this code
1096 to work properly with non_lvalue values that are really just
1097 disguised types. */
1098 if (value_lval_const (value) == lval_memory)
1099 value = coerce_ref (value);
1100
1101 type = check_typedef (value_type (value));
1102
1103 /* In the non_lvalue case, a reference might have slipped through
1104 here. */
78134374 1105 if (type->code () == TYPE_CODE_REF)
6e72ca20
TT
1106 type = check_typedef (TYPE_TARGET_TYPE (type));
1107
1108 /* Ignore top-level cv-qualifiers. */
1109 type = make_cv_type (0, 0, type, NULL);
1110 gdbarch = get_type_arch (type);
1111
fe978cb0 1112 type_name = type_to_string (type);
2f408ecb 1113 if (type_name.empty ())
6e72ca20 1114 error (_("cannot find typeinfo for unnamed type"));
6e72ca20
TT
1115
1116 /* We need to canonicalize the type name here, because we do lookups
1117 using the demangled name, and so we must match the format it
1118 uses. E.g., GDB tends to use "const char *" as a type name, but
1119 the demangler uses "char const *". */
2f408ecb 1120 canonical = cp_canonicalize_string (type_name.c_str ());
596dc4ad
TT
1121 const char *name = (canonical == nullptr
1122 ? type_name.c_str ()
1123 : canonical.get ());
6e72ca20
TT
1124
1125 typeinfo_type = gnuv3_get_typeid_type (gdbarch);
1126
1127 /* We check for lval_memory because in the "typeid (type-id)" case,
1128 the type is passed via a not_lval value object. */
78134374 1129 if (type->code () == TYPE_CODE_STRUCT
6e72ca20
TT
1130 && value_lval_const (value) == lval_memory
1131 && gnuv3_dynamic_class (type))
1132 {
1133 struct value *vtable, *typeinfo_value;
1134 CORE_ADDR address = value_address (value) + value_embedded_offset (value);
1135
1136 vtable = gnuv3_get_vtable (gdbarch, type, address);
1137 if (vtable == NULL)
2f408ecb 1138 error (_("cannot find typeinfo for object of type '%s'"),
596dc4ad 1139 name);
6e72ca20
TT
1140 typeinfo_value = value_field (vtable, vtable_field_type_info);
1141 result = value_ind (value_cast (make_pointer_type (typeinfo_type, NULL),
1142 typeinfo_value));
1143 }
1144 else
1145 {
596dc4ad 1146 std::string sym_name = std::string ("typeinfo for ") + name;
2f408ecb
PA
1147 bound_minimal_symbol minsym
1148 = lookup_minimal_symbol (sym_name.c_str (), NULL, NULL);
6e72ca20 1149
3b7344d5 1150 if (minsym.minsym == NULL)
596dc4ad 1151 error (_("could not find typeinfo symbol for '%s'"), name);
6e72ca20 1152
77e371c0 1153 result = value_at_lazy (typeinfo_type, BMSYMBOL_VALUE_ADDRESS (minsym));
6e72ca20
TT
1154 }
1155
6e72ca20
TT
1156 return result;
1157}
1158
cc16e6c9 1159/* Implement the 'get_typename_from_type_info' method. */
72f1fe8a 1160
2f408ecb 1161static std::string
72f1fe8a
TT
1162gnuv3_get_typename_from_type_info (struct value *type_info_ptr)
1163{
1164 struct gdbarch *gdbarch = get_type_arch (value_type (type_info_ptr));
1165 struct bound_minimal_symbol typeinfo_sym;
1166 CORE_ADDR addr;
1167 const char *symname;
1168 const char *class_name;
1169 const char *atsign;
1170
1171 addr = value_as_address (type_info_ptr);
1172 typeinfo_sym = lookup_minimal_symbol_by_pc (addr);
1173 if (typeinfo_sym.minsym == NULL)
1174 error (_("could not find minimal symbol for typeinfo address %s"),
1175 paddress (gdbarch, addr));
1176
1177#define TYPEINFO_PREFIX "typeinfo for "
1178#define TYPEINFO_PREFIX_LEN (sizeof (TYPEINFO_PREFIX) - 1)
c9d95fa3 1179 symname = typeinfo_sym.minsym->demangled_name ();
72f1fe8a
TT
1180 if (symname == NULL || strncmp (symname, TYPEINFO_PREFIX,
1181 TYPEINFO_PREFIX_LEN))
1182 error (_("typeinfo symbol '%s' has unexpected name"),
c9d95fa3 1183 typeinfo_sym.minsym->linkage_name ());
72f1fe8a
TT
1184 class_name = symname + TYPEINFO_PREFIX_LEN;
1185
1186 /* Strip off @plt and version suffixes. */
1187 atsign = strchr (class_name, '@');
1188 if (atsign != NULL)
2f408ecb
PA
1189 return std::string (class_name, atsign - class_name);
1190 return class_name;
72f1fe8a
TT
1191}
1192
1193/* Implement the 'get_type_from_type_info' method. */
1194
1195static struct type *
1196gnuv3_get_type_from_type_info (struct value *type_info_ptr)
1197{
72f1fe8a
TT
1198 /* We have to parse the type name, since in general there is not a
1199 symbol for a type. This is somewhat bogus since there may be a
1200 mis-parse. Another approach might be to re-use the demangler's
1201 internal form to reconstruct the type somehow. */
2f408ecb
PA
1202 std::string type_name = gnuv3_get_typename_from_type_info (type_info_ptr);
1203 expression_up expr (parse_expression (type_name.c_str ()));
1204 struct value *type_val = evaluate_type (expr.get ());
1205 return value_type (type_val);
72f1fe8a
TT
1206}
1207
b18be20d
DJ
1208/* Determine if we are currently in a C++ thunk. If so, get the address
1209 of the routine we are thunking to and continue to there instead. */
1210
1211static CORE_ADDR
52f729a7 1212gnuv3_skip_trampoline (struct frame_info *frame, CORE_ADDR stop_pc)
b18be20d 1213{
a513d1e8 1214 CORE_ADDR real_stop_pc, method_stop_pc, func_addr;
9970f04b 1215 struct gdbarch *gdbarch = get_frame_arch (frame);
3b7344d5 1216 struct bound_minimal_symbol thunk_sym, fn_sym;
b18be20d 1217 struct obj_section *section;
0d5cff50 1218 const char *thunk_name, *fn_name;
b18be20d 1219
9970f04b 1220 real_stop_pc = gdbarch_skip_trampoline_code (gdbarch, frame, stop_pc);
b18be20d
DJ
1221 if (real_stop_pc == 0)
1222 real_stop_pc = stop_pc;
1223
1224 /* Find the linker symbol for this potential thunk. */
3b7344d5 1225 thunk_sym = lookup_minimal_symbol_by_pc (real_stop_pc);
b18be20d 1226 section = find_pc_section (real_stop_pc);
3b7344d5 1227 if (thunk_sym.minsym == NULL || section == NULL)
b18be20d
DJ
1228 return 0;
1229
1230 /* The symbol's demangled name should be something like "virtual
1231 thunk to FUNCTION", where FUNCTION is the name of the function
1232 being thunked to. */
c9d95fa3 1233 thunk_name = thunk_sym.minsym->demangled_name ();
b18be20d
DJ
1234 if (thunk_name == NULL || strstr (thunk_name, " thunk to ") == NULL)
1235 return 0;
1236
1237 fn_name = strstr (thunk_name, " thunk to ") + strlen (" thunk to ");
1238 fn_sym = lookup_minimal_symbol (fn_name, NULL, section->objfile);
3b7344d5 1239 if (fn_sym.minsym == NULL)
b18be20d
DJ
1240 return 0;
1241
77e371c0 1242 method_stop_pc = BMSYMBOL_VALUE_ADDRESS (fn_sym);
a513d1e8
LM
1243
1244 /* Some targets have minimal symbols pointing to function descriptors
1245 (powerpc 64 for example). Make sure to retrieve the address
1246 of the real function from the function descriptor before passing on
1247 the address to other layers of GDB. */
1248 func_addr = gdbarch_convert_from_func_ptr_addr (gdbarch, method_stop_pc,
8b88a78e 1249 current_top_target ());
a513d1e8
LM
1250 if (func_addr != 0)
1251 method_stop_pc = func_addr;
1252
e76f05fa 1253 real_stop_pc = gdbarch_skip_trampoline_code
9970f04b 1254 (gdbarch, frame, method_stop_pc);
b18be20d
DJ
1255 if (real_stop_pc == 0)
1256 real_stop_pc = method_stop_pc;
1257
1258 return real_stop_pc;
1259}
1260
62bf63d7
TBA
1261/* A member function is in one these states. */
1262
1263enum definition_style
1264{
1265 DOES_NOT_EXIST_IN_SOURCE,
1266 DEFAULTED_INSIDE,
1267 DEFAULTED_OUTSIDE,
1268 DELETED,
1269 EXPLICIT,
1270};
1271
1272/* Return how the given field is defined. */
1273
1274static definition_style
1275get_def_style (struct fn_field *fn, int fieldelem)
1276{
1277 if (TYPE_FN_FIELD_DELETED (fn, fieldelem))
1278 return DELETED;
1279
1280 if (TYPE_FN_FIELD_ARTIFICIAL (fn, fieldelem))
1281 return DOES_NOT_EXIST_IN_SOURCE;
1282
1283 switch (TYPE_FN_FIELD_DEFAULTED (fn, fieldelem))
1284 {
1285 case DW_DEFAULTED_no:
1286 return EXPLICIT;
1287 case DW_DEFAULTED_in_class:
1288 return DEFAULTED_INSIDE;
1289 case DW_DEFAULTED_out_of_class:
1290 return DEFAULTED_OUTSIDE;
1291 default:
1292 break;
1293 }
1294
1295 return EXPLICIT;
1296}
1297
1298/* Helper functions to determine whether the given definition style
1299 denotes that the definition is user-provided or implicit.
1300 Being defaulted outside the class decl counts as an explicit
1301 user-definition, while being defaulted inside is implicit. */
1302
1303static bool
1304is_user_provided_def (definition_style def)
1305{
1306 return def == EXPLICIT || def == DEFAULTED_OUTSIDE;
1307}
1308
1309static bool
1310is_implicit_def (definition_style def)
1311{
1312 return def == DOES_NOT_EXIST_IN_SOURCE || def == DEFAULTED_INSIDE;
1313}
1314
1315/* Helper function to decide if METHOD_TYPE is a copy/move
1316 constructor type for CLASS_TYPE. EXPECTED is the expected
1317 type code for the "right-hand-side" argument.
1318 This function is supposed to be used by the IS_COPY_CONSTRUCTOR_TYPE
1319 and IS_MOVE_CONSTRUCTOR_TYPE functions below. Normally, you should
1320 not need to call this directly. */
1321
1322static bool
1323is_copy_or_move_constructor_type (struct type *class_type,
1324 struct type *method_type,
1325 type_code expected)
1326{
1327 /* The method should take at least two arguments... */
1f704f76 1328 if (method_type->num_fields () < 2)
62bf63d7
TBA
1329 return false;
1330
1331 /* ...and the second argument should be the same as the class
1332 type, with the expected type code... */
940da03e 1333 struct type *arg_type = method_type->field (1).type ();
62bf63d7 1334
78134374 1335 if (arg_type->code () != expected)
62bf63d7
TBA
1336 return false;
1337
1338 struct type *target = check_typedef (TYPE_TARGET_TYPE (arg_type));
1339 if (!(class_types_same_p (target, class_type)))
1340 return false;
1341
1342 /* ...and if any of the remaining arguments don't have a default value
1343 then this is not a copy or move constructor, but just a
1344 constructor. */
1f704f76 1345 for (int i = 2; i < method_type->num_fields (); i++)
62bf63d7 1346 {
940da03e 1347 arg_type = method_type->field (i).type ();
62bf63d7
TBA
1348 /* FIXME aktemur/2019-10-31: As of this date, neither
1349 clang++-7.0.0 nor g++-8.2.0 produce a DW_AT_default_value
1350 attribute. GDB is also not set to read this attribute, yet.
1351 Hence, we immediately return false if there are more than
1352 2 parameters.
1353 GCC bug link:
1354 https://gcc.gnu.org/bugzilla/show_bug.cgi?id=42959
1355 */
1356 return false;
1357 }
1358
1359 return true;
1360}
1361
1362/* Return true if METHOD_TYPE is a copy ctor type for CLASS_TYPE. */
1363
1364static bool
1365is_copy_constructor_type (struct type *class_type,
1366 struct type *method_type)
1367{
1368 return is_copy_or_move_constructor_type (class_type, method_type,
1369 TYPE_CODE_REF);
1370}
1371
1372/* Return true if METHOD_TYPE is a move ctor type for CLASS_TYPE. */
1373
1374static bool
1375is_move_constructor_type (struct type *class_type,
1376 struct type *method_type)
1377{
1378 return is_copy_or_move_constructor_type (class_type, method_type,
1379 TYPE_CODE_RVALUE_REF);
1380}
1381
9d084466 1382/* Return pass-by-reference information for the given TYPE.
41f1b697
DJ
1383
1384 The rule in the v3 ABI document comes from section 3.1.1. If the
1385 type has a non-trivial copy constructor or destructor, then the
1386 caller must make a copy (by calling the copy constructor if there
1387 is one or perform the copy itself otherwise), pass the address of
1388 the copy, and then destroy the temporary (if necessary).
1389
62bf63d7 1390 For return values with non-trivial copy/move constructors or
41f1b697
DJ
1391 destructors, space will be allocated in the caller, and a pointer
1392 will be passed as the first argument (preceding "this").
1393
1394 We don't have a bulletproof mechanism for determining whether a
62bf63d7
TBA
1395 constructor or destructor is trivial. For GCC and DWARF5 debug
1396 information, we can check the calling_convention attribute,
1397 the 'artificial' flag, the 'defaulted' attribute, and the
1398 'deleted' attribute. */
9d084466
TBA
1399
1400static struct language_pass_by_ref_info
41f1b697
DJ
1401gnuv3_pass_by_reference (struct type *type)
1402{
1403 int fieldnum, fieldelem;
1404
f168693b 1405 type = check_typedef (type);
41f1b697 1406
9d084466 1407 /* Start with the default values. */
48448202 1408 struct language_pass_by_ref_info info;
9d084466 1409
62bf63d7
TBA
1410 bool has_cc_attr = false;
1411 bool is_pass_by_value = false;
1412 bool is_dynamic = false;
1413 definition_style cctor_def = DOES_NOT_EXIST_IN_SOURCE;
1414 definition_style dtor_def = DOES_NOT_EXIST_IN_SOURCE;
1415 definition_style mctor_def = DOES_NOT_EXIST_IN_SOURCE;
9d084466 1416
41f1b697 1417 /* We're only interested in things that can have methods. */
78134374
SM
1418 if (type->code () != TYPE_CODE_STRUCT
1419 && type->code () != TYPE_CODE_UNION)
9d084466 1420 return info;
41f1b697 1421
62bf63d7
TBA
1422 /* The compiler may have emitted the calling convention attribute.
1423 Note: GCC does not produce this attribute as of version 9.2.1.
1424 Bug link: https://gcc.gnu.org/bugzilla/show_bug.cgi?id=92418 */
1425 if (TYPE_CPLUS_CALLING_CONVENTION (type) == DW_CC_pass_by_value)
1426 {
1427 has_cc_attr = true;
1428 is_pass_by_value = true;
1429 /* Do not return immediately. We have to find out if this type
1430 is copy_constructible and destructible. */
1431 }
1432
1433 if (TYPE_CPLUS_CALLING_CONVENTION (type) == DW_CC_pass_by_reference)
1434 {
1435 has_cc_attr = true;
1436 is_pass_by_value = false;
1437 }
1438
ebb8ece2
SC
1439 /* A dynamic class has a non-trivial copy constructor.
1440 See c++98 section 12.8 Copying class objects [class.copy]. */
1441 if (gnuv3_dynamic_class (type))
62bf63d7 1442 is_dynamic = true;
ebb8ece2 1443
41f1b697
DJ
1444 for (fieldnum = 0; fieldnum < TYPE_NFN_FIELDS (type); fieldnum++)
1445 for (fieldelem = 0; fieldelem < TYPE_FN_FIELDLIST_LENGTH (type, fieldnum);
1446 fieldelem++)
1447 {
1448 struct fn_field *fn = TYPE_FN_FIELDLIST1 (type, fieldnum);
0d5cff50 1449 const char *name = TYPE_FN_FIELDLIST_NAME (type, fieldnum);
41f1b697
DJ
1450 struct type *fieldtype = TYPE_FN_FIELD_TYPE (fn, fieldelem);
1451
41f1b697 1452 if (name[0] == '~')
9d084466 1453 {
62bf63d7
TBA
1454 /* We've found a destructor.
1455 There should be at most one dtor definition. */
1456 gdb_assert (dtor_def == DOES_NOT_EXIST_IN_SOURCE);
1457 dtor_def = get_def_style (fn, fieldelem);
9d084466 1458 }
62bf63d7
TBA
1459 else if (is_constructor_name (TYPE_FN_FIELD_PHYSNAME (fn, fieldelem))
1460 || TYPE_FN_FIELD_CONSTRUCTOR (fn, fieldelem))
82c48ac7 1461 {
62bf63d7
TBA
1462 /* FIXME drow/2007-09-23: We could do this using the name of
1463 the method and the name of the class instead of dealing
1464 with the mangled name. We don't have a convenient function
1465 to strip off both leading scope qualifiers and trailing
1466 template arguments yet. */
1467 if (is_copy_constructor_type (type, fieldtype))
1468 {
1469 /* There may be more than one cctors. E.g.: one that
1470 take a const parameter and another that takes a
1471 non-const parameter. Such as:
1472
1473 class K {
1474 K (const K &k)...
1475 K (K &k)...
1476 };
1477
1478 It is sufficient for the type to be non-trivial
1479 even only one of the cctors is explicit.
1480 Therefore, update the cctor_def value in the
1481 implicit -> explicit direction, not backwards. */
1482
1483 if (is_implicit_def (cctor_def))
1484 cctor_def = get_def_style (fn, fieldelem);
1485 }
1486 else if (is_move_constructor_type (type, fieldtype))
3433cfa5 1487 {
62bf63d7
TBA
1488 /* Again, there may be multiple move ctors. Update the
1489 mctor_def value if we found an explicit def and the
1490 existing one is not explicit. Otherwise retain the
1491 existing value. */
1492 if (is_implicit_def (mctor_def))
1493 mctor_def = get_def_style (fn, fieldelem);
3433cfa5 1494 }
82c48ac7 1495 }
41f1b697
DJ
1496 }
1497
62bf63d7
TBA
1498 bool cctor_implicitly_deleted
1499 = (mctor_def != DOES_NOT_EXIST_IN_SOURCE
1500 && cctor_def == DOES_NOT_EXIST_IN_SOURCE);
1501
1502 bool cctor_explicitly_deleted = (cctor_def == DELETED);
1503
1504 if (cctor_implicitly_deleted || cctor_explicitly_deleted)
1505 info.copy_constructible = false;
1506
1507 if (dtor_def == DELETED)
1508 info.destructible = false;
1509
1510 info.trivially_destructible = is_implicit_def (dtor_def);
1511
1512 info.trivially_copy_constructible
1513 = (is_implicit_def (cctor_def)
1514 && !is_dynamic);
1515
1516 info.trivially_copyable
1517 = (info.trivially_copy_constructible
1518 && info.trivially_destructible
1519 && !is_user_provided_def (mctor_def));
1520
41f1b697
DJ
1521 /* Even if all the constructors and destructors were artificial, one
1522 of them may have invoked a non-artificial constructor or
1523 destructor in a base class. If any base class needs to be passed
1524 by reference, so does this class. Similarly for members, which
1525 are constructed whenever this class is. We do not need to worry
1526 about recursive loops here, since we are only looking at members
bceffbf3 1527 of complete class type. Also ignore any static members. */
1f704f76 1528 for (fieldnum = 0; fieldnum < type->num_fields (); fieldnum++)
ceacbf6e 1529 if (!field_is_static (&type->field (fieldnum)))
9d084466 1530 {
940da03e 1531 struct type *field_type = type->field (fieldnum).type ();
62bf63d7
TBA
1532
1533 /* For arrays, make the decision based on the element type. */
78134374 1534 if (field_type->code () == TYPE_CODE_ARRAY)
62bf63d7
TBA
1535 field_type = check_typedef (TYPE_TARGET_TYPE (field_type));
1536
9d084466 1537 struct language_pass_by_ref_info field_info
62bf63d7
TBA
1538 = gnuv3_pass_by_reference (field_type);
1539
1540 if (!field_info.copy_constructible)
1541 info.copy_constructible = false;
1542 if (!field_info.destructible)
1543 info.destructible = false;
9d084466 1544 if (!field_info.trivially_copyable)
62bf63d7
TBA
1545 info.trivially_copyable = false;
1546 if (!field_info.trivially_copy_constructible)
1547 info.trivially_copy_constructible = false;
1548 if (!field_info.trivially_destructible)
1549 info.trivially_destructible = false;
9d084466 1550 }
41f1b697 1551
62bf63d7
TBA
1552 /* Consistency check. */
1553 if (has_cc_attr && info.trivially_copyable != is_pass_by_value)
1554 {
1555 /* DWARF CC attribute is not the same as the inferred value;
1556 use the DWARF attribute. */
1557 info.trivially_copyable = is_pass_by_value;
1558 }
1559
9d084466 1560 return info;
41f1b697
DJ
1561}
1562
7ed49443
JB
1563static void
1564init_gnuv3_ops (void)
1565{
0963b4bd
MS
1566 vtable_type_gdbarch_data
1567 = gdbarch_data_register_post_init (build_gdb_vtable_type);
6e72ca20
TT
1568 std_type_info_gdbarch_data
1569 = gdbarch_data_register_post_init (build_std_type_info_type);
7ed49443
JB
1570
1571 gnu_v3_abi_ops.shortname = "gnu-v3";
1572 gnu_v3_abi_ops.longname = "GNU G++ Version 3 ABI";
1573 gnu_v3_abi_ops.doc = "G++ Version 3 ABI";
358777b0
EZ
1574 gnu_v3_abi_ops.is_destructor_name =
1575 (enum dtor_kinds (*) (const char *))is_gnu_v3_mangled_dtor;
1576 gnu_v3_abi_ops.is_constructor_name =
1577 (enum ctor_kinds (*) (const char *))is_gnu_v3_mangled_ctor;
7ed49443
JB
1578 gnu_v3_abi_ops.is_vtable_name = gnuv3_is_vtable_name;
1579 gnu_v3_abi_ops.is_operator_name = gnuv3_is_operator_name;
1580 gnu_v3_abi_ops.rtti_type = gnuv3_rtti_type;
1581 gnu_v3_abi_ops.virtual_fn_field = gnuv3_virtual_fn_field;
1514d34e 1582 gnu_v3_abi_ops.baseclass_offset = gnuv3_baseclass_offset;
0d5de010
DJ
1583 gnu_v3_abi_ops.print_method_ptr = gnuv3_print_method_ptr;
1584 gnu_v3_abi_ops.method_ptr_size = gnuv3_method_ptr_size;
1585 gnu_v3_abi_ops.make_method_ptr = gnuv3_make_method_ptr;
1586 gnu_v3_abi_ops.method_ptr_to_value = gnuv3_method_ptr_to_value;
c4aeac85 1587 gnu_v3_abi_ops.print_vtable = gnuv3_print_vtable;
6e72ca20
TT
1588 gnu_v3_abi_ops.get_typeid = gnuv3_get_typeid;
1589 gnu_v3_abi_ops.get_typeid_type = gnuv3_get_typeid_type;
72f1fe8a 1590 gnu_v3_abi_ops.get_type_from_type_info = gnuv3_get_type_from_type_info;
cc16e6c9
TT
1591 gnu_v3_abi_ops.get_typename_from_type_info
1592 = gnuv3_get_typename_from_type_info;
b18be20d 1593 gnu_v3_abi_ops.skip_trampoline = gnuv3_skip_trampoline;
41f1b697 1594 gnu_v3_abi_ops.pass_by_reference = gnuv3_pass_by_reference;
7ed49443
JB
1595}
1596
6c265988 1597void _initialize_gnu_v3_abi ();
7ed49443 1598void
6c265988 1599_initialize_gnu_v3_abi ()
7ed49443
JB
1600{
1601 init_gnuv3_ops ();
1602
fe1f4a5e 1603 register_cp_abi (&gnu_v3_abi_ops);
1605ef26 1604 set_cp_abi_as_auto_default (gnu_v3_abi_ops.shortname);
7ed49443 1605}
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