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1 /* Internal type definitions for GDB.
2
3 Copyright (C) 1992, 1993, 1994, 1995, 1996, 1997, 1998, 1999, 2000, 2001,
4 2002, 2003, 2004, 2006, 2007, 2008 Free Software Foundation, Inc.
5
6 Contributed by Cygnus Support, using pieces from other GDB modules.
7
8 This file is part of GDB.
9
10 This program is free software; you can redistribute it and/or modify
11 it under the terms of the GNU General Public License as published by
12 the Free Software Foundation; either version 3 of the License, or
13 (at your option) any later version.
14
15 This program is distributed in the hope that it will be useful,
16 but WITHOUT ANY WARRANTY; without even the implied warranty of
17 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
18 GNU General Public License for more details.
19
20 You should have received a copy of the GNU General Public License
21 along with this program. If not, see <http://www.gnu.org/licenses/>. */
22
23 #if !defined (GDBTYPES_H)
24 #define GDBTYPES_H 1
25
26 #include "hashtab.h"
27
28 /* Forward declarations for prototypes. */
29 struct field;
30 struct block;
31
32 /* Some macros for char-based bitfields. */
33
34 #define B_SET(a,x) ((a)[(x)>>3] |= (1 << ((x)&7)))
35 #define B_CLR(a,x) ((a)[(x)>>3] &= ~(1 << ((x)&7)))
36 #define B_TST(a,x) ((a)[(x)>>3] & (1 << ((x)&7)))
37 #define B_TYPE unsigned char
38 #define B_BYTES(x) ( 1 + ((x)>>3) )
39 #define B_CLRALL(a,x) memset ((a), 0, B_BYTES(x))
40
41 /* Different kinds of data types are distinguished by the `code' field. */
42
43 enum type_code
44 {
45 TYPE_CODE_UNDEF, /* Not used; catches errors */
46 TYPE_CODE_PTR, /* Pointer type */
47
48 /* Array type with lower & upper bounds.
49
50 Regardless of the language, GDB represents multidimensional
51 array types the way C does: as arrays of arrays. So an
52 instance of a GDB array type T can always be seen as a series
53 of instances of TYPE_TARGET_TYPE (T) laid out sequentially in
54 memory.
55
56 Row-major languages like C lay out multi-dimensional arrays so
57 that incrementing the rightmost index in a subscripting
58 expression results in the smallest change in the address of the
59 element referred to. Column-major languages like Fortran lay
60 them out so that incrementing the leftmost index results in the
61 smallest change.
62
63 This means that, in column-major languages, working our way
64 from type to target type corresponds to working through indices
65 from right to left, not left to right. */
66 TYPE_CODE_ARRAY,
67
68 TYPE_CODE_STRUCT, /* C struct or Pascal record */
69 TYPE_CODE_UNION, /* C union or Pascal variant part */
70 TYPE_CODE_ENUM, /* Enumeration type */
71 TYPE_CODE_FLAGS, /* Bit flags type */
72 TYPE_CODE_FUNC, /* Function type */
73 TYPE_CODE_INT, /* Integer type */
74
75 /* Floating type. This is *NOT* a complex type. Beware, there are parts
76 of GDB which bogusly assume that TYPE_CODE_FLT can mean complex. */
77 TYPE_CODE_FLT,
78
79 /* Void type. The length field specifies the length (probably always
80 one) which is used in pointer arithmetic involving pointers to
81 this type, but actually dereferencing such a pointer is invalid;
82 a void type has no length and no actual representation in memory
83 or registers. A pointer to a void type is a generic pointer. */
84 TYPE_CODE_VOID,
85
86 TYPE_CODE_SET, /* Pascal sets */
87 TYPE_CODE_RANGE, /* Range (integers within spec'd bounds) */
88
89 /* A string type which is like an array of character but prints
90 differently (at least for (the deleted) CHILL). It does not
91 contain a length field as Pascal strings (for many Pascals,
92 anyway) do; if we want to deal with such strings, we should use
93 a new type code. */
94 TYPE_CODE_STRING,
95
96 /* String of bits; like TYPE_CODE_SET but prints differently (at
97 least for (the deleted) CHILL). */
98 TYPE_CODE_BITSTRING,
99
100 /* Unknown type. The length field is valid if we were able to
101 deduce that much about the type, or 0 if we don't even know that. */
102 TYPE_CODE_ERROR,
103
104 /* C++ */
105 TYPE_CODE_METHOD, /* Method type */
106
107 /* Pointer-to-member-function type. This describes how to access a
108 particular member function of a class (possibly a virtual
109 member function). The representation may vary between different
110 C++ ABIs. */
111 TYPE_CODE_METHODPTR,
112
113 /* Pointer-to-member type. This is the offset within a class to some
114 particular data member. The only currently supported representation
115 uses an unbiased offset, with -1 representing NULL; this is used
116 by the Itanium C++ ABI (used by GCC on all platforms). */
117 TYPE_CODE_MEMBERPTR,
118
119 TYPE_CODE_REF, /* C++ Reference types */
120
121 TYPE_CODE_CHAR, /* *real* character type */
122
123 /* Boolean type. 0 is false, 1 is true, and other values are non-boolean
124 (e.g. FORTRAN "logical" used as unsigned int). */
125 TYPE_CODE_BOOL,
126
127 /* Fortran */
128 TYPE_CODE_COMPLEX, /* Complex float */
129
130 TYPE_CODE_TYPEDEF,
131 TYPE_CODE_TEMPLATE, /* C++ template */
132 TYPE_CODE_TEMPLATE_ARG, /* C++ template arg */
133
134 TYPE_CODE_NAMESPACE, /* C++ namespace. */
135
136 TYPE_CODE_DECFLOAT /* Decimal floating point. */
137 };
138
139 /* For now allow source to use TYPE_CODE_CLASS for C++ classes, as an
140 alias for TYPE_CODE_STRUCT. This is for DWARF, which has a distinct
141 "class" attribute. Perhaps we should actually have a separate TYPE_CODE
142 so that we can print "class" or "struct" depending on what the debug
143 info said. It's not clear we should bother. */
144
145 #define TYPE_CODE_CLASS TYPE_CODE_STRUCT
146
147 /* Some bits for the type's flags word, and macros to test them. */
148
149 /* Unsigned integer type. If this is not set for a TYPE_CODE_INT, the
150 type is signed (unless TYPE_FLAG_NOSIGN (below) is set). */
151
152 #define TYPE_FLAG_UNSIGNED (1 << 0)
153 #define TYPE_UNSIGNED(t) (TYPE_FLAGS (t) & TYPE_FLAG_UNSIGNED)
154
155 /* No sign for this type. In C++, "char", "signed char", and "unsigned
156 char" are distinct types; so we need an extra flag to indicate the
157 absence of a sign! */
158
159 #define TYPE_FLAG_NOSIGN (1 << 1)
160 #define TYPE_NOSIGN(t) (TYPE_FLAGS (t) & TYPE_FLAG_NOSIGN)
161
162 /* This appears in a type's flags word if it is a stub type (e.g., if
163 someone referenced a type that wasn't defined in a source file
164 via (struct sir_not_appearing_in_this_film *)). */
165
166 #define TYPE_FLAG_STUB (1 << 2)
167 #define TYPE_STUB(t) (TYPE_FLAGS (t) & TYPE_FLAG_STUB)
168
169 /* The target type of this type is a stub type, and this type needs to
170 be updated if it gets un-stubbed in check_typedef.
171 Used for arrays and ranges, in which TYPE_LENGTH of the array/range
172 gets set based on the TYPE_LENGTH of the target type.
173 Also, set for TYPE_CODE_TYPEDEF. */
174
175 #define TYPE_FLAG_TARGET_STUB (1 << 3)
176 #define TYPE_TARGET_STUB(t) (TYPE_FLAGS (t) & TYPE_FLAG_TARGET_STUB)
177
178 /* Static type. If this is set, the corresponding type had
179 * a static modifier.
180 * Note: This may be unnecessary, since static data members
181 * are indicated by other means (bitpos == -1)
182 */
183
184 #define TYPE_FLAG_STATIC (1 << 4)
185 #define TYPE_STATIC(t) (TYPE_FLAGS (t) & TYPE_FLAG_STATIC)
186
187 /* Constant type. If this is set, the corresponding type has a
188 * const modifier.
189 */
190
191 #define TYPE_FLAG_CONST (1 << 5)
192 #define TYPE_CONST(t) (TYPE_INSTANCE_FLAGS (t) & TYPE_FLAG_CONST)
193
194 /* Volatile type. If this is set, the corresponding type has a
195 * volatile modifier.
196 */
197
198 #define TYPE_FLAG_VOLATILE (1 << 6)
199 #define TYPE_VOLATILE(t) (TYPE_INSTANCE_FLAGS (t) & TYPE_FLAG_VOLATILE)
200
201
202 /* This is a function type which appears to have a prototype. We need this
203 for function calls in order to tell us if it's necessary to coerce the args,
204 or to just do the standard conversions. This is used with a short field. */
205
206 #define TYPE_FLAG_PROTOTYPED (1 << 7)
207 #define TYPE_PROTOTYPED(t) (TYPE_FLAGS (t) & TYPE_FLAG_PROTOTYPED)
208
209 /* This flag is used to indicate that processing for this type
210 is incomplete.
211
212 (Mostly intended for HP platforms, where class methods, for
213 instance, can be encountered before their classes in the debug
214 info; the incomplete type has to be marked so that the class and
215 the method can be assigned correct types.) */
216
217 #define TYPE_FLAG_INCOMPLETE (1 << 8)
218 #define TYPE_INCOMPLETE(t) (TYPE_FLAGS (t) & TYPE_FLAG_INCOMPLETE)
219
220 /* Instruction-space delimited type. This is for Harvard architectures
221 which have separate instruction and data address spaces (and perhaps
222 others).
223
224 GDB usually defines a flat address space that is a superset of the
225 architecture's two (or more) address spaces, but this is an extension
226 of the architecture's model.
227
228 If TYPE_FLAG_INST is set, an object of the corresponding type
229 resides in instruction memory, even if its address (in the extended
230 flat address space) does not reflect this.
231
232 Similarly, if TYPE_FLAG_DATA is set, then an object of the
233 corresponding type resides in the data memory space, even if
234 this is not indicated by its (flat address space) address.
235
236 If neither flag is set, the default space for functions / methods
237 is instruction space, and for data objects is data memory. */
238
239 #define TYPE_FLAG_CODE_SPACE (1 << 9)
240 #define TYPE_CODE_SPACE(t) (TYPE_INSTANCE_FLAGS (t) & TYPE_FLAG_CODE_SPACE)
241
242 #define TYPE_FLAG_DATA_SPACE (1 << 10)
243 #define TYPE_DATA_SPACE(t) (TYPE_INSTANCE_FLAGS (t) & TYPE_FLAG_DATA_SPACE)
244
245 /* FIXME drow/2002-06-03: Only used for methods, but applies as well
246 to functions. */
247
248 #define TYPE_FLAG_VARARGS (1 << 11)
249 #define TYPE_VARARGS(t) (TYPE_FLAGS (t) & TYPE_FLAG_VARARGS)
250
251 /* Identify a vector type. Gcc is handling this by adding an extra
252 attribute to the array type. We slurp that in as a new flag of a
253 type. This is used only in dwarf2read.c. */
254 #define TYPE_FLAG_VECTOR (1 << 12)
255 #define TYPE_VECTOR(t) (TYPE_FLAGS (t) & TYPE_FLAG_VECTOR)
256
257 /* Address class flags. Some environments provide for pointers whose
258 size is different from that of a normal pointer or address types
259 where the bits are interpreted differently than normal addresses. The
260 TYPE_FLAG_ADDRESS_CLASS_n flags may be used in target specific
261 ways to represent these different types of address classes. */
262 #define TYPE_FLAG_ADDRESS_CLASS_1 (1 << 13)
263 #define TYPE_ADDRESS_CLASS_1(t) (TYPE_INSTANCE_FLAGS(t) \
264 & TYPE_FLAG_ADDRESS_CLASS_1)
265 #define TYPE_FLAG_ADDRESS_CLASS_2 (1 << 14)
266 #define TYPE_ADDRESS_CLASS_2(t) (TYPE_INSTANCE_FLAGS(t) \
267 & TYPE_FLAG_ADDRESS_CLASS_2)
268 #define TYPE_FLAG_ADDRESS_CLASS_ALL (TYPE_FLAG_ADDRESS_CLASS_1 \
269 | TYPE_FLAG_ADDRESS_CLASS_2)
270 #define TYPE_ADDRESS_CLASS_ALL(t) (TYPE_INSTANCE_FLAGS(t) \
271 & TYPE_FLAG_ADDRESS_CLASS_ALL)
272
273 /* The debugging formats (especially STABS) do not contain enough information
274 to represent all Ada types---especially those whose size depends on
275 dynamic quantities. Therefore, the GNAT Ada compiler includes
276 extra information in the form of additional type definitions
277 connected by naming conventions. This flag indicates that the
278 type is an ordinary (unencoded) GDB type that has been created from
279 the necessary run-time information, and does not need further
280 interpretation. Optionally marks ordinary, fixed-size GDB type. */
281
282 #define TYPE_FLAG_FIXED_INSTANCE (1 << 15)
283
284 /* This debug target supports TYPE_STUB(t). In the unsupported case we have to
285 rely on NFIELDS to be zero etc., see TYPE_IS_OPAQUE ().
286 TYPE_STUB(t) with !TYPE_STUB_SUPPORTED(t) may exist if we only guessed
287 the TYPE_STUB(t) value (see dwarfread.c). */
288
289 #define TYPE_FLAG_STUB_SUPPORTED (1 << 16)
290 #define TYPE_STUB_SUPPORTED(t) (TYPE_FLAGS (t) & TYPE_FLAG_STUB_SUPPORTED)
291
292 /* Not textual. By default, GDB treats all single byte integers as
293 characters (or elements of strings) unless this flag is set. */
294
295 #define TYPE_FLAG_NOTTEXT (1 << 17)
296 #define TYPE_NOTTEXT(t) (TYPE_FLAGS (t) & TYPE_FLAG_NOTTEXT)
297
298 /* Array bound type. */
299 enum array_bound_type
300 {
301 BOUND_SIMPLE = 0,
302 BOUND_BY_VALUE_IN_REG,
303 BOUND_BY_REF_IN_REG,
304 BOUND_BY_VALUE_ON_STACK,
305 BOUND_BY_REF_ON_STACK,
306 BOUND_CANNOT_BE_DETERMINED
307 };
308
309 /* This structure is space-critical.
310 Its layout has been tweaked to reduce the space used. */
311
312 struct main_type
313 {
314 /* Code for kind of type */
315
316 ENUM_BITFIELD(type_code) code : 8;
317
318 /* Array bounds. These fields appear at this location because
319 they pack nicely here. */
320
321 ENUM_BITFIELD(array_bound_type) upper_bound_type : 4;
322 ENUM_BITFIELD(array_bound_type) lower_bound_type : 4;
323
324 /* Name of this type, or NULL if none.
325
326 This is used for printing only, except by poorly designed C++ code.
327 For looking up a name, look for a symbol in the VAR_DOMAIN. */
328
329 char *name;
330
331 /* Tag name for this type, or NULL if none. This means that the
332 name of the type consists of a keyword followed by the tag name.
333 Which keyword is determined by the type code ("struct" for
334 TYPE_CODE_STRUCT, etc.). As far as I know C/C++ are the only languages
335 with this feature.
336
337 This is used for printing only, except by poorly designed C++ code.
338 For looking up a name, look for a symbol in the STRUCT_DOMAIN.
339 One more legitimate use is that if TYPE_FLAG_STUB is set, this is
340 the name to use to look for definitions in other files. */
341
342 char *tag_name;
343
344 /* Every type is now associated with a particular objfile, and the
345 type is allocated on the objfile_obstack for that objfile. One problem
346 however, is that there are times when gdb allocates new types while
347 it is not in the process of reading symbols from a particular objfile.
348 Fortunately, these happen when the type being created is a derived
349 type of an existing type, such as in lookup_pointer_type(). So
350 we can just allocate the new type using the same objfile as the
351 existing type, but to do this we need a backpointer to the objfile
352 from the existing type. Yes this is somewhat ugly, but without
353 major overhaul of the internal type system, it can't be avoided
354 for now. */
355
356 struct objfile *objfile;
357
358 /* For a pointer type, describes the type of object pointed to.
359 For an array type, describes the type of the elements.
360 For a function or method type, describes the type of the return value.
361 For a range type, describes the type of the full range.
362 For a complex type, describes the type of each coordinate.
363 Unused otherwise. */
364
365 struct type *target_type;
366
367 /* Flags about this type. */
368
369 int flags;
370
371 /* Number of fields described for this type */
372
373 short nfields;
374
375 /* Field number of the virtual function table pointer in
376 VPTR_BASETYPE. If -1, we were unable to find the virtual
377 function table pointer in initial symbol reading, and
378 fill_in_vptr_fieldno should be called to find it if possible.
379
380 Unused if this type does not have virtual functions. */
381
382 short vptr_fieldno;
383
384 /* For structure and union types, a description of each field.
385 For set and pascal array types, there is one "field",
386 whose type is the domain type of the set or array.
387 For range types, there are two "fields",
388 the minimum and maximum values (both inclusive).
389 For enum types, each possible value is described by one "field".
390 For a function or method type, a "field" for each parameter.
391 For C++ classes, there is one field for each base class (if it is
392 a derived class) plus one field for each class data member. Member
393 functions are recorded elsewhere.
394
395 Using a pointer to a separate array of fields
396 allows all types to have the same size, which is useful
397 because we can allocate the space for a type before
398 we know what to put in it. */
399
400 struct field
401 {
402 union field_location
403 {
404 /* Position of this field, counting in bits from start of
405 containing structure.
406 For BITS_BIG_ENDIAN=1 targets, it is the bit offset to the MSB.
407 For BITS_BIG_ENDIAN=0 targets, it is the bit offset to the LSB.
408 For a range bound or enum value, this is the value itself. */
409
410 int bitpos;
411
412 /* For a static field, if TYPE_FIELD_STATIC_HAS_ADDR then physaddr
413 is the location (in the target) of the static field.
414 Otherwise, physname is the mangled label of the static field. */
415
416 CORE_ADDR physaddr;
417 char *physname;
418 }
419 loc;
420
421 /* For a function or member type, this is 1 if the argument is marked
422 artificial. Artificial arguments should not be shown to the
423 user. */
424 unsigned int artificial : 1;
425
426 /* This flag is zero for non-static fields, 1 for fields whose location
427 is specified by the label loc.physname, and 2 for fields whose location
428 is specified by loc.physaddr. */
429
430 unsigned int static_kind : 2;
431
432 /* Size of this field, in bits, or zero if not packed.
433 For an unpacked field, the field's type's length
434 says how many bytes the field occupies. */
435
436 unsigned int bitsize : 29;
437
438 /* In a struct or union type, type of this field.
439 In a function or member type, type of this argument.
440 In an array type, the domain-type of the array. */
441
442 struct type *type;
443
444 /* Name of field, value or argument.
445 NULL for range bounds, array domains, and member function
446 arguments. */
447
448 char *name;
449
450 } *fields;
451
452 /* For types with virtual functions (TYPE_CODE_STRUCT), VPTR_BASETYPE
453 is the base class which defined the virtual function table pointer.
454
455 For types that are pointer to member types (TYPE_CODE_METHODPTR,
456 TYPE_CODE_MEMBERPTR), VPTR_BASETYPE is the type that this pointer
457 is a member of.
458
459 For method types (TYPE_CODE_METHOD), VPTR_BASETYPE is the aggregate
460 type that contains the method.
461
462 Unused otherwise. */
463
464 struct type *vptr_basetype;
465
466 /* Slot to point to additional language-specific fields of this type. */
467
468 union type_specific
469 {
470 /* CPLUS_STUFF is for TYPE_CODE_STRUCT. It is initialized to point to
471 cplus_struct_default, a default static instance of a struct
472 cplus_struct_type. */
473
474 struct cplus_struct_type *cplus_stuff;
475
476 /* FLOATFORMAT is for TYPE_CODE_FLT. It is a pointer to two
477 floatformat objects that describe the floating-point value
478 that resides within the type. The first is for big endian
479 targets and the second is for little endian targets. */
480
481 const struct floatformat **floatformat;
482 } type_specific;
483 };
484
485 /* A ``struct type'' describes a particular instance of a type, with
486 some particular qualification. */
487 struct type
488 {
489 /* Type that is a pointer to this type.
490 NULL if no such pointer-to type is known yet.
491 The debugger may add the address of such a type
492 if it has to construct one later. */
493
494 struct type *pointer_type;
495
496 /* C++: also need a reference type. */
497
498 struct type *reference_type;
499
500 /* Variant chain. This points to a type that differs from this one only
501 in qualifiers and length. Currently, the possible qualifiers are
502 const, volatile, code-space, data-space, and address class. The
503 length may differ only when one of the address class flags are set.
504 The variants are linked in a circular ring and share MAIN_TYPE. */
505 struct type *chain;
506
507 /* Flags specific to this instance of the type, indicating where
508 on the ring we are. */
509 int instance_flags;
510
511 /* Length of storage for a value of this type. This is what
512 sizeof(type) would return; use it for address arithmetic,
513 memory reads and writes, etc. This size includes padding. For
514 example, an i386 extended-precision floating point value really
515 only occupies ten bytes, but most ABI's declare its size to be
516 12 bytes, to preserve alignment. A `struct type' representing
517 such a floating-point type would have a `length' value of 12,
518 even though the last two bytes are unused.
519
520 There's a bit of a host/target mess here, if you're concerned
521 about machines whose bytes aren't eight bits long, or who don't
522 have byte-addressed memory. Various places pass this to memcpy
523 and such, meaning it must be in units of host bytes. Various
524 other places expect they can calculate addresses by adding it
525 and such, meaning it must be in units of target bytes. For
526 some DSP targets, in which HOST_CHAR_BIT will (presumably) be 8
527 and TARGET_CHAR_BIT will be (say) 32, this is a problem.
528
529 One fix would be to make this field in bits (requiring that it
530 always be a multiple of HOST_CHAR_BIT and TARGET_CHAR_BIT) ---
531 the other choice would be to make it consistently in units of
532 HOST_CHAR_BIT. However, this would still fail to address
533 machines based on a ternary or decimal representation. */
534
535 unsigned length;
536
537 /* Core type, shared by a group of qualified types. */
538 struct main_type *main_type;
539 };
540
541 #define NULL_TYPE ((struct type *) 0)
542
543 /* C++ language-specific information for TYPE_CODE_STRUCT and TYPE_CODE_UNION
544 nodes. */
545
546 struct cplus_struct_type
547 {
548 /* Number of base classes this type derives from. The baseclasses are
549 stored in the first N_BASECLASSES fields (i.e. the `fields' field of
550 the struct type). I think only the `type' field of such a field has
551 any meaning. */
552
553 short n_baseclasses;
554
555 /* Number of methods with unique names. All overloaded methods with
556 the same name count only once. */
557
558 short nfn_fields;
559
560 /* Number of methods described for this type, not including the
561 methods that it derives from. */
562
563 short nfn_fields_total;
564
565 /* The "declared_type" field contains a code saying how the
566 user really declared this type, e.g., "class s", "union s",
567 "struct s".
568 The 3 above things come out from the C++ compiler looking like classes,
569 but we keep track of the real declaration so we can give
570 the correct information on "ptype". (Note: TEMPLATE may not
571 belong in this list...) */
572
573 #define DECLARED_TYPE_CLASS 0
574 #define DECLARED_TYPE_UNION 1
575 #define DECLARED_TYPE_STRUCT 2
576 #define DECLARED_TYPE_TEMPLATE 3
577 short declared_type; /* One of the above codes */
578
579 /* For derived classes, the number of base classes is given by n_baseclasses
580 and virtual_field_bits is a bit vector containing one bit per base class.
581 If the base class is virtual, the corresponding bit will be set.
582 I.E, given:
583
584 class A{};
585 class B{};
586 class C : public B, public virtual A {};
587
588 B is a baseclass of C; A is a virtual baseclass for C.
589 This is a C++ 2.0 language feature. */
590
591 B_TYPE *virtual_field_bits;
592
593 /* For classes with private fields, the number of fields is given by
594 nfields and private_field_bits is a bit vector containing one bit
595 per field.
596 If the field is private, the corresponding bit will be set. */
597
598 B_TYPE *private_field_bits;
599
600 /* For classes with protected fields, the number of fields is given by
601 nfields and protected_field_bits is a bit vector containing one bit
602 per field.
603 If the field is private, the corresponding bit will be set. */
604
605 B_TYPE *protected_field_bits;
606
607 /* for classes with fields to be ignored, either this is optimized out
608 or this field has length 0 */
609
610 B_TYPE *ignore_field_bits;
611
612 /* For classes, structures, and unions, a description of each field,
613 which consists of an overloaded name, followed by the types of
614 arguments that the method expects, and then the name after it
615 has been renamed to make it distinct.
616
617 fn_fieldlists points to an array of nfn_fields of these. */
618
619 struct fn_fieldlist
620 {
621
622 /* The overloaded name. */
623
624 char *name;
625
626 /* The number of methods with this name. */
627
628 int length;
629
630 /* The list of methods. */
631
632 struct fn_field
633 {
634
635 /* If is_stub is clear, this is the mangled name which we can
636 look up to find the address of the method (FIXME: it would
637 be cleaner to have a pointer to the struct symbol here
638 instead). */
639
640 /* If is_stub is set, this is the portion of the mangled
641 name which specifies the arguments. For example, "ii",
642 if there are two int arguments, or "" if there are no
643 arguments. See gdb_mangle_name for the conversion from this
644 format to the one used if is_stub is clear. */
645
646 char *physname;
647
648 /* The function type for the method.
649 (This comment used to say "The return value of the method",
650 but that's wrong. The function type
651 is expected here, i.e. something with TYPE_CODE_FUNC,
652 and *not* the return-value type). */
653
654 struct type *type;
655
656 /* For virtual functions.
657 First baseclass that defines this virtual function. */
658
659 struct type *fcontext;
660
661 /* Attributes. */
662
663 unsigned int is_const:1;
664 unsigned int is_volatile:1;
665 unsigned int is_private:1;
666 unsigned int is_protected:1;
667 unsigned int is_public:1;
668 unsigned int is_abstract:1;
669 unsigned int is_static:1;
670 unsigned int is_final:1;
671 unsigned int is_synchronized:1;
672 unsigned int is_native:1;
673 unsigned int is_artificial:1;
674
675 /* A stub method only has some fields valid (but they are enough
676 to reconstruct the rest of the fields). */
677 unsigned int is_stub:1;
678
679 /* C++ method that is inlined */
680 unsigned int is_inlined:1;
681
682 /* Unused. */
683 unsigned int dummy:3;
684
685 /* Index into that baseclass's virtual function table,
686 minus 2; else if static: VOFFSET_STATIC; else: 0. */
687
688 unsigned int voffset:16;
689
690 #define VOFFSET_STATIC 1
691
692 }
693 *fn_fields;
694
695 }
696 *fn_fieldlists;
697
698 /* If this "struct type" describes a template, then it
699 * has arguments. "template_args" points to an array of
700 * template arg descriptors, of length "ntemplate_args".
701 * The only real information in each of these template arg descriptors
702 * is a name. "type" will typically just point to a "struct type" with
703 * the placeholder TYPE_CODE_TEMPLATE_ARG type.
704 */
705 short ntemplate_args;
706 struct template_arg
707 {
708 char *name;
709 struct type *type;
710 }
711 *template_args;
712
713 /* If this "struct type" describes a template, it has a list
714 * of instantiations. "instantiations" is a pointer to an array
715 * of type's, one representing each instantiation. There
716 * are "ninstantiations" elements in this array.
717 */
718 short ninstantiations;
719 struct type **instantiations;
720
721 /* Pointer to information about enclosing scope, if this is a
722 * local type. If it is not a local type, this is NULL
723 */
724 struct local_type_info
725 {
726 char *file;
727 int line;
728 }
729 *localtype_ptr;
730 };
731
732 /* Struct used in computing virtual base list */
733 struct vbase
734 {
735 struct type *vbasetype; /* pointer to virtual base */
736 struct vbase *next; /* next in chain */
737 };
738
739 /* Struct used for ranking a function for overload resolution */
740 struct badness_vector
741 {
742 int length;
743 int *rank;
744 };
745
746 /* The default value of TYPE_CPLUS_SPECIFIC(T) points to the
747 this shared static structure. */
748
749 extern const struct cplus_struct_type cplus_struct_default;
750
751 extern void allocate_cplus_struct_type (struct type *);
752
753 #define INIT_CPLUS_SPECIFIC(type) \
754 (TYPE_CPLUS_SPECIFIC(type)=(struct cplus_struct_type*)&cplus_struct_default)
755 #define ALLOCATE_CPLUS_STRUCT_TYPE(type) allocate_cplus_struct_type (type)
756 #define HAVE_CPLUS_STRUCT(type) \
757 (TYPE_CPLUS_SPECIFIC(type) != &cplus_struct_default)
758
759 #define TYPE_INSTANCE_FLAGS(thistype) (thistype)->instance_flags
760 #define TYPE_MAIN_TYPE(thistype) (thistype)->main_type
761 #define TYPE_NAME(thistype) TYPE_MAIN_TYPE(thistype)->name
762 #define TYPE_TAG_NAME(type) TYPE_MAIN_TYPE(type)->tag_name
763 #define TYPE_TARGET_TYPE(thistype) TYPE_MAIN_TYPE(thistype)->target_type
764 #define TYPE_POINTER_TYPE(thistype) (thistype)->pointer_type
765 #define TYPE_REFERENCE_TYPE(thistype) (thistype)->reference_type
766 #define TYPE_CHAIN(thistype) (thistype)->chain
767 /* Note that if thistype is a TYPEDEF type, you have to call check_typedef.
768 But check_typedef does set the TYPE_LENGTH of the TYPEDEF type,
769 so you only have to call check_typedef once. Since allocate_value
770 calls check_typedef, TYPE_LENGTH (VALUE_TYPE (X)) is safe. */
771 #define TYPE_LENGTH(thistype) (thistype)->length
772 #define TYPE_OBJFILE(thistype) TYPE_MAIN_TYPE(thistype)->objfile
773 #define TYPE_FLAGS(thistype) TYPE_MAIN_TYPE(thistype)->flags
774 /* Note that TYPE_CODE can be TYPE_CODE_TYPEDEF, so if you want the real
775 type, you need to do TYPE_CODE (check_type (this_type)). */
776 #define TYPE_CODE(thistype) TYPE_MAIN_TYPE(thistype)->code
777 #define TYPE_NFIELDS(thistype) TYPE_MAIN_TYPE(thistype)->nfields
778 #define TYPE_FIELDS(thistype) TYPE_MAIN_TYPE(thistype)->fields
779 #define TYPE_TEMPLATE_ARGS(thistype) TYPE_CPLUS_SPECIFIC(thistype)->template_args
780 #define TYPE_INSTANTIATIONS(thistype) TYPE_CPLUS_SPECIFIC(thistype)->instantiations
781
782 #define TYPE_INDEX_TYPE(type) TYPE_FIELD_TYPE (type, 0)
783 #define TYPE_LOW_BOUND(range_type) TYPE_FIELD_BITPOS (range_type, 0)
784 #define TYPE_HIGH_BOUND(range_type) TYPE_FIELD_BITPOS (range_type, 1)
785
786 /* Moto-specific stuff for FORTRAN arrays */
787
788 #define TYPE_ARRAY_UPPER_BOUND_TYPE(thistype) \
789 TYPE_MAIN_TYPE(thistype)->upper_bound_type
790 #define TYPE_ARRAY_LOWER_BOUND_TYPE(thistype) \
791 TYPE_MAIN_TYPE(thistype)->lower_bound_type
792
793 #define TYPE_ARRAY_UPPER_BOUND_VALUE(arraytype) \
794 (TYPE_FIELD_BITPOS((TYPE_FIELD_TYPE((arraytype),0)),1))
795
796 #define TYPE_ARRAY_LOWER_BOUND_VALUE(arraytype) \
797 (TYPE_FIELD_BITPOS((TYPE_FIELD_TYPE((arraytype),0)),0))
798
799 /* C++ */
800
801 #define TYPE_VPTR_BASETYPE(thistype) TYPE_MAIN_TYPE(thistype)->vptr_basetype
802 #define TYPE_DOMAIN_TYPE(thistype) TYPE_MAIN_TYPE(thistype)->vptr_basetype
803 #define TYPE_VPTR_FIELDNO(thistype) TYPE_MAIN_TYPE(thistype)->vptr_fieldno
804 #define TYPE_FN_FIELDS(thistype) TYPE_CPLUS_SPECIFIC(thistype)->fn_fields
805 #define TYPE_NFN_FIELDS(thistype) TYPE_CPLUS_SPECIFIC(thistype)->nfn_fields
806 #define TYPE_NFN_FIELDS_TOTAL(thistype) TYPE_CPLUS_SPECIFIC(thistype)->nfn_fields_total
807 #define TYPE_NTEMPLATE_ARGS(thistype) TYPE_CPLUS_SPECIFIC(thistype)->ntemplate_args
808 #define TYPE_NINSTANTIATIONS(thistype) TYPE_CPLUS_SPECIFIC(thistype)->ninstantiations
809 #define TYPE_DECLARED_TYPE(thistype) TYPE_CPLUS_SPECIFIC(thistype)->declared_type
810 #define TYPE_TYPE_SPECIFIC(thistype) TYPE_MAIN_TYPE(thistype)->type_specific
811 #define TYPE_CPLUS_SPECIFIC(thistype) TYPE_MAIN_TYPE(thistype)->type_specific.cplus_stuff
812 #define TYPE_FLOATFORMAT(thistype) TYPE_MAIN_TYPE(thistype)->type_specific.floatformat
813 #define TYPE_BASECLASS(thistype,index) TYPE_MAIN_TYPE(thistype)->fields[index].type
814 #define TYPE_N_BASECLASSES(thistype) TYPE_CPLUS_SPECIFIC(thistype)->n_baseclasses
815 #define TYPE_BASECLASS_NAME(thistype,index) TYPE_MAIN_TYPE(thistype)->fields[index].name
816 #define TYPE_BASECLASS_BITPOS(thistype,index) TYPE_FIELD_BITPOS(thistype,index)
817 #define BASETYPE_VIA_PUBLIC(thistype, index) \
818 ((!TYPE_FIELD_PRIVATE(thistype, index)) && (!TYPE_FIELD_PROTECTED(thistype, index)))
819
820 #define BASETYPE_VIA_VIRTUAL(thistype, index) \
821 (TYPE_CPLUS_SPECIFIC(thistype)->virtual_field_bits == NULL ? 0 \
822 : B_TST(TYPE_CPLUS_SPECIFIC(thistype)->virtual_field_bits, (index)))
823
824 #define FIELD_TYPE(thisfld) ((thisfld).type)
825 #define FIELD_NAME(thisfld) ((thisfld).name)
826 #define FIELD_BITPOS(thisfld) ((thisfld).loc.bitpos)
827 #define FIELD_ARTIFICIAL(thisfld) ((thisfld).artificial)
828 #define FIELD_BITSIZE(thisfld) ((thisfld).bitsize)
829 #define FIELD_STATIC_KIND(thisfld) ((thisfld).static_kind)
830 #define FIELD_PHYSNAME(thisfld) ((thisfld).loc.physname)
831 #define FIELD_PHYSADDR(thisfld) ((thisfld).loc.physaddr)
832 #define SET_FIELD_PHYSNAME(thisfld, name) \
833 ((thisfld).static_kind = 1, FIELD_PHYSNAME(thisfld) = (name))
834 #define SET_FIELD_PHYSADDR(thisfld, name) \
835 ((thisfld).static_kind = 2, FIELD_PHYSADDR(thisfld) = (name))
836 #define TYPE_FIELD(thistype, n) TYPE_MAIN_TYPE(thistype)->fields[n]
837 #define TYPE_FIELD_TYPE(thistype, n) FIELD_TYPE(TYPE_FIELD(thistype, n))
838 #define TYPE_FIELD_NAME(thistype, n) FIELD_NAME(TYPE_FIELD(thistype, n))
839 #define TYPE_FIELD_BITPOS(thistype, n) FIELD_BITPOS(TYPE_FIELD(thistype,n))
840 #define TYPE_FIELD_ARTIFICIAL(thistype, n) FIELD_ARTIFICIAL(TYPE_FIELD(thistype,n))
841 #define TYPE_FIELD_BITSIZE(thistype, n) FIELD_BITSIZE(TYPE_FIELD(thistype,n))
842 #define TYPE_FIELD_PACKED(thistype, n) (FIELD_BITSIZE(TYPE_FIELD(thistype,n))!=0)
843 #define TYPE_TEMPLATE_ARG(thistype, n) TYPE_CPLUS_SPECIFIC(thistype)->template_args[n]
844 #define TYPE_INSTANTIATION(thistype, n) TYPE_CPLUS_SPECIFIC(thistype)->instantiations[n]
845
846 #define TYPE_FIELD_PRIVATE_BITS(thistype) \
847 TYPE_CPLUS_SPECIFIC(thistype)->private_field_bits
848 #define TYPE_FIELD_PROTECTED_BITS(thistype) \
849 TYPE_CPLUS_SPECIFIC(thistype)->protected_field_bits
850 #define TYPE_FIELD_IGNORE_BITS(thistype) \
851 TYPE_CPLUS_SPECIFIC(thistype)->ignore_field_bits
852 #define TYPE_FIELD_VIRTUAL_BITS(thistype) \
853 TYPE_CPLUS_SPECIFIC(thistype)->virtual_field_bits
854 #define SET_TYPE_FIELD_PRIVATE(thistype, n) \
855 B_SET (TYPE_CPLUS_SPECIFIC(thistype)->private_field_bits, (n))
856 #define SET_TYPE_FIELD_PROTECTED(thistype, n) \
857 B_SET (TYPE_CPLUS_SPECIFIC(thistype)->protected_field_bits, (n))
858 #define SET_TYPE_FIELD_IGNORE(thistype, n) \
859 B_SET (TYPE_CPLUS_SPECIFIC(thistype)->ignore_field_bits, (n))
860 #define SET_TYPE_FIELD_VIRTUAL(thistype, n) \
861 B_SET (TYPE_CPLUS_SPECIFIC(thistype)->virtual_field_bits, (n))
862 #define TYPE_FIELD_PRIVATE(thistype, n) \
863 (TYPE_CPLUS_SPECIFIC(thistype)->private_field_bits == NULL ? 0 \
864 : B_TST(TYPE_CPLUS_SPECIFIC(thistype)->private_field_bits, (n)))
865 #define TYPE_FIELD_PROTECTED(thistype, n) \
866 (TYPE_CPLUS_SPECIFIC(thistype)->protected_field_bits == NULL ? 0 \
867 : B_TST(TYPE_CPLUS_SPECIFIC(thistype)->protected_field_bits, (n)))
868 #define TYPE_FIELD_IGNORE(thistype, n) \
869 (TYPE_CPLUS_SPECIFIC(thistype)->ignore_field_bits == NULL ? 0 \
870 : B_TST(TYPE_CPLUS_SPECIFIC(thistype)->ignore_field_bits, (n)))
871 #define TYPE_FIELD_VIRTUAL(thistype, n) \
872 (TYPE_CPLUS_SPECIFIC(thistype)->virtual_field_bits == NULL ? 0 \
873 : B_TST(TYPE_CPLUS_SPECIFIC(thistype)->virtual_field_bits, (n)))
874
875 #define TYPE_FIELD_STATIC(thistype, n) (TYPE_MAIN_TYPE (thistype)->fields[n].static_kind != 0)
876 #define TYPE_FIELD_STATIC_KIND(thistype, n) TYPE_MAIN_TYPE (thistype)->fields[n].static_kind
877 #define TYPE_FIELD_STATIC_HAS_ADDR(thistype, n) (TYPE_MAIN_TYPE (thistype)->fields[n].static_kind == 2)
878 #define TYPE_FIELD_STATIC_PHYSNAME(thistype, n) FIELD_PHYSNAME(TYPE_FIELD(thistype, n))
879 #define TYPE_FIELD_STATIC_PHYSADDR(thistype, n) FIELD_PHYSADDR(TYPE_FIELD(thistype, n))
880
881 #define TYPE_FN_FIELDLISTS(thistype) TYPE_CPLUS_SPECIFIC(thistype)->fn_fieldlists
882 #define TYPE_FN_FIELDLIST(thistype, n) TYPE_CPLUS_SPECIFIC(thistype)->fn_fieldlists[n]
883 #define TYPE_FN_FIELDLIST1(thistype, n) TYPE_CPLUS_SPECIFIC(thistype)->fn_fieldlists[n].fn_fields
884 #define TYPE_FN_FIELDLIST_NAME(thistype, n) TYPE_CPLUS_SPECIFIC(thistype)->fn_fieldlists[n].name
885 #define TYPE_FN_FIELDLIST_LENGTH(thistype, n) TYPE_CPLUS_SPECIFIC(thistype)->fn_fieldlists[n].length
886
887 #define TYPE_FN_FIELD(thisfn, n) (thisfn)[n]
888 #define TYPE_FN_FIELD_PHYSNAME(thisfn, n) (thisfn)[n].physname
889 #define TYPE_FN_FIELD_TYPE(thisfn, n) (thisfn)[n].type
890 #define TYPE_FN_FIELD_ARGS(thisfn, n) TYPE_FIELDS ((thisfn)[n].type)
891 #define TYPE_FN_FIELD_CONST(thisfn, n) ((thisfn)[n].is_const)
892 #define TYPE_FN_FIELD_VOLATILE(thisfn, n) ((thisfn)[n].is_volatile)
893 #define TYPE_FN_FIELD_PRIVATE(thisfn, n) ((thisfn)[n].is_private)
894 #define TYPE_FN_FIELD_PROTECTED(thisfn, n) ((thisfn)[n].is_protected)
895 #define TYPE_FN_FIELD_PUBLIC(thisfn, n) ((thisfn)[n].is_public)
896 #define TYPE_FN_FIELD_STATIC(thisfn, n) ((thisfn)[n].is_static)
897 #define TYPE_FN_FIELD_FINAL(thisfn, n) ((thisfn)[n].is_final)
898 #define TYPE_FN_FIELD_SYNCHRONIZED(thisfn, n) ((thisfn)[n].is_synchronized)
899 #define TYPE_FN_FIELD_NATIVE(thisfn, n) ((thisfn)[n].is_native)
900 #define TYPE_FN_FIELD_ARTIFICIAL(thisfn, n) ((thisfn)[n].is_artificial)
901 #define TYPE_FN_FIELD_ABSTRACT(thisfn, n) ((thisfn)[n].is_abstract)
902 #define TYPE_FN_FIELD_STUB(thisfn, n) ((thisfn)[n].is_stub)
903 #define TYPE_FN_FIELD_INLINED(thisfn, n) ((thisfn)[n].is_inlined)
904 #define TYPE_FN_FIELD_FCONTEXT(thisfn, n) ((thisfn)[n].fcontext)
905 #define TYPE_FN_FIELD_VOFFSET(thisfn, n) ((thisfn)[n].voffset-2)
906 #define TYPE_FN_FIELD_VIRTUAL_P(thisfn, n) ((thisfn)[n].voffset > 1)
907 #define TYPE_FN_FIELD_STATIC_P(thisfn, n) ((thisfn)[n].voffset == VOFFSET_STATIC)
908
909 #define TYPE_LOCALTYPE_PTR(thistype) (TYPE_CPLUS_SPECIFIC(thistype)->localtype_ptr)
910 #define TYPE_LOCALTYPE_FILE(thistype) (TYPE_CPLUS_SPECIFIC(thistype)->localtype_ptr->file)
911 #define TYPE_LOCALTYPE_LINE(thistype) (TYPE_CPLUS_SPECIFIC(thistype)->localtype_ptr->line)
912
913 #define TYPE_IS_OPAQUE(thistype) (((TYPE_CODE (thistype) == TYPE_CODE_STRUCT) || \
914 (TYPE_CODE (thistype) == TYPE_CODE_UNION)) && \
915 (TYPE_NFIELDS (thistype) == 0) && \
916 (TYPE_CPLUS_SPECIFIC (thistype) && (TYPE_NFN_FIELDS (thistype) == 0)) && \
917 (TYPE_STUB (thistype) || !TYPE_STUB_SUPPORTED (thistype)))
918
919 struct builtin_type
920 {
921 /* Address/pointer types. */
922
923 /* `pointer to data' type. Some target platforms use an implicitly
924 {sign,zero} -extended 32-bit ABI pointer on a 64-bit ISA. */
925 struct type *builtin_data_ptr;
926
927 /* `pointer to function (returning void)' type. Harvard
928 architectures mean that ABI function and code pointers are not
929 interconvertible. Similarly, since ANSI, C standards have
930 explicitly said that pointers to functions and pointers to data
931 are not interconvertible --- that is, you can't cast a function
932 pointer to void * and back, and expect to get the same value.
933 However, all function pointer types are interconvertible, so void
934 (*) () can server as a generic function pointer. */
935 struct type *builtin_func_ptr;
936
937 /* The target CPU's address type. This is the ISA address size. */
938 struct type *builtin_core_addr;
939
940
941 /* Types used for symbols with no debug information. */
942 struct type *nodebug_text_symbol;
943 struct type *nodebug_data_symbol;
944 struct type *nodebug_unknown_symbol;
945 struct type *nodebug_tls_symbol;
946
947
948 /* Integral types. */
949
950 /* We use these for the '/c' print format, because c_char is just a
951 one-byte integral type, which languages less laid back than C
952 will print as ... well, a one-byte integral type. */
953 struct type *builtin_true_char;
954 struct type *builtin_true_unsigned_char;
955
956 /* Implicit size/sign (based on the the architecture's ABI). */
957 struct type *builtin_void;
958 struct type *builtin_char;
959 struct type *builtin_short;
960 struct type *builtin_int;
961 struct type *builtin_long;
962 struct type *builtin_signed_char;
963 struct type *builtin_unsigned_char;
964 struct type *builtin_unsigned_short;
965 struct type *builtin_unsigned_int;
966 struct type *builtin_unsigned_long;
967 struct type *builtin_float;
968 struct type *builtin_double;
969 struct type *builtin_long_double;
970 struct type *builtin_complex;
971 struct type *builtin_double_complex;
972 struct type *builtin_string;
973 struct type *builtin_bool;
974 struct type *builtin_long_long;
975 struct type *builtin_unsigned_long_long;
976 struct type *builtin_decfloat;
977 struct type *builtin_decdouble;
978 struct type *builtin_declong;
979 };
980
981 /* Return the type table for the specified architecture. */
982 extern const struct builtin_type *builtin_type (struct gdbarch *gdbarch);
983
984 /* Compatibility macros to access types for the current architecture. */
985 #define builtin_type_void_data_ptr \
986 (builtin_type (current_gdbarch)->builtin_data_ptr)
987 #define builtin_type_void_func_ptr \
988 (builtin_type (current_gdbarch)->builtin_func_ptr)
989 #define builtin_type_CORE_ADDR \
990 (builtin_type (current_gdbarch)->builtin_core_addr)
991 #define builtin_type_true_char \
992 (builtin_type (current_gdbarch)->builtin_true_char)
993 #define builtin_type_void \
994 (builtin_type (current_gdbarch)->builtin_void)
995 #define builtin_type_char \
996 (builtin_type (current_gdbarch)->builtin_char)
997 #define builtin_type_short \
998 (builtin_type (current_gdbarch)->builtin_short)
999 #define builtin_type_int \
1000 (builtin_type (current_gdbarch)->builtin_int)
1001 #define builtin_type_long \
1002 (builtin_type (current_gdbarch)->builtin_long)
1003 #define builtin_type_signed_char \
1004 (builtin_type (current_gdbarch)->builtin_signed_char)
1005 #define builtin_type_unsigned_char \
1006 (builtin_type (current_gdbarch)->builtin_unsigned_char)
1007 #define builtin_type_unsigned_short \
1008 (builtin_type (current_gdbarch)->builtin_unsigned_short)
1009 #define builtin_type_unsigned_int \
1010 (builtin_type (current_gdbarch)->builtin_unsigned_int)
1011 #define builtin_type_unsigned_long \
1012 (builtin_type (current_gdbarch)->builtin_unsigned_long)
1013 #define builtin_type_float \
1014 (builtin_type (current_gdbarch)->builtin_float)
1015 #define builtin_type_double \
1016 (builtin_type (current_gdbarch)->builtin_double)
1017 #define builtin_type_long_double \
1018 (builtin_type (current_gdbarch)->builtin_long_double)
1019 #define builtin_type_complex \
1020 (builtin_type (current_gdbarch)->builtin_complex)
1021 #define builtin_type_double_complex \
1022 (builtin_type (current_gdbarch)->builtin_double_complex)
1023 #define builtin_type_string \
1024 (builtin_type (current_gdbarch)->builtin_string)
1025 #define builtin_type_bool \
1026 (builtin_type (current_gdbarch)->builtin_bool)
1027 #define builtin_type_long_long \
1028 (builtin_type (current_gdbarch)->builtin_long_long)
1029 #define builtin_type_unsigned_long_long \
1030 (builtin_type (current_gdbarch)->builtin_unsigned_long_long)
1031
1032
1033 /* Explicit sizes - see C9X <intypes.h> for naming scheme. The "int0"
1034 is for when an architecture needs to describe a register that has
1035 no size. */
1036 extern struct type *builtin_type_int0;
1037 extern struct type *builtin_type_int8;
1038 extern struct type *builtin_type_uint8;
1039 extern struct type *builtin_type_int16;
1040 extern struct type *builtin_type_uint16;
1041 extern struct type *builtin_type_int32;
1042 extern struct type *builtin_type_uint32;
1043 extern struct type *builtin_type_int64;
1044 extern struct type *builtin_type_uint64;
1045 extern struct type *builtin_type_int128;
1046 extern struct type *builtin_type_uint128;
1047
1048 /* Explicit floating-point formats. See "floatformat.h". */
1049 extern const struct floatformat *floatformats_ieee_single[BFD_ENDIAN_UNKNOWN];
1050 extern const struct floatformat *floatformats_ieee_double[BFD_ENDIAN_UNKNOWN];
1051 extern const struct floatformat *floatformats_ieee_double_littlebyte_bigword[BFD_ENDIAN_UNKNOWN];
1052 extern const struct floatformat *floatformats_i387_ext[BFD_ENDIAN_UNKNOWN];
1053 extern const struct floatformat *floatformats_m68881_ext[BFD_ENDIAN_UNKNOWN];
1054 extern const struct floatformat *floatformats_arm_ext[BFD_ENDIAN_UNKNOWN];
1055 extern const struct floatformat *floatformats_ia64_spill[BFD_ENDIAN_UNKNOWN];
1056 extern const struct floatformat *floatformats_ia64_quad[BFD_ENDIAN_UNKNOWN];
1057 extern const struct floatformat *floatformats_vax_f[BFD_ENDIAN_UNKNOWN];
1058 extern const struct floatformat *floatformats_vax_d[BFD_ENDIAN_UNKNOWN];
1059 extern const struct floatformat *floatformats_ibm_long_double[BFD_ENDIAN_UNKNOWN];
1060
1061 extern struct type *builtin_type_ieee_single;
1062 extern struct type *builtin_type_ieee_double;
1063 extern struct type *builtin_type_i387_ext;
1064 extern struct type *builtin_type_m68881_ext;
1065 extern struct type *builtin_type_arm_ext;
1066 extern struct type *builtin_type_ia64_spill;
1067 extern struct type *builtin_type_ia64_quad;
1068
1069 /* This type represents a type that was unrecognized in symbol
1070 read-in. */
1071
1072 extern struct type *builtin_type_error;
1073
1074
1075 /* Modula-2 types */
1076
1077 struct builtin_m2_type
1078 {
1079 struct type *builtin_char;
1080 struct type *builtin_int;
1081 struct type *builtin_card;
1082 struct type *builtin_real;
1083 struct type *builtin_bool;
1084 };
1085
1086 /* Return the Modula-2 type table for the specified architecture. */
1087 extern const struct builtin_m2_type *builtin_m2_type (struct gdbarch *gdbarch);
1088
1089 /* Compatibility macros to access types for the current architecture. */
1090 #define builtin_type_m2_char \
1091 (builtin_m2_type (current_gdbarch)->builtin_char)
1092 #define builtin_type_m2_int \
1093 (builtin_m2_type (current_gdbarch)->builtin_int)
1094 #define builtin_type_m2_card \
1095 (builtin_m2_type (current_gdbarch)->builtin_card)
1096 #define builtin_type_m2_real \
1097 (builtin_m2_type (current_gdbarch)->builtin_real)
1098 #define builtin_type_m2_bool \
1099 (builtin_m2_type (current_gdbarch)->builtin_bool)
1100
1101
1102 /* Fortran (F77) types */
1103
1104 struct builtin_f_type
1105 {
1106 struct type *builtin_character;
1107 struct type *builtin_integer;
1108 struct type *builtin_integer_s2;
1109 struct type *builtin_logical;
1110 struct type *builtin_logical_s1;
1111 struct type *builtin_logical_s2;
1112 struct type *builtin_real;
1113 struct type *builtin_real_s8;
1114 struct type *builtin_real_s16;
1115 struct type *builtin_complex_s8;
1116 struct type *builtin_complex_s16;
1117 struct type *builtin_complex_s32;
1118 struct type *builtin_void;
1119 };
1120
1121 /* Return the Fortran type table for the specified architecture. */
1122 extern const struct builtin_f_type *builtin_f_type (struct gdbarch *gdbarch);
1123
1124 /* Compatibility macros to access types for the current architecture. */
1125 #define builtin_type_f_character \
1126 (builtin_f_type (current_gdbarch)->builtin_character)
1127 #define builtin_type_f_integer \
1128 (builtin_f_type (current_gdbarch)->builtin_integer)
1129 #define builtin_type_f_integer_s2 \
1130 (builtin_f_type (current_gdbarch)->builtin_integer_s2)
1131 #define builtin_type_f_logical \
1132 (builtin_f_type (current_gdbarch)->builtin_logical)
1133 #define builtin_type_f_logical_s1 \
1134 (builtin_f_type (current_gdbarch)->builtin_logical_s1)
1135 #define builtin_type_f_logical_s2 \
1136 (builtin_f_type (current_gdbarch)->builtin_logical_s2)
1137 #define builtin_type_f_real \
1138 (builtin_f_type (current_gdbarch)->builtin_real)
1139 #define builtin_type_f_real_s8 \
1140 (builtin_f_type (current_gdbarch)->builtin_real_s8)
1141 #define builtin_type_f_real_s16 \
1142 (builtin_f_type (current_gdbarch)->builtin_real_s16)
1143 #define builtin_type_f_complex_s8 \
1144 (builtin_f_type (current_gdbarch)->builtin_complex_s8)
1145 #define builtin_type_f_complex_s16 \
1146 (builtin_f_type (current_gdbarch)->builtin_complex_s16)
1147 #define builtin_type_f_complex_s32 \
1148 (builtin_f_type (current_gdbarch)->builtin_complex_s32)
1149 #define builtin_type_f_void \
1150 (builtin_f_type (current_gdbarch)->builtin_void)
1151
1152
1153 /* RTTI for C++ */
1154 /* extern struct type *builtin_type_cxx_typeinfo; */
1155
1156 /* Maximum and minimum values of built-in types */
1157
1158 #define MAX_OF_TYPE(t) \
1159 (TYPE_UNSIGNED(t) ? UMAX_OF_SIZE(TYPE_LENGTH(t)) \
1160 : MAX_OF_SIZE(TYPE_LENGTH(t)))
1161
1162 #define MIN_OF_TYPE(t) \
1163 (TYPE_UNSIGNED(t) ? UMIN_OF_SIZE(TYPE_LENGTH(t)) \
1164 : MIN_OF_SIZE(TYPE_LENGTH(t)))
1165
1166 /* Allocate space for storing data associated with a particular type.
1167 We ensure that the space is allocated using the same mechanism that
1168 was used to allocate the space for the type structure itself. I.E.
1169 if the type is on an objfile's objfile_obstack, then the space for data
1170 associated with that type will also be allocated on the objfile_obstack.
1171 If the type is not associated with any particular objfile (such as
1172 builtin types), then the data space will be allocated with xmalloc,
1173 the same as for the type structure. */
1174
1175 #define TYPE_ALLOC(t,size) \
1176 (TYPE_OBJFILE (t) != NULL \
1177 ? obstack_alloc (&TYPE_OBJFILE (t) -> objfile_obstack, size) \
1178 : xmalloc (size))
1179
1180 #define TYPE_ZALLOC(t,size) \
1181 (TYPE_OBJFILE (t) != NULL \
1182 ? memset (obstack_alloc (&TYPE_OBJFILE (t)->objfile_obstack, size), \
1183 0, size) \
1184 : xzalloc (size))
1185
1186 extern struct type *alloc_type (struct objfile *);
1187
1188 extern struct type *init_type (enum type_code, int, int, char *,
1189 struct objfile *);
1190
1191 /* Helper functions to construct a struct or record type. An
1192 initially empty type is created using init_composite_type().
1193 Fields are then added using append_struct_type_field(). A union
1194 type has its size set to the largest field. A struct type has each
1195 field packed against the previous. */
1196
1197 extern struct type *init_composite_type (char *name, enum type_code code);
1198 extern void append_composite_type_field (struct type *t, char *name,
1199 struct type *field);
1200
1201 /* Helper functions to construct a bit flags type. An initially empty
1202 type is created using init_flag_type(). Flags are then added using
1203 append_flag_type_flag(). */
1204 extern struct type *init_flags_type (char *name, int length);
1205 extern void append_flags_type_flag (struct type *type, int bitpos, char *name);
1206
1207 extern void make_vector_type (struct type *array_type);
1208 extern struct type *init_vector_type (struct type *elt_type, int n);
1209
1210 extern struct type *lookup_reference_type (struct type *);
1211
1212 extern struct type *make_reference_type (struct type *, struct type **);
1213
1214 extern struct type *make_cv_type (int, int, struct type *, struct type **);
1215
1216 extern void replace_type (struct type *, struct type *);
1217
1218 extern int address_space_name_to_int (char *);
1219
1220 extern const char *address_space_int_to_name (int);
1221
1222 extern struct type *make_type_with_address_space (struct type *type,
1223 int space_identifier);
1224
1225 extern struct type *lookup_memberptr_type (struct type *, struct type *);
1226
1227 extern struct type *lookup_methodptr_type (struct type *);
1228
1229 extern void smash_to_method_type (struct type *type, struct type *domain,
1230 struct type *to_type, struct field *args,
1231 int nargs, int varargs);
1232
1233 extern void smash_to_memberptr_type (struct type *, struct type *,
1234 struct type *);
1235
1236 extern struct type *allocate_stub_method (struct type *);
1237
1238 extern char *type_name_no_tag (const struct type *);
1239
1240 extern struct type *lookup_struct_elt_type (struct type *, char *, int);
1241
1242 extern struct type *make_pointer_type (struct type *, struct type **);
1243
1244 extern struct type *lookup_pointer_type (struct type *);
1245
1246 extern struct type *make_function_type (struct type *, struct type **);
1247
1248 extern struct type *lookup_function_type (struct type *);
1249
1250 extern struct type *create_range_type (struct type *, struct type *, int,
1251 int);
1252
1253 extern struct type *create_array_type (struct type *, struct type *,
1254 struct type *);
1255
1256 extern struct type *create_string_type (struct type *, struct type *);
1257
1258 extern struct type *create_set_type (struct type *, struct type *);
1259
1260 extern struct type *lookup_unsigned_typename (char *);
1261
1262 extern struct type *lookup_signed_typename (char *);
1263
1264 extern struct type *check_typedef (struct type *);
1265
1266 #define CHECK_TYPEDEF(TYPE) (TYPE) = check_typedef (TYPE)
1267
1268 extern void check_stub_method_group (struct type *, int);
1269
1270 extern char *gdb_mangle_name (struct type *, int, int);
1271
1272 extern struct type *lookup_typename (char *, struct block *, int);
1273
1274 extern struct type *lookup_template_type (char *, struct type *,
1275 struct block *);
1276
1277 extern void fill_in_vptr_fieldno (struct type *);
1278
1279 extern int get_destructor_fn_field (struct type *, int *, int *);
1280
1281 extern int get_discrete_bounds (struct type *, LONGEST *, LONGEST *);
1282
1283 extern int is_ancestor (struct type *, struct type *);
1284
1285 /* Overload resolution */
1286
1287 #define LENGTH_MATCH(bv) ((bv)->rank[0])
1288
1289 /* Badness if parameter list length doesn't match arg list length */
1290 #define LENGTH_MISMATCH_BADNESS 100
1291 /* Dummy badness value for nonexistent parameter positions */
1292 #define TOO_FEW_PARAMS_BADNESS 100
1293 /* Badness if no conversion among types */
1294 #define INCOMPATIBLE_TYPE_BADNESS 100
1295
1296 /* Badness of integral promotion */
1297 #define INTEGER_PROMOTION_BADNESS 1
1298 /* Badness of floating promotion */
1299 #define FLOAT_PROMOTION_BADNESS 1
1300 /* Badness of integral conversion */
1301 #define INTEGER_CONVERSION_BADNESS 2
1302 /* Badness of floating conversion */
1303 #define FLOAT_CONVERSION_BADNESS 2
1304 /* Badness of integer<->floating conversions */
1305 #define INT_FLOAT_CONVERSION_BADNESS 2
1306 /* Badness of converting to a boolean */
1307 #define BOOLEAN_CONVERSION_BADNESS 2
1308 /* Badness of pointer conversion */
1309 #define POINTER_CONVERSION_BADNESS 2
1310 /* Badness of conversion of pointer to void pointer */
1311 #define VOID_PTR_CONVERSION_BADNESS 2
1312 /* Badness of converting derived to base class */
1313 #define BASE_CONVERSION_BADNESS 2
1314 /* Badness of converting from non-reference to reference */
1315 #define REFERENCE_CONVERSION_BADNESS 2
1316
1317 /* Non-standard conversions allowed by the debugger */
1318 /* Converting a pointer to an int is usually OK */
1319 #define NS_POINTER_CONVERSION_BADNESS 10
1320
1321
1322 extern int compare_badness (struct badness_vector *, struct badness_vector *);
1323
1324 extern struct badness_vector *rank_function (struct type **, int,
1325 struct type **, int);
1326
1327 extern int rank_one_type (struct type *, struct type *);
1328
1329 extern void recursive_dump_type (struct type *, int);
1330
1331 /* printcmd.c */
1332
1333 extern void print_scalar_formatted (const void *, struct type *, int, int,
1334 struct ui_file *);
1335
1336 extern int can_dereference (struct type *);
1337
1338 extern int is_integral_type (struct type *);
1339
1340 extern void maintenance_print_type (char *, int);
1341
1342 extern htab_t create_copied_types_hash (struct objfile *objfile);
1343
1344 extern struct type *copy_type_recursive (struct objfile *objfile,
1345 struct type *type,
1346 htab_t copied_types);
1347
1348 #endif /* GDBTYPES_H */