1 /* Low level packing and unpacking of values for GDB, the GNU Debugger.
2 Copyright 1986, 1987, 1989, 1991 Free Software Foundation, Inc.
4 This file is part of GDB.
6 This program is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 2 of the License, or
9 (at your option) any later version.
11 This program is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
16 You should have received a copy of the GNU General Public License
17 along with this program; if not, write to the Free Software
18 Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. */
32 /* Local function prototypes. */
35 value_headof PARAMS ((value, struct type *, struct type *));
38 show_values PARAMS ((char *, int));
41 show_convenience PARAMS ((char *, int));
43 /* The value-history records all the values printed
44 by print commands during this session. Each chunk
45 records 60 consecutive values. The first chunk on
46 the chain records the most recent values.
47 The total number of values is in value_history_count. */
49 #define VALUE_HISTORY_CHUNK 60
51 struct value_history_chunk
53 struct value_history_chunk *next;
54 value values[VALUE_HISTORY_CHUNK];
57 /* Chain of chunks now in use. */
59 static struct value_history_chunk *value_history_chain;
61 static int value_history_count; /* Abs number of last entry stored */
63 /* List of all value objects currently allocated
64 (except for those released by calls to release_value)
65 This is so they can be freed after each command. */
67 static value all_values;
69 /* Allocate a value that has the correct length for type TYPE. */
77 check_stub_type (type);
79 val = (value) xmalloc (sizeof (struct value) + TYPE_LENGTH (type));
80 VALUE_NEXT (val) = all_values;
82 VALUE_TYPE (val) = type;
83 VALUE_LVAL (val) = not_lval;
84 VALUE_ADDRESS (val) = 0;
85 VALUE_FRAME (val) = 0;
86 VALUE_OFFSET (val) = 0;
87 VALUE_BITPOS (val) = 0;
88 VALUE_BITSIZE (val) = 0;
89 VALUE_REPEATED (val) = 0;
90 VALUE_REPETITIONS (val) = 0;
91 VALUE_REGNO (val) = -1;
93 VALUE_OPTIMIZED_OUT (val) = 0;
97 /* Allocate a value that has the correct length
98 for COUNT repetitions type TYPE. */
101 allocate_repeat_value (type, count)
107 val = (value) xmalloc (sizeof (struct value) + TYPE_LENGTH (type) * count);
108 VALUE_NEXT (val) = all_values;
110 VALUE_TYPE (val) = type;
111 VALUE_LVAL (val) = not_lval;
112 VALUE_ADDRESS (val) = 0;
113 VALUE_FRAME (val) = 0;
114 VALUE_OFFSET (val) = 0;
115 VALUE_BITPOS (val) = 0;
116 VALUE_BITSIZE (val) = 0;
117 VALUE_REPEATED (val) = 1;
118 VALUE_REPETITIONS (val) = count;
119 VALUE_REGNO (val) = -1;
120 VALUE_LAZY (val) = 0;
121 VALUE_OPTIMIZED_OUT (val) = 0;
125 /* Return a mark in the value chain. All values allocated after the
126 mark is obtained (except for those released) are subject to being freed
127 if a subsequent value_free_to_mark is passed the mark. */
134 /* Free all values allocated since MARK was obtained by value_mark
135 (except for those released). */
137 value_free_to_mark (mark)
142 for (val = all_values; val && val != mark; val = next)
144 next = VALUE_NEXT (val);
150 /* Free all the values that have been allocated (except for those released).
151 Called after each command, successful or not. */
156 register value val, next;
158 for (val = all_values; val; val = next)
160 next = VALUE_NEXT (val);
167 /* Remove VAL from the chain all_values
168 so it will not be freed automatically. */
176 if (all_values == val)
178 all_values = val->next;
182 for (v = all_values; v; v = v->next)
192 /* Return a copy of the value ARG.
193 It contains the same contents, for same memory address,
194 but it's a different block of storage. */
201 register struct type *type = VALUE_TYPE (arg);
202 if (VALUE_REPEATED (arg))
203 val = allocate_repeat_value (type, VALUE_REPETITIONS (arg));
205 val = allocate_value (type);
206 VALUE_LVAL (val) = VALUE_LVAL (arg);
207 VALUE_ADDRESS (val) = VALUE_ADDRESS (arg);
208 VALUE_OFFSET (val) = VALUE_OFFSET (arg);
209 VALUE_BITPOS (val) = VALUE_BITPOS (arg);
210 VALUE_BITSIZE (val) = VALUE_BITSIZE (arg);
211 VALUE_REGNO (val) = VALUE_REGNO (arg);
212 VALUE_LAZY (val) = VALUE_LAZY (arg);
213 if (!VALUE_LAZY (val))
215 memcpy (VALUE_CONTENTS_RAW (val), VALUE_CONTENTS_RAW (arg),
216 TYPE_LENGTH (VALUE_TYPE (arg))
217 * (VALUE_REPEATED (arg) ? VALUE_REPETITIONS (arg) : 1));
222 /* Access to the value history. */
224 /* Record a new value in the value history.
225 Returns the absolute history index of the entry.
226 Result of -1 indicates the value was not saved; otherwise it is the
227 value history index of this new item. */
230 record_latest_value (val)
235 /* Check error now if about to store an invalid float. We return -1
236 to the caller, but allow them to continue, e.g. to print it as "Nan". */
237 if (TYPE_CODE (VALUE_TYPE (val)) == TYPE_CODE_FLT)
239 unpack_double (VALUE_TYPE (val), VALUE_CONTENTS (val), &i);
240 if (i) return -1; /* Indicate value not saved in history */
243 /* Here we treat value_history_count as origin-zero
244 and applying to the value being stored now. */
246 i = value_history_count % VALUE_HISTORY_CHUNK;
249 register struct value_history_chunk *new
250 = (struct value_history_chunk *)
251 xmalloc (sizeof (struct value_history_chunk));
252 memset (new->values, 0, sizeof new->values);
253 new->next = value_history_chain;
254 value_history_chain = new;
257 value_history_chain->values[i] = val;
260 /* Now we regard value_history_count as origin-one
261 and applying to the value just stored. */
263 return ++value_history_count;
266 /* Return a copy of the value in the history with sequence number NUM. */
269 access_value_history (num)
272 register struct value_history_chunk *chunk;
274 register int absnum = num;
277 absnum += value_history_count;
282 error ("The history is empty.");
284 error ("There is only one value in the history.");
286 error ("History does not go back to $$%d.", -num);
288 if (absnum > value_history_count)
289 error ("History has not yet reached $%d.", absnum);
293 /* Now absnum is always absolute and origin zero. */
295 chunk = value_history_chain;
296 for (i = (value_history_count - 1) / VALUE_HISTORY_CHUNK - absnum / VALUE_HISTORY_CHUNK;
300 return value_copy (chunk->values[absnum % VALUE_HISTORY_CHUNK]);
303 /* Clear the value history entirely.
304 Must be done when new symbol tables are loaded,
305 because the type pointers become invalid. */
308 clear_value_history ()
310 register struct value_history_chunk *next;
314 while (value_history_chain)
316 for (i = 0; i < VALUE_HISTORY_CHUNK; i++)
317 if ((val = value_history_chain->values[i]) != NULL)
319 next = value_history_chain->next;
320 free ((PTR)value_history_chain);
321 value_history_chain = next;
323 value_history_count = 0;
327 show_values (num_exp, from_tty)
337 if (num_exp[0] == '+' && num_exp[1] == '\0')
338 /* "info history +" should print from the stored position. */
341 /* "info history <exp>" should print around value number <exp>. */
342 num = parse_and_eval_address (num_exp) - 5;
346 /* "info history" means print the last 10 values. */
347 num = value_history_count - 9;
353 for (i = num; i < num + 10 && i <= value_history_count; i++)
355 val = access_value_history (i);
356 printf_filtered ("$%d = ", i);
357 value_print (val, stdout, 0, Val_pretty_default);
358 printf_filtered ("\n");
361 /* The next "info history +" should start after what we just printed. */
364 /* Hitting just return after this command should do the same thing as
365 "info history +". If num_exp is null, this is unnecessary, since
366 "info history +" is not useful after "info history". */
367 if (from_tty && num_exp)
374 /* Internal variables. These are variables within the debugger
375 that hold values assigned by debugger commands.
376 The user refers to them with a '$' prefix
377 that does not appear in the variable names stored internally. */
379 static struct internalvar *internalvars;
381 /* Look up an internal variable with name NAME. NAME should not
382 normally include a dollar sign.
384 If the specified internal variable does not exist,
385 one is created, with a void value. */
388 lookup_internalvar (name)
391 register struct internalvar *var;
393 for (var = internalvars; var; var = var->next)
394 if (STREQ (var->name, name))
397 var = (struct internalvar *) xmalloc (sizeof (struct internalvar));
398 var->name = concat (name, NULL);
399 var->value = allocate_value (builtin_type_void);
400 release_value (var->value);
401 var->next = internalvars;
407 value_of_internalvar (var)
408 struct internalvar *var;
412 #ifdef IS_TRAPPED_INTERNALVAR
413 if (IS_TRAPPED_INTERNALVAR (var->name))
414 return VALUE_OF_TRAPPED_INTERNALVAR (var);
417 val = value_copy (var->value);
418 if (VALUE_LAZY (val))
419 value_fetch_lazy (val);
420 VALUE_LVAL (val) = lval_internalvar;
421 VALUE_INTERNALVAR (val) = var;
426 set_internalvar_component (var, offset, bitpos, bitsize, newval)
427 struct internalvar *var;
428 int offset, bitpos, bitsize;
431 register char *addr = VALUE_CONTENTS (var->value) + offset;
433 #ifdef IS_TRAPPED_INTERNALVAR
434 if (IS_TRAPPED_INTERNALVAR (var->name))
435 SET_TRAPPED_INTERNALVAR (var, newval, bitpos, bitsize, offset);
439 modify_field (addr, (int) value_as_long (newval),
442 memcpy (addr, VALUE_CONTENTS (newval), TYPE_LENGTH (VALUE_TYPE (newval)));
446 set_internalvar (var, val)
447 struct internalvar *var;
450 #ifdef IS_TRAPPED_INTERNALVAR
451 if (IS_TRAPPED_INTERNALVAR (var->name))
452 SET_TRAPPED_INTERNALVAR (var, val, 0, 0, 0);
455 free ((PTR)var->value);
456 var->value = value_copy (val);
457 /* Force the value to be fetched from the target now, to avoid problems
458 later when this internalvar is referenced and the target is gone or
460 if (VALUE_LAZY (var->value))
461 value_fetch_lazy (var->value);
462 release_value (var->value);
466 internalvar_name (var)
467 struct internalvar *var;
472 /* Free all internalvars. Done when new symtabs are loaded,
473 because that makes the values invalid. */
476 clear_internalvars ()
478 register struct internalvar *var;
483 internalvars = var->next;
484 free ((PTR)var->name);
485 free ((PTR)var->value);
491 show_convenience (ignore, from_tty)
495 register struct internalvar *var;
498 for (var = internalvars; var; var = var->next)
500 #ifdef IS_TRAPPED_INTERNALVAR
501 if (IS_TRAPPED_INTERNALVAR (var->name))
508 printf_filtered ("$%s = ", var->name);
509 value_print (var->value, stdout, 0, Val_pretty_default);
510 printf_filtered ("\n");
513 printf ("No debugger convenience variables now defined.\n\
514 Convenience variables have names starting with \"$\";\n\
515 use \"set\" as in \"set $foo = 5\" to define them.\n");
518 /* Extract a value as a C number (either long or double).
519 Knows how to convert fixed values to double, or
520 floating values to long.
521 Does not deallocate the value. */
527 /* This coerces arrays and functions, which is necessary (e.g.
528 in disassemble_command). It also dereferences references, which
529 I suspect is the most logical thing to do. */
530 if (TYPE_CODE (VALUE_TYPE (val)) != TYPE_CODE_ENUM)
532 return unpack_long (VALUE_TYPE (val), VALUE_CONTENTS (val));
536 value_as_double (val)
542 foo = unpack_double (VALUE_TYPE (val), VALUE_CONTENTS (val), &inv);
544 error ("Invalid floating value found in program.");
547 /* Extract a value as a C pointer.
548 Does not deallocate the value. */
550 value_as_pointer (val)
553 /* Assume a CORE_ADDR can fit in a LONGEST (for now). Not sure
554 whether we want this to be true eventually. */
555 return ADDR_BITS_REMOVE(value_as_long (val));
558 /* Unpack raw data (copied from debugee, target byte order) at VALADDR
559 as a long, or as a double, assuming the raw data is described
560 by type TYPE. Knows how to convert different sizes of values
561 and can convert between fixed and floating point. We don't assume
562 any alignment for the raw data. Return value is in host byte order.
564 If you want functions and arrays to be coerced to pointers, and
565 references to be dereferenced, call value_as_long() instead.
567 C++: It is assumed that the front-end has taken care of
568 all matters concerning pointers to members. A pointer
569 to member which reaches here is considered to be equivalent
570 to an INT (or some size). After all, it is only an offset. */
572 /* FIXME: This should be rewritten as a switch statement for speed and
573 ease of comprehension. */
576 unpack_long (type, valaddr)
580 register enum type_code code = TYPE_CODE (type);
581 register int len = TYPE_LENGTH (type);
582 register int nosign = TYPE_UNSIGNED (type);
584 if (code == TYPE_CODE_ENUM || code == TYPE_CODE_BOOL)
585 code = TYPE_CODE_INT;
586 if (code == TYPE_CODE_FLT)
588 if (len == sizeof (float))
591 memcpy (&retval, valaddr, sizeof (retval));
592 SWAP_TARGET_AND_HOST (&retval, sizeof (retval));
596 if (len == sizeof (double))
599 memcpy (&retval, valaddr, sizeof (retval));
600 SWAP_TARGET_AND_HOST (&retval, sizeof (retval));
605 error ("Unexpected type of floating point number.");
608 else if (code == TYPE_CODE_INT && nosign)
610 if (len == sizeof (char))
612 unsigned char retval = * (unsigned char *) valaddr;
613 /* SWAP_TARGET_AND_HOST (&retval, sizeof (unsigned char)); */
617 if (len == sizeof (short))
619 unsigned short retval;
620 memcpy (&retval, valaddr, sizeof (retval));
621 SWAP_TARGET_AND_HOST (&retval, sizeof (retval));
625 if (len == sizeof (int))
628 memcpy (&retval, valaddr, sizeof (retval));
629 SWAP_TARGET_AND_HOST (&retval, sizeof (retval));
633 if (len == sizeof (long))
635 unsigned long retval;
636 memcpy (&retval, valaddr, sizeof (retval));
637 SWAP_TARGET_AND_HOST (&retval, sizeof (retval));
640 #ifdef CC_HAS_LONG_LONG
641 if (len == sizeof (long long))
643 unsigned long long retval;
644 memcpy (&retval, valaddr, sizeof (retval));
645 SWAP_TARGET_AND_HOST (&retval, sizeof (retval));
651 error ("That operation is not possible on an integer of that size.");
654 else if (code == TYPE_CODE_INT)
656 if (len == sizeof (char))
658 SIGNED char retval; /* plain chars might be unsigned on host */
659 memcpy (&retval, valaddr, sizeof (retval));
660 SWAP_TARGET_AND_HOST (&retval, sizeof (retval));
664 if (len == sizeof (short))
667 memcpy (&retval, valaddr, sizeof (retval));
668 SWAP_TARGET_AND_HOST (&retval, sizeof (retval));
672 if (len == sizeof (int))
675 memcpy (&retval, valaddr, sizeof (retval));
676 SWAP_TARGET_AND_HOST (&retval, sizeof (retval));
680 if (len == sizeof (long))
683 memcpy (&retval, valaddr, sizeof (retval));
684 SWAP_TARGET_AND_HOST (&retval, sizeof (retval));
688 #ifdef CC_HAS_LONG_LONG
689 if (len == sizeof (long long))
692 memcpy (&retval, valaddr, sizeof (retval));
693 SWAP_TARGET_AND_HOST (&retval, sizeof (retval));
699 error ("That operation is not possible on an integer of that size.");
702 /* Assume a CORE_ADDR can fit in a LONGEST (for now). Not sure
703 whether we want this to be true eventually. */
704 else if (code == TYPE_CODE_PTR || code == TYPE_CODE_REF)
706 if (len == sizeof(long))
708 unsigned long retval;
709 memcpy (&retval, valaddr, sizeof(retval));
710 SWAP_TARGET_AND_HOST (&retval, sizeof(retval));
713 else if (len == sizeof(short))
715 unsigned short retval;
716 memcpy (&retval, valaddr, len);
717 SWAP_TARGET_AND_HOST (&retval, len);
720 #ifdef CC_HAS_LONG_LONG
721 else if (len == sizeof(long long))
723 unsigned long long retval;
724 memcpy (&retval, valaddr, len);
725 SWAP_TARGET_AND_HOST (&retval, len);
730 else if (code == TYPE_CODE_MEMBER)
731 error ("not implemented: member types in unpack_long");
732 else if (code == TYPE_CODE_CHAR)
733 return *(unsigned char *)valaddr;
735 error ("Value not integer or pointer.");
736 return 0; /* For lint -- never reached */
739 /* Return a double value from the specified type and address.
740 INVP points to an int which is set to 0 for valid value,
741 1 for invalid value (bad float format). In either case,
742 the returned double is OK to use. Argument is in target
743 format, result is in host format. */
746 unpack_double (type, valaddr, invp)
751 register enum type_code code = TYPE_CODE (type);
752 register int len = TYPE_LENGTH (type);
753 register int nosign = TYPE_UNSIGNED (type);
755 *invp = 0; /* Assume valid. */
756 if (code == TYPE_CODE_FLT)
758 if (INVALID_FLOAT (valaddr, len))
761 return 1.234567891011121314;
764 if (len == sizeof (float))
767 memcpy (&retval, valaddr, sizeof (retval));
768 SWAP_TARGET_AND_HOST (&retval, sizeof (retval));
772 if (len == sizeof (double))
775 memcpy (&retval, valaddr, sizeof (retval));
776 SWAP_TARGET_AND_HOST (&retval, sizeof (retval));
781 error ("Unexpected type of floating point number.");
782 return 0; /* Placate lint. */
786 /* Unsigned -- be sure we compensate for signed LONGEST. */
787 return (unsigned LONGEST) unpack_long (type, valaddr);
789 /* Signed -- we are OK with unpack_long. */
790 return unpack_long (type, valaddr);
794 /* Unpack raw data (copied from debugee, target byte order) at VALADDR
795 as a CORE_ADDR, assuming the raw data is described by type TYPE.
796 We don't assume any alignment for the raw data. Return value is in
799 If you want functions and arrays to be coerced to pointers, and
800 references to be dereferenced, call value_as_pointer() instead.
802 C++: It is assumed that the front-end has taken care of
803 all matters concerning pointers to members. A pointer
804 to member which reaches here is considered to be equivalent
805 to an INT (or some size). After all, it is only an offset. */
808 unpack_pointer (type, valaddr)
813 /* The user should be able to use an int (e.g. 0x7892) in contexts
814 where a pointer is expected. So this doesn't do enough. */
815 register enum type_code code = TYPE_CODE (type);
816 register int len = TYPE_LENGTH (type);
818 if (code == TYPE_CODE_PTR
819 || code == TYPE_CODE_REF)
821 if (len == sizeof (CORE_ADDR))
824 memcpy (&retval, valaddr, sizeof (retval));
825 SWAP_TARGET_AND_HOST (&retval, sizeof (retval));
828 error ("Unrecognized pointer size.");
830 else if (code == TYPE_CODE_MEMBER)
831 error ("not implemented: member types in unpack_pointer");
833 error ("Value is not a pointer.");
834 return 0; /* For lint -- never reached */
836 /* Assume a CORE_ADDR can fit in a LONGEST (for now). Not sure
837 whether we want this to be true eventually. */
838 return unpack_long (type, valaddr);
842 /* Given a value ARG1 (offset by OFFSET bytes)
843 of a struct or union type ARG_TYPE,
844 extract and return the value of one of its fields.
845 FIELDNO says which field.
847 For C++, must also be able to return values from static fields */
850 value_primitive_field (arg1, offset, fieldno, arg_type)
853 register int fieldno;
854 register struct type *arg_type;
857 register struct type *type;
859 check_stub_type (arg_type);
860 type = TYPE_FIELD_TYPE (arg_type, fieldno);
862 /* Handle packed fields */
864 offset += TYPE_FIELD_BITPOS (arg_type, fieldno) / 8;
865 if (TYPE_FIELD_BITSIZE (arg_type, fieldno))
867 v = value_from_longest (type,
868 unpack_field_as_long (arg_type,
869 VALUE_CONTENTS (arg1),
871 VALUE_BITPOS (v) = TYPE_FIELD_BITPOS (arg_type, fieldno) % 8;
872 VALUE_BITSIZE (v) = TYPE_FIELD_BITSIZE (arg_type, fieldno);
876 v = allocate_value (type);
877 if (VALUE_LAZY (arg1))
880 memcpy (VALUE_CONTENTS_RAW (v), VALUE_CONTENTS_RAW (arg1) + offset,
883 VALUE_LVAL (v) = VALUE_LVAL (arg1);
884 if (VALUE_LVAL (arg1) == lval_internalvar)
885 VALUE_LVAL (v) = lval_internalvar_component;
886 VALUE_ADDRESS (v) = VALUE_ADDRESS (arg1);
887 VALUE_OFFSET (v) = offset + VALUE_OFFSET (arg1);
891 /* Given a value ARG1 of a struct or union type,
892 extract and return the value of one of its fields.
893 FIELDNO says which field.
895 For C++, must also be able to return values from static fields */
898 value_field (arg1, fieldno)
900 register int fieldno;
902 return value_primitive_field (arg1, 0, fieldno, VALUE_TYPE (arg1));
905 /* Return a non-virtual function as a value.
906 F is the list of member functions which contains the desired method.
907 J is an index into F which provides the desired method. */
910 value_fn_field (arg1p, f, j, type, offset)
918 register struct type *ftype = TYPE_FN_FIELD_TYPE (f, j);
921 sym = lookup_symbol (TYPE_FN_FIELD_PHYSNAME (f, j),
922 0, VAR_NAMESPACE, 0, NULL);
923 if (! sym) error ("Internal error: could not find physical method named %s",
924 TYPE_FN_FIELD_PHYSNAME (f, j));
926 v = allocate_value (ftype);
927 VALUE_ADDRESS (v) = BLOCK_START (SYMBOL_BLOCK_VALUE (sym));
928 VALUE_TYPE (v) = ftype;
932 if (type != VALUE_TYPE (*arg1p))
933 *arg1p = value_ind (value_cast (lookup_pointer_type (type),
934 value_addr (*arg1p)));
936 /* Move the `this' pointer according to the offset. */
937 VALUE_OFFSET (*arg1p) += offset;
943 /* Return a virtual function as a value.
944 ARG1 is the object which provides the virtual function
945 table pointer. *ARG1P is side-effected in calling this function.
946 F is the list of member functions which contains the desired virtual
948 J is an index into F which provides the desired virtual function.
950 TYPE is the type in which F is located. */
952 value_virtual_fn_field (arg1p, f, j, type, offset)
960 /* First, get the virtual function table pointer. That comes
961 with a strange type, so cast it to type `pointer to long' (which
962 should serve just fine as a function type). Then, index into
963 the table, and convert final value to appropriate function type. */
964 value entry, vfn, vtbl;
965 value vi = value_from_longest (builtin_type_int,
966 (LONGEST) TYPE_FN_FIELD_VOFFSET (f, j));
967 struct type *fcontext = TYPE_FN_FIELD_FCONTEXT (f, j);
968 struct type *context;
969 if (fcontext == NULL)
970 /* We don't have an fcontext (e.g. the program was compiled with
971 g++ version 1). Try to get the vtbl from the TYPE_VPTR_BASETYPE.
972 This won't work right for multiple inheritance, but at least we
973 should do as well as GDB 3.x did. */
974 fcontext = TYPE_VPTR_BASETYPE (type);
975 context = lookup_pointer_type (fcontext);
976 /* Now context is a pointer to the basetype containing the vtbl. */
977 if (TYPE_TARGET_TYPE (context) != VALUE_TYPE (arg1))
978 arg1 = value_ind (value_cast (context, value_addr (arg1)));
980 context = VALUE_TYPE (arg1);
981 /* Now context is the basetype containing the vtbl. */
983 /* This type may have been defined before its virtual function table
984 was. If so, fill in the virtual function table entry for the
986 if (TYPE_VPTR_FIELDNO (context) < 0)
987 fill_in_vptr_fieldno (context);
989 /* The virtual function table is now an array of structures
990 which have the form { int16 offset, delta; void *pfn; }. */
991 vtbl = value_ind (value_primitive_field (arg1, 0,
992 TYPE_VPTR_FIELDNO (context),
993 TYPE_VPTR_BASETYPE (context)));
995 /* Index into the virtual function table. This is hard-coded because
996 looking up a field is not cheap, and it may be important to save
997 time, e.g. if the user has set a conditional breakpoint calling
998 a virtual function. */
999 entry = value_subscript (vtbl, vi);
1001 /* Move the `this' pointer according to the virtual function table. */
1002 VALUE_OFFSET (arg1) += value_as_long (value_field (entry, 0)) + offset;
1003 if (! VALUE_LAZY (arg1))
1005 VALUE_LAZY (arg1) = 1;
1006 value_fetch_lazy (arg1);
1009 vfn = value_field (entry, 2);
1010 /* Reinstantiate the function pointer with the correct type. */
1011 VALUE_TYPE (vfn) = lookup_pointer_type (TYPE_FN_FIELD_TYPE (f, j));
1017 /* ARG is a pointer to an object we know to be at least
1018 a DTYPE. BTYPE is the most derived basetype that has
1019 already been searched (and need not be searched again).
1020 After looking at the vtables between BTYPE and DTYPE,
1021 return the most derived type we find. The caller must
1022 be satisfied when the return value == DTYPE.
1024 FIXME-tiemann: should work with dossier entries as well. */
1027 value_headof (in_arg, btype, dtype)
1029 struct type *btype, *dtype;
1031 /* First collect the vtables we must look at for this object. */
1032 /* FIXME-tiemann: right now, just look at top-most vtable. */
1033 value arg, vtbl, entry, best_entry = 0;
1035 int offset, best_offset = 0;
1037 CORE_ADDR pc_for_sym;
1038 char *demangled_name;
1039 struct minimal_symbol *msymbol;
1041 btype = TYPE_VPTR_BASETYPE (dtype);
1042 check_stub_type (btype);
1045 arg = value_cast (lookup_pointer_type (btype), arg);
1046 vtbl = value_ind (value_field (value_ind (arg), TYPE_VPTR_FIELDNO (btype)));
1048 /* Check that VTBL looks like it points to a virtual function table. */
1049 msymbol = lookup_minimal_symbol_by_pc (VALUE_ADDRESS (vtbl));
1051 || !VTBL_PREFIX_P (demangled_name = SYMBOL_NAME (msymbol)))
1053 /* If we expected to find a vtable, but did not, let the user
1054 know that we aren't happy, but don't throw an error.
1055 FIXME: there has to be a better way to do this. */
1056 struct type *error_type = (struct type *)xmalloc (sizeof (struct type));
1057 memcpy (error_type, VALUE_TYPE (in_arg), sizeof (struct type));
1058 TYPE_NAME (error_type) = savestring ("suspicious *", sizeof ("suspicious *"));
1059 VALUE_TYPE (in_arg) = error_type;
1063 /* Now search through the virtual function table. */
1064 entry = value_ind (vtbl);
1065 nelems = longest_to_int (value_as_long (value_field (entry, 2)));
1066 for (i = 1; i <= nelems; i++)
1068 entry = value_subscript (vtbl, value_from_longest (builtin_type_int,
1070 offset = longest_to_int (value_as_long (value_field (entry, 0)));
1071 /* If we use '<=' we can handle single inheritance
1072 * where all offsets are zero - just use the first entry found. */
1073 if (offset <= best_offset)
1075 best_offset = offset;
1079 /* Move the pointer according to BEST_ENTRY's offset, and figure
1080 out what type we should return as the new pointer. */
1081 if (best_entry == 0)
1083 /* An alternative method (which should no longer be necessary).
1084 * But we leave it in for future use, when we will hopefully
1085 * have optimizes the vtable to use thunks instead of offsets. */
1086 /* Use the name of vtable itself to extract a base type. */
1087 demangled_name += 4; /* Skip _vt$ prefix. */
1091 pc_for_sym = value_as_pointer (value_field (best_entry, 2));
1092 sym = find_pc_function (pc_for_sym);
1093 demangled_name = cplus_demangle (SYMBOL_NAME (sym), DMGL_ANSI);
1094 *(strchr (demangled_name, ':')) = '\0';
1096 sym = lookup_symbol (demangled_name, 0, VAR_NAMESPACE, 0, 0);
1098 error ("could not find type declaration for `%s'", demangled_name);
1101 free (demangled_name);
1102 arg = value_add (value_cast (builtin_type_int, arg),
1103 value_field (best_entry, 0));
1106 VALUE_TYPE (arg) = lookup_pointer_type (SYMBOL_TYPE (sym));
1110 /* ARG is a pointer object of type TYPE. If TYPE has virtual
1111 function tables, probe ARG's tables (including the vtables
1112 of its baseclasses) to figure out the most derived type that ARG
1113 could actually be a pointer to. */
1116 value_from_vtable_info (arg, type)
1120 /* Take care of preliminaries. */
1121 if (TYPE_VPTR_FIELDNO (type) < 0)
1122 fill_in_vptr_fieldno (type);
1123 if (TYPE_VPTR_FIELDNO (type) < 0 || VALUE_REPEATED (arg))
1126 return value_headof (arg, 0, type);
1129 /* Compute the offset of the baseclass which is
1130 the INDEXth baseclass of class TYPE, for a value ARG,
1131 wih extra offset of OFFSET.
1132 The result is the offste of the baseclass value relative
1133 to (the address of)(ARG) + OFFSET.
1135 -1 is returned on error. */
1138 baseclass_offset (type, index, arg, offset)
1144 struct type *basetype = TYPE_BASECLASS (type, index);
1146 if (BASETYPE_VIA_VIRTUAL (type, index))
1148 /* Must hunt for the pointer to this virtual baseclass. */
1149 register int i, len = TYPE_NFIELDS (type);
1150 register int n_baseclasses = TYPE_N_BASECLASSES (type);
1151 char *vbase_name, *type_name = type_name_no_tag (basetype);
1153 vbase_name = (char *)alloca (strlen (type_name) + 8);
1154 sprintf (vbase_name, "_vb%c%s", CPLUS_MARKER, type_name);
1155 /* First look for the virtual baseclass pointer
1157 for (i = n_baseclasses; i < len; i++)
1159 if (STREQ (vbase_name, TYPE_FIELD_NAME (type, i)))
1162 = unpack_pointer (TYPE_FIELD_TYPE (type, i),
1163 VALUE_CONTENTS (arg) + VALUE_OFFSET (arg)
1165 + (TYPE_FIELD_BITPOS (type, i) / 8));
1167 if (VALUE_LVAL (arg) != lval_memory)
1171 (LONGEST) (VALUE_ADDRESS (arg) + VALUE_OFFSET (arg) + offset);
1174 /* Not in the fields, so try looking through the baseclasses. */
1175 for (i = index+1; i < n_baseclasses; i++)
1178 baseclass_offset (type, i, arg, offset);
1186 /* Baseclass is easily computed. */
1187 return TYPE_BASECLASS_BITPOS (type, index) / 8;
1190 /* Compute the address of the baseclass which is
1191 the INDEXth baseclass of class TYPE. The TYPE base
1192 of the object is at VALADDR.
1194 If ERRP is non-NULL, set *ERRP to be the errno code of any error,
1195 or 0 if no error. In that case the return value is not the address
1196 of the baseclasss, but the address which could not be read
1199 /* FIXME Fix remaining uses of baseclass_addr to use baseclass_offset */
1202 baseclass_addr (type, index, valaddr, valuep, errp)
1209 struct type *basetype = TYPE_BASECLASS (type, index);
1214 if (BASETYPE_VIA_VIRTUAL (type, index))
1216 /* Must hunt for the pointer to this virtual baseclass. */
1217 register int i, len = TYPE_NFIELDS (type);
1218 register int n_baseclasses = TYPE_N_BASECLASSES (type);
1219 char *vbase_name, *type_name = type_name_no_tag (basetype);
1221 vbase_name = (char *)alloca (strlen (type_name) + 8);
1222 sprintf (vbase_name, "_vb%c%s", CPLUS_MARKER, type_name);
1223 /* First look for the virtual baseclass pointer
1225 for (i = n_baseclasses; i < len; i++)
1227 if (STREQ (vbase_name, TYPE_FIELD_NAME (type, i)))
1229 value val = allocate_value (basetype);
1234 = unpack_pointer (TYPE_FIELD_TYPE (type, i),
1235 valaddr + (TYPE_FIELD_BITPOS (type, i) / 8));
1237 status = target_read_memory (addr,
1238 VALUE_CONTENTS_RAW (val),
1239 TYPE_LENGTH (basetype));
1240 VALUE_LVAL (val) = lval_memory;
1241 VALUE_ADDRESS (val) = addr;
1247 release_value (val);
1251 return (char *)addr;
1257 return (char *) VALUE_CONTENTS (val);
1261 /* Not in the fields, so try looking through the baseclasses. */
1262 for (i = index+1; i < n_baseclasses; i++)
1266 baddr = baseclass_addr (type, i, valaddr, valuep, errp);
1276 /* Baseclass is easily computed. */
1279 return valaddr + TYPE_BASECLASS_BITPOS (type, index) / 8;
1282 /* Unpack a field FIELDNO of the specified TYPE, from the anonymous object at
1285 Extracting bits depends on endianness of the machine. Compute the
1286 number of least significant bits to discard. For big endian machines,
1287 we compute the total number of bits in the anonymous object, subtract
1288 off the bit count from the MSB of the object to the MSB of the
1289 bitfield, then the size of the bitfield, which leaves the LSB discard
1290 count. For little endian machines, the discard count is simply the
1291 number of bits from the LSB of the anonymous object to the LSB of the
1294 If the field is signed, we also do sign extension. */
1297 unpack_field_as_long (type, valaddr, fieldno)
1302 unsigned LONGEST val;
1303 unsigned LONGEST valmask;
1304 int bitpos = TYPE_FIELD_BITPOS (type, fieldno);
1305 int bitsize = TYPE_FIELD_BITSIZE (type, fieldno);
1308 memcpy (&val, valaddr + bitpos / 8, sizeof (val));
1309 SWAP_TARGET_AND_HOST (&val, sizeof (val));
1311 /* Extract bits. See comment above. */
1314 lsbcount = (sizeof val * 8 - bitpos % 8 - bitsize);
1316 lsbcount = (bitpos % 8);
1320 /* If the field does not entirely fill a LONGEST, then zero the sign bits.
1321 If the field is signed, and is negative, then sign extend. */
1323 if ((bitsize > 0) && (bitsize < 8 * sizeof (val)))
1325 valmask = (((unsigned LONGEST) 1) << bitsize) - 1;
1327 if (!TYPE_UNSIGNED (TYPE_FIELD_TYPE (type, fieldno)))
1329 if (val & (valmask ^ (valmask >> 1)))
1338 /* Modify the value of a bitfield. ADDR points to a block of memory in
1339 target byte order; the bitfield starts in the byte pointed to. FIELDVAL
1340 is the desired value of the field, in host byte order. BITPOS and BITSIZE
1341 indicate which bits (in target bit order) comprise the bitfield. */
1344 modify_field (addr, fieldval, bitpos, bitsize)
1347 int bitpos, bitsize;
1351 /* Reject values too big to fit in the field in question,
1352 otherwise adjoining fields may be corrupted. */
1353 if (bitsize < (8 * sizeof (fieldval))
1354 && 0 != (fieldval & ~((1<<bitsize)-1)))
1355 error ("Value %d does not fit in %d bits.", fieldval, bitsize);
1357 memcpy (&oword, addr, sizeof oword);
1358 SWAP_TARGET_AND_HOST (&oword, sizeof oword); /* To host format */
1360 /* Shifting for bit field depends on endianness of the target machine. */
1362 bitpos = sizeof (oword) * 8 - bitpos - bitsize;
1365 /* Mask out old value, while avoiding shifts >= longword size */
1366 if (bitsize < 8 * sizeof (oword))
1367 oword &= ~(((((unsigned long)1) << bitsize) - 1) << bitpos);
1369 oword &= ~((-1) << bitpos);
1370 oword |= fieldval << bitpos;
1372 SWAP_TARGET_AND_HOST (&oword, sizeof oword); /* To target format */
1373 memcpy (addr, &oword, sizeof oword);
1376 /* Convert C numbers into newly allocated values */
1379 value_from_longest (type, num)
1381 register LONGEST num;
1383 register value val = allocate_value (type);
1384 register enum type_code code = TYPE_CODE (type);
1385 register int len = TYPE_LENGTH (type);
1387 /* FIXME, we assume that pointers have the same form and byte order as
1388 integers, and that all pointers have the same form. */
1389 if (code == TYPE_CODE_INT || code == TYPE_CODE_ENUM ||
1390 code == TYPE_CODE_CHAR || code == TYPE_CODE_PTR ||
1391 code == TYPE_CODE_REF || code == TYPE_CODE_BOOL)
1393 if (len == sizeof (char))
1394 * (char *) VALUE_CONTENTS_RAW (val) = num;
1395 else if (len == sizeof (short))
1396 * (short *) VALUE_CONTENTS_RAW (val) = num;
1397 else if (len == sizeof (int))
1398 * (int *) VALUE_CONTENTS_RAW (val) = num;
1399 else if (len == sizeof (long))
1400 * (long *) VALUE_CONTENTS_RAW (val) = num;
1401 else if (len == sizeof (LONGEST))
1402 * (LONGEST *) VALUE_CONTENTS_RAW (val) = num;
1404 error ("Integer type encountered with unexpected data length.");
1407 error ("Unexpected type encountered for integer constant.");
1409 /* num was in host byte order. So now put the value's contents
1410 into target byte order. */
1411 SWAP_TARGET_AND_HOST (VALUE_CONTENTS_RAW (val), len);
1417 value_from_double (type, num)
1421 register value val = allocate_value (type);
1422 register enum type_code code = TYPE_CODE (type);
1423 register int len = TYPE_LENGTH (type);
1425 if (code == TYPE_CODE_FLT)
1427 if (len == sizeof (float))
1428 * (float *) VALUE_CONTENTS_RAW (val) = num;
1429 else if (len == sizeof (double))
1430 * (double *) VALUE_CONTENTS_RAW (val) = num;
1432 error ("Floating type encountered with unexpected data length.");
1435 error ("Unexpected type encountered for floating constant.");
1437 /* num was in host byte order. So now put the value's contents
1438 into target byte order. */
1439 SWAP_TARGET_AND_HOST (VALUE_CONTENTS_RAW (val), len);
1444 /* Deal with the value that is "about to be returned". */
1446 /* Return the value that a function returning now
1447 would be returning to its caller, assuming its type is VALTYPE.
1448 RETBUF is where we look for what ought to be the contents
1449 of the registers (in raw form). This is because it is often
1450 desirable to restore old values to those registers
1451 after saving the contents of interest, and then call
1452 this function using the saved values.
1453 struct_return is non-zero when the function in question is
1454 using the structure return conventions on the machine in question;
1455 0 when it is using the value returning conventions (this often
1456 means returning pointer to where structure is vs. returning value). */
1459 value_being_returned (valtype, retbuf, struct_return)
1460 register struct type *valtype;
1461 char retbuf[REGISTER_BYTES];
1468 #if defined (EXTRACT_STRUCT_VALUE_ADDRESS)
1469 /* If this is not defined, just use EXTRACT_RETURN_VALUE instead. */
1470 if (struct_return) {
1471 addr = EXTRACT_STRUCT_VALUE_ADDRESS (retbuf);
1473 error ("Function return value unknown");
1474 return value_at (valtype, addr);
1478 val = allocate_value (valtype);
1479 EXTRACT_RETURN_VALUE (valtype, retbuf, VALUE_CONTENTS_RAW (val));
1484 /* Should we use EXTRACT_STRUCT_VALUE_ADDRESS instead of
1485 EXTRACT_RETURN_VALUE? GCC_P is true if compiled with gcc
1486 and TYPE is the type (which is known to be struct, union or array).
1488 On most machines, the struct convention is used unless we are
1489 using gcc and the type is of a special size. */
1490 /* As of about 31 Mar 93, GCC was changed to be compatible with the
1491 native compiler. GCC 2.3.3 was the last release that did it the
1492 old way. Since gcc2_compiled was not changed, we have no
1493 way to correctly win in all cases, so we just do the right thing
1494 for gcc1 and for gcc2 after this change. Thus it loses for gcc
1495 2.0-2.3.3. This is somewhat unfortunate, but changing gcc2_compiled
1496 would cause more chaos than dealing with some struct returns being
1498 #if !defined (USE_STRUCT_CONVENTION)
1499 #define USE_STRUCT_CONVENTION(gcc_p, type)\
1500 (!((gcc_p == 1) && (TYPE_LENGTH (value_type) == 1 \
1501 || TYPE_LENGTH (value_type) == 2 \
1502 || TYPE_LENGTH (value_type) == 4 \
1503 || TYPE_LENGTH (value_type) == 8 \
1508 /* Return true if the function specified is using the structure returning
1509 convention on this machine to return arguments, or 0 if it is using
1510 the value returning convention. FUNCTION is the value representing
1511 the function, FUNCADDR is the address of the function, and VALUE_TYPE
1512 is the type returned by the function. GCC_P is nonzero if compiled
1516 using_struct_return (function, funcaddr, value_type, gcc_p)
1519 struct type *value_type;
1523 register enum type_code code = TYPE_CODE (value_type);
1525 if (code == TYPE_CODE_ERROR)
1526 error ("Function return type unknown.");
1528 if (code == TYPE_CODE_STRUCT ||
1529 code == TYPE_CODE_UNION ||
1530 code == TYPE_CODE_ARRAY)
1531 return USE_STRUCT_CONVENTION (gcc_p, value_type);
1536 /* Store VAL so it will be returned if a function returns now.
1537 Does not verify that VAL's type matches what the current
1538 function wants to return. */
1541 set_return_value (val)
1544 register enum type_code code = TYPE_CODE (VALUE_TYPE (val));
1548 if (code == TYPE_CODE_ERROR)
1549 error ("Function return type unknown.");
1551 if ( code == TYPE_CODE_STRUCT
1552 || code == TYPE_CODE_UNION) /* FIXME, implement struct return. */
1553 error ("GDB does not support specifying a struct or union return value.");
1555 /* FIXME, this is bogus. We don't know what the return conventions
1556 are, or how values should be promoted.... */
1557 if (code == TYPE_CODE_FLT)
1559 dbuf = value_as_double (val);
1561 STORE_RETURN_VALUE (VALUE_TYPE (val), (char *)&dbuf);
1565 lbuf = value_as_long (val);
1566 STORE_RETURN_VALUE (VALUE_TYPE (val), (char *)&lbuf);
1571 _initialize_values ()
1573 add_cmd ("convenience", no_class, show_convenience,
1574 "Debugger convenience (\"$foo\") variables.\n\
1575 These variables are created when you assign them values;\n\
1576 thus, \"print $foo=1\" gives \"$foo\" the value 1. Values may be any type.\n\n\
1577 A few convenience variables are given values automatically:\n\
1578 \"$_\"holds the last address examined with \"x\" or \"info lines\",\n\
1579 \"$__\" holds the contents of the last address examined with \"x\".",
1582 add_cmd ("values", no_class, show_values,
1583 "Elements of value history around item number IDX (or last ten).",