(struct varobj): New member print_value.
[deliverable/binutils-gdb.git] / gdb / varobj.c
CommitLineData
8b93c638 1/* Implementation of the GDB variable objects API.
bc8332bb 2
48426bc2 3 Copyright (C) 1999, 2000, 2001, 2002, 2003, 2004, 2005, 2006
1ecb4ee0 4 Free Software Foundation, Inc.
8b93c638
JM
5
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.
10
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.
15
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
197e01b6
EZ
18 Foundation, Inc., 51 Franklin Street, Fifth Floor,
19 Boston, MA 02110-1301, USA. */
8b93c638
JM
20
21#include "defs.h"
a6c442d8 22#include "exceptions.h"
8b93c638
JM
23#include "value.h"
24#include "expression.h"
25#include "frame.h"
8b93c638
JM
26#include "language.h"
27#include "wrapper.h"
28#include "gdbcmd.h"
d2353924 29#include "block.h"
a6c442d8
MK
30
31#include "gdb_assert.h"
b66d6d2e 32#include "gdb_string.h"
8b93c638
JM
33
34#include "varobj.h"
28335dcc 35#include "vec.h"
8b93c638
JM
36
37/* Non-zero if we want to see trace of varobj level stuff. */
38
39int varobjdebug = 0;
920d2a44
AC
40static void
41show_varobjdebug (struct ui_file *file, int from_tty,
42 struct cmd_list_element *c, const char *value)
43{
44 fprintf_filtered (file, _("Varobj debugging is %s.\n"), value);
45}
8b93c638
JM
46
47/* String representations of gdb's format codes */
48char *varobj_format_string[] =
72330bd6 49 { "natural", "binary", "decimal", "hexadecimal", "octal" };
8b93c638
JM
50
51/* String representations of gdb's known languages */
72330bd6 52char *varobj_language_string[] = { "unknown", "C", "C++", "Java" };
8b93c638
JM
53
54/* Data structures */
55
56/* Every root variable has one of these structures saved in its
57 varobj. Members which must be free'd are noted. */
58struct varobj_root
72330bd6 59{
8b93c638 60
72330bd6
AC
61 /* Alloc'd expression for this parent. */
62 struct expression *exp;
8b93c638 63
72330bd6
AC
64 /* Block for which this expression is valid */
65 struct block *valid_block;
8b93c638 66
72330bd6 67 /* The frame for this expression */
e64d9b3d 68 struct frame_id frame;
8b93c638 69
72330bd6
AC
70 /* If 1, "update" always recomputes the frame & valid block
71 using the currently selected frame. */
72 int use_selected_frame;
73a93a32 73
72330bd6
AC
74 /* Language info for this variable and its children */
75 struct language_specific *lang;
8b93c638 76
72330bd6
AC
77 /* The varobj for this root node. */
78 struct varobj *rootvar;
8b93c638 79
72330bd6
AC
80 /* Next root variable */
81 struct varobj_root *next;
82};
8b93c638 83
28335dcc
VP
84typedef struct varobj *varobj_p;
85
86DEF_VEC_P (varobj_p);
87
8b93c638
JM
88/* Every variable in the system has a structure of this type defined
89 for it. This structure holds all information necessary to manipulate
90 a particular object variable. Members which must be freed are noted. */
91struct varobj
72330bd6 92{
8b93c638 93
72330bd6
AC
94 /* Alloc'd name of the variable for this object.. If this variable is a
95 child, then this name will be the child's source name.
96 (bar, not foo.bar) */
97 /* NOTE: This is the "expression" */
98 char *name;
8b93c638 99
72330bd6
AC
100 /* The alloc'd name for this variable's object. This is here for
101 convenience when constructing this object's children. */
102 char *obj_name;
8b93c638 103
72330bd6
AC
104 /* Index of this variable in its parent or -1 */
105 int index;
8b93c638 106
72330bd6
AC
107 /* The type of this variable. This may NEVER be NULL. */
108 struct type *type;
8b93c638 109
acd65feb 110 /* The value of this expression or subexpression. This may be NULL.
b2c2bd75
VP
111 Invariant: if varobj_value_is_changeable_p (this) is non-zero,
112 the value is either NULL, or not lazy. */
30b28db1 113 struct value *value;
8b93c638 114
72330bd6
AC
115 /* Did an error occur evaluating the expression or getting its value? */
116 int error;
8b93c638 117
72330bd6
AC
118 /* The number of (immediate) children this variable has */
119 int num_children;
8b93c638 120
72330bd6
AC
121 /* If this object is a child, this points to its immediate parent. */
122 struct varobj *parent;
8b93c638 123
28335dcc
VP
124 /* Children of this object. */
125 VEC (varobj_p) *children;
8b93c638 126
72330bd6
AC
127 /* Description of the root variable. Points to root variable for children. */
128 struct varobj_root *root;
8b93c638 129
72330bd6
AC
130 /* The format of the output for this object */
131 enum varobj_display_formats format;
fb9b6b35
JJ
132
133 /* Was this variable updated via a varobj_set_value operation */
134 int updated;
85265413
NR
135
136 /* Last print value. */
137 char *print_value;
72330bd6 138};
8b93c638 139
8b93c638 140struct cpstack
72330bd6
AC
141{
142 char *name;
143 struct cpstack *next;
144};
8b93c638
JM
145
146/* A list of varobjs */
147
148struct vlist
72330bd6
AC
149{
150 struct varobj *var;
151 struct vlist *next;
152};
8b93c638
JM
153
154/* Private function prototypes */
155
156/* Helper functions for the above subcommands. */
157
a14ed312 158static int delete_variable (struct cpstack **, struct varobj *, int);
8b93c638 159
a14ed312
KB
160static void delete_variable_1 (struct cpstack **, int *,
161 struct varobj *, int, int);
8b93c638 162
a14ed312 163static int install_variable (struct varobj *);
8b93c638 164
a14ed312 165static void uninstall_variable (struct varobj *);
8b93c638 166
a14ed312 167static struct varobj *create_child (struct varobj *, int, char *);
8b93c638 168
8b93c638
JM
169/* Utility routines */
170
a14ed312 171static struct varobj *new_variable (void);
8b93c638 172
a14ed312 173static struct varobj *new_root_variable (void);
8b93c638 174
a14ed312 175static void free_variable (struct varobj *var);
8b93c638 176
74b7792f
AC
177static struct cleanup *make_cleanup_free_variable (struct varobj *var);
178
a14ed312 179static struct type *get_type (struct varobj *var);
8b93c638 180
a14ed312 181static struct type *get_type_deref (struct varobj *var);
8b93c638 182
a14ed312 183static struct type *get_target_type (struct type *);
8b93c638 184
a14ed312 185static enum varobj_display_formats variable_default_display (struct varobj *);
8b93c638 186
a14ed312 187static void cppush (struct cpstack **pstack, char *name);
8b93c638 188
a14ed312 189static char *cppop (struct cpstack **pstack);
8b93c638 190
acd65feb
VP
191static int install_new_value (struct varobj *var, struct value *value,
192 int initial);
193
8b93c638
JM
194/* Language-specific routines. */
195
a14ed312 196static enum varobj_languages variable_language (struct varobj *var);
8b93c638 197
a14ed312 198static int number_of_children (struct varobj *);
8b93c638 199
a14ed312 200static char *name_of_variable (struct varobj *);
8b93c638 201
a14ed312 202static char *name_of_child (struct varobj *, int);
8b93c638 203
30b28db1 204static struct value *value_of_root (struct varobj **var_handle, int *);
8b93c638 205
30b28db1 206static struct value *value_of_child (struct varobj *parent, int index);
8b93c638 207
a14ed312 208static int variable_editable (struct varobj *var);
8b93c638 209
a14ed312 210static char *my_value_of_variable (struct varobj *var);
8b93c638 211
85265413
NR
212static char *value_get_print_value (struct value *value,
213 enum varobj_display_formats format);
214
b2c2bd75
VP
215static int varobj_value_is_changeable_p (struct varobj *var);
216
217static int is_root_p (struct varobj *var);
8b93c638
JM
218
219/* C implementation */
220
a14ed312 221static int c_number_of_children (struct varobj *var);
8b93c638 222
a14ed312 223static char *c_name_of_variable (struct varobj *parent);
8b93c638 224
a14ed312 225static char *c_name_of_child (struct varobj *parent, int index);
8b93c638 226
30b28db1 227static struct value *c_value_of_root (struct varobj **var_handle);
8b93c638 228
30b28db1 229static struct value *c_value_of_child (struct varobj *parent, int index);
8b93c638 230
a14ed312 231static struct type *c_type_of_child (struct varobj *parent, int index);
8b93c638 232
a14ed312 233static int c_variable_editable (struct varobj *var);
8b93c638 234
a14ed312 235static char *c_value_of_variable (struct varobj *var);
8b93c638
JM
236
237/* C++ implementation */
238
a14ed312 239static int cplus_number_of_children (struct varobj *var);
8b93c638 240
a14ed312 241static void cplus_class_num_children (struct type *type, int children[3]);
8b93c638 242
a14ed312 243static char *cplus_name_of_variable (struct varobj *parent);
8b93c638 244
a14ed312 245static char *cplus_name_of_child (struct varobj *parent, int index);
8b93c638 246
30b28db1 247static struct value *cplus_value_of_root (struct varobj **var_handle);
8b93c638 248
30b28db1 249static struct value *cplus_value_of_child (struct varobj *parent, int index);
8b93c638 250
a14ed312 251static struct type *cplus_type_of_child (struct varobj *parent, int index);
8b93c638 252
a14ed312 253static int cplus_variable_editable (struct varobj *var);
8b93c638 254
a14ed312 255static char *cplus_value_of_variable (struct varobj *var);
8b93c638
JM
256
257/* Java implementation */
258
a14ed312 259static int java_number_of_children (struct varobj *var);
8b93c638 260
a14ed312 261static char *java_name_of_variable (struct varobj *parent);
8b93c638 262
a14ed312 263static char *java_name_of_child (struct varobj *parent, int index);
8b93c638 264
30b28db1 265static struct value *java_value_of_root (struct varobj **var_handle);
8b93c638 266
30b28db1 267static struct value *java_value_of_child (struct varobj *parent, int index);
8b93c638 268
a14ed312 269static struct type *java_type_of_child (struct varobj *parent, int index);
8b93c638 270
a14ed312 271static int java_variable_editable (struct varobj *var);
8b93c638 272
a14ed312 273static char *java_value_of_variable (struct varobj *var);
8b93c638
JM
274
275/* The language specific vector */
276
277struct language_specific
72330bd6 278{
8b93c638 279
72330bd6
AC
280 /* The language of this variable */
281 enum varobj_languages language;
8b93c638 282
72330bd6
AC
283 /* The number of children of PARENT. */
284 int (*number_of_children) (struct varobj * parent);
8b93c638 285
72330bd6
AC
286 /* The name (expression) of a root varobj. */
287 char *(*name_of_variable) (struct varobj * parent);
8b93c638 288
72330bd6
AC
289 /* The name of the INDEX'th child of PARENT. */
290 char *(*name_of_child) (struct varobj * parent, int index);
8b93c638 291
30b28db1
AC
292 /* The ``struct value *'' of the root variable ROOT. */
293 struct value *(*value_of_root) (struct varobj ** root_handle);
8b93c638 294
30b28db1
AC
295 /* The ``struct value *'' of the INDEX'th child of PARENT. */
296 struct value *(*value_of_child) (struct varobj * parent, int index);
8b93c638 297
72330bd6
AC
298 /* The type of the INDEX'th child of PARENT. */
299 struct type *(*type_of_child) (struct varobj * parent, int index);
8b93c638 300
72330bd6
AC
301 /* Is VAR editable? */
302 int (*variable_editable) (struct varobj * var);
8b93c638 303
72330bd6
AC
304 /* The current value of VAR. */
305 char *(*value_of_variable) (struct varobj * var);
306};
8b93c638
JM
307
308/* Array of known source language routines. */
d5d6fca5 309static struct language_specific languages[vlang_end] = {
8b93c638
JM
310 /* Unknown (try treating as C */
311 {
72330bd6
AC
312 vlang_unknown,
313 c_number_of_children,
314 c_name_of_variable,
315 c_name_of_child,
316 c_value_of_root,
317 c_value_of_child,
318 c_type_of_child,
319 c_variable_editable,
320 c_value_of_variable}
8b93c638
JM
321 ,
322 /* C */
323 {
72330bd6
AC
324 vlang_c,
325 c_number_of_children,
326 c_name_of_variable,
327 c_name_of_child,
328 c_value_of_root,
329 c_value_of_child,
330 c_type_of_child,
331 c_variable_editable,
332 c_value_of_variable}
8b93c638
JM
333 ,
334 /* C++ */
335 {
72330bd6
AC
336 vlang_cplus,
337 cplus_number_of_children,
338 cplus_name_of_variable,
339 cplus_name_of_child,
340 cplus_value_of_root,
341 cplus_value_of_child,
342 cplus_type_of_child,
343 cplus_variable_editable,
344 cplus_value_of_variable}
8b93c638
JM
345 ,
346 /* Java */
347 {
72330bd6
AC
348 vlang_java,
349 java_number_of_children,
350 java_name_of_variable,
351 java_name_of_child,
352 java_value_of_root,
353 java_value_of_child,
354 java_type_of_child,
355 java_variable_editable,
356 java_value_of_variable}
8b93c638
JM
357};
358
359/* A little convenience enum for dealing with C++/Java */
360enum vsections
72330bd6
AC
361{
362 v_public = 0, v_private, v_protected
363};
8b93c638
JM
364
365/* Private data */
366
367/* Mappings of varobj_display_formats enums to gdb's format codes */
72330bd6 368static int format_code[] = { 0, 't', 'd', 'x', 'o' };
8b93c638
JM
369
370/* Header of the list of root variable objects */
371static struct varobj_root *rootlist;
372static int rootcount = 0; /* number of root varobjs in the list */
373
374/* Prime number indicating the number of buckets in the hash table */
375/* A prime large enough to avoid too many colisions */
376#define VAROBJ_TABLE_SIZE 227
377
378/* Pointer to the varobj hash table (built at run time) */
379static struct vlist **varobj_table;
380
8b93c638
JM
381/* Is the variable X one of our "fake" children? */
382#define CPLUS_FAKE_CHILD(x) \
383((x) != NULL && (x)->type == NULL && (x)->value == NULL)
384\f
385
386/* API Implementation */
b2c2bd75
VP
387static int
388is_root_p (struct varobj *var)
389{
390 return (var->root->rootvar == var);
391}
8b93c638
JM
392
393/* Creates a varobj (not its children) */
394
7d8547c9
AC
395/* Return the full FRAME which corresponds to the given CORE_ADDR
396 or NULL if no FRAME on the chain corresponds to CORE_ADDR. */
397
398static struct frame_info *
399find_frame_addr_in_frame_chain (CORE_ADDR frame_addr)
400{
401 struct frame_info *frame = NULL;
402
403 if (frame_addr == (CORE_ADDR) 0)
404 return NULL;
405
406 while (1)
407 {
408 frame = get_prev_frame (frame);
409 if (frame == NULL)
410 return NULL;
eb5492fa 411 if (get_frame_base_address (frame) == frame_addr)
7d8547c9
AC
412 return frame;
413 }
414}
415
8b93c638
JM
416struct varobj *
417varobj_create (char *objname,
72330bd6 418 char *expression, CORE_ADDR frame, enum varobj_type type)
8b93c638
JM
419{
420 struct varobj *var;
2c67cb8b
AC
421 struct frame_info *fi;
422 struct frame_info *old_fi = NULL;
8b93c638
JM
423 struct block *block;
424 struct cleanup *old_chain;
425
426 /* Fill out a varobj structure for the (root) variable being constructed. */
427 var = new_root_variable ();
74b7792f 428 old_chain = make_cleanup_free_variable (var);
8b93c638
JM
429
430 if (expression != NULL)
431 {
432 char *p;
433 enum varobj_languages lang;
acd65feb 434 struct value *value;
8b93c638
JM
435
436 /* Parse and evaluate the expression, filling in as much
437 of the variable's data as possible */
438
439 /* Allow creator to specify context of variable */
72330bd6 440 if ((type == USE_CURRENT_FRAME) || (type == USE_SELECTED_FRAME))
6e7f8b9c 441 fi = deprecated_selected_frame;
8b93c638 442 else
7d8547c9
AC
443 /* FIXME: cagney/2002-11-23: This code should be doing a
444 lookup using the frame ID and not just the frame's
445 ``address''. This, of course, means an interface change.
446 However, with out that interface change ISAs, such as the
447 ia64 with its two stacks, won't work. Similar goes for the
448 case where there is a frameless function. */
8b93c638
JM
449 fi = find_frame_addr_in_frame_chain (frame);
450
73a93a32
JI
451 /* frame = -2 means always use selected frame */
452 if (type == USE_SELECTED_FRAME)
453 var->root->use_selected_frame = 1;
454
8b93c638
JM
455 block = NULL;
456 if (fi != NULL)
ae767bfb 457 block = get_frame_block (fi, 0);
8b93c638
JM
458
459 p = expression;
460 innermost_block = NULL;
73a93a32
JI
461 /* Wrap the call to parse expression, so we can
462 return a sensible error. */
463 if (!gdb_parse_exp_1 (&p, block, 0, &var->root->exp))
464 {
465 return NULL;
466 }
8b93c638
JM
467
468 /* Don't allow variables to be created for types. */
469 if (var->root->exp->elts[0].opcode == OP_TYPE)
470 {
471 do_cleanups (old_chain);
bc8332bb
AC
472 fprintf_unfiltered (gdb_stderr, "Attempt to use a type name"
473 " as an expression.\n");
8b93c638
JM
474 return NULL;
475 }
476
477 var->format = variable_default_display (var);
478 var->root->valid_block = innermost_block;
479 var->name = savestring (expression, strlen (expression));
480
481 /* When the frame is different from the current frame,
482 we must select the appropriate frame before parsing
483 the expression, otherwise the value will not be current.
484 Since select_frame is so benign, just call it for all cases. */
485 if (fi != NULL)
486 {
7a424e99 487 var->root->frame = get_frame_id (fi);
6e7f8b9c 488 old_fi = deprecated_selected_frame;
0f7d239c 489 select_frame (fi);
8b93c638
JM
490 }
491
492 /* We definitively need to catch errors here.
493 If evaluate_expression succeeds we got the value we wanted.
494 But if it fails, we still go on with a call to evaluate_type() */
acd65feb
VP
495 if (!gdb_evaluate_expression (var->root->exp, &value))
496 /* Error getting the value. Try to at least get the
497 right type. */
498 value = evaluate_type (var->root->exp);
499
acd65feb 500 var->type = value_type (value);
acd65feb 501 install_new_value (var, value, 1 /* Initial assignment */);
8b93c638
JM
502
503 /* Set language info */
504 lang = variable_language (var);
d5d6fca5 505 var->root->lang = &languages[lang];
8b93c638
JM
506
507 /* Set ourselves as our root */
508 var->root->rootvar = var;
509
510 /* Reset the selected frame */
511 if (fi != NULL)
0f7d239c 512 select_frame (old_fi);
8b93c638
JM
513 }
514
73a93a32
JI
515 /* If the variable object name is null, that means this
516 is a temporary variable, so don't install it. */
517
518 if ((var != NULL) && (objname != NULL))
8b93c638
JM
519 {
520 var->obj_name = savestring (objname, strlen (objname));
521
522 /* If a varobj name is duplicated, the install will fail so
523 we must clenup */
524 if (!install_variable (var))
525 {
526 do_cleanups (old_chain);
527 return NULL;
528 }
529 }
530
531 discard_cleanups (old_chain);
532 return var;
533}
534
535/* Generates an unique name that can be used for a varobj */
536
537char *
538varobj_gen_name (void)
539{
540 static int id = 0;
e64d9b3d 541 char *obj_name;
8b93c638
JM
542
543 /* generate a name for this object */
544 id++;
b435e160 545 obj_name = xstrprintf ("var%d", id);
8b93c638 546
e64d9b3d 547 return obj_name;
8b93c638
JM
548}
549
550/* Given an "objname", returns the pointer to the corresponding varobj
551 or NULL if not found */
552
553struct varobj *
554varobj_get_handle (char *objname)
555{
556 struct vlist *cv;
557 const char *chp;
558 unsigned int index = 0;
559 unsigned int i = 1;
560
561 for (chp = objname; *chp; chp++)
562 {
563 index = (index + (i++ * (unsigned int) *chp)) % VAROBJ_TABLE_SIZE;
564 }
565
566 cv = *(varobj_table + index);
567 while ((cv != NULL) && (strcmp (cv->var->obj_name, objname) != 0))
568 cv = cv->next;
569
570 if (cv == NULL)
8a3fe4f8 571 error (_("Variable object not found"));
8b93c638
JM
572
573 return cv->var;
574}
575
576/* Given the handle, return the name of the object */
577
578char *
579varobj_get_objname (struct varobj *var)
580{
581 return var->obj_name;
582}
583
584/* Given the handle, return the expression represented by the object */
585
586char *
587varobj_get_expression (struct varobj *var)
588{
589 return name_of_variable (var);
590}
591
592/* Deletes a varobj and all its children if only_children == 0,
593 otherwise deletes only the children; returns a malloc'ed list of all the
594 (malloc'ed) names of the variables that have been deleted (NULL terminated) */
595
596int
597varobj_delete (struct varobj *var, char ***dellist, int only_children)
598{
599 int delcount;
600 int mycount;
601 struct cpstack *result = NULL;
602 char **cp;
603
604 /* Initialize a stack for temporary results */
605 cppush (&result, NULL);
606
607 if (only_children)
608 /* Delete only the variable children */
609 delcount = delete_variable (&result, var, 1 /* only the children */ );
610 else
611 /* Delete the variable and all its children */
612 delcount = delete_variable (&result, var, 0 /* parent+children */ );
613
614 /* We may have been asked to return a list of what has been deleted */
615 if (dellist != NULL)
616 {
617 *dellist = xmalloc ((delcount + 1) * sizeof (char *));
618
619 cp = *dellist;
620 mycount = delcount;
621 *cp = cppop (&result);
622 while ((*cp != NULL) && (mycount > 0))
623 {
624 mycount--;
625 cp++;
626 *cp = cppop (&result);
627 }
628
629 if (mycount || (*cp != NULL))
8a3fe4f8 630 warning (_("varobj_delete: assertion failed - mycount(=%d) <> 0"),
72330bd6 631 mycount);
8b93c638
JM
632 }
633
634 return delcount;
635}
636
637/* Set/Get variable object display format */
638
639enum varobj_display_formats
640varobj_set_display_format (struct varobj *var,
641 enum varobj_display_formats format)
642{
643 switch (format)
644 {
645 case FORMAT_NATURAL:
646 case FORMAT_BINARY:
647 case FORMAT_DECIMAL:
648 case FORMAT_HEXADECIMAL:
649 case FORMAT_OCTAL:
650 var->format = format;
651 break;
652
653 default:
654 var->format = variable_default_display (var);
655 }
656
657 return var->format;
658}
659
660enum varobj_display_formats
661varobj_get_display_format (struct varobj *var)
662{
663 return var->format;
664}
665
666int
667varobj_get_num_children (struct varobj *var)
668{
669 if (var->num_children == -1)
670 var->num_children = number_of_children (var);
671
672 return var->num_children;
673}
674
675/* Creates a list of the immediate children of a variable object;
676 the return code is the number of such children or -1 on error */
677
678int
679varobj_list_children (struct varobj *var, struct varobj ***childlist)
680{
681 struct varobj *child;
682 char *name;
683 int i;
684
685 /* sanity check: have we been passed a pointer? */
686 if (childlist == NULL)
687 return -1;
688
689 *childlist = NULL;
690
691 if (var->num_children == -1)
692 var->num_children = number_of_children (var);
693
74a44383
DJ
694 /* If that failed, give up. */
695 if (var->num_children == -1)
696 return -1;
697
28335dcc
VP
698 /* If we're called when the list of children is not yet initialized,
699 allocate enough elements in it. */
700 while (VEC_length (varobj_p, var->children) < var->num_children)
701 VEC_safe_push (varobj_p, var->children, NULL);
702
8b93c638
JM
703 /* List of children */
704 *childlist = xmalloc ((var->num_children + 1) * sizeof (struct varobj *));
705
706 for (i = 0; i < var->num_children; i++)
707 {
28335dcc
VP
708 varobj_p existing;
709
8b93c638
JM
710 /* Mark as the end in case we bail out */
711 *((*childlist) + i) = NULL;
712
28335dcc
VP
713 existing = VEC_index (varobj_p, var->children, i);
714
715 if (existing == NULL)
716 {
717 /* Either it's the first call to varobj_list_children for
718 this variable object, and the child was never created,
719 or it was explicitly deleted by the client. */
720 name = name_of_child (var, i);
721 existing = create_child (var, i, name);
722 VEC_replace (varobj_p, var->children, i, existing);
723 }
8b93c638 724
28335dcc 725 *((*childlist) + i) = existing;
8b93c638
JM
726 }
727
728 /* End of list is marked by a NULL pointer */
729 *((*childlist) + i) = NULL;
730
731 return var->num_children;
732}
733
734/* Obtain the type of an object Variable as a string similar to the one gdb
735 prints on the console */
736
737char *
738varobj_get_type (struct varobj *var)
739{
30b28db1 740 struct value *val;
8b93c638
JM
741 struct cleanup *old_chain;
742 struct ui_file *stb;
743 char *thetype;
744 long length;
745
746 /* For the "fake" variables, do not return a type. (It's type is
747 NULL, too.) */
748 if (CPLUS_FAKE_CHILD (var))
749 return NULL;
750
751 stb = mem_fileopen ();
752 old_chain = make_cleanup_ui_file_delete (stb);
753
30b28db1 754 /* To print the type, we simply create a zero ``struct value *'' and
8b93c638
JM
755 cast it to our type. We then typeprint this variable. */
756 val = value_zero (var->type, not_lval);
df407dfe 757 type_print (value_type (val), "", stb, -1);
8b93c638
JM
758
759 thetype = ui_file_xstrdup (stb, &length);
760 do_cleanups (old_chain);
761 return thetype;
762}
763
1ecb4ee0
DJ
764/* Obtain the type of an object variable. */
765
766struct type *
767varobj_get_gdb_type (struct varobj *var)
768{
769 return var->type;
770}
771
8b93c638
JM
772enum varobj_languages
773varobj_get_language (struct varobj *var)
774{
775 return variable_language (var);
776}
777
778int
779varobj_get_attributes (struct varobj *var)
780{
781 int attributes = 0;
782
783 if (variable_editable (var))
784 /* FIXME: define masks for attributes */
785 attributes |= 0x00000001; /* Editable */
786
787 return attributes;
788}
789
790char *
791varobj_get_value (struct varobj *var)
792{
793 return my_value_of_variable (var);
794}
795
796/* Set the value of an object variable (if it is editable) to the
797 value of the given expression */
798/* Note: Invokes functions that can call error() */
799
800int
801varobj_set_value (struct varobj *var, char *expression)
802{
30b28db1 803 struct value *val;
8b93c638 804 int offset = 0;
a6c442d8 805 int error = 0;
8b93c638
JM
806
807 /* The argument "expression" contains the variable's new value.
808 We need to first construct a legal expression for this -- ugh! */
809 /* Does this cover all the bases? */
810 struct expression *exp;
30b28db1 811 struct value *value;
8b93c638
JM
812 int saved_input_radix = input_radix;
813
575bbeb6 814 if (var->value != NULL && variable_editable (var) && !var->error)
8b93c638
JM
815 {
816 char *s = expression;
817 int i;
8b93c638
JM
818
819 input_radix = 10; /* ALWAYS reset to decimal temporarily */
7a24eb7c 820 exp = parse_exp_1 (&s, 0, 0);
8b93c638
JM
821 if (!gdb_evaluate_expression (exp, &value))
822 {
823 /* We cannot proceed without a valid expression. */
8038e1e2 824 xfree (exp);
8b93c638
JM
825 return 0;
826 }
827
acd65feb 828 /* All types that are editable must also be changeable. */
b2c2bd75 829 gdb_assert (varobj_value_is_changeable_p (var));
acd65feb
VP
830
831 /* The value of a changeable variable object must not be lazy. */
832 gdb_assert (!value_lazy (var->value));
833
834 /* Need to coerce the input. We want to check if the
835 value of the variable object will be different
836 after assignment, and the first thing value_assign
837 does is coerce the input.
838 For example, if we are assigning an array to a pointer variable we
839 should compare the pointer with the the array's address, not with the
840 array's content. */
841 value = coerce_array (value);
842
acd65feb
VP
843 /* The new value may be lazy. gdb_value_assign, or
844 rather value_contents, will take care of this.
845 If fetching of the new value will fail, gdb_value_assign
846 with catch the exception. */
575bbeb6 847 if (!gdb_value_assign (var->value, value, &val))
8a1a0112 848 return 0;
b26ed50d 849
ae097835
VP
850 /* If the value has changed, record it, so that next -var-update can
851 report this change. If a variable had a value of '1', we've set it
852 to '333' and then set again to '1', when -var-update will report this
853 variable as changed -- because the first assignment has set the
854 'updated' flag. There's no need to optimize that, because return value
855 of -var-update should be considered an approximation. */
856 var->updated = install_new_value (var, val, 0 /* Compare values. */);
8b93c638
JM
857 input_radix = saved_input_radix;
858 return 1;
859 }
860
861 return 0;
862}
863
864/* Returns a malloc'ed list with all root variable objects */
865int
866varobj_list (struct varobj ***varlist)
867{
868 struct varobj **cv;
869 struct varobj_root *croot;
870 int mycount = rootcount;
871
872 /* Alloc (rootcount + 1) entries for the result */
873 *varlist = xmalloc ((rootcount + 1) * sizeof (struct varobj *));
874
875 cv = *varlist;
876 croot = rootlist;
877 while ((croot != NULL) && (mycount > 0))
878 {
879 *cv = croot->rootvar;
880 mycount--;
881 cv++;
882 croot = croot->next;
883 }
884 /* Mark the end of the list */
885 *cv = NULL;
886
887 if (mycount || (croot != NULL))
72330bd6
AC
888 warning
889 ("varobj_list: assertion failed - wrong tally of root vars (%d:%d)",
890 rootcount, mycount);
8b93c638
JM
891
892 return rootcount;
893}
894
acd65feb
VP
895/* Assign a new value to a variable object. If INITIAL is non-zero,
896 this is the first assignement after the variable object was just
897 created, or changed type. In that case, just assign the value
898 and return 0.
899 Otherwise, assign the value and if type_changeable returns non-zero,
900 find if the new value is different from the current value.
b26ed50d
VP
901 Return 1 if so, and 0 if the values are equal.
902
903 The VALUE parameter should not be released -- the function will
904 take care of releasing it when needed. */
acd65feb
VP
905static int
906install_new_value (struct varobj *var, struct value *value, int initial)
907{
908 int changeable;
909 int need_to_fetch;
910 int changed = 0;
911
912 var->error = 0;
913 /* We need to know the varobj's type to decide if the value should
914 be fetched or not. C++ fake children (public/protected/private) don't have
915 a type. */
916 gdb_assert (var->type || CPLUS_FAKE_CHILD (var));
b2c2bd75 917 changeable = varobj_value_is_changeable_p (var);
acd65feb
VP
918 need_to_fetch = changeable;
919
b26ed50d
VP
920 /* We are not interested in the address of references, and given
921 that in C++ a reference is not rebindable, it cannot
922 meaningfully change. So, get hold of the real value. */
923 if (value)
924 {
925 value = coerce_ref (value);
926 release_value (value);
927 }
928
acd65feb
VP
929 if (var->type && TYPE_CODE (var->type) == TYPE_CODE_UNION)
930 /* For unions, we need to fetch the value implicitly because
931 of implementation of union member fetch. When gdb
932 creates a value for a field and the value of the enclosing
933 structure is not lazy, it immediately copies the necessary
934 bytes from the enclosing values. If the enclosing value is
935 lazy, the call to value_fetch_lazy on the field will read
936 the data from memory. For unions, that means we'll read the
937 same memory more than once, which is not desirable. So
938 fetch now. */
939 need_to_fetch = 1;
940
941 /* The new value might be lazy. If the type is changeable,
942 that is we'll be comparing values of this type, fetch the
943 value now. Otherwise, on the next update the old value
944 will be lazy, which means we've lost that old value. */
945 if (need_to_fetch && value && value_lazy (value))
946 {
947 if (!gdb_value_fetch_lazy (value))
948 {
949 var->error = 1;
950 /* Set the value to NULL, so that for the next -var-update,
951 we don't try to compare the new value with this value,
952 that we couldn't even read. */
953 value = NULL;
954 }
955 else
956 var->error = 0;
957 }
958
959 /* If the type is changeable, compare the old and the new values.
960 If this is the initial assignment, we don't have any old value
961 to compare with. */
85265413
NR
962 if (initial)
963 var->print_value = value_get_print_value (value, var->format);
964 else if (changeable)
acd65feb
VP
965 {
966 /* If the value of the varobj was changed by -var-set-value, then the
967 value in the varobj and in the target is the same. However, that value
968 is different from the value that the varobj had after the previous
969 -var-update. So need to the varobj as changed. */
970 if (var->updated)
971 changed = 1;
972 else
973 {
974 /* Try to compare the values. That requires that both
975 values are non-lazy. */
976
977 /* Quick comparison of NULL values. */
978 if (var->value == NULL && value == NULL)
979 /* Equal. */
980 ;
981 else if (var->value == NULL || value == NULL)
982 changed = 1;
983 else
984 {
85265413 985 char *print_value;
acd65feb
VP
986 gdb_assert (!value_lazy (var->value));
987 gdb_assert (!value_lazy (value));
85265413
NR
988 print_value = value_get_print_value (value, var->format);
989
990 if (strcmp (var->print_value, print_value) != 0)
991 {
992 xfree (var->print_value);
993 var->print_value = print_value;
994 changed = 1;
995 }
996 else
997 xfree (print_value);
acd65feb
VP
998 }
999 }
1000 }
85265413 1001
acd65feb
VP
1002 /* We must always keep the new value, since children depend on it. */
1003 if (var->value != NULL)
1004 value_free (var->value);
1005 var->value = value;
1006 var->updated = 0;
85265413 1007
b26ed50d 1008 gdb_assert (!var->value || value_type (var->value));
acd65feb
VP
1009
1010 return changed;
1011}
acd65feb 1012
8b93c638
JM
1013/* Update the values for a variable and its children. This is a
1014 two-pronged attack. First, re-parse the value for the root's
1015 expression to see if it's changed. Then go all the way
1016 through its children, reconstructing them and noting if they've
1017 changed.
73a93a32
JI
1018 Return value:
1019 -1 if there was an error updating the varobj
1020 -2 if the type changed
1021 Otherwise it is the number of children + parent changed
8b93c638 1022
705da579
KS
1023 Only root variables can be updated...
1024
1025 NOTE: This function may delete the caller's varobj. If it
1026 returns -2, then it has done this and VARP will be modified
1027 to point to the new varobj. */
8b93c638
JM
1028
1029int
705da579 1030varobj_update (struct varobj **varp, struct varobj ***changelist)
8b93c638
JM
1031{
1032 int changed = 0;
a6c442d8 1033 int error = 0;
73a93a32 1034 int type_changed;
8b93c638
JM
1035 int i;
1036 int vleft;
8b93c638
JM
1037 struct varobj *v;
1038 struct varobj **cv;
2c67cb8b 1039 struct varobj **templist = NULL;
30b28db1 1040 struct value *new;
28335dcc
VP
1041 VEC (varobj_p) *stack = NULL;
1042 VEC (varobj_p) *result = NULL;
e64d9b3d
MH
1043 struct frame_id old_fid;
1044 struct frame_info *fi;
8b93c638
JM
1045
1046 /* sanity check: have we been passed a pointer? */
1047 if (changelist == NULL)
1048 return -1;
1049
1050 /* Only root variables can be updated... */
b2c2bd75 1051 if (!is_root_p (*varp))
8b93c638
JM
1052 /* Not a root var */
1053 return -1;
1054
1055 /* Save the selected stack frame, since we will need to change it
1056 in order to evaluate expressions. */
7a424e99 1057 old_fid = get_frame_id (deprecated_selected_frame);
8b93c638
JM
1058
1059 /* Update the root variable. value_of_root can return NULL
1060 if the variable is no longer around, i.e. we stepped out of
73a93a32
JI
1061 the frame in which a local existed. We are letting the
1062 value_of_root variable dispose of the varobj if the type
1063 has changed. */
1064 type_changed = 1;
705da579 1065 new = value_of_root (varp, &type_changed);
0d2bd018
NR
1066
1067 /* Restore selected frame */
1068 fi = frame_find_by_id (old_fid);
1069 if (fi)
1070 select_frame (fi);
1071
8b93c638 1072 if (new == NULL)
73a93a32 1073 {
705da579 1074 (*varp)->error = 1;
73a93a32
JI
1075 return -1;
1076 }
8b93c638 1077
ae093f96
FN
1078 /* If this is a "use_selected_frame" varobj, and its type has changed,
1079 them note that it's changed. */
1080 if (type_changed)
28335dcc 1081 VEC_safe_push (varobj_p, result, *varp);
acd65feb
VP
1082
1083 if (install_new_value ((*varp), new, type_changed))
ae093f96 1084 {
acd65feb
VP
1085 /* If type_changed is 1, install_new_value will never return
1086 non-zero, so we'll never report the same variable twice. */
1087 gdb_assert (!type_changed);
28335dcc 1088 VEC_safe_push (varobj_p, result, *varp);
8b93c638 1089 }
8b93c638 1090
28335dcc 1091 VEC_safe_push (varobj_p, stack, *varp);
8b93c638
JM
1092
1093 /* Walk through the children, reconstructing them all. */
28335dcc 1094 while (!VEC_empty (varobj_p, stack))
8b93c638 1095 {
28335dcc
VP
1096 v = VEC_pop (varobj_p, stack);
1097
1098 /* Push any children. Use reverse order so that the first
1099 child is popped from the work stack first, and so
1100 will be added to result first. This does not
1101 affect correctness, just "nicer". */
1102 for (i = VEC_length (varobj_p, v->children)-1; i >= 0; --i)
8b93c638 1103 {
28335dcc
VP
1104 varobj_p c = VEC_index (varobj_p, v->children, i);
1105 /* Child may be NULL if explicitly deleted by -var-delete. */
1106 if (c != NULL)
1107 VEC_safe_push (varobj_p, stack, c);
8b93c638
JM
1108 }
1109
28335dcc
VP
1110 /* Update this variable, unless it's a root, which is already
1111 updated. */
1112 if (v != *varp)
1113 {
1114 new = value_of_child (v->parent, v->index);
1115 if (install_new_value (v, new, 0 /* type not changed */))
1116 {
1117 /* Note that it's changed */
1118 VEC_safe_push (varobj_p, result, v);
1119 v->updated = 0;
1120 }
8b93c638 1121 }
8b93c638
JM
1122 }
1123
1124 /* Alloc (changed + 1) list entries */
28335dcc 1125 changed = VEC_length (varobj_p, result);
8b93c638 1126 *changelist = xmalloc ((changed + 1) * sizeof (struct varobj *));
28335dcc 1127 cv = *changelist;
8b93c638 1128
28335dcc 1129 for (i = 0; i < changed; ++i)
8b93c638 1130 {
28335dcc
VP
1131 *cv = VEC_index (varobj_p, result, i);
1132 gdb_assert (*cv != NULL);
1133 ++cv;
8b93c638 1134 }
28335dcc 1135 *cv = 0;
8b93c638 1136
73a93a32
JI
1137 if (type_changed)
1138 return -2;
1139 else
1140 return changed;
8b93c638
JM
1141}
1142\f
1143
1144/* Helper functions */
1145
1146/*
1147 * Variable object construction/destruction
1148 */
1149
1150static int
fba45db2
KB
1151delete_variable (struct cpstack **resultp, struct varobj *var,
1152 int only_children_p)
8b93c638
JM
1153{
1154 int delcount = 0;
1155
1156 delete_variable_1 (resultp, &delcount, var,
1157 only_children_p, 1 /* remove_from_parent_p */ );
1158
1159 return delcount;
1160}
1161
1162/* Delete the variable object VAR and its children */
1163/* IMPORTANT NOTE: If we delete a variable which is a child
1164 and the parent is not removed we dump core. It must be always
1165 initially called with remove_from_parent_p set */
1166static void
72330bd6
AC
1167delete_variable_1 (struct cpstack **resultp, int *delcountp,
1168 struct varobj *var, int only_children_p,
1169 int remove_from_parent_p)
8b93c638 1170{
28335dcc 1171 int i;
8b93c638
JM
1172
1173 /* Delete any children of this variable, too. */
28335dcc
VP
1174 for (i = 0; i < VEC_length (varobj_p, var->children); ++i)
1175 {
1176 varobj_p child = VEC_index (varobj_p, var->children, i);
8b93c638 1177 if (!remove_from_parent_p)
28335dcc
VP
1178 child->parent = NULL;
1179 delete_variable_1 (resultp, delcountp, child, 0, only_children_p);
8b93c638 1180 }
28335dcc 1181 VEC_free (varobj_p, var->children);
8b93c638
JM
1182
1183 /* if we were called to delete only the children we are done here */
1184 if (only_children_p)
1185 return;
1186
1187 /* Otherwise, add it to the list of deleted ones and proceed to do so */
73a93a32
JI
1188 /* If the name is null, this is a temporary variable, that has not
1189 yet been installed, don't report it, it belongs to the caller... */
1190 if (var->obj_name != NULL)
8b93c638 1191 {
5b616ba1 1192 cppush (resultp, xstrdup (var->obj_name));
8b93c638
JM
1193 *delcountp = *delcountp + 1;
1194 }
1195
1196 /* If this variable has a parent, remove it from its parent's list */
1197 /* OPTIMIZATION: if the parent of this variable is also being deleted,
1198 (as indicated by remove_from_parent_p) we don't bother doing an
1199 expensive list search to find the element to remove when we are
1200 discarding the list afterwards */
72330bd6 1201 if ((remove_from_parent_p) && (var->parent != NULL))
8b93c638 1202 {
28335dcc 1203 VEC_replace (varobj_p, var->parent->children, var->index, NULL);
8b93c638 1204 }
72330bd6 1205
73a93a32
JI
1206 if (var->obj_name != NULL)
1207 uninstall_variable (var);
8b93c638
JM
1208
1209 /* Free memory associated with this variable */
1210 free_variable (var);
1211}
1212
1213/* Install the given variable VAR with the object name VAR->OBJ_NAME. */
1214static int
fba45db2 1215install_variable (struct varobj *var)
8b93c638
JM
1216{
1217 struct vlist *cv;
1218 struct vlist *newvl;
1219 const char *chp;
1220 unsigned int index = 0;
1221 unsigned int i = 1;
1222
1223 for (chp = var->obj_name; *chp; chp++)
1224 {
1225 index = (index + (i++ * (unsigned int) *chp)) % VAROBJ_TABLE_SIZE;
1226 }
1227
1228 cv = *(varobj_table + index);
1229 while ((cv != NULL) && (strcmp (cv->var->obj_name, var->obj_name) != 0))
1230 cv = cv->next;
1231
1232 if (cv != NULL)
8a3fe4f8 1233 error (_("Duplicate variable object name"));
8b93c638
JM
1234
1235 /* Add varobj to hash table */
1236 newvl = xmalloc (sizeof (struct vlist));
1237 newvl->next = *(varobj_table + index);
1238 newvl->var = var;
1239 *(varobj_table + index) = newvl;
1240
1241 /* If root, add varobj to root list */
b2c2bd75 1242 if (is_root_p (var))
8b93c638
JM
1243 {
1244 /* Add to list of root variables */
1245 if (rootlist == NULL)
1246 var->root->next = NULL;
1247 else
1248 var->root->next = rootlist;
1249 rootlist = var->root;
1250 rootcount++;
1251 }
1252
1253 return 1; /* OK */
1254}
1255
1256/* Unistall the object VAR. */
1257static void
fba45db2 1258uninstall_variable (struct varobj *var)
8b93c638
JM
1259{
1260 struct vlist *cv;
1261 struct vlist *prev;
1262 struct varobj_root *cr;
1263 struct varobj_root *prer;
1264 const char *chp;
1265 unsigned int index = 0;
1266 unsigned int i = 1;
1267
1268 /* Remove varobj from hash table */
1269 for (chp = var->obj_name; *chp; chp++)
1270 {
1271 index = (index + (i++ * (unsigned int) *chp)) % VAROBJ_TABLE_SIZE;
1272 }
1273
1274 cv = *(varobj_table + index);
1275 prev = NULL;
1276 while ((cv != NULL) && (strcmp (cv->var->obj_name, var->obj_name) != 0))
1277 {
1278 prev = cv;
1279 cv = cv->next;
1280 }
1281
1282 if (varobjdebug)
1283 fprintf_unfiltered (gdb_stdlog, "Deleting %s\n", var->obj_name);
1284
1285 if (cv == NULL)
1286 {
72330bd6
AC
1287 warning
1288 ("Assertion failed: Could not find variable object \"%s\" to delete",
1289 var->obj_name);
8b93c638
JM
1290 return;
1291 }
1292
1293 if (prev == NULL)
1294 *(varobj_table + index) = cv->next;
1295 else
1296 prev->next = cv->next;
1297
b8c9b27d 1298 xfree (cv);
8b93c638
JM
1299
1300 /* If root, remove varobj from root list */
b2c2bd75 1301 if (is_root_p (var))
8b93c638
JM
1302 {
1303 /* Remove from list of root variables */
1304 if (rootlist == var->root)
1305 rootlist = var->root->next;
1306 else
1307 {
1308 prer = NULL;
1309 cr = rootlist;
1310 while ((cr != NULL) && (cr->rootvar != var))
1311 {
1312 prer = cr;
1313 cr = cr->next;
1314 }
1315 if (cr == NULL)
1316 {
72330bd6
AC
1317 warning
1318 ("Assertion failed: Could not find varobj \"%s\" in root list",
1319 var->obj_name);
8b93c638
JM
1320 return;
1321 }
1322 if (prer == NULL)
1323 rootlist = NULL;
1324 else
1325 prer->next = cr->next;
1326 }
1327 rootcount--;
1328 }
1329
1330}
1331
8b93c638
JM
1332/* Create and install a child of the parent of the given name */
1333static struct varobj *
fba45db2 1334create_child (struct varobj *parent, int index, char *name)
8b93c638
JM
1335{
1336 struct varobj *child;
1337 char *childs_name;
acd65feb 1338 struct value *value;
8b93c638
JM
1339
1340 child = new_variable ();
1341
1342 /* name is allocated by name_of_child */
1343 child->name = name;
1344 child->index = index;
acd65feb 1345 value = value_of_child (parent, index);
8b93c638
JM
1346 child->parent = parent;
1347 child->root = parent->root;
b435e160 1348 childs_name = xstrprintf ("%s.%s", parent->obj_name, name);
8b93c638
JM
1349 child->obj_name = childs_name;
1350 install_variable (child);
1351
acd65feb
VP
1352 /* Compute the type of the child. Must do this before
1353 calling install_new_value. */
1354 if (value != NULL)
1355 /* If the child had no evaluation errors, var->value
1356 will be non-NULL and contain a valid type. */
1357 child->type = value_type (value);
1358 else
1359 /* Otherwise, we must compute the type. */
1360 child->type = (*child->root->lang->type_of_child) (child->parent,
1361 child->index);
1362 install_new_value (child, value, 1);
1363
1364 if ((!CPLUS_FAKE_CHILD (child) && child->value == NULL) || parent->error)
1365 child->error = 1;
8b93c638
JM
1366
1367 return child;
1368}
8b93c638
JM
1369\f
1370
1371/*
1372 * Miscellaneous utility functions.
1373 */
1374
1375/* Allocate memory and initialize a new variable */
1376static struct varobj *
1377new_variable (void)
1378{
1379 struct varobj *var;
1380
1381 var = (struct varobj *) xmalloc (sizeof (struct varobj));
1382 var->name = NULL;
1383 var->obj_name = NULL;
1384 var->index = -1;
1385 var->type = NULL;
1386 var->value = NULL;
1387 var->error = 0;
1388 var->num_children = -1;
1389 var->parent = NULL;
1390 var->children = NULL;
1391 var->format = 0;
1392 var->root = NULL;
fb9b6b35 1393 var->updated = 0;
85265413 1394 var->print_value = NULL;
8b93c638
JM
1395
1396 return var;
1397}
1398
1399/* Allocate memory and initialize a new root variable */
1400static struct varobj *
1401new_root_variable (void)
1402{
1403 struct varobj *var = new_variable ();
1404 var->root = (struct varobj_root *) xmalloc (sizeof (struct varobj_root));;
1405 var->root->lang = NULL;
1406 var->root->exp = NULL;
1407 var->root->valid_block = NULL;
7a424e99 1408 var->root->frame = null_frame_id;
73a93a32 1409 var->root->use_selected_frame = 0;
8b93c638
JM
1410 var->root->rootvar = NULL;
1411
1412 return var;
1413}
1414
1415/* Free any allocated memory associated with VAR. */
1416static void
fba45db2 1417free_variable (struct varobj *var)
8b93c638
JM
1418{
1419 /* Free the expression if this is a root variable. */
b2c2bd75 1420 if (is_root_p (var))
8b93c638 1421 {
96c1eda2 1422 free_current_contents (&var->root->exp);
8038e1e2 1423 xfree (var->root);
8b93c638
JM
1424 }
1425
8038e1e2
AC
1426 xfree (var->name);
1427 xfree (var->obj_name);
85265413 1428 xfree (var->print_value);
8038e1e2 1429 xfree (var);
8b93c638
JM
1430}
1431
74b7792f
AC
1432static void
1433do_free_variable_cleanup (void *var)
1434{
1435 free_variable (var);
1436}
1437
1438static struct cleanup *
1439make_cleanup_free_variable (struct varobj *var)
1440{
1441 return make_cleanup (do_free_variable_cleanup, var);
1442}
1443
6766a268
DJ
1444/* This returns the type of the variable. It also skips past typedefs
1445 to return the real type of the variable.
94b66fa7
KS
1446
1447 NOTE: TYPE_TARGET_TYPE should NOT be used anywhere in this file
1448 except within get_target_type and get_type. */
8b93c638 1449static struct type *
fba45db2 1450get_type (struct varobj *var)
8b93c638
JM
1451{
1452 struct type *type;
1453 type = var->type;
1454
6766a268
DJ
1455 if (type != NULL)
1456 type = check_typedef (type);
8b93c638
JM
1457
1458 return type;
1459}
1460
0f0ac1f5
NR
1461/* This returns the type of the variable, dereferencing references, pointers
1462 and references to pointers, too. */
8b93c638 1463static struct type *
fba45db2 1464get_type_deref (struct varobj *var)
8b93c638
JM
1465{
1466 struct type *type;
1467
1468 type = get_type (var);
1469
0f0ac1f5
NR
1470 if (type)
1471 {
1472 if (TYPE_CODE (type) == TYPE_CODE_REF)
1473 type = get_target_type (type);
1474 if (TYPE_CODE (type) == TYPE_CODE_PTR)
1475 type = get_target_type (type);
1476 }
8b93c638
JM
1477
1478 return type;
1479}
1480
1481/* This returns the target type (or NULL) of TYPE, also skipping
94b66fa7
KS
1482 past typedefs, just like get_type ().
1483
1484 NOTE: TYPE_TARGET_TYPE should NOT be used anywhere in this file
1485 except within get_target_type and get_type. */
8b93c638 1486static struct type *
fba45db2 1487get_target_type (struct type *type)
8b93c638
JM
1488{
1489 if (type != NULL)
1490 {
1491 type = TYPE_TARGET_TYPE (type);
6766a268
DJ
1492 if (type != NULL)
1493 type = check_typedef (type);
8b93c638
JM
1494 }
1495
1496 return type;
1497}
1498
1499/* What is the default display for this variable? We assume that
1500 everything is "natural". Any exceptions? */
1501static enum varobj_display_formats
fba45db2 1502variable_default_display (struct varobj *var)
8b93c638
JM
1503{
1504 return FORMAT_NATURAL;
1505}
1506
8b93c638
JM
1507/* FIXME: The following should be generic for any pointer */
1508static void
fba45db2 1509cppush (struct cpstack **pstack, char *name)
8b93c638
JM
1510{
1511 struct cpstack *s;
1512
1513 s = (struct cpstack *) xmalloc (sizeof (struct cpstack));
1514 s->name = name;
1515 s->next = *pstack;
1516 *pstack = s;
1517}
1518
1519/* FIXME: The following should be generic for any pointer */
1520static char *
fba45db2 1521cppop (struct cpstack **pstack)
8b93c638
JM
1522{
1523 struct cpstack *s;
1524 char *v;
1525
1526 if ((*pstack)->name == NULL && (*pstack)->next == NULL)
1527 return NULL;
1528
1529 s = *pstack;
1530 v = s->name;
1531 *pstack = (*pstack)->next;
b8c9b27d 1532 xfree (s);
8b93c638
JM
1533
1534 return v;
1535}
1536\f
1537/*
1538 * Language-dependencies
1539 */
1540
1541/* Common entry points */
1542
1543/* Get the language of variable VAR. */
1544static enum varobj_languages
fba45db2 1545variable_language (struct varobj *var)
8b93c638
JM
1546{
1547 enum varobj_languages lang;
1548
1549 switch (var->root->exp->language_defn->la_language)
1550 {
1551 default:
1552 case language_c:
1553 lang = vlang_c;
1554 break;
1555 case language_cplus:
1556 lang = vlang_cplus;
1557 break;
1558 case language_java:
1559 lang = vlang_java;
1560 break;
1561 }
1562
1563 return lang;
1564}
1565
1566/* Return the number of children for a given variable.
1567 The result of this function is defined by the language
1568 implementation. The number of children returned by this function
1569 is the number of children that the user will see in the variable
1570 display. */
1571static int
fba45db2 1572number_of_children (struct varobj *var)
8b93c638
JM
1573{
1574 return (*var->root->lang->number_of_children) (var);;
1575}
1576
1577/* What is the expression for the root varobj VAR? Returns a malloc'd string. */
1578static char *
fba45db2 1579name_of_variable (struct varobj *var)
8b93c638
JM
1580{
1581 return (*var->root->lang->name_of_variable) (var);
1582}
1583
1584/* What is the name of the INDEX'th child of VAR? Returns a malloc'd string. */
1585static char *
fba45db2 1586name_of_child (struct varobj *var, int index)
8b93c638
JM
1587{
1588 return (*var->root->lang->name_of_child) (var, index);
1589}
1590
30b28db1 1591/* What is the ``struct value *'' of the root variable VAR?
73a93a32
JI
1592 TYPE_CHANGED controls what to do if the type of a
1593 use_selected_frame = 1 variable changes. On input,
1594 TYPE_CHANGED = 1 means discard the old varobj, and replace
1595 it with this one. TYPE_CHANGED = 0 means leave it around.
1596 NB: In both cases, var_handle will point to the new varobj,
1597 so if you use TYPE_CHANGED = 0, you will have to stash the
1598 old varobj pointer away somewhere before calling this.
1599 On return, TYPE_CHANGED will be 1 if the type has changed, and
1600 0 otherwise. */
30b28db1 1601static struct value *
fba45db2 1602value_of_root (struct varobj **var_handle, int *type_changed)
8b93c638 1603{
73a93a32
JI
1604 struct varobj *var;
1605
1606 if (var_handle == NULL)
1607 return NULL;
1608
1609 var = *var_handle;
1610
1611 /* This should really be an exception, since this should
1612 only get called with a root variable. */
1613
b2c2bd75 1614 if (!is_root_p (var))
73a93a32
JI
1615 return NULL;
1616
1617 if (var->root->use_selected_frame)
1618 {
1619 struct varobj *tmp_var;
1620 char *old_type, *new_type;
1621 old_type = varobj_get_type (var);
1622 tmp_var = varobj_create (NULL, var->name, (CORE_ADDR) 0,
1623 USE_SELECTED_FRAME);
1624 if (tmp_var == NULL)
1625 {
1626 return NULL;
1627 }
1628 new_type = varobj_get_type (tmp_var);
72330bd6 1629 if (strcmp (old_type, new_type) == 0)
73a93a32
JI
1630 {
1631 varobj_delete (tmp_var, NULL, 0);
1632 *type_changed = 0;
1633 }
1634 else
1635 {
1636 if (*type_changed)
1637 {
72330bd6 1638 tmp_var->obj_name =
73a93a32 1639 savestring (var->obj_name, strlen (var->obj_name));
f7635dd9 1640 varobj_delete (var, NULL, 0);
73a93a32
JI
1641 }
1642 else
1643 {
72330bd6 1644 tmp_var->obj_name = varobj_gen_name ();
73a93a32
JI
1645 }
1646 install_variable (tmp_var);
1647 *var_handle = tmp_var;
705da579 1648 var = *var_handle;
73a93a32
JI
1649 *type_changed = 1;
1650 }
1651 }
1652 else
1653 {
1654 *type_changed = 0;
1655 }
1656
1657 return (*var->root->lang->value_of_root) (var_handle);
8b93c638
JM
1658}
1659
30b28db1
AC
1660/* What is the ``struct value *'' for the INDEX'th child of PARENT? */
1661static struct value *
fba45db2 1662value_of_child (struct varobj *parent, int index)
8b93c638 1663{
30b28db1 1664 struct value *value;
8b93c638
JM
1665
1666 value = (*parent->root->lang->value_of_child) (parent, index);
1667
8b93c638
JM
1668 return value;
1669}
1670
8b93c638
JM
1671/* Is this variable editable? Use the variable's type to make
1672 this determination. */
1673static int
fba45db2 1674variable_editable (struct varobj *var)
8b93c638
JM
1675{
1676 return (*var->root->lang->variable_editable) (var);
1677}
1678
1679/* GDB already has a command called "value_of_variable". Sigh. */
1680static char *
fba45db2 1681my_value_of_variable (struct varobj *var)
8b93c638
JM
1682{
1683 return (*var->root->lang->value_of_variable) (var);
1684}
1685
85265413
NR
1686static char *
1687value_get_print_value (struct value *value, enum varobj_display_formats format)
1688{
1689 long dummy;
1690 struct ui_file *stb = mem_fileopen ();
1691 struct cleanup *old_chain = make_cleanup_ui_file_delete (stb);
1692 char *thevalue;
1693
1694 common_val_print (value, stb, format_code[(int) format], 1, 0, 0);
1695 thevalue = ui_file_xstrdup (stb, &dummy);
1696 do_cleanups (old_chain);
1697 return thevalue;
1698}
1699
acd65feb
VP
1700/* Return non-zero if changes in value of VAR
1701 must be detected and reported by -var-update.
1702 Return zero is -var-update should never report
1703 changes of such values. This makes sense for structures
1704 (since the changes in children values will be reported separately),
1705 or for artifical objects (like 'public' pseudo-field in C++).
1706
1707 Return value of 0 means that gdb need not call value_fetch_lazy
1708 for the value of this variable object. */
8b93c638 1709static int
b2c2bd75 1710varobj_value_is_changeable_p (struct varobj *var)
8b93c638
JM
1711{
1712 int r;
1713 struct type *type;
1714
1715 if (CPLUS_FAKE_CHILD (var))
1716 return 0;
1717
1718 type = get_type (var);
1719
1720 switch (TYPE_CODE (type))
1721 {
72330bd6
AC
1722 case TYPE_CODE_STRUCT:
1723 case TYPE_CODE_UNION:
1724 case TYPE_CODE_ARRAY:
1725 r = 0;
1726 break;
8b93c638 1727
72330bd6
AC
1728 default:
1729 r = 1;
8b93c638
JM
1730 }
1731
1732 return r;
1733}
1734
1735/* C */
1736static int
fba45db2 1737c_number_of_children (struct varobj *var)
8b93c638
JM
1738{
1739 struct type *type;
1740 struct type *target;
1741 int children;
1742
1743 type = get_type (var);
1744 target = get_target_type (type);
1745 children = 0;
1746
1747 switch (TYPE_CODE (type))
1748 {
1749 case TYPE_CODE_ARRAY:
1750 if (TYPE_LENGTH (type) > 0 && TYPE_LENGTH (target) > 0
72330bd6 1751 && TYPE_ARRAY_UPPER_BOUND_TYPE (type) != BOUND_CANNOT_BE_DETERMINED)
8b93c638
JM
1752 children = TYPE_LENGTH (type) / TYPE_LENGTH (target);
1753 else
74a44383
DJ
1754 /* If we don't know how many elements there are, don't display
1755 any. */
1756 children = 0;
8b93c638
JM
1757 break;
1758
1759 case TYPE_CODE_STRUCT:
1760 case TYPE_CODE_UNION:
1761 children = TYPE_NFIELDS (type);
1762 break;
1763
1764 case TYPE_CODE_PTR:
0f0ac1f5 1765 /* This is where things get complicated. All pointers have one child.
8b93c638 1766 Except, of course, for struct and union ptr, which we automagically
0f0ac1f5 1767 dereference for the user, and function ptrs which have no children.
0755e6c1
FN
1768 We also don't dereference void* as we don't know what to show.
1769 We can show char* so we allow it to be dereferenced. If you decide
1770 to test for it, please mind that a little magic is necessary to
1771 properly identify it: char* has TYPE_CODE == TYPE_CODE_INT and
1772 TYPE_NAME == "char" */
1773
8b93c638
JM
1774 switch (TYPE_CODE (target))
1775 {
1776 case TYPE_CODE_STRUCT:
1777 case TYPE_CODE_UNION:
1778 children = TYPE_NFIELDS (target);
1779 break;
1780
1781 case TYPE_CODE_FUNC:
0755e6c1 1782 case TYPE_CODE_VOID:
8b93c638
JM
1783 children = 0;
1784 break;
1785
1786 default:
0755e6c1 1787 children = 1;
8b93c638
JM
1788 }
1789 break;
1790
1791 default:
1792 /* Other types have no children */
1793 break;
1794 }
1795
1796 return children;
1797}
1798
1799static char *
fba45db2 1800c_name_of_variable (struct varobj *parent)
8b93c638
JM
1801{
1802 return savestring (parent->name, strlen (parent->name));
1803}
1804
bbec2603
VP
1805/* Return the value of element TYPE_INDEX of a structure
1806 value VALUE. VALUE's type should be a structure,
1807 or union, or a typedef to struct/union.
1808
1809 Returns NULL if getting the value fails. Never throws. */
1810static struct value *
1811value_struct_element_index (struct value *value, int type_index)
8b93c638 1812{
bbec2603
VP
1813 struct value *result = NULL;
1814 volatile struct gdb_exception e;
8b93c638 1815
bbec2603
VP
1816 struct type *type = value_type (value);
1817 type = check_typedef (type);
1818
1819 gdb_assert (TYPE_CODE (type) == TYPE_CODE_STRUCT
1820 || TYPE_CODE (type) == TYPE_CODE_UNION);
8b93c638 1821
bbec2603
VP
1822 TRY_CATCH (e, RETURN_MASK_ERROR)
1823 {
1824 if (TYPE_FIELD_STATIC (type, type_index))
1825 result = value_static_field (type, type_index);
1826 else
1827 result = value_primitive_field (value, 0, type_index, type);
1828 }
1829 if (e.reason < 0)
1830 {
1831 return NULL;
1832 }
1833 else
1834 {
1835 return result;
1836 }
1837}
1838
1839/* Obtain the information about child INDEX of the variable
1840 object PARENT.
1841 If CNAME is not null, sets *CNAME to the name of the child relative
1842 to the parent.
1843 If CVALUE is not null, sets *CVALUE to the value of the child.
1844 If CTYPE is not null, sets *CTYPE to the type of the child.
1845
1846 If any of CNAME, CVALUE, or CTYPE is not null, but the corresponding
1847 information cannot be determined, set *CNAME, *CVALUE, or *CTYPE
1848 to NULL. */
1849static void
1850c_describe_child (struct varobj *parent, int index,
1851 char **cname, struct value **cvalue, struct type **ctype)
1852{
1853 struct value *value = parent->value;
1854 struct type *type = get_type (parent);
1855
1856 if (cname)
1857 *cname = NULL;
1858 if (cvalue)
1859 *cvalue = NULL;
1860 if (ctype)
1861 *ctype = NULL;
1862
1863 /* Pointers to structures are treated just like
1864 structures when accessing children. */
1865 if (TYPE_CODE (type) == TYPE_CODE_PTR)
1866 {
1867 struct type *target_type = get_target_type (type);
1868 if (TYPE_CODE (target_type) == TYPE_CODE_STRUCT
1869 || TYPE_CODE (target_type) == TYPE_CODE_UNION)
1870 {
1871 if (value)
1872 gdb_value_ind (value, &value);
1873 type = target_type;
1874 }
1875 }
1876
8b93c638
JM
1877 switch (TYPE_CODE (type))
1878 {
1879 case TYPE_CODE_ARRAY:
bbec2603
VP
1880 if (cname)
1881 *cname = xstrprintf ("%d", index
1882 + TYPE_LOW_BOUND (TYPE_INDEX_TYPE (type)));
1883
1884 if (cvalue && value)
1885 {
1886 int real_index = index + TYPE_LOW_BOUND (TYPE_INDEX_TYPE (type));
1887 struct value *indval =
1888 value_from_longest (builtin_type_int, (LONGEST) real_index);
1889 gdb_value_subscript (value, indval, cvalue);
1890 }
1891
1892 if (ctype)
1893 *ctype = get_target_type (type);
1894
8b93c638
JM
1895 break;
1896
1897 case TYPE_CODE_STRUCT:
1898 case TYPE_CODE_UNION:
bbec2603
VP
1899 if (cname)
1900 {
1901 char *string = TYPE_FIELD_NAME (type, index);
1902 *cname = savestring (string, strlen (string));
1903 }
1904
1905 if (cvalue && value)
1906 {
1907 /* For C, varobj index is the same as type index. */
1908 *cvalue = value_struct_element_index (value, index);
1909 }
1910
1911 if (ctype)
1912 *ctype = TYPE_FIELD_TYPE (type, index);
1913
8b93c638
JM
1914 break;
1915
1916 case TYPE_CODE_PTR:
bbec2603
VP
1917 if (cname)
1918 *cname = xstrprintf ("*%s", parent->name);
8b93c638 1919
bbec2603
VP
1920 if (cvalue && value)
1921 gdb_value_ind (value, cvalue);
1922
1923 if (ctype)
1924 *ctype = get_target_type (type);
1925
8b93c638
JM
1926 break;
1927
1928 default:
1929 /* This should not happen */
bbec2603
VP
1930 if (cname)
1931 *cname = xstrdup ("???");
1932 /* Don't set value and type, we don't know then. */
8b93c638 1933 }
bbec2603 1934}
8b93c638 1935
bbec2603
VP
1936static char *
1937c_name_of_child (struct varobj *parent, int index)
1938{
1939 char *name;
1940 c_describe_child (parent, index, &name, NULL, NULL);
8b93c638
JM
1941 return name;
1942}
1943
30b28db1 1944static struct value *
fba45db2 1945c_value_of_root (struct varobj **var_handle)
8b93c638 1946{
5e572bb4 1947 struct value *new_val = NULL;
73a93a32 1948 struct varobj *var = *var_handle;
8b93c638
JM
1949 struct frame_info *fi;
1950 int within_scope;
1951
73a93a32 1952 /* Only root variables can be updated... */
b2c2bd75 1953 if (!is_root_p (var))
73a93a32
JI
1954 /* Not a root var */
1955 return NULL;
1956
72330bd6 1957
8b93c638
JM
1958 /* Determine whether the variable is still around. */
1959 if (var->root->valid_block == NULL)
1960 within_scope = 1;
1961 else
1962 {
1963 reinit_frame_cache ();
e64d9b3d 1964 fi = frame_find_by_id (var->root->frame);
8b93c638
JM
1965 within_scope = fi != NULL;
1966 /* FIXME: select_frame could fail */
d2353924
NR
1967 if (fi)
1968 {
1969 CORE_ADDR pc = get_frame_pc (fi);
1970 if (pc < BLOCK_START (var->root->valid_block) ||
1971 pc >= BLOCK_END (var->root->valid_block))
1972 within_scope = 0;
1973 select_frame (fi);
1974 }
8b93c638 1975 }
72330bd6 1976
8b93c638
JM
1977 if (within_scope)
1978 {
73a93a32 1979 /* We need to catch errors here, because if evaluate
72330bd6
AC
1980 expression fails we just want to make val->error = 1 and
1981 go on */
8b93c638
JM
1982 if (gdb_evaluate_expression (var->root->exp, &new_val))
1983 {
acd65feb
VP
1984 var->error = 0;
1985 release_value (new_val);
8b93c638
JM
1986 }
1987 else
1988 var->error = 1;
72330bd6 1989
8b93c638
JM
1990 return new_val;
1991 }
1992
1993 return NULL;
1994}
1995
30b28db1 1996static struct value *
fba45db2 1997c_value_of_child (struct varobj *parent, int index)
8b93c638 1998{
bbec2603
VP
1999 struct value *value = NULL;
2000 c_describe_child (parent, index, NULL, &value, NULL);
8b93c638
JM
2001 if (value != NULL)
2002 release_value (value);
2003
2004 return value;
2005}
2006
2007static struct type *
fba45db2 2008c_type_of_child (struct varobj *parent, int index)
8b93c638 2009{
bbec2603
VP
2010 struct type *type = NULL;
2011 c_describe_child (parent, index, NULL, NULL, &type);
8b93c638
JM
2012 return type;
2013}
2014
2015static int
fba45db2 2016c_variable_editable (struct varobj *var)
8b93c638
JM
2017{
2018 switch (TYPE_CODE (get_type (var)))
2019 {
2020 case TYPE_CODE_STRUCT:
2021 case TYPE_CODE_UNION:
2022 case TYPE_CODE_ARRAY:
2023 case TYPE_CODE_FUNC:
8b93c638
JM
2024 case TYPE_CODE_METHOD:
2025 return 0;
2026 break;
2027
2028 default:
2029 return 1;
2030 break;
2031 }
2032}
2033
2034static char *
fba45db2 2035c_value_of_variable (struct varobj *var)
8b93c638 2036{
14b3d9c9
JB
2037 /* BOGUS: if val_print sees a struct/class, or a reference to one,
2038 it will print out its children instead of "{...}". So we need to
2039 catch that case explicitly. */
2040 struct type *type = get_type (var);
e64d9b3d 2041
14b3d9c9
JB
2042 /* Strip top-level references. */
2043 while (TYPE_CODE (type) == TYPE_CODE_REF)
2044 type = check_typedef (TYPE_TARGET_TYPE (type));
2045
2046 switch (TYPE_CODE (type))
8b93c638
JM
2047 {
2048 case TYPE_CODE_STRUCT:
2049 case TYPE_CODE_UNION:
2050 return xstrdup ("{...}");
2051 /* break; */
2052
2053 case TYPE_CODE_ARRAY:
2054 {
e64d9b3d 2055 char *number;
b435e160 2056 number = xstrprintf ("[%d]", var->num_children);
e64d9b3d 2057 return (number);
8b93c638
JM
2058 }
2059 /* break; */
2060
2061 default:
2062 {
575bbeb6
KS
2063 if (var->value == NULL)
2064 {
2065 /* This can happen if we attempt to get the value of a struct
2066 member when the parent is an invalid pointer. This is an
2067 error condition, so we should tell the caller. */
2068 return NULL;
2069 }
2070 else
2071 {
b2c2bd75 2072 gdb_assert (varobj_value_is_changeable_p (var));
acd65feb 2073 gdb_assert (!value_lazy (var->value));
85265413
NR
2074 return value_get_print_value (var->value, var->format);
2075 }
e64d9b3d 2076 }
8b93c638
JM
2077 }
2078}
2079\f
2080
2081/* C++ */
2082
2083static int
fba45db2 2084cplus_number_of_children (struct varobj *var)
8b93c638
JM
2085{
2086 struct type *type;
2087 int children, dont_know;
2088
2089 dont_know = 1;
2090 children = 0;
2091
2092 if (!CPLUS_FAKE_CHILD (var))
2093 {
2094 type = get_type_deref (var);
2095
2096 if (((TYPE_CODE (type)) == TYPE_CODE_STRUCT) ||
72330bd6 2097 ((TYPE_CODE (type)) == TYPE_CODE_UNION))
8b93c638
JM
2098 {
2099 int kids[3];
2100
2101 cplus_class_num_children (type, kids);
2102 if (kids[v_public] != 0)
2103 children++;
2104 if (kids[v_private] != 0)
2105 children++;
2106 if (kids[v_protected] != 0)
2107 children++;
2108
2109 /* Add any baseclasses */
2110 children += TYPE_N_BASECLASSES (type);
2111 dont_know = 0;
2112
2113 /* FIXME: save children in var */
2114 }
2115 }
2116 else
2117 {
2118 int kids[3];
2119
2120 type = get_type_deref (var->parent);
2121
2122 cplus_class_num_children (type, kids);
6e382aa3 2123 if (strcmp (var->name, "public") == 0)
8b93c638 2124 children = kids[v_public];
6e382aa3 2125 else if (strcmp (var->name, "private") == 0)
8b93c638
JM
2126 children = kids[v_private];
2127 else
2128 children = kids[v_protected];
2129 dont_know = 0;
2130 }
2131
2132 if (dont_know)
2133 children = c_number_of_children (var);
2134
2135 return children;
2136}
2137
2138/* Compute # of public, private, and protected variables in this class.
2139 That means we need to descend into all baseclasses and find out
2140 how many are there, too. */
2141static void
1669605f 2142cplus_class_num_children (struct type *type, int children[3])
8b93c638
JM
2143{
2144 int i;
2145
2146 children[v_public] = 0;
2147 children[v_private] = 0;
2148 children[v_protected] = 0;
2149
2150 for (i = TYPE_N_BASECLASSES (type); i < TYPE_NFIELDS (type); i++)
2151 {
2152 /* If we have a virtual table pointer, omit it. */
72330bd6 2153 if (TYPE_VPTR_BASETYPE (type) == type && TYPE_VPTR_FIELDNO (type) == i)
8b93c638
JM
2154 continue;
2155
2156 if (TYPE_FIELD_PROTECTED (type, i))
2157 children[v_protected]++;
2158 else if (TYPE_FIELD_PRIVATE (type, i))
2159 children[v_private]++;
2160 else
2161 children[v_public]++;
2162 }
2163}
2164
2165static char *
fba45db2 2166cplus_name_of_variable (struct varobj *parent)
8b93c638
JM
2167{
2168 return c_name_of_variable (parent);
2169}
2170
2171static char *
fba45db2 2172cplus_name_of_child (struct varobj *parent, int index)
8b93c638
JM
2173{
2174 char *name;
2175 struct type *type;
8b93c638
JM
2176
2177 if (CPLUS_FAKE_CHILD (parent))
2178 {
2179 /* Looking for children of public, private, or protected. */
2180 type = get_type_deref (parent->parent);
2181 }
2182 else
2183 type = get_type_deref (parent);
2184
2185 name = NULL;
2186 switch (TYPE_CODE (type))
2187 {
2188 case TYPE_CODE_STRUCT:
2189 case TYPE_CODE_UNION:
8b93c638
JM
2190 if (CPLUS_FAKE_CHILD (parent))
2191 {
6e382aa3
JJ
2192 /* The fields of the class type are ordered as they
2193 appear in the class. We are given an index for a
2194 particular access control type ("public","protected",
2195 or "private"). We must skip over fields that don't
2196 have the access control we are looking for to properly
2197 find the indexed field. */
2198 int type_index = TYPE_N_BASECLASSES (type);
2199 if (strcmp (parent->name, "private") == 0)
2200 {
2201 while (index >= 0)
2202 {
2203 if (TYPE_VPTR_BASETYPE (type) == type
2204 && type_index == TYPE_VPTR_FIELDNO (type))
2205 ; /* ignore vptr */
2206 else if (TYPE_FIELD_PRIVATE (type, type_index))
2207 --index;
2208 ++type_index;
2209 }
2210 --type_index;
2211 }
2212 else if (strcmp (parent->name, "protected") == 0)
2213 {
2214 while (index >= 0)
2215 {
2216 if (TYPE_VPTR_BASETYPE (type) == type
2217 && type_index == TYPE_VPTR_FIELDNO (type))
2218 ; /* ignore vptr */
2219 else if (TYPE_FIELD_PROTECTED (type, type_index))
2220 --index;
2221 ++type_index;
2222 }
2223 --type_index;
2224 }
2225 else
2226 {
2227 while (index >= 0)
2228 {
2229 if (TYPE_VPTR_BASETYPE (type) == type
2230 && type_index == TYPE_VPTR_FIELDNO (type))
2231 ; /* ignore vptr */
2232 else if (!TYPE_FIELD_PRIVATE (type, type_index) &&
2233 !TYPE_FIELD_PROTECTED (type, type_index))
2234 --index;
2235 ++type_index;
2236 }
2237 --type_index;
2238 }
2239
2240 name = TYPE_FIELD_NAME (type, type_index);
8b93c638
JM
2241 }
2242 else if (index < TYPE_N_BASECLASSES (type))
6e382aa3 2243 /* We are looking up the name of a base class */
8b93c638
JM
2244 name = TYPE_FIELD_NAME (type, index);
2245 else
2246 {
6e382aa3
JJ
2247 int children[3];
2248 cplus_class_num_children(type, children);
2249
8b93c638 2250 /* Everything beyond the baseclasses can
6e382aa3
JJ
2251 only be "public", "private", or "protected"
2252
2253 The special "fake" children are always output by varobj in
2254 this order. So if INDEX == 2, it MUST be "protected". */
8b93c638
JM
2255 index -= TYPE_N_BASECLASSES (type);
2256 switch (index)
2257 {
2258 case 0:
6e382aa3
JJ
2259 if (children[v_public] > 0)
2260 name = "public";
2261 else if (children[v_private] > 0)
2262 name = "private";
2263 else
2264 name = "protected";
2265 break;
8b93c638 2266 case 1:
6e382aa3 2267 if (children[v_public] > 0)
8b93c638 2268 {
6e382aa3
JJ
2269 if (children[v_private] > 0)
2270 name = "private";
2271 else
2272 name = "protected";
8b93c638 2273 }
6e382aa3
JJ
2274 else if (children[v_private] > 0)
2275 name = "protected";
2276 break;
8b93c638 2277 case 2:
6e382aa3
JJ
2278 /* Must be protected */
2279 name = "protected";
2280 break;
8b93c638
JM
2281 default:
2282 /* error! */
2283 break;
2284 }
2285 }
2286 break;
2287
2288 default:
2289 break;
2290 }
2291
2292 if (name == NULL)
2293 return c_name_of_child (parent, index);
2294 else
2295 {
2296 if (name != NULL)
2297 name = savestring (name, strlen (name));
2298 }
2299
2300 return name;
2301}
2302
30b28db1 2303static struct value *
fba45db2 2304cplus_value_of_root (struct varobj **var_handle)
8b93c638 2305{
73a93a32 2306 return c_value_of_root (var_handle);
8b93c638
JM
2307}
2308
30b28db1 2309static struct value *
fba45db2 2310cplus_value_of_child (struct varobj *parent, int index)
8b93c638
JM
2311{
2312 struct type *type;
30b28db1 2313 struct value *value;
8b93c638
JM
2314
2315 if (CPLUS_FAKE_CHILD (parent))
2316 type = get_type_deref (parent->parent);
2317 else
2318 type = get_type_deref (parent);
2319
2320 value = NULL;
8b93c638
JM
2321
2322 if (((TYPE_CODE (type)) == TYPE_CODE_STRUCT) ||
2323 ((TYPE_CODE (type)) == TYPE_CODE_UNION))
2324 {
2325 if (CPLUS_FAKE_CHILD (parent))
2326 {
5bbc1a8e 2327 char *name;
30b28db1 2328 struct value *temp = parent->parent->value;
30c6b1fb 2329
575bbeb6
KS
2330 if (temp == NULL)
2331 return NULL;
2332
5bbc1a8e 2333 name = name_of_child (parent, index);
30c6b1fb
KS
2334 gdb_value_struct_elt (NULL, &value, &temp, NULL, name, NULL,
2335 "cplus_structure");
2336 if (value != NULL)
2337 release_value (value);
5bbc1a8e
KS
2338
2339 xfree (name);
8b93c638
JM
2340 }
2341 else if (index >= TYPE_N_BASECLASSES (type))
2342 {
2343 /* public, private, or protected */
2344 return NULL;
2345 }
2346 else
2347 {
2348 /* Baseclass */
2349 if (parent->value != NULL)
2350 {
575bbeb6 2351 struct value *temp = NULL;
8b93c638 2352
4ae4f4fb
VP
2353 /* No special processing for references is needed --
2354 value_cast below handles references. */
2355 if (TYPE_CODE (value_type (parent->value)) == TYPE_CODE_PTR)
4abb499e
KS
2356 {
2357 if (!gdb_value_ind (parent->value, &temp))
2358 return NULL;
2359 }
8b93c638
JM
2360 else
2361 temp = parent->value;
2362
575bbeb6
KS
2363 if (temp != NULL)
2364 {
2365 value = value_cast (TYPE_FIELD_TYPE (type, index), temp);
2366 release_value (value);
2367 }
2368 else
2369 {
2370 /* We failed to evaluate the parent's value, so don't even
2371 bother trying to evaluate this child. */
2372 return NULL;
2373 }
8b93c638
JM
2374 }
2375 }
2376 }
2377
2378 if (value == NULL)
2379 return c_value_of_child (parent, index);
2380
2381 return value;
2382}
2383
2384static struct type *
fba45db2 2385cplus_type_of_child (struct varobj *parent, int index)
8b93c638
JM
2386{
2387 struct type *type, *t;
2388
575bbeb6
KS
2389 if (CPLUS_FAKE_CHILD (parent))
2390 {
2391 /* Looking for the type of a child of public, private, or protected. */
2392 t = get_type_deref (parent->parent);
2393 }
2394 else
2395 t = get_type_deref (parent);
2396
8b93c638
JM
2397 type = NULL;
2398 switch (TYPE_CODE (t))
2399 {
2400 case TYPE_CODE_STRUCT:
2401 case TYPE_CODE_UNION:
575bbeb6 2402 if (CPLUS_FAKE_CHILD (parent))
8b93c638 2403 {
575bbeb6
KS
2404 char *name = cplus_name_of_child (parent, index);
2405 type = lookup_struct_elt_type (t, name, 0);
2406 xfree (name);
8b93c638 2407 }
575bbeb6
KS
2408 else if (index < TYPE_N_BASECLASSES (t))
2409 type = TYPE_FIELD_TYPE (t, index);
8b93c638
JM
2410 else
2411 {
575bbeb6
KS
2412 /* special */
2413 return NULL;
8b93c638
JM
2414 }
2415 break;
2416
2417 default:
2418 break;
2419 }
2420
2421 if (type == NULL)
2422 return c_type_of_child (parent, index);
2423
2424 return type;
2425}
2426
2427static int
fba45db2 2428cplus_variable_editable (struct varobj *var)
8b93c638
JM
2429{
2430 if (CPLUS_FAKE_CHILD (var))
2431 return 0;
2432
2433 return c_variable_editable (var);
2434}
2435
2436static char *
fba45db2 2437cplus_value_of_variable (struct varobj *var)
8b93c638
JM
2438{
2439
2440 /* If we have one of our special types, don't print out
2441 any value. */
2442 if (CPLUS_FAKE_CHILD (var))
2443 return xstrdup ("");
2444
2445 return c_value_of_variable (var);
2446}
2447\f
2448/* Java */
2449
2450static int
fba45db2 2451java_number_of_children (struct varobj *var)
8b93c638
JM
2452{
2453 return cplus_number_of_children (var);
2454}
2455
2456static char *
fba45db2 2457java_name_of_variable (struct varobj *parent)
8b93c638
JM
2458{
2459 char *p, *name;
2460
2461 name = cplus_name_of_variable (parent);
2462 /* If the name has "-" in it, it is because we
2463 needed to escape periods in the name... */
2464 p = name;
2465
2466 while (*p != '\000')
2467 {
2468 if (*p == '-')
2469 *p = '.';
2470 p++;
2471 }
2472
2473 return name;
2474}
2475
2476static char *
fba45db2 2477java_name_of_child (struct varobj *parent, int index)
8b93c638
JM
2478{
2479 char *name, *p;
2480
2481 name = cplus_name_of_child (parent, index);
2482 /* Escape any periods in the name... */
2483 p = name;
2484
2485 while (*p != '\000')
2486 {
2487 if (*p == '.')
2488 *p = '-';
2489 p++;
2490 }
2491
2492 return name;
2493}
2494
30b28db1 2495static struct value *
fba45db2 2496java_value_of_root (struct varobj **var_handle)
8b93c638 2497{
73a93a32 2498 return cplus_value_of_root (var_handle);
8b93c638
JM
2499}
2500
30b28db1 2501static struct value *
fba45db2 2502java_value_of_child (struct varobj *parent, int index)
8b93c638
JM
2503{
2504 return cplus_value_of_child (parent, index);
2505}
2506
2507static struct type *
fba45db2 2508java_type_of_child (struct varobj *parent, int index)
8b93c638
JM
2509{
2510 return cplus_type_of_child (parent, index);
2511}
2512
2513static int
fba45db2 2514java_variable_editable (struct varobj *var)
8b93c638
JM
2515{
2516 return cplus_variable_editable (var);
2517}
2518
2519static char *
fba45db2 2520java_value_of_variable (struct varobj *var)
8b93c638
JM
2521{
2522 return cplus_value_of_variable (var);
2523}
2524\f
2525extern void _initialize_varobj (void);
2526void
2527_initialize_varobj (void)
2528{
2529 int sizeof_table = sizeof (struct vlist *) * VAROBJ_TABLE_SIZE;
2530
2531 varobj_table = xmalloc (sizeof_table);
2532 memset (varobj_table, 0, sizeof_table);
2533
85c07804
AC
2534 add_setshow_zinteger_cmd ("debugvarobj", class_maintenance,
2535 &varobjdebug, _("\
2536Set varobj debugging."), _("\
2537Show varobj debugging."), _("\
2538When non-zero, varobj debugging is enabled."),
2539 NULL,
920d2a44 2540 show_varobjdebug,
85c07804 2541 &setlist, &showlist);
8b93c638 2542}
This page took 0.758257 seconds and 4 git commands to generate.