varobj.c revision 1.6.4.1 1 1.1 christos /* Implementation of the GDB variable objects API.
2 1.1 christos
3 1.6.4.1 christos Copyright (C) 1999-2017 Free Software Foundation, Inc.
4 1.1 christos
5 1.1 christos This program is free software; you can redistribute it and/or modify
6 1.1 christos it under the terms of the GNU General Public License as published by
7 1.1 christos the Free Software Foundation; either version 3 of the License, or
8 1.1 christos (at your option) any later version.
9 1.1 christos
10 1.1 christos This program is distributed in the hope that it will be useful,
11 1.1 christos but WITHOUT ANY WARRANTY; without even the implied warranty of
12 1.1 christos MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
13 1.1 christos GNU General Public License for more details.
14 1.1 christos
15 1.1 christos You should have received a copy of the GNU General Public License
16 1.1 christos along with this program. If not, see <http://www.gnu.org/licenses/>. */
17 1.1 christos
18 1.1 christos #include "defs.h"
19 1.1 christos #include "value.h"
20 1.1 christos #include "expression.h"
21 1.1 christos #include "frame.h"
22 1.1 christos #include "language.h"
23 1.1 christos #include "gdbcmd.h"
24 1.1 christos #include "block.h"
25 1.1 christos #include "valprint.h"
26 1.1 christos #include "gdb_regex.h"
27 1.1 christos
28 1.1 christos #include "varobj.h"
29 1.1 christos #include "vec.h"
30 1.1 christos #include "gdbthread.h"
31 1.1 christos #include "inferior.h"
32 1.3 christos #include "varobj-iter.h"
33 1.1 christos
34 1.1 christos #if HAVE_PYTHON
35 1.1 christos #include "python/python.h"
36 1.1 christos #include "python/python-internal.h"
37 1.6.4.1 christos #include "python/py-ref.h"
38 1.1 christos #else
39 1.1 christos typedef int PyObject;
40 1.1 christos #endif
41 1.1 christos
42 1.1 christos /* Non-zero if we want to see trace of varobj level stuff. */
43 1.1 christos
44 1.1 christos unsigned int varobjdebug = 0;
45 1.1 christos static void
46 1.1 christos show_varobjdebug (struct ui_file *file, int from_tty,
47 1.1 christos struct cmd_list_element *c, const char *value)
48 1.1 christos {
49 1.1 christos fprintf_filtered (file, _("Varobj debugging is %s.\n"), value);
50 1.1 christos }
51 1.1 christos
52 1.1 christos /* String representations of gdb's format codes. */
53 1.6.4.1 christos const char *varobj_format_string[] =
54 1.6 christos { "natural", "binary", "decimal", "hexadecimal", "octal", "zero-hexadecimal" };
55 1.1 christos
56 1.1 christos /* True if we want to allow Python-based pretty-printing. */
57 1.1 christos static int pretty_printing = 0;
58 1.1 christos
59 1.1 christos void
60 1.1 christos varobj_enable_pretty_printing (void)
61 1.1 christos {
62 1.1 christos pretty_printing = 1;
63 1.1 christos }
64 1.1 christos
65 1.1 christos /* Data structures */
66 1.1 christos
67 1.1 christos /* Every root variable has one of these structures saved in its
68 1.6.4.1 christos varobj. */
69 1.1 christos struct varobj_root
70 1.1 christos {
71 1.1 christos
72 1.6.4.1 christos /* The expression for this parent. */
73 1.6.4.1 christos expression_up exp;
74 1.1 christos
75 1.1 christos /* Block for which this expression is valid. */
76 1.1 christos const struct block *valid_block;
77 1.1 christos
78 1.1 christos /* The frame for this expression. This field is set iff valid_block is
79 1.1 christos not NULL. */
80 1.1 christos struct frame_id frame;
81 1.1 christos
82 1.6 christos /* The global thread ID that this varobj_root belongs to. This field
83 1.1 christos is only valid if valid_block is not NULL.
84 1.1 christos When not 0, indicates which thread 'frame' belongs to.
85 1.1 christos When 0, indicates that the thread list was empty when the varobj_root
86 1.1 christos was created. */
87 1.1 christos int thread_id;
88 1.1 christos
89 1.1 christos /* If 1, the -var-update always recomputes the value in the
90 1.1 christos current thread and frame. Otherwise, variable object is
91 1.1 christos always updated in the specific scope/thread/frame. */
92 1.1 christos int floating;
93 1.1 christos
94 1.1 christos /* Flag that indicates validity: set to 0 when this varobj_root refers
95 1.1 christos to symbols that do not exist anymore. */
96 1.1 christos int is_valid;
97 1.1 christos
98 1.1 christos /* Language-related operations for this variable and its
99 1.1 christos children. */
100 1.1 christos const struct lang_varobj_ops *lang_ops;
101 1.1 christos
102 1.1 christos /* The varobj for this root node. */
103 1.1 christos struct varobj *rootvar;
104 1.1 christos
105 1.1 christos /* Next root variable */
106 1.1 christos struct varobj_root *next;
107 1.1 christos };
108 1.1 christos
109 1.1 christos /* Dynamic part of varobj. */
110 1.1 christos
111 1.1 christos struct varobj_dynamic
112 1.1 christos {
113 1.1 christos /* Whether the children of this varobj were requested. This field is
114 1.1 christos used to decide if dynamic varobj should recompute their children.
115 1.1 christos In the event that the frontend never asked for the children, we
116 1.1 christos can avoid that. */
117 1.1 christos int children_requested;
118 1.1 christos
119 1.1 christos /* The pretty-printer constructor. If NULL, then the default
120 1.1 christos pretty-printer will be looked up. If None, then no
121 1.1 christos pretty-printer will be installed. */
122 1.1 christos PyObject *constructor;
123 1.1 christos
124 1.1 christos /* The pretty-printer that has been constructed. If NULL, then a
125 1.1 christos new printer object is needed, and one will be constructed. */
126 1.1 christos PyObject *pretty_printer;
127 1.1 christos
128 1.1 christos /* The iterator returned by the printer's 'children' method, or NULL
129 1.1 christos if not available. */
130 1.3 christos struct varobj_iter *child_iter;
131 1.1 christos
132 1.1 christos /* We request one extra item from the iterator, so that we can
133 1.1 christos report to the caller whether there are more items than we have
134 1.1 christos already reported. However, we don't want to install this value
135 1.1 christos when we read it, because that will mess up future updates. So,
136 1.1 christos we stash it here instead. */
137 1.3 christos varobj_item *saved_item;
138 1.1 christos };
139 1.1 christos
140 1.1 christos /* A list of varobjs */
141 1.1 christos
142 1.1 christos struct vlist
143 1.1 christos {
144 1.1 christos struct varobj *var;
145 1.1 christos struct vlist *next;
146 1.1 christos };
147 1.1 christos
148 1.1 christos /* Private function prototypes */
149 1.1 christos
150 1.1 christos /* Helper functions for the above subcommands. */
151 1.1 christos
152 1.6 christos static int delete_variable (struct varobj *, int);
153 1.1 christos
154 1.6 christos static void delete_variable_1 (int *, struct varobj *, int, int);
155 1.1 christos
156 1.1 christos static int install_variable (struct varobj *);
157 1.1 christos
158 1.1 christos static void uninstall_variable (struct varobj *);
159 1.1 christos
160 1.6.4.1 christos static struct varobj *create_child (struct varobj *, int, std::string &);
161 1.1 christos
162 1.1 christos static struct varobj *
163 1.3 christos create_child_with_value (struct varobj *parent, int index,
164 1.3 christos struct varobj_item *item);
165 1.1 christos
166 1.1 christos /* Utility routines */
167 1.1 christos
168 1.1 christos static struct varobj *new_variable (void);
169 1.1 christos
170 1.1 christos static struct varobj *new_root_variable (void);
171 1.1 christos
172 1.1 christos static void free_variable (struct varobj *var);
173 1.1 christos
174 1.1 christos static struct cleanup *make_cleanup_free_variable (struct varobj *var);
175 1.1 christos
176 1.1 christos static enum varobj_display_formats variable_default_display (struct varobj *);
177 1.1 christos
178 1.1 christos static int update_type_if_necessary (struct varobj *var,
179 1.1 christos struct value *new_value);
180 1.1 christos
181 1.1 christos static int install_new_value (struct varobj *var, struct value *value,
182 1.1 christos int initial);
183 1.1 christos
184 1.1 christos /* Language-specific routines. */
185 1.1 christos
186 1.5 christos static int number_of_children (const struct varobj *);
187 1.1 christos
188 1.6.4.1 christos static std::string name_of_variable (const struct varobj *);
189 1.1 christos
190 1.6.4.1 christos static std::string name_of_child (struct varobj *, int);
191 1.1 christos
192 1.1 christos static struct value *value_of_root (struct varobj **var_handle, int *);
193 1.1 christos
194 1.5 christos static struct value *value_of_child (const struct varobj *parent, int index);
195 1.1 christos
196 1.6.4.1 christos static std::string my_value_of_variable (struct varobj *var,
197 1.6.4.1 christos enum varobj_display_formats format);
198 1.1 christos
199 1.5 christos static int is_root_p (const struct varobj *var);
200 1.1 christos
201 1.1 christos static struct varobj *varobj_add_child (struct varobj *var,
202 1.3 christos struct varobj_item *item);
203 1.1 christos
204 1.1 christos /* Private data */
205 1.1 christos
206 1.1 christos /* Mappings of varobj_display_formats enums to gdb's format codes. */
207 1.6 christos static int format_code[] = { 0, 't', 'd', 'x', 'o', 'z' };
208 1.1 christos
209 1.1 christos /* Header of the list of root variable objects. */
210 1.1 christos static struct varobj_root *rootlist;
211 1.1 christos
212 1.1 christos /* Prime number indicating the number of buckets in the hash table. */
213 1.6 christos /* A prime large enough to avoid too many collisions. */
214 1.1 christos #define VAROBJ_TABLE_SIZE 227
215 1.1 christos
216 1.1 christos /* Pointer to the varobj hash table (built at run time). */
217 1.1 christos static struct vlist **varobj_table;
218 1.1 christos
219 1.1 christos
220 1.1 christos
222 1.1 christos /* API Implementation */
223 1.5 christos static int
224 1.1 christos is_root_p (const struct varobj *var)
225 1.1 christos {
226 1.1 christos return (var->root->rootvar == var);
227 1.1 christos }
228 1.1 christos
229 1.6.4.1 christos #ifdef HAVE_PYTHON
230 1.6.4.1 christos
231 1.6.4.1 christos /* See python-internal.h. */
232 1.6.4.1 christos gdbpy_enter_varobj::gdbpy_enter_varobj (const struct varobj *var)
233 1.1 christos : gdbpy_enter (var->root->exp->gdbarch, var->root->exp->language_defn)
234 1.1 christos {
235 1.6.4.1 christos }
236 1.1 christos
237 1.1 christos #endif
238 1.1 christos
239 1.1 christos /* Return the full FRAME which corresponds to the given CORE_ADDR
240 1.1 christos or NULL if no FRAME on the chain corresponds to CORE_ADDR. */
241 1.1 christos
242 1.1 christos static struct frame_info *
243 1.1 christos find_frame_addr_in_frame_chain (CORE_ADDR frame_addr)
244 1.1 christos {
245 1.1 christos struct frame_info *frame = NULL;
246 1.1 christos
247 1.1 christos if (frame_addr == (CORE_ADDR) 0)
248 1.1 christos return NULL;
249 1.1 christos
250 1.1 christos for (frame = get_current_frame ();
251 1.1 christos frame != NULL;
252 1.1 christos frame = get_prev_frame (frame))
253 1.1 christos {
254 1.1 christos /* The CORE_ADDR we get as argument was parsed from a string GDB
255 1.1 christos output as $fp. This output got truncated to gdbarch_addr_bit.
256 1.1 christos Truncate the frame base address in the same manner before
257 1.1 christos comparing it against our argument. */
258 1.1 christos CORE_ADDR frame_base = get_frame_base_address (frame);
259 1.1 christos int addr_bit = gdbarch_addr_bit (get_frame_arch (frame));
260 1.1 christos
261 1.1 christos if (addr_bit < (sizeof (CORE_ADDR) * HOST_CHAR_BIT))
262 1.1 christos frame_base &= ((CORE_ADDR) 1 << addr_bit) - 1;
263 1.1 christos
264 1.1 christos if (frame_base == frame_addr)
265 1.1 christos return frame;
266 1.1 christos }
267 1.1 christos
268 1.1 christos return NULL;
269 1.1 christos }
270 1.6 christos
271 1.6 christos /* Creates a varobj (not its children). */
272 1.1 christos
273 1.6.4.1 christos struct varobj *
274 1.6.4.1 christos varobj_create (const char *objname,
275 1.1 christos const char *expression, CORE_ADDR frame, enum varobj_type type)
276 1.1 christos {
277 1.1 christos struct varobj *var;
278 1.1 christos struct cleanup *old_chain;
279 1.1 christos
280 1.1 christos /* Fill out a varobj structure for the (root) variable being constructed. */
281 1.1 christos var = new_root_variable ();
282 1.1 christos old_chain = make_cleanup_free_variable (var);
283 1.1 christos
284 1.1 christos if (expression != NULL)
285 1.1 christos {
286 1.1 christos struct frame_info *fi;
287 1.3 christos struct frame_id old_id = null_frame_id;
288 1.1 christos const struct block *block;
289 1.1 christos const char *p;
290 1.1 christos struct value *value = NULL;
291 1.1 christos CORE_ADDR pc;
292 1.1 christos
293 1.1 christos /* Parse and evaluate the expression, filling in as much of the
294 1.1 christos variable's data as possible. */
295 1.1 christos
296 1.1 christos if (has_stack_frames ())
297 1.1 christos {
298 1.1 christos /* Allow creator to specify context of variable. */
299 1.1 christos if ((type == USE_CURRENT_FRAME) || (type == USE_SELECTED_FRAME))
300 1.1 christos fi = get_selected_frame (NULL);
301 1.1 christos else
302 1.1 christos /* FIXME: cagney/2002-11-23: This code should be doing a
303 1.1 christos lookup using the frame ID and not just the frame's
304 1.1 christos ``address''. This, of course, means an interface
305 1.1 christos change. However, with out that interface change ISAs,
306 1.1 christos such as the ia64 with its two stacks, won't work.
307 1.1 christos Similar goes for the case where there is a frameless
308 1.1 christos function. */
309 1.1 christos fi = find_frame_addr_in_frame_chain (frame);
310 1.1 christos }
311 1.1 christos else
312 1.1 christos fi = NULL;
313 1.1 christos
314 1.1 christos /* frame = -2 means always use selected frame. */
315 1.1 christos if (type == USE_SELECTED_FRAME)
316 1.1 christos var->root->floating = 1;
317 1.1 christos
318 1.1 christos pc = 0;
319 1.1 christos block = NULL;
320 1.1 christos if (fi != NULL)
321 1.1 christos {
322 1.1 christos block = get_frame_block (fi, 0);
323 1.1 christos pc = get_frame_pc (fi);
324 1.1 christos }
325 1.1 christos
326 1.1 christos p = expression;
327 1.1 christos innermost_block = NULL;
328 1.1 christos /* Wrap the call to parse expression, so we can
329 1.5 christos return a sensible error. */
330 1.1 christos TRY
331 1.1 christos {
332 1.1 christos var->root->exp = parse_exp_1 (&p, pc, block, 0);
333 1.1 christos }
334 1.5 christos
335 1.1 christos CATCH (except, RETURN_MASK_ERROR)
336 1.1 christos {
337 1.1 christos do_cleanups (old_chain);
338 1.1 christos return NULL;
339 1.5 christos }
340 1.1 christos END_CATCH
341 1.1 christos
342 1.1 christos /* Don't allow variables to be created for types. */
343 1.1 christos if (var->root->exp->elts[0].opcode == OP_TYPE
344 1.1 christos || var->root->exp->elts[0].opcode == OP_TYPEOF
345 1.1 christos || var->root->exp->elts[0].opcode == OP_DECLTYPE)
346 1.1 christos {
347 1.1 christos do_cleanups (old_chain);
348 1.1 christos fprintf_unfiltered (gdb_stderr, "Attempt to use a type name"
349 1.1 christos " as an expression.\n");
350 1.1 christos return NULL;
351 1.1 christos }
352 1.1 christos
353 1.1 christos var->format = variable_default_display (var);
354 1.6.4.1 christos var->root->valid_block = innermost_block;
355 1.1 christos var->name = expression;
356 1.6.4.1 christos /* For a root var, the name and the expr are the same. */
357 1.1 christos var->path_expr = expression;
358 1.1 christos
359 1.1 christos /* When the frame is different from the current frame,
360 1.1 christos we must select the appropriate frame before parsing
361 1.1 christos the expression, otherwise the value will not be current.
362 1.1 christos Since select_frame is so benign, just call it for all cases. */
363 1.1 christos if (innermost_block)
364 1.1 christos {
365 1.1 christos /* User could specify explicit FRAME-ADDR which was not found but
366 1.1 christos EXPRESSION is frame specific and we would not be able to evaluate
367 1.1 christos it correctly next time. With VALID_BLOCK set we must also set
368 1.1 christos FRAME and THREAD_ID. */
369 1.1 christos if (fi == NULL)
370 1.1 christos error (_("Failed to find the specified frame"));
371 1.1 christos
372 1.6 christos var->root->frame = get_frame_id (fi);
373 1.1 christos var->root->thread_id = ptid_to_global_thread_id (inferior_ptid);
374 1.1 christos old_id = get_frame_id (get_selected_frame (NULL));
375 1.1 christos select_frame (fi);
376 1.1 christos }
377 1.1 christos
378 1.1 christos /* We definitely need to catch errors here.
379 1.1 christos If evaluate_expression succeeds we got the value we wanted.
380 1.5 christos But if it fails, we still go on with a call to evaluate_type(). */
381 1.1 christos TRY
382 1.6.4.1 christos {
383 1.1 christos value = evaluate_expression (var->root->exp.get ());
384 1.5 christos }
385 1.1 christos CATCH (except, RETURN_MASK_ERROR)
386 1.1 christos {
387 1.1 christos /* Error getting the value. Try to at least get the
388 1.6.4.1 christos right type. */
389 1.1 christos struct value *type_only_value = evaluate_type (var->root->exp.get ());
390 1.1 christos
391 1.1 christos var->type = value_type (type_only_value);
392 1.5 christos }
393 1.5 christos END_CATCH
394 1.5 christos
395 1.5 christos if (value != NULL)
396 1.5 christos {
397 1.5 christos int real_type_found = 0;
398 1.5 christos
399 1.5 christos var->type = value_actual_type (value, 0, &real_type_found);
400 1.5 christos if (real_type_found)
401 1.5 christos value = value_cast (var->type, value);
402 1.1 christos }
403 1.1 christos
404 1.1 christos /* Set language info */
405 1.1 christos var->root->lang_ops = var->root->exp->language_defn->la_varobj_ops;
406 1.1 christos
407 1.1 christos install_new_value (var, value, 1 /* Initial assignment */);
408 1.1 christos
409 1.1 christos /* Set ourselves as our root. */
410 1.1 christos var->root->rootvar = var;
411 1.1 christos
412 1.1 christos /* Reset the selected frame. */
413 1.1 christos if (frame_id_p (old_id))
414 1.1 christos select_frame (frame_find_by_id (old_id));
415 1.1 christos }
416 1.1 christos
417 1.1 christos /* If the variable object name is null, that means this
418 1.1 christos is a temporary variable, so don't install it. */
419 1.1 christos
420 1.1 christos if ((var != NULL) && (objname != NULL))
421 1.6.4.1 christos {
422 1.1 christos var->obj_name = objname;
423 1.1 christos
424 1.1 christos /* If a varobj name is duplicated, the install will fail so
425 1.1 christos we must cleanup. */
426 1.1 christos if (!install_variable (var))
427 1.1 christos {
428 1.1 christos do_cleanups (old_chain);
429 1.1 christos return NULL;
430 1.1 christos }
431 1.1 christos }
432 1.1 christos
433 1.1 christos discard_cleanups (old_chain);
434 1.1 christos return var;
435 1.1 christos }
436 1.1 christos
437 1.1 christos /* Generates an unique name that can be used for a varobj. */
438 1.1 christos
439 1.1 christos char *
440 1.1 christos varobj_gen_name (void)
441 1.1 christos {
442 1.1 christos static int id = 0;
443 1.1 christos char *obj_name;
444 1.1 christos
445 1.1 christos /* Generate a name for this object. */
446 1.1 christos id++;
447 1.1 christos obj_name = xstrprintf ("var%d", id);
448 1.1 christos
449 1.1 christos return obj_name;
450 1.1 christos }
451 1.1 christos
452 1.1 christos /* Given an OBJNAME, returns the pointer to the corresponding varobj. Call
453 1.1 christos error if OBJNAME cannot be found. */
454 1.1 christos
455 1.6.4.1 christos struct varobj *
456 1.1 christos varobj_get_handle (const char *objname)
457 1.1 christos {
458 1.1 christos struct vlist *cv;
459 1.1 christos const char *chp;
460 1.1 christos unsigned int index = 0;
461 1.1 christos unsigned int i = 1;
462 1.1 christos
463 1.1 christos for (chp = objname; *chp; chp++)
464 1.1 christos {
465 1.1 christos index = (index + (i++ * (unsigned int) *chp)) % VAROBJ_TABLE_SIZE;
466 1.1 christos }
467 1.1 christos
468 1.6.4.1 christos cv = *(varobj_table + index);
469 1.1 christos while (cv != NULL && cv->var->obj_name != objname)
470 1.1 christos cv = cv->next;
471 1.1 christos
472 1.1 christos if (cv == NULL)
473 1.1 christos error (_("Variable object not found"));
474 1.1 christos
475 1.1 christos return cv->var;
476 1.1 christos }
477 1.1 christos
478 1.1 christos /* Given the handle, return the name of the object. */
479 1.6.4.1 christos
480 1.5 christos const char *
481 1.1 christos varobj_get_objname (const struct varobj *var)
482 1.6.4.1 christos {
483 1.1 christos return var->obj_name.c_str ();
484 1.1 christos }
485 1.6.4.1 christos
486 1.6.4.1 christos /* Given the handle, return the expression represented by the
487 1.1 christos object. */
488 1.6.4.1 christos
489 1.5 christos std::string
490 1.1 christos varobj_get_expression (const struct varobj *var)
491 1.1 christos {
492 1.1 christos return name_of_variable (var);
493 1.1 christos }
494 1.6 christos
495 1.1 christos /* See varobj.h. */
496 1.1 christos
497 1.6 christos int
498 1.1 christos varobj_delete (struct varobj *var, int only_children)
499 1.6 christos {
500 1.1 christos return delete_variable (var, only_children);
501 1.1 christos }
502 1.1 christos
503 1.1 christos #if HAVE_PYTHON
504 1.1 christos
505 1.1 christos /* Convenience function for varobj_set_visualizer. Instantiate a
506 1.1 christos pretty-printer for a given value. */
507 1.1 christos static PyObject *
508 1.1 christos instantiate_pretty_printer (PyObject *constructor, struct value *value)
509 1.1 christos {
510 1.1 christos PyObject *val_obj = NULL;
511 1.1 christos PyObject *printer;
512 1.1 christos
513 1.1 christos val_obj = value_to_value_object (value);
514 1.1 christos if (! val_obj)
515 1.1 christos return NULL;
516 1.1 christos
517 1.1 christos printer = PyObject_CallFunctionObjArgs (constructor, val_obj, NULL);
518 1.1 christos Py_DECREF (val_obj);
519 1.1 christos return printer;
520 1.1 christos }
521 1.1 christos
522 1.1 christos #endif
523 1.1 christos
524 1.1 christos /* Set/Get variable object display format. */
525 1.1 christos
526 1.1 christos enum varobj_display_formats
527 1.1 christos varobj_set_display_format (struct varobj *var,
528 1.1 christos enum varobj_display_formats format)
529 1.1 christos {
530 1.1 christos switch (format)
531 1.1 christos {
532 1.1 christos case FORMAT_NATURAL:
533 1.1 christos case FORMAT_BINARY:
534 1.1 christos case FORMAT_DECIMAL:
535 1.1 christos case FORMAT_HEXADECIMAL:
536 1.6 christos case FORMAT_OCTAL:
537 1.1 christos case FORMAT_ZHEXADECIMAL:
538 1.1 christos var->format = format;
539 1.1 christos break;
540 1.1 christos
541 1.1 christos default:
542 1.1 christos var->format = variable_default_display (var);
543 1.1 christos }
544 1.1 christos
545 1.1 christos if (varobj_value_is_changeable_p (var)
546 1.1 christos && var->value && !value_lazy (var->value))
547 1.1 christos {
548 1.1 christos var->print_value = varobj_value_get_print_value (var->value,
549 1.1 christos var->format, var);
550 1.1 christos }
551 1.1 christos
552 1.1 christos return var->format;
553 1.1 christos }
554 1.1 christos
555 1.5 christos enum varobj_display_formats
556 1.1 christos varobj_get_display_format (const struct varobj *var)
557 1.1 christos {
558 1.1 christos return var->format;
559 1.1 christos }
560 1.6.4.1 christos
561 1.5 christos gdb::unique_xmalloc_ptr<char>
562 1.1 christos varobj_get_display_hint (const struct varobj *var)
563 1.6.4.1 christos {
564 1.1 christos gdb::unique_xmalloc_ptr<char> result;
565 1.1 christos
566 1.1 christos #if HAVE_PYTHON
567 1.1 christos if (!gdb_python_initialized)
568 1.1 christos return NULL;
569 1.6.4.1 christos
570 1.1 christos gdbpy_enter_varobj enter_py (var);
571 1.1 christos
572 1.1 christos if (var->dynamic->pretty_printer != NULL)
573 1.1 christos result = gdbpy_get_display_hint (var->dynamic->pretty_printer);
574 1.1 christos #endif
575 1.1 christos
576 1.1 christos return result;
577 1.1 christos }
578 1.1 christos
579 1.1 christos /* Return true if the varobj has items after TO, false otherwise. */
580 1.1 christos
581 1.5 christos int
582 1.1 christos varobj_has_more (const struct varobj *var, int to)
583 1.1 christos {
584 1.1 christos if (VEC_length (varobj_p, var->children) > to)
585 1.1 christos return 1;
586 1.1 christos return ((to == -1 || VEC_length (varobj_p, var->children) == to)
587 1.1 christos && (var->dynamic->saved_item != NULL));
588 1.1 christos }
589 1.1 christos
590 1.1 christos /* If the variable object is bound to a specific thread, that
591 1.1 christos is its evaluation can always be done in context of a frame
592 1.1 christos inside that thread, returns GDB id of the thread -- which
593 1.1 christos is always positive. Otherwise, returns -1. */
594 1.5 christos int
595 1.1 christos varobj_get_thread_id (const struct varobj *var)
596 1.1 christos {
597 1.1 christos if (var->root->valid_block && var->root->thread_id > 0)
598 1.1 christos return var->root->thread_id;
599 1.1 christos else
600 1.1 christos return -1;
601 1.1 christos }
602 1.1 christos
603 1.1 christos void
604 1.1 christos varobj_set_frozen (struct varobj *var, int frozen)
605 1.1 christos {
606 1.1 christos /* When a variable is unfrozen, we don't fetch its value.
607 1.1 christos The 'not_fetched' flag remains set, so next -var-update
608 1.1 christos won't complain.
609 1.1 christos
610 1.1 christos We don't fetch the value, because for structures the client
611 1.1 christos should do -var-update anyway. It would be bad to have different
612 1.1 christos client-size logic for structure and other types. */
613 1.1 christos var->frozen = frozen;
614 1.1 christos }
615 1.1 christos
616 1.5 christos int
617 1.1 christos varobj_get_frozen (const struct varobj *var)
618 1.1 christos {
619 1.1 christos return var->frozen;
620 1.1 christos }
621 1.1 christos
622 1.1 christos /* A helper function that restricts a range to what is actually
623 1.1 christos available in a VEC. This follows the usual rules for the meaning
624 1.1 christos of FROM and TO -- if either is negative, the entire range is
625 1.1 christos used. */
626 1.1 christos
627 1.1 christos void
628 1.1 christos varobj_restrict_range (VEC (varobj_p) *children, int *from, int *to)
629 1.1 christos {
630 1.1 christos if (*from < 0 || *to < 0)
631 1.1 christos {
632 1.1 christos *from = 0;
633 1.1 christos *to = VEC_length (varobj_p, children);
634 1.1 christos }
635 1.1 christos else
636 1.1 christos {
637 1.1 christos if (*from > VEC_length (varobj_p, children))
638 1.1 christos *from = VEC_length (varobj_p, children);
639 1.1 christos if (*to > VEC_length (varobj_p, children))
640 1.1 christos *to = VEC_length (varobj_p, children);
641 1.1 christos if (*from > *to)
642 1.1 christos *from = *to;
643 1.1 christos }
644 1.1 christos }
645 1.1 christos
646 1.1 christos /* A helper for update_dynamic_varobj_children that installs a new
647 1.1 christos child when needed. */
648 1.1 christos
649 1.1 christos static void
650 1.1 christos install_dynamic_child (struct varobj *var,
651 1.1 christos VEC (varobj_p) **changed,
652 1.5 christos VEC (varobj_p) **type_changed,
653 1.1 christos VEC (varobj_p) **newobj,
654 1.1 christos VEC (varobj_p) **unchanged,
655 1.1 christos int *cchanged,
656 1.3 christos int index,
657 1.1 christos struct varobj_item *item)
658 1.1 christos {
659 1.1 christos if (VEC_length (varobj_p, var->children) < index + 1)
660 1.1 christos {
661 1.3 christos /* There's no child yet. */
662 1.1 christos struct varobj *child = varobj_add_child (var, item);
663 1.5 christos
664 1.1 christos if (newobj)
665 1.5 christos {
666 1.1 christos VEC_safe_push (varobj_p, *newobj, child);
667 1.1 christos *cchanged = 1;
668 1.1 christos }
669 1.1 christos }
670 1.1 christos else
671 1.1 christos {
672 1.3 christos varobj_p existing = VEC_index (varobj_p, var->children, index);
673 1.1 christos int type_updated = update_type_if_necessary (existing, item->value);
674 1.1 christos
675 1.1 christos if (type_updated)
676 1.1 christos {
677 1.1 christos if (type_changed)
678 1.1 christos VEC_safe_push (varobj_p, *type_changed, existing);
679 1.3 christos }
680 1.1 christos if (install_new_value (existing, item->value, 0))
681 1.1 christos {
682 1.1 christos if (!type_updated && changed)
683 1.1 christos VEC_safe_push (varobj_p, *changed, existing);
684 1.1 christos }
685 1.1 christos else if (!type_updated && unchanged)
686 1.1 christos VEC_safe_push (varobj_p, *unchanged, existing);
687 1.1 christos }
688 1.1 christos }
689 1.3 christos
690 1.3 christos #if HAVE_PYTHON
691 1.1 christos
692 1.5 christos static int
693 1.1 christos dynamic_varobj_has_child_method (const struct varobj *var)
694 1.1 christos {
695 1.1 christos PyObject *printer = var->dynamic->pretty_printer;
696 1.1 christos
697 1.1 christos if (!gdb_python_initialized)
698 1.1 christos return 0;
699 1.6.4.1 christos
700 1.6.4.1 christos gdbpy_enter_varobj enter_py (var);
701 1.1 christos return PyObject_HasAttr (printer, gdbpy_children_cst);
702 1.3 christos }
703 1.3 christos #endif
704 1.3 christos
705 1.3 christos /* A factory for creating dynamic varobj's iterators. Returns an
706 1.1 christos iterator object suitable for iterating over VAR's children. */
707 1.3 christos
708 1.3 christos static struct varobj_iter *
709 1.3 christos varobj_get_iterator (struct varobj *var)
710 1.3 christos {
711 1.3 christos #if HAVE_PYTHON
712 1.3 christos if (var->dynamic->pretty_printer)
713 1.1 christos return py_varobj_get_iterator (var, var->dynamic->pretty_printer);
714 1.1 christos #endif
715 1.3 christos
716 1.3 christos gdb_assert_not_reached (_("\
717 1.3 christos requested an iterator from a non-dynamic varobj"));
718 1.3 christos }
719 1.3 christos
720 1.3 christos /* Release and clear VAR's saved item, if any. */
721 1.3 christos
722 1.3 christos static void
723 1.3 christos varobj_clear_saved_item (struct varobj_dynamic *var)
724 1.3 christos {
725 1.3 christos if (var->saved_item != NULL)
726 1.3 christos {
727 1.6.4.1 christos value_free (var->saved_item->value);
728 1.3 christos delete var->saved_item;
729 1.3 christos var->saved_item = NULL;
730 1.3 christos }
731 1.3 christos }
732 1.1 christos
733 1.1 christos static int
734 1.1 christos update_dynamic_varobj_children (struct varobj *var,
735 1.1 christos VEC (varobj_p) **changed,
736 1.5 christos VEC (varobj_p) **type_changed,
737 1.1 christos VEC (varobj_p) **newobj,
738 1.1 christos VEC (varobj_p) **unchanged,
739 1.1 christos int *cchanged,
740 1.1 christos int update_children,
741 1.1 christos int from,
742 1.1 christos int to)
743 1.1 christos {
744 1.1 christos int i;
745 1.1 christos
746 1.1 christos *cchanged = 0;
747 1.1 christos
748 1.1 christos if (update_children || var->dynamic->child_iter == NULL)
749 1.3 christos {
750 1.3 christos varobj_iter_delete (var->dynamic->child_iter);
751 1.1 christos var->dynamic->child_iter = varobj_get_iterator (var);
752 1.3 christos
753 1.1 christos varobj_clear_saved_item (var->dynamic);
754 1.3 christos
755 1.1 christos i = 0;
756 1.1 christos
757 1.3 christos if (var->dynamic->child_iter == NULL)
758 1.1 christos return 0;
759 1.1 christos }
760 1.1 christos else
761 1.1 christos i = VEC_length (varobj_p, var->children);
762 1.1 christos
763 1.1 christos /* We ask for one extra child, so that MI can report whether there
764 1.1 christos are more children. */
765 1.1 christos for (; to < 0 || i < to + 1; ++i)
766 1.3 christos {
767 1.1 christos varobj_item *item;
768 1.1 christos
769 1.3 christos /* See if there was a leftover from last time. */
770 1.1 christos if (var->dynamic->saved_item != NULL)
771 1.1 christos {
772 1.1 christos item = var->dynamic->saved_item;
773 1.1 christos var->dynamic->saved_item = NULL;
774 1.1 christos }
775 1.1 christos else
776 1.3 christos {
777 1.3 christos item = varobj_iter_next (var->dynamic->child_iter);
778 1.3 christos /* Release vitem->value so its lifetime is not bound to the
779 1.3 christos execution of a command. */
780 1.3 christos if (item != NULL && item->value != NULL)
781 1.3 christos release_value_or_incref (item->value);
782 1.1 christos }
783 1.3 christos
784 1.3 christos if (item == NULL)
785 1.3 christos {
786 1.3 christos /* Iteration is done. Remove iterator from VAR. */
787 1.3 christos varobj_iter_delete (var->dynamic->child_iter);
788 1.3 christos var->dynamic->child_iter = NULL;
789 1.1 christos break;
790 1.1 christos }
791 1.1 christos /* We don't want to push the extra child on any report list. */
792 1.1 christos if (to < 0 || i < to)
793 1.1 christos {
794 1.1 christos int can_mention = from < 0 || i >= from;
795 1.1 christos
796 1.1 christos install_dynamic_child (var, can_mention ? changed : NULL,
797 1.5 christos can_mention ? type_changed : NULL,
798 1.1 christos can_mention ? newobj : NULL,
799 1.1 christos can_mention ? unchanged : NULL,
800 1.3 christos can_mention ? cchanged : NULL, i,
801 1.3 christos item);
802 1.6.4.1 christos
803 1.1 christos delete item;
804 1.1 christos }
805 1.1 christos else
806 1.1 christos {
807 1.1 christos var->dynamic->saved_item = item;
808 1.1 christos
809 1.1 christos /* We want to truncate the child list just before this
810 1.1 christos element. */
811 1.1 christos break;
812 1.1 christos }
813 1.1 christos }
814 1.1 christos
815 1.1 christos if (i < VEC_length (varobj_p, var->children))
816 1.1 christos {
817 1.1 christos int j;
818 1.1 christos
819 1.1 christos *cchanged = 1;
820 1.6 christos for (j = i; j < VEC_length (varobj_p, var->children); ++j)
821 1.1 christos varobj_delete (VEC_index (varobj_p, var->children, j), 0);
822 1.1 christos VEC_truncate (varobj_p, var->children, i);
823 1.1 christos }
824 1.1 christos
825 1.1 christos /* If there are fewer children than requested, note that the list of
826 1.1 christos children changed. */
827 1.1 christos if (to >= 0 && VEC_length (varobj_p, var->children) < to)
828 1.1 christos *cchanged = 1;
829 1.1 christos
830 1.1 christos var->num_children = VEC_length (varobj_p, var->children);
831 1.1 christos
832 1.1 christos return 1;
833 1.1 christos }
834 1.1 christos
835 1.1 christos int
836 1.1 christos varobj_get_num_children (struct varobj *var)
837 1.1 christos {
838 1.1 christos if (var->num_children == -1)
839 1.3 christos {
840 1.1 christos if (varobj_is_dynamic_p (var))
841 1.1 christos {
842 1.1 christos int dummy;
843 1.1 christos
844 1.1 christos /* If we have a dynamic varobj, don't report -1 children.
845 1.1 christos So, try to fetch some children first. */
846 1.1 christos update_dynamic_varobj_children (var, NULL, NULL, NULL, NULL, &dummy,
847 1.1 christos 0, 0, 0);
848 1.1 christos }
849 1.1 christos else
850 1.1 christos var->num_children = number_of_children (var);
851 1.1 christos }
852 1.1 christos
853 1.1 christos return var->num_children >= 0 ? var->num_children : 0;
854 1.1 christos }
855 1.1 christos
856 1.1 christos /* Creates a list of the immediate children of a variable object;
857 1.1 christos the return code is the number of such children or -1 on error. */
858 1.1 christos
859 1.1 christos VEC (varobj_p)*
860 1.1 christos varobj_list_children (struct varobj *var, int *from, int *to)
861 1.1 christos {
862 1.1 christos int i, children_changed;
863 1.1 christos
864 1.1 christos var->dynamic->children_requested = 1;
865 1.3 christos
866 1.1 christos if (varobj_is_dynamic_p (var))
867 1.1 christos {
868 1.1 christos /* This, in theory, can result in the number of children changing without
869 1.1 christos frontend noticing. But well, calling -var-list-children on the same
870 1.1 christos varobj twice is not something a sane frontend would do. */
871 1.1 christos update_dynamic_varobj_children (var, NULL, NULL, NULL, NULL,
872 1.1 christos &children_changed, 0, 0, *to);
873 1.1 christos varobj_restrict_range (var->children, from, to);
874 1.1 christos return var->children;
875 1.1 christos }
876 1.1 christos
877 1.1 christos if (var->num_children == -1)
878 1.1 christos var->num_children = number_of_children (var);
879 1.1 christos
880 1.1 christos /* If that failed, give up. */
881 1.1 christos if (var->num_children == -1)
882 1.1 christos return var->children;
883 1.1 christos
884 1.1 christos /* If we're called when the list of children is not yet initialized,
885 1.1 christos allocate enough elements in it. */
886 1.1 christos while (VEC_length (varobj_p, var->children) < var->num_children)
887 1.1 christos VEC_safe_push (varobj_p, var->children, NULL);
888 1.1 christos
889 1.1 christos for (i = 0; i < var->num_children; i++)
890 1.1 christos {
891 1.1 christos varobj_p existing = VEC_index (varobj_p, var->children, i);
892 1.1 christos
893 1.1 christos if (existing == NULL)
894 1.1 christos {
895 1.1 christos /* Either it's the first call to varobj_list_children for
896 1.1 christos this variable object, and the child was never created,
897 1.6.4.1 christos or it was explicitly deleted by the client. */
898 1.1 christos std::string name = name_of_child (var, i);
899 1.1 christos existing = create_child (var, i, name);
900 1.1 christos VEC_replace (varobj_p, var->children, i, existing);
901 1.1 christos }
902 1.1 christos }
903 1.1 christos
904 1.1 christos varobj_restrict_range (var->children, from, to);
905 1.1 christos return var->children;
906 1.1 christos }
907 1.1 christos
908 1.3 christos static struct varobj *
909 1.1 christos varobj_add_child (struct varobj *var, struct varobj_item *item)
910 1.3 christos {
911 1.1 christos varobj_p v = create_child_with_value (var,
912 1.3 christos VEC_length (varobj_p, var->children),
913 1.1 christos item);
914 1.1 christos
915 1.1 christos VEC_safe_push (varobj_p, var->children, v);
916 1.1 christos return v;
917 1.1 christos }
918 1.1 christos
919 1.5 christos /* Obtain the type of an object Variable as a string similar to the one gdb
920 1.5 christos prints on the console. The caller is responsible for freeing the string.
921 1.1 christos */
922 1.6.4.1 christos
923 1.1 christos std::string
924 1.1 christos varobj_get_type (struct varobj *var)
925 1.1 christos {
926 1.1 christos /* For the "fake" variables, do not return a type. (Its type is
927 1.1 christos NULL, too.)
928 1.1 christos Do not return a type for invalid variables as well. */
929 1.6.4.1 christos if (CPLUS_FAKE_CHILD (var) || !var->root->is_valid)
930 1.1 christos return std::string ();
931 1.1 christos
932 1.1 christos return type_to_string (var->type);
933 1.1 christos }
934 1.1 christos
935 1.1 christos /* Obtain the type of an object variable. */
936 1.1 christos
937 1.5 christos struct type *
938 1.1 christos varobj_get_gdb_type (const struct varobj *var)
939 1.1 christos {
940 1.1 christos return var->type;
941 1.1 christos }
942 1.1 christos
943 1.1 christos /* Is VAR a path expression parent, i.e., can it be used to construct
944 1.1 christos a valid path expression? */
945 1.1 christos
946 1.5 christos static int
947 1.1 christos is_path_expr_parent (const struct varobj *var)
948 1.3 christos {
949 1.3 christos gdb_assert (var->root->lang_ops->is_path_expr_parent != NULL);
950 1.3 christos return var->root->lang_ops->is_path_expr_parent (var);
951 1.1 christos }
952 1.3 christos
953 1.3 christos /* Is VAR a path expression parent, i.e., can it be used to construct
954 1.3 christos a valid path expression? By default we assume any VAR can be a path
955 1.1 christos parent. */
956 1.3 christos
957 1.5 christos int
958 1.3 christos varobj_default_is_path_expr_parent (const struct varobj *var)
959 1.3 christos {
960 1.1 christos return 1;
961 1.1 christos }
962 1.1 christos
963 1.1 christos /* Return the path expression parent for VAR. */
964 1.5 christos
965 1.5 christos const struct varobj *
966 1.1 christos varobj_get_path_expr_parent (const struct varobj *var)
967 1.5 christos {
968 1.1 christos const struct varobj *parent = var;
969 1.1 christos
970 1.1 christos while (!is_root_p (parent) && !is_path_expr_parent (parent))
971 1.1 christos parent = parent->parent;
972 1.1 christos
973 1.1 christos return parent;
974 1.1 christos }
975 1.1 christos
976 1.1 christos /* Return a pointer to the full rooted expression of varobj VAR.
977 1.6.4.1 christos If it has not been computed yet, compute it. */
978 1.6.4.1 christos
979 1.5 christos const char *
980 1.1 christos varobj_get_path_expr (const struct varobj *var)
981 1.6.4.1 christos {
982 1.1 christos if (var->path_expr.empty ())
983 1.1 christos {
984 1.1 christos /* For root varobjs, we initialize path_expr
985 1.1 christos when creating varobj, so here it should be
986 1.5 christos child varobj. */
987 1.1 christos struct varobj *mutable_var = (struct varobj *) var;
988 1.5 christos gdb_assert (!is_root_p (var));
989 1.5 christos
990 1.1 christos mutable_var->path_expr = (*var->root->lang_ops->path_expr_of_child) (var);
991 1.5 christos }
992 1.6.4.1 christos
993 1.1 christos return var->path_expr.c_str ();
994 1.1 christos }
995 1.1 christos
996 1.5 christos const struct language_defn *
997 1.1 christos varobj_get_language (const struct varobj *var)
998 1.1 christos {
999 1.1 christos return var->root->exp->language_defn;
1000 1.1 christos }
1001 1.1 christos
1002 1.5 christos int
1003 1.1 christos varobj_get_attributes (const struct varobj *var)
1004 1.1 christos {
1005 1.1 christos int attributes = 0;
1006 1.1 christos
1007 1.1 christos if (varobj_editable_p (var))
1008 1.1 christos /* FIXME: define masks for attributes. */
1009 1.1 christos attributes |= 0x00000001; /* Editable */
1010 1.1 christos
1011 1.1 christos return attributes;
1012 1.1 christos }
1013 1.3 christos
1014 1.3 christos /* Return true if VAR is a dynamic varobj. */
1015 1.1 christos
1016 1.5 christos int
1017 1.1 christos varobj_is_dynamic_p (const struct varobj *var)
1018 1.1 christos {
1019 1.1 christos return var->dynamic->pretty_printer != NULL;
1020 1.1 christos }
1021 1.6.4.1 christos
1022 1.1 christos std::string
1023 1.1 christos varobj_get_formatted_value (struct varobj *var,
1024 1.1 christos enum varobj_display_formats format)
1025 1.1 christos {
1026 1.1 christos return my_value_of_variable (var, format);
1027 1.1 christos }
1028 1.6.4.1 christos
1029 1.1 christos std::string
1030 1.1 christos varobj_get_value (struct varobj *var)
1031 1.1 christos {
1032 1.1 christos return my_value_of_variable (var, var->format);
1033 1.1 christos }
1034 1.1 christos
1035 1.1 christos /* Set the value of an object variable (if it is editable) to the
1036 1.1 christos value of the given expression. */
1037 1.1 christos /* Note: Invokes functions that can call error(). */
1038 1.1 christos
1039 1.6.4.1 christos int
1040 1.1 christos varobj_set_value (struct varobj *var, const char *expression)
1041 1.1 christos {
1042 1.1 christos struct value *val = NULL; /* Initialize to keep gcc happy. */
1043 1.1 christos /* The argument "expression" contains the variable's new value.
1044 1.1 christos We need to first construct a legal expression for this -- ugh! */
1045 1.1 christos /* Does this cover all the bases? */
1046 1.1 christos struct value *value = NULL; /* Initialize to keep gcc happy. */
1047 1.1 christos int saved_input_radix = input_radix;
1048 1.1 christos const char *s = expression;
1049 1.1 christos
1050 1.1 christos gdb_assert (varobj_editable_p (var));
1051 1.1 christos
1052 1.6.4.1 christos input_radix = 10; /* ALWAYS reset to decimal temporarily. */
1053 1.5 christos expression_up exp = parse_exp_1 (&s, 0, 0, 0);
1054 1.1 christos TRY
1055 1.6.4.1 christos {
1056 1.1 christos value = evaluate_expression (exp.get ());
1057 1.1 christos }
1058 1.5 christos
1059 1.1 christos CATCH (except, RETURN_MASK_ERROR)
1060 1.1 christos {
1061 1.1 christos /* We cannot proceed without a valid expression. */
1062 1.1 christos return 0;
1063 1.5 christos }
1064 1.1 christos END_CATCH
1065 1.1 christos
1066 1.1 christos /* All types that are editable must also be changeable. */
1067 1.1 christos gdb_assert (varobj_value_is_changeable_p (var));
1068 1.1 christos
1069 1.1 christos /* The value of a changeable variable object must not be lazy. */
1070 1.1 christos gdb_assert (!value_lazy (var->value));
1071 1.1 christos
1072 1.1 christos /* Need to coerce the input. We want to check if the
1073 1.1 christos value of the variable object will be different
1074 1.1 christos after assignment, and the first thing value_assign
1075 1.1 christos does is coerce the input.
1076 1.1 christos For example, if we are assigning an array to a pointer variable we
1077 1.1 christos should compare the pointer with the array's address, not with the
1078 1.1 christos array's content. */
1079 1.1 christos value = coerce_array (value);
1080 1.1 christos
1081 1.1 christos /* The new value may be lazy. value_assign, or
1082 1.5 christos rather value_contents, will take care of this. */
1083 1.1 christos TRY
1084 1.1 christos {
1085 1.1 christos val = value_assign (var->value, value);
1086 1.1 christos }
1087 1.5 christos
1088 1.5 christos CATCH (except, RETURN_MASK_ERROR)
1089 1.5 christos {
1090 1.5 christos return 0;
1091 1.5 christos }
1092 1.1 christos END_CATCH
1093 1.1 christos
1094 1.1 christos /* If the value has changed, record it, so that next -var-update can
1095 1.1 christos report this change. If a variable had a value of '1', we've set it
1096 1.1 christos to '333' and then set again to '1', when -var-update will report this
1097 1.1 christos variable as changed -- because the first assignment has set the
1098 1.1 christos 'updated' flag. There's no need to optimize that, because return value
1099 1.1 christos of -var-update should be considered an approximation. */
1100 1.1 christos var->updated = install_new_value (var, val, 0 /* Compare values. */);
1101 1.1 christos input_radix = saved_input_radix;
1102 1.1 christos return 1;
1103 1.1 christos }
1104 1.1 christos
1105 1.1 christos #if HAVE_PYTHON
1106 1.1 christos
1107 1.1 christos /* A helper function to install a constructor function and visualizer
1108 1.1 christos in a varobj_dynamic. */
1109 1.1 christos
1110 1.1 christos static void
1111 1.1 christos install_visualizer (struct varobj_dynamic *var, PyObject *constructor,
1112 1.1 christos PyObject *visualizer)
1113 1.1 christos {
1114 1.1 christos Py_XDECREF (var->constructor);
1115 1.1 christos var->constructor = constructor;
1116 1.1 christos
1117 1.1 christos Py_XDECREF (var->pretty_printer);
1118 1.1 christos var->pretty_printer = visualizer;
1119 1.3 christos
1120 1.1 christos varobj_iter_delete (var->child_iter);
1121 1.1 christos var->child_iter = NULL;
1122 1.1 christos }
1123 1.1 christos
1124 1.1 christos /* Install the default visualizer for VAR. */
1125 1.1 christos
1126 1.1 christos static void
1127 1.1 christos install_default_visualizer (struct varobj *var)
1128 1.1 christos {
1129 1.1 christos /* Do not install a visualizer on a CPLUS_FAKE_CHILD. */
1130 1.1 christos if (CPLUS_FAKE_CHILD (var))
1131 1.1 christos return;
1132 1.1 christos
1133 1.1 christos if (pretty_printing)
1134 1.1 christos {
1135 1.1 christos PyObject *pretty_printer = NULL;
1136 1.1 christos
1137 1.1 christos if (var->value)
1138 1.1 christos {
1139 1.1 christos pretty_printer = gdbpy_get_varobj_pretty_printer (var->value);
1140 1.1 christos if (! pretty_printer)
1141 1.1 christos {
1142 1.1 christos gdbpy_print_stack ();
1143 1.1 christos error (_("Cannot instantiate printer for default visualizer"));
1144 1.1 christos }
1145 1.1 christos }
1146 1.1 christos
1147 1.1 christos if (pretty_printer == Py_None)
1148 1.1 christos {
1149 1.1 christos Py_DECREF (pretty_printer);
1150 1.1 christos pretty_printer = NULL;
1151 1.1 christos }
1152 1.1 christos
1153 1.1 christos install_visualizer (var->dynamic, NULL, pretty_printer);
1154 1.1 christos }
1155 1.1 christos }
1156 1.1 christos
1157 1.1 christos /* Instantiate and install a visualizer for VAR using CONSTRUCTOR to
1158 1.1 christos make a new object. */
1159 1.1 christos
1160 1.1 christos static void
1161 1.1 christos construct_visualizer (struct varobj *var, PyObject *constructor)
1162 1.1 christos {
1163 1.1 christos PyObject *pretty_printer;
1164 1.1 christos
1165 1.1 christos /* Do not install a visualizer on a CPLUS_FAKE_CHILD. */
1166 1.1 christos if (CPLUS_FAKE_CHILD (var))
1167 1.1 christos return;
1168 1.1 christos
1169 1.1 christos Py_INCREF (constructor);
1170 1.1 christos if (constructor == Py_None)
1171 1.1 christos pretty_printer = NULL;
1172 1.1 christos else
1173 1.1 christos {
1174 1.1 christos pretty_printer = instantiate_pretty_printer (constructor, var->value);
1175 1.1 christos if (! pretty_printer)
1176 1.1 christos {
1177 1.1 christos gdbpy_print_stack ();
1178 1.1 christos Py_DECREF (constructor);
1179 1.1 christos constructor = Py_None;
1180 1.1 christos Py_INCREF (constructor);
1181 1.1 christos }
1182 1.1 christos
1183 1.1 christos if (pretty_printer == Py_None)
1184 1.1 christos {
1185 1.1 christos Py_DECREF (pretty_printer);
1186 1.1 christos pretty_printer = NULL;
1187 1.1 christos }
1188 1.1 christos }
1189 1.1 christos
1190 1.1 christos install_visualizer (var->dynamic, constructor, pretty_printer);
1191 1.1 christos }
1192 1.1 christos
1193 1.1 christos #endif /* HAVE_PYTHON */
1194 1.1 christos
1195 1.1 christos /* A helper function for install_new_value. This creates and installs
1196 1.1 christos a visualizer for VAR, if appropriate. */
1197 1.1 christos
1198 1.1 christos static void
1199 1.1 christos install_new_value_visualizer (struct varobj *var)
1200 1.1 christos {
1201 1.1 christos #if HAVE_PYTHON
1202 1.1 christos /* If the constructor is None, then we want the raw value. If VAR
1203 1.1 christos does not have a value, just skip this. */
1204 1.1 christos if (!gdb_python_initialized)
1205 1.1 christos return;
1206 1.1 christos
1207 1.1 christos if (var->dynamic->constructor != Py_None && var->value != NULL)
1208 1.6.4.1 christos {
1209 1.1 christos gdbpy_enter_varobj enter_py (var);
1210 1.1 christos
1211 1.1 christos if (var->dynamic->constructor == NULL)
1212 1.1 christos install_default_visualizer (var);
1213 1.1 christos else
1214 1.1 christos construct_visualizer (var, var->dynamic->constructor);
1215 1.1 christos }
1216 1.1 christos #else
1217 1.1 christos /* Do nothing. */
1218 1.1 christos #endif
1219 1.1 christos }
1220 1.1 christos
1221 1.1 christos /* When using RTTI to determine variable type it may be changed in runtime when
1222 1.1 christos the variable value is changed. This function checks whether type of varobj
1223 1.1 christos VAR will change when a new value NEW_VALUE is assigned and if it is so
1224 1.1 christos updates the type of VAR. */
1225 1.1 christos
1226 1.1 christos static int
1227 1.1 christos update_type_if_necessary (struct varobj *var, struct value *new_value)
1228 1.1 christos {
1229 1.1 christos if (new_value)
1230 1.1 christos {
1231 1.1 christos struct value_print_options opts;
1232 1.1 christos
1233 1.1 christos get_user_print_options (&opts);
1234 1.1 christos if (opts.objectprint)
1235 1.6.4.1 christos {
1236 1.6.4.1 christos struct type *new_type = value_actual_type (new_value, 0, 0);
1237 1.6.4.1 christos std::string new_type_str = type_to_string (new_type);
1238 1.1 christos std::string curr_type_str = varobj_get_type (var);
1239 1.6.4.1 christos
1240 1.6.4.1 christos /* Did the type name change? */
1241 1.1 christos if (curr_type_str != new_type_str)
1242 1.1 christos {
1243 1.1 christos var->type = new_type;
1244 1.1 christos
1245 1.6 christos /* This information may be not valid for a new type. */
1246 1.1 christos varobj_delete (var, 1);
1247 1.1 christos VEC_free (varobj_p, var->children);
1248 1.6.4.1 christos var->num_children = -1;
1249 1.1 christos return 1;
1250 1.1 christos }
1251 1.1 christos }
1252 1.1 christos }
1253 1.1 christos
1254 1.1 christos return 0;
1255 1.1 christos }
1256 1.1 christos
1257 1.1 christos /* Assign a new value to a variable object. If INITIAL is non-zero,
1258 1.1 christos this is the first assignement after the variable object was just
1259 1.1 christos created, or changed type. In that case, just assign the value
1260 1.1 christos and return 0.
1261 1.1 christos Otherwise, assign the new value, and return 1 if the value is
1262 1.1 christos different from the current one, 0 otherwise. The comparison is
1263 1.1 christos done on textual representation of value. Therefore, some types
1264 1.1 christos need not be compared. E.g. for structures the reported value is
1265 1.1 christos always "{...}", so no comparison is necessary here. If the old
1266 1.1 christos value was NULL and new one is not, or vice versa, we always return 1.
1267 1.1 christos
1268 1.1 christos The VALUE parameter should not be released -- the function will
1269 1.1 christos take care of releasing it when needed. */
1270 1.1 christos static int
1271 1.1 christos install_new_value (struct varobj *var, struct value *value, int initial)
1272 1.1 christos {
1273 1.1 christos int changeable;
1274 1.1 christos int need_to_fetch;
1275 1.1 christos int changed = 0;
1276 1.1 christos int intentionally_not_fetched = 0;
1277 1.1 christos
1278 1.1 christos /* We need to know the varobj's type to decide if the value should
1279 1.1 christos be fetched or not. C++ fake children (public/protected/private)
1280 1.1 christos don't have a type. */
1281 1.1 christos gdb_assert (var->type || CPLUS_FAKE_CHILD (var));
1282 1.1 christos changeable = varobj_value_is_changeable_p (var);
1283 1.1 christos
1284 1.1 christos /* If the type has custom visualizer, we consider it to be always
1285 1.1 christos changeable. FIXME: need to make sure this behaviour will not
1286 1.1 christos mess up read-sensitive values. */
1287 1.1 christos if (var->dynamic->pretty_printer != NULL)
1288 1.1 christos changeable = 1;
1289 1.1 christos
1290 1.1 christos need_to_fetch = changeable;
1291 1.1 christos
1292 1.1 christos /* We are not interested in the address of references, and given
1293 1.1 christos that in C++ a reference is not rebindable, it cannot
1294 1.1 christos meaningfully change. So, get hold of the real value. */
1295 1.1 christos if (value)
1296 1.1 christos value = coerce_ref (value);
1297 1.1 christos
1298 1.1 christos if (var->type && TYPE_CODE (var->type) == TYPE_CODE_UNION)
1299 1.1 christos /* For unions, we need to fetch the value implicitly because
1300 1.1 christos of implementation of union member fetch. When gdb
1301 1.1 christos creates a value for a field and the value of the enclosing
1302 1.1 christos structure is not lazy, it immediately copies the necessary
1303 1.1 christos bytes from the enclosing values. If the enclosing value is
1304 1.1 christos lazy, the call to value_fetch_lazy on the field will read
1305 1.1 christos the data from memory. For unions, that means we'll read the
1306 1.1 christos same memory more than once, which is not desirable. So
1307 1.1 christos fetch now. */
1308 1.1 christos need_to_fetch = 1;
1309 1.1 christos
1310 1.1 christos /* The new value might be lazy. If the type is changeable,
1311 1.1 christos that is we'll be comparing values of this type, fetch the
1312 1.1 christos value now. Otherwise, on the next update the old value
1313 1.1 christos will be lazy, which means we've lost that old value. */
1314 1.1 christos if (need_to_fetch && value && value_lazy (value))
1315 1.5 christos {
1316 1.1 christos const struct varobj *parent = var->parent;
1317 1.1 christos int frozen = var->frozen;
1318 1.1 christos
1319 1.1 christos for (; !frozen && parent; parent = parent->parent)
1320 1.1 christos frozen |= parent->frozen;
1321 1.1 christos
1322 1.1 christos if (frozen && initial)
1323 1.1 christos {
1324 1.1 christos /* For variables that are frozen, or are children of frozen
1325 1.1 christos variables, we don't do fetch on initial assignment.
1326 1.1 christos For non-initial assignemnt we do the fetch, since it means we're
1327 1.1 christos explicitly asked to compare the new value with the old one. */
1328 1.1 christos intentionally_not_fetched = 1;
1329 1.1 christos }
1330 1.1 christos else
1331 1.1 christos {
1332 1.5 christos
1333 1.1 christos TRY
1334 1.1 christos {
1335 1.1 christos value_fetch_lazy (value);
1336 1.1 christos }
1337 1.5 christos
1338 1.1 christos CATCH (except, RETURN_MASK_ERROR)
1339 1.1 christos {
1340 1.1 christos /* Set the value to NULL, so that for the next -var-update,
1341 1.1 christos we don't try to compare the new value with this value,
1342 1.1 christos that we couldn't even read. */
1343 1.1 christos value = NULL;
1344 1.5 christos }
1345 1.1 christos END_CATCH
1346 1.1 christos }
1347 1.1 christos }
1348 1.1 christos
1349 1.1 christos /* Get a reference now, before possibly passing it to any Python
1350 1.1 christos code that might release it. */
1351 1.1 christos if (value != NULL)
1352 1.1 christos value_incref (value);
1353 1.1 christos
1354 1.1 christos /* Below, we'll be comparing string rendering of old and new
1355 1.1 christos values. Don't get string rendering if the value is
1356 1.1 christos lazy -- if it is, the code above has decided that the value
1357 1.6.4.1 christos should not be fetched. */
1358 1.1 christos std::string print_value;
1359 1.1 christos if (value != NULL && !value_lazy (value)
1360 1.1 christos && var->dynamic->pretty_printer == NULL)
1361 1.1 christos print_value = varobj_value_get_print_value (value, var->format, var);
1362 1.1 christos
1363 1.1 christos /* If the type is changeable, compare the old and the new values.
1364 1.1 christos If this is the initial assignment, we don't have any old value
1365 1.1 christos to compare with. */
1366 1.1 christos if (!initial && changeable)
1367 1.1 christos {
1368 1.1 christos /* If the value of the varobj was changed by -var-set-value,
1369 1.1 christos then the value in the varobj and in the target is the same.
1370 1.1 christos However, that value is different from the value that the
1371 1.1 christos varobj had after the previous -var-update. So need to the
1372 1.1 christos varobj as changed. */
1373 1.1 christos if (var->updated)
1374 1.1 christos {
1375 1.1 christos changed = 1;
1376 1.1 christos }
1377 1.1 christos else if (var->dynamic->pretty_printer == NULL)
1378 1.1 christos {
1379 1.1 christos /* Try to compare the values. That requires that both
1380 1.1 christos values are non-lazy. */
1381 1.1 christos if (var->not_fetched && value_lazy (var->value))
1382 1.1 christos {
1383 1.1 christos /* This is a frozen varobj and the value was never read.
1384 1.1 christos Presumably, UI shows some "never read" indicator.
1385 1.1 christos Now that we've fetched the real value, we need to report
1386 1.1 christos this varobj as changed so that UI can show the real
1387 1.1 christos value. */
1388 1.1 christos changed = 1;
1389 1.1 christos }
1390 1.1 christos else if (var->value == NULL && value == NULL)
1391 1.1 christos /* Equal. */
1392 1.1 christos ;
1393 1.1 christos else if (var->value == NULL || value == NULL)
1394 1.1 christos {
1395 1.1 christos changed = 1;
1396 1.1 christos }
1397 1.1 christos else
1398 1.1 christos {
1399 1.1 christos gdb_assert (!value_lazy (var->value));
1400 1.1 christos gdb_assert (!value_lazy (value));
1401 1.6.4.1 christos
1402 1.6.4.1 christos gdb_assert (!var->print_value.empty () && !print_value.empty ());
1403 1.1 christos if (var->print_value != print_value)
1404 1.1 christos changed = 1;
1405 1.1 christos }
1406 1.1 christos }
1407 1.1 christos }
1408 1.1 christos
1409 1.1 christos if (!initial && !changeable)
1410 1.1 christos {
1411 1.1 christos /* For values that are not changeable, we don't compare the values.
1412 1.1 christos However, we want to notice if a value was not NULL and now is NULL,
1413 1.1 christos or vise versa, so that we report when top-level varobjs come in scope
1414 1.1 christos and leave the scope. */
1415 1.1 christos changed = (var->value != NULL) != (value != NULL);
1416 1.1 christos }
1417 1.1 christos
1418 1.1 christos /* We must always keep the new value, since children depend on it. */
1419 1.1 christos if (var->value != NULL && var->value != value)
1420 1.1 christos value_free (var->value);
1421 1.1 christos var->value = value;
1422 1.1 christos if (value && value_lazy (value) && intentionally_not_fetched)
1423 1.1 christos var->not_fetched = 1;
1424 1.1 christos else
1425 1.1 christos var->not_fetched = 0;
1426 1.1 christos var->updated = 0;
1427 1.1 christos
1428 1.1 christos install_new_value_visualizer (var);
1429 1.1 christos
1430 1.1 christos /* If we installed a pretty-printer, re-compare the printed version
1431 1.1 christos to see if the variable changed. */
1432 1.1 christos if (var->dynamic->pretty_printer != NULL)
1433 1.1 christos {
1434 1.1 christos print_value = varobj_value_get_print_value (var->value, var->format,
1435 1.6.4.1 christos var);
1436 1.6.4.1 christos if ((var->print_value.empty () && !print_value.empty ())
1437 1.6.4.1 christos || (!var->print_value.empty () && print_value.empty ())
1438 1.6.4.1 christos || (!var->print_value.empty () && !print_value.empty ()
1439 1.6.4.1 christos && var->print_value != print_value))
1440 1.1 christos changed = 1;
1441 1.1 christos }
1442 1.1 christos var->print_value = print_value;
1443 1.1 christos
1444 1.1 christos gdb_assert (!var->value || value_type (var->value));
1445 1.1 christos
1446 1.1 christos return changed;
1447 1.1 christos }
1448 1.1 christos
1449 1.1 christos /* Return the requested range for a varobj. VAR is the varobj. FROM
1450 1.1 christos and TO are out parameters; *FROM and *TO will be set to the
1451 1.1 christos selected sub-range of VAR. If no range was selected using
1452 1.1 christos -var-set-update-range, then both will be -1. */
1453 1.5 christos void
1454 1.1 christos varobj_get_child_range (const struct varobj *var, int *from, int *to)
1455 1.1 christos {
1456 1.1 christos *from = var->from;
1457 1.1 christos *to = var->to;
1458 1.1 christos }
1459 1.1 christos
1460 1.1 christos /* Set the selected sub-range of children of VAR to start at index
1461 1.1 christos FROM and end at index TO. If either FROM or TO is less than zero,
1462 1.1 christos this is interpreted as a request for all children. */
1463 1.1 christos void
1464 1.1 christos varobj_set_child_range (struct varobj *var, int from, int to)
1465 1.1 christos {
1466 1.1 christos var->from = from;
1467 1.1 christos var->to = to;
1468 1.1 christos }
1469 1.1 christos
1470 1.1 christos void
1471 1.1 christos varobj_set_visualizer (struct varobj *var, const char *visualizer)
1472 1.1 christos {
1473 1.6.4.1 christos #if HAVE_PYTHON
1474 1.1 christos PyObject *mainmod;
1475 1.1 christos
1476 1.1 christos if (!gdb_python_initialized)
1477 1.1 christos return;
1478 1.6.4.1 christos
1479 1.1 christos gdbpy_enter_varobj enter_py (var);
1480 1.1 christos
1481 1.6.4.1 christos mainmod = PyImport_AddModule ("__main__");
1482 1.6.4.1 christos gdbpy_ref<> globals (PyModule_GetDict (mainmod));
1483 1.1 christos Py_INCREF (globals.get ());
1484 1.6.4.1 christos
1485 1.6.4.1 christos gdbpy_ref<> constructor (PyRun_String (visualizer, Py_eval_input,
1486 1.1 christos globals.get (), globals.get ()));
1487 1.6.4.1 christos
1488 1.1 christos if (constructor == NULL)
1489 1.1 christos {
1490 1.1 christos gdbpy_print_stack ();
1491 1.1 christos error (_("Could not evaluate visualizer expression: %s"), visualizer);
1492 1.1 christos }
1493 1.6.4.1 christos
1494 1.1 christos construct_visualizer (var, constructor.get ());
1495 1.1 christos
1496 1.6 christos /* If there are any children now, wipe them. */
1497 1.1 christos varobj_delete (var, 1 /* children only */);
1498 1.1 christos var->num_children = -1;
1499 1.1 christos #else
1500 1.1 christos error (_("Python support required"));
1501 1.1 christos #endif
1502 1.1 christos }
1503 1.1 christos
1504 1.1 christos /* If NEW_VALUE is the new value of the given varobj (var), return
1505 1.1 christos non-zero if var has mutated. In other words, if the type of
1506 1.1 christos the new value is different from the type of the varobj's old
1507 1.1 christos value.
1508 1.1 christos
1509 1.1 christos NEW_VALUE may be NULL, if the varobj is now out of scope. */
1510 1.1 christos
1511 1.5 christos static int
1512 1.1 christos varobj_value_has_mutated (const struct varobj *var, struct value *new_value,
1513 1.1 christos struct type *new_type)
1514 1.1 christos {
1515 1.1 christos /* If we haven't previously computed the number of children in var,
1516 1.1 christos it does not matter from the front-end's perspective whether
1517 1.1 christos the type has mutated or not. For all intents and purposes,
1518 1.1 christos it has not mutated. */
1519 1.1 christos if (var->num_children < 0)
1520 1.1 christos return 0;
1521 1.1 christos
1522 1.3 christos if (var->root->lang_ops->value_has_mutated)
1523 1.3 christos {
1524 1.3 christos /* The varobj module, when installing new values, explicitly strips
1525 1.3 christos references, saying that we're not interested in those addresses.
1526 1.3 christos But detection of mutation happens before installing the new
1527 1.3 christos value, so our value may be a reference that we need to strip
1528 1.3 christos in order to remain consistent. */
1529 1.3 christos if (new_value != NULL)
1530 1.3 christos new_value = coerce_ref (new_value);
1531 1.3 christos return var->root->lang_ops->value_has_mutated (var, new_value, new_type);
1532 1.1 christos }
1533 1.1 christos else
1534 1.1 christos return 0;
1535 1.1 christos }
1536 1.1 christos
1537 1.1 christos /* Update the values for a variable and its children. This is a
1538 1.1 christos two-pronged attack. First, re-parse the value for the root's
1539 1.1 christos expression to see if it's changed. Then go all the way
1540 1.1 christos through its children, reconstructing them and noting if they've
1541 1.1 christos changed.
1542 1.1 christos
1543 1.1 christos The EXPLICIT parameter specifies if this call is result
1544 1.1 christos of MI request to update this specific variable, or
1545 1.1 christos result of implicit -var-update *. For implicit request, we don't
1546 1.1 christos update frozen variables.
1547 1.1 christos
1548 1.1 christos NOTE: This function may delete the caller's varobj. If it
1549 1.1 christos returns TYPE_CHANGED, then it has done this and VARP will be modified
1550 1.1 christos to point to the new varobj. */
1551 1.1 christos
1552 1.5 christos VEC(varobj_update_result) *
1553 1.1 christos varobj_update (struct varobj **varp, int is_explicit)
1554 1.1 christos {
1555 1.1 christos int type_changed = 0;
1556 1.5 christos int i;
1557 1.1 christos struct value *newobj;
1558 1.1 christos VEC (varobj_update_result) *stack = NULL;
1559 1.1 christos VEC (varobj_update_result) *result = NULL;
1560 1.1 christos
1561 1.1 christos /* Frozen means frozen -- we don't check for any change in
1562 1.1 christos this varobj, including its going out of scope, or
1563 1.1 christos changing type. One use case for frozen varobjs is
1564 1.1 christos retaining previously evaluated expressions, and we don't
1565 1.5 christos want them to be reevaluated at all. */
1566 1.1 christos if (!is_explicit && (*varp)->frozen)
1567 1.1 christos return result;
1568 1.1 christos
1569 1.1 christos if (!(*varp)->root->is_valid)
1570 1.1 christos {
1571 1.1 christos varobj_update_result r = {0};
1572 1.1 christos
1573 1.1 christos r.varobj = *varp;
1574 1.1 christos r.status = VAROBJ_INVALID;
1575 1.1 christos VEC_safe_push (varobj_update_result, result, &r);
1576 1.1 christos return result;
1577 1.1 christos }
1578 1.1 christos
1579 1.1 christos if ((*varp)->root->rootvar == *varp)
1580 1.1 christos {
1581 1.1 christos varobj_update_result r = {0};
1582 1.1 christos
1583 1.1 christos r.varobj = *varp;
1584 1.1 christos r.status = VAROBJ_IN_SCOPE;
1585 1.1 christos
1586 1.1 christos /* Update the root variable. value_of_root can return NULL
1587 1.1 christos if the variable is no longer around, i.e. we stepped out of
1588 1.1 christos the frame in which a local existed. We are letting the
1589 1.1 christos value_of_root variable dispose of the varobj if the type
1590 1.5 christos has changed. */
1591 1.5 christos newobj = value_of_root (varp, &type_changed);
1592 1.1 christos if (update_type_if_necessary(*varp, newobj))
1593 1.1 christos type_changed = 1;
1594 1.1 christos r.varobj = *varp;
1595 1.5 christos r.type_changed = type_changed;
1596 1.1 christos if (install_new_value ((*varp), newobj, type_changed))
1597 1.1 christos r.changed = 1;
1598 1.5 christos
1599 1.1 christos if (newobj == NULL)
1600 1.1 christos r.status = VAROBJ_NOT_IN_SCOPE;
1601 1.1 christos r.value_installed = 1;
1602 1.1 christos
1603 1.1 christos if (r.status == VAROBJ_NOT_IN_SCOPE)
1604 1.1 christos {
1605 1.1 christos if (r.type_changed || r.changed)
1606 1.1 christos VEC_safe_push (varobj_update_result, result, &r);
1607 1.1 christos return result;
1608 1.1 christos }
1609 1.1 christos
1610 1.1 christos VEC_safe_push (varobj_update_result, stack, &r);
1611 1.1 christos }
1612 1.1 christos else
1613 1.1 christos {
1614 1.1 christos varobj_update_result r = {0};
1615 1.1 christos
1616 1.1 christos r.varobj = *varp;
1617 1.1 christos VEC_safe_push (varobj_update_result, stack, &r);
1618 1.1 christos }
1619 1.1 christos
1620 1.1 christos /* Walk through the children, reconstructing them all. */
1621 1.1 christos while (!VEC_empty (varobj_update_result, stack))
1622 1.1 christos {
1623 1.1 christos varobj_update_result r = *(VEC_last (varobj_update_result, stack));
1624 1.1 christos struct varobj *v = r.varobj;
1625 1.1 christos
1626 1.1 christos VEC_pop (varobj_update_result, stack);
1627 1.1 christos
1628 1.1 christos /* Update this variable, unless it's a root, which is already
1629 1.1 christos updated. */
1630 1.1 christos if (!r.value_installed)
1631 1.1 christos {
1632 1.1 christos struct type *new_type;
1633 1.5 christos
1634 1.5 christos newobj = value_of_child (v->parent, v->index);
1635 1.1 christos if (update_type_if_necessary(v, newobj))
1636 1.5 christos r.type_changed = 1;
1637 1.5 christos if (newobj)
1638 1.1 christos new_type = value_type (newobj);
1639 1.1 christos else
1640 1.1 christos new_type = v->root->lang_ops->type_of_child (v->parent, v->index);
1641 1.5 christos
1642 1.1 christos if (varobj_value_has_mutated (v, newobj, new_type))
1643 1.1 christos {
1644 1.1 christos /* The children are no longer valid; delete them now.
1645 1.6 christos Report the fact that its type changed as well. */
1646 1.1 christos varobj_delete (v, 1 /* only_children */);
1647 1.1 christos v->num_children = -1;
1648 1.1 christos v->to = -1;
1649 1.1 christos v->from = -1;
1650 1.1 christos v->type = new_type;
1651 1.1 christos r.type_changed = 1;
1652 1.1 christos }
1653 1.5 christos
1654 1.1 christos if (install_new_value (v, newobj, r.type_changed))
1655 1.1 christos {
1656 1.1 christos r.changed = 1;
1657 1.1 christos v->updated = 0;
1658 1.1 christos }
1659 1.1 christos }
1660 1.3 christos
1661 1.3 christos /* We probably should not get children of a dynamic varobj, but
1662 1.3 christos for which -var-list-children was never invoked. */
1663 1.1 christos if (varobj_is_dynamic_p (v))
1664 1.1 christos {
1665 1.5 christos VEC (varobj_p) *changed = 0, *type_changed = 0, *unchanged = 0;
1666 1.1 christos VEC (varobj_p) *newobj = 0;
1667 1.1 christos int i, children_changed = 0;
1668 1.1 christos
1669 1.1 christos if (v->frozen)
1670 1.1 christos continue;
1671 1.1 christos
1672 1.1 christos if (!v->dynamic->children_requested)
1673 1.1 christos {
1674 1.1 christos int dummy;
1675 1.1 christos
1676 1.1 christos /* If we initially did not have potential children, but
1677 1.1 christos now we do, consider the varobj as changed.
1678 1.1 christos Otherwise, if children were never requested, consider
1679 1.1 christos it as unchanged -- presumably, such varobj is not yet
1680 1.1 christos expanded in the UI, so we need not bother getting
1681 1.1 christos it. */
1682 1.1 christos if (!varobj_has_more (v, 0))
1683 1.1 christos {
1684 1.1 christos update_dynamic_varobj_children (v, NULL, NULL, NULL, NULL,
1685 1.1 christos &dummy, 0, 0, 0);
1686 1.1 christos if (varobj_has_more (v, 0))
1687 1.1 christos r.changed = 1;
1688 1.1 christos }
1689 1.1 christos
1690 1.1 christos if (r.changed)
1691 1.1 christos VEC_safe_push (varobj_update_result, result, &r);
1692 1.1 christos
1693 1.1 christos continue;
1694 1.1 christos }
1695 1.1 christos
1696 1.1 christos /* If update_dynamic_varobj_children returns 0, then we have
1697 1.5 christos a non-conforming pretty-printer, so we skip it. */
1698 1.1 christos if (update_dynamic_varobj_children (v, &changed, &type_changed, &newobj,
1699 1.1 christos &unchanged, &children_changed, 1,
1700 1.1 christos v->from, v->to))
1701 1.5 christos {
1702 1.1 christos if (children_changed || newobj)
1703 1.1 christos {
1704 1.5 christos r.children_changed = 1;
1705 1.1 christos r.newobj = newobj;
1706 1.1 christos }
1707 1.1 christos /* Push in reverse order so that the first child is
1708 1.1 christos popped from the work stack first, and so will be
1709 1.1 christos added to result first. This does not affect
1710 1.1 christos correctness, just "nicer". */
1711 1.1 christos for (i = VEC_length (varobj_p, type_changed) - 1; i >= 0; --i)
1712 1.1 christos {
1713 1.1 christos varobj_p tmp = VEC_index (varobj_p, type_changed, i);
1714 1.1 christos varobj_update_result r = {0};
1715 1.1 christos
1716 1.1 christos /* Type may change only if value was changed. */
1717 1.1 christos r.varobj = tmp;
1718 1.1 christos r.changed = 1;
1719 1.1 christos r.type_changed = 1;
1720 1.1 christos r.value_installed = 1;
1721 1.1 christos VEC_safe_push (varobj_update_result, stack, &r);
1722 1.1 christos }
1723 1.1 christos for (i = VEC_length (varobj_p, changed) - 1; i >= 0; --i)
1724 1.1 christos {
1725 1.1 christos varobj_p tmp = VEC_index (varobj_p, changed, i);
1726 1.1 christos varobj_update_result r = {0};
1727 1.1 christos
1728 1.1 christos r.varobj = tmp;
1729 1.1 christos r.changed = 1;
1730 1.1 christos r.value_installed = 1;
1731 1.1 christos VEC_safe_push (varobj_update_result, stack, &r);
1732 1.1 christos }
1733 1.1 christos for (i = VEC_length (varobj_p, unchanged) - 1; i >= 0; --i)
1734 1.1 christos {
1735 1.1 christos varobj_p tmp = VEC_index (varobj_p, unchanged, i);
1736 1.1 christos
1737 1.1 christos if (!tmp->frozen)
1738 1.1 christos {
1739 1.1 christos varobj_update_result r = {0};
1740 1.1 christos
1741 1.1 christos r.varobj = tmp;
1742 1.1 christos r.value_installed = 1;
1743 1.1 christos VEC_safe_push (varobj_update_result, stack, &r);
1744 1.1 christos }
1745 1.1 christos }
1746 1.1 christos if (r.changed || r.children_changed)
1747 1.1 christos VEC_safe_push (varobj_update_result, result, &r);
1748 1.1 christos
1749 1.1 christos /* Free CHANGED, TYPE_CHANGED and UNCHANGED, but not NEW,
1750 1.1 christos because NEW has been put into the result vector. */
1751 1.1 christos VEC_free (varobj_p, changed);
1752 1.1 christos VEC_free (varobj_p, type_changed);
1753 1.1 christos VEC_free (varobj_p, unchanged);
1754 1.1 christos
1755 1.1 christos continue;
1756 1.1 christos }
1757 1.1 christos }
1758 1.1 christos
1759 1.1 christos /* Push any children. Use reverse order so that the first
1760 1.1 christos child is popped from the work stack first, and so
1761 1.1 christos will be added to result first. This does not
1762 1.1 christos affect correctness, just "nicer". */
1763 1.1 christos for (i = VEC_length (varobj_p, v->children)-1; i >= 0; --i)
1764 1.1 christos {
1765 1.1 christos varobj_p c = VEC_index (varobj_p, v->children, i);
1766 1.1 christos
1767 1.1 christos /* Child may be NULL if explicitly deleted by -var-delete. */
1768 1.1 christos if (c != NULL && !c->frozen)
1769 1.1 christos {
1770 1.1 christos varobj_update_result r = {0};
1771 1.1 christos
1772 1.1 christos r.varobj = c;
1773 1.1 christos VEC_safe_push (varobj_update_result, stack, &r);
1774 1.1 christos }
1775 1.1 christos }
1776 1.1 christos
1777 1.1 christos if (r.changed || r.type_changed)
1778 1.1 christos VEC_safe_push (varobj_update_result, result, &r);
1779 1.1 christos }
1780 1.1 christos
1781 1.1 christos VEC_free (varobj_update_result, stack);
1782 1.1 christos
1783 1.1 christos return result;
1784 1.1 christos }
1785 1.1 christos
1786 1.1 christos
1788 1.1 christos /* Helper functions */
1789 1.1 christos
1790 1.1 christos /*
1791 1.1 christos * Variable object construction/destruction
1792 1.1 christos */
1793 1.6 christos
1794 1.1 christos static int
1795 1.1 christos delete_variable (struct varobj *var, int only_children_p)
1796 1.1 christos {
1797 1.6 christos int delcount = 0;
1798 1.6 christos
1799 1.1 christos delete_variable_1 (&delcount, var, only_children_p,
1800 1.1 christos 1 /* remove_from_parent_p */ );
1801 1.1 christos
1802 1.1 christos return delcount;
1803 1.1 christos }
1804 1.1 christos
1805 1.1 christos /* Delete the variable object VAR and its children. */
1806 1.1 christos /* IMPORTANT NOTE: If we delete a variable which is a child
1807 1.1 christos and the parent is not removed we dump core. It must be always
1808 1.6 christos initially called with remove_from_parent_p set. */
1809 1.1 christos static void
1810 1.1 christos delete_variable_1 (int *delcountp, struct varobj *var, int only_children_p,
1811 1.1 christos int remove_from_parent_p)
1812 1.1 christos {
1813 1.1 christos int i;
1814 1.1 christos
1815 1.1 christos /* Delete any children of this variable, too. */
1816 1.1 christos for (i = 0; i < VEC_length (varobj_p, var->children); ++i)
1817 1.1 christos {
1818 1.1 christos varobj_p child = VEC_index (varobj_p, var->children, i);
1819 1.1 christos
1820 1.1 christos if (!child)
1821 1.1 christos continue;
1822 1.6 christos if (!remove_from_parent_p)
1823 1.1 christos child->parent = NULL;
1824 1.1 christos delete_variable_1 (delcountp, child, 0, only_children_p);
1825 1.1 christos }
1826 1.1 christos VEC_free (varobj_p, var->children);
1827 1.1 christos
1828 1.1 christos /* if we were called to delete only the children we are done here. */
1829 1.1 christos if (only_children_p)
1830 1.1 christos return;
1831 1.6.4.1 christos
1832 1.1 christos /* Otherwise, add it to the list of deleted ones and proceed to do so. */
1833 1.6.4.1 christos /* If the name is empty, this is a temporary variable, that has not
1834 1.1 christos yet been installed, don't report it, it belongs to the caller... */
1835 1.1 christos if (!var->obj_name.empty ())
1836 1.1 christos {
1837 1.1 christos *delcountp = *delcountp + 1;
1838 1.1 christos }
1839 1.1 christos
1840 1.1 christos /* If this variable has a parent, remove it from its parent's list. */
1841 1.1 christos /* OPTIMIZATION: if the parent of this variable is also being deleted,
1842 1.1 christos (as indicated by remove_from_parent_p) we don't bother doing an
1843 1.1 christos expensive list search to find the element to remove when we are
1844 1.1 christos discarding the list afterwards. */
1845 1.1 christos if ((remove_from_parent_p) && (var->parent != NULL))
1846 1.1 christos {
1847 1.1 christos VEC_replace (varobj_p, var->parent->children, var->index, NULL);
1848 1.6.4.1 christos }
1849 1.1 christos
1850 1.1 christos if (!var->obj_name.empty ())
1851 1.1 christos uninstall_variable (var);
1852 1.1 christos
1853 1.1 christos /* Free memory associated with this variable. */
1854 1.1 christos free_variable (var);
1855 1.1 christos }
1856 1.1 christos
1857 1.1 christos /* Install the given variable VAR with the object name VAR->OBJ_NAME. */
1858 1.1 christos static int
1859 1.1 christos install_variable (struct varobj *var)
1860 1.1 christos {
1861 1.1 christos struct vlist *cv;
1862 1.1 christos struct vlist *newvl;
1863 1.1 christos const char *chp;
1864 1.1 christos unsigned int index = 0;
1865 1.6.4.1 christos unsigned int i = 1;
1866 1.1 christos
1867 1.1 christos for (chp = var->obj_name.c_str (); *chp; chp++)
1868 1.1 christos {
1869 1.1 christos index = (index + (i++ * (unsigned int) *chp)) % VAROBJ_TABLE_SIZE;
1870 1.1 christos }
1871 1.6.4.1 christos
1872 1.1 christos cv = *(varobj_table + index);
1873 1.1 christos while (cv != NULL && cv->var->obj_name != var->obj_name)
1874 1.1 christos cv = cv->next;
1875 1.1 christos
1876 1.1 christos if (cv != NULL)
1877 1.1 christos error (_("Duplicate variable object name"));
1878 1.6 christos
1879 1.1 christos /* Add varobj to hash table. */
1880 1.1 christos newvl = XNEW (struct vlist);
1881 1.1 christos newvl->next = *(varobj_table + index);
1882 1.1 christos newvl->var = var;
1883 1.1 christos *(varobj_table + index) = newvl;
1884 1.1 christos
1885 1.1 christos /* If root, add varobj to root list. */
1886 1.1 christos if (is_root_p (var))
1887 1.1 christos {
1888 1.1 christos /* Add to list of root variables. */
1889 1.1 christos if (rootlist == NULL)
1890 1.1 christos var->root->next = NULL;
1891 1.1 christos else
1892 1.1 christos var->root->next = rootlist;
1893 1.1 christos rootlist = var->root;
1894 1.1 christos }
1895 1.1 christos
1896 1.1 christos return 1; /* OK */
1897 1.1 christos }
1898 1.1 christos
1899 1.1 christos /* Unistall the object VAR. */
1900 1.1 christos static void
1901 1.1 christos uninstall_variable (struct varobj *var)
1902 1.1 christos {
1903 1.1 christos struct vlist *cv;
1904 1.1 christos struct vlist *prev;
1905 1.1 christos struct varobj_root *cr;
1906 1.1 christos struct varobj_root *prer;
1907 1.1 christos const char *chp;
1908 1.1 christos unsigned int index = 0;
1909 1.1 christos unsigned int i = 1;
1910 1.6.4.1 christos
1911 1.1 christos /* Remove varobj from hash table. */
1912 1.1 christos for (chp = var->obj_name.c_str (); *chp; chp++)
1913 1.1 christos {
1914 1.1 christos index = (index + (i++ * (unsigned int) *chp)) % VAROBJ_TABLE_SIZE;
1915 1.1 christos }
1916 1.1 christos
1917 1.6.4.1 christos cv = *(varobj_table + index);
1918 1.1 christos prev = NULL;
1919 1.1 christos while (cv != NULL && cv->var->obj_name != var->obj_name)
1920 1.1 christos {
1921 1.1 christos prev = cv;
1922 1.1 christos cv = cv->next;
1923 1.1 christos }
1924 1.6.4.1 christos
1925 1.1 christos if (varobjdebug)
1926 1.1 christos fprintf_unfiltered (gdb_stdlog, "Deleting %s\n", var->obj_name.c_str ());
1927 1.1 christos
1928 1.1 christos if (cv == NULL)
1929 1.1 christos {
1930 1.6.4.1 christos warning
1931 1.1 christos ("Assertion failed: Could not find variable object \"%s\" to delete",
1932 1.1 christos var->obj_name.c_str ());
1933 1.1 christos return;
1934 1.1 christos }
1935 1.1 christos
1936 1.1 christos if (prev == NULL)
1937 1.1 christos *(varobj_table + index) = cv->next;
1938 1.1 christos else
1939 1.1 christos prev->next = cv->next;
1940 1.1 christos
1941 1.1 christos xfree (cv);
1942 1.1 christos
1943 1.1 christos /* If root, remove varobj from root list. */
1944 1.1 christos if (is_root_p (var))
1945 1.1 christos {
1946 1.1 christos /* Remove from list of root variables. */
1947 1.1 christos if (rootlist == var->root)
1948 1.1 christos rootlist = var->root->next;
1949 1.1 christos else
1950 1.1 christos {
1951 1.1 christos prer = NULL;
1952 1.1 christos cr = rootlist;
1953 1.1 christos while ((cr != NULL) && (cr->rootvar != var))
1954 1.1 christos {
1955 1.1 christos prer = cr;
1956 1.1 christos cr = cr->next;
1957 1.1 christos }
1958 1.1 christos if (cr == NULL)
1959 1.1 christos {
1960 1.6.4.1 christos warning (_("Assertion failed: Could not find "
1961 1.1 christos "varobj \"%s\" in root list"),
1962 1.1 christos var->obj_name.c_str ());
1963 1.1 christos return;
1964 1.1 christos }
1965 1.1 christos if (prer == NULL)
1966 1.1 christos rootlist = NULL;
1967 1.1 christos else
1968 1.1 christos prer->next = cr->next;
1969 1.1 christos }
1970 1.1 christos }
1971 1.1 christos
1972 1.5 christos }
1973 1.5 christos
1974 1.5 christos /* Create and install a child of the parent of the given name.
1975 1.5 christos
1976 1.1 christos The created VAROBJ takes ownership of the allocated NAME. */
1977 1.6.4.1 christos
1978 1.1 christos static struct varobj *
1979 1.3 christos create_child (struct varobj *parent, int index, std::string &name)
1980 1.3 christos {
1981 1.6.4.1 christos struct varobj_item item;
1982 1.3 christos
1983 1.3 christos std::swap (item.name, name);
1984 1.3 christos item.value = value_of_child (parent, index);
1985 1.1 christos
1986 1.1 christos return create_child_with_value (parent, index, &item);
1987 1.1 christos }
1988 1.3 christos
1989 1.3 christos static struct varobj *
1990 1.1 christos create_child_with_value (struct varobj *parent, int index,
1991 1.1 christos struct varobj_item *item)
1992 1.1 christos {
1993 1.1 christos struct varobj *child;
1994 1.1 christos
1995 1.1 christos child = new_variable ();
1996 1.6.4.1 christos
1997 1.1 christos /* NAME is allocated by caller. */
1998 1.1 christos std::swap (child->name, item->name);
1999 1.1 christos child->index = index;
2000 1.1 christos child->parent = parent;
2001 1.1 christos child->root = parent->root;
2002 1.6.4.1 christos
2003 1.6.4.1 christos if (varobj_is_anonymous_child (child))
2004 1.1 christos child->obj_name = string_printf ("%s.%d_anonymous",
2005 1.6.4.1 christos parent->obj_name.c_str (), index);
2006 1.6.4.1 christos else
2007 1.6.4.1 christos child->obj_name = string_printf ("%s.%s",
2008 1.1 christos parent->obj_name.c_str (),
2009 1.1 christos child->name.c_str ());
2010 1.1 christos
2011 1.1 christos install_variable (child);
2012 1.1 christos
2013 1.3 christos /* Compute the type of the child. Must do this before
2014 1.1 christos calling install_new_value. */
2015 1.1 christos if (item->value != NULL)
2016 1.3 christos /* If the child had no evaluation errors, var->value
2017 1.1 christos will be non-NULL and contain a valid type. */
2018 1.1 christos child->type = value_actual_type (item->value, 0, NULL);
2019 1.1 christos else
2020 1.1 christos /* Otherwise, we must compute the type. */
2021 1.3 christos child->type = (*child->root->lang_ops->type_of_child) (child->parent,
2022 1.1 christos child->index);
2023 1.1 christos install_new_value (child, item->value, 1);
2024 1.1 christos
2025 1.1 christos return child;
2026 1.1 christos }
2027 1.1 christos
2028 1.1 christos
2030 1.1 christos /*
2031 1.1 christos * Miscellaneous utility functions.
2032 1.1 christos */
2033 1.1 christos
2034 1.1 christos /* Allocate memory and initialize a new variable. */
2035 1.1 christos static struct varobj *
2036 1.1 christos new_variable (void)
2037 1.6.4.1 christos {
2038 1.1 christos struct varobj *var;
2039 1.1 christos
2040 1.1 christos var = new varobj ();
2041 1.1 christos var->index = -1;
2042 1.1 christos var->type = NULL;
2043 1.1 christos var->value = NULL;
2044 1.6 christos var->num_children = -1;
2045 1.1 christos var->parent = NULL;
2046 1.1 christos var->children = NULL;
2047 1.1 christos var->format = FORMAT_NATURAL;
2048 1.1 christos var->root = NULL;
2049 1.6 christos var->updated = 0;
2050 1.1 christos var->frozen = 0;
2051 1.1 christos var->not_fetched = 0;
2052 1.1 christos var->dynamic = XNEW (struct varobj_dynamic);
2053 1.1 christos var->dynamic->children_requested = 0;
2054 1.1 christos var->from = -1;
2055 1.1 christos var->to = -1;
2056 1.1 christos var->dynamic->constructor = 0;
2057 1.1 christos var->dynamic->pretty_printer = 0;
2058 1.1 christos var->dynamic->child_iter = 0;
2059 1.1 christos var->dynamic->saved_item = 0;
2060 1.1 christos
2061 1.1 christos return var;
2062 1.1 christos }
2063 1.1 christos
2064 1.1 christos /* Allocate memory and initialize a new root variable. */
2065 1.1 christos static struct varobj *
2066 1.1 christos new_root_variable (void)
2067 1.6.4.1 christos {
2068 1.1 christos struct varobj *var = new_variable ();
2069 1.1 christos
2070 1.1 christos var->root = new varobj_root ();
2071 1.1 christos var->root->lang_ops = NULL;
2072 1.1 christos var->root->exp = NULL;
2073 1.1 christos var->root->valid_block = NULL;
2074 1.1 christos var->root->frame = null_frame_id;
2075 1.1 christos var->root->floating = 0;
2076 1.1 christos var->root->rootvar = NULL;
2077 1.1 christos var->root->is_valid = 1;
2078 1.1 christos
2079 1.1 christos return var;
2080 1.1 christos }
2081 1.1 christos
2082 1.1 christos /* Free any allocated memory associated with VAR. */
2083 1.1 christos static void
2084 1.1 christos free_variable (struct varobj *var)
2085 1.1 christos {
2086 1.6.4.1 christos #if HAVE_PYTHON
2087 1.1 christos if (var->dynamic->pretty_printer != NULL)
2088 1.1 christos {
2089 1.1 christos gdbpy_enter_varobj enter_py (var);
2090 1.1 christos
2091 1.1 christos Py_XDECREF (var->dynamic->constructor);
2092 1.1 christos Py_XDECREF (var->dynamic->pretty_printer);
2093 1.3 christos }
2094 1.3 christos #endif
2095 1.1 christos
2096 1.1 christos varobj_iter_delete (var->dynamic->child_iter);
2097 1.1 christos varobj_clear_saved_item (var->dynamic);
2098 1.6.4.1 christos value_free (var->value);
2099 1.1 christos
2100 1.1 christos if (is_root_p (var))
2101 1.6.4.1 christos delete var->root;
2102 1.1 christos
2103 1.1 christos xfree (var->dynamic);
2104 1.1 christos delete var;
2105 1.1 christos }
2106 1.1 christos
2107 1.6 christos static void
2108 1.1 christos do_free_variable_cleanup (void *var)
2109 1.1 christos {
2110 1.1 christos free_variable ((struct varobj *) var);
2111 1.1 christos }
2112 1.1 christos
2113 1.1 christos static struct cleanup *
2114 1.1 christos make_cleanup_free_variable (struct varobj *var)
2115 1.1 christos {
2116 1.1 christos return make_cleanup (do_free_variable_cleanup, var);
2117 1.1 christos }
2118 1.1 christos
2119 1.1 christos /* Return the type of the value that's stored in VAR,
2120 1.1 christos or that would have being stored there if the
2121 1.1 christos value were accessible.
2122 1.1 christos
2123 1.1 christos This differs from VAR->type in that VAR->type is always
2124 1.1 christos the true type of the expession in the source language.
2125 1.1 christos The return value of this function is the type we're
2126 1.1 christos actually storing in varobj, and using for displaying
2127 1.1 christos the values and for comparing previous and new values.
2128 1.5 christos
2129 1.1 christos For example, top-level references are always stripped. */
2130 1.1 christos struct type *
2131 1.1 christos varobj_get_value_type (const struct varobj *var)
2132 1.1 christos {
2133 1.1 christos struct type *type;
2134 1.1 christos
2135 1.1 christos if (var->value)
2136 1.1 christos type = value_type (var->value);
2137 1.1 christos else
2138 1.1 christos type = var->type;
2139 1.6.4.1 christos
2140 1.1 christos type = check_typedef (type);
2141 1.1 christos
2142 1.1 christos if (TYPE_IS_REFERENCE (type))
2143 1.1 christos type = get_target_type (type);
2144 1.1 christos
2145 1.1 christos type = check_typedef (type);
2146 1.1 christos
2147 1.1 christos return type;
2148 1.1 christos }
2149 1.1 christos
2150 1.1 christos /* What is the default display for this variable? We assume that
2151 1.1 christos everything is "natural". Any exceptions? */
2152 1.1 christos static enum varobj_display_formats
2153 1.1 christos variable_default_display (struct varobj *var)
2154 1.1 christos {
2155 1.1 christos return FORMAT_NATURAL;
2156 1.1 christos }
2157 1.1 christos
2158 1.1 christos /*
2159 1.1 christos * Language-dependencies
2160 1.1 christos */
2161 1.1 christos
2162 1.1 christos /* Common entry points */
2163 1.1 christos
2164 1.1 christos /* Return the number of children for a given variable.
2165 1.1 christos The result of this function is defined by the language
2166 1.1 christos implementation. The number of children returned by this function
2167 1.5 christos is the number of children that the user will see in the variable
2168 1.1 christos display. */
2169 1.1 christos static int
2170 1.1 christos number_of_children (const struct varobj *var)
2171 1.1 christos {
2172 1.6.4.1 christos return (*var->root->lang_ops->number_of_children) (var);
2173 1.6.4.1 christos }
2174 1.6.4.1 christos
2175 1.5 christos /* What is the expression for the root varobj VAR? */
2176 1.1 christos
2177 1.1 christos static std::string
2178 1.1 christos name_of_variable (const struct varobj *var)
2179 1.1 christos {
2180 1.6.4.1 christos return (*var->root->lang_ops->name_of_variable) (var);
2181 1.6.4.1 christos }
2182 1.6.4.1 christos
2183 1.1 christos /* What is the name of the INDEX'th child of VAR? */
2184 1.1 christos
2185 1.1 christos static std::string
2186 1.1 christos name_of_child (struct varobj *var, int index)
2187 1.1 christos {
2188 1.1 christos return (*var->root->lang_ops->name_of_child) (var, index);
2189 1.1 christos }
2190 1.1 christos
2191 1.1 christos /* If frame associated with VAR can be found, switch
2192 1.5 christos to it and return 1. Otherwise, return 0. */
2193 1.1 christos
2194 1.1 christos static int
2195 1.1 christos check_scope (const struct varobj *var)
2196 1.1 christos {
2197 1.1 christos struct frame_info *fi;
2198 1.1 christos int scope;
2199 1.1 christos
2200 1.1 christos fi = frame_find_by_id (var->root->frame);
2201 1.1 christos scope = fi != NULL;
2202 1.1 christos
2203 1.1 christos if (fi)
2204 1.1 christos {
2205 1.1 christos CORE_ADDR pc = get_frame_pc (fi);
2206 1.1 christos
2207 1.1 christos if (pc < BLOCK_START (var->root->valid_block) ||
2208 1.1 christos pc >= BLOCK_END (var->root->valid_block))
2209 1.1 christos scope = 0;
2210 1.1 christos else
2211 1.1 christos select_frame (fi);
2212 1.1 christos }
2213 1.1 christos return scope;
2214 1.1 christos }
2215 1.1 christos
2216 1.1 christos /* Helper function to value_of_root. */
2217 1.1 christos
2218 1.1 christos static struct value *
2219 1.1 christos value_of_root_1 (struct varobj **var_handle)
2220 1.1 christos {
2221 1.1 christos struct value *new_val = NULL;
2222 1.1 christos struct varobj *var = *var_handle;
2223 1.1 christos int within_scope = 0;
2224 1.1 christos struct cleanup *back_to;
2225 1.1 christos
2226 1.1 christos /* Only root variables can be updated... */
2227 1.1 christos if (!is_root_p (var))
2228 1.1 christos /* Not a root var. */
2229 1.1 christos return NULL;
2230 1.1 christos
2231 1.1 christos back_to = make_cleanup_restore_current_thread ();
2232 1.1 christos
2233 1.1 christos /* Determine whether the variable is still around. */
2234 1.1 christos if (var->root->valid_block == NULL || var->root->floating)
2235 1.1 christos within_scope = 1;
2236 1.1 christos else if (var->root->thread_id == 0)
2237 1.1 christos {
2238 1.1 christos /* The program was single-threaded when the variable object was
2239 1.1 christos created. Technically, it's possible that the program became
2240 1.1 christos multi-threaded since then, but we don't support such
2241 1.1 christos scenario yet. */
2242 1.1 christos within_scope = check_scope (var);
2243 1.6 christos }
2244 1.6 christos else
2245 1.6 christos {
2246 1.1 christos ptid_t ptid = global_thread_id_to_ptid (var->root->thread_id);
2247 1.1 christos
2248 1.1 christos if (!ptid_equal (minus_one_ptid, ptid))
2249 1.1 christos {
2250 1.1 christos switch_to_thread (ptid);
2251 1.1 christos within_scope = check_scope (var);
2252 1.1 christos }
2253 1.1 christos }
2254 1.1 christos
2255 1.1 christos if (within_scope)
2256 1.1 christos {
2257 1.5 christos
2258 1.1 christos /* We need to catch errors here, because if evaluate
2259 1.6.4.1 christos expression fails we want to just return NULL. */
2260 1.1 christos TRY
2261 1.5 christos {
2262 1.5 christos new_val = evaluate_expression (var->root->exp.get ());
2263 1.5 christos }
2264 1.5 christos CATCH (except, RETURN_MASK_ERROR)
2265 1.1 christos {
2266 1.1 christos }
2267 1.1 christos END_CATCH
2268 1.1 christos }
2269 1.1 christos
2270 1.1 christos do_cleanups (back_to);
2271 1.1 christos
2272 1.1 christos return new_val;
2273 1.1 christos }
2274 1.1 christos
2275 1.1 christos /* What is the ``struct value *'' of the root variable VAR?
2276 1.1 christos For floating variable object, evaluation can get us a value
2277 1.1 christos of different type from what is stored in varobj already. In
2278 1.1 christos that case:
2279 1.1 christos - *type_changed will be set to 1
2280 1.1 christos - old varobj will be freed, and new one will be
2281 1.1 christos created, with the same name.
2282 1.1 christos - *var_handle will be set to the new varobj
2283 1.1 christos Otherwise, *type_changed will be set to 0. */
2284 1.1 christos static struct value *
2285 1.1 christos value_of_root (struct varobj **var_handle, int *type_changed)
2286 1.1 christos {
2287 1.1 christos struct varobj *var;
2288 1.1 christos
2289 1.1 christos if (var_handle == NULL)
2290 1.1 christos return NULL;
2291 1.1 christos
2292 1.1 christos var = *var_handle;
2293 1.1 christos
2294 1.1 christos /* This should really be an exception, since this should
2295 1.1 christos only get called with a root variable. */
2296 1.1 christos
2297 1.1 christos if (!is_root_p (var))
2298 1.1 christos return NULL;
2299 1.1 christos
2300 1.1 christos if (var->root->floating)
2301 1.6.4.1 christos {
2302 1.1 christos struct varobj *tmp_var;
2303 1.1 christos
2304 1.1 christos tmp_var = varobj_create (NULL, var->name.c_str (), (CORE_ADDR) 0,
2305 1.1 christos USE_SELECTED_FRAME);
2306 1.1 christos if (tmp_var == NULL)
2307 1.6.4.1 christos {
2308 1.6.4.1 christos return NULL;
2309 1.6.4.1 christos }
2310 1.1 christos std::string old_type = varobj_get_type (var);
2311 1.1 christos std::string new_type = varobj_get_type (tmp_var);
2312 1.1 christos if (old_type == new_type)
2313 1.1 christos {
2314 1.1 christos /* The expression presently stored inside var->root->exp
2315 1.1 christos remembers the locations of local variables relatively to
2316 1.1 christos the frame where the expression was created (in DWARF location
2317 1.6.4.1 christos button, for example). Naturally, those locations are not
2318 1.1 christos correct in other frames, so update the expression. */
2319 1.6 christos
2320 1.1 christos std::swap (var->root->exp, tmp_var->root->exp);
2321 1.1 christos
2322 1.1 christos varobj_delete (tmp_var, 0);
2323 1.1 christos *type_changed = 0;
2324 1.6.4.1 christos }
2325 1.1 christos else
2326 1.1 christos {
2327 1.6 christos tmp_var->obj_name = var->obj_name;
2328 1.1 christos tmp_var->from = var->from;
2329 1.1 christos tmp_var->to = var->to;
2330 1.1 christos varobj_delete (var, 0);
2331 1.1 christos
2332 1.1 christos install_variable (tmp_var);
2333 1.1 christos *var_handle = tmp_var;
2334 1.1 christos var = *var_handle;
2335 1.1 christos *type_changed = 1;
2336 1.1 christos }
2337 1.1 christos }
2338 1.1 christos else
2339 1.1 christos {
2340 1.1 christos *type_changed = 0;
2341 1.1 christos }
2342 1.1 christos
2343 1.1 christos {
2344 1.1 christos struct value *value;
2345 1.1 christos
2346 1.1 christos value = value_of_root_1 (var_handle);
2347 1.1 christos if (var->value == NULL || value == NULL)
2348 1.1 christos {
2349 1.1 christos /* For root varobj-s, a NULL value indicates a scoping issue.
2350 1.1 christos So, nothing to do in terms of checking for mutations. */
2351 1.1 christos }
2352 1.1 christos else if (varobj_value_has_mutated (var, value, value_type (value)))
2353 1.1 christos {
2354 1.6 christos /* The type has mutated, so the children are no longer valid.
2355 1.1 christos Just delete them, and tell our caller that the type has
2356 1.1 christos changed. */
2357 1.1 christos varobj_delete (var, 1 /* only_children */);
2358 1.1 christos var->num_children = -1;
2359 1.1 christos var->to = -1;
2360 1.1 christos var->from = -1;
2361 1.1 christos *type_changed = 1;
2362 1.1 christos }
2363 1.1 christos return value;
2364 1.1 christos }
2365 1.1 christos }
2366 1.5 christos
2367 1.1 christos /* What is the ``struct value *'' for the INDEX'th child of PARENT? */
2368 1.1 christos static struct value *
2369 1.1 christos value_of_child (const struct varobj *parent, int index)
2370 1.1 christos {
2371 1.1 christos struct value *value;
2372 1.1 christos
2373 1.1 christos value = (*parent->root->lang_ops->value_of_child) (parent, index);
2374 1.1 christos
2375 1.1 christos return value;
2376 1.6.4.1 christos }
2377 1.1 christos
2378 1.1 christos /* GDB already has a command called "value_of_variable". Sigh. */
2379 1.1 christos static std::string
2380 1.1 christos my_value_of_variable (struct varobj *var, enum varobj_display_formats format)
2381 1.1 christos {
2382 1.1 christos if (var->root->is_valid)
2383 1.1 christos {
2384 1.1 christos if (var->dynamic->pretty_printer != NULL)
2385 1.1 christos return varobj_value_get_print_value (var->value, var->format, var);
2386 1.6.4.1 christos return (*var->root->lang_ops->value_of_variable) (var, format);
2387 1.1 christos }
2388 1.1 christos else
2389 1.1 christos return std::string ();
2390 1.1 christos }
2391 1.1 christos
2392 1.1 christos void
2393 1.1 christos varobj_formatted_print_options (struct value_print_options *opts,
2394 1.1 christos enum varobj_display_formats format)
2395 1.1 christos {
2396 1.1 christos get_formatted_print_options (opts, format_code[(int) format]);
2397 1.1 christos opts->deref_ref = 0;
2398 1.6.4.1 christos opts->raw = 1;
2399 1.1 christos }
2400 1.1 christos
2401 1.5 christos std::string
2402 1.1 christos varobj_value_get_print_value (struct value *value,
2403 1.1 christos enum varobj_display_formats format,
2404 1.1 christos const struct varobj *var)
2405 1.1 christos {
2406 1.6.4.1 christos struct value_print_options opts;
2407 1.1 christos struct type *type = NULL;
2408 1.1 christos long len = 0;
2409 1.1 christos gdb::unique_xmalloc_ptr<char> encoding;
2410 1.1 christos /* Initialize it just to avoid a GCC false warning. */
2411 1.1 christos CORE_ADDR str_addr = 0;
2412 1.6.4.1 christos int string_print = 0;
2413 1.1 christos
2414 1.6.4.1 christos if (value == NULL)
2415 1.6.4.1 christos return std::string ();
2416 1.1 christos
2417 1.1 christos string_file stb;
2418 1.1 christos std::string thevalue;
2419 1.1 christos
2420 1.1 christos #if HAVE_PYTHON
2421 1.1 christos if (gdb_python_initialized)
2422 1.6.4.1 christos {
2423 1.1 christos PyObject *value_formatter = var->dynamic->pretty_printer;
2424 1.1 christos
2425 1.1 christos gdbpy_enter_varobj enter_py (var);
2426 1.1 christos
2427 1.1 christos if (value_formatter)
2428 1.1 christos {
2429 1.6.4.1 christos /* First check to see if we have any children at all. If so,
2430 1.1 christos we simply return {...}. */
2431 1.1 christos if (dynamic_varobj_has_child_method (var))
2432 1.1 christos return "{...}";
2433 1.1 christos
2434 1.1 christos if (PyObject_HasAttr (value_formatter, gdbpy_to_string_cst))
2435 1.6.4.1 christos {
2436 1.6.4.1 christos struct value *replacement;
2437 1.6.4.1 christos
2438 1.1 christos gdbpy_ref<> output (apply_varobj_pretty_printer (value_formatter,
2439 1.1 christos &replacement,
2440 1.6.4.1 christos &stb));
2441 1.1 christos
2442 1.1 christos /* If we have string like output ... */
2443 1.1 christos if (output != NULL)
2444 1.1 christos {
2445 1.6.4.1 christos /* If this is a lazy string, extract it. For lazy
2446 1.1 christos strings we always print as a string, so set
2447 1.6.4.1 christos string_print. */
2448 1.6.4.1 christos if (gdbpy_is_lazy_string (output.get ()))
2449 1.1 christos {
2450 1.1 christos gdbpy_extract_lazy_string (output.get (), &str_addr,
2451 1.1 christos &type, &len, &encoding);
2452 1.1 christos string_print = 1;
2453 1.1 christos }
2454 1.1 christos else
2455 1.1 christos {
2456 1.1 christos /* If it is a regular (non-lazy) string, extract
2457 1.1 christos it and copy the contents into THEVALUE. If the
2458 1.1 christos hint says to print it as a string, set
2459 1.6.4.1 christos string_print. Otherwise just return the extracted
2460 1.6.4.1 christos string as a value. */
2461 1.1 christos
2462 1.1 christos gdb::unique_xmalloc_ptr<char> s
2463 1.1 christos = python_string_to_target_string (output.get ());
2464 1.6 christos
2465 1.1 christos if (s)
2466 1.6.4.1 christos {
2467 1.6.4.1 christos struct gdbarch *gdbarch;
2468 1.1 christos
2469 1.1 christos gdb::unique_xmalloc_ptr<char> hint
2470 1.6.4.1 christos = gdbpy_get_display_hint (value_formatter);
2471 1.1 christos if (hint)
2472 1.1 christos {
2473 1.1 christos if (!strcmp (hint.get (), "string"))
2474 1.6.4.1 christos string_print = 1;
2475 1.6.4.1 christos }
2476 1.6 christos
2477 1.1 christos thevalue = std::string (s.get ());
2478 1.1 christos len = thevalue.size ();
2479 1.1 christos gdbarch = get_type_arch (value_type (value));
2480 1.6.4.1 christos type = builtin_type (gdbarch)->builtin_char;
2481 1.1 christos
2482 1.1 christos if (!string_print)
2483 1.1 christos return thevalue;
2484 1.1 christos }
2485 1.1 christos else
2486 1.1 christos gdbpy_print_stack ();
2487 1.1 christos }
2488 1.1 christos }
2489 1.1 christos /* If the printer returned a replacement value, set VALUE
2490 1.1 christos to REPLACEMENT. If there is not a replacement value,
2491 1.1 christos just use the value passed to this function. */
2492 1.1 christos if (replacement)
2493 1.1 christos value = replacement;
2494 1.1 christos }
2495 1.1 christos }
2496 1.1 christos }
2497 1.1 christos #endif
2498 1.1 christos
2499 1.6.4.1 christos varobj_formatted_print_options (&opts, format);
2500 1.6.4.1 christos
2501 1.6.4.1 christos /* If the THEVALUE has contents, it is a regular string. */
2502 1.1 christos if (!thevalue.empty ())
2503 1.1 christos LA_PRINT_STRING (&stb, type, (gdb_byte *) thevalue.c_str (),
2504 1.1 christos len, encoding.get (), 0, &opts);
2505 1.6.4.1 christos else if (string_print)
2506 1.1 christos /* Otherwise, if string_print is set, and it is not a regular
2507 1.1 christos string, it is a lazy string. */
2508 1.6.4.1 christos val_print_string (type, encoding.get (), str_addr, len, &stb, &opts);
2509 1.1 christos else
2510 1.6.4.1 christos /* All other cases. */
2511 1.1 christos common_val_print (value, &stb, 0, &opts, current_language);
2512 1.1 christos
2513 1.1 christos return std::move (stb.string ());
2514 1.5 christos }
2515 1.1 christos
2516 1.1 christos int
2517 1.1 christos varobj_editable_p (const struct varobj *var)
2518 1.1 christos {
2519 1.1 christos struct type *type;
2520 1.1 christos
2521 1.1 christos if (!(var->root->is_valid && var->value && VALUE_LVAL (var->value)))
2522 1.1 christos return 0;
2523 1.1 christos
2524 1.1 christos type = varobj_get_value_type (var);
2525 1.1 christos
2526 1.1 christos switch (TYPE_CODE (type))
2527 1.1 christos {
2528 1.1 christos case TYPE_CODE_STRUCT:
2529 1.1 christos case TYPE_CODE_UNION:
2530 1.1 christos case TYPE_CODE_ARRAY:
2531 1.1 christos case TYPE_CODE_FUNC:
2532 1.1 christos case TYPE_CODE_METHOD:
2533 1.1 christos return 0;
2534 1.1 christos break;
2535 1.1 christos
2536 1.1 christos default:
2537 1.1 christos return 1;
2538 1.1 christos break;
2539 1.1 christos }
2540 1.1 christos }
2541 1.1 christos
2542 1.5 christos /* Call VAR's value_is_changeable_p language-specific callback. */
2543 1.1 christos
2544 1.1 christos int
2545 1.1 christos varobj_value_is_changeable_p (const struct varobj *var)
2546 1.1 christos {
2547 1.1 christos return var->root->lang_ops->value_is_changeable_p (var);
2548 1.1 christos }
2549 1.1 christos
2550 1.1 christos /* Return 1 if that varobj is floating, that is is always evaluated in the
2551 1.5 christos selected frame, and not bound to thread/frame. Such variable objects
2552 1.1 christos are created using '@' as frame specifier to -var-create. */
2553 1.1 christos int
2554 1.1 christos varobj_floating_p (const struct varobj *var)
2555 1.1 christos {
2556 1.1 christos return var->root->floating;
2557 1.1 christos }
2558 1.1 christos
2559 1.1 christos /* Implement the "value_is_changeable_p" varobj callback for most
2560 1.5 christos languages. */
2561 1.1 christos
2562 1.1 christos int
2563 1.1 christos varobj_default_value_is_changeable_p (const struct varobj *var)
2564 1.1 christos {
2565 1.1 christos int r;
2566 1.1 christos struct type *type;
2567 1.1 christos
2568 1.1 christos if (CPLUS_FAKE_CHILD (var))
2569 1.1 christos return 0;
2570 1.1 christos
2571 1.1 christos type = varobj_get_value_type (var);
2572 1.1 christos
2573 1.1 christos switch (TYPE_CODE (type))
2574 1.1 christos {
2575 1.1 christos case TYPE_CODE_STRUCT:
2576 1.1 christos case TYPE_CODE_UNION:
2577 1.1 christos case TYPE_CODE_ARRAY:
2578 1.1 christos r = 0;
2579 1.1 christos break;
2580 1.1 christos
2581 1.1 christos default:
2582 1.1 christos r = 1;
2583 1.1 christos }
2584 1.1 christos
2585 1.1 christos return r;
2586 1.1 christos }
2587 1.1 christos
2588 1.1 christos /* Iterate all the existing _root_ VAROBJs and call the FUNC callback for them
2589 1.1 christos with an arbitrary caller supplied DATA pointer. */
2590 1.1 christos
2591 1.1 christos void
2592 1.1 christos all_root_varobjs (void (*func) (struct varobj *var, void *data), void *data)
2593 1.1 christos {
2594 1.1 christos struct varobj_root *var_root, *var_root_next;
2595 1.1 christos
2596 1.1 christos /* Iterate "safely" - handle if the callee deletes its passed VAROBJ. */
2597 1.1 christos
2598 1.1 christos for (var_root = rootlist; var_root != NULL; var_root = var_root_next)
2599 1.1 christos {
2600 1.1 christos var_root_next = var_root->next;
2601 1.1 christos
2602 1.1 christos (*func) (var_root->rootvar, data);
2603 1.1 christos }
2604 1.1 christos }
2605 1.1 christos
2606 1.1 christos /* Invalidate varobj VAR if it is tied to locals and re-create it if it is
2607 1.1 christos defined on globals. It is a helper for varobj_invalidate.
2608 1.1 christos
2609 1.1 christos This function is called after changing the symbol file, in this case the
2610 1.1 christos pointers to "struct type" stored by the varobj are no longer valid. All
2611 1.1 christos varobj must be either re-evaluated, or marked as invalid here. */
2612 1.1 christos
2613 1.1 christos static void
2614 1.1 christos varobj_invalidate_iter (struct varobj *var, void *unused)
2615 1.1 christos {
2616 1.1 christos /* global and floating var must be re-evaluated. */
2617 1.1 christos if (var->root->floating || var->root->valid_block == NULL)
2618 1.1 christos {
2619 1.1 christos struct varobj *tmp_var;
2620 1.6.4.1 christos
2621 1.1 christos /* Try to create a varobj with same expression. If we succeed
2622 1.1 christos replace the old varobj, otherwise invalidate it. */
2623 1.1 christos tmp_var = varobj_create (NULL, var->name.c_str (), (CORE_ADDR) 0,
2624 1.6.4.1 christos USE_CURRENT_FRAME);
2625 1.6 christos if (tmp_var != NULL)
2626 1.1 christos {
2627 1.1 christos tmp_var->obj_name = var->obj_name;
2628 1.1 christos varobj_delete (var, 0);
2629 1.1 christos install_variable (tmp_var);
2630 1.1 christos }
2631 1.1 christos else
2632 1.1 christos var->root->is_valid = 0;
2633 1.1 christos }
2634 1.1 christos else /* locals must be invalidated. */
2635 1.1 christos var->root->is_valid = 0;
2636 1.1 christos }
2637 1.1 christos
2638 1.1 christos /* Invalidate the varobjs that are tied to locals and re-create the ones that
2639 1.1 christos are defined on globals.
2640 1.1 christos Invalidated varobjs will be always printed in_scope="invalid". */
2641 1.1 christos
2642 1.1 christos void
2643 1.1 christos varobj_invalidate (void)
2644 1.3 christos {
2645 1.3 christos all_root_varobjs (varobj_invalidate_iter, NULL);
2646 1.3 christos }
2647 1.3 christos
2648 1.3 christos extern void _initialize_varobj (void);
2650 1.3 christos void
2651 1.3 christos _initialize_varobj (void)
2652 1.3 christos {
2653 1.3 christos varobj_table = XCNEWVEC (struct vlist *, VAROBJ_TABLE_SIZE);
2654 1.3 christos
2655 1.3 christos add_setshow_zuinteger_cmd ("varobj", class_maintenance,
2656 1.3 christos &varobjdebug,
2657 1.3 christos _("Set varobj debugging."),
2658 1.3 christos _("Show varobj debugging."),
2659 _("When non-zero, varobj debugging is enabled."),
2660 NULL, show_varobjdebug,
2661 &setdebuglist, &showdebuglist);
2662 }
2663