prop_dictionary.c revision 1.16 1 /* $NetBSD: prop_dictionary.c,v 1.16 2006/10/26 05:02:12 thorpej Exp $ */
2
3 /*-
4 * Copyright (c) 2006 The NetBSD Foundation, Inc.
5 * All rights reserved.
6 *
7 * This code is derived from software contributed to The NetBSD Foundation
8 * by Jason R. Thorpe.
9 *
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
12 * are met:
13 * 1. Redistributions of source code must retain the above copyright
14 * notice, this list of conditions and the following disclaimer.
15 * 2. Redistributions in binary form must reproduce the above copyright
16 * notice, this list of conditions and the following disclaimer in the
17 * documentation and/or other materials provided with the distribution.
18 * 3. All advertising materials mentioning features or use of this software
19 * must display the following acknowledgement:
20 * This product includes software developed by the NetBSD
21 * Foundation, Inc. and its contributors.
22 * 4. Neither the name of The NetBSD Foundation nor the names of its
23 * contributors may be used to endorse or promote products derived
24 * from this software without specific prior written permission.
25 *
26 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
27 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
28 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
29 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
30 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
31 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
32 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
33 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
34 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
35 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
36 * POSSIBILITY OF SUCH DAMAGE.
37 */
38
39 #include <prop/prop_array.h>
40 #include <prop/prop_dictionary.h>
41 #include <prop/prop_string.h>
42 #include "prop_object_impl.h"
43 #include "prop_rb_impl.h"
44
45 #if !defined(_KERNEL) && !defined(_STANDALONE)
46 #include <errno.h>
47 #endif
48
49 /*
50 * We implement these like arrays, but we keep them sorted by key.
51 * This allows us to binary-search as well as keep externalized output
52 * sane-looking for human eyes.
53 */
54
55 #define EXPAND_STEP 16
56
57 /*
58 * prop_dictionary_keysym_t is allocated with space at the end to hold the
59 * key. This must be a regular object so that we can maintain sane iterator
60 * semantics -- we don't want to require that the caller release the result
61 * of prop_object_iterator_next().
62 *
63 * We'd like to have some small'ish keysym objects for up-to-16 characters
64 * in a key, some for up-to-32 characters in a key, and then a final bucket
65 * for up-to-128 characters in a key (not including NUL). Keys longer than
66 * 128 characters are not allowed.
67 */
68 struct _prop_dictionary_keysym {
69 struct _prop_object pdk_obj;
70 size_t pdk_size;
71 struct rb_node pdk_link;
72 char pdk_key[1];
73 /* actually variable length */
74 };
75
76 #define RBNODE_TO_PDK(n) \
77 ((struct _prop_dictionary_keysym *) \
78 ((uintptr_t)n - offsetof(struct _prop_dictionary_keysym, pdk_link)))
79
80 /* pdk_key[1] takes care of the NUL */
81 #define PDK_SIZE_16 (sizeof(struct _prop_dictionary_keysym) + 16)
82 #define PDK_SIZE_32 (sizeof(struct _prop_dictionary_keysym) + 32)
83 #define PDK_SIZE_128 (sizeof(struct _prop_dictionary_keysym) + 128)
84
85 #define PDK_MAXKEY 128
86
87 _PROP_POOL_INIT(_prop_dictionary_keysym16_pool, PDK_SIZE_16, "pdict16")
88 _PROP_POOL_INIT(_prop_dictionary_keysym32_pool, PDK_SIZE_32, "pdict32")
89 _PROP_POOL_INIT(_prop_dictionary_keysym128_pool, PDK_SIZE_128, "pdict128")
90
91 struct _prop_dict_entry {
92 prop_dictionary_keysym_t pde_key;
93 prop_object_t pde_objref;
94 };
95
96 struct _prop_dictionary {
97 struct _prop_object pd_obj;
98 _PROP_RWLOCK_DECL(pd_rwlock)
99 struct _prop_dict_entry *pd_array;
100 unsigned int pd_capacity;
101 unsigned int pd_count;
102 int pd_flags;
103
104 uint32_t pd_version;
105 };
106
107 #define PD_F_IMMUTABLE 0x01 /* dictionary is immutable */
108
109 _PROP_POOL_INIT(_prop_dictionary_pool, sizeof(struct _prop_dictionary),
110 "propdict")
111 _PROP_MALLOC_DEFINE(M_PROP_DICT, "prop dictionary",
112 "property dictionary container object")
113
114 static void _prop_dictionary_free(void *);
115 static boolean_t _prop_dictionary_externalize(
116 struct _prop_object_externalize_context *,
117 void *);
118 static boolean_t _prop_dictionary_equals(void *, void *);
119
120 static const struct _prop_object_type _prop_object_type_dictionary = {
121 .pot_type = PROP_TYPE_DICTIONARY,
122 .pot_free = _prop_dictionary_free,
123 .pot_extern = _prop_dictionary_externalize,
124 .pot_equals = _prop_dictionary_equals,
125 };
126
127 static void _prop_dict_keysym_free(void *);
128 static boolean_t _prop_dict_keysym_externalize(
129 struct _prop_object_externalize_context *,
130 void *);
131 static boolean_t _prop_dict_keysym_equals(void *, void *);
132
133 static const struct _prop_object_type _prop_object_type_dict_keysym = {
134 .pot_type = PROP_TYPE_DICT_KEYSYM,
135 .pot_free = _prop_dict_keysym_free,
136 .pot_extern = _prop_dict_keysym_externalize,
137 .pot_equals = _prop_dict_keysym_equals,
138 };
139
140 #define prop_object_is_dictionary(x) \
141 ((x) != NULL && (x)->pd_obj.po_type == &_prop_object_type_dictionary)
142 #define prop_object_is_dictionary_keysym(x) \
143 ((x) != NULL && (x)->pdk_obj.po_type == &_prop_object_type_dict_keysym)
144
145 #define prop_dictionary_is_immutable(x) \
146 (((x)->pd_flags & PD_F_IMMUTABLE) != 0)
147
148 struct _prop_dictionary_iterator {
149 struct _prop_object_iterator pdi_base;
150 unsigned int pdi_index;
151 };
152
153 /*
154 * Dictionary key symbols are immutable, and we are likely to have many
155 * duplicated key symbols. So, to save memory, we unique'ify key symbols
156 * so we only have to have one copy of each string.
157 */
158
159 static int
160 _prop_dict_keysym_rb_compare_nodes(const struct rb_node *n1,
161 const struct rb_node *n2)
162 {
163 const prop_dictionary_keysym_t pdk1 = RBNODE_TO_PDK(n1);
164 const prop_dictionary_keysym_t pdk2 = RBNODE_TO_PDK(n2);
165
166 return (strcmp(pdk1->pdk_key, pdk2->pdk_key));
167 }
168
169 static int
170 _prop_dict_keysym_rb_compare_key(const struct rb_node *n,
171 const void *v)
172 {
173 const prop_dictionary_keysym_t pdk = RBNODE_TO_PDK(n);
174 const char *cp = v;
175
176 return (strcmp(pdk->pdk_key, cp));
177 }
178
179 static const struct rb_tree_ops _prop_dict_keysym_rb_tree_ops = {
180 .rbto_compare_nodes = _prop_dict_keysym_rb_compare_nodes,
181 .rbto_compare_key = _prop_dict_keysym_rb_compare_key,
182 };
183
184 static struct rb_tree _prop_dict_keysym_tree;
185 static boolean_t _prop_dict_keysym_tree_initialized;
186
187 _PROP_MUTEX_DECL_STATIC(_prop_dict_keysym_tree_mutex)
188
189 static void
190 _prop_dict_keysym_put(prop_dictionary_keysym_t pdk)
191 {
192
193 if (pdk->pdk_size <= PDK_SIZE_16)
194 _PROP_POOL_PUT(_prop_dictionary_keysym16_pool, pdk);
195 else if (pdk->pdk_size <= PDK_SIZE_32)
196 _PROP_POOL_PUT(_prop_dictionary_keysym32_pool, pdk);
197 else {
198 _PROP_ASSERT(pdk->pdk_size <= PDK_SIZE_128);
199 _PROP_POOL_PUT(_prop_dictionary_keysym128_pool, pdk);
200 }
201 }
202
203 static void
204 _prop_dict_keysym_free(void *v)
205 {
206 prop_dictionary_keysym_t pdk = v;
207
208 _PROP_MUTEX_LOCK(_prop_dict_keysym_tree_mutex);
209 _prop_rb_tree_remove_node(&_prop_dict_keysym_tree, &pdk->pdk_link);
210 _PROP_MUTEX_UNLOCK(_prop_dict_keysym_tree_mutex);
211
212 _prop_dict_keysym_put(pdk);
213 }
214
215 static boolean_t
216 _prop_dict_keysym_externalize(struct _prop_object_externalize_context *ctx,
217 void *v)
218 {
219 prop_dictionary_keysym_t pdk = v;
220
221 /* We externalize these as strings, and they're never empty. */
222
223 _PROP_ASSERT(pdk->pdk_key[0] != '\0');
224
225 if (_prop_object_externalize_start_tag(ctx, "string") == FALSE ||
226 _prop_object_externalize_append_encoded_cstring(ctx,
227 pdk->pdk_key) == FALSE ||
228 _prop_object_externalize_end_tag(ctx, "string") == FALSE)
229 return (FALSE);
230
231 return (TRUE);
232 }
233
234 static boolean_t
235 _prop_dict_keysym_equals(void *v1, void *v2)
236 {
237 prop_dictionary_keysym_t pdk1 = v1;
238 prop_dictionary_keysym_t pdk2 = v2;
239
240 if (! (prop_object_is_dictionary_keysym(pdk1) &&
241 prop_object_is_dictionary_keysym(pdk2)))
242 return (FALSE);
243
244 /*
245 * There is only ever one copy of a keysym at any given time,
246 * so we can reduce this to a simple pointer equality check.
247 */
248 return (pdk1 == pdk2);
249 }
250
251 static prop_dictionary_keysym_t
252 _prop_dict_keysym_alloc(const char *key)
253 {
254 prop_dictionary_keysym_t opdk, pdk;
255 const struct rb_node *n;
256 size_t size;
257
258 /*
259 * Check to see if this already exists in the tree. If it does,
260 * we just retain it and return it.
261 */
262 _PROP_MUTEX_LOCK(_prop_dict_keysym_tree_mutex);
263 if (! _prop_dict_keysym_tree_initialized) {
264 _prop_rb_tree_init(&_prop_dict_keysym_tree,
265 &_prop_dict_keysym_rb_tree_ops);
266 _prop_dict_keysym_tree_initialized = TRUE;
267 } else {
268 n = _prop_rb_tree_find(&_prop_dict_keysym_tree, key);
269 if (n != NULL) {
270 opdk = RBNODE_TO_PDK(n);
271 prop_object_retain(opdk);
272 _PROP_MUTEX_UNLOCK(_prop_dict_keysym_tree_mutex);
273 return (opdk);
274 }
275 }
276 _PROP_MUTEX_UNLOCK(_prop_dict_keysym_tree_mutex);
277
278 /*
279 * Not in the tree. Create it now.
280 */
281
282 size = sizeof(*pdk) + strlen(key) /* pdk_key[1] covers the NUL */;
283
284 if (size <= PDK_SIZE_16)
285 pdk = _PROP_POOL_GET(_prop_dictionary_keysym16_pool);
286 else if (size <= PDK_SIZE_32)
287 pdk = _PROP_POOL_GET(_prop_dictionary_keysym32_pool);
288 else if (size <= PDK_SIZE_128)
289 pdk = _PROP_POOL_GET(_prop_dictionary_keysym128_pool);
290 else
291 pdk = NULL; /* key too long */
292
293 if (pdk == NULL)
294 return (NULL);
295
296 _prop_object_init(&pdk->pdk_obj, &_prop_object_type_dict_keysym);
297
298 strcpy(pdk->pdk_key, key);
299 pdk->pdk_size = size;
300
301 /*
302 * We dropped the mutex when we allocated the new object, so
303 * we have to check again if it is in the tree.
304 */
305 _PROP_MUTEX_LOCK(_prop_dict_keysym_tree_mutex);
306 n = _prop_rb_tree_find(&_prop_dict_keysym_tree, key);
307 if (n != NULL) {
308 opdk = RBNODE_TO_PDK(n);
309 prop_object_retain(opdk);
310 _PROP_MUTEX_UNLOCK(_prop_dict_keysym_tree_mutex);
311 _prop_dict_keysym_put(pdk);
312 return (opdk);
313 }
314 _prop_rb_tree_insert_node(&_prop_dict_keysym_tree, &pdk->pdk_link);
315 _PROP_MUTEX_UNLOCK(_prop_dict_keysym_tree_mutex);
316 return (pdk);
317 }
318
319 static void
320 _prop_dictionary_free(void *v)
321 {
322 prop_dictionary_t pd = v;
323 prop_dictionary_keysym_t pdk;
324 prop_object_t po;
325 unsigned int idx;
326
327 _PROP_ASSERT(pd->pd_count <= pd->pd_capacity);
328 _PROP_ASSERT((pd->pd_capacity == 0 && pd->pd_array == NULL) ||
329 (pd->pd_capacity != 0 && pd->pd_array != NULL));
330
331 for (idx = 0; idx < pd->pd_count; idx++) {
332 pdk = pd->pd_array[idx].pde_key;
333 _PROP_ASSERT(pdk != NULL);
334 prop_object_release(pdk);
335 po = pd->pd_array[idx].pde_objref;
336 _PROP_ASSERT(po != NULL);
337 prop_object_release(po);
338 }
339
340 if (pd->pd_array != NULL)
341 _PROP_FREE(pd->pd_array, M_PROP_DICT);
342
343 _PROP_RWLOCK_DESTROY(pd->pd_rwlock);
344
345 _PROP_POOL_PUT(_prop_dictionary_pool, pd);
346 }
347
348 static boolean_t
349 _prop_dictionary_externalize(struct _prop_object_externalize_context *ctx,
350 void *v)
351 {
352 prop_dictionary_t pd = v;
353 prop_dictionary_keysym_t pdk;
354 struct _prop_object *po;
355 prop_object_iterator_t pi;
356 unsigned int i;
357 boolean_t rv = FALSE;
358
359 _PROP_RWLOCK_RDLOCK(pd->pd_rwlock);
360
361 if (pd->pd_count == 0) {
362 _PROP_RWLOCK_UNLOCK(pd->pd_rwlock);
363 return (_prop_object_externalize_empty_tag(ctx, "dict"));
364 }
365
366 if (_prop_object_externalize_start_tag(ctx, "dict") == FALSE ||
367 _prop_object_externalize_append_char(ctx, '\n') == FALSE)
368 goto out;
369
370 pi = prop_dictionary_iterator(pd);
371 if (pi == NULL)
372 goto out;
373
374 ctx->poec_depth++;
375 _PROP_ASSERT(ctx->poec_depth != 0);
376
377 while ((pdk = prop_object_iterator_next(pi)) != NULL) {
378 po = prop_dictionary_get_keysym(pd, pdk);
379 if (po == NULL ||
380 _prop_object_externalize_start_tag(ctx, "key") == FALSE ||
381 _prop_object_externalize_append_encoded_cstring(ctx,
382 pdk->pdk_key) == FALSE ||
383 _prop_object_externalize_end_tag(ctx, "key") == FALSE ||
384 (*po->po_type->pot_extern)(ctx, po) == FALSE) {
385 prop_object_iterator_release(pi);
386 goto out;
387 }
388 }
389
390 prop_object_iterator_release(pi);
391
392 ctx->poec_depth--;
393 for (i = 0; i < ctx->poec_depth; i++) {
394 if (_prop_object_externalize_append_char(ctx, '\t') == FALSE)
395 goto out;
396 }
397 if (_prop_object_externalize_end_tag(ctx, "dict") == FALSE)
398 goto out;
399
400 rv = TRUE;
401
402 out:
403 _PROP_RWLOCK_UNLOCK(pd->pd_rwlock);
404 return (rv);
405 }
406
407 static boolean_t
408 _prop_dictionary_equals(void *v1, void *v2)
409 {
410 prop_dictionary_t dict1 = v1;
411 prop_dictionary_t dict2 = v2;
412 const struct _prop_dict_entry *pde1, *pde2;
413 unsigned int idx;
414 boolean_t rv = FALSE;
415
416 if (! (prop_object_is_dictionary(dict1) &&
417 prop_object_is_dictionary(dict2)))
418 return (FALSE);
419
420 if (dict1 == dict2)
421 return (TRUE);
422
423 if ((uintptr_t)dict1 < (uintptr_t)dict2) {
424 _PROP_RWLOCK_RDLOCK(dict1->pd_rwlock);
425 _PROP_RWLOCK_RDLOCK(dict2->pd_rwlock);
426 } else {
427 _PROP_RWLOCK_RDLOCK(dict2->pd_rwlock);
428 _PROP_RWLOCK_RDLOCK(dict1->pd_rwlock);
429 }
430
431 if (dict1->pd_count != dict2->pd_count)
432 goto out;
433
434 for (idx = 0; idx < dict1->pd_count; idx++) {
435 pde1 = &dict1->pd_array[idx];
436 pde2 = &dict2->pd_array[idx];
437
438 if (prop_dictionary_keysym_equals(pde1->pde_key,
439 pde2->pde_key) == FALSE)
440 goto out;
441 if (prop_object_equals(pde1->pde_objref,
442 pde2->pde_objref) == FALSE)
443 goto out;
444 }
445
446 rv = TRUE;
447
448 out:
449 _PROP_RWLOCK_UNLOCK(dict1->pd_rwlock);
450 _PROP_RWLOCK_UNLOCK(dict2->pd_rwlock);
451 return (rv);
452 }
453
454 static prop_dictionary_t
455 _prop_dictionary_alloc(unsigned int capacity)
456 {
457 prop_dictionary_t pd;
458 struct _prop_dict_entry *array;
459
460 if (capacity != 0) {
461 array = _PROP_CALLOC(capacity * sizeof(*array), M_PROP_DICT);
462 if (array == NULL)
463 return (NULL);
464 } else
465 array = NULL;
466
467 pd = _PROP_POOL_GET(_prop_dictionary_pool);
468 if (pd != NULL) {
469 _prop_object_init(&pd->pd_obj, &_prop_object_type_dictionary);
470
471 _PROP_RWLOCK_INIT(pd->pd_rwlock);
472 pd->pd_array = array;
473 pd->pd_capacity = capacity;
474 pd->pd_count = 0;
475 pd->pd_flags = 0;
476
477 pd->pd_version = 0;
478 } else if (array != NULL)
479 _PROP_FREE(array, M_PROP_DICT);
480
481 return (pd);
482 }
483
484 static boolean_t
485 _prop_dictionary_expand(prop_dictionary_t pd, unsigned int capacity)
486 {
487 struct _prop_dict_entry *array, *oarray;
488
489 /*
490 * Dictionary must be WRITE-LOCKED.
491 */
492
493 oarray = pd->pd_array;
494
495 array = _PROP_CALLOC(capacity * sizeof(*array), M_PROP_DICT);
496 if (array == NULL)
497 return (FALSE);
498 if (oarray != NULL)
499 memcpy(array, oarray, pd->pd_capacity * sizeof(*array));
500 pd->pd_array = array;
501 pd->pd_capacity = capacity;
502
503 if (oarray != NULL)
504 _PROP_FREE(oarray, M_PROP_DICT);
505
506 return (TRUE);
507 }
508
509 static prop_object_t
510 _prop_dictionary_iterator_next_object(void *v)
511 {
512 struct _prop_dictionary_iterator *pdi = v;
513 prop_dictionary_t pd = pdi->pdi_base.pi_obj;
514 prop_dictionary_keysym_t pdk = NULL;
515
516 _PROP_ASSERT(prop_object_is_dictionary(pd));
517
518 _PROP_RWLOCK_RDLOCK(pd->pd_rwlock);
519
520 if (pd->pd_version != pdi->pdi_base.pi_version)
521 goto out; /* dictionary changed during iteration */
522
523 _PROP_ASSERT(pdi->pdi_index <= pd->pd_count);
524
525 if (pdi->pdi_index == pd->pd_count)
526 goto out; /* we've iterated all objects */
527
528 pdk = pd->pd_array[pdi->pdi_index].pde_key;
529 pdi->pdi_index++;
530
531 out:
532 _PROP_RWLOCK_UNLOCK(pd->pd_rwlock);
533 return (pdk);
534 }
535
536 static void
537 _prop_dictionary_iterator_reset(void *v)
538 {
539 struct _prop_dictionary_iterator *pdi = v;
540 prop_dictionary_t pd = pdi->pdi_base.pi_obj;
541
542 _PROP_ASSERT(prop_object_is_dictionary(pd));
543
544 _PROP_RWLOCK_RDLOCK(pd->pd_rwlock);
545
546 pdi->pdi_index = 0;
547 pdi->pdi_base.pi_version = pd->pd_version;
548
549 _PROP_RWLOCK_UNLOCK(pd->pd_rwlock);
550 }
551
552 /*
553 * prop_dictionary_create --
554 * Create a dictionary.
555 */
556 prop_dictionary_t
557 prop_dictionary_create(void)
558 {
559
560 return (_prop_dictionary_alloc(0));
561 }
562
563 /*
564 * prop_dictionary_create_with_capacity --
565 * Create a dictionary with the capacity to store N objects.
566 */
567 prop_dictionary_t
568 prop_dictionary_create_with_capacity(unsigned int capacity)
569 {
570
571 return (_prop_dictionary_alloc(capacity));
572 }
573
574 /*
575 * prop_dictionary_copy --
576 * Copy a dictionary. The new dictionary has an initial capacity equal
577 * to the number of objects stored int the original dictionary. The new
578 * dictionary contains refrences to the original dictionary's objects,
579 * not copies of those objects (i.e. a shallow copy).
580 */
581 prop_dictionary_t
582 prop_dictionary_copy(prop_dictionary_t opd)
583 {
584 prop_dictionary_t pd;
585 prop_dictionary_keysym_t pdk;
586 prop_object_t po;
587 unsigned int idx;
588
589 if (! prop_object_is_dictionary(opd))
590 return (NULL);
591
592 _PROP_RWLOCK_RDLOCK(opd->pd_rwlock);
593
594 pd = _prop_dictionary_alloc(opd->pd_count);
595 if (pd != NULL) {
596 for (idx = 0; idx < opd->pd_count; idx++) {
597 pdk = opd->pd_array[idx].pde_key;
598 po = opd->pd_array[idx].pde_objref;
599
600 prop_object_retain(pdk);
601 prop_object_retain(po);
602
603 pd->pd_array[idx].pde_key = pdk;
604 pd->pd_array[idx].pde_objref = po;
605 }
606 pd->pd_count = opd->pd_count;
607 pd->pd_flags = opd->pd_flags;
608 }
609 _PROP_RWLOCK_UNLOCK(opd->pd_rwlock);
610 return (pd);
611 }
612
613 /*
614 * prop_dictionary_copy_mutable --
615 * Like prop_dictionary_copy(), but the resulting dictionary is
616 * mutable.
617 */
618 prop_dictionary_t
619 prop_dictionary_copy_mutable(prop_dictionary_t opd)
620 {
621 prop_dictionary_t pd;
622
623 if (! prop_object_is_dictionary(opd))
624 return (NULL);
625
626 pd = prop_dictionary_copy(opd);
627 if (pd != NULL)
628 pd->pd_flags &= ~PD_F_IMMUTABLE;
629
630 return (pd);
631 }
632
633 /*
634 * prop_dictionary_count --
635 * Return the number of objects stored in the dictionary.
636 */
637 unsigned int
638 prop_dictionary_count(prop_dictionary_t pd)
639 {
640 unsigned int rv;
641
642 if (! prop_object_is_dictionary(pd))
643 return (0);
644
645 _PROP_RWLOCK_RDLOCK(pd->pd_rwlock);
646 rv = pd->pd_count;
647 _PROP_RWLOCK_UNLOCK(pd->pd_rwlock);
648
649 return (rv);
650 }
651
652 /*
653 * prop_dictionary_ensure_capacity --
654 * Ensure that the dictionary has the capacity to store the specified
655 * total number of objects (including the objects already stored in
656 * the dictionary).
657 */
658 boolean_t
659 prop_dictionary_ensure_capacity(prop_dictionary_t pd, unsigned int capacity)
660 {
661 boolean_t rv;
662
663 if (! prop_object_is_dictionary(pd))
664 return (FALSE);
665
666 _PROP_RWLOCK_WRLOCK(pd->pd_rwlock);
667 if (capacity > pd->pd_capacity)
668 rv = _prop_dictionary_expand(pd, capacity);
669 else
670 rv = TRUE;
671 _PROP_RWLOCK_UNLOCK(pd->pd_rwlock);
672 return (rv);
673 }
674
675 /*
676 * prop_dictionary_iterator --
677 * Return an iterator for the dictionary. The dictionary is retained by
678 * the iterator.
679 */
680 prop_object_iterator_t
681 prop_dictionary_iterator(prop_dictionary_t pd)
682 {
683 struct _prop_dictionary_iterator *pdi;
684
685 if (! prop_object_is_dictionary(pd))
686 return (NULL);
687
688 pdi = _PROP_CALLOC(sizeof(*pdi), M_TEMP);
689 if (pdi == NULL)
690 return (NULL);
691 pdi->pdi_base.pi_next_object = _prop_dictionary_iterator_next_object;
692 pdi->pdi_base.pi_reset = _prop_dictionary_iterator_reset;
693 prop_object_retain(pd);
694 pdi->pdi_base.pi_obj = pd;
695 _prop_dictionary_iterator_reset(pdi);
696
697 return (&pdi->pdi_base);
698 }
699
700 /*
701 * prop_dictionary_all_keys --
702 * Return an array containing a snapshot of all of the keys
703 * in the dictionary.
704 */
705 prop_array_t
706 prop_dictionary_all_keys(prop_dictionary_t pd)
707 {
708 prop_array_t array;
709 unsigned int idx;
710 boolean_t rv = TRUE;
711
712 if (! prop_object_is_dictionary(pd))
713 return (NULL);
714
715 /* There is no pressing need to lock the dictionary for this. */
716 array = prop_array_create_with_capacity(pd->pd_count);
717
718 _PROP_RWLOCK_RDLOCK(pd->pd_rwlock);
719
720 for (idx = 0; idx < pd->pd_count; idx++) {
721 rv = prop_array_add(array, pd->pd_array[idx].pde_key);
722 if (rv == FALSE)
723 break;
724 }
725
726 _PROP_RWLOCK_UNLOCK(pd->pd_rwlock);
727
728 if (rv == FALSE) {
729 prop_object_release(array);
730 array = NULL;
731 }
732 return (array);
733 }
734
735 static struct _prop_dict_entry *
736 _prop_dict_lookup(prop_dictionary_t pd, const char *key,
737 unsigned int *idxp)
738 {
739 struct _prop_dict_entry *pde;
740 unsigned int base, idx, distance;
741 int res;
742
743 /*
744 * Dictionary must be READ-LOCKED or WRITE-LOCKED.
745 */
746
747 for (idx = 0, base = 0, distance = pd->pd_count; distance != 0;
748 distance >>= 1) {
749 idx = base + (distance >> 1);
750 pde = &pd->pd_array[idx];
751 _PROP_ASSERT(pde->pde_key != NULL);
752 res = strcmp(key, pde->pde_key->pdk_key);
753 if (res == 0) {
754 if (idxp != NULL)
755 *idxp = idx;
756 return (pde);
757 }
758 if (res > 0) { /* key > pdk_key: move right */
759 base = idx + 1;
760 distance--;
761 } /* else move left */
762 }
763
764 /* idx points to the slot we looked at last. */
765 if (idxp != NULL)
766 *idxp = idx;
767 return (NULL);
768 }
769
770 /*
771 * prop_dictionary_get --
772 * Return the object stored with specified key.
773 */
774 prop_object_t
775 prop_dictionary_get(prop_dictionary_t pd, const char *key)
776 {
777 const struct _prop_dict_entry *pde;
778 prop_object_t po = NULL;
779
780 if (! prop_object_is_dictionary(pd))
781 return (NULL);
782
783 _PROP_RWLOCK_RDLOCK(pd->pd_rwlock);
784 pde = _prop_dict_lookup(pd, key, NULL);
785 if (pde != NULL) {
786 _PROP_ASSERT(pde->pde_objref != NULL);
787 po = pde->pde_objref;
788 }
789 _PROP_RWLOCK_UNLOCK(pd->pd_rwlock);
790 return (po);
791 }
792
793 /*
794 * prop_dictionary_get_keysym --
795 * Return the object stored at the location encoded by the keysym.
796 */
797 prop_object_t
798 prop_dictionary_get_keysym(prop_dictionary_t pd, prop_dictionary_keysym_t pdk)
799 {
800
801 if (! (prop_object_is_dictionary(pd) &&
802 prop_object_is_dictionary_keysym(pdk)))
803 return (NULL);
804
805 return (prop_dictionary_get(pd, pdk->pdk_key));
806 }
807
808 /*
809 * prop_dictionary_set --
810 * Store a reference to an object at with the specified key.
811 * If the key already exisit, the original object is released.
812 */
813 boolean_t
814 prop_dictionary_set(prop_dictionary_t pd, const char *key, prop_object_t po)
815 {
816 struct _prop_dict_entry *pde;
817 prop_dictionary_keysym_t pdk;
818 unsigned int idx;
819 boolean_t rv = FALSE;
820
821 if (! prop_object_is_dictionary(pd))
822 return (FALSE);
823
824 _PROP_ASSERT(pd->pd_count <= pd->pd_capacity);
825
826 if (prop_dictionary_is_immutable(pd))
827 return (FALSE);
828
829 _PROP_RWLOCK_WRLOCK(pd->pd_rwlock);
830
831 pde = _prop_dict_lookup(pd, key, &idx);
832 if (pde != NULL) {
833 prop_object_t opo = pde->pde_objref;
834 prop_object_retain(po);
835 pde->pde_objref = po;
836 prop_object_release(opo);
837 rv = TRUE;
838 goto out;
839 }
840
841 pdk = _prop_dict_keysym_alloc(key);
842 if (pdk == NULL)
843 goto out;
844
845 if (pd->pd_count == pd->pd_capacity &&
846 _prop_dictionary_expand(pd,
847 pd->pd_capacity + EXPAND_STEP) == FALSE) {
848 prop_object_release(pdk);
849 goto out;
850 }
851
852 /* At this point, the store will succeed. */
853 prop_object_retain(po);
854
855 if (pd->pd_count == 0) {
856 pd->pd_array[0].pde_key = pdk;
857 pd->pd_array[0].pde_objref = po;
858 pd->pd_count++;
859 pd->pd_version++;
860 rv = TRUE;
861 goto out;
862 }
863
864 pde = &pd->pd_array[idx];
865 _PROP_ASSERT(pde->pde_key != NULL);
866
867 if (strcmp(key, pde->pde_key->pdk_key) < 0) {
868 /*
869 * key < pdk_key: insert to the left. This is the same as
870 * inserting to the right, except we decrement the current
871 * index first.
872 *
873 * Because we're unsigned, we have to special case 0
874 * (grumble).
875 */
876 if (idx == 0) {
877 memmove(&pd->pd_array[1], &pd->pd_array[0],
878 pd->pd_count * sizeof(*pde));
879 pd->pd_array[0].pde_key = pdk;
880 pd->pd_array[0].pde_objref = po;
881 pd->pd_count++;
882 pd->pd_version++;
883 rv = TRUE;
884 goto out;
885 }
886 idx--;
887 }
888
889 memmove(&pd->pd_array[idx + 2], &pd->pd_array[idx + 1],
890 (pd->pd_count - (idx + 1)) * sizeof(*pde));
891 pd->pd_array[idx + 1].pde_key = pdk;
892 pd->pd_array[idx + 1].pde_objref = po;
893 pd->pd_count++;
894
895 pd->pd_version++;
896
897 rv = TRUE;
898
899 out:
900 _PROP_RWLOCK_UNLOCK(pd->pd_rwlock);
901 return (rv);
902 }
903
904 /*
905 * prop_dictionary_set_keysym --
906 * Replace the object in the dictionary at the location encoded by
907 * the keysym.
908 */
909 boolean_t
910 prop_dictionary_set_keysym(prop_dictionary_t pd, prop_dictionary_keysym_t pdk,
911 prop_object_t po)
912 {
913
914 if (! (prop_object_is_dictionary(pd) &&
915 prop_object_is_dictionary_keysym(pdk)))
916 return (FALSE);
917
918 return (prop_dictionary_set(pd, pdk->pdk_key, po));
919 }
920
921 static void
922 _prop_dictionary_remove(prop_dictionary_t pd, struct _prop_dict_entry *pde,
923 unsigned int idx)
924 {
925 prop_dictionary_keysym_t pdk = pde->pde_key;
926 prop_object_t po = pde->pde_objref;
927
928 /*
929 * Dictionary must be WRITE-LOCKED.
930 */
931
932 _PROP_ASSERT(pd->pd_count != 0);
933 _PROP_ASSERT(idx < pd->pd_count);
934 _PROP_ASSERT(pde == &pd->pd_array[idx]);
935
936 idx++;
937 memmove(&pd->pd_array[idx - 1], &pd->pd_array[idx],
938 (pd->pd_count - idx) * sizeof(*pde));
939 pd->pd_count--;
940 pd->pd_version++;
941
942 prop_object_release(pdk);
943 prop_object_release(po);
944 }
945
946 /*
947 * prop_dictionary_remove --
948 * Remove the reference to an object with the specified key from
949 * the dictionary.
950 */
951 void
952 prop_dictionary_remove(prop_dictionary_t pd, const char *key)
953 {
954 struct _prop_dict_entry *pde;
955 unsigned int idx;
956
957 if (! prop_object_is_dictionary(pd))
958 return;
959
960 _PROP_RWLOCK_WRLOCK(pd->pd_rwlock);
961
962 /* XXX Should this be a _PROP_ASSERT()? */
963 if (prop_dictionary_is_immutable(pd))
964 goto out;
965
966 pde = _prop_dict_lookup(pd, key, &idx);
967 /* XXX Should this be a _PROP_ASSERT()? */
968 if (pde == NULL)
969 goto out;
970
971 _prop_dictionary_remove(pd, pde, idx);
972 out:
973 _PROP_RWLOCK_UNLOCK(pd->pd_rwlock);
974 }
975
976 /*
977 * prop_dictionary_remove_keysym --
978 * Remove a reference to an object stored in the dictionary at the
979 * location encoded by the keysym.
980 */
981 void
982 prop_dictionary_remove_keysym(prop_dictionary_t pd,
983 prop_dictionary_keysym_t pdk)
984 {
985
986 if (! (prop_object_is_dictionary(pd) &&
987 prop_object_is_dictionary_keysym(pdk)))
988 return;
989
990 prop_dictionary_remove(pd, pdk->pdk_key);
991 }
992
993 /*
994 * prop_dictionary_equals --
995 * Return TRUE if the two dictionaries are equivalent. Note we do a
996 * by-value comparison of the objects in the dictionary.
997 */
998 boolean_t
999 prop_dictionary_equals(prop_dictionary_t dict1, prop_dictionary_t dict2)
1000 {
1001
1002 return (_prop_dictionary_equals(dict1, dict2));
1003 }
1004
1005 /*
1006 * prop_dictionary_keysym_cstring_nocopy --
1007 * Return an immutable reference to the keysym's value.
1008 */
1009 const char *
1010 prop_dictionary_keysym_cstring_nocopy(prop_dictionary_keysym_t pdk)
1011 {
1012
1013 if (! prop_object_is_dictionary_keysym(pdk))
1014 return (NULL);
1015
1016 return (pdk->pdk_key);
1017 }
1018
1019 /*
1020 * prop_dictionary_keysym_equals --
1021 * Return TRUE if the two dictionary key symbols are equivalent.
1022 * Note: We do not compare the object references.
1023 */
1024 boolean_t
1025 prop_dictionary_keysym_equals(prop_dictionary_keysym_t pdk1,
1026 prop_dictionary_keysym_t pdk2)
1027 {
1028
1029 return (_prop_dict_keysym_equals(pdk1, pdk2));
1030 }
1031
1032 /*
1033 * prop_dictionary_externalize --
1034 * Externalize a dictionary, returning a NUL-terminated buffer
1035 * containing the XML-style representation. The buffer is allocated
1036 * with the M_TEMP memory type.
1037 */
1038 char *
1039 prop_dictionary_externalize(prop_dictionary_t pd)
1040 {
1041 struct _prop_object_externalize_context *ctx;
1042 char *cp;
1043
1044 ctx = _prop_object_externalize_context_alloc();
1045 if (ctx == NULL)
1046 return (NULL);
1047
1048 if (_prop_object_externalize_header(ctx) == FALSE ||
1049 (*pd->pd_obj.po_type->pot_extern)(ctx, pd) == FALSE ||
1050 _prop_object_externalize_footer(ctx) == FALSE) {
1051 /* We are responsible for releasing the buffer. */
1052 _PROP_FREE(ctx->poec_buf, M_TEMP);
1053 _prop_object_externalize_context_free(ctx);
1054 return (NULL);
1055 }
1056
1057 cp = ctx->poec_buf;
1058 _prop_object_externalize_context_free(ctx);
1059
1060 return (cp);
1061 }
1062
1063 /*
1064 * _prop_dictionary_internalize --
1065 * Parse a <dict>...</dict> and return the object created from the
1066 * external representation.
1067 */
1068 prop_object_t
1069 _prop_dictionary_internalize(struct _prop_object_internalize_context *ctx)
1070 {
1071 prop_dictionary_t dict;
1072 prop_object_t val;
1073 size_t keylen;
1074 char *tmpkey;
1075
1076 /* We don't currently understand any attributes. */
1077 if (ctx->poic_tagattr != NULL)
1078 return (NULL);
1079
1080 dict = prop_dictionary_create();
1081 if (dict == NULL)
1082 return (NULL);
1083
1084 if (ctx->poic_is_empty_element)
1085 return (dict);
1086
1087 tmpkey = _PROP_MALLOC(PDK_MAXKEY + 1, M_TEMP);
1088 if (tmpkey == NULL)
1089 goto bad;
1090
1091 for (;;) {
1092 /* Fetch the next tag. */
1093 if (_prop_object_internalize_find_tag(ctx, NULL,
1094 _PROP_TAG_TYPE_EITHER) == FALSE)
1095 goto bad;
1096
1097 /* Check to see if this is the end of the dictionary. */
1098 if (_PROP_TAG_MATCH(ctx, "dict") &&
1099 ctx->poic_tag_type == _PROP_TAG_TYPE_END)
1100 break;
1101
1102 /* Ok, it must be a non-empty key start tag. */
1103 if (!_PROP_TAG_MATCH(ctx, "key") ||
1104 ctx->poic_tag_type != _PROP_TAG_TYPE_START ||
1105 ctx->poic_is_empty_element)
1106 goto bad;
1107
1108 if (_prop_object_internalize_decode_string(ctx,
1109 tmpkey, PDK_MAXKEY, &keylen,
1110 &ctx->poic_cp) == FALSE)
1111 goto bad;
1112
1113 _PROP_ASSERT(keylen <= PDK_MAXKEY);
1114 tmpkey[keylen] = '\0';
1115
1116 if (_prop_object_internalize_find_tag(ctx, "key",
1117 _PROP_TAG_TYPE_END) == FALSE)
1118 goto bad;
1119
1120 /* ..and now the beginning of the value. */
1121 if (_prop_object_internalize_find_tag(ctx, NULL,
1122 _PROP_TAG_TYPE_START) == FALSE)
1123 goto bad;
1124
1125 val = _prop_object_internalize_by_tag(ctx);
1126 if (val == NULL)
1127 goto bad;
1128
1129 if (prop_dictionary_set(dict, tmpkey, val) == FALSE) {
1130 prop_object_release(val);
1131 goto bad;
1132 }
1133 prop_object_release(val);
1134 }
1135
1136 _PROP_FREE(tmpkey, M_TEMP);
1137 return (dict);
1138
1139 bad:
1140 if (tmpkey != NULL)
1141 _PROP_FREE(tmpkey, M_TEMP);
1142 prop_object_release(dict);
1143 return (NULL);
1144 }
1145
1146 /*
1147 * prop_dictionary_internalize --
1148 * Create a dictionary by parsing the NUL-terminated XML-style
1149 * representation.
1150 */
1151 prop_dictionary_t
1152 prop_dictionary_internalize(const char *xml)
1153 {
1154 prop_dictionary_t dict = NULL;
1155 struct _prop_object_internalize_context *ctx;
1156
1157 ctx = _prop_object_internalize_context_alloc(xml);
1158 if (ctx == NULL)
1159 return (NULL);
1160
1161 /* We start with a <plist> tag. */
1162 if (_prop_object_internalize_find_tag(ctx, "plist",
1163 _PROP_TAG_TYPE_START) == FALSE)
1164 goto out;
1165
1166 /* Plist elements cannot be empty. */
1167 if (ctx->poic_is_empty_element)
1168 goto out;
1169
1170 /*
1171 * We don't understand any plist attributes, but Apple XML
1172 * property lists often have a "version" attribute. If we
1173 * see that one, we simply ignore it.
1174 */
1175 if (ctx->poic_tagattr != NULL &&
1176 !_PROP_TAGATTR_MATCH(ctx, "version"))
1177 goto out;
1178
1179 /* Next we expect to see <dict>. */
1180 if (_prop_object_internalize_find_tag(ctx, "dict",
1181 _PROP_TAG_TYPE_START) == FALSE)
1182 goto out;
1183
1184 dict = _prop_dictionary_internalize(ctx);
1185 if (dict == NULL)
1186 goto out;
1187
1188 /* We've advanced past </dict>. Now we want </plist>. */
1189 if (_prop_object_internalize_find_tag(ctx, "plist",
1190 _PROP_TAG_TYPE_END) == FALSE) {
1191 prop_object_release(dict);
1192 dict = NULL;
1193 }
1194
1195 out:
1196 _prop_object_internalize_context_free(ctx);
1197 return (dict);
1198 }
1199
1200 #if !defined(_KERNEL) && !defined(_STANDALONE)
1201 /*
1202 * prop_dictionary_externalize_to_file --
1203 * Externalize a dictionary to the specified file.
1204 */
1205 boolean_t
1206 prop_dictionary_externalize_to_file(prop_dictionary_t dict, const char *fname)
1207 {
1208 char *xml;
1209 boolean_t rv;
1210 int save_errno = 0; /* XXXGCC -Wuninitialized [mips, ...] */
1211
1212 xml = prop_dictionary_externalize(dict);
1213 if (xml == NULL)
1214 return (FALSE);
1215 rv = _prop_object_externalize_write_file(fname, xml, strlen(xml));
1216 if (rv == FALSE)
1217 save_errno = errno;
1218 _PROP_FREE(xml, M_TEMP);
1219 if (rv == FALSE)
1220 errno = save_errno;
1221
1222 return (rv);
1223 }
1224
1225 /*
1226 * prop_dictionary_internalize_from_file --
1227 * Internalize a dictionary from a file.
1228 */
1229 prop_dictionary_t
1230 prop_dictionary_internalize_from_file(const char *fname)
1231 {
1232 struct _prop_object_internalize_mapped_file *mf;
1233 prop_dictionary_t dict;
1234
1235 mf = _prop_object_internalize_map_file(fname);
1236 if (mf == NULL)
1237 return (NULL);
1238 dict = prop_dictionary_internalize(mf->poimf_xml);
1239 _prop_object_internalize_unmap_file(mf);
1240
1241 return (dict);
1242 }
1243 #endif /* !_KERNEL && !_STANDALONE */
1244