Coverage Report

Created: 2022-11-15 06:15

/src/libxml2/hash.c
Line
Count
Source (jump to first uncovered line)
1
/*
2
 * hash.c: chained hash tables
3
 *
4
 * Reference: Your favorite introductory book on algorithms
5
 *
6
 * Copyright (C) 2000,2012 Bjorn Reese and Daniel Veillard.
7
 *
8
 * Permission to use, copy, modify, and distribute this software for any
9
 * purpose with or without fee is hereby granted, provided that the above
10
 * copyright notice and this permission notice appear in all copies.
11
 *
12
 * THIS SOFTWARE IS PROVIDED ``AS IS'' AND WITHOUT ANY EXPRESS OR IMPLIED
13
 * WARRANTIES, INCLUDING, WITHOUT LIMITATION, THE IMPLIED WARRANTIES OF
14
 * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE. THE AUTHORS AND
15
 * CONTRIBUTORS ACCEPT NO RESPONSIBILITY IN ANY CONCEIVABLE MANNER.
16
 *
17
 * Author: breese@users.sourceforge.net
18
 */
19
20
#define IN_LIBXML
21
#include "libxml.h"
22
23
#include <string.h>
24
#include <stdlib.h>
25
#include <time.h>
26
27
/*
28
 * Following http://www.ocert.org/advisories/ocert-2011-003.html
29
 * it seems that having hash randomization might be a good idea
30
 * when using XML with untrusted data
31
 */
32
#if !defined(FUZZING_BUILD_MODE_UNSAFE_FOR_PRODUCTION)
33
#define HASH_RANDOMIZATION
34
#endif
35
36
#include <libxml/parser.h>
37
#include <libxml/hash.h>
38
#include <libxml/xmlmemory.h>
39
#include <libxml/xmlerror.h>
40
#include <libxml/globals.h>
41
42
#include "private/dict.h"
43
44
766
#define MAX_HASH_LEN 8
45
46
/* #define DEBUG_GROW */
47
48
/*
49
 * A single entry in the hash table
50
 */
51
typedef struct _xmlHashEntry xmlHashEntry;
52
typedef xmlHashEntry *xmlHashEntryPtr;
53
struct _xmlHashEntry {
54
    struct _xmlHashEntry *next;
55
    xmlChar *name;
56
    xmlChar *name2;
57
    xmlChar *name3;
58
    void *payload;
59
    int valid;
60
};
61
62
/*
63
 * The entire hash table
64
 */
65
struct _xmlHashTable {
66
    struct _xmlHashEntry *table;
67
    int size;
68
    int nbElems;
69
    xmlDictPtr dict;
70
#ifdef HASH_RANDOMIZATION
71
    int random_seed;
72
#endif
73
};
74
75
/*
76
 * xmlHashComputeKey:
77
 * Calculate the hash key
78
 */
79
#ifdef __clang__
80
ATTRIBUTE_NO_SANITIZE("unsigned-integer-overflow")
81
#endif
82
static unsigned long
83
xmlHashComputeKey(xmlHashTablePtr table, const xmlChar *name,
84
943k
            const xmlChar *name2, const xmlChar *name3) {
85
943k
    unsigned long value = 0L;
86
943k
    unsigned long ch;
87
88
#ifdef HASH_RANDOMIZATION
89
    value = table->random_seed;
90
#endif
91
943k
    if (name != NULL) {
92
943k
  value += 30 * (*name);
93
1.89M
  while ((ch = *name++) != 0) {
94
951k
      value = value ^ ((value << 5) + (value >> 3) + ch);
95
951k
  }
96
943k
    }
97
943k
    value = value ^ ((value << 5) + (value >> 3));
98
943k
    if (name2 != NULL) {
99
13.0k
  while ((ch = *name2++) != 0) {
100
12.5k
      value = value ^ ((value << 5) + (value >> 3) + ch);
101
12.5k
  }
102
474
    }
103
943k
    value = value ^ ((value << 5) + (value >> 3));
104
943k
    if (name3 != NULL) {
105
0
  while ((ch = *name3++) != 0) {
106
0
      value = value ^ ((value << 5) + (value >> 3) + ch);
107
0
  }
108
0
    }
109
943k
    return (value % table->size);
110
943k
}
111
112
#ifdef __clang__
113
ATTRIBUTE_NO_SANITIZE("unsigned-integer-overflow")
114
#endif
115
static unsigned long
116
xmlHashComputeQKey(xmlHashTablePtr table,
117
       const xmlChar *prefix, const xmlChar *name,
118
       const xmlChar *prefix2, const xmlChar *name2,
119
0
       const xmlChar *prefix3, const xmlChar *name3) {
120
0
    unsigned long value = 0L;
121
0
    unsigned long ch;
122
123
#ifdef HASH_RANDOMIZATION
124
    value = table->random_seed;
125
#endif
126
0
    if (prefix != NULL)
127
0
  value += 30 * (*prefix);
128
0
    else
129
0
  value += 30 * (*name);
130
131
0
    if (prefix != NULL) {
132
0
  while ((ch = *prefix++) != 0) {
133
0
      value = value ^ ((value << 5) + (value >> 3) + ch);
134
0
  }
135
0
  value = value ^ ((value << 5) + (value >> 3) + ':');
136
0
    }
137
0
    if (name != NULL) {
138
0
  while ((ch = *name++) != 0) {
139
0
      value = value ^ ((value << 5) + (value >> 3) + ch);
140
0
  }
141
0
    }
142
0
    value = value ^ ((value << 5) + (value >> 3));
143
0
    if (prefix2 != NULL) {
144
0
  while ((ch = *prefix2++) != 0) {
145
0
      value = value ^ ((value << 5) + (value >> 3) + ch);
146
0
  }
147
0
  value = value ^ ((value << 5) + (value >> 3) + ':');
148
0
    }
149
0
    if (name2 != NULL) {
150
0
  while ((ch = *name2++) != 0) {
151
0
      value = value ^ ((value << 5) + (value >> 3) + ch);
152
0
  }
153
0
    }
154
0
    value = value ^ ((value << 5) + (value >> 3));
155
0
    if (prefix3 != NULL) {
156
0
  while ((ch = *prefix3++) != 0) {
157
0
      value = value ^ ((value << 5) + (value >> 3) + ch);
158
0
  }
159
0
  value = value ^ ((value << 5) + (value >> 3) + ':');
160
0
    }
161
0
    if (name3 != NULL) {
162
0
  while ((ch = *name3++) != 0) {
163
0
      value = value ^ ((value << 5) + (value >> 3) + ch);
164
0
  }
165
0
    }
166
0
    return (value % table->size);
167
0
}
168
169
/**
170
 * xmlHashCreate:
171
 * @size: the size of the hash table
172
 *
173
 * Create a new xmlHashTablePtr.
174
 *
175
 * Returns the newly created object, or NULL if an error occurred.
176
 */
177
xmlHashTablePtr
178
39
xmlHashCreate(int size) {
179
39
    xmlHashTablePtr table;
180
181
39
    if (size <= 0)
182
22
        size = 256;
183
184
39
    table = xmlMalloc(sizeof(xmlHashTable));
185
39
    if (table) {
186
39
        table->dict = NULL;
187
39
        table->size = size;
188
39
  table->nbElems = 0;
189
39
        table->table = xmlMalloc(size * sizeof(xmlHashEntry));
190
39
        if (table->table) {
191
39
      memset(table->table, 0, size * sizeof(xmlHashEntry));
192
#ifdef HASH_RANDOMIZATION
193
            table->random_seed = __xmlRandom();
194
#endif
195
39
      return(table);
196
39
        }
197
0
        xmlFree(table);
198
0
    }
199
0
    return(NULL);
200
39
}
201
202
/**
203
 * xmlHashCreateDict:
204
 * @size: the size of the hash table
205
 * @dict: a dictionary to use for the hash
206
 *
207
 * Create a new xmlHashTablePtr which will use @dict as the internal dictionary
208
 *
209
 * Returns the newly created object, or NULL if an error occurred.
210
 */
211
xmlHashTablePtr
212
0
xmlHashCreateDict(int size, xmlDictPtr dict) {
213
0
    xmlHashTablePtr table;
214
215
0
    table = xmlHashCreate(size);
216
0
    if (table != NULL) {
217
0
        table->dict = dict;
218
0
  xmlDictReference(dict);
219
0
    }
220
0
    return(table);
221
0
}
222
223
/**
224
 * xmlHashGrow:
225
 * @table: the hash table
226
 * @size: the new size of the hash table
227
 *
228
 * resize the hash table
229
 *
230
 * Returns 0 in case of success, -1 in case of failure
231
 */
232
static int
233
0
xmlHashGrow(xmlHashTablePtr table, int size) {
234
0
    unsigned long key;
235
0
    int oldsize, i;
236
0
    xmlHashEntryPtr iter, next;
237
0
    struct _xmlHashEntry *oldtable;
238
#ifdef DEBUG_GROW
239
    unsigned long nbElem = 0;
240
#endif
241
242
0
    if (table == NULL)
243
0
  return(-1);
244
0
    if (size < 8)
245
0
        return(-1);
246
0
    if (size > 8 * 2048)
247
0
  return(-1);
248
249
0
    oldsize = table->size;
250
0
    oldtable = table->table;
251
0
    if (oldtable == NULL)
252
0
        return(-1);
253
254
0
    table->table = xmlMalloc(size * sizeof(xmlHashEntry));
255
0
    if (table->table == NULL) {
256
0
  table->table = oldtable;
257
0
  return(-1);
258
0
    }
259
0
    memset(table->table, 0, size * sizeof(xmlHashEntry));
260
0
    table->size = size;
261
262
    /*  If the two loops are merged, there would be situations where
263
  a new entry needs to allocated and data copied into it from
264
  the main table. So instead, we run through the array twice, first
265
  copying all the elements in the main array (where we can't get
266
  conflicts) and then the rest, so we only free (and don't allocate)
267
    */
268
0
    for (i = 0; i < oldsize; i++) {
269
0
  if (oldtable[i].valid == 0)
270
0
      continue;
271
0
  key = xmlHashComputeKey(table, oldtable[i].name, oldtable[i].name2,
272
0
        oldtable[i].name3);
273
0
  memcpy(&(table->table[key]), &(oldtable[i]), sizeof(xmlHashEntry));
274
0
  table->table[key].next = NULL;
275
0
    }
276
277
0
    for (i = 0; i < oldsize; i++) {
278
0
  iter = oldtable[i].next;
279
0
  while (iter) {
280
0
      next = iter->next;
281
282
      /*
283
       * put back the entry in the new table
284
       */
285
286
0
      key = xmlHashComputeKey(table, iter->name, iter->name2,
287
0
                        iter->name3);
288
0
      if (table->table[key].valid == 0) {
289
0
    memcpy(&(table->table[key]), iter, sizeof(xmlHashEntry));
290
0
    table->table[key].next = NULL;
291
0
    xmlFree(iter);
292
0
      } else {
293
0
    iter->next = table->table[key].next;
294
0
    table->table[key].next = iter;
295
0
      }
296
297
#ifdef DEBUG_GROW
298
      nbElem++;
299
#endif
300
301
0
      iter = next;
302
0
  }
303
0
    }
304
305
0
    xmlFree(oldtable);
306
307
#ifdef DEBUG_GROW
308
    xmlGenericError(xmlGenericErrorContext,
309
      "xmlHashGrow : from %d to %d, %d elems\n", oldsize, size, nbElem);
310
#endif
311
312
0
    return(0);
313
0
}
314
315
/**
316
 * xmlHashFree:
317
 * @table: the hash table
318
 * @f:  the deallocator function for items in the hash
319
 *
320
 * Free the hash @table and its contents. The userdata is
321
 * deallocated with @f if provided.
322
 */
323
void
324
51
xmlHashFree(xmlHashTablePtr table, xmlHashDeallocator f) {
325
51
    int i;
326
51
    xmlHashEntryPtr iter;
327
51
    xmlHashEntryPtr next;
328
51
    int inside_table = 0;
329
51
    int nbElems;
330
331
51
    if (table == NULL)
332
32
  return;
333
19
    if (table->table) {
334
19
  nbElems = table->nbElems;
335
917k
  for(i = 0; (i < table->size) && (nbElems > 0); i++) {
336
917k
      iter = &(table->table[i]);
337
917k
      if (iter->valid == 0)
338
917k
    continue;
339
566
      inside_table = 1;
340
1.14k
      while (iter) {
341
582
    next = iter->next;
342
582
    if ((f != NULL) && (iter->payload != NULL))
343
134
        f(iter->payload, iter->name);
344
582
    if (table->dict == NULL) {
345
582
        if (iter->name)
346
582
      xmlFree(iter->name);
347
582
        if (iter->name2)
348
16
      xmlFree(iter->name2);
349
582
        if (iter->name3)
350
0
      xmlFree(iter->name3);
351
582
    }
352
582
    iter->payload = NULL;
353
582
    if (!inside_table)
354
16
        xmlFree(iter);
355
582
    nbElems--;
356
582
    inside_table = 0;
357
582
    iter = next;
358
582
      }
359
566
  }
360
19
  xmlFree(table->table);
361
19
    }
362
19
    if (table->dict)
363
0
        xmlDictFree(table->dict);
364
19
    xmlFree(table);
365
19
}
366
367
/**
368
 * xmlHashDefaultDeallocator:
369
 * @entry: the hash table entry
370
 * @name: the entry's name
371
 *
372
 * Free a hash table entry with xmlFree.
373
 */
374
void
375
134
xmlHashDefaultDeallocator(void *entry, const xmlChar *name ATTRIBUTE_UNUSED) {
376
134
    xmlFree(entry);
377
134
}
378
379
/**
380
 * xmlHashAddEntry:
381
 * @table: the hash table
382
 * @name: the name of the userdata
383
 * @userdata: a pointer to the userdata
384
 *
385
 * Add the @userdata to the hash @table. This can later be retrieved
386
 * by using the @name. Duplicate names generate errors.
387
 *
388
 * Returns 0 the addition succeeded and -1 in case of error.
389
 */
390
int
391
140
xmlHashAddEntry(xmlHashTablePtr table, const xmlChar *name, void *userdata) {
392
140
    return(xmlHashAddEntry3(table, name, NULL, NULL, userdata));
393
140
}
394
395
/**
396
 * xmlHashAddEntry2:
397
 * @table: the hash table
398
 * @name: the name of the userdata
399
 * @name2: a second name of the userdata
400
 * @userdata: a pointer to the userdata
401
 *
402
 * Add the @userdata to the hash @table. This can later be retrieved
403
 * by using the (@name, @name2) tuple. Duplicate tuples generate errors.
404
 *
405
 * Returns 0 the addition succeeded and -1 in case of error.
406
 */
407
int
408
xmlHashAddEntry2(xmlHashTablePtr table, const xmlChar *name,
409
626
          const xmlChar *name2, void *userdata) {
410
626
    return(xmlHashAddEntry3(table, name, name2, NULL, userdata));
411
626
}
412
413
/**
414
 * xmlHashUpdateEntry:
415
 * @table: the hash table
416
 * @name: the name of the userdata
417
 * @userdata: a pointer to the userdata
418
 * @f: the deallocator function for replaced item (if any)
419
 *
420
 * Add the @userdata to the hash @table. This can later be retrieved
421
 * by using the @name. Existing entry for this @name will be removed
422
 * and freed with @f if found.
423
 *
424
 * Returns 0 the addition succeeded and -1 in case of error.
425
 */
426
int
427
xmlHashUpdateEntry(xmlHashTablePtr table, const xmlChar *name,
428
22
             void *userdata, xmlHashDeallocator f) {
429
22
    return(xmlHashUpdateEntry3(table, name, NULL, NULL, userdata, f));
430
22
}
431
432
/**
433
 * xmlHashUpdateEntry2:
434
 * @table: the hash table
435
 * @name: the name of the userdata
436
 * @name2: a second name of the userdata
437
 * @userdata: a pointer to the userdata
438
 * @f: the deallocator function for replaced item (if any)
439
 *
440
 * Add the @userdata to the hash @table. This can later be retrieved
441
 * by using the (@name, @name2) tuple. Existing entry for this tuple will
442
 * be removed and freed with @f if found.
443
 *
444
 * Returns 0 the addition succeeded and -1 in case of error.
445
 */
446
int
447
xmlHashUpdateEntry2(xmlHashTablePtr table, const xmlChar *name,
448
             const xmlChar *name2, void *userdata,
449
172
       xmlHashDeallocator f) {
450
172
    return(xmlHashUpdateEntry3(table, name, name2, NULL, userdata, f));
451
172
}
452
453
/**
454
 * xmlHashLookup:
455
 * @table: the hash table
456
 * @name: the name of the userdata
457
 *
458
 * Find the userdata specified by the @name.
459
 *
460
 * Returns the pointer to the userdata
461
 */
462
void *
463
942k
xmlHashLookup(xmlHashTablePtr table, const xmlChar *name) {
464
942k
    return(xmlHashLookup3(table, name, NULL, NULL));
465
942k
}
466
467
/**
468
 * xmlHashLookup2:
469
 * @table: the hash table
470
 * @name: the name of the userdata
471
 * @name2: a second name of the userdata
472
 *
473
 * Find the userdata specified by the (@name, @name2) tuple.
474
 *
475
 * Returns the pointer to the userdata
476
 */
477
void *
478
xmlHashLookup2(xmlHashTablePtr table, const xmlChar *name,
479
310
        const xmlChar *name2) {
480
310
    return(xmlHashLookup3(table, name, name2, NULL));
481
310
}
482
483
/**
484
 * xmlHashQLookup:
485
 * @table: the hash table
486
 * @prefix: the prefix of the userdata
487
 * @name: the name of the userdata
488
 *
489
 * Find the userdata specified by the QName @prefix:@name/@name.
490
 *
491
 * Returns the pointer to the userdata
492
 */
493
void *
494
xmlHashQLookup(xmlHashTablePtr table, const xmlChar *prefix,
495
0
               const xmlChar *name) {
496
0
    return(xmlHashQLookup3(table, prefix, name, NULL, NULL, NULL, NULL));
497
0
}
498
499
/**
500
 * xmlHashQLookup2:
501
 * @table: the hash table
502
 * @prefix: the prefix of the userdata
503
 * @name: the name of the userdata
504
 * @prefix2: the second prefix of the userdata
505
 * @name2: a second name of the userdata
506
 *
507
 * Find the userdata specified by the QNames tuple
508
 *
509
 * Returns the pointer to the userdata
510
 */
511
void *
512
xmlHashQLookup2(xmlHashTablePtr table, const xmlChar *prefix,
513
                const xmlChar *name, const xmlChar *prefix2,
514
0
          const xmlChar *name2) {
515
0
    return(xmlHashQLookup3(table, prefix, name, prefix2, name2, NULL, NULL));
516
0
}
517
518
/**
519
 * xmlHashAddEntry3:
520
 * @table: the hash table
521
 * @name: the name of the userdata
522
 * @name2: a second name of the userdata
523
 * @name3: a third name of the userdata
524
 * @userdata: a pointer to the userdata
525
 *
526
 * Add the @userdata to the hash @table. This can later be retrieved
527
 * by using the tuple (@name, @name2, @name3). Duplicate entries generate
528
 * errors.
529
 *
530
 * Returns 0 the addition succeeded and -1 in case of error.
531
 */
532
int
533
xmlHashAddEntry3(xmlHashTablePtr table, const xmlChar *name,
534
           const xmlChar *name2, const xmlChar *name3,
535
766
     void *userdata) {
536
766
    unsigned long key, len = 0;
537
766
    xmlHashEntryPtr entry;
538
766
    xmlHashEntryPtr insert;
539
540
766
    if ((table == NULL) || (name == NULL))
541
0
  return(-1);
542
543
    /*
544
     * If using a dict internalize if needed
545
     */
546
766
    if (table->dict) {
547
0
        if (!xmlDictOwns(table->dict, name)) {
548
0
      name = xmlDictLookup(table->dict, name, -1);
549
0
      if (name == NULL)
550
0
          return(-1);
551
0
  }
552
0
        if ((name2 != NULL) && (!xmlDictOwns(table->dict, name2))) {
553
0
      name2 = xmlDictLookup(table->dict, name2, -1);
554
0
      if (name2 == NULL)
555
0
          return(-1);
556
0
  }
557
0
        if ((name3 != NULL) && (!xmlDictOwns(table->dict, name3))) {
558
0
      name3 = xmlDictLookup(table->dict, name3, -1);
559
0
      if (name3 == NULL)
560
0
          return(-1);
561
0
  }
562
0
    }
563
564
    /*
565
     * Check for duplicate and insertion location.
566
     */
567
766
    key = xmlHashComputeKey(table, name, name2, name3);
568
766
    if (table->table[key].valid == 0) {
569
718
  insert = NULL;
570
718
    } else {
571
48
        if (table->dict) {
572
0
      for (insert = &(table->table[key]); insert->next != NULL;
573
0
     insert = insert->next) {
574
0
    if ((insert->name == name) &&
575
0
        (insert->name2 == name2) &&
576
0
        (insert->name3 == name3))
577
0
        return(-1);
578
0
    len++;
579
0
      }
580
0
      if ((insert->name == name) &&
581
0
    (insert->name2 == name2) &&
582
0
    (insert->name3 == name3))
583
0
    return(-1);
584
48
  } else {
585
72
      for (insert = &(table->table[key]); insert->next != NULL;
586
48
     insert = insert->next) {
587
24
    if ((xmlStrEqual(insert->name, name)) &&
588
24
        (xmlStrEqual(insert->name2, name2)) &&
589
24
        (xmlStrEqual(insert->name3, name3)))
590
0
        return(-1);
591
24
    len++;
592
24
      }
593
48
      if ((xmlStrEqual(insert->name, name)) &&
594
48
    (xmlStrEqual(insert->name2, name2)) &&
595
48
    (xmlStrEqual(insert->name3, name3)))
596
0
    return(-1);
597
48
  }
598
48
    }
599
600
766
    if (insert == NULL) {
601
718
  entry = &(table->table[key]);
602
718
    } else {
603
48
  entry = xmlMalloc(sizeof(xmlHashEntry));
604
48
  if (entry == NULL)
605
0
       return(-1);
606
48
    }
607
608
766
    if (table->dict != NULL) {
609
0
        entry->name = (xmlChar *) name;
610
0
        entry->name2 = (xmlChar *) name2;
611
0
        entry->name3 = (xmlChar *) name3;
612
766
    } else {
613
766
  entry->name = xmlStrdup(name);
614
766
  entry->name2 = xmlStrdup(name2);
615
766
  entry->name3 = xmlStrdup(name3);
616
766
    }
617
766
    entry->payload = userdata;
618
766
    entry->next = NULL;
619
766
    entry->valid = 1;
620
621
622
766
    if (insert != NULL)
623
48
  insert->next = entry;
624
625
766
    table->nbElems++;
626
627
766
    if (len > MAX_HASH_LEN)
628
0
  xmlHashGrow(table, MAX_HASH_LEN * table->size);
629
630
766
    return(0);
631
766
}
632
633
/**
634
 * xmlHashUpdateEntry3:
635
 * @table: the hash table
636
 * @name: the name of the userdata
637
 * @name2: a second name of the userdata
638
 * @name3: a third name of the userdata
639
 * @userdata: a pointer to the userdata
640
 * @f: the deallocator function for replaced item (if any)
641
 *
642
 * Add the @userdata to the hash @table. This can later be retrieved
643
 * by using the tuple (@name, @name2, @name3). Existing entry for this tuple
644
 * will be removed and freed with @f if found.
645
 *
646
 * Returns 0 the addition succeeded and -1 in case of error.
647
 */
648
int
649
xmlHashUpdateEntry3(xmlHashTablePtr table, const xmlChar *name,
650
             const xmlChar *name2, const xmlChar *name3,
651
194
       void *userdata, xmlHashDeallocator f) {
652
194
    unsigned long key;
653
194
    xmlHashEntryPtr entry;
654
194
    xmlHashEntryPtr insert;
655
656
194
    if ((table == NULL) || name == NULL)
657
0
  return(-1);
658
659
    /*
660
     * If using a dict internalize if needed
661
     */
662
194
    if (table->dict) {
663
0
        if (!xmlDictOwns(table->dict, name)) {
664
0
      name = xmlDictLookup(table->dict, name, -1);
665
0
      if (name == NULL)
666
0
          return(-1);
667
0
  }
668
0
        if ((name2 != NULL) && (!xmlDictOwns(table->dict, name2))) {
669
0
      name2 = xmlDictLookup(table->dict, name2, -1);
670
0
      if (name2 == NULL)
671
0
          return(-1);
672
0
  }
673
0
        if ((name3 != NULL) && (!xmlDictOwns(table->dict, name3))) {
674
0
      name3 = xmlDictLookup(table->dict, name3, -1);
675
0
      if (name3 == NULL)
676
0
          return(-1);
677
0
  }
678
0
    }
679
680
    /*
681
     * Check for duplicate and insertion location.
682
     */
683
194
    key = xmlHashComputeKey(table, name, name2, name3);
684
194
    if (table->table[key].valid == 0) {
685
62
  insert = NULL;
686
132
    } else {
687
132
        if (table ->dict) {
688
0
      for (insert = &(table->table[key]); insert->next != NULL;
689
0
     insert = insert->next) {
690
0
    if ((insert->name == name) &&
691
0
        (insert->name2 == name2) &&
692
0
        (insert->name3 == name3)) {
693
0
        if (f)
694
0
      f(insert->payload, insert->name);
695
0
        insert->payload = userdata;
696
0
        return(0);
697
0
    }
698
0
      }
699
0
      if ((insert->name == name) &&
700
0
    (insert->name2 == name2) &&
701
0
    (insert->name3 == name3)) {
702
0
    if (f)
703
0
        f(insert->payload, insert->name);
704
0
    insert->payload = userdata;
705
0
    return(0);
706
0
      }
707
132
  } else {
708
562
      for (insert = &(table->table[key]); insert->next != NULL;
709
430
     insert = insert->next) {
710
430
    if ((xmlStrEqual(insert->name, name)) &&
711
430
        (xmlStrEqual(insert->name2, name2)) &&
712
430
        (xmlStrEqual(insert->name3, name3))) {
713
0
        if (f)
714
0
      f(insert->payload, insert->name);
715
0
        insert->payload = userdata;
716
0
        return(0);
717
0
    }
718
430
      }
719
132
      if ((xmlStrEqual(insert->name, name)) &&
720
132
    (xmlStrEqual(insert->name2, name2)) &&
721
132
    (xmlStrEqual(insert->name3, name3))) {
722
0
    if (f)
723
0
        f(insert->payload, insert->name);
724
0
    insert->payload = userdata;
725
0
    return(0);
726
0
      }
727
132
  }
728
132
    }
729
730
194
    if (insert == NULL) {
731
62
  entry =  &(table->table[key]);
732
132
    } else {
733
132
  entry = xmlMalloc(sizeof(xmlHashEntry));
734
132
  if (entry == NULL)
735
0
       return(-1);
736
132
    }
737
738
194
    if (table->dict != NULL) {
739
0
        entry->name = (xmlChar *) name;
740
0
        entry->name2 = (xmlChar *) name2;
741
0
        entry->name3 = (xmlChar *) name3;
742
194
    } else {
743
194
  entry->name = xmlStrdup(name);
744
194
  entry->name2 = xmlStrdup(name2);
745
194
  entry->name3 = xmlStrdup(name3);
746
194
    }
747
194
    entry->payload = userdata;
748
194
    entry->next = NULL;
749
194
    entry->valid = 1;
750
194
    table->nbElems++;
751
752
753
194
    if (insert != NULL) {
754
132
  insert->next = entry;
755
132
    }
756
194
    return(0);
757
194
}
758
759
/**
760
 * xmlHashLookup3:
761
 * @table: the hash table
762
 * @name: the name of the userdata
763
 * @name2: a second name of the userdata
764
 * @name3: a third name of the userdata
765
 *
766
 * Find the userdata specified by the (@name, @name2, @name3) tuple.
767
 *
768
 * Returns the a pointer to the userdata
769
 */
770
void *
771
xmlHashLookup3(xmlHashTablePtr table, const xmlChar *name,
772
942k
         const xmlChar *name2, const xmlChar *name3) {
773
942k
    unsigned long key;
774
942k
    xmlHashEntryPtr entry;
775
776
942k
    if (table == NULL)
777
0
  return(NULL);
778
942k
    if (name == NULL)
779
0
  return(NULL);
780
942k
    key = xmlHashComputeKey(table, name, name2, name3);
781
942k
    if (table->table[key].valid == 0)
782
260
  return(NULL);
783
942k
    if (table->dict) {
784
0
  for (entry = &(table->table[key]); entry != NULL; entry = entry->next) {
785
0
      if ((entry->name == name) &&
786
0
    (entry->name2 == name2) &&
787
0
    (entry->name3 == name3))
788
0
    return(entry->payload);
789
0
  }
790
0
    }
791
942k
    for (entry = &(table->table[key]); entry != NULL; entry = entry->next) {
792
942k
  if ((xmlStrEqual(entry->name, name)) &&
793
942k
      (xmlStrEqual(entry->name2, name2)) &&
794
942k
      (xmlStrEqual(entry->name3, name3)))
795
942k
      return(entry->payload);
796
942k
    }
797
7
    return(NULL);
798
942k
}
799
800
/**
801
 * xmlHashQLookup3:
802
 * @table: the hash table
803
 * @prefix: the prefix of the userdata
804
 * @name: the name of the userdata
805
 * @prefix2: the second prefix of the userdata
806
 * @name2: a second name of the userdata
807
 * @prefix3: the third prefix of the userdata
808
 * @name3: a third name of the userdata
809
 *
810
 * Find the userdata specified by the (@name, @name2, @name3) tuple.
811
 *
812
 * Returns the a pointer to the userdata
813
 */
814
void *
815
xmlHashQLookup3(xmlHashTablePtr table,
816
                const xmlChar *prefix, const xmlChar *name,
817
    const xmlChar *prefix2, const xmlChar *name2,
818
0
    const xmlChar *prefix3, const xmlChar *name3) {
819
0
    unsigned long key;
820
0
    xmlHashEntryPtr entry;
821
822
0
    if (table == NULL)
823
0
  return(NULL);
824
0
    if (name == NULL)
825
0
  return(NULL);
826
0
    key = xmlHashComputeQKey(table, prefix, name, prefix2,
827
0
                             name2, prefix3, name3);
828
0
    if (table->table[key].valid == 0)
829
0
  return(NULL);
830
0
    for (entry = &(table->table[key]); entry != NULL; entry = entry->next) {
831
0
  if ((xmlStrQEqual(prefix, name, entry->name)) &&
832
0
      (xmlStrQEqual(prefix2, name2, entry->name2)) &&
833
0
      (xmlStrQEqual(prefix3, name3, entry->name3)))
834
0
      return(entry->payload);
835
0
    }
836
0
    return(NULL);
837
0
}
838
839
typedef struct {
840
    xmlHashScanner hashscanner;
841
    void *data;
842
} stubData;
843
844
static void
845
stubHashScannerFull (void *payload, void *data, const xmlChar *name,
846
                     const xmlChar *name2 ATTRIBUTE_UNUSED,
847
0
         const xmlChar *name3 ATTRIBUTE_UNUSED) {
848
0
    stubData *stubdata = (stubData *) data;
849
0
    stubdata->hashscanner (payload, stubdata->data, (xmlChar *) name);
850
0
}
851
852
/**
853
 * xmlHashScan:
854
 * @table: the hash table
855
 * @f:  the scanner function for items in the hash
856
 * @data:  extra data passed to f
857
 *
858
 * Scan the hash @table and applied @f to each value.
859
 */
860
void
861
0
xmlHashScan(xmlHashTablePtr table, xmlHashScanner f, void *data) {
862
0
    stubData stubdata;
863
0
    stubdata.data = data;
864
0
    stubdata.hashscanner = f;
865
0
    xmlHashScanFull (table, stubHashScannerFull, &stubdata);
866
0
}
867
868
/**
869
 * xmlHashScanFull:
870
 * @table: the hash table
871
 * @f:  the scanner function for items in the hash
872
 * @data:  extra data passed to f
873
 *
874
 * Scan the hash @table and applied @f to each value.
875
 */
876
void
877
0
xmlHashScanFull(xmlHashTablePtr table, xmlHashScannerFull f, void *data) {
878
0
    int i, nb;
879
0
    xmlHashEntryPtr iter;
880
0
    xmlHashEntryPtr next;
881
882
0
    if (table == NULL)
883
0
  return;
884
0
    if (f == NULL)
885
0
  return;
886
887
0
    if (table->table) {
888
0
  for(i = 0; i < table->size; i++) {
889
0
      if (table->table[i].valid == 0)
890
0
    continue;
891
0
      iter = &(table->table[i]);
892
0
      while (iter) {
893
0
    next = iter->next;
894
0
                nb = table->nbElems;
895
0
    if ((f != NULL) && (iter->payload != NULL))
896
0
        f(iter->payload, data, iter->name,
897
0
          iter->name2, iter->name3);
898
0
                if (nb != table->nbElems) {
899
                    /* table was modified by the callback, be careful */
900
0
                    if (iter == &(table->table[i])) {
901
0
                        if (table->table[i].valid == 0)
902
0
                            iter = NULL;
903
0
                        if (table->table[i].next != next)
904
0
          iter = &(table->table[i]);
905
0
                    } else
906
0
            iter = next;
907
0
                } else
908
0
        iter = next;
909
0
      }
910
0
  }
911
0
    }
912
0
}
913
914
/**
915
 * xmlHashScan3:
916
 * @table: the hash table
917
 * @name: the name of the userdata or NULL
918
 * @name2: a second name of the userdata or NULL
919
 * @name3: a third name of the userdata or NULL
920
 * @f:  the scanner function for items in the hash
921
 * @data:  extra data passed to f
922
 *
923
 * Scan the hash @table and applied @f to each value matching
924
 * (@name, @name2, @name3) tuple. If one of the names is null,
925
 * the comparison is considered to match.
926
 */
927
void
928
xmlHashScan3(xmlHashTablePtr table, const xmlChar *name,
929
       const xmlChar *name2, const xmlChar *name3,
930
0
       xmlHashScanner f, void *data) {
931
0
    stubData stubdata;
932
0
    stubdata.data = data;
933
0
    stubdata.hashscanner = f;
934
0
    xmlHashScanFull3(table, name, name2, name3, stubHashScannerFull,
935
0
                     &stubdata);
936
0
}
937
938
/**
939
 * xmlHashScanFull3:
940
 * @table: the hash table
941
 * @name: the name of the userdata or NULL
942
 * @name2: a second name of the userdata or NULL
943
 * @name3: a third name of the userdata or NULL
944
 * @f:  the scanner function for items in the hash
945
 * @data:  extra data passed to f
946
 *
947
 * Scan the hash @table and applied @f to each value matching
948
 * (@name, @name2, @name3) tuple. If one of the names is null,
949
 * the comparison is considered to match.
950
 */
951
void
952
xmlHashScanFull3(xmlHashTablePtr table, const xmlChar *name,
953
     const xmlChar *name2, const xmlChar *name3,
954
0
     xmlHashScannerFull f, void *data) {
955
0
    int i;
956
0
    xmlHashEntryPtr iter;
957
0
    xmlHashEntryPtr next;
958
959
0
    if (table == NULL)
960
0
  return;
961
0
    if (f == NULL)
962
0
  return;
963
964
0
    if (table->table) {
965
0
  for(i = 0; i < table->size; i++) {
966
0
      if (table->table[i].valid == 0)
967
0
    continue;
968
0
      iter = &(table->table[i]);
969
0
      while (iter) {
970
0
    next = iter->next;
971
0
    if (((name == NULL) || (xmlStrEqual(name, iter->name))) &&
972
0
        ((name2 == NULL) || (xmlStrEqual(name2, iter->name2))) &&
973
0
        ((name3 == NULL) || (xmlStrEqual(name3, iter->name3))) &&
974
0
        (iter->payload != NULL)) {
975
0
        f(iter->payload, data, iter->name,
976
0
          iter->name2, iter->name3);
977
0
    }
978
0
    iter = next;
979
0
      }
980
0
  }
981
0
    }
982
0
}
983
984
/**
985
 * xmlHashCopy:
986
 * @table: the hash table
987
 * @f:  the copier function for items in the hash
988
 *
989
 * Scan the hash @table and applied @f to each value.
990
 *
991
 * Returns the new table or NULL in case of error.
992
 */
993
xmlHashTablePtr
994
0
xmlHashCopy(xmlHashTablePtr table, xmlHashCopier f) {
995
0
    int i;
996
0
    xmlHashEntryPtr iter;
997
0
    xmlHashEntryPtr next;
998
0
    xmlHashTablePtr ret;
999
1000
0
    if (table == NULL)
1001
0
  return(NULL);
1002
0
    if (f == NULL)
1003
0
  return(NULL);
1004
1005
0
    ret = xmlHashCreate(table->size);
1006
0
    if (ret == NULL)
1007
0
        return(NULL);
1008
1009
0
    if (table->table) {
1010
0
  for(i = 0; i < table->size; i++) {
1011
0
      if (table->table[i].valid == 0)
1012
0
    continue;
1013
0
      iter = &(table->table[i]);
1014
0
      while (iter) {
1015
0
    next = iter->next;
1016
0
    xmlHashAddEntry3(ret, iter->name, iter->name2,
1017
0
               iter->name3, f(iter->payload, iter->name));
1018
0
    iter = next;
1019
0
      }
1020
0
  }
1021
0
    }
1022
0
    ret->nbElems = table->nbElems;
1023
0
    return(ret);
1024
0
}
1025
1026
/**
1027
 * xmlHashSize:
1028
 * @table: the hash table
1029
 *
1030
 * Query the number of elements installed in the hash @table.
1031
 *
1032
 * Returns the number of elements in the hash table or
1033
 * -1 in case of error
1034
 */
1035
int
1036
113
xmlHashSize(xmlHashTablePtr table) {
1037
113
    if (table == NULL)
1038
113
  return(-1);
1039
0
    return(table->nbElems);
1040
113
}
1041
1042
/**
1043
 * xmlHashRemoveEntry:
1044
 * @table: the hash table
1045
 * @name: the name of the userdata
1046
 * @f: the deallocator function for removed item (if any)
1047
 *
1048
 * Find the userdata specified by the @name and remove
1049
 * it from the hash @table. Existing userdata for this tuple will be removed
1050
 * and freed with @f.
1051
 *
1052
 * Returns 0 if the removal succeeded and -1 in case of error or not found.
1053
 */
1054
int xmlHashRemoveEntry(xmlHashTablePtr table, const xmlChar *name,
1055
0
           xmlHashDeallocator f) {
1056
0
    return(xmlHashRemoveEntry3(table, name, NULL, NULL, f));
1057
0
}
1058
1059
/**
1060
 * xmlHashRemoveEntry2:
1061
 * @table: the hash table
1062
 * @name: the name of the userdata
1063
 * @name2: a second name of the userdata
1064
 * @f: the deallocator function for removed item (if any)
1065
 *
1066
 * Find the userdata specified by the (@name, @name2) tuple and remove
1067
 * it from the hash @table. Existing userdata for this tuple will be removed
1068
 * and freed with @f.
1069
 *
1070
 * Returns 0 if the removal succeeded and -1 in case of error or not found.
1071
 */
1072
int
1073
xmlHashRemoveEntry2(xmlHashTablePtr table, const xmlChar *name,
1074
0
      const xmlChar *name2, xmlHashDeallocator f) {
1075
0
    return(xmlHashRemoveEntry3(table, name, name2, NULL, f));
1076
0
}
1077
1078
/**
1079
 * xmlHashRemoveEntry3:
1080
 * @table: the hash table
1081
 * @name: the name of the userdata
1082
 * @name2: a second name of the userdata
1083
 * @name3: a third name of the userdata
1084
 * @f: the deallocator function for removed item (if any)
1085
 *
1086
 * Find the userdata specified by the (@name, @name2, @name3) tuple and remove
1087
 * it from the hash @table. Existing userdata for this tuple will be removed
1088
 * and freed with @f.
1089
 *
1090
 * Returns 0 if the removal succeeded and -1 in case of error or not found.
1091
 */
1092
int
1093
xmlHashRemoveEntry3(xmlHashTablePtr table, const xmlChar *name,
1094
0
    const xmlChar *name2, const xmlChar *name3, xmlHashDeallocator f) {
1095
0
    unsigned long key;
1096
0
    xmlHashEntryPtr entry;
1097
0
    xmlHashEntryPtr prev = NULL;
1098
1099
0
    if (table == NULL || name == NULL)
1100
0
        return(-1);
1101
1102
0
    key = xmlHashComputeKey(table, name, name2, name3);
1103
0
    if (table->table[key].valid == 0) {
1104
0
        return(-1);
1105
0
    } else {
1106
0
        for (entry = &(table->table[key]); entry != NULL; entry = entry->next) {
1107
0
            if (xmlStrEqual(entry->name, name) &&
1108
0
                    xmlStrEqual(entry->name2, name2) &&
1109
0
                    xmlStrEqual(entry->name3, name3)) {
1110
0
                if ((f != NULL) && (entry->payload != NULL))
1111
0
                    f(entry->payload, entry->name);
1112
0
                entry->payload = NULL;
1113
0
    if (table->dict == NULL) {
1114
0
        if(entry->name)
1115
0
      xmlFree(entry->name);
1116
0
        if(entry->name2)
1117
0
      xmlFree(entry->name2);
1118
0
        if(entry->name3)
1119
0
      xmlFree(entry->name3);
1120
0
    }
1121
0
                if(prev) {
1122
0
                    prev->next = entry->next;
1123
0
        xmlFree(entry);
1124
0
    } else {
1125
0
        if (entry->next == NULL) {
1126
0
      entry->valid = 0;
1127
0
        } else {
1128
0
      entry = entry->next;
1129
0
      memcpy(&(table->table[key]), entry, sizeof(xmlHashEntry));
1130
0
      xmlFree(entry);
1131
0
        }
1132
0
    }
1133
0
                table->nbElems--;
1134
0
                return(0);
1135
0
            }
1136
0
            prev = entry;
1137
0
        }
1138
0
        return(-1);
1139
0
    }
1140
0
}
1141