Coverage Report

Created: 2026-08-12 06:14

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/json-c/linkhash.c
Line
Count
Source
1
/*
2
 * $Id: linkhash.c,v 1.4 2006/01/26 02:16:28 mclark Exp $
3
 *
4
 * Copyright (c) 2004, 2005 Metaparadigm Pte. Ltd.
5
 * Michael Clark <michael@metaparadigm.com>
6
 * Copyright (c) 2009 Hewlett-Packard Development Company, L.P.
7
 *
8
 * This library is free software; you can redistribute it and/or modify
9
 * it under the terms of the MIT license. See COPYING for details.
10
 *
11
 */
12
13
#include "config.h"
14
15
#include <assert.h>
16
#include <limits.h>
17
#include <stdarg.h>
18
#include <stddef.h>
19
#include <stdio.h>
20
#include <stdlib.h>
21
#include <string.h>
22
23
#ifdef HAVE_ENDIAN_H
24
#include <endian.h> /* attempt to define endianness */
25
#endif
26
27
#if defined(_MSC_VER) || defined(__MINGW32__)
28
#ifndef WIN32_LEAN_AND_MEAN
29
#define WIN32_LEAN_AND_MEAN
30
#endif
31
#include <windows.h> /* Get InterlockedCompareExchange */
32
#endif
33
34
#include "linkhash.h"
35
#include "random_seed.h"
36
37
/* hash functions */
38
static unsigned long lh_char_hash(const void *k);
39
static unsigned long lh_perllike_str_hash(const void *k);
40
static lh_hash_fn *char_hash_fn = lh_char_hash;
41
42
/* comparison functions */
43
int lh_char_equal(const void *k1, const void *k2);
44
int lh_ptr_equal(const void *k1, const void *k2);
45
46
int json_global_set_string_hash(const int h)
47
0
{
48
0
  switch (h)
49
0
  {
50
0
  case JSON_C_STR_HASH_DFLT: char_hash_fn = lh_char_hash; break;
51
0
  case JSON_C_STR_HASH_PERLLIKE: char_hash_fn = lh_perllike_str_hash; break;
52
0
  default: return -1;
53
0
  }
54
0
  return 0;
55
0
}
56
57
static unsigned long lh_ptr_hash(const void *k)
58
0
{
59
  /* CAW: refactored to be 64bit nice */
60
0
  return (unsigned long)((((ptrdiff_t)k * LH_PRIME) >> 4) & ULONG_MAX);
61
0
}
62
63
int lh_ptr_equal(const void *k1, const void *k2)
64
0
{
65
0
  return (k1 == k2);
66
0
}
67
68
/*
69
 * hashlittle from lookup3.c, by Bob Jenkins, May 2006, Public Domain.
70
 * https://burtleburtle.net/bob/c/lookup3.c
71
 * minor modifications to make functions static so no symbols are exported
72
 * minor modifications to compile with -Werror
73
 */
74
75
/*
76
-------------------------------------------------------------------------------
77
lookup3.c, by Bob Jenkins, May 2006, Public Domain.
78
79
These are functions for producing 32-bit hashes for hash table lookup.
80
hashword(), hashlittle(), hashlittle2(), hashbig(), mix(), and final()
81
are externally useful functions.  Routines to test the hash are included
82
if SELF_TEST is defined.  You can use this free for any purpose.  It's in
83
the public domain.  It has no warranty.
84
85
You probably want to use hashlittle().  hashlittle() and hashbig()
86
hash byte arrays.  hashlittle() is faster than hashbig() on
87
little-endian machines.  Intel and AMD are little-endian machines.
88
On second thought, you probably want hashlittle2(), which is identical to
89
hashlittle() except it returns two 32-bit hashes for the price of one.
90
You could implement hashbig2() if you wanted but I haven't bothered here.
91
92
If you want to find a hash of, say, exactly 7 integers, do
93
  a = i1;  b = i2;  c = i3;
94
  mix(a,b,c);
95
  a += i4; b += i5; c += i6;
96
  mix(a,b,c);
97
  a += i7;
98
  final(a,b,c);
99
then use c as the hash value.  If you have a variable length array of
100
4-byte integers to hash, use hashword().  If you have a byte array (like
101
a character string), use hashlittle().  If you have several byte arrays, or
102
a mix of things, see the comments above hashlittle().
103
104
Why is this so big?  I read 12 bytes at a time into 3 4-byte integers,
105
then mix those integers.  This is fast (you can do a lot more thorough
106
mixing with 12*3 instructions on 3 integers than you can with 3 instructions
107
on 1 byte), but shoehorning those bytes into integers efficiently is messy.
108
-------------------------------------------------------------------------------
109
*/
110
111
/*
112
 * My best guess at if you are big-endian or little-endian.  This may
113
 * need adjustment.
114
 */
115
#if (defined(__BYTE_ORDER) && defined(__LITTLE_ENDIAN) && __BYTE_ORDER == __LITTLE_ENDIAN) || \
116
    (defined(i386) || defined(__i386__) || defined(__i486__) || defined(__i586__) ||          \
117
     defined(__i686__) || defined(vax) || defined(MIPSEL))
118
964k
#define HASH_LITTLE_ENDIAN 1
119
#define HASH_BIG_ENDIAN 0
120
#elif (defined(__BYTE_ORDER) && defined(__BIG_ENDIAN) && __BYTE_ORDER == __BIG_ENDIAN) || \
121
    (defined(sparc) || defined(POWERPC) || defined(mc68000) || defined(sel))
122
#define HASH_LITTLE_ENDIAN 0
123
#define HASH_BIG_ENDIAN 1
124
#else
125
#define HASH_LITTLE_ENDIAN 0
126
#define HASH_BIG_ENDIAN 0
127
#endif
128
129
#define hashsize(n) ((uint32_t)1 << (n))
130
#define hashmask(n) (hashsize(n) - 1)
131
2.70M
#define rot(x, k) (((x) << (k)) | ((x) >> (32 - (k))))
132
133
/*
134
-------------------------------------------------------------------------------
135
mix -- mix 3 32-bit values reversibly.
136
137
This is reversible, so any information in (a,b,c) before mix() is
138
still in (a,b,c) after mix().
139
140
If four pairs of (a,b,c) inputs are run through mix(), or through
141
mix() in reverse, there are at least 32 bits of the output that
142
are sometimes the same for one pair and different for another pair.
143
This was tested for:
144
* pairs that differed by one bit, by two bits, in any combination
145
  of top bits of (a,b,c), or in any combination of bottom bits of
146
  (a,b,c).
147
* "differ" is defined as +, -, ^, or ~^.  For + and -, I transformed
148
  the output delta to a Gray code (a^(a>>1)) so a string of 1's (as
149
  is commonly produced by subtraction) look like a single 1-bit
150
  difference.
151
* the base values were pseudorandom, all zero but one bit set, or
152
  all zero plus a counter that starts at zero.
153
154
Some k values for my "a-=c; a^=rot(c,k); c+=b;" arrangement that
155
satisfy this are
156
    4  6  8 16 19  4
157
    9 15  3 18 27 15
158
   14  9  3  7 17  3
159
Well, "9 15 3 18 27 15" didn't quite get 32 bits diffing
160
for "differ" defined as + with a one-bit base and a two-bit delta.  I
161
used https://burtleburtle.net/bob/hash/avalanche.html to choose
162
the operations, constants, and arrangements of the variables.
163
164
This does not achieve avalanche.  There are input bits of (a,b,c)
165
that fail to affect some output bits of (a,b,c), especially of a.  The
166
most thoroughly mixed value is c, but it doesn't really even achieve
167
avalanche in c.
168
169
This allows some parallelism.  Read-after-writes are good at doubling
170
the number of bits affected, so the goal of mixing pulls in the opposite
171
direction as the goal of parallelism.  I did what I could.  Rotates
172
seem to cost as much as shifts on every machine I could lay my hands
173
on, and rotates are much kinder to the top and bottom bits, so I used
174
rotates.
175
-------------------------------------------------------------------------------
176
*/
177
/* clang-format off */
178
35.5k
#define mix(a,b,c) \
179
35.5k
{ \
180
35.5k
  a -= c;  a ^= rot(c, 4);  c += b; \
181
35.5k
  b -= a;  b ^= rot(a, 6);  a += c; \
182
35.5k
  c -= b;  c ^= rot(b, 8);  b += a; \
183
35.5k
  a -= c;  a ^= rot(c,16);  c += b; \
184
35.5k
  b -= a;  b ^= rot(a,19);  a += c; \
185
35.5k
  c -= b;  c ^= rot(b, 4);  b += a; \
186
35.5k
}
187
/* clang-format on */
188
189
/*
190
-------------------------------------------------------------------------------
191
final -- final mixing of 3 32-bit values (a,b,c) into c
192
193
Pairs of (a,b,c) values differing in only a few bits will usually
194
produce values of c that look totally different.  This was tested for
195
* pairs that differed by one bit, by two bits, in any combination
196
  of top bits of (a,b,c), or in any combination of bottom bits of
197
  (a,b,c).
198
* "differ" is defined as +, -, ^, or ~^.  For + and -, I transformed
199
  the output delta to a Gray code (a^(a>>1)) so a string of 1's (as
200
  is commonly produced by subtraction) look like a single 1-bit
201
  difference.
202
* the base values were pseudorandom, all zero but one bit set, or
203
  all zero plus a counter that starts at zero.
204
205
These constants passed:
206
 14 11 25 16 4 14 24
207
 12 14 25 16 4 14 24
208
and these came close:
209
  4  8 15 26 3 22 24
210
 10  8 15 26 3 22 24
211
 11  8 15 26 3 22 24
212
-------------------------------------------------------------------------------
213
*/
214
/* clang-format off */
215
355k
#define final(a,b,c) \
216
355k
{ \
217
355k
  c ^= b; c -= rot(b,14); \
218
355k
  a ^= c; a -= rot(c,11); \
219
355k
  b ^= a; b -= rot(a,25); \
220
355k
  c ^= b; c -= rot(b,16); \
221
355k
  a ^= c; a -= rot(c,4);  \
222
355k
  b ^= a; b -= rot(a,14); \
223
355k
  c ^= b; c -= rot(b,24); \
224
355k
}
225
/* clang-format on */
226
227
/*
228
-------------------------------------------------------------------------------
229
hashlittle() -- hash a variable-length key into a 32-bit value
230
  k       : the key (the unaligned variable-length array of bytes)
231
  length  : the length of the key, counting by bytes
232
  initval : can be any 4-byte value
233
Returns a 32-bit value.  Every bit of the key affects every bit of
234
the return value.  Two keys differing by one or two bits will have
235
totally different hash values.
236
237
The best hash table sizes are powers of 2.  There is no need to do
238
mod a prime (mod is sooo slow!).  If you need less than 32 bits,
239
use a bitmask.  For example, if you need only 10 bits, do
240
  h = (h & hashmask(10));
241
In which case, the hash table should have hashsize(10) elements.
242
243
If you are hashing n strings (uint8_t **)k, do it like this:
244
  for (i=0, h=0; i<n; ++i) h = hashlittle( k[i], len[i], h);
245
246
By Bob Jenkins, 2006.  bob_jenkins@burtleburtle.net.  You may use this
247
code any way you wish, private, educational, or commercial.  It's free.
248
249
Use for hash table lookup, or anything where one collision in 2^^32 is
250
acceptable.  Do NOT use for cryptographic purposes.
251
-------------------------------------------------------------------------------
252
*/
253
254
/* clang-format off */
255
static uint32_t hashlittle(const void *key, size_t length, uint32_t initval)
256
356k
{
257
356k
  uint32_t a,b,c; /* internal state */
258
356k
  union
259
356k
  {
260
356k
    const void *ptr;
261
356k
    size_t i;
262
356k
  } u; /* needed for Mac Powerbook G4 */
263
264
  /* Set up the internal state */
265
356k
  a = b = c = 0xdeadbeef + ((uint32_t)length) + initval;
266
267
356k
  u.ptr = key;
268
356k
  if (HASH_LITTLE_ENDIAN && ((u.i & 0x3) == 0)) {
269
230k
    const uint32_t *k = (const uint32_t *)key; /* read 32-bit chunks */
270
271
    /*------ all but last block: aligned reads and affect 32 bits of (a,b,c) */
272
255k
    while (length > 12)
273
25.1k
    {
274
25.1k
      a += k[0];
275
25.1k
      b += k[1];
276
25.1k
      c += k[2];
277
25.1k
      mix(a,b,c);
278
25.1k
      length -= 12;
279
25.1k
      k += 3;
280
25.1k
    }
281
282
    /*----------------------------- handle the last (probably partial) block */
283
    /*
284
     * "k[2]&0xffffff" actually reads beyond the end of the string, but
285
     * then masks off the part it's not allowed to read.  Because the
286
     * string is aligned, the masked-off tail is in the same word as the
287
     * rest of the string.  Every machine with memory protection I've seen
288
     * does it on word boundaries, so is OK with this.  But VALGRIND will
289
     * still catch it and complain.  The masking trick does make the hash
290
     * noticeably faster for short strings (like English words).
291
     * AddressSanitizer is similarly picky about overrunning
292
     * the buffer. (https://clang.llvm.org/docs/AddressSanitizer.html)
293
     */
294
#ifdef VALGRIND
295
#define PRECISE_MEMORY_ACCESS 1
296
#elif defined(__SANITIZE_ADDRESS__) /* GCC's ASAN */
297
#define PRECISE_MEMORY_ACCESS 1
298
#elif defined(__has_feature)
299
#if __has_feature(address_sanitizer) /* Clang's ASAN */
300
#define PRECISE_MEMORY_ACCESS 1
301
#endif
302
230k
#endif
303
230k
#ifndef PRECISE_MEMORY_ACCESS
304
305
230k
    switch(length)
306
230k
    {
307
899
    case 12: c+=k[2]; b+=k[1]; a+=k[0]; break;
308
3.34k
    case 11: c+=k[2]&0xffffff; b+=k[1]; a+=k[0]; break;
309
4.54k
    case 10: c+=k[2]&0xffff; b+=k[1]; a+=k[0]; break;
310
30.0k
    case 9 : c+=k[2]&0xff; b+=k[1]; a+=k[0]; break;
311
46.9k
    case 8 : b+=k[1]; a+=k[0]; break;
312
19.0k
    case 7 : b+=k[1]&0xffffff; a+=k[0]; break;
313
67.0k
    case 6 : b+=k[1]&0xffff; a+=k[0]; break;
314
8.22k
    case 5 : b+=k[1]&0xff; a+=k[0]; break;
315
23.4k
    case 4 : a+=k[0]; break;
316
1.27k
    case 3 : a+=k[0]&0xffffff; break;
317
1.56k
    case 2 : a+=k[0]&0xffff; break;
318
23.0k
    case 1 : a+=k[0]&0xff; break;
319
754
    case 0 : return c; /* zero length strings require no mixing */
320
230k
    }
321
322
#else /* make valgrind happy */
323
324
    const uint8_t  *k8 = (const uint8_t *)k;
325
    switch(length)
326
    {
327
    case 12: c+=k[2]; b+=k[1]; a+=k[0]; break;
328
    case 11: c+=((uint32_t)k8[10])<<16;  /* fall through */
329
    case 10: c+=((uint32_t)k8[9])<<8;    /* fall through */
330
    case 9 : c+=k8[8];                   /* fall through */
331
    case 8 : b+=k[1]; a+=k[0]; break;
332
    case 7 : b+=((uint32_t)k8[6])<<16;   /* fall through */
333
    case 6 : b+=((uint32_t)k8[5])<<8;    /* fall through */
334
    case 5 : b+=k8[4];                   /* fall through */
335
    case 4 : a+=k[0]; break;
336
    case 3 : a+=((uint32_t)k8[2])<<16;   /* fall through */
337
    case 2 : a+=((uint32_t)k8[1])<<8;    /* fall through */
338
    case 1 : a+=k8[0]; break;
339
    case 0 : return c;
340
    }
341
342
#endif /* !valgrind */
343
344
230k
  }
345
125k
  else if (HASH_LITTLE_ENDIAN && ((u.i & 0x1) == 0))
346
42.5k
  {
347
42.5k
    const uint16_t *k = (const uint16_t *)key; /* read 16-bit chunks */
348
42.5k
    const uint8_t  *k8;
349
350
    /*--------------- all but last block: aligned reads and different mixing */
351
52.9k
    while (length > 12)
352
10.3k
    {
353
10.3k
      a += k[0] + (((uint32_t)k[1])<<16);
354
10.3k
      b += k[2] + (((uint32_t)k[3])<<16);
355
10.3k
      c += k[4] + (((uint32_t)k[5])<<16);
356
10.3k
      mix(a,b,c);
357
10.3k
      length -= 12;
358
10.3k
      k += 6;
359
10.3k
    }
360
361
    /*----------------------------- handle the last (probably partial) block */
362
42.5k
    k8 = (const uint8_t *)k;
363
42.5k
    switch(length)
364
42.5k
    {
365
0
    case 12: c+=k[4]+(((uint32_t)k[5])<<16);
366
0
       b+=k[2]+(((uint32_t)k[3])<<16);
367
0
       a+=k[0]+(((uint32_t)k[1])<<16);
368
0
       break;
369
0
    case 11: c+=((uint32_t)k8[10])<<16;     /* fall through */
370
26
    case 10: c+=k[4];
371
26
       b+=k[2]+(((uint32_t)k[3])<<16);
372
26
       a+=k[0]+(((uint32_t)k[1])<<16);
373
26
       break;
374
555
    case 9 : c+=k8[8];                      /* fall through */
375
713
    case 8 : b+=k[2]+(((uint32_t)k[3])<<16);
376
713
       a+=k[0]+(((uint32_t)k[1])<<16);
377
713
       break;
378
0
    case 7 : b+=((uint32_t)k8[6])<<16;      /* fall through */
379
0
    case 6 : b+=k[2];
380
0
       a+=k[0]+(((uint32_t)k[1])<<16);
381
0
       break;
382
31.4k
    case 5 : b+=k8[4];                      /* fall through */
383
31.4k
    case 4 : a+=k[0]+(((uint32_t)k[1])<<16);
384
31.4k
       break;
385
0
    case 3 : a+=((uint32_t)k8[2])<<16;      /* fall through */
386
0
    case 2 : a+=k[0];
387
0
       break;
388
10.3k
    case 1 : a+=k8[0];
389
10.3k
       break;
390
0
    case 0 : return c;                     /* zero length requires no mixing */
391
42.5k
    }
392
393
42.5k
  }
394
83.3k
  else
395
83.3k
  {
396
    /* need to read the key one byte at a time */
397
83.3k
    const uint8_t *k = (const uint8_t *)key;
398
399
    /*--------------- all but the last block: affect some 32 bits of (a,b,c) */
400
83.3k
    while (length > 12)
401
8
    {
402
8
      a += k[0];
403
8
      a += ((uint32_t)k[1])<<8;
404
8
      a += ((uint32_t)k[2])<<16;
405
8
      a += ((uint32_t)k[3])<<24;
406
8
      b += k[4];
407
8
      b += ((uint32_t)k[5])<<8;
408
8
      b += ((uint32_t)k[6])<<16;
409
8
      b += ((uint32_t)k[7])<<24;
410
8
      c += k[8];
411
8
      c += ((uint32_t)k[9])<<8;
412
8
      c += ((uint32_t)k[10])<<16;
413
8
      c += ((uint32_t)k[11])<<24;
414
8
      mix(a,b,c);
415
8
      length -= 12;
416
8
      k += 12;
417
8
    }
418
419
    /*-------------------------------- last block: affect all 32 bits of (c) */
420
83.3k
    switch(length) /* all the case statements fall through */
421
83.3k
    {
422
16.2k
    case 12: c+=((uint32_t)k[11])<<24; /* FALLTHRU */
423
16.2k
    case 11: c+=((uint32_t)k[10])<<16; /* FALLTHRU */
424
16.2k
    case 10: c+=((uint32_t)k[9])<<8; /* FALLTHRU */
425
16.2k
    case 9 : c+=k[8]; /* FALLTHRU */
426
42.8k
    case 8 : b+=((uint32_t)k[7])<<24; /* FALLTHRU */
427
42.8k
    case 7 : b+=((uint32_t)k[6])<<16; /* FALLTHRU */
428
64.9k
    case 6 : b+=((uint32_t)k[5])<<8; /* FALLTHRU */
429
64.9k
    case 5 : b+=k[4]; /* FALLTHRU */
430
83.0k
    case 4 : a+=((uint32_t)k[3])<<24; /* FALLTHRU */
431
83.3k
    case 3 : a+=((uint32_t)k[2])<<16; /* FALLTHRU */
432
83.3k
    case 2 : a+=((uint32_t)k[1])<<8; /* FALLTHRU */
433
83.3k
    case 1 : a+=k[0];
434
83.3k
       break;
435
0
    case 0 : return c;
436
83.3k
    }
437
83.3k
  }
438
439
355k
  final(a,b,c);
440
355k
  return c;
441
356k
}
442
/* clang-format on */
443
444
/* a simple hash function similar to what perl does for strings.
445
 * for good results, the string should not be excessively large.
446
 */
447
static unsigned long lh_perllike_str_hash(const void *k)
448
0
{
449
0
  const char *rkey = (const char *)k;
450
0
  unsigned hashval = 1;
451
452
0
  while (*rkey)
453
0
    hashval = hashval * 33 + *rkey++;
454
455
0
  return hashval;
456
0
}
457
458
static unsigned long lh_char_hash(const void *k)
459
356k
{
460
#if defined _MSC_VER || defined __MINGW32__
461
#define RANDOM_SEED_TYPE LONG
462
#else
463
356k
#define RANDOM_SEED_TYPE int
464
356k
#endif
465
356k
  static volatile RANDOM_SEED_TYPE random_seed = -1;
466
467
356k
  if (random_seed == -1)
468
1
  {
469
1
    RANDOM_SEED_TYPE seed;
470
    /* we can't use -1 as it is the uninitialized sentinel */
471
1
    while ((seed = json_c_get_random_seed()) == -1) {}
472
#if SIZEOF_INT == 8 && defined __GCC_HAVE_SYNC_COMPARE_AND_SWAP_8
473
#define USE_SYNC_COMPARE_AND_SWAP 1
474
#endif
475
1
#if SIZEOF_INT == 4 && defined __GCC_HAVE_SYNC_COMPARE_AND_SWAP_4
476
1
#define USE_SYNC_COMPARE_AND_SWAP 1
477
1
#endif
478
#if SIZEOF_INT == 2 && defined __GCC_HAVE_SYNC_COMPARE_AND_SWAP_2
479
#define USE_SYNC_COMPARE_AND_SWAP 1
480
#endif
481
1
#if defined USE_SYNC_COMPARE_AND_SWAP
482
1
    (void)__sync_val_compare_and_swap(&random_seed, -1, seed);
483
#elif defined _MSC_VER || defined __MINGW32__
484
    InterlockedCompareExchange(&random_seed, seed, -1);
485
#else
486
    //#warning "racy random seed initialization if used by multiple threads"
487
    random_seed = seed; /* potentially racy */
488
#endif
489
1
  }
490
491
356k
  return hashlittle((const char *)k, strlen((const char *)k), (uint32_t)random_seed);
492
356k
}
493
494
int lh_char_equal(const void *k1, const void *k2)
495
219k
{
496
219k
  return (strcmp((const char *)k1, (const char *)k2) == 0);
497
219k
}
498
499
struct lh_table *lh_table_new(int size, lh_entry_free_fn *free_fn, lh_hash_fn *hash_fn,
500
                              lh_equal_fn *equal_fn)
501
56.0k
{
502
56.0k
  int i;
503
56.0k
  struct lh_table *t;
504
505
  /* Allocate space for elements to avoid divisions by zero. */
506
56.0k
  assert(size > 0);
507
56.0k
  t = (struct lh_table *)calloc(1, sizeof(struct lh_table));
508
56.0k
  if (!t)
509
0
    return NULL;
510
511
56.0k
  t->count = 0;
512
56.0k
  t->size = size;
513
56.0k
  t->table = (struct lh_entry *)calloc(size, sizeof(struct lh_entry));
514
56.0k
  if (!t->table)
515
0
  {
516
0
    free(t);
517
0
    return NULL;
518
0
  }
519
56.0k
  t->free_fn = free_fn;
520
56.0k
  t->hash_fn = hash_fn;
521
56.0k
  t->equal_fn = equal_fn;
522
960k
  for (i = 0; i < size; i++)
523
904k
    t->table[i].k = LH_EMPTY;
524
56.0k
  return t;
525
56.0k
}
526
527
struct lh_table *lh_kchar_table_new(int size, lh_entry_free_fn *free_fn)
528
55.8k
{
529
55.8k
  return lh_table_new(size, free_fn, char_hash_fn, lh_char_equal);
530
55.8k
}
531
532
struct lh_table *lh_kptr_table_new(int size, lh_entry_free_fn *free_fn)
533
0
{
534
0
  return lh_table_new(size, free_fn, lh_ptr_hash, lh_ptr_equal);
535
0
}
536
537
int lh_table_resize(struct lh_table *t, int new_size)
538
262
{
539
262
  struct lh_table *new_t;
540
262
  struct lh_entry *ent;
541
542
262
  new_t = lh_table_new(new_size, NULL, t->hash_fn, t->equal_fn);
543
262
  if (new_t == NULL)
544
0
    return -1;
545
546
4.15k
  for (ent = t->head; ent != NULL; ent = ent->next)
547
3.89k
  {
548
3.89k
    unsigned long h = lh_get_hash(new_t, ent->k);
549
3.89k
    unsigned int opts = 0;
550
3.89k
    if (ent->k_is_constant)
551
0
      opts = JSON_C_OBJECT_ADD_CONSTANT_KEY;
552
3.89k
    if (lh_table_insert_w_hash(new_t, ent->k, ent->v, h, opts) != 0)
553
0
    {
554
0
      lh_table_free(new_t);
555
0
      return -1;
556
0
    }
557
3.89k
  }
558
262
  free(t->table);
559
262
  t->table = new_t->table;
560
262
  t->size = new_size;
561
262
  t->head = new_t->head;
562
262
  t->tail = new_t->tail;
563
262
  free(new_t);
564
565
262
  return 0;
566
262
}
567
568
void lh_table_free(struct lh_table *t)
569
55.8k
{
570
55.8k
  struct lh_entry *c;
571
55.8k
  if (t->free_fn)
572
55.8k
  {
573
117k
    for (c = t->head; c != NULL; c = c->next)
574
61.4k
      t->free_fn(c);
575
55.8k
  }
576
55.8k
  free(t->table);
577
55.8k
  free(t);
578
55.8k
}
579
580
int lh_table_insert_w_hash(struct lh_table *t, const void *k, const void *v, const unsigned long h,
581
                           const unsigned opts)
582
120k
{
583
120k
  unsigned long n;
584
585
120k
  if (t->count >= t->size * LH_LOAD_FACTOR)
586
262
  {
587
    /* Avoid signed integer overflow with large tables. */
588
262
    int new_size = (t->size > INT_MAX / 2) ? INT_MAX : (t->size * 2);
589
262
    if (t->size == INT_MAX || lh_table_resize(t, new_size) != 0)
590
0
      return -1;
591
262
  }
592
593
120k
  n = h % t->size;
594
595
128k
  while (1)
596
128k
  {
597
128k
    if (t->table[n].k == LH_EMPTY || t->table[n].k == LH_FREED)
598
120k
      break;
599
7.68k
    if ((int)++n == t->size)
600
96
      n = 0;
601
7.68k
  }
602
603
120k
  t->table[n].k = k;
604
120k
  t->table[n].k_is_constant = (opts & JSON_C_OBJECT_ADD_CONSTANT_KEY);
605
120k
  t->table[n].v = v;
606
120k
  t->count++;
607
608
120k
  if (t->head == NULL)
609
34.1k
  {
610
34.1k
    t->head = t->tail = &t->table[n];
611
34.1k
    t->table[n].next = t->table[n].prev = NULL;
612
34.1k
  }
613
86.7k
  else
614
86.7k
  {
615
86.7k
    t->tail->next = &t->table[n];
616
86.7k
    t->table[n].prev = t->tail;
617
86.7k
    t->table[n].next = NULL;
618
86.7k
    t->tail = &t->table[n];
619
86.7k
  }
620
621
120k
  return 0;
622
120k
}
623
int lh_table_insert(struct lh_table *t, const void *k, const void *v)
624
0
{
625
0
  return lh_table_insert_w_hash(t, k, v, lh_get_hash(t, k), 0);
626
0
}
627
628
struct lh_entry *lh_table_lookup_entry_w_hash(struct lh_table *t, const void *k,
629
                                              const unsigned long h)
630
352k
{
631
352k
  unsigned long n = h % t->size;
632
352k
  int count = 0;
633
634
361k
  while (count < t->size)
635
361k
  {
636
361k
    if (t->table[n].k == LH_EMPTY)
637
141k
      return NULL;
638
219k
    if (t->table[n].k != LH_FREED && t->equal_fn(t->table[n].k, k))
639
210k
      return &t->table[n];
640
9.15k
    if ((int)++n == t->size)
641
135
      n = 0;
642
9.15k
    count++;
643
9.15k
  }
644
0
  return NULL;
645
352k
}
646
647
struct lh_entry *lh_table_lookup_entry(struct lh_table *t, const void *k)
648
230k
{
649
230k
  return lh_table_lookup_entry_w_hash(t, k, lh_get_hash(t, k));
650
230k
}
651
652
json_bool lh_table_lookup_ex(struct lh_table *t, const void *k, void **v)
653
230k
{
654
230k
  struct lh_entry *e = lh_table_lookup_entry(t, k);
655
230k
  if (e != NULL)
656
205k
  {
657
205k
    if (v != NULL)
658
200k
      *v = lh_entry_v(e);
659
205k
    return 1; /* key found */
660
205k
  }
661
24.6k
  if (v != NULL)
662
24.0k
    *v = NULL;
663
24.6k
  return 0; /* key not found */
664
230k
}
665
666
int lh_table_delete_entry(struct lh_table *t, struct lh_entry *e)
667
55.5k
{
668
  /* CAW: fixed to be 64bit nice, still need the crazy negative case... */
669
55.5k
  ptrdiff_t n = (ptrdiff_t)(e - t->table);
670
671
55.5k
  assert(n >= 0 && n < t->size);
672
673
  /* CAW: this is bad, really bad, maybe stack goes other direction on this machine... */
674
55.5k
  if (n < 0)
675
0
  {
676
0
    return -2;
677
0
  }
678
679
55.5k
  if (t->table[n].k == LH_EMPTY || t->table[n].k == LH_FREED)
680
0
    return -1;
681
55.5k
  t->count--;
682
55.5k
  if (t->free_fn)
683
55.5k
    t->free_fn(e);
684
55.5k
  t->table[n].v = NULL;
685
55.5k
  t->table[n].k = LH_FREED;
686
55.5k
  if (t->tail == &t->table[n] && t->head == &t->table[n])
687
9.19k
  {
688
9.19k
    t->head = t->tail = NULL;
689
9.19k
  }
690
46.3k
  else if (t->head == &t->table[n])
691
5
  {
692
5
    t->head->next->prev = NULL;
693
5
    t->head = t->head->next;
694
5
  }
695
46.3k
  else if (t->tail == &t->table[n])
696
45.9k
  {
697
45.9k
    t->tail->prev->next = NULL;
698
45.9k
    t->tail = t->tail->prev;
699
45.9k
  }
700
380
  else
701
380
  {
702
380
    t->table[n].prev->next = t->table[n].next;
703
380
    t->table[n].next->prev = t->table[n].prev;
704
380
  }
705
55.5k
  t->table[n].next = t->table[n].prev = NULL;
706
55.5k
  return 0;
707
55.5k
}
708
709
int lh_table_delete_entry_to_tail(struct lh_table *t, struct lh_entry *first_entry)
710
35.9k
{
711
35.9k
  struct lh_entry *del_entry = t->tail;
712
35.9k
  do
713
55.1k
  {
714
55.1k
    struct lh_entry *prev = del_entry->prev;
715
    // Could probably micro-optimize this, but better to avoid code duplication for now
716
55.1k
    if (lh_table_delete_entry(t, del_entry) != 0)
717
0
      return -1;
718
55.1k
    if (del_entry == first_entry)
719
35.9k
      break;
720
19.1k
    del_entry = prev;
721
19.1k
  } while (del_entry != NULL);
722
35.9k
  return 0;
723
35.9k
}
724
725
int lh_table_delete(struct lh_table *t, const void *k)
726
449
{
727
449
  struct lh_entry *e = lh_table_lookup_entry(t, k);
728
449
  if (!e)
729
0
    return -1;
730
449
  return lh_table_delete_entry(t, e);
731
449
}
732
733
int lh_table_length(struct lh_table *t)
734
136k
{
735
136k
  return t->count;
736
136k
}