| 1 | /* An expandable hash tables datatype. | 
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| 2 | Copyright (C) 1999, 2000 Free Software Foundation, Inc. | 
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| 3 | Contributed by Vladimir Makarov (vmakarov@cygnus.com). | 
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| 4 |  | 
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| 5 | This file is part of the libiberty library. | 
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| 6 | Libiberty is free software; you can redistribute it and/or | 
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| 7 | modify it under the terms of the GNU Library General Public | 
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| 8 | License as published by the Free Software Foundation; either | 
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| 9 | version 2 of the License, or (at your option) any later version. | 
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| 10 |  | 
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| 11 | Libiberty is distributed in the hope that it will be useful, | 
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| 12 | but WITHOUT ANY WARRANTY; without even the implied warranty of | 
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| 13 | MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU | 
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| 14 | Library General Public License for more details. | 
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| 15 |  | 
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| 16 | You should have received a copy of the GNU Library General Public | 
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| 17 | License along with libiberty; see the file COPYING.LIB.  If | 
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| 18 | not, write to the Free Software Foundation, Inc., 59 Temple Place - Suite 330, | 
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| 19 | Boston, MA 02111-1307, USA.  */ | 
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| 20 |  | 
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| 21 | /* This package implements basic hash table functionality.  It is possible | 
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| 22 | to search for an entry, create an entry and destroy an entry. | 
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| 23 |  | 
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| 24 | Elements in the table are generic pointers. | 
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| 25 |  | 
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| 26 | The size of the table is not fixed; if the occupancy of the table | 
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| 27 | grows too high the hash table will be expanded. | 
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| 28 |  | 
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| 29 | The abstract data implementation is based on generalized Algorithm D | 
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| 30 | from Knuth's book "The art of computer programming".  Hash table is | 
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| 31 | expanded by creation of new hash table and transferring elements from | 
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| 32 | the old table to the new table. */ | 
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| 33 |  | 
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| 34 | #ifdef HAVE_CONFIG_H | 
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| 35 | #include "config.h" | 
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| 36 | #endif | 
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| 37 |  | 
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| 38 | #include <sys/types.h> | 
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| 39 |  | 
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| 40 | #ifdef HAVE_STDLIB_H | 
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| 41 | #include <stdlib.h> | 
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| 42 | #endif | 
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| 43 |  | 
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| 44 | #ifdef HAVE_STRING_H | 
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| 45 | #include <string.h> | 
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| 46 | #endif | 
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| 47 |  | 
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| 48 | #include <stdio.h> | 
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| 49 |  | 
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| 50 | #include "libiberty.h" | 
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| 51 | #include "hashtab.h" | 
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| 52 |  | 
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| 53 | /* This macro defines reserved value for empty table entry. */ | 
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| 54 |  | 
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| 55 | #define EMPTY_ENTRY    ((PTR) 0) | 
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| 56 |  | 
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| 57 | /* This macro defines reserved value for table entry which contained | 
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| 58 | a deleted element. */ | 
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| 59 |  | 
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| 60 | #define DELETED_ENTRY  ((PTR) 1) | 
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| 61 |  | 
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| 62 | static unsigned long higher_prime_number PARAMS ((unsigned long)); | 
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| 63 | static hashval_t hash_pointer PARAMS ((const void *)); | 
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| 64 | static int eq_pointer PARAMS ((const void *, const void *)); | 
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| 65 | static int htab_expand PARAMS ((htab_t)); | 
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| 66 | static PTR *find_empty_slot_for_expand  PARAMS ((htab_t, hashval_t)); | 
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| 67 |  | 
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| 68 | /* At some point, we could make these be NULL, and modify the | 
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| 69 | hash-table routines to handle NULL specially; that would avoid | 
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| 70 | function-call overhead for the common case of hashing pointers.  */ | 
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| 71 | htab_hash htab_hash_pointer = hash_pointer; | 
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| 72 | htab_eq htab_eq_pointer = eq_pointer; | 
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| 73 |  | 
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| 74 | /* The following function returns a nearest prime number which is | 
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| 75 | greater than N, and near a power of two. */ | 
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| 76 |  | 
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| 77 | static unsigned long | 
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| 78 | higher_prime_number (n) | 
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| 79 | unsigned long n; | 
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| 80 | { | 
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| 81 | /* These are primes that are near, but slightly smaller than, a | 
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| 82 | power of two.  */ | 
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| 83 | static unsigned long primes[] = { | 
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| 84 | 2, | 
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| 85 | 7, | 
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| 86 | 13, | 
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| 87 | 31, | 
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| 88 | 61, | 
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| 89 | 127, | 
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| 90 | 251, | 
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| 91 | 509, | 
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| 92 | 1021, | 
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| 93 | 2039, | 
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| 94 | 4093, | 
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| 95 | 8191, | 
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| 96 | 16381, | 
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| 97 | 32749, | 
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| 98 | 65521, | 
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| 99 | 131071, | 
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| 100 | 262139, | 
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| 101 | 524287, | 
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| 102 | 1048573, | 
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| 103 | 2097143, | 
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| 104 | 4194301, | 
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| 105 | 8388593, | 
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| 106 | 16777213, | 
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| 107 | 33554393, | 
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| 108 | 67108859, | 
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| 109 | 134217689, | 
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| 110 | 268435399, | 
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| 111 | 536870909, | 
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| 112 | 1073741789, | 
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| 113 | 2147483647, | 
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| 114 | 4294967291 | 
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| 115 | }; | 
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| 116 |  | 
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| 117 | unsigned long* low = &primes[0]; | 
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| 118 | unsigned long* high = &primes[sizeof(primes) / sizeof(primes[0])]; | 
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| 119 |  | 
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| 120 | while (low != high) | 
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| 121 | { | 
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| 122 | unsigned long* mid = low + (high - low) / 2; | 
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| 123 | if (n > *mid) | 
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| 124 | low = mid + 1; | 
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| 125 | else | 
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| 126 | high = mid; | 
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| 127 | } | 
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| 128 |  | 
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| 129 | /* If we've run out of primes, abort.  */ | 
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| 130 | if (n > *low) | 
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| 131 | { | 
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| 132 | fprintf (stderr, "Cannot find prime bigger than %lu\n", n); | 
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| 133 | abort (); | 
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| 134 | } | 
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| 135 |  | 
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| 136 | return *low; | 
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| 137 | } | 
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| 138 |  | 
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| 139 | /* Returns a hash code for P.  */ | 
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| 140 |  | 
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| 141 | static hashval_t | 
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| 142 | hash_pointer (p) | 
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| 143 | const PTR p; | 
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| 144 | { | 
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| 145 | return (hashval_t) ((long)p >> 3); | 
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| 146 | } | 
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| 147 |  | 
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| 148 | /* Returns non-zero if P1 and P2 are equal.  */ | 
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| 149 |  | 
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| 150 | static int | 
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| 151 | eq_pointer (p1, p2) | 
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| 152 | const PTR p1; | 
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| 153 | const PTR p2; | 
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| 154 | { | 
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| 155 | return p1 == p2; | 
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| 156 | } | 
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| 157 |  | 
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| 158 | /* This function creates table with length slightly longer than given | 
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| 159 | source length.  Created hash table is initiated as empty (all the | 
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| 160 | hash table entries are EMPTY_ENTRY).  The function returns the | 
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| 161 | created hash table.  Memory allocation must not fail.  */ | 
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| 162 |  | 
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| 163 | htab_t | 
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| 164 | htab_create (size, hash_f, eq_f, del_f) | 
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| 165 | size_t size; | 
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| 166 | htab_hash hash_f; | 
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| 167 | htab_eq eq_f; | 
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| 168 | htab_del del_f; | 
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| 169 | { | 
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| 170 | htab_t result; | 
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| 171 |  | 
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| 172 | size = higher_prime_number (size); | 
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| 173 | result = (htab_t) xcalloc (1, sizeof (struct htab)); | 
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| 174 | result->entries = (PTR *) xcalloc (size, sizeof (PTR)); | 
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| 175 | result->size = size; | 
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| 176 | result->hash_f = hash_f; | 
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| 177 | result->eq_f = eq_f; | 
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| 178 | result->del_f = del_f; | 
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| 179 | result->return_allocation_failure = 0; | 
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| 180 | return result; | 
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| 181 | } | 
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| 182 |  | 
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| 183 | /* This function creates table with length slightly longer than given | 
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| 184 | source length.  The created hash table is initiated as empty (all the | 
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| 185 | hash table entries are EMPTY_ENTRY).  The function returns the created | 
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| 186 | hash table.  Memory allocation may fail; it may return NULL.  */ | 
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| 187 |  | 
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| 188 | htab_t | 
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| 189 | htab_try_create (size, hash_f, eq_f, del_f) | 
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| 190 | size_t size; | 
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| 191 | htab_hash hash_f; | 
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| 192 | htab_eq eq_f; | 
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| 193 | htab_del del_f; | 
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| 194 | { | 
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| 195 | htab_t result; | 
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| 196 |  | 
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| 197 | size = higher_prime_number (size); | 
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| 198 | result = (htab_t) calloc (1, sizeof (struct htab)); | 
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| 199 | if (result == NULL) | 
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| 200 | return NULL; | 
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| 201 |  | 
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| 202 | result->entries = (PTR *) calloc (size, sizeof (PTR)); | 
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| 203 | if (result->entries == NULL) | 
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| 204 | { | 
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| 205 | free (result); | 
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| 206 | return NULL; | 
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| 207 | } | 
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| 208 |  | 
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| 209 | result->size = size; | 
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| 210 | result->hash_f = hash_f; | 
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| 211 | result->eq_f = eq_f; | 
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| 212 | result->del_f = del_f; | 
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| 213 | result->return_allocation_failure = 1; | 
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| 214 | return result; | 
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| 215 | } | 
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| 216 |  | 
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| 217 | /* This function frees all memory allocated for given hash table. | 
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| 218 | Naturally the hash table must already exist. */ | 
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| 219 |  | 
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| 220 | void | 
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| 221 | htab_delete (htab) | 
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| 222 | htab_t htab; | 
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| 223 | { | 
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| 224 | int i; | 
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| 225 |  | 
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| 226 | if (htab->del_f) | 
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| 227 | for (i = htab->size - 1; i >= 0; i--) | 
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| 228 | if (htab->entries[i] != EMPTY_ENTRY | 
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| 229 | && htab->entries[i] != DELETED_ENTRY) | 
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| 230 | (*htab->del_f) (htab->entries[i]); | 
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| 231 |  | 
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| 232 | free (htab->entries); | 
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| 233 | free (htab); | 
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| 234 | } | 
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| 235 |  | 
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| 236 | /* This function clears all entries in the given hash table.  */ | 
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| 237 |  | 
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| 238 | void | 
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| 239 | htab_empty (htab) | 
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| 240 | htab_t htab; | 
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| 241 | { | 
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| 242 | int i; | 
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| 243 |  | 
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| 244 | if (htab->del_f) | 
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| 245 | for (i = htab->size - 1; i >= 0; i--) | 
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| 246 | if (htab->entries[i] != EMPTY_ENTRY | 
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| 247 | && htab->entries[i] != DELETED_ENTRY) | 
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| 248 | (*htab->del_f) (htab->entries[i]); | 
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| 249 |  | 
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| 250 | memset (htab->entries, 0, htab->size * sizeof (PTR)); | 
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| 251 | } | 
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| 252 |  | 
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| 253 | /* Similar to htab_find_slot, but without several unwanted side effects: | 
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| 254 | - Does not call htab->eq_f when it finds an existing entry. | 
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| 255 | - Does not change the count of elements/searches/collisions in the | 
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| 256 | hash table. | 
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| 257 | This function also assumes there are no deleted entries in the table. | 
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| 258 | HASH is the hash value for the element to be inserted.  */ | 
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| 259 |  | 
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| 260 | static PTR * | 
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| 261 | find_empty_slot_for_expand (htab, hash) | 
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| 262 | htab_t htab; | 
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| 263 | hashval_t hash; | 
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| 264 | { | 
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| 265 | size_t size = htab->size; | 
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| 266 | hashval_t hash2 = 1 + hash % (size - 2); | 
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| 267 | unsigned int index = hash % size; | 
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| 268 |  | 
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| 269 | for (;;) | 
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| 270 | { | 
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| 271 | PTR *slot = htab->entries + index; | 
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| 272 |  | 
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| 273 | if (*slot == EMPTY_ENTRY) | 
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| 274 | return slot; | 
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| 275 | else if (*slot == DELETED_ENTRY) | 
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| 276 | abort (); | 
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| 277 |  | 
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| 278 | index += hash2; | 
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| 279 | if (index >= size) | 
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| 280 | index -= size; | 
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| 281 | } | 
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| 282 | } | 
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| 283 |  | 
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| 284 | /* The following function changes size of memory allocated for the | 
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| 285 | entries and repeatedly inserts the table elements.  The occupancy | 
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| 286 | of the table after the call will be about 50%.  Naturally the hash | 
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| 287 | table must already exist.  Remember also that the place of the | 
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| 288 | table entries is changed.  If memory allocation failures are allowed, | 
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| 289 | this function will return zero, indicating that the table could not be | 
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| 290 | expanded.  If all goes well, it will return a non-zero value.  */ | 
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| 291 |  | 
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| 292 | static int | 
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| 293 | htab_expand (htab) | 
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| 294 | htab_t htab; | 
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| 295 | { | 
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| 296 | PTR *oentries; | 
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| 297 | PTR *olimit; | 
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| 298 | PTR *p; | 
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| 299 |  | 
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| 300 | oentries = htab->entries; | 
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| 301 | olimit = oentries + htab->size; | 
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| 302 |  | 
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| 303 | htab->size = higher_prime_number (htab->size * 2); | 
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| 304 |  | 
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| 305 | if (htab->return_allocation_failure) | 
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| 306 | { | 
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| 307 | PTR *nentries = (PTR *) calloc (htab->size, sizeof (PTR *)); | 
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| 308 | if (nentries == NULL) | 
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| 309 | return 0; | 
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| 310 | htab->entries = nentries; | 
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| 311 | } | 
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| 312 | else | 
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| 313 | htab->entries = (PTR *) xcalloc (htab->size, sizeof (PTR *)); | 
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| 314 |  | 
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| 315 | htab->n_elements -= htab->n_deleted; | 
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| 316 | htab->n_deleted = 0; | 
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| 317 |  | 
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| 318 | p = oentries; | 
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| 319 | do | 
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| 320 | { | 
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| 321 | PTR x = *p; | 
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| 322 |  | 
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| 323 | if (x != EMPTY_ENTRY && x != DELETED_ENTRY) | 
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| 324 | { | 
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| 325 | PTR *q = find_empty_slot_for_expand (htab, (*htab->hash_f) (x)); | 
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| 326 |  | 
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| 327 | *q = x; | 
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| 328 | } | 
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| 329 |  | 
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| 330 | p++; | 
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| 331 | } | 
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| 332 | while (p < olimit); | 
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| 333 |  | 
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| 334 | free (oentries); | 
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| 335 | return 1; | 
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| 336 | } | 
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| 337 |  | 
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| 338 | /* This function searches for a hash table entry equal to the given | 
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| 339 | element.  It cannot be used to insert or delete an element.  */ | 
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| 340 |  | 
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| 341 | PTR | 
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| 342 | htab_find_with_hash (htab, element, hash) | 
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| 343 | htab_t htab; | 
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| 344 | const PTR element; | 
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| 345 | hashval_t hash; | 
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| 346 | { | 
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| 347 | unsigned int index; | 
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| 348 | hashval_t hash2; | 
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| 349 | size_t size; | 
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| 350 | PTR entry; | 
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| 351 |  | 
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| 352 | htab->searches++; | 
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| 353 | size = htab->size; | 
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| 354 | index = hash % size; | 
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| 355 |  | 
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| 356 | entry = htab->entries[index]; | 
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| 357 | if (entry == EMPTY_ENTRY | 
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| 358 | || (entry != DELETED_ENTRY && (*htab->eq_f) (entry, element))) | 
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| 359 | return entry; | 
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| 360 |  | 
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| 361 | hash2 = 1 + hash % (size - 2); | 
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| 362 |  | 
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| 363 | for (;;) | 
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| 364 | { | 
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| 365 | htab->collisions++; | 
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| 366 | index += hash2; | 
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| 367 | if (index >= size) | 
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| 368 | index -= size; | 
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| 369 |  | 
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| 370 | entry = htab->entries[index]; | 
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| 371 | if (entry == EMPTY_ENTRY | 
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| 372 | || (entry != DELETED_ENTRY && (*htab->eq_f) (entry, element))) | 
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| 373 | return entry; | 
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| 374 | } | 
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| 375 | } | 
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| 376 |  | 
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| 377 | /* Like htab_find_slot_with_hash, but compute the hash value from the | 
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| 378 | element.  */ | 
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| 379 |  | 
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| 380 | PTR | 
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| 381 | htab_find (htab, element) | 
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| 382 | htab_t htab; | 
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| 383 | const PTR element; | 
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| 384 | { | 
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| 385 | return htab_find_with_hash (htab, element, (*htab->hash_f) (element)); | 
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| 386 | } | 
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| 387 |  | 
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| 388 | /* This function searches for a hash table slot containing an entry | 
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| 389 | equal to the given element.  To delete an entry, call this with | 
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| 390 | INSERT = 0, then call htab_clear_slot on the slot returned (possibly | 
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| 391 | after doing some checks).  To insert an entry, call this with | 
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| 392 | INSERT = 1, then write the value you want into the returned slot. | 
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| 393 | When inserting an entry, NULL may be returned if memory allocation | 
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| 394 | fails.  */ | 
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| 395 |  | 
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| 396 | PTR * | 
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| 397 | htab_find_slot_with_hash (htab, element, hash, insert) | 
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| 398 | htab_t htab; | 
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| 399 | const PTR element; | 
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| 400 | hashval_t hash; | 
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| 401 | enum insert_option insert; | 
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| 402 | { | 
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| 403 | PTR *first_deleted_slot; | 
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| 404 | unsigned int index; | 
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| 405 | hashval_t hash2; | 
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| 406 | size_t size; | 
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| 407 |  | 
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| 408 | if (insert == INSERT && htab->size * 3 <= htab->n_elements * 4 | 
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| 409 | && htab_expand (htab) == 0) | 
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| 410 | return NULL; | 
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| 411 |  | 
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| 412 | size = htab->size; | 
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| 413 | hash2 = 1 + hash % (size - 2); | 
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| 414 | index = hash % size; | 
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| 415 |  | 
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| 416 | htab->searches++; | 
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| 417 | first_deleted_slot = NULL; | 
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| 418 |  | 
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| 419 | for (;;) | 
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| 420 | { | 
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| 421 | PTR entry = htab->entries[index]; | 
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| 422 | if (entry == EMPTY_ENTRY) | 
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| 423 | { | 
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| 424 | if (insert == NO_INSERT) | 
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| 425 | return NULL; | 
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| 426 |  | 
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| 427 | htab->n_elements++; | 
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| 428 |  | 
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| 429 | if (first_deleted_slot) | 
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| 430 | { | 
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| 431 | *first_deleted_slot = EMPTY_ENTRY; | 
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| 432 | return first_deleted_slot; | 
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| 433 | } | 
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| 434 |  | 
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| 435 | return &htab->entries[index]; | 
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| 436 | } | 
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| 437 |  | 
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| 438 | if (entry == DELETED_ENTRY) | 
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| 439 | { | 
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| 440 | if (!first_deleted_slot) | 
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| 441 | first_deleted_slot = &htab->entries[index]; | 
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| 442 | } | 
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| 443 | else  if ((*htab->eq_f) (entry, element)) | 
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| 444 | return &htab->entries[index]; | 
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| 445 |  | 
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| 446 | htab->collisions++; | 
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| 447 | index += hash2; | 
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| 448 | if (index >= size) | 
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| 449 | index -= size; | 
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| 450 | } | 
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| 451 | } | 
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| 452 |  | 
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| 453 | /* Like htab_find_slot_with_hash, but compute the hash value from the | 
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| 454 | element.  */ | 
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| 455 |  | 
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| 456 | PTR * | 
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| 457 | htab_find_slot (htab, element, insert) | 
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| 458 | htab_t htab; | 
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| 459 | const PTR element; | 
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| 460 | enum insert_option insert; | 
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| 461 | { | 
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| 462 | return htab_find_slot_with_hash (htab, element, (*htab->hash_f) (element), | 
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| 463 | insert); | 
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| 464 | } | 
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| 465 |  | 
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| 466 | /* This function deletes an element with the given value from hash | 
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| 467 | table.  If there is no matching element in the hash table, this | 
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| 468 | function does nothing.  */ | 
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| 469 |  | 
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| 470 | void | 
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| 471 | htab_remove_elt (htab, element) | 
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| 472 | htab_t htab; | 
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| 473 | PTR element; | 
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| 474 | { | 
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| 475 | PTR *slot; | 
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| 476 |  | 
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| 477 | slot = htab_find_slot (htab, element, NO_INSERT); | 
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| 478 | if (*slot == EMPTY_ENTRY) | 
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| 479 | return; | 
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| 480 |  | 
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| 481 | if (htab->del_f) | 
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| 482 | (*htab->del_f) (*slot); | 
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| 483 |  | 
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| 484 | *slot = DELETED_ENTRY; | 
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| 485 | htab->n_deleted++; | 
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| 486 | } | 
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| 487 |  | 
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| 488 | /* This function clears a specified slot in a hash table.  It is | 
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| 489 | useful when you've already done the lookup and don't want to do it | 
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| 490 | again.  */ | 
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| 491 |  | 
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| 492 | void | 
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| 493 | htab_clear_slot (htab, slot) | 
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| 494 | htab_t htab; | 
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| 495 | PTR *slot; | 
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| 496 | { | 
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| 497 | if (slot < htab->entries || slot >= htab->entries + htab->size | 
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| 498 | || *slot == EMPTY_ENTRY || *slot == DELETED_ENTRY) | 
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| 499 | abort (); | 
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| 500 |  | 
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| 501 | if (htab->del_f) | 
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| 502 | (*htab->del_f) (*slot); | 
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| 503 |  | 
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| 504 | *slot = DELETED_ENTRY; | 
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| 505 | htab->n_deleted++; | 
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| 506 | } | 
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| 507 |  | 
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| 508 | /* This function scans over the entire hash table calling | 
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| 509 | CALLBACK for each live entry.  If CALLBACK returns false, | 
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| 510 | the iteration stops.  INFO is passed as CALLBACK's second | 
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| 511 | argument.  */ | 
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| 512 |  | 
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| 513 | void | 
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| 514 | htab_traverse (htab, callback, info) | 
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| 515 | htab_t htab; | 
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| 516 | htab_trav callback; | 
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| 517 | PTR info; | 
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| 518 | { | 
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| 519 | PTR *slot = htab->entries; | 
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| 520 | PTR *limit = slot + htab->size; | 
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| 521 |  | 
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| 522 | do | 
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| 523 | { | 
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| 524 | PTR x = *slot; | 
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| 525 |  | 
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| 526 | if (x != EMPTY_ENTRY && x != DELETED_ENTRY) | 
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| 527 | if (!(*callback) (slot, info)) | 
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| 528 | break; | 
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| 529 | } | 
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| 530 | while (++slot < limit); | 
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| 531 | } | 
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| 532 |  | 
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| 533 | /* Return the current size of given hash table. */ | 
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| 534 |  | 
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| 535 | size_t | 
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| 536 | htab_size (htab) | 
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| 537 | htab_t htab; | 
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| 538 | { | 
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| 539 | return htab->size; | 
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| 540 | } | 
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| 541 |  | 
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| 542 | /* Return the current number of elements in given hash table. */ | 
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| 543 |  | 
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| 544 | size_t | 
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| 545 | htab_elements (htab) | 
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| 546 | htab_t htab; | 
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| 547 | { | 
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| 548 | return htab->n_elements - htab->n_deleted; | 
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| 549 | } | 
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| 550 |  | 
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| 551 | /* Return the fraction of fixed collisions during all work with given | 
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| 552 | hash table. */ | 
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| 553 |  | 
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| 554 | double | 
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| 555 | htab_collisions (htab) | 
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| 556 | htab_t htab; | 
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| 557 | { | 
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| 558 | if (htab->searches == 0) | 
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| 559 | return 0.0; | 
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| 560 |  | 
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| 561 | return (double) htab->collisions / (double) htab->searches; | 
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| 562 | } | 
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