src/hash_map.c

Mon, 08 Aug 2022 17:12:00 +0200

author
Mike Becker <universe@uap-core.de>
date
Mon, 08 Aug 2022 17:12:00 +0200
changeset 572
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parent 563
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child 573
3f3a0d19db58
permissions
-rw-r--r--

#201 - remove dangerous allocator config

There is no plausible use case, except using the testing
allocator in the test case, and having the possibility to
specify any allocator (including another mempool) causes
more harm than good.

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1 /*
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2 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS HEADER.
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3 *
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4 * Copyright 2021 Mike Becker, Olaf Wintermann All rights reserved.
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5 *
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6 * Redistribution and use in source and binary forms, with or without
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7 * modification, are permitted provided that the following conditions are met:
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8 *
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9 * 1. Redistributions of source code must retain the above copyright
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10 * notice, this list of conditions and the following disclaimer.
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11 *
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12 * 2. Redistributions in binary form must reproduce the above copyright
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13 * notice, this list of conditions and the following disclaimer in the
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14 * documentation and/or other materials provided with the distribution.
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15 *
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16 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
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17 * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
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18 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
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19 * ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE
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20 * LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
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21 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
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22 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
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23 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
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24 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
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25 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
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26 * POSSIBILITY OF SUCH DAMAGE.
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27 */
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28
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29 #include <string.h>
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30 #include "cx/hash_map.h"
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31 #include "cx/utils.h"
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32
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33 static void cx_hash_map_clear(struct cx_map_s *map) {
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34 struct cx_hash_map_s *hash_map = (struct cx_hash_map_s *) map;
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35 cx_for_n(i, hash_map->bucket_count) {
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36 struct cx_hash_map_element_s *elem = hash_map->buckets[i];
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37 if (elem != NULL) {
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38 do {
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39 struct cx_hash_map_element_s *next = elem->next;
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40 // free the key data
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41 cxFree(map->allocator, elem->key.data.obj);
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42 // free the node
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43 cxFree(map->allocator, elem);
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44 // proceed
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45 elem = next;
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46 } while (elem != NULL);
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47
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48 // do not leave a dangling pointer
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49 hash_map->buckets[i] = NULL;
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50 }
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51 }
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52 map->size = 0;
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53 }
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54
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55 static void cx_hash_map_destructor(struct cx_map_s *map) {
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56 struct cx_hash_map_s *hash_map = (struct cx_hash_map_s *) map;
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57
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58 // free the buckets
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59 cx_hash_map_clear(map);
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60 cxFree(map->allocator, hash_map->buckets);
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61
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62 // free the map structure
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63 cxFree(map->allocator, map);
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64 }
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65
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66 static int cx_hash_map_put(
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67 CxMap *map,
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68 CxHashKey key,
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69 void *value
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70 ) {
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71 struct cx_hash_map_s *hash_map = (struct cx_hash_map_s *) map;
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72 CxAllocator *allocator = map->allocator;
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73
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74 unsigned hash = key.hash;
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75 if (hash == 0) {
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76 cx_hash_murmur(&key);
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77 hash = key.hash;
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78 }
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79
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80 size_t slot = hash % hash_map->bucket_count;
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81 struct cx_hash_map_element_s *elm = hash_map->buckets[slot];
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82 struct cx_hash_map_element_s *prev = NULL;
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83
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84 while (elm != NULL && elm->key.hash < hash) {
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85 prev = elm;
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86 elm = elm->next;
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87 }
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88
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89 if (elm == NULL || elm->key.hash != hash) {
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90 struct cx_hash_map_element_s *e = cxMalloc(allocator, sizeof(struct cx_hash_map_element_s));
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91 if (e == NULL) {
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92 return -1;
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93 }
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94
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95 // write the value
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96 // TODO: depending on future map features, we may want to copy here
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97 e->data = value;
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98
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99 // copy the key
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100 void *kd = cxMalloc(allocator, key.len);
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101 if (kd == NULL) {
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102 return -1;
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103 }
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104 memcpy(kd, key.data.obj, key.len);
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105 e->key.data.obj = kd;
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106 e->key.len = key.len;
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107 e->key.hash = hash;
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108
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109 // insert the element into the linked list
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110 if (prev == NULL) {
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111 hash_map->buckets[slot] = e;
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112 } else {
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113 prev->next = e;
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114 }
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115 e->next = elm;
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116
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117 // increase the size
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118 map->size++;
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119 } else {
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120 // (elem != NULL && elem->key.hash == hash) - overwrite value of existing element
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121 elm->data = value;
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122 }
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123
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124 return 0;
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125 }
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126
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127 static void cx_hash_map_unlink(
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128 struct cx_hash_map_s *hash_map,
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129 size_t slot,
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130 struct cx_hash_map_element_s *prev,
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131 struct cx_hash_map_element_s *elm
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132 ) {
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133 // unlink
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134 if (prev == NULL) {
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135 hash_map->buckets[slot] = elm->next;
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136 } else {
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137 prev->next = elm->next;
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138 }
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139 // free element
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140 cxFree(hash_map->base.allocator, elm->key.data.obj);
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141 cxFree(hash_map->base.allocator, elm);
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142 // decrease size
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143 hash_map->base.size--;
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144 }
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145
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146 /**
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147 * Helper function to avoid code duplication.
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148 *
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149 * @param map the map
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150 * @param key the key to look up
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151 * @param remove flag indicating whether the looked up entry shall be removed
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152 * @return the value corresponding to the key or \c NULL
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153 */
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154 static void *cx_hash_map_get_remove(
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155 CxMap *map,
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156 CxHashKey key,
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157 bool remove
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158 ) {
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159 struct cx_hash_map_s *hash_map = (struct cx_hash_map_s *) map;
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160
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161 unsigned hash = key.hash;
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162 if (hash == 0) {
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163 cx_hash_murmur(&key);
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164 hash = key.hash;
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165 }
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166
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167 size_t slot = hash % hash_map->bucket_count;
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168 struct cx_hash_map_element_s *elm = hash_map->buckets[slot];
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169 struct cx_hash_map_element_s *prev = NULL;
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170 while (elm && elm->key.hash <= hash) {
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171 if (elm->key.hash == hash && elm->key.len == key.len) {
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172 if (memcmp(elm->key.data.obj, key.data.obj, key.len) == 0) {
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173 void *data = elm->data;
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174 if (remove) {
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175 cx_hash_map_unlink(hash_map, slot, prev, elm);
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176 }
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177 return data;
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178 }
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179 }
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180 prev = elm;
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181 elm = prev->next;
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182 }
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183
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184 return NULL;
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185 }
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186
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187 static void *cx_hash_map_get(
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188 CxMap const *map,
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189 CxHashKey key
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190 ) {
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191 // we can safely cast, because we know when remove=false, the map stays untouched
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192 return cx_hash_map_get_remove((CxMap *) map, key, false);
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193 }
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194
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195 static void *cx_hash_map_remove(
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196 CxMap *map,
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197 CxHashKey key
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198 ) {
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199 return cx_hash_map_get_remove(map, key, true);
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200 }
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201
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202 static void *cx_hash_map_iter_current_entry(CxIterator const *iter) {
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203 // struct has to have a compatible signature
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204 struct cx_map_entry_s *entry = (struct cx_map_entry_s *) &(iter->kv_data);
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205 return entry;
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206 }
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207
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208 static void *cx_hash_map_iter_current_key(CxIterator const *iter) {
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209 struct cx_hash_map_element_s *elm = iter->elem_handle;
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210 return &elm->key;
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211 }
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212
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213 static void *cx_hash_map_iter_current_value(CxIterator const *iter) {
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214 struct cx_hash_map_element_s *elm = iter->elem_handle;
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215 // TODO: return a pointer to data if this map is storing copies
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216 return elm->data;
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217 }
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218
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219 static bool cx_hash_map_iter_valid(CxIterator const *iter) {
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220 return iter->elem_handle != NULL;
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221 }
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222
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223 static void cx_hash_map_iter_next(CxIterator *iter) {
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224 struct cx_hash_map_s *map = iter->src_handle;
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225 struct cx_hash_map_element_s *elm = iter->elem_handle;
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226
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227 // remove current element, if asked
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228 if (iter->remove) {
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229 // clear the flag
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230 iter->remove = false;
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231
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232 // determine the next element
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233 struct cx_hash_map_element_s *next = elm->next;
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234
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235 // search the previous element
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236 struct cx_hash_map_element_s *prev = NULL;
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237 if (map->buckets[iter->slot] != elm) {
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238 prev = map->buckets[iter->slot];
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239 while (prev->next != elm) {
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240 prev = prev->next;
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241 }
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242 }
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243
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244 // unlink
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245 cx_hash_map_unlink(map, iter->slot, prev, elm);
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246
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247 // advance
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248 elm = next;
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249 } else {
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250 // just advance
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251 elm = elm->next;
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252 iter->index++;
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253 }
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254
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255 // search the next bucket, if required
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256 while (elm == NULL && ++iter->slot < map->bucket_count) {
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257 elm = map->buckets[iter->slot];
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258 }
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259
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260 // fill the struct with the next element
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261 iter->elem_handle = elm;
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262 if (elm == NULL) {
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263 iter->kv_data.key = NULL;
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264 iter->kv_data.value = NULL;
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265 } else {
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266 iter->kv_data.key = &elm->key;
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267 // TODO: pointer to data if this map is storing copies
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268 iter->kv_data.value = elm->data;
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269 }
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270 }
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271
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272 static CxIterator cx_hash_map_iterator(CxMap *map) {
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273 CxIterator iter;
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274
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275 iter.src_handle = map;
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276 iter.valid = cx_hash_map_iter_valid;
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277 iter.next = cx_hash_map_iter_next;
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278 iter.current = cx_hash_map_iter_current_entry;
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279
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280 iter.slot = 0;
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281 iter.index = 0;
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282 iter.remove = false;
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283
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284 if (map->size > 0) {
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285 struct cx_hash_map_s *hash_map = (struct cx_hash_map_s *) map;
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286 struct cx_hash_map_element_s *elm = hash_map->buckets[0];
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287 for (; elm == NULL; iter.slot++) {
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288 elm = hash_map->buckets[iter.slot];
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289 }
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290 iter.elem_handle = elm;
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291 iter.kv_data.key = &elm->key;
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292 // TODO: pointer to data if this map is storing copies
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293 iter.kv_data.value = elm->data;
551
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294 } else {
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295 iter.elem_handle = NULL;
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296 iter.kv_data.key = NULL;
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297 iter.kv_data.value = NULL;
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298 }
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299
550
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300 return iter;
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301 }
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302
551
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303 static CxIterator cx_hash_map_iterator_keys(CxMap *map) {
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304 CxIterator iter = cx_hash_map_iterator(map);
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305 iter.current = cx_hash_map_iter_current_key;
550
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306 return iter;
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307 }
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308
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309 static CxIterator cx_hash_map_iterator_values(CxMap *map) {
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310 CxIterator iter = cx_hash_map_iterator(map);
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311 iter.current = cx_hash_map_iter_current_value;
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312 return iter;
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313 }
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314
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315 static cx_map_class cx_hash_map_class = {
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316 cx_hash_map_destructor,
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317 cx_hash_map_clear,
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318 cx_hash_map_put,
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319 cx_hash_map_get,
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320 cx_hash_map_remove,
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321 cx_hash_map_iterator,
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322 cx_hash_map_iterator_keys,
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323 cx_hash_map_iterator_values,
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324 };
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325
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326 CxMap *cxHashMapCreate(
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327 CxAllocator *allocator,
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328 size_t buckets
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329 ) {
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330 if (buckets == 0) {
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331 // implementation defined default
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332 buckets = 16;
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333 }
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334
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335 struct cx_hash_map_s *map = cxMalloc(allocator, sizeof(struct cx_hash_map_s));
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336 if (map == NULL) return NULL;
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337
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338 // initialize hash map members
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339 map->bucket_count = buckets;
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340 map->buckets = cxCalloc(allocator, buckets, sizeof(struct cx_hash_map_element_s *));
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341 if (map->buckets == NULL) {
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342 cxFree(allocator, map);
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343 return NULL;
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344 }
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345
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346 // initialize base members
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347 map->base.cl = &cx_hash_map_class;
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348 map->base.allocator = allocator;
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349 map->base.size = 0;
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350
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351 return (CxMap *) map;
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352 }
562
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353
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354 int cxMapRehash(CxMap *map) {
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355 struct cx_hash_map_s *hash_map = (struct cx_hash_map_s *) map;
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356 if (map->size > ((hash_map->bucket_count * 3) >> 2)) {
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357
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358 size_t new_bucket_count = (map->size * 5) >> 1;
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359 struct cx_hash_map_element_s **new_buckets = cxCalloc(map->allocator,
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360 new_bucket_count, sizeof(struct cx_hash_map_element_s *));
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361
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362 if (new_buckets == NULL) {
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363 return 1;
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364 }
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365
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366 // iterate through the elements and assign them to their new slots
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367 cx_for_n(slot, hash_map->bucket_count) {
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368 struct cx_hash_map_element_s *elm = hash_map->buckets[slot];
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369 while (elm != NULL) {
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370 struct cx_hash_map_element_s *next = elm->next;
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371 size_t new_slot = elm->key.hash % new_bucket_count;
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372
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373 // find position where to insert
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374 struct cx_hash_map_element_s *bucket_next = new_buckets[new_slot];
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375 struct cx_hash_map_element_s *bucket_prev = NULL;
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376 while (bucket_next != NULL && bucket_next->key.hash < elm->key.hash) {
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377 bucket_prev = bucket_next;
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378 bucket_next = bucket_next->next;
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379 }
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380
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381 // insert
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382 if (bucket_prev == NULL) {
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383 elm->next = new_buckets[new_slot];
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384 new_buckets[new_slot] = elm;
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385 } else {
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386 bucket_prev->next = elm;
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387 elm->next = bucket_next;
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388 }
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389
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390 // advance
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391 elm = next;
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392 }
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393 }
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394
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395 // assign result to the map
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396 hash_map->bucket_count = new_bucket_count;
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397 cxFree(map->allocator, hash_map->buckets);
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398 hash_map->buckets = new_buckets;
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399 }
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400 return 0;
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401 }

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