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update ucx
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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 2024 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 "cx/tree.h" |
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30 | |
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31 | #include <assert.h> |
| 38 | 32 | #include <string.h> |
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33 | |
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34 | #define CX_TREE_PTR(cur, off) (*(void**)(((char*)(cur))+(off))) |
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35 | #define tree_parent(node) CX_TREE_PTR(node, loc_parent) |
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36 | #define tree_children(node) CX_TREE_PTR(node, loc_children) |
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37 | #define tree_last_child(node) CX_TREE_PTR(node, loc_last_child) |
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38 | #define tree_prev(node) CX_TREE_PTR(node, loc_prev) |
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39 | #define tree_next(node) CX_TREE_PTR(node, loc_next) |
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40 | |
| 38 | 41 | #define tree_layout(tree) \ |
| 16 | 42 | (tree)->loc_parent,\ |
| 43 | (tree)->loc_children,\ | |
| 44 | (tree)->loc_last_child,\ | |
| 45 | (tree)->loc_prev, \ | |
| 46 | (tree)->loc_next | |
| 47 | ||
| 38 | 48 | void cx_tree_add( |
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49 | void *parent, |
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50 | void *node, |
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51 | ptrdiff_t loc_parent, |
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52 | ptrdiff_t loc_children, |
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53 | ptrdiff_t loc_last_child, |
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54 | ptrdiff_t loc_prev, |
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55 | ptrdiff_t loc_next |
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56 | ) { |
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57 | assert(loc_parent >= 0); |
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58 | assert(loc_children >= 0); |
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59 | assert(loc_next >= 0); |
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60 | |
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61 | void *current_parent = tree_parent(node); |
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62 | if (current_parent == parent) return; |
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63 | if (current_parent != NULL) { |
| 38 | 64 | cx_tree_remove(node, loc_parent, loc_children, |
| 65 | loc_last_child, loc_prev, loc_next); | |
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66 | } |
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67 | |
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68 | if (tree_children(parent) == NULL) { |
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69 | tree_children(parent) = node; |
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70 | if (loc_last_child >= 0) { |
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71 | tree_last_child(parent) = node; |
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72 | } |
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73 | } else { |
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74 | void *child; |
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75 | if (loc_last_child >= 0) { |
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76 | child = tree_last_child(parent); |
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77 | tree_last_child(parent) = node; |
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78 | } else { |
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79 | child = tree_children(parent); |
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80 | void *next; |
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81 | while ((next = tree_next(child)) != NULL) { |
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82 | child = next; |
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83 | } |
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84 | } |
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85 | if (loc_prev >= 0) { |
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86 | tree_prev(node) = child; |
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87 | } |
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88 | tree_next(child) = node; |
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89 | } |
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90 | tree_parent(node) = parent; |
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91 | } |
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92 | |
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93 | static void *cx_tree_node_prev( |
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94 | ptrdiff_t loc_parent, |
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95 | ptrdiff_t loc_children, |
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96 | ptrdiff_t loc_next, |
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97 | const void *node |
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98 | ) { |
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99 | void *parent = tree_parent(node); |
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100 | void *begin = tree_children(parent); |
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101 | if (begin == node) return NULL; |
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102 | const void *cur = begin; |
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103 | const void *next; |
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104 | while (1) { |
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105 | next = tree_next(cur); |
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106 | if (next == node) return (void *) cur; |
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107 | cur = next; |
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108 | } |
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109 | } |
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110 | |
| 38 | 111 | void cx_tree_remove( |
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112 | void *node, |
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113 | ptrdiff_t loc_parent, |
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114 | ptrdiff_t loc_children, |
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115 | ptrdiff_t loc_last_child, |
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116 | ptrdiff_t loc_prev, |
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117 | ptrdiff_t loc_next |
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118 | ) { |
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119 | if (tree_parent(node) == NULL) return; |
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120 | |
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121 | assert(loc_children >= 0); |
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122 | assert(loc_next >= 0); |
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123 | assert(loc_parent >= 0); |
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124 | void *left; |
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125 | if (loc_prev >= 0) { |
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126 | left = tree_prev(node); |
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127 | } else { |
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128 | left = cx_tree_node_prev(loc_parent, loc_children, loc_next, node); |
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129 | } |
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130 | void *right = tree_next(node); |
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131 | void *parent = tree_parent(node); |
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132 | assert(left == NULL || tree_children(parent) != node); |
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133 | assert(right == NULL || loc_last_child < 0 || |
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134 | tree_last_child(parent) != node); |
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135 | |
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136 | if (left == NULL) { |
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137 | tree_children(parent) = right; |
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138 | } else { |
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139 | tree_next(left) = right; |
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140 | } |
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141 | if (right == NULL) { |
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142 | if (loc_last_child >= 0) { |
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143 | tree_last_child(parent) = left; |
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144 | } |
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145 | } else { |
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146 | if (loc_prev >= 0) { |
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147 | tree_prev(right) = left; |
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148 | } |
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149 | } |
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150 | |
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151 | tree_parent(node) = NULL; |
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152 | tree_next(node) = NULL; |
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153 | if (loc_prev >= 0) { |
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154 | tree_prev(node) = NULL; |
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155 | } |
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156 | } |
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157 | |
| 38 | 158 | int cx_tree_search(const void *root, size_t max_depth, |
| 159 | const void *data, cx_tree_search_func sfunc, void **result, | |
| 160 | ptrdiff_t loc_children, ptrdiff_t loc_next) { | |
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161 | // help avoiding bugs due to uninitialized memory |
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162 | assert(result != NULL); |
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163 | *result = NULL; |
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164 | |
| 38 | 165 | // NULL root? exit! |
| 166 | if (root == NULL) { | |
| 167 | return -1; | |
| 168 | } | |
| 169 | ||
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170 | // remember return value for best match |
| 38 | 171 | int ret = sfunc(root, data); |
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172 | if (ret < 0) { |
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173 | // not contained, exit |
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174 | return -1; |
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175 | } |
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176 | *result = (void*) root; |
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177 | // if root is already exact match, exit |
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178 | if (ret == 0) { |
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179 | return 0; |
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180 | } |
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181 | |
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182 | // when depth is one, we are already done |
| 38 | 183 | if (max_depth == 1) { |
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184 | return ret; |
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185 | } |
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186 | |
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187 | // special case: indefinite depth |
| 38 | 188 | if (max_depth == 0) { |
| 189 | max_depth = SIZE_MAX; | |
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190 | } |
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191 | |
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192 | // create an iterator |
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193 | CxTreeIterator iter = cx_tree_iterator( |
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194 | (void*) root, false, loc_children, loc_next |
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195 | ); |
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196 | |
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197 | // skip root, we already handled it |
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198 | cxIteratorNext(iter); |
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199 | |
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200 | // loop through the remaining tree |
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201 | cx_foreach(void *, elem, iter) { |
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202 | // investigate the current node |
| 38 | 203 | int ret_elem = sfunc(elem, data); |
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204 | if (ret_elem == 0) { |
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205 | // if found, exit the search |
| 21 | 206 | *result = elem; |
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207 | ret = 0; |
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208 | break; |
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209 | } else if (ret_elem > 0 && ret_elem < ret) { |
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210 | // new distance is better |
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211 | *result = elem; |
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212 | ret = ret_elem; |
| 21 | 213 | } else if (ret_elem < 0 || ret_elem > ret) { |
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214 | // not contained or distance is worse, skip entire subtree |
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215 | cxTreeIteratorContinue(iter); |
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216 | } |
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217 | |
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218 | // when we reached the max depth, skip the subtree |
| 38 | 219 | if (iter.depth == max_depth) { |
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220 | cxTreeIteratorContinue(iter); |
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221 | } |
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222 | } |
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223 | |
| 38 | 224 | // dispose of the iterator as we might have exited the loop early |
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225 | cxTreeIteratorDispose(&iter); |
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226 | |
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227 | assert(ret < 0 || *result != NULL); |
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228 | return ret; |
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229 | } |
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230 | |
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231 | static bool cx_tree_iter_valid(const void *it) { |
| 38 | 232 | const CxTreeIterator *iter = it; |
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233 | return iter->node != NULL; |
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234 | } |
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235 | |
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236 | static void *cx_tree_iter_current(const void *it) { |
| 38 | 237 | const CxTreeIterator *iter = it; |
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238 | return iter->node; |
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239 | } |
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240 | |
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241 | static void cx_tree_iter_next(void *it) { |
| 38 | 242 | CxTreeIterator *iter = it; |
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243 | ptrdiff_t const loc_next = iter->loc_next; |
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244 | ptrdiff_t const loc_children = iter->loc_children; |
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245 | // protect us from misuse |
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246 | if (!iter->base.valid(iter)) return; |
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247 | |
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248 | void *children; |
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249 | |
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250 | // check if we are currently exiting or entering nodes |
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251 | if (iter->exiting) { |
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252 | children = NULL; |
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253 | // skipping on exit is pointless, just clear the flag |
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254 | iter->skip = false; |
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255 | } else { |
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256 | if (iter->skip) { |
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257 | // skip flag is set, pretend that there are no children |
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258 | iter->skip = false; |
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259 | children = NULL; |
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260 | } else { |
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261 | // try to enter the children (if any) |
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262 | children = tree_children(iter->node); |
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263 | } |
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264 | } |
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265 | |
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266 | if (children == NULL) { |
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267 | // search for the next node |
| 21 | 268 | void *next = NULL; |
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269 | cx_tree_iter_search_next: |
| 21 | 270 | // check if there is a sibling, but only if we are not a (subtree-)root |
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271 | if (iter->exiting) { |
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272 | next = iter->node_next; |
| 21 | 273 | } else if (iter->depth > 1) { |
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274 | next = tree_next(iter->node); |
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275 | iter->node_next = next; |
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276 | } |
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277 | if (next == NULL) { |
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278 | // no sibling, we are done with this node and exit |
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279 | if (iter->visit_on_exit && !iter->exiting) { |
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280 | // iter is supposed to visit the node again |
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281 | iter->exiting = true; |
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282 | } else { |
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283 | iter->exiting = false; |
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284 | if (iter->depth == 1) { |
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285 | // there is no parent - we have iterated the entire tree |
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286 | // invalidate the iterator and free the node stack |
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287 | iter->node = iter->node_next = NULL; |
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288 | iter->stack_capacity = iter->depth = 0; |
| 21 | 289 | cxFreeDefault(iter->stack); |
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290 | iter->stack = NULL; |
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291 | } else { |
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292 | // the parent node can be obtained from the top of stack |
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293 | // this way we can avoid the loc_parent in the iterator |
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294 | iter->depth--; |
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295 | iter->node = iter->stack[iter->depth - 1]; |
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296 | // retry with the parent node to find a sibling |
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297 | goto cx_tree_iter_search_next; |
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298 | } |
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299 | } |
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300 | } else { |
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301 | if (iter->visit_on_exit && !iter->exiting) { |
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302 | // iter is supposed to visit the node again |
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303 | iter->exiting = true; |
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304 | } else { |
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305 | iter->exiting = false; |
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306 | // move to the sibling |
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307 | iter->counter++; |
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308 | iter->node = next; |
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309 | // new top of stack is the sibling |
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310 | iter->stack[iter->depth - 1] = next; |
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311 | } |
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312 | } |
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313 | } else { |
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314 | // node has children, push the first child onto the stack and enter it |
| 38 | 315 | if (iter->depth >= iter->stack_capacity) { |
| 31 | 316 | const size_t newcap = iter->stack_capacity + 8; |
| 38 | 317 | if (cxReallocateArrayDefault(&iter->stack, newcap, sizeof(void*))) { |
| 31 | 318 | // we cannot return an error in this function |
| 319 | abort(); // LCOV_EXCL_LINE | |
| 320 | } | |
| 321 | iter->stack_capacity = newcap; | |
| 322 | } | |
| 38 | 323 | iter->stack[iter->depth] = children; |
| 324 | iter->depth++; | |
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325 | iter->node = children; |
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326 | iter->counter++; |
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327 | } |
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328 | } |
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329 | |
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330 | CxTreeIterator cx_tree_iterator( |
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331 | void *root, |
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332 | bool visit_on_exit, |
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333 | ptrdiff_t loc_children, |
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334 | ptrdiff_t loc_next |
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335 | ) { |
| 38 | 336 | CxTreeIterator ret; |
| 337 | ret.use_dfs = true; | |
| 338 | ret.loc_children = loc_children; | |
| 339 | ret.loc_next = loc_next; | |
| 340 | ret.visit_on_exit = visit_on_exit; | |
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341 | |
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342 | // initialize members |
| 38 | 343 | ret.node_next = NULL; |
| 344 | ret.exiting = false; | |
| 345 | ret.skip = false; | |
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346 | |
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347 | // assign base iterator functions |
| 38 | 348 | ret.base.allow_remove = false; |
| 349 | ret.base.remove = false; | |
| 350 | ret.base.current_impl = NULL; | |
| 351 | ret.base.valid = cx_tree_iter_valid; | |
| 352 | ret.base.next = cx_tree_iter_next; | |
| 353 | ret.base.current = cx_tree_iter_current; | |
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354 | |
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355 | // visit the root node |
| 38 | 356 | ret.node = root; |
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357 | if (root != NULL) { |
| 38 | 358 | ret.stack_capacity = 16; |
| 359 | ret.stack = cxMallocDefault(sizeof(void *) * 16); | |
| 360 | ret.stack[0] = root; | |
| 361 | ret.counter = 1; | |
| 362 | ret.depth = 1; | |
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363 | } else { |
| 38 | 364 | ret.stack_capacity = 0; |
| 365 | ret.stack = NULL; | |
| 366 | ret.counter = 0; | |
| 367 | ret.depth = 0; | |
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368 | } |
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369 | |
| 38 | 370 | return ret; |
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371 | } |
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372 | |
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373 | static bool cx_tree_visitor_valid(const void *it) { |
| 38 | 374 | const CxTreeIterator *iter = it; |
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375 | return iter->node != NULL; |
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376 | } |
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377 | |
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378 | static void *cx_tree_visitor_current(const void *it) { |
| 38 | 379 | const CxTreeIterator *iter = it; |
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380 | return iter->node; |
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381 | } |
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382 | |
| 38 | 383 | CX_NONNULL |
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384 | static void cx_tree_visitor_enqueue_siblings( |
| 38 | 385 | CxTreeIterator *iter, void *node, ptrdiff_t loc_next) { |
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386 | node = tree_next(node); |
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387 | while (node != NULL) { |
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388 | struct cx_tree_visitor_queue_s *q; |
| 21 | 389 | q = cxMallocDefault(sizeof(struct cx_tree_visitor_queue_s)); |
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390 | q->depth = iter->queue_last->depth; |
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391 | q->node = node; |
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392 | iter->queue_last->next = q; |
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393 | iter->queue_last = q; |
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394 | node = tree_next(node); |
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395 | } |
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396 | iter->queue_last->next = NULL; |
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397 | } |
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398 | |
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399 | static void cx_tree_visitor_next(void *it) { |
| 38 | 400 | CxTreeIterator *iter = it; |
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401 | // protect us from misuse |
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402 | if (!iter->base.valid(iter)) return; |
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403 | |
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404 | ptrdiff_t const loc_next = iter->loc_next; |
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405 | ptrdiff_t const loc_children = iter->loc_children; |
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406 | |
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407 | // add the children of the current node to the queue |
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408 | // unless the skip flag is set |
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409 | void *children; |
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410 | if (iter->skip) { |
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411 | iter->skip = false; |
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412 | children = NULL; |
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413 | } else { |
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414 | children = tree_children(iter->node); |
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415 | } |
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416 | if (children != NULL) { |
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417 | struct cx_tree_visitor_queue_s *q; |
| 21 | 418 | q = cxMallocDefault(sizeof(struct cx_tree_visitor_queue_s)); |
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419 | q->depth = iter->depth + 1; |
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420 | q->node = children; |
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421 | if (iter->queue_last == NULL) { |
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422 | assert(iter->queue_next == NULL); |
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423 | iter->queue_next = q; |
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424 | } else { |
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425 | iter->queue_last->next = q; |
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426 | } |
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427 | iter->queue_last = q; |
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428 | cx_tree_visitor_enqueue_siblings(iter, children, loc_next); |
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429 | } |
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430 | |
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431 | // check if there is a next node |
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432 | if (iter->queue_next == NULL) { |
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433 | iter->node = NULL; |
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434 | return; |
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435 | } |
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436 | |
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437 | // dequeue the next node |
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438 | iter->node = iter->queue_next->node; |
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439 | iter->depth = iter->queue_next->depth; |
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440 | { |
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441 | struct cx_tree_visitor_queue_s *q = iter->queue_next; |
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442 | iter->queue_next = q->next; |
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443 | if (iter->queue_next == NULL) { |
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444 | assert(iter->queue_last == q); |
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445 | iter->queue_last = NULL; |
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446 | } |
| 21 | 447 | cxFreeDefault(q); |
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448 | } |
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449 | |
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450 | // increment the node counter |
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451 | iter->counter++; |
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452 | } |
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453 | |
| 38 | 454 | CxTreeIterator cx_tree_visitor( |
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455 | void *root, |
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456 | ptrdiff_t loc_children, |
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457 | ptrdiff_t loc_next |
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458 | ) { |
| 38 | 459 | CxTreeIterator ret; |
| 460 | ret.visit_on_exit = false; | |
| 461 | ret.exiting = false; | |
| 462 | ret.use_dfs = false; | |
| 463 | ret.loc_children = loc_children; | |
| 464 | ret.loc_next = loc_next; | |
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465 | |
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466 | // initialize members |
| 38 | 467 | ret.skip = false; |
| 468 | ret.queue_next = NULL; | |
| 469 | ret.queue_last = NULL; | |
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470 | |
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471 | // assign base iterator functions |
| 38 | 472 | ret.base.allow_remove = false; |
| 473 | ret.base.remove = false; | |
| 474 | ret.base.current_impl = NULL; | |
| 475 | ret.base.valid = cx_tree_visitor_valid; | |
| 476 | ret.base.next = cx_tree_visitor_next; | |
| 477 | ret.base.current = cx_tree_visitor_current; | |
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478 | |
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479 | // visit the root node |
| 38 | 480 | ret.node = root; |
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481 | if (root != NULL) { |
| 38 | 482 | ret.counter = 1; |
| 483 | ret.depth = 1; | |
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484 | } else { |
| 38 | 485 | ret.counter = 0; |
| 486 | ret.depth = 0; | |
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487 | } |
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488 | |
| 38 | 489 | return ret; |
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490 | } |
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491 | |
| 38 | 492 | size_t cx_tree_size(void *root, ptrdiff_t loc_children, ptrdiff_t loc_next) { |
| 493 | CxTreeIterator iter = cx_tree_iterator(root, false, loc_children, loc_next); | |
| 494 | while (cxIteratorValid(iter)) { | |
| 495 | cxIteratorNext(iter); | |
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496 | } |
| 38 | 497 | return iter.counter; |
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498 | } |
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499 | |
| 38 | 500 | size_t cx_tree_depth(void *root, ptrdiff_t loc_children, ptrdiff_t loc_next) { |
| 501 | CxTreeIterator iter = cx_tree_iterator(root, false, loc_children, loc_next); | |
| 502 | size_t depth = 0; | |
| 503 | while (cxIteratorValid(iter)) { | |
| 504 | if (iter.depth > depth) { | |
| 505 | depth = iter.depth; | |
| 506 | } | |
| 507 | cxIteratorNext(iter); | |
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508 | } |
| 38 | 509 | return depth; |
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510 | } |
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511 | |
| 38 | 512 | CxTree *cxTreeCreate(const CxAllocator *allocator, |
| 513 | size_t node_size, size_t elem_size, void *root, ptrdiff_t loc_data, | |
| 514 | ptrdiff_t loc_parent, ptrdiff_t loc_children, ptrdiff_t loc_last_child, | |
| 515 | ptrdiff_t loc_prev, ptrdiff_t loc_next) { | |
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516 | |
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517 | if (allocator == NULL) { |
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518 | allocator = cxDefaultAllocator; |
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519 | } |
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520 | |
| 30 | 521 | CxTree *tree = cxZalloc(allocator, sizeof(CxTree)); |
| 23 | 522 | if (tree == NULL) return NULL; // LCOV_EXCL_LINE |
| 38 | 523 | tree->collection.allocator = allocator; |
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524 | |
| 38 | 525 | if (elem_size == CX_STORE_POINTERS) { |
| 526 | tree->collection.store_pointer = true; | |
| 527 | tree->collection.elem_size = sizeof(void*); | |
| 528 | } else { | |
| 529 | tree->collection.elem_size = elem_size; | |
| 530 | } | |
| 531 | ||
| 532 | tree->root = root; | |
| 533 | tree->node_size = node_size; | |
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534 | tree->loc_parent = loc_parent; |
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535 | tree->loc_children = loc_children; |
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536 | tree->loc_last_child = loc_last_child; |
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537 | tree->loc_prev = loc_prev; |
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538 | tree->loc_next = loc_next; |
| 38 | 539 | tree->loc_data = loc_data; |
| 540 | ||
| 541 | if (root == NULL) { | |
| 542 | cxSetAdvancedDestructor(tree, cxFree, (void*)allocator); | |
| 543 | } else { | |
| 544 | tree->collection.size = cx_tree_size(root, loc_children, loc_next); | |
| 545 | } | |
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546 | |
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547 | return tree; |
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548 | } |
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549 | |
| 16 | 550 | void cxTreeFree(CxTree *tree) { |
| 551 | if (tree == NULL) return; | |
| 552 | if (tree->root != NULL) { | |
| 553 | cxTreeClear(tree); | |
| 554 | } | |
| 30 | 555 | cxFree(tree->collection.allocator, tree); |
| 16 | 556 | } |
| 557 | ||
| 22 | 558 | void cxTreeSetParent(CxTree *tree, void *parent, void *child) { |
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559 | size_t loc_parent = tree->loc_parent; |
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560 | if (tree_parent(child) == NULL) { |
| 30 | 561 | tree->collection.size++; |
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562 | } |
| 38 | 563 | cx_tree_add(parent, child, tree_layout(tree)); |
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564 | } |
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565 | |
| 38 | 566 | void cxTreeAddNode(CxTree *tree, void *parent, void *child) { |
| 567 | cx_tree_add(parent, child, tree_layout(tree)); | |
| 30 | 568 | tree->collection.size++; |
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569 | } |
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570 | |
| 38 | 571 | void *cxTreeCreateNode(CxTree *tree, void *parent) { |
| 572 | void *node = cxZalloc(tree->collection.allocator, tree->node_size); | |
| 573 | if (node == NULL) return NULL; // LCOV_EXCL_LINE | |
| 574 | cx_tree_add(parent, node, tree_layout(tree)); | |
| 30 | 575 | tree->collection.size++; |
| 38 | 576 | return node; |
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577 | } |
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578 | |
| 38 | 579 | void *cxTreeAddData(CxTree *tree, void *parent, const void *data) { |
| 580 | if (tree->loc_data < 0) return NULL; | |
| 581 | ||
| 582 | void *node = cxTreeCreateNode(tree, parent); | |
| 583 | if (node == NULL) return NULL; // LCOV_EXCL_LINE | |
| 584 | ||
| 585 | char *dst = node; | |
| 586 | dst += tree->loc_data; | |
| 587 | const void *src = cxCollectionStoresPointers(tree) ? (const void*)&data : data; | |
| 588 | memcpy(dst, src, tree->collection.elem_size); | |
| 589 | ||
| 590 | return node; | |
| 591 | } | |
| 592 | ||
| 593 | void *cxTreeCreateRoot(CxTree *tree) { | |
| 594 | if (tree->root != NULL) { | |
| 595 | return tree->root; | |
| 596 | } | |
| 597 | ||
| 598 | void *node = cxZalloc(tree->collection.allocator, tree->node_size); | |
| 599 | if (node == NULL) return NULL; // LCOV_EXCL_LINE | |
| 600 | tree->root = node; | |
| 601 | tree->collection.size = 1; | |
| 602 | return node; | |
| 22 | 603 | } |
| 604 | ||
| 38 | 605 | void *cxTreeCreateRootData(CxTree *tree, const void *data) { |
| 606 | if (tree->loc_data < 0) return NULL; | |
| 607 | ||
| 608 | void *node = cxTreeCreateRoot(tree); | |
| 609 | if (node == NULL) return NULL; // LCOV_EXCL_LINE | |
| 610 | ||
| 611 | char *dst = node; | |
| 612 | dst += tree->loc_data; | |
| 613 | const void *src = cxCollectionStoresPointers(tree) ? (const void*)&data : data; | |
| 614 | memcpy(dst, src, tree->collection.elem_size); | |
| 615 | ||
| 616 | return node; | |
| 617 | } | |
| 618 | ||
| 619 | void *cxTreeSetRoot(CxTree *tree, void *new_root) { | |
| 620 | void *old_root = tree->root; | |
| 621 | tree->root = new_root; | |
| 622 | return old_root; | |
| 22 | 623 | } |
| 624 | ||
| 38 | 625 | void *cxTreeFindInSubtree(CxTree *tree, const void *data, |
| 626 | void *subtree_root, size_t max_depth, bool use_dfs) { | |
| 627 | if (tree->loc_data < 0 || subtree_root == NULL) { | |
| 628 | return NULL; | |
| 629 | } | |
| 630 | ||
| 631 | CxTreeIterator iter = use_dfs | |
| 632 | ? cx_tree_iterator(subtree_root, false, tree->loc_children, tree->loc_next) | |
| 633 | : cx_tree_visitor(subtree_root, tree->loc_children, tree->loc_next); | |
| 634 | ||
| 635 | cx_foreach(char*, node, iter) { | |
| 636 | char *node_data = node + tree->loc_data; | |
| 637 | if (cxCollectionStoresPointers(tree)) { | |
| 638 | node_data = *(void**)node_data; | |
| 639 | } | |
| 640 | if (cx_invoke_compare_func(tree, node_data, data) == 0) { | |
| 641 | cxTreeIteratorDispose(&iter); | |
| 642 | return node; | |
| 643 | } | |
| 644 | if (iter.depth == max_depth) { | |
| 645 | cxTreeIteratorContinue(iter); | |
| 646 | } | |
| 647 | } | |
| 648 | return NULL; | |
| 22 | 649 | } |
| 650 | ||
| 38 | 651 | void *cxTreeFindFastInSubtree(CxTree *tree, const void *data, |
| 652 | cx_tree_search_func sfunc, void *root, size_t max_depth) { | |
| 653 | void *result; | |
| 654 | int ret = cx_tree_search(root, max_depth, data, sfunc, &result, | |
| 655 | tree->loc_children, tree->loc_next); | |
| 656 | if (ret == 0) { | |
| 657 | return result; | |
| 658 | } else { | |
| 659 | return NULL; | |
| 660 | } | |
| 22 | 661 | } |
| 662 | ||
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663 | size_t cxTreeSubtreeSize(CxTree *tree, void *subtree_root) { |
| 38 | 664 | if (subtree_root == tree->root) { |
| 665 | return tree->collection.size; | |
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666 | } |
| 38 | 667 | return cx_tree_size(subtree_root, tree->loc_children, tree->loc_next); |
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668 | } |
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669 | |
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670 | size_t cxTreeSubtreeDepth(CxTree *tree, void *subtree_root) { |
| 38 | 671 | return cx_tree_depth(subtree_root, tree->loc_children, tree->loc_next); |
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672 | } |
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673 | |
| 22 | 674 | size_t cxTreeSize(CxTree *tree) { |
| 30 | 675 | return tree->collection.size; |
| 22 | 676 | } |
| 677 | ||
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678 | size_t cxTreeDepth(CxTree *tree) { |
| 38 | 679 | return cx_tree_depth(tree->root, tree->loc_children, tree->loc_next); |
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680 | } |
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681 | |
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682 | int cxTreeRemoveNode( |
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683 | CxTree *tree, |
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684 | void *node, |
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685 | cx_tree_relink_func relink_func |
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686 | ) { |
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687 | if (node == tree->root) return 1; |
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688 | |
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689 | // determine the new parent |
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690 | ptrdiff_t loc_parent = tree->loc_parent; |
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691 | void *new_parent = tree_parent(node); |
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692 | |
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693 | // first, unlink from the parent |
| 38 | 694 | cx_tree_remove(node, tree_layout(tree)); |
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695 | |
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696 | // then relink each child |
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697 | ptrdiff_t loc_children = tree->loc_children; |
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698 | ptrdiff_t loc_next = tree->loc_next; |
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699 | void *child = tree_children(node); |
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700 | while (child != NULL) { |
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701 | // forcibly set the parent to NULL - we do not use the unlink function |
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702 | // because that would unnecessarily modify the children linked list |
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703 | tree_parent(child) = NULL; |
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704 | |
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705 | // update contents, if required |
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706 | if (relink_func != NULL) { |
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707 | relink_func(child, node, new_parent); |
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708 | } |
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709 | |
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710 | // link to new parent |
| 38 | 711 | cx_tree_add(new_parent, child, tree_layout(tree)); |
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712 | |
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713 | // proceed to next child |
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714 | child = tree_next(child); |
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715 | } |
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716 | |
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717 | // clear the linked list of the removed node |
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718 | tree_children(node) = NULL; |
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719 | ptrdiff_t loc_last_child = tree->loc_last_child; |
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720 | if (loc_last_child >= 0) tree_last_child(node) = NULL; |
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721 | |
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722 | // the tree now has one member less |
| 30 | 723 | tree->collection.size--; |
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724 | |
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725 | return 0; |
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726 | } |
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727 | |
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728 | void cxTreeRemoveSubtree(CxTree *tree, void *node) { |
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729 | if (node == tree->root) { |
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730 | tree->root = NULL; |
| 30 | 731 | tree->collection.size = 0; |
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732 | return; |
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733 | } |
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734 | size_t subtree_size = cxTreeSubtreeSize(tree, node); |
| 38 | 735 | cx_tree_remove(node, tree_layout(tree)); |
| 30 | 736 | tree->collection.size -= subtree_size; |
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737 | } |
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738 | |
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739 | int cxTreeDestroyNode( |
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740 | CxTree *tree, |
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741 | void *node, |
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742 | cx_tree_relink_func relink_func |
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743 | ) { |
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744 | int result = cxTreeRemoveNode(tree, node, relink_func); |
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745 | if (result == 0) { |
| 38 | 746 | cx_invoke_destructor_raw(tree, node); |
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747 | return 0; |
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0aa8cbd7912e
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Olaf Wintermann <olaf.wintermann@gmail.com>
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748 | } else { |
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0aa8cbd7912e
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Olaf Wintermann <olaf.wintermann@gmail.com>
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749 | return result; |
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0aa8cbd7912e
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Olaf Wintermann <olaf.wintermann@gmail.com>
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750 | } |
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0aa8cbd7912e
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Olaf Wintermann <olaf.wintermann@gmail.com>
parents:
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751 | } |
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0aa8cbd7912e
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Olaf Wintermann <olaf.wintermann@gmail.com>
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diff
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752 | |
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0aa8cbd7912e
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Olaf Wintermann <olaf.wintermann@gmail.com>
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753 | void cxTreeDestroySubtree(CxTree *tree, void *node) { |
| 38 | 754 | cx_tree_remove(node, tree_layout(tree)); |
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Olaf Wintermann <olaf.wintermann@gmail.com>
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755 | CxTreeIterator iter = cx_tree_iterator( |
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0aa8cbd7912e
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Olaf Wintermann <olaf.wintermann@gmail.com>
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diff
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756 | node, true, |
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0aa8cbd7912e
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Olaf Wintermann <olaf.wintermann@gmail.com>
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757 | tree->loc_children, tree->loc_next |
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0aa8cbd7912e
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Olaf Wintermann <olaf.wintermann@gmail.com>
parents:
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diff
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758 | ); |
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0aa8cbd7912e
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Olaf Wintermann <olaf.wintermann@gmail.com>
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759 | cx_foreach(void *, child, iter) { |
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0aa8cbd7912e
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Olaf Wintermann <olaf.wintermann@gmail.com>
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760 | if (iter.exiting) { |
| 38 | 761 | // always call the destructors with the node! |
| 762 | cx_invoke_destructor_raw(tree, child); | |
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763 | } |
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Olaf Wintermann <olaf.wintermann@gmail.com>
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764 | } |
| 30 | 765 | tree->collection.size -= iter.counter; |
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Olaf Wintermann <olaf.wintermann@gmail.com>
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766 | if (node == tree->root) { |
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0aa8cbd7912e
refactor dbuObjectExecuteQuery: replace multiple lists with a single ll list
Olaf Wintermann <olaf.wintermann@gmail.com>
parents:
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diff
changeset
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767 | tree->root = NULL; |
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0aa8cbd7912e
refactor dbuObjectExecuteQuery: replace multiple lists with a single ll list
Olaf Wintermann <olaf.wintermann@gmail.com>
parents:
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diff
changeset
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768 | } |
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0aa8cbd7912e
refactor dbuObjectExecuteQuery: replace multiple lists with a single ll list
Olaf Wintermann <olaf.wintermann@gmail.com>
parents:
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769 | } |
| 22 | 770 | |
| 771 | void cxTreeIteratorDispose(CxTreeIterator *iter) { | |
| 38 | 772 | if (iter->use_dfs) { |
| 773 | cxFreeDefault(iter->stack); | |
| 774 | iter->stack = NULL; | |
| 775 | } else { | |
| 776 | struct cx_tree_visitor_queue_s *q = iter->queue_next; | |
| 777 | while (q != NULL) { | |
| 778 | struct cx_tree_visitor_queue_s *next = q->next; | |
| 779 | cxFreeDefault(q); | |
| 780 | q = next; | |
| 781 | } | |
| 782 | iter->queue_next = iter->queue_last = NULL; | |
| 22 | 783 | } |
| 784 | } | |
| 785 | ||
| 786 | CxTreeIterator cxTreeIterateSubtree(CxTree *tree, void *node, bool visit_on_exit) { | |
| 787 | return cx_tree_iterator( | |
| 788 | node, visit_on_exit, | |
| 789 | tree->loc_children, tree->loc_next | |
| 790 | ); | |
| 791 | } | |
| 792 | ||
| 38 | 793 | CxTreeIterator cxTreeVisitSubtree(CxTree *tree, void *node) { |
| 22 | 794 | return cx_tree_visitor( |
| 795 | node, tree->loc_children, tree->loc_next | |
| 796 | ); | |
| 797 | } | |
| 798 | ||
| 799 | CxTreeIterator cxTreeIterate(CxTree *tree, bool visit_on_exit) { | |
| 800 | return cxTreeIterateSubtree(tree, tree->root, visit_on_exit); | |
| 801 | } | |
| 802 | ||
| 38 | 803 | CxTreeIterator cxTreeVisit(CxTree *tree) { |
| 22 | 804 | return cxTreeVisitSubtree(tree, tree->root); |
| 805 | } |