1 | /*
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2 | * Copyright (c) 2001-2004 Jakub Jermar
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3 | * Copyright (c) 2013 Jiri Svoboda
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4 | * 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
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8 | * are met:
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9 | *
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10 | * - Redistributions of source code must retain the above copyright
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11 | * notice, this list of conditions and the following disclaimer.
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12 | * - 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 | * - The name of the author may not be used to endorse or promote products
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16 | * derived from this software without specific prior written permission.
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17 | *
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18 | * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
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19 | * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
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20 | * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
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21 | * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
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22 | * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
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23 | * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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24 | * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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25 | * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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26 | * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
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27 | * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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28 | */
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29 |
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30 | /** @addtogroup libc
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31 | * @{
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32 | */
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33 | /** @file
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34 | */
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35 |
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36 | #ifndef _LIBC_LIST_H_
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37 | #define _LIBC_LIST_H_
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38 |
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39 | #include <assert.h>
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40 | #include <stdbool.h>
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41 | #include <stddef.h>
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42 | #include <stdint.h>
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43 | #include <trace.h>
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44 | #include <_bits/decls.h>
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45 |
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46 | #ifndef __cplusplus
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47 |
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48 | /**
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49 | * We don't define the macros in C++ to avoid polluting headers with
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50 | * namespaceless names. We don't actually need them, so this is fine.
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51 | * We still allow including the rest of the file (in `helenos` namespace)
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52 | * so that we can expose publicly visible types that have list_t members.
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53 | */
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54 |
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55 | /** Declare and initialize statically allocated list.
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56 | *
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57 | * @param name Name of the new statically allocated list.
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58 | *
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59 | */
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60 | #define LIST_INITIALIZE(name) \
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61 | list_t name = LIST_INITIALIZER(name)
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62 |
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63 | /** Initializer for statically allocated list.
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64 | *
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65 | * @code
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66 | * struct named_list {
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67 | * const char *name;
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68 | * list_t list;
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69 | * } var = {
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70 | * .name = "default name",
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71 | * .list = LIST_INITIALIZER(name_list.list)
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72 | * };
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73 | * @endcode
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74 | *
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75 | * @param name Name of the new statically allocated list.
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76 | *
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77 | */
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78 | #define LIST_INITIALIZER(name) \
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79 | { \
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80 | .head = { \
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81 | .prev = &(name).head, \
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82 | .next = &(name).head \
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83 | } \
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84 | }
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85 |
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86 | #define list_get_instance(link, type, member) \
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87 | ((type *) (((void *)(link)) - list_link_to_void(&(((type *) NULL)->member))))
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88 |
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89 | #define list_foreach(list, member, itype, iterator) \
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90 | for (itype *iterator = NULL; iterator == NULL; iterator = (itype *) 1) \
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91 | for (link_t *_link = (list).head.next; \
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92 | iterator = list_get_instance(_link, itype, member), \
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93 | _link != &(list).head; _link = _link->next)
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94 |
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95 | #define list_foreach_rev(list, member, itype, iterator) \
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96 | for (itype *iterator = NULL; iterator == NULL; iterator = (itype *) 1) \
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97 | for (link_t *_link = (list).head.prev; \
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98 | iterator = list_get_instance(_link, itype, member), \
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99 | _link != &(list).head; _link = _link->prev)
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100 |
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101 | /** Unlike list_foreach(), allows removing items while traversing a list.
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102 | *
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103 | * @code
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104 | * list_t mylist;
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105 | * typedef struct item {
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106 | * int value;
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107 | * link_t item_link;
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108 | * } item_t;
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109 | *
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110 | * //..
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111 | *
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112 | * // Print each list element's value and remove the element from the list.
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113 | * list_foreach_safe(mylist, cur_link, next_link) {
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114 | * item_t *cur_item = list_get_instance(cur_link, item_t, item_link);
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115 | * printf("%d\n", cur_item->value);
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116 | * list_remove(cur_link);
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117 | * }
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118 | * @endcode
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119 | *
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120 | * @param list List to traverse.
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121 | * @param iterator Iterator to the current element of the list.
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122 | * The item this iterator points may be safely removed
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123 | * from the list.
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124 | * @param next_iter Iterator to the next element of the list.
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125 | */
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126 | #define list_foreach_safe(list, iterator, next_iter) \
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127 | for (link_t *iterator = (list).head.next, \
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128 | *next_iter = iterator->next; \
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129 | iterator != &(list).head; \
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130 | iterator = next_iter, next_iter = iterator->next)
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131 |
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132 | #define assert_link_not_used(link) \
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133 | assert(!link_used(link))
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134 |
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135 | #define list_pop(list, type, member) \
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136 | ((type *) list_pop_internal(list, \
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137 | (list_link_to_void(&(((type *) NULL)->member)) - NULL)))
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138 |
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139 | #endif /* !__cplusplus */
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140 |
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141 | __HELENOS_DECLS_BEGIN;
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142 |
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143 | /** Doubly linked list link. */
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144 | typedef struct __adt_list_link {
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145 | struct __adt_list_link *prev; /**< Pointer to the previous item in the list. */
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146 | struct __adt_list_link *next; /**< Pointer to the next item in the list. */
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147 | } link_t;
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148 |
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149 | /** Doubly linked list. */
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150 | typedef struct {
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151 | link_t head; /**< List head. Does not have any data. */
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152 | } list_t;
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153 |
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154 | extern bool list_member(const link_t *, const list_t *);
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155 | extern void list_splice(list_t *, link_t *);
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156 | extern unsigned long list_count(const list_t *);
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157 |
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158 | /** Returns true if the link is definitely part of a list. False if not sure. */
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159 | static inline bool link_in_use(const link_t *link)
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160 | {
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161 | return link->prev != NULL && link->next != NULL;
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162 | }
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163 |
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164 | /** Initialize doubly-linked circular list link
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165 | *
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166 | * Initialize doubly-linked list link.
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167 | *
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168 | * @param link Pointer to link_t structure to be initialized.
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169 | *
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170 | */
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171 | _NO_TRACE static inline void link_initialize(link_t *link)
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172 | {
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173 | link->prev = NULL;
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174 | link->next = NULL;
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175 | }
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176 |
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177 | /** Initialize doubly-linked circular list
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178 | *
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179 | * Initialize doubly-linked circular list.
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180 | *
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181 | * @param list Pointer to list_t structure.
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182 | *
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183 | */
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184 | _NO_TRACE static inline void list_initialize(list_t *list)
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185 | {
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186 | list->head.prev = &list->head;
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187 | list->head.next = &list->head;
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188 | }
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189 |
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190 | /** Insert item before another item in doubly-linked circular list.
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191 | *
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192 | */
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193 | static inline void list_insert_before(link_t *lnew, link_t *lold)
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194 | {
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195 | lnew->next = lold;
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196 | lnew->prev = lold->prev;
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197 | lold->prev->next = lnew;
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198 | lold->prev = lnew;
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199 | }
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200 |
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201 | /** Insert item after another item in doubly-linked circular list.
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202 | *
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203 | */
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204 | static inline void list_insert_after(link_t *lnew, link_t *lold)
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205 | {
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206 | lnew->prev = lold;
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207 | lnew->next = lold->next;
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208 | lold->next->prev = lnew;
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209 | lold->next = lnew;
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210 | }
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211 |
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212 | /** Add item to the beginning of doubly-linked circular list
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213 | *
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214 | * Add item to the beginning of doubly-linked circular list.
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215 | *
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216 | * @param link Pointer to link_t structure to be added.
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217 | * @param list Pointer to list_t structure.
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218 | *
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219 | */
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220 | _NO_TRACE static inline void list_prepend(link_t *link, list_t *list)
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221 | {
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222 | list_insert_after(link, &list->head);
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223 | }
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224 |
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225 | /** Add item to the end of doubly-linked circular list
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226 | *
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227 | * Add item to the end of doubly-linked circular list.
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228 | *
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229 | * @param link Pointer to link_t structure to be added.
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230 | * @param list Pointer to list_t structure.
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231 | *
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232 | */
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233 | _NO_TRACE static inline void list_append(link_t *link, list_t *list)
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234 | {
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235 | list_insert_before(link, &list->head);
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236 | }
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237 |
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238 | /** Remove item from doubly-linked circular list
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239 | *
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240 | * Remove item from doubly-linked circular list.
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241 | *
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242 | * @param link Pointer to link_t structure to be removed from the list
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243 | * it is contained in.
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244 | *
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245 | */
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246 | _NO_TRACE static inline void list_remove(link_t *link)
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247 | {
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248 | if ((link->prev != NULL) && (link->next != NULL)) {
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249 | link->next->prev = link->prev;
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250 | link->prev->next = link->next;
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251 | }
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252 |
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253 | link_initialize(link);
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254 | }
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255 |
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256 | /** Query emptiness of doubly-linked circular list
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257 | *
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258 | * Query emptiness of doubly-linked circular list.
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259 | *
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260 | * @param list Pointer to lins_t structure.
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261 | *
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262 | */
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263 | _NO_TRACE static inline bool list_empty(const list_t *list)
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264 | {
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265 | return (list->head.next == &list->head);
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266 | }
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267 |
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268 | /** Get first item in list.
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269 | *
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270 | * @param list Pointer to list_t structure.
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271 | *
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272 | * @return Head item of the list.
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273 | * @return NULL if the list is empty.
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274 | *
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275 | */
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276 | static inline link_t *list_first(const list_t *list)
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277 | {
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278 | return ((list->head.next == &list->head) ? NULL : list->head.next);
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279 | }
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280 |
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281 | /** Get last item in list.
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282 | *
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283 | * @param list Pointer to list_t structure.
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284 | *
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285 | * @return Head item of the list.
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286 | * @return NULL if the list is empty.
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287 | *
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288 | */
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289 | static inline link_t *list_last(const list_t *list)
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290 | {
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291 | return (list->head.prev == &list->head) ? NULL : list->head.prev;
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292 | }
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293 |
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294 | /** Get next item in list.
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295 | *
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296 | * @param link Current item link
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297 | * @param list List containing @a link
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298 | *
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299 | * @return Next item or NULL if @a link is the last item.
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300 | */
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301 | static inline link_t *list_next(const link_t *link, const list_t *list)
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302 | {
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303 | return (link->next == &list->head) ? NULL : link->next;
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304 | }
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305 |
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306 | /** Get previous item in list.
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307 | *
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308 | * @param link Current item link
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309 | * @param list List containing @a link
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310 | *
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311 | * @return Previous item or NULL if @a link is the first item.
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312 | */
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313 | static inline link_t *list_prev(const link_t *link, const list_t *list)
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314 | {
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315 | return (link->prev == &list->head) ? NULL : link->prev;
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316 | }
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317 |
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318 | /** Split or concatenate headless doubly-linked circular list
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319 | *
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320 | * Split or concatenate headless doubly-linked circular list.
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321 | *
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322 | * Note that the algorithm works both directions:
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323 | * concatenates splitted lists and splits concatenated lists.
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324 | *
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325 | * @param part1 Pointer to link_t structure leading the first
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326 | * (half of the headless) list.
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327 | * @param part2 Pointer to link_t structure leading the second
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328 | * (half of the headless) list.
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329 | *
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330 | */
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331 | _NO_TRACE static inline void headless_list_split_or_concat(link_t *part1, link_t *part2)
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332 | {
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333 | part1->prev->next = part2;
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334 | part2->prev->next = part1;
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335 |
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336 | link_t *hlp = part1->prev;
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337 |
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338 | part1->prev = part2->prev;
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339 | part2->prev = hlp;
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340 | }
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341 |
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342 | /** Split headless doubly-linked circular list
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343 | *
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344 | * Split headless doubly-linked circular list.
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345 | *
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346 | * @param part1 Pointer to link_t structure leading
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347 | * the first half of the headless list.
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348 | * @param part2 Pointer to link_t structure leading
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349 | * the second half of the headless list.
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350 | *
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351 | */
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352 | _NO_TRACE static inline void headless_list_split(link_t *part1, link_t *part2)
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353 | {
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354 | headless_list_split_or_concat(part1, part2);
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355 | }
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356 |
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357 | /** Concatenate two headless doubly-linked circular lists
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358 | *
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359 | * Concatenate two headless doubly-linked circular lists.
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360 | *
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361 | * @param part1 Pointer to link_t structure leading
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362 | * the first headless list.
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363 | * @param part2 Pointer to link_t structure leading
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364 | * the second headless list.
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365 | *
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366 | */
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367 | _NO_TRACE static inline void headless_list_concat(link_t *part1, link_t *part2)
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368 | {
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369 | headless_list_split_or_concat(part1, part2);
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370 | }
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371 |
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372 | /** Concatenate two lists
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373 | *
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374 | * Concatenate lists @a list1 and @a list2, producing a single
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375 | * list @a list1 containing items from both (in @a list1, @a list2
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376 | * order) and empty list @a list2.
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377 | *
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378 | * @param list1 First list and concatenated output
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379 | * @param list2 Second list and empty output.
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380 | *
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381 | */
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382 | _NO_TRACE static inline void list_concat(list_t *list1, list_t *list2)
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383 | {
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384 | list_splice(list2, list1->head.prev);
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385 | }
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386 |
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387 | /** Get n-th item in a list.
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388 | *
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389 | * @param list Pointer to link_t structure representing the list.
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390 | * @param n Item number (indexed from zero).
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391 | *
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392 | * @return n-th item of the list.
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393 | * @return NULL if no n-th item found.
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394 | *
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395 | */
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396 | static inline link_t *list_nth(const list_t *list, unsigned long n)
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397 | {
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398 | unsigned long cnt = 0;
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399 |
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400 | link_t *link = list_first(list);
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401 | while (link != NULL) {
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402 | if (cnt == n)
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403 | return link;
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404 |
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405 | cnt++;
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406 | link = list_next(link, list);
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407 | }
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408 |
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409 | return NULL;
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410 | }
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411 |
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412 | /** Verify that argument type is a pointer to link_t (at compile time).
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413 | *
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414 | * This can be used to check argument type in a macro.
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415 | */
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416 | static inline const void *list_link_to_void(const link_t *link)
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417 | {
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418 | return link;
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419 | }
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420 |
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421 | /** Determine if link is used.
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422 | *
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423 | * @param link Link
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424 | * @return @c true if link is used, @c false if not.
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425 | */
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426 | static inline bool link_used(link_t *link)
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427 | {
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428 | if (link->prev == NULL && link->next == NULL)
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429 | return false;
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430 |
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431 | assert(link->prev != NULL && link->next != NULL);
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432 | return true;
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433 | }
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434 |
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435 | static inline void *list_pop_internal(list_t *list, ptrdiff_t offset)
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436 | {
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437 | link_t *tmp = list_first(list);
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438 | if (tmp == NULL)
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439 | return NULL;
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440 |
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441 | list_remove(tmp);
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442 | return (void *) (((uint8_t *) tmp) - offset);
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443 | }
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444 |
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445 | __HELENOS_DECLS_END;
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446 |
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447 | #endif
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448 |
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449 | /** @}
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450 | */
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