1 | /*
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2 | * Copyright (c) 2009 Martin Decky
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3 | * Copyright (c) 2009 Petr Tuma
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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 | #include <malloc.h>
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37 | #include <bool.h>
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38 | #include <as.h>
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39 | #include <align.h>
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40 | #include <macros.h>
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41 | #include <assert.h>
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42 | #include <errno.h>
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43 | #include <bitops.h>
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44 | #include <mem.h>
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45 | #include <futex.h>
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46 | #include <stdlib.h>
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47 | #include <adt/gcdlcm.h>
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48 | #include "private/malloc.h"
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49 |
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50 | /** Magic used in heap headers. */
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51 | #define HEAP_BLOCK_HEAD_MAGIC UINT32_C(0xBEEF0101)
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52 |
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53 | /** Magic used in heap footers. */
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54 | #define HEAP_BLOCK_FOOT_MAGIC UINT32_C(0xBEEF0202)
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55 |
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56 | /** Magic used in heap descriptor. */
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57 | #define HEAP_AREA_MAGIC UINT32_C(0xBEEFCAFE)
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58 |
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59 | /** Allocation alignment.
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60 | *
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61 | * This also covers the alignment of fields
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62 | * in the heap header and footer.
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63 | *
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64 | */
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65 | #define BASE_ALIGN 16
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66 |
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67 | /** Overhead of each heap block. */
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68 | #define STRUCT_OVERHEAD \
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69 | (sizeof(heap_block_head_t) + sizeof(heap_block_foot_t))
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70 |
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71 | /** Calculate real size of a heap block.
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72 | *
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73 | * Add header and footer size.
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74 | *
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75 | */
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76 | #define GROSS_SIZE(size) ((size) + STRUCT_OVERHEAD)
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77 |
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78 | /** Calculate net size of a heap block.
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79 | *
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80 | * Subtract header and footer size.
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81 | *
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82 | */
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83 | #define NET_SIZE(size) ((size) - STRUCT_OVERHEAD)
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84 |
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85 | /** Get first block in heap area.
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86 | *
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87 | */
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88 | #define AREA_FIRST_BLOCK(area) \
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89 | (ALIGN_UP(((uintptr_t) (area)) + sizeof(heap_area_t), BASE_ALIGN))
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90 |
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91 | /** Get footer in heap block.
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92 | *
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93 | */
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94 | #define BLOCK_FOOT(head) \
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95 | ((heap_block_foot_t *) \
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96 | (((uintptr_t) head) + head->size - sizeof(heap_block_foot_t)))
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97 |
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98 | /** Heap area.
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99 | *
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100 | * The memory managed by the heap allocator is divided into
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101 | * multiple discontinuous heaps. Each heap is represented
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102 | * by a separate address space area which has this structure
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103 | * at its very beginning.
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104 | *
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105 | */
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106 | typedef struct heap_area {
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107 | /** Start of the heap area (including this structure)
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108 | *
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109 | * Aligned on page boundary.
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110 | *
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111 | */
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112 | void *start;
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113 |
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114 | /** End of the heap area (aligned on page boundary) */
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115 | void *end;
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116 |
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117 | /** Next heap area */
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118 | struct heap_area *next;
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119 |
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120 | /** A magic value */
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121 | uint32_t magic;
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122 | } heap_area_t;
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123 |
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124 | /** Header of a heap block
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125 | *
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126 | */
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127 | typedef struct {
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128 | /* Size of the block (including header and footer) */
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129 | size_t size;
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130 |
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131 | /* Indication of a free block */
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132 | bool free;
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133 |
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134 | /** Heap area this block belongs to */
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135 | heap_area_t *area;
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136 |
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137 | /* A magic value to detect overwrite of heap header */
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138 | uint32_t magic;
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139 | } heap_block_head_t;
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140 |
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141 | /** Footer of a heap block
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142 | *
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143 | */
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144 | typedef struct {
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145 | /* Size of the block (including header and footer) */
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146 | size_t size;
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147 |
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148 | /* A magic value to detect overwrite of heap footer */
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149 | uint32_t magic;
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150 | } heap_block_foot_t;
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151 |
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152 | /** First heap area */
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153 | static heap_area_t *first_heap_area = NULL;
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154 |
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155 | /** Last heap area */
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156 | static heap_area_t *last_heap_area = NULL;
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157 |
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158 | /** Next heap block to examine (next fit algorithm) */
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159 | static heap_block_head_t *next = NULL;
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160 |
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161 | /** Futex for thread-safe heap manipulation */
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162 | static futex_t malloc_futex = FUTEX_INITIALIZER;
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163 |
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164 | /** Initialize a heap block
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165 | *
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166 | * Fill in the structures related to a heap block.
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167 | * Should be called only inside the critical section.
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168 | *
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169 | * @param addr Address of the block.
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170 | * @param size Size of the block including the header and the footer.
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171 | * @param free Indication of a free block.
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172 | * @param area Heap area the block belongs to.
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173 | *
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174 | */
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175 | static void block_init(void *addr, size_t size, bool free, heap_area_t *area)
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176 | {
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177 | /* Calculate the position of the header and the footer */
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178 | heap_block_head_t *head = (heap_block_head_t *) addr;
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179 |
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180 | head->size = size;
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181 | head->free = free;
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182 | head->area = area;
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183 | head->magic = HEAP_BLOCK_HEAD_MAGIC;
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184 |
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185 | heap_block_foot_t *foot = BLOCK_FOOT(head);
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186 |
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187 | foot->size = size;
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188 | foot->magic = HEAP_BLOCK_FOOT_MAGIC;
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189 | }
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190 |
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191 | /** Check a heap block
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192 | *
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193 | * Verifies that the structures related to a heap block still contain
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194 | * the magic constants. This helps detect heap corruption early on.
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195 | * Should be called only inside the critical section.
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196 | *
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197 | * @param addr Address of the block.
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198 | *
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199 | */
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200 | static void block_check(void *addr)
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201 | {
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202 | heap_block_head_t *head = (heap_block_head_t *) addr;
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203 |
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204 | assert(head->magic == HEAP_BLOCK_HEAD_MAGIC);
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205 |
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206 | heap_block_foot_t *foot = BLOCK_FOOT(head);
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207 |
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208 | assert(foot->magic == HEAP_BLOCK_FOOT_MAGIC);
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209 | assert(head->size == foot->size);
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210 | }
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211 |
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212 | /** Check a heap area structure
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213 | *
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214 | * @param addr Address of the heap area.
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215 | *
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216 | */
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217 | static void area_check(void *addr)
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218 | {
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219 | heap_area_t *area = (heap_area_t *) addr;
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220 |
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221 | assert(area->magic == HEAP_AREA_MAGIC);
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222 | assert(area->start < area->end);
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223 | assert(((uintptr_t) area->start % PAGE_SIZE) == 0);
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224 | assert(((uintptr_t) area->end % PAGE_SIZE) == 0);
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225 | }
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226 |
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227 | /** Create new heap area
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228 | *
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229 | * @param start Preffered starting address of the new area.
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230 | * @param size Size of the area.
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231 | *
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232 | */
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233 | static bool area_create(size_t size)
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234 | {
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235 | void *start = as_get_mappable_page(size);
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236 | if (start == NULL)
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237 | return false;
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238 |
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239 | /* Align the heap area on page boundary */
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240 | void *astart = (void *) ALIGN_UP((uintptr_t) start, PAGE_SIZE);
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241 | size_t asize = ALIGN_UP(size, PAGE_SIZE);
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242 |
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243 | astart = as_area_create(astart, asize, AS_AREA_WRITE | AS_AREA_READ);
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244 | if (astart == (void *) -1)
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245 | return false;
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246 |
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247 | heap_area_t *area = (heap_area_t *) astart;
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248 |
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249 | area->start = astart;
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250 | area->end = (void *)
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251 | ALIGN_DOWN((uintptr_t) astart + asize, BASE_ALIGN);
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252 | area->next = NULL;
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253 | area->magic = HEAP_AREA_MAGIC;
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254 |
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255 | void *block = (void *) AREA_FIRST_BLOCK(area);
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256 | size_t bsize = (size_t) (area->end - block);
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257 |
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258 | block_init(block, bsize, true, area);
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259 |
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260 | if (last_heap_area == NULL) {
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261 | first_heap_area = area;
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262 | last_heap_area = area;
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263 | } else {
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264 | last_heap_area->next = area;
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265 | last_heap_area = area;
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266 | }
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267 |
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268 | return true;
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269 | }
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270 |
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271 | /** Try to enlarge a heap area
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272 | *
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273 | * @param area Heap area to grow.
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274 | * @param size Gross size of item to allocate (bytes).
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275 | *
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276 | */
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277 | static bool area_grow(heap_area_t *area, size_t size)
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278 | {
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279 | if (size == 0)
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280 | return true;
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281 |
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282 | area_check(area);
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283 |
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284 | size_t asize = ALIGN_UP((size_t) (area->end - area->start) + size,
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285 | PAGE_SIZE);
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286 |
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287 | /* New heap area size */
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288 | void *end = (void *)
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289 | ALIGN_DOWN((uintptr_t) area->start + asize, BASE_ALIGN);
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290 |
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291 | /* Check for overflow */
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292 | if (end < area->start)
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293 | return false;
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294 |
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295 | /* Resize the address space area */
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296 | int ret = as_area_resize(area->start, asize, 0);
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297 | if (ret != EOK)
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298 | return false;
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299 |
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300 | /* Add new free block */
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301 | block_init(area->end, (size_t) (end - area->end), true, area);
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302 |
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303 | /* Update heap area parameters */
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304 | area->end = end;
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305 |
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306 | return true;
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307 | }
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308 |
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309 | /** Try to enlarge any of the heap areas
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310 | *
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311 | * @param size Gross size of item to allocate (bytes).
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312 | *
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313 | */
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314 | static bool heap_grow(size_t size)
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315 | {
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316 | if (size == 0)
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317 | return true;
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318 |
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319 | /* First try to enlarge some existing area */
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320 | heap_area_t *area;
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321 | for (area = first_heap_area; area != NULL; area = area->next) {
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322 | if (area_grow(area, size))
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323 | return true;
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324 | }
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325 |
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326 | /* Eventually try to create a new area */
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327 | return area_create(AREA_FIRST_BLOCK(size));
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328 | }
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329 |
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330 | /** Try to shrink heap space
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331 | *
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332 | * In all cases the next pointer is reset.
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333 | *
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334 | */
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335 | static void heap_shrink(void)
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336 | {
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337 | next = NULL;
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338 | }
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339 |
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340 | /** Initialize the heap allocator
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341 | *
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342 | * Create initial heap memory area. This routine is
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343 | * only called from libc initialization, thus we do not
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344 | * take any locks.
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345 | *
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346 | */
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347 | void __malloc_init(void)
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348 | {
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349 | if (!area_create(PAGE_SIZE))
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350 | abort();
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351 | }
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352 |
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353 | /** Split heap block and mark it as used.
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354 | *
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355 | * Should be called only inside the critical section.
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356 | *
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357 | * @param cur Heap block to split.
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358 | * @param size Number of bytes to split and mark from the beginning
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359 | * of the block.
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360 | *
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361 | */
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362 | static void split_mark(heap_block_head_t *cur, const size_t size)
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363 | {
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364 | assert(cur->size >= size);
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365 |
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366 | /* See if we should split the block. */
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367 | size_t split_limit = GROSS_SIZE(size);
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368 |
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369 | if (cur->size > split_limit) {
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370 | /* Block big enough -> split. */
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371 | void *next = ((void *) cur) + size;
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372 | block_init(next, cur->size - size, true, cur->area);
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373 | block_init(cur, size, false, cur->area);
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374 | } else {
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375 | /* Block too small -> use as is. */
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376 | cur->free = false;
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377 | }
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378 | }
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379 |
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380 | /** Allocate memory from heap area starting from given block
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381 | *
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382 | * Should be called only inside the critical section.
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383 | * As a side effect this function also sets the current
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384 | * pointer on successful allocation.
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385 | *
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386 | * @param area Heap area where to allocate from.
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387 | * @param first_block Starting heap block.
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388 | * @param final_block Heap block where to finish the search
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389 | * (may be NULL).
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390 | * @param real_size Gross number of bytes to allocate.
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391 | * @param falign Physical alignment of the block.
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392 | *
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393 | * @return Address of the allocated block or NULL on not enough memory.
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394 | *
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395 | */
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396 | static void *malloc_area(heap_area_t *area, heap_block_head_t *first_block,
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397 | heap_block_head_t *final_block, size_t real_size, size_t falign)
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398 | {
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399 | area_check((void *) area);
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400 | assert((void *) first_block >= (void *) AREA_FIRST_BLOCK(area));
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401 | assert((void *) first_block < area->end);
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402 |
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403 | heap_block_head_t *cur;
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404 | for (cur = first_block; (void *) cur < area->end;
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405 | cur = (heap_block_head_t *) (((void *) cur) + cur->size)) {
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406 | block_check(cur);
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407 |
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408 | /* Finish searching on the final block */
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409 | if ((final_block != NULL) && (cur == final_block))
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410 | break;
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411 |
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412 | /* Try to find a block that is free and large enough. */
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413 | if ((cur->free) && (cur->size >= real_size)) {
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414 | /*
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415 | * We have found a suitable block.
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416 | * Check for alignment properties.
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417 | */
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418 | void *addr = (void *)
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419 | ((uintptr_t) cur + sizeof(heap_block_head_t));
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420 | void *aligned = (void *)
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421 | ALIGN_UP((uintptr_t) addr, falign);
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422 |
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423 | if (addr == aligned) {
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424 | /* Exact block start including alignment. */
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425 | split_mark(cur, real_size);
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426 |
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427 | next = cur;
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428 | return addr;
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429 | } else {
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430 | /* Block start has to be aligned */
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431 | size_t excess = (size_t) (aligned - addr);
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432 |
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433 | if (cur->size >= real_size + excess) {
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434 | /*
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435 | * The current block is large enough to fit
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436 | * data in (including alignment).
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437 | */
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438 | if ((void *) cur > (void *) AREA_FIRST_BLOCK(area)) {
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439 | /*
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440 | * There is a block before the current block.
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441 | * This previous block can be enlarged to
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442 | * compensate for the alignment excess.
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443 | */
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444 | heap_block_foot_t *prev_foot = (heap_block_foot_t *)
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445 | ((void *) cur - sizeof(heap_block_foot_t));
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446 |
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447 | heap_block_head_t *prev_head = (heap_block_head_t *)
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448 | ((void *) cur - prev_foot->size);
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449 |
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450 | block_check(prev_head);
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451 |
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452 | size_t reduced_size = cur->size - excess;
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453 | heap_block_head_t *next_head = ((void *) cur) + excess;
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454 |
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455 | if ((!prev_head->free) &&
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456 | (excess >= STRUCT_OVERHEAD)) {
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457 | /*
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458 | * The previous block is not free and there
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459 | * is enough free space left to fill in
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460 | * a new free block between the previous
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461 | * and current block.
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462 | */
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463 | block_init(cur, excess, true, area);
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464 | } else {
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465 | /*
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466 | * The previous block is free (thus there
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467 | * is no need to induce additional
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468 | * fragmentation to the heap) or the
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469 | * excess is small. Therefore just enlarge
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470 | * the previous block.
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471 | */
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472 | block_init(prev_head, prev_head->size + excess,
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473 | prev_head->free, area);
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474 | }
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475 |
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476 | block_init(next_head, reduced_size, true, area);
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477 | split_mark(next_head, real_size);
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478 |
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479 | next = next_head;
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480 | return aligned;
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481 | } else {
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482 | /*
|
---|
483 | * The current block is the first block
|
---|
484 | * in the heap area. We have to make sure
|
---|
485 | * that the alignment excess is large enough
|
---|
486 | * to fit a new free block just before the
|
---|
487 | * current block.
|
---|
488 | */
|
---|
489 | while (excess < STRUCT_OVERHEAD) {
|
---|
490 | aligned += falign;
|
---|
491 | excess += falign;
|
---|
492 | }
|
---|
493 |
|
---|
494 | /* Check for current block size again */
|
---|
495 | if (cur->size >= real_size + excess) {
|
---|
496 | size_t reduced_size = cur->size - excess;
|
---|
497 | cur = (heap_block_head_t *)
|
---|
498 | (AREA_FIRST_BLOCK(area) + excess);
|
---|
499 |
|
---|
500 | block_init((void *) AREA_FIRST_BLOCK(area), excess,
|
---|
501 | true, area);
|
---|
502 | block_init(cur, reduced_size, true, area);
|
---|
503 | split_mark(cur, real_size);
|
---|
504 |
|
---|
505 | next = cur;
|
---|
506 | return aligned;
|
---|
507 | }
|
---|
508 | }
|
---|
509 | }
|
---|
510 | }
|
---|
511 | }
|
---|
512 | }
|
---|
513 |
|
---|
514 | return NULL;
|
---|
515 | }
|
---|
516 |
|
---|
517 | /** Allocate a memory block
|
---|
518 | *
|
---|
519 | * Should be called only inside the critical section.
|
---|
520 | *
|
---|
521 | * @param size The size of the block to allocate.
|
---|
522 | * @param align Memory address alignment.
|
---|
523 | *
|
---|
524 | * @return Address of the allocated block or NULL on not enough memory.
|
---|
525 | *
|
---|
526 | */
|
---|
527 | static void *malloc_internal(const size_t size, const size_t align)
|
---|
528 | {
|
---|
529 | assert(first_heap_area != NULL);
|
---|
530 |
|
---|
531 | if (align == 0)
|
---|
532 | return NULL;
|
---|
533 |
|
---|
534 | size_t falign = lcm(align, BASE_ALIGN);
|
---|
535 | size_t real_size = GROSS_SIZE(ALIGN_UP(size, falign));
|
---|
536 |
|
---|
537 | bool retry = false;
|
---|
538 | heap_block_head_t *split;
|
---|
539 |
|
---|
540 | loop:
|
---|
541 |
|
---|
542 | /* Try the next fit approach */
|
---|
543 | split = next;
|
---|
544 |
|
---|
545 | if (split != NULL) {
|
---|
546 | void *addr = malloc_area(split->area, split, NULL, real_size,
|
---|
547 | falign);
|
---|
548 |
|
---|
549 | if (addr != NULL)
|
---|
550 | return addr;
|
---|
551 | }
|
---|
552 |
|
---|
553 | /* Search the entire heap */
|
---|
554 | heap_area_t *area;
|
---|
555 | for (area = first_heap_area; area != NULL; area = area->next) {
|
---|
556 | heap_block_head_t *first = (heap_block_head_t *)
|
---|
557 | AREA_FIRST_BLOCK(area);
|
---|
558 |
|
---|
559 | void *addr = malloc_area(area, first, split, real_size,
|
---|
560 | falign);
|
---|
561 |
|
---|
562 | if (addr != NULL)
|
---|
563 | return addr;
|
---|
564 | }
|
---|
565 |
|
---|
566 | if (!retry) {
|
---|
567 | /* Try to grow the heap space */
|
---|
568 | if (heap_grow(real_size)) {
|
---|
569 | retry = true;
|
---|
570 | goto loop;
|
---|
571 | }
|
---|
572 | }
|
---|
573 |
|
---|
574 | return NULL;
|
---|
575 | }
|
---|
576 |
|
---|
577 | /** Allocate memory by number of elements
|
---|
578 | *
|
---|
579 | * @param nmemb Number of members to allocate.
|
---|
580 | * @param size Size of one member in bytes.
|
---|
581 | *
|
---|
582 | * @return Allocated memory or NULL.
|
---|
583 | *
|
---|
584 | */
|
---|
585 | void *calloc(const size_t nmemb, const size_t size)
|
---|
586 | {
|
---|
587 | void *block = malloc(nmemb * size);
|
---|
588 | if (block == NULL)
|
---|
589 | return NULL;
|
---|
590 |
|
---|
591 | memset(block, 0, nmemb * size);
|
---|
592 | return block;
|
---|
593 | }
|
---|
594 |
|
---|
595 | /** Allocate memory
|
---|
596 | *
|
---|
597 | * @param size Number of bytes to allocate.
|
---|
598 | *
|
---|
599 | * @return Allocated memory or NULL.
|
---|
600 | *
|
---|
601 | */
|
---|
602 | void *malloc(const size_t size)
|
---|
603 | {
|
---|
604 | futex_down(&malloc_futex);
|
---|
605 | void *block = malloc_internal(size, BASE_ALIGN);
|
---|
606 | futex_up(&malloc_futex);
|
---|
607 |
|
---|
608 | return block;
|
---|
609 | }
|
---|
610 |
|
---|
611 | /** Allocate memory with specified alignment
|
---|
612 | *
|
---|
613 | * @param align Alignment in byes.
|
---|
614 | * @param size Number of bytes to allocate.
|
---|
615 | *
|
---|
616 | * @return Allocated memory or NULL.
|
---|
617 | *
|
---|
618 | */
|
---|
619 | void *memalign(const size_t align, const size_t size)
|
---|
620 | {
|
---|
621 | if (align == 0)
|
---|
622 | return NULL;
|
---|
623 |
|
---|
624 | size_t palign =
|
---|
625 | 1 << (fnzb(max(sizeof(void *), align) - 1) + 1);
|
---|
626 |
|
---|
627 | futex_down(&malloc_futex);
|
---|
628 | void *block = malloc_internal(size, palign);
|
---|
629 | futex_up(&malloc_futex);
|
---|
630 |
|
---|
631 | return block;
|
---|
632 | }
|
---|
633 |
|
---|
634 | /** Reallocate memory block
|
---|
635 | *
|
---|
636 | * @param addr Already allocated memory or NULL.
|
---|
637 | * @param size New size of the memory block.
|
---|
638 | *
|
---|
639 | * @return Reallocated memory or NULL.
|
---|
640 | *
|
---|
641 | */
|
---|
642 | void *realloc(const void *addr, const size_t size)
|
---|
643 | {
|
---|
644 | if (addr == NULL)
|
---|
645 | return malloc(size);
|
---|
646 |
|
---|
647 | futex_down(&malloc_futex);
|
---|
648 |
|
---|
649 | /* Calculate the position of the header. */
|
---|
650 | heap_block_head_t *head =
|
---|
651 | (heap_block_head_t *) (addr - sizeof(heap_block_head_t));
|
---|
652 |
|
---|
653 | block_check(head);
|
---|
654 | assert(!head->free);
|
---|
655 |
|
---|
656 | heap_area_t *area = head->area;
|
---|
657 |
|
---|
658 | area_check(area);
|
---|
659 | assert((void *) head >= (void *) AREA_FIRST_BLOCK(area));
|
---|
660 | assert((void *) head < area->end);
|
---|
661 |
|
---|
662 | void *ptr = NULL;
|
---|
663 | bool reloc = false;
|
---|
664 | size_t real_size = GROSS_SIZE(ALIGN_UP(size, BASE_ALIGN));
|
---|
665 | size_t orig_size = head->size;
|
---|
666 |
|
---|
667 | if (orig_size > real_size) {
|
---|
668 | /* Shrink */
|
---|
669 | if (orig_size - real_size >= STRUCT_OVERHEAD) {
|
---|
670 | /*
|
---|
671 | * Split the original block to a full block
|
---|
672 | * and a trailing free block.
|
---|
673 | */
|
---|
674 | block_init((void *) head, real_size, false, area);
|
---|
675 | block_init((void *) head + real_size,
|
---|
676 | orig_size - real_size, true, area);
|
---|
677 | heap_shrink();
|
---|
678 | }
|
---|
679 |
|
---|
680 | ptr = ((void *) head) + sizeof(heap_block_head_t);
|
---|
681 | } else {
|
---|
682 | /*
|
---|
683 | * Look at the next block. If it is free and the size is
|
---|
684 | * sufficient then merge the two. Otherwise just allocate
|
---|
685 | * a new block, copy the original data into it and
|
---|
686 | * free the original block.
|
---|
687 | */
|
---|
688 | heap_block_head_t *next_head =
|
---|
689 | (heap_block_head_t *) (((void *) head) + head->size);
|
---|
690 |
|
---|
691 | if (((void *) next_head < area->end) &&
|
---|
692 | (head->size + next_head->size >= real_size) &&
|
---|
693 | (next_head->free)) {
|
---|
694 | block_check(next_head);
|
---|
695 | block_init(head, head->size + next_head->size, false, area);
|
---|
696 | split_mark(head, real_size);
|
---|
697 |
|
---|
698 | ptr = ((void *) head) + sizeof(heap_block_head_t);
|
---|
699 | next = NULL;
|
---|
700 | } else
|
---|
701 | reloc = true;
|
---|
702 | }
|
---|
703 |
|
---|
704 | futex_up(&malloc_futex);
|
---|
705 |
|
---|
706 | if (reloc) {
|
---|
707 | ptr = malloc(size);
|
---|
708 | if (ptr != NULL) {
|
---|
709 | memcpy(ptr, addr, NET_SIZE(orig_size));
|
---|
710 | free(addr);
|
---|
711 | }
|
---|
712 | }
|
---|
713 |
|
---|
714 | return ptr;
|
---|
715 | }
|
---|
716 |
|
---|
717 | /** Free a memory block
|
---|
718 | *
|
---|
719 | * @param addr The address of the block.
|
---|
720 | *
|
---|
721 | */
|
---|
722 | void free(const void *addr)
|
---|
723 | {
|
---|
724 | futex_down(&malloc_futex);
|
---|
725 |
|
---|
726 | /* Calculate the position of the header. */
|
---|
727 | heap_block_head_t *head
|
---|
728 | = (heap_block_head_t *) (addr - sizeof(heap_block_head_t));
|
---|
729 |
|
---|
730 | block_check(head);
|
---|
731 | assert(!head->free);
|
---|
732 |
|
---|
733 | heap_area_t *area = head->area;
|
---|
734 |
|
---|
735 | area_check(area);
|
---|
736 | assert((void *) head >= (void *) AREA_FIRST_BLOCK(area));
|
---|
737 | assert((void *) head < area->end);
|
---|
738 |
|
---|
739 | /* Mark the block itself as free. */
|
---|
740 | head->free = true;
|
---|
741 |
|
---|
742 | /* Look at the next block. If it is free, merge the two. */
|
---|
743 | heap_block_head_t *next_head
|
---|
744 | = (heap_block_head_t *) (((void *) head) + head->size);
|
---|
745 |
|
---|
746 | if ((void *) next_head < area->end) {
|
---|
747 | block_check(next_head);
|
---|
748 | if (next_head->free)
|
---|
749 | block_init(head, head->size + next_head->size, true, area);
|
---|
750 | }
|
---|
751 |
|
---|
752 | /* Look at the previous block. If it is free, merge the two. */
|
---|
753 | if ((void *) head > (void *) AREA_FIRST_BLOCK(area)) {
|
---|
754 | heap_block_foot_t *prev_foot =
|
---|
755 | (heap_block_foot_t *) (((void *) head) - sizeof(heap_block_foot_t));
|
---|
756 |
|
---|
757 | heap_block_head_t *prev_head =
|
---|
758 | (heap_block_head_t *) (((void *) head) - prev_foot->size);
|
---|
759 |
|
---|
760 | block_check(prev_head);
|
---|
761 |
|
---|
762 | if (prev_head->free)
|
---|
763 | block_init(prev_head, prev_head->size + head->size, true,
|
---|
764 | area);
|
---|
765 | }
|
---|
766 |
|
---|
767 | heap_shrink();
|
---|
768 |
|
---|
769 | futex_up(&malloc_futex);
|
---|
770 | }
|
---|
771 |
|
---|
772 | /** @}
|
---|
773 | */
|
---|