memheap.c 9.3 KB

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  1. /*
  2. * File : memheap.c
  3. * This file is part of RT-Thread RTOS
  4. * COPYRIGHT (C) 2012, RT-Thread Development Team
  5. *
  6. * The license and distribution terms for this file may be
  7. * found in the file LICENSE in this distribution or at
  8. * http://www.rt-thread.org/license/LICENSE
  9. *
  10. * Change Logs:
  11. * Date Author Notes
  12. * 2012-04-10 Bernard first implementation
  13. */
  14. #include <rtthread.h>
  15. #ifdef RT_USING_MEMHEAP
  16. /* dynamic pool magic and mask */
  17. #define RT_MEMHEAP_MAGIC 0x1ea01ea0
  18. #define RT_MEMHEAP_MASK 0xfffffffe
  19. #define RT_MEMHEAP_USED 0x01
  20. #define RT_MEMHEAP_FREED 0x00
  21. #define RT_MEMHEAP_IS_USED(i) ((i)->magic & RT_MEMHEAP_USED)
  22. #define RT_MEMHEAP_MINIALLOC 12
  23. #define RT_MEMHEAP_SIZE RT_ALIGN(sizeof(struct rt_memheap_item), RT_ALIGN_SIZE)
  24. /*
  25. * The initialized memory pool will be:
  26. * +-----------------------------------+--------------------------+
  27. * | whole freed memory block | Used Memory Block Tailer |
  28. * +-----------------------------------+--------------------------+
  29. *
  30. * block_list --> whole freed memory block
  31. *
  32. * The length of Used Memory Block Tailer is 0, which is prevents block merging across list
  33. */
  34. rt_err_t rt_memheap_init(struct rt_memheap *memheap, const char *name,
  35. void *start_addr,
  36. rt_uint32_t size)
  37. {
  38. struct rt_memheap_item *item;
  39. RT_ASSERT(memheap != RT_NULL);
  40. /* initialize pool object */
  41. rt_object_init(&(memheap->parent), RT_Object_Class_MemHeap, name);
  42. memheap->start_addr = start_addr;
  43. memheap->pool_size = RT_ALIGN_DOWN(size, RT_ALIGN_SIZE);
  44. memheap->available_size = memheap->pool_size - (2 * RT_MEMHEAP_SIZE);
  45. /* initialize the free list header */
  46. item = &(memheap->free_header);
  47. item->magic = RT_MEMHEAP_MAGIC;
  48. item->pool_ptr = memheap;
  49. item->next = RT_NULL;
  50. item->prev = RT_NULL;
  51. item->next_free = item;
  52. item->prev_free = item;
  53. /* set the free list to free list header */
  54. memheap->free_list = item;
  55. /* initialize the first big memory block */
  56. item = (struct rt_memheap_item *)start_addr;
  57. item->magic = RT_MEMHEAP_MAGIC;
  58. item->pool_ptr = memheap;
  59. item->next = RT_NULL;
  60. item->prev = RT_NULL;
  61. item->next_free = item;
  62. item->prev_free = item;
  63. item->next = (struct rt_memheap_item *)
  64. ((rt_uint8_t *)item + memheap->available_size + RT_MEMHEAP_SIZE);
  65. item->prev = item->next;
  66. /* block list header */
  67. memheap->block_list = item;
  68. /* place the big memory block to free list */
  69. item->next_free = memheap->free_list->next_free;
  70. item->prev_free = memheap->free_list;
  71. memheap->free_list->next_free->prev_free = item;
  72. memheap->free_list->next_free = item;
  73. /* move to the end of memory pool to build a small tailer block, which prevents block merging */
  74. item = item->next;
  75. /* it's a used memory block */
  76. item->magic = RT_MEMHEAP_MAGIC | RT_MEMHEAP_USED;
  77. item->pool_ptr = memheap;
  78. item->next = (struct rt_memheap_item *)start_addr;
  79. item->prev = (struct rt_memheap_item *)start_addr;
  80. /* not in free list */
  81. item->next_free = item->prev_free = RT_NULL;
  82. RT_DEBUG_LOG(RT_DEBUG_MEMHEAP, ("memory heap: start addr 0x%08x, size %d, free list header 0x%08x",
  83. start_addr, size, &(memheap->free_header)));
  84. return RT_EOK;
  85. }
  86. RTM_EXPORT(rt_memheap_init);
  87. rt_err_t rt_memheap_detach(struct rt_memheap *heap)
  88. {
  89. rt_object_detach(&(heap->parent));
  90. /* Return a successful completion. */
  91. return RT_EOK;
  92. }
  93. RTM_EXPORT(rt_memheap_detach);
  94. void *rt_memheap_alloc(struct rt_memheap *pool_ptr, rt_uint32_t size)
  95. {
  96. rt_uint32_t free_size;
  97. struct rt_memheap_item *header_ptr;
  98. RT_ASSERT(pool_ptr != RT_NULL);
  99. /* align allocated size */
  100. size = RT_ALIGN(size, RT_ALIGN_SIZE);
  101. if (size < RT_MEMHEAP_MINIALLOC)
  102. size = RT_MEMHEAP_MINIALLOC;
  103. RT_DEBUG_LOG(RT_DEBUG_MEMHEAP, ("allocate %d", size));
  104. if (size < pool_ptr->available_size)
  105. {
  106. /* search on free list */
  107. free_size = 0;
  108. /* get the first free memory block */
  109. header_ptr = pool_ptr->free_list->next_free;
  110. while (header_ptr != pool_ptr->free_list && free_size < size)
  111. {
  112. /* get current freed memory block size */
  113. free_size = (rt_uint32_t)(header_ptr->next) - (rt_uint32_t)header_ptr - RT_MEMHEAP_SIZE;
  114. if (free_size < size)
  115. {
  116. /* move to next free memory block */
  117. header_ptr = header_ptr->next_free;
  118. }
  119. }
  120. /* determine if the memory is available. */
  121. if (free_size >= size)
  122. {
  123. /* a block that satisfies the request has been found. */
  124. /* determine if the block needs to be split. */
  125. if (free_size >= (size + RT_MEMHEAP_SIZE + RT_MEMHEAP_MINIALLOC))
  126. {
  127. struct rt_memheap_item *new_ptr;
  128. /* split the block. */
  129. new_ptr = (struct rt_memheap_item *)(((rt_uint8_t *)header_ptr) + size + RT_MEMHEAP_SIZE);
  130. RT_DEBUG_LOG(RT_DEBUG_MEMHEAP, ("split: h[0x%08x] nm[0x%08x] pm[0x%08x] to n[0x%08x]", header_ptr,
  131. header_ptr->next, header_ptr->prev,
  132. new_ptr));
  133. /* mark the new block as a memory block and freed. */
  134. new_ptr->magic = RT_MEMHEAP_MAGIC;
  135. /* put the pool pointer into the new block. */
  136. new_ptr->pool_ptr = pool_ptr;
  137. /* break down the block list */
  138. new_ptr->prev = header_ptr;
  139. new_ptr->next = header_ptr->next;
  140. header_ptr->next->prev = new_ptr;
  141. header_ptr->next = new_ptr;
  142. /* remove header ptr from free list */
  143. header_ptr->next_free->prev_free = header_ptr->prev_free;
  144. header_ptr->prev_free->next_free = header_ptr->next_free;
  145. header_ptr->next_free = RT_NULL;
  146. header_ptr->prev_free = RT_NULL;
  147. /* insert new_ptr to free list */
  148. new_ptr->next_free = pool_ptr->free_list->next_free;
  149. new_ptr->prev_free = pool_ptr->free_list;
  150. pool_ptr->free_list->next_free->prev_free = new_ptr;
  151. pool_ptr->free_list->next_free = new_ptr;
  152. RT_DEBUG_LOG(RT_DEBUG_MEMHEAP, ("new ptr: nf 0x%08x, pf 0x%08x",
  153. new_ptr->next_free, new_ptr->prev_free));
  154. /* decrement the available byte count. */
  155. pool_ptr->available_size = pool_ptr->available_size - size - RT_MEMHEAP_SIZE;
  156. }
  157. else
  158. {
  159. /* decrement the entire free size from the available bytes count. */
  160. pool_ptr->available_size = pool_ptr->available_size - free_size;
  161. /* remove header_ptr from free list */
  162. RT_DEBUG_LOG(RT_DEBUG_MEMHEAP, ("one block: h[0x%08x], nf 0x%08x, pf 0x%08x", header_ptr,
  163. header_ptr->next_free, header_ptr->prev_free));
  164. header_ptr->next_free->prev_free = header_ptr->prev_free;
  165. header_ptr->prev_free->next_free = header_ptr->next_free;
  166. header_ptr->next_free = RT_NULL;
  167. header_ptr->prev_free = RT_NULL;
  168. }
  169. /* Mark the allocated block as not available. */
  170. header_ptr->magic |= RT_MEMHEAP_USED;
  171. /* Return a memory address to the caller. */
  172. RT_DEBUG_LOG(RT_DEBUG_MEMHEAP, ("am: m[0x%08x], h[0x%08x], size: %d",
  173. (void *)((rt_uint8_t *)header_ptr + RT_MEMHEAP_SIZE), header_ptr, size);
  174. return (void *)((rt_uint8_t *)header_ptr + RT_MEMHEAP_SIZE));
  175. }
  176. }
  177. RT_DEBUG_LOG(RT_DEBUG_MEMHEAP, ("allocate memory: failed\n"));
  178. /* Return the completion status. */
  179. return RT_NULL;
  180. }
  181. RTM_EXPORT(rt_memheap_alloc);
  182. void rt_memheap_free(void *ptr)
  183. {
  184. struct rt_memheap *pool_ptr;
  185. struct rt_memheap_item *header_ptr, *new_ptr;
  186. rt_uint32_t insert_header;
  187. /* set initial status as OK */
  188. insert_header = 1;
  189. new_ptr = RT_NULL;
  190. header_ptr = (struct rt_memheap_item *)((rt_uint8_t *)ptr - RT_MEMHEAP_SIZE);
  191. RT_DEBUG_LOG(RT_DEBUG_MEMHEAP, ("free memory: m[0x%08x], h[0x%08x]", ptr, header_ptr));
  192. /* check magic */
  193. RT_ASSERT((header_ptr->magic & RT_MEMHEAP_MASK) == RT_MEMHEAP_MAGIC);
  194. /* get pool ptr */
  195. pool_ptr = header_ptr->pool_ptr;
  196. /* Mark the memory as available. */
  197. header_ptr->magic &= ~RT_MEMHEAP_USED;
  198. /* Adjust the available number of bytes. */
  199. pool_ptr->available_size = pool_ptr->available_size +
  200. ((rt_uint32_t)(header_ptr->next) -
  201. (rt_uint32_t)header_ptr) - RT_MEMHEAP_SIZE;
  202. /* Determine if the block can be merged with the previous neighbor. */
  203. if (!RT_MEMHEAP_IS_USED(header_ptr->prev))
  204. {
  205. RT_DEBUG_LOG(RT_DEBUG_MEMHEAP, ("merge: left node 0x%08x", header_ptr->prev));
  206. /* adjust the available number of bytes. */
  207. pool_ptr->available_size = pool_ptr->available_size + RT_MEMHEAP_SIZE;
  208. /* yes, merge block with previous neighbor. */
  209. (header_ptr->prev)->next = header_ptr->next;
  210. (header_ptr->next)->prev = header_ptr->prev;
  211. /* move header pointer to previous. */
  212. header_ptr = header_ptr->prev;
  213. /* don't insert header to free list */
  214. insert_header = 0;
  215. }
  216. /* determine if the block can be merged with the next neighbor. */
  217. if (!RT_MEMHEAP_IS_USED(header_ptr->next))
  218. {
  219. /* adjust the available number of bytes. */
  220. pool_ptr->available_size = pool_ptr->available_size + RT_MEMHEAP_SIZE;
  221. /* merge block with next neighbor. */
  222. new_ptr = header_ptr->next;
  223. RT_DEBUG_LOG(RT_DEBUG_MEMHEAP, ("merge: right node 0x%08x, nf 0x%08x, pf 0x%08x",
  224. new_ptr, new_ptr->next_free, new_ptr->prev_free));
  225. new_ptr->next->prev = header_ptr;
  226. header_ptr->next = new_ptr->next;
  227. /* remove new ptr from free list */
  228. new_ptr->next_free->prev_free = new_ptr->prev_free;
  229. new_ptr->prev_free->next_free = new_ptr->next_free;
  230. }
  231. if (insert_header)
  232. {
  233. /* no left merge, insert to free list */
  234. header_ptr->next_free = pool_ptr->free_list->next_free;
  235. header_ptr->prev_free = pool_ptr->free_list;
  236. pool_ptr->free_list->next_free->prev_free = header_ptr;
  237. pool_ptr->free_list->next_free = header_ptr;
  238. RT_DEBUG_LOG(RT_DEBUG_MEMHEAP, ("insert to free list: nf 0x%08x, pf 0x%08x",
  239. header_ptr->next_free, header_ptr->prev_free));
  240. }
  241. }
  242. RTM_EXPORT(rt_memheap_free);
  243. #endif