mem.c 15 KB

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  1. /*
  2. * File : mem.c
  3. * This file is part of RT-Thread RTOS
  4. * COPYRIGHT (C) 2008 - 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. * 2008-7-12 Bernard the first version
  13. * 2010-06-09 Bernard fix the end stub of heap
  14. * fix memory check in rt_realloc function
  15. * 2010-07-13 Bernard fix RT_ALIGN issue found by kuronca
  16. * 2010-10-14 Bernard fix rt_realloc issue when realloc a NULL pointer.
  17. */
  18. /*
  19. * Copyright (c) 2001-2004 Swedish Institute of Computer Science.
  20. * All rights reserved.
  21. *
  22. * Redistribution and use in source and binary forms, with or without modification,
  23. * are permitted provided that the following conditions are met:
  24. *
  25. * 1. Redistributions of source code must retain the above copyright notice,
  26. * this list of conditions and the following disclaimer.
  27. * 2. Redistributions in binary form must reproduce the above copyright notice,
  28. * this list of conditions and the following disclaimer in the documentation
  29. * and/or other materials provided with the distribution.
  30. * 3. The name of the author may not be used to endorse or promote products
  31. * derived from this software without specific prior written permission.
  32. *
  33. * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR IMPLIED
  34. * WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF
  35. * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT
  36. * SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL,
  37. * EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT
  38. * OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
  39. * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
  40. * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING
  41. * IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY
  42. * OF SUCH DAMAGE.
  43. *
  44. * This file is part of the lwIP TCP/IP stack.
  45. *
  46. * Author: Adam Dunkels <adam@sics.se>
  47. * Simon Goldschmidt
  48. *
  49. */
  50. #include <rthw.h>
  51. #include <rtthread.h>
  52. /* #define RT_MEM_DEBUG */
  53. #define RT_MEM_STATS
  54. #if defined (RT_USING_HEAP) && defined (RT_USING_SMALL_MEM)
  55. #ifdef RT_USING_HOOK
  56. static void (*rt_malloc_hook)(void *ptr, rt_size_t size);
  57. static void (*rt_free_hook)(void *ptr);
  58. /**
  59. * @addtogroup Hook
  60. */
  61. /*@{*/
  62. /**
  63. * This function will set a hook function, which will be invoked when a memory
  64. * block is allocated from heap memory.
  65. *
  66. * @param hook the hook function
  67. */
  68. void rt_malloc_sethook(void (*hook)(void *ptr, rt_size_t size))
  69. {
  70. rt_malloc_hook = hook;
  71. }
  72. /**
  73. * This function will set a hook function, which will be invoked when a memory
  74. * block is released to heap memory.
  75. *
  76. * @param hook the hook function
  77. */
  78. void rt_free_sethook(void (*hook)(void *ptr))
  79. {
  80. rt_free_hook = hook;
  81. }
  82. /*@}*/
  83. #endif
  84. #define HEAP_MAGIC 0x1ea0
  85. struct heap_mem
  86. {
  87. /* magic and used flag */
  88. rt_uint16_t magic;
  89. rt_uint16_t used;
  90. rt_size_t next, prev;
  91. };
  92. /** pointer to the heap: for alignment, heap_ptr is now a pointer instead of an array */
  93. static rt_uint8_t *heap_ptr;
  94. /** the last entry, always unused! */
  95. static struct heap_mem *heap_end;
  96. #define MIN_SIZE 12
  97. #define MIN_SIZE_ALIGNED RT_ALIGN(MIN_SIZE, RT_ALIGN_SIZE)
  98. #define SIZEOF_STRUCT_MEM RT_ALIGN(sizeof(struct heap_mem), RT_ALIGN_SIZE)
  99. static struct heap_mem *lfree; /* pointer to the lowest free block */
  100. static struct rt_semaphore heap_sem;
  101. static rt_size_t mem_size_aligned;
  102. #ifdef RT_MEM_STATS
  103. static rt_size_t used_mem, max_mem;
  104. #endif
  105. static void plug_holes(struct heap_mem *mem)
  106. {
  107. struct heap_mem *nmem;
  108. struct heap_mem *pmem;
  109. RT_ASSERT((rt_uint8_t *)mem >= heap_ptr);
  110. RT_ASSERT((rt_uint8_t *)mem < (rt_uint8_t *)heap_end);
  111. RT_ASSERT(mem->used == 0);
  112. /* plug hole forward */
  113. nmem = (struct heap_mem *)&heap_ptr[mem->next];
  114. if (mem != nmem && nmem->used == 0 && (rt_uint8_t *)nmem != (rt_uint8_t *)heap_end)
  115. {
  116. /* if mem->next is unused and not end of heap_ptr, combine mem and mem->next */
  117. if (lfree == nmem)
  118. {
  119. lfree = mem;
  120. }
  121. mem->next = nmem->next;
  122. ((struct heap_mem *)&heap_ptr[nmem->next])->prev = (rt_uint8_t *)mem - heap_ptr;
  123. }
  124. /* plug hole backward */
  125. pmem = (struct heap_mem *)&heap_ptr[mem->prev];
  126. if (pmem != mem && pmem->used == 0)
  127. {
  128. /* if mem->prev is unused, combine mem and mem->prev */
  129. if (lfree == mem)
  130. {
  131. lfree = pmem;
  132. }
  133. pmem->next = mem->next;
  134. ((struct heap_mem *)&heap_ptr[mem->next])->prev = (rt_uint8_t *)pmem - heap_ptr;
  135. }
  136. }
  137. /**
  138. * @ingroup SystemInit
  139. *
  140. * This function will init system heap
  141. *
  142. * @param begin_addr the beginning address of system page
  143. * @param end_addr the end address of system page
  144. */
  145. void rt_system_heap_init(void *begin_addr, void *end_addr)
  146. {
  147. struct heap_mem *mem;
  148. rt_uint32_t begin_align = RT_ALIGN((rt_uint32_t)begin_addr, RT_ALIGN_SIZE);
  149. rt_uint32_t end_align = RT_ALIGN_DOWN((rt_uint32_t)end_addr, RT_ALIGN_SIZE);
  150. RT_DEBUG_NOT_IN_INTERRUPT;
  151. /* alignment addr */
  152. if ((end_align > (2 * SIZEOF_STRUCT_MEM)) &&
  153. ((end_align - 2 * SIZEOF_STRUCT_MEM) >= begin_align))
  154. {
  155. /* calculate the aligned memory size */
  156. mem_size_aligned = end_align - begin_align - 2 * SIZEOF_STRUCT_MEM;
  157. }
  158. else
  159. {
  160. rt_kprintf("mem init, error begin address 0x%x, and end address 0x%x\n", (rt_uint32_t)begin_addr, (rt_uint32_t)end_addr);
  161. return;
  162. }
  163. /* point to begin address of heap */
  164. heap_ptr = (rt_uint8_t *)begin_align;
  165. RT_DEBUG_LOG(RT_DEBUG_MEM,
  166. ("mem init, heap begin address 0x%x, size %d\n", (rt_uint32_t)heap_ptr, mem_size_aligned));
  167. /* initialize the start of the heap */
  168. mem = (struct heap_mem *)heap_ptr;
  169. mem->magic= HEAP_MAGIC;
  170. mem->next = mem_size_aligned + SIZEOF_STRUCT_MEM;
  171. mem->prev = 0;
  172. mem->used = 0;
  173. /* initialize the end of the heap */
  174. heap_end = (struct heap_mem *)&heap_ptr[mem->next];
  175. heap_end->magic= HEAP_MAGIC;
  176. heap_end->used = 1;
  177. heap_end->next = mem_size_aligned + SIZEOF_STRUCT_MEM;
  178. heap_end->prev = mem_size_aligned + SIZEOF_STRUCT_MEM;
  179. rt_sem_init(&heap_sem, "heap", 1, RT_IPC_FLAG_FIFO);
  180. /* initialize the lowest-free pointer to the start of the heap */
  181. lfree = (struct heap_mem *)heap_ptr;
  182. }
  183. /**
  184. * @addtogroup MM
  185. */
  186. /*@{*/
  187. /**
  188. * Allocate a block of memory with a minimum of 'size' bytes.
  189. *
  190. * @param size is the minimum size of the requested block in bytes.
  191. *
  192. * @return pointer to allocated memory or NULL if no free memory was found.
  193. */
  194. void *rt_malloc(rt_size_t size)
  195. {
  196. rt_size_t ptr, ptr2;
  197. struct heap_mem *mem, *mem2;
  198. RT_DEBUG_NOT_IN_INTERRUPT;
  199. if (size == 0)
  200. return RT_NULL;
  201. if (size != RT_ALIGN(size, RT_ALIGN_SIZE))
  202. RT_DEBUG_LOG(RT_DEBUG_MEM, ("malloc size %d, but align to %d\n", size, RT_ALIGN(size, RT_ALIGN_SIZE)));
  203. else
  204. RT_DEBUG_LOG(RT_DEBUG_MEM, ("malloc size %d\n", size));
  205. /* alignment size */
  206. size = RT_ALIGN(size, RT_ALIGN_SIZE);
  207. if (size > mem_size_aligned)
  208. {
  209. RT_DEBUG_LOG(RT_DEBUG_MEM, ("no memory\n"));
  210. return RT_NULL;
  211. }
  212. /* every data block must be at least MIN_SIZE_ALIGNED long */
  213. if (size < MIN_SIZE_ALIGNED)
  214. size = MIN_SIZE_ALIGNED;
  215. /* take memory semaphore */
  216. rt_sem_take(&heap_sem, RT_WAITING_FOREVER);
  217. for (ptr = (rt_uint8_t *)lfree - heap_ptr; ptr < mem_size_aligned - size;
  218. ptr = ((struct heap_mem *)&heap_ptr[ptr])->next)
  219. {
  220. mem = (struct heap_mem *)&heap_ptr[ptr];
  221. if ((!mem->used) && (mem->next - (ptr + SIZEOF_STRUCT_MEM)) >= size)
  222. {
  223. /* mem is not used and at least perfect fit is possible:
  224. * mem->next - (ptr + SIZEOF_STRUCT_MEM) gives us the 'user data size' of mem */
  225. if (mem->next - (ptr + SIZEOF_STRUCT_MEM) >= (size + SIZEOF_STRUCT_MEM + MIN_SIZE_ALIGNED))
  226. {
  227. /* (in addition to the above, we test if another struct heap_mem (SIZEOF_STRUCT_MEM) containing
  228. * at least MIN_SIZE_ALIGNED of data also fits in the 'user data space' of 'mem')
  229. * -> split large block, create empty remainder,
  230. * remainder must be large enough to contain MIN_SIZE_ALIGNED data: if
  231. * mem->next - (ptr + (2*SIZEOF_STRUCT_MEM)) == size,
  232. * struct heap_mem would fit in but no data between mem2 and mem2->next
  233. * @todo we could leave out MIN_SIZE_ALIGNED. We would create an empty
  234. * region that couldn't hold data, but when mem->next gets freed,
  235. * the 2 regions would be combined, resulting in more free memory
  236. */
  237. ptr2 = ptr + SIZEOF_STRUCT_MEM + size;
  238. /* create mem2 struct */
  239. mem2 = (struct heap_mem *)&heap_ptr[ptr2];
  240. mem2->used = 0;
  241. mem2->next = mem->next;
  242. mem2->prev = ptr;
  243. /* and insert it between mem and mem->next */
  244. mem->next = ptr2;
  245. mem->used = 1;
  246. if (mem2->next != mem_size_aligned + SIZEOF_STRUCT_MEM)
  247. {
  248. ((struct heap_mem *)&heap_ptr[mem2->next])->prev = ptr2;
  249. }
  250. #ifdef RT_MEM_STATS
  251. used_mem += (size + SIZEOF_STRUCT_MEM);
  252. if (max_mem < used_mem)
  253. max_mem = used_mem;
  254. #endif
  255. }
  256. else
  257. {
  258. /* (a mem2 struct does no fit into the user data space of mem and mem->next will always
  259. * be used at this point: if not we have 2 unused structs in a row, plug_holes should have
  260. * take care of this).
  261. * -> near fit or excact fit: do not split, no mem2 creation
  262. * also can't move mem->next directly behind mem, since mem->next
  263. * will always be used at this point!
  264. */
  265. mem->used = 1;
  266. #ifdef RT_MEM_STATS
  267. used_mem += mem->next - ((rt_uint8_t*)mem - heap_ptr);
  268. if (max_mem < used_mem)
  269. max_mem = used_mem;
  270. #endif
  271. }
  272. /* set memory block magic */
  273. mem->magic = HEAP_MAGIC;
  274. if (mem == lfree)
  275. {
  276. /* Find next free block after mem and update lowest free pointer */
  277. while (lfree->used && lfree != heap_end)
  278. lfree = (struct heap_mem *)&heap_ptr[lfree->next];
  279. RT_ASSERT(((lfree == heap_end) || (!lfree->used)));
  280. }
  281. rt_sem_release(&heap_sem);
  282. RT_ASSERT((rt_uint32_t)mem + SIZEOF_STRUCT_MEM + size <= (rt_uint32_t)heap_end);
  283. RT_ASSERT((rt_uint32_t)((rt_uint8_t *)mem + SIZEOF_STRUCT_MEM) % RT_ALIGN_SIZE == 0);
  284. RT_ASSERT((((rt_uint32_t)mem) & (RT_ALIGN_SIZE-1)) == 0);
  285. RT_DEBUG_LOG(RT_DEBUG_MEM, ("allocate memory at 0x%x, size: %d\n",
  286. (rt_uint32_t)((rt_uint8_t *)mem + SIZEOF_STRUCT_MEM),
  287. (rt_uint32_t)(mem->next - ((rt_uint8_t *)mem - heap_ptr))));
  288. RT_OBJECT_HOOK_CALL(rt_malloc_hook, (((void*)((rt_uint8_t *)mem + SIZEOF_STRUCT_MEM)), size));
  289. /* return the memory data except mem struct */
  290. return (rt_uint8_t *)mem + SIZEOF_STRUCT_MEM;
  291. }
  292. }
  293. rt_sem_release(&heap_sem);
  294. return RT_NULL;
  295. }
  296. RTM_EXPORT(rt_malloc);
  297. /**
  298. * This function will change the previously allocated memory block.
  299. *
  300. * @param rmem pointer to memory allocated by rt_malloc
  301. * @param newsize the required new size
  302. *
  303. * @return the changed memory block address
  304. */
  305. void *rt_realloc(void *rmem, rt_size_t newsize)
  306. {
  307. rt_size_t size;
  308. rt_size_t ptr, ptr2;
  309. struct heap_mem *mem, *mem2;
  310. void *nmem;
  311. RT_DEBUG_NOT_IN_INTERRUPT;
  312. /* alignment size */
  313. newsize = RT_ALIGN(newsize, RT_ALIGN_SIZE);
  314. if (newsize > mem_size_aligned)
  315. {
  316. RT_DEBUG_LOG(RT_DEBUG_MEM, ("realloc: out of memory\n"));
  317. return RT_NULL;
  318. }
  319. /* allocate a new memory block */
  320. if (rmem == RT_NULL)
  321. return rt_malloc(newsize);
  322. rt_sem_take(&heap_sem, RT_WAITING_FOREVER);
  323. if ((rt_uint8_t *)rmem < (rt_uint8_t *)heap_ptr ||
  324. (rt_uint8_t *)rmem >= (rt_uint8_t *)heap_end)
  325. {
  326. /* illegal memory */
  327. rt_sem_release(&heap_sem);
  328. return rmem;
  329. }
  330. mem = (struct heap_mem *)((rt_uint8_t *)rmem - SIZEOF_STRUCT_MEM);
  331. ptr = (rt_uint8_t *)mem - heap_ptr;
  332. size = mem->next - ptr - SIZEOF_STRUCT_MEM;
  333. if (size == newsize)
  334. {
  335. /* the size is the same as */
  336. rt_sem_release(&heap_sem);
  337. return rmem;
  338. }
  339. if (newsize + SIZEOF_STRUCT_MEM + MIN_SIZE < size)
  340. {
  341. /* split memory block */
  342. #ifdef RT_MEM_STATS
  343. used_mem -= (size - newsize);
  344. #endif
  345. ptr2 = ptr + SIZEOF_STRUCT_MEM + newsize;
  346. mem2 = (struct heap_mem *)&heap_ptr[ptr2];
  347. mem2->magic= HEAP_MAGIC;
  348. mem2->used = 0;
  349. mem2->next = mem->next;
  350. mem2->prev = ptr;
  351. mem->next = ptr2;
  352. if (mem2->next != mem_size_aligned + SIZEOF_STRUCT_MEM)
  353. {
  354. ((struct heap_mem *)&heap_ptr[mem2->next])->prev = ptr2;
  355. }
  356. plug_holes(mem2);
  357. rt_sem_release(&heap_sem);
  358. return rmem;
  359. }
  360. rt_sem_release(&heap_sem);
  361. /* expand memory */
  362. nmem = rt_malloc(newsize);
  363. if (nmem != RT_NULL) /* check memory */
  364. {
  365. rt_memcpy(nmem, rmem, size < newsize ? size : newsize);
  366. rt_free(rmem);
  367. }
  368. return nmem;
  369. }
  370. RTM_EXPORT(rt_realloc);
  371. /**
  372. * This function will contiguously allocate enough space for count objects
  373. * that are size bytes of memory each and returns a pointer to the allocated
  374. * memory.
  375. *
  376. * The allocated memory is filled with bytes of value zero.
  377. *
  378. * @param count number of objects to allocate
  379. * @param size size of the objects to allocate
  380. *
  381. * @return pointer to allocated memory / NULL pointer if there is an error
  382. */
  383. void *rt_calloc(rt_size_t count, rt_size_t size)
  384. {
  385. void *p;
  386. RT_DEBUG_NOT_IN_INTERRUPT;
  387. /* allocate 'count' objects of size 'size' */
  388. p = rt_malloc(count * size);
  389. /* zero the memory */
  390. if (p)
  391. rt_memset(p, 0, count * size);
  392. return p;
  393. }
  394. RTM_EXPORT(rt_calloc);
  395. /**
  396. * This function will release the previously allocated memory block by rt_malloc.
  397. * The released memory block is taken back to system heap.
  398. *
  399. * @param rmem the address of memory which will be released
  400. */
  401. void rt_free(void *rmem)
  402. {
  403. struct heap_mem *mem;
  404. RT_DEBUG_NOT_IN_INTERRUPT;
  405. if (rmem == RT_NULL)
  406. return;
  407. RT_ASSERT((((rt_uint32_t)rmem) & (RT_ALIGN_SIZE-1)) == 0);
  408. RT_ASSERT((rt_uint8_t *)rmem >= (rt_uint8_t *)heap_ptr &&
  409. (rt_uint8_t *)rmem < (rt_uint8_t *)heap_end);
  410. RT_OBJECT_HOOK_CALL(rt_free_hook, (rmem));
  411. if ((rt_uint8_t *)rmem < (rt_uint8_t *)heap_ptr || (rt_uint8_t *)rmem >= (rt_uint8_t *)heap_end)
  412. {
  413. RT_DEBUG_LOG(RT_DEBUG_MEM, ("illegal memory\n"));
  414. return;
  415. }
  416. /* Get the corresponding struct heap_mem ... */
  417. mem = (struct heap_mem *)((rt_uint8_t *)rmem - SIZEOF_STRUCT_MEM);
  418. RT_DEBUG_LOG(RT_DEBUG_MEM, ("release memory 0x%x, size: %d\n",
  419. (rt_uint32_t)rmem,
  420. (rt_uint32_t)(mem->next - ((rt_uint8_t *)mem - heap_ptr))));
  421. /* protect the heap from concurrent access */
  422. rt_sem_take(&heap_sem, RT_WAITING_FOREVER);
  423. /* ... which has to be in a used state ... */
  424. RT_ASSERT(mem->used);
  425. RT_ASSERT(mem->magic == HEAP_MAGIC);
  426. /* ... and is now unused. */
  427. mem->used = 0;
  428. mem->magic = 0;
  429. if (mem < lfree)
  430. {
  431. /* the newly freed struct is now the lowest */
  432. lfree = mem;
  433. }
  434. #ifdef RT_MEM_STATS
  435. used_mem -= (mem->next - ((rt_uint8_t*)mem - heap_ptr));
  436. #endif
  437. /* finally, see if prev or next are free also */
  438. plug_holes(mem);
  439. rt_sem_release(&heap_sem);
  440. }
  441. RTM_EXPORT(rt_free);
  442. #ifdef RT_MEM_STATS
  443. void rt_memory_info(rt_uint32_t *total, rt_uint32_t *used, rt_uint32_t *max_used)
  444. {
  445. if (total != RT_NULL) *total = mem_size_aligned;
  446. if (used != RT_NULL) *used = used_mem;
  447. if (max_used != RT_NULL) *max_used = max_mem;
  448. }
  449. #ifdef RT_USING_FINSH
  450. #include <finsh.h>
  451. void list_mem(void)
  452. {
  453. rt_kprintf("total memory: %d\n", mem_size_aligned);
  454. rt_kprintf("used memory : %d\n", used_mem);
  455. rt_kprintf("maximum allocated memory: %d\n", max_mem);
  456. }
  457. FINSH_FUNCTION_EXPORT(list_mem, list memory usage information)
  458. #endif
  459. #endif
  460. /*@}*/
  461. #endif