ems_kfc.c 14 KB

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  1. /*
  2. * Copyright (C) 2019 Intel Corporation. All rights reserved.
  3. * SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
  4. */
  5. #include "ems_gc_internal.h"
  6. static gc_handle_t
  7. gc_init_internal(gc_heap_t *heap, char *base_addr, gc_size_t heap_max_size)
  8. {
  9. hmu_tree_node_t *root = NULL, *q = NULL;
  10. int ret;
  11. memset(heap, 0, sizeof *heap);
  12. memset(base_addr, 0, heap_max_size);
  13. ret = os_mutex_init(&heap->lock);
  14. if (ret != BHT_OK) {
  15. os_printf("[GC_ERROR]failed to init lock\n");
  16. return NULL;
  17. }
  18. /* init all data structures*/
  19. heap->current_size = heap_max_size;
  20. heap->base_addr = (gc_uint8 *)base_addr;
  21. heap->heap_id = (gc_handle_t)heap;
  22. heap->total_free_size = heap->current_size;
  23. heap->highmark_size = 0;
  24. #if WASM_ENABLE_GC != 0
  25. heap->gc_threshold_factor = GC_DEFAULT_THRESHOLD_FACTOR;
  26. gc_update_threshold(heap);
  27. #endif
  28. root = heap->kfc_tree_root = (hmu_tree_node_t *)heap->kfc_tree_root_buf;
  29. memset(root, 0, sizeof *root);
  30. root->size = sizeof *root;
  31. hmu_set_ut(&root->hmu_header, HMU_FC);
  32. hmu_set_size(&root->hmu_header, sizeof *root);
  33. q = (hmu_tree_node_t *)heap->base_addr;
  34. memset(q, 0, sizeof *q);
  35. hmu_set_ut(&q->hmu_header, HMU_FC);
  36. hmu_set_size(&q->hmu_header, heap->current_size);
  37. ASSERT_TREE_NODE_ALIGNED_ACCESS(q);
  38. ASSERT_TREE_NODE_ALIGNED_ACCESS(root);
  39. hmu_mark_pinuse(&q->hmu_header);
  40. root->right = q;
  41. q->parent = root;
  42. q->size = heap->current_size;
  43. bh_assert(root->size <= HMU_FC_NORMAL_MAX_SIZE);
  44. return heap;
  45. }
  46. gc_handle_t
  47. gc_init_with_pool(char *buf, gc_size_t buf_size)
  48. {
  49. char *buf_end = buf + buf_size;
  50. char *buf_aligned = (char *)(((uintptr_t)buf + 7) & (uintptr_t)~7);
  51. char *base_addr = buf_aligned + sizeof(gc_heap_t);
  52. gc_heap_t *heap = (gc_heap_t *)buf_aligned;
  53. gc_size_t heap_max_size;
  54. if (buf_size < APP_HEAP_SIZE_MIN) {
  55. os_printf("[GC_ERROR]heap init buf size (%" PRIu32 ") < %" PRIu32 "\n",
  56. buf_size, (uint32)APP_HEAP_SIZE_MIN);
  57. return NULL;
  58. }
  59. base_addr =
  60. (char *)(((uintptr_t)base_addr + 7) & (uintptr_t)~7) + GC_HEAD_PADDING;
  61. heap_max_size = (uint32)(buf_end - base_addr) & (uint32)~7;
  62. #if WASM_ENABLE_MEMORY_TRACING != 0
  63. os_printf("Heap created, total size: %u\n", buf_size);
  64. os_printf(" heap struct size: %u\n", sizeof(gc_heap_t));
  65. os_printf(" actual heap size: %u\n", heap_max_size);
  66. os_printf(" padding bytes: %u\n",
  67. buf_size - sizeof(gc_heap_t) - heap_max_size);
  68. #endif
  69. return gc_init_internal(heap, base_addr, heap_max_size);
  70. }
  71. gc_handle_t
  72. gc_init_with_struct_and_pool(char *struct_buf, gc_size_t struct_buf_size,
  73. char *pool_buf, gc_size_t pool_buf_size)
  74. {
  75. gc_heap_t *heap = (gc_heap_t *)struct_buf;
  76. char *base_addr = pool_buf + GC_HEAD_PADDING;
  77. char *pool_buf_end = pool_buf + pool_buf_size;
  78. gc_size_t heap_max_size;
  79. if ((((uintptr_t)struct_buf) & 7) != 0) {
  80. os_printf("[GC_ERROR]heap init struct buf not 8-byte aligned\n");
  81. return NULL;
  82. }
  83. if (struct_buf_size < sizeof(gc_handle_t)) {
  84. os_printf("[GC_ERROR]heap init struct buf size (%" PRIu32 ") < %zu\n",
  85. struct_buf_size, sizeof(gc_handle_t));
  86. return NULL;
  87. }
  88. if ((((uintptr_t)pool_buf) & 7) != 0) {
  89. os_printf("[GC_ERROR]heap init pool buf not 8-byte aligned\n");
  90. return NULL;
  91. }
  92. if (pool_buf_size < APP_HEAP_SIZE_MIN) {
  93. os_printf("[GC_ERROR]heap init buf size (%" PRIu32 ") < %u\n",
  94. pool_buf_size, APP_HEAP_SIZE_MIN);
  95. return NULL;
  96. }
  97. heap_max_size = (uint32)(pool_buf_end - base_addr) & (uint32)~7;
  98. #if WASM_ENABLE_MEMORY_TRACING != 0
  99. os_printf("Heap created, total size: %u\n",
  100. struct_buf_size + pool_buf_size);
  101. os_printf(" heap struct size: %u\n", sizeof(gc_heap_t));
  102. os_printf(" actual heap size: %u\n", heap_max_size);
  103. os_printf(" padding bytes: %u\n", pool_buf_size - heap_max_size);
  104. #endif
  105. return gc_init_internal(heap, base_addr, heap_max_size);
  106. }
  107. int
  108. gc_destroy_with_pool(gc_handle_t handle)
  109. {
  110. gc_heap_t *heap = (gc_heap_t *)handle;
  111. int ret = GC_SUCCESS;
  112. #if WASM_ENABLE_GC != 0
  113. gc_size_t i = 0;
  114. if (heap->extra_info_node_cnt > 0) {
  115. for (i = 0; i < heap->extra_info_node_cnt; i++) {
  116. extra_info_node_t *node = heap->extra_info_nodes[i];
  117. #if BH_ENABLE_GC_VERIFY != 0
  118. os_printf("Memory leak detected: gc object [%p] not claimed\n",
  119. node->obj);
  120. #endif
  121. bh_assert(heap->is_reclaim_enabled);
  122. node->finalizer(node->obj, node->data);
  123. BH_FREE(heap->extra_info_nodes[i]);
  124. }
  125. if (heap->extra_info_nodes != heap->extra_info_normal_nodes) {
  126. BH_FREE(heap->extra_info_nodes);
  127. }
  128. }
  129. #endif
  130. #if BH_ENABLE_GC_VERIFY != 0
  131. hmu_t *cur = (hmu_t *)heap->base_addr;
  132. hmu_t *end = (hmu_t *)((char *)heap->base_addr + heap->current_size);
  133. if (!heap->is_heap_corrupted
  134. && (hmu_t *)((char *)cur + hmu_get_size(cur)) != end) {
  135. os_printf("Memory leak detected:\n");
  136. gci_dump(heap);
  137. ret = GC_ERROR;
  138. }
  139. #endif
  140. os_mutex_destroy(&heap->lock);
  141. memset(heap->base_addr, 0, heap->current_size);
  142. memset(heap, 0, sizeof(gc_heap_t));
  143. return ret;
  144. }
  145. #if WASM_ENABLE_GC != 0
  146. #if WASM_ENABLE_THREAD_MGR == 0
  147. void
  148. gc_enable_gc_reclaim(gc_handle_t handle, void *exec_env)
  149. {
  150. gc_heap_t *heap = (gc_heap_t *)handle;
  151. heap->is_reclaim_enabled = 1;
  152. heap->exec_env = exec_env;
  153. }
  154. #else
  155. void
  156. gc_enable_gc_reclaim(gc_handle_t handle, void *cluster)
  157. {
  158. gc_heap_t *heap = (gc_heap_t *)handle;
  159. heap->is_reclaim_enabled = 1;
  160. heap->cluster = cluster;
  161. }
  162. #endif
  163. #endif
  164. uint32
  165. gc_get_heap_struct_size()
  166. {
  167. return sizeof(gc_heap_t);
  168. }
  169. static void
  170. adjust_ptr(uint8 **p_ptr, intptr_t offset)
  171. {
  172. if (*p_ptr)
  173. *p_ptr = (uint8 *)((intptr_t)(*p_ptr) + offset);
  174. }
  175. int
  176. gc_migrate(gc_handle_t handle, char *pool_buf_new, gc_size_t pool_buf_size)
  177. {
  178. gc_heap_t *heap = (gc_heap_t *)handle;
  179. char *base_addr_new = pool_buf_new + GC_HEAD_PADDING;
  180. char *pool_buf_end = pool_buf_new + pool_buf_size;
  181. intptr_t offset = (uint8 *)base_addr_new - (uint8 *)heap->base_addr;
  182. hmu_t *cur = NULL, *end = NULL;
  183. hmu_tree_node_t *tree_node;
  184. uint8 **p_left, **p_right, **p_parent;
  185. gc_size_t heap_max_size, size;
  186. if ((((uintptr_t)pool_buf_new) & 7) != 0) {
  187. os_printf("[GC_ERROR]heap migrate pool buf not 8-byte aligned\n");
  188. return GC_ERROR;
  189. }
  190. heap_max_size = (uint32)(pool_buf_end - base_addr_new) & (uint32)~7;
  191. if (pool_buf_end < base_addr_new || heap_max_size < heap->current_size) {
  192. os_printf("[GC_ERROR]heap migrate invlaid pool buf size\n");
  193. return GC_ERROR;
  194. }
  195. if (offset == 0)
  196. return 0;
  197. if (heap->is_heap_corrupted) {
  198. os_printf("[GC_ERROR]Heap is corrupted, heap migrate failed.\n");
  199. return GC_ERROR;
  200. }
  201. heap->base_addr = (uint8 *)base_addr_new;
  202. ASSERT_TREE_NODE_ALIGNED_ACCESS(heap->kfc_tree_root);
  203. p_left = (uint8 **)((uint8 *)heap->kfc_tree_root
  204. + offsetof(hmu_tree_node_t, left));
  205. p_right = (uint8 **)((uint8 *)heap->kfc_tree_root
  206. + offsetof(hmu_tree_node_t, right));
  207. p_parent = (uint8 **)((uint8 *)heap->kfc_tree_root
  208. + offsetof(hmu_tree_node_t, parent));
  209. adjust_ptr(p_left, offset);
  210. adjust_ptr(p_right, offset);
  211. adjust_ptr(p_parent, offset);
  212. cur = (hmu_t *)heap->base_addr;
  213. end = (hmu_t *)((char *)heap->base_addr + heap->current_size);
  214. while (cur < end) {
  215. size = hmu_get_size(cur);
  216. if (size <= 0 || size > (uint32)((uint8 *)end - (uint8 *)cur)) {
  217. os_printf("[GC_ERROR]Heap is corrupted, heap migrate failed.\n");
  218. heap->is_heap_corrupted = true;
  219. return GC_ERROR;
  220. }
  221. if (hmu_get_ut(cur) == HMU_FC && !HMU_IS_FC_NORMAL(size)) {
  222. tree_node = (hmu_tree_node_t *)cur;
  223. ASSERT_TREE_NODE_ALIGNED_ACCESS(tree_node);
  224. p_left = (uint8 **)((uint8 *)tree_node
  225. + offsetof(hmu_tree_node_t, left));
  226. p_right = (uint8 **)((uint8 *)tree_node
  227. + offsetof(hmu_tree_node_t, right));
  228. p_parent = (uint8 **)((uint8 *)tree_node
  229. + offsetof(hmu_tree_node_t, parent));
  230. adjust_ptr(p_left, offset);
  231. adjust_ptr(p_right, offset);
  232. if (tree_node->parent != heap->kfc_tree_root)
  233. /* The root node belongs to heap structure,
  234. it is fixed part and isn't changed. */
  235. adjust_ptr(p_parent, offset);
  236. }
  237. cur = (hmu_t *)((char *)cur + size);
  238. }
  239. if (cur != end) {
  240. os_printf("[GC_ERROR]Heap is corrupted, heap migrate failed.\n");
  241. heap->is_heap_corrupted = true;
  242. return GC_ERROR;
  243. }
  244. return 0;
  245. }
  246. bool
  247. gc_is_heap_corrupted(gc_handle_t handle)
  248. {
  249. gc_heap_t *heap = (gc_heap_t *)handle;
  250. return heap->is_heap_corrupted ? true : false;
  251. }
  252. #if BH_ENABLE_GC_VERIFY != 0
  253. void
  254. gci_verify_heap(gc_heap_t *heap)
  255. {
  256. hmu_t *cur = NULL, *end = NULL;
  257. bh_assert(heap && gci_is_heap_valid(heap));
  258. cur = (hmu_t *)heap->base_addr;
  259. end = (hmu_t *)(heap->base_addr + heap->current_size);
  260. while (cur < end) {
  261. hmu_verify(heap, cur);
  262. cur = (hmu_t *)((gc_uint8 *)cur + hmu_get_size(cur));
  263. }
  264. bh_assert(cur == end);
  265. }
  266. #endif
  267. void
  268. gc_heap_stat(void *heap_ptr, gc_stat_t *stat)
  269. {
  270. hmu_t *cur = NULL, *end = NULL;
  271. hmu_type_t ut;
  272. gc_size_t size;
  273. gc_heap_t *heap = (gc_heap_t *)heap_ptr;
  274. memset(stat, 0, sizeof(gc_stat_t));
  275. cur = (hmu_t *)heap->base_addr;
  276. end = (hmu_t *)((char *)heap->base_addr + heap->current_size);
  277. while (cur < end) {
  278. ut = hmu_get_ut(cur);
  279. size = hmu_get_size(cur);
  280. bh_assert(size > 0);
  281. if (ut == HMU_FC || ut == HMU_FM
  282. || (ut == HMU_VO && hmu_is_vo_freed(cur))
  283. || (ut == HMU_WO && !hmu_is_wo_marked(cur))) {
  284. if (ut == HMU_VO)
  285. stat->vo_free += size;
  286. if (ut == HMU_WO)
  287. stat->wo_free += size;
  288. stat->free += size;
  289. stat->free_block++;
  290. if (size / sizeof(int) < GC_HEAP_STAT_SIZE - 1)
  291. stat->free_sizes[size / sizeof(int)] += 1;
  292. else
  293. stat->free_sizes[GC_HEAP_STAT_SIZE - 1] += 1;
  294. }
  295. else {
  296. if (ut == HMU_VO)
  297. stat->vo_usage += size;
  298. if (ut == HMU_WO)
  299. stat->wo_usage += size;
  300. stat->usage += size;
  301. stat->usage_block++;
  302. if (size / sizeof(int) < GC_HEAP_STAT_SIZE - 1)
  303. stat->usage_sizes[size / sizeof(int)] += 1;
  304. else
  305. stat->usage_sizes[GC_HEAP_STAT_SIZE - 1] += 1;
  306. }
  307. cur = (hmu_t *)((char *)cur + size);
  308. }
  309. }
  310. void
  311. gc_print_stat(void *heap_ptr, int verbose)
  312. {
  313. gc_stat_t stat;
  314. int i;
  315. bh_assert(heap_ptr != NULL);
  316. gc_heap_t *heap = (gc_heap_t *)(heap_ptr);
  317. gc_heap_stat(heap, &stat);
  318. os_printf("# stat %s %p use %d free %d \n", "instance", heap, stat.usage,
  319. stat.free);
  320. os_printf("# stat %s %p wo_usage %d vo_usage %d \n", "instance", heap,
  321. stat.wo_usage, stat.vo_usage);
  322. os_printf("# stat %s %p wo_free %d vo_free %d \n", "instance", heap,
  323. stat.wo_free, stat.vo_free);
  324. #if WASM_ENABLE_GC == 0
  325. os_printf("# stat free size %" PRIu32 " high %" PRIu32 "\n",
  326. heap->total_free_size, heap->highmark_size);
  327. #else
  328. os_printf("# stat gc %" PRIu32 " free size %" PRIu32 " high %" PRIu32 "\n",
  329. heap->total_gc_count, heap->total_free_size, heap->highmark_size);
  330. #endif
  331. if (verbose) {
  332. os_printf("usage sizes: \n");
  333. for (i = 0; i < GC_HEAP_STAT_SIZE; i++)
  334. if (stat.usage_sizes[i])
  335. os_printf(" %d: %d; ", i * 4, stat.usage_sizes[i]);
  336. os_printf(" \n");
  337. os_printf("free sizes: \n");
  338. for (i = 0; i < GC_HEAP_STAT_SIZE; i++)
  339. if (stat.free_sizes[i])
  340. os_printf(" %d: %d; ", i * 4, stat.free_sizes[i]);
  341. }
  342. }
  343. void *
  344. gc_heap_stats(void *heap_arg, uint32 *stats, int size)
  345. {
  346. int i;
  347. gc_heap_t *heap = (gc_heap_t *)heap_arg;
  348. if (!gci_is_heap_valid(heap)) {
  349. for (i = 0; i < size; i++)
  350. stats[i] = 0;
  351. return NULL;
  352. }
  353. for (i = 0; i < size; i++) {
  354. switch (i) {
  355. case GC_STAT_TOTAL:
  356. stats[i] = heap->current_size;
  357. break;
  358. case GC_STAT_FREE:
  359. stats[i] = heap->total_free_size;
  360. break;
  361. case GC_STAT_HIGHMARK:
  362. stats[i] = heap->highmark_size;
  363. break;
  364. #if WASM_ENABLE_GC != 0
  365. case GC_STAT_COUNT:
  366. stats[i] = heap->total_gc_count;
  367. break;
  368. case GC_STAT_TIME:
  369. stats[i] = heap->total_gc_time;
  370. break;
  371. #endif
  372. default:
  373. break;
  374. }
  375. }
  376. return heap;
  377. }
  378. void
  379. gc_traverse_tree(hmu_tree_node_t *node, gc_size_t *stats, int *n)
  380. {
  381. if (!node)
  382. return;
  383. if (*n > 0)
  384. gc_traverse_tree(node->right, stats, n);
  385. if (*n > 0) {
  386. (*n)--;
  387. stats[*n] = node->size;
  388. }
  389. if (*n > 0)
  390. gc_traverse_tree(node->left, stats, n);
  391. }
  392. void
  393. gc_show_stat(void *heap)
  394. {
  395. uint32 stats[GC_STAT_MAX];
  396. heap = gc_heap_stats(heap, stats, GC_STAT_MAX);
  397. os_printf("\n[GC stats %p] %" PRIu32 " %" PRIu32 " %" PRIu32 " %" PRIu32
  398. " %" PRIu32 "\n",
  399. heap, stats[0], stats[1], stats[2], stats[3], stats[4]);
  400. }
  401. #if WASM_ENABLE_GC != 0
  402. void
  403. gc_show_fragment(void *heap_arg)
  404. {
  405. int stats[3];
  406. int n = 3;
  407. gc_heap_t *heap = (gc_heap_t *)heap_arg;
  408. memset(stats, 0, n * sizeof(int));
  409. gct_vm_mutex_lock(&heap->lock);
  410. gc_traverse_tree(heap->kfc_tree_root, (gc_size_t *)stats, &n);
  411. gct_vm_mutex_unlock(&heap->lock);
  412. os_printf("\n[GC %p top sizes] %" PRIu32 " %" PRIu32 " %" PRIu32 "\n", heap,
  413. stats[0], stats[1], stats[2]);
  414. }
  415. #endif