wasm_memory.c 27 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 "wasm_runtime_common.h"
  6. #include "../interpreter/wasm_runtime.h"
  7. #include "../aot/aot_runtime.h"
  8. #include "bh_platform.h"
  9. #include "mem_alloc.h"
  10. #include "wasm_memory.h"
  11. #if WASM_ENABLE_SHARED_MEMORY != 0
  12. #include "../common/wasm_shared_memory.h"
  13. #endif
  14. typedef enum Memory_Mode {
  15. MEMORY_MODE_UNKNOWN = 0,
  16. MEMORY_MODE_POOL,
  17. MEMORY_MODE_ALLOCATOR,
  18. MEMORY_MODE_SYSTEM_ALLOCATOR
  19. } Memory_Mode;
  20. static Memory_Mode memory_mode = MEMORY_MODE_UNKNOWN;
  21. static mem_allocator_t pool_allocator = NULL;
  22. static enlarge_memory_error_callback_t enlarge_memory_error_cb;
  23. static void *enlarge_memory_error_user_data;
  24. #if WASM_MEM_ALLOC_WITH_USER_DATA != 0
  25. static void *allocator_user_data = NULL;
  26. static void *(*malloc_func)(void *user_data, unsigned int size) = NULL;
  27. static void *(*realloc_func)(void *user_data, void *ptr,
  28. unsigned int size) = NULL;
  29. static void (*free_func)(void *user_data, void *ptr) = NULL;
  30. #else
  31. static void *(*malloc_func)(unsigned int size) = NULL;
  32. static void *(*realloc_func)(void *ptr, unsigned int size) = NULL;
  33. static void (*free_func)(void *ptr) = NULL;
  34. #endif
  35. static unsigned int global_pool_size;
  36. static uint32
  37. align_as_and_cast(uint64 size, uint64 alignment)
  38. {
  39. uint64 aligned_size = (size + alignment - 1) & ~(alignment - 1);
  40. return aligned_size > UINT32_MAX ? UINT32_MAX : (uint32)aligned_size;
  41. }
  42. static bool
  43. wasm_memory_init_with_pool(void *mem, unsigned int bytes)
  44. {
  45. mem_allocator_t _allocator = mem_allocator_create(mem, bytes);
  46. if (_allocator) {
  47. memory_mode = MEMORY_MODE_POOL;
  48. pool_allocator = _allocator;
  49. global_pool_size = bytes;
  50. return true;
  51. }
  52. LOG_ERROR("Init memory with pool (%p, %u) failed.\n", mem, bytes);
  53. return false;
  54. }
  55. #if WASM_MEM_ALLOC_WITH_USER_DATA != 0
  56. static bool
  57. wasm_memory_init_with_allocator(void *_user_data, void *_malloc_func,
  58. void *_realloc_func, void *_free_func)
  59. {
  60. if (_malloc_func && _free_func && _malloc_func != _free_func) {
  61. memory_mode = MEMORY_MODE_ALLOCATOR;
  62. allocator_user_data = _user_data;
  63. malloc_func = _malloc_func;
  64. realloc_func = _realloc_func;
  65. free_func = _free_func;
  66. return true;
  67. }
  68. LOG_ERROR("Init memory with allocator (%p, %p, %p, %p) failed.\n",
  69. _user_data, _malloc_func, _realloc_func, _free_func);
  70. return false;
  71. }
  72. #else
  73. static bool
  74. wasm_memory_init_with_allocator(void *_malloc_func, void *_realloc_func,
  75. void *_free_func)
  76. {
  77. if (_malloc_func && _free_func && _malloc_func != _free_func) {
  78. memory_mode = MEMORY_MODE_ALLOCATOR;
  79. malloc_func = _malloc_func;
  80. realloc_func = _realloc_func;
  81. free_func = _free_func;
  82. return true;
  83. }
  84. LOG_ERROR("Init memory with allocator (%p, %p, %p) failed.\n", _malloc_func,
  85. _realloc_func, _free_func);
  86. return false;
  87. }
  88. #endif
  89. static inline bool
  90. is_bounds_checks_enabled(WASMModuleInstanceCommon *module_inst)
  91. {
  92. #if WASM_CONFIGURABLE_BOUNDS_CHECKS != 0
  93. if (!module_inst) {
  94. return true;
  95. }
  96. return wasm_runtime_is_bounds_checks_enabled(module_inst);
  97. #else
  98. return true;
  99. #endif
  100. }
  101. bool
  102. wasm_runtime_memory_init(mem_alloc_type_t mem_alloc_type,
  103. const MemAllocOption *alloc_option)
  104. {
  105. if (mem_alloc_type == Alloc_With_Pool) {
  106. return wasm_memory_init_with_pool(alloc_option->pool.heap_buf,
  107. alloc_option->pool.heap_size);
  108. }
  109. else if (mem_alloc_type == Alloc_With_Allocator) {
  110. #if WASM_MEM_ALLOC_WITH_USER_DATA != 0
  111. return wasm_memory_init_with_allocator(
  112. alloc_option->allocator.user_data,
  113. alloc_option->allocator.malloc_func,
  114. alloc_option->allocator.realloc_func,
  115. alloc_option->allocator.free_func);
  116. #else
  117. return wasm_memory_init_with_allocator(
  118. alloc_option->allocator.malloc_func,
  119. alloc_option->allocator.realloc_func,
  120. alloc_option->allocator.free_func);
  121. #endif
  122. }
  123. else if (mem_alloc_type == Alloc_With_System_Allocator) {
  124. memory_mode = MEMORY_MODE_SYSTEM_ALLOCATOR;
  125. return true;
  126. }
  127. else {
  128. return false;
  129. }
  130. }
  131. void
  132. wasm_runtime_memory_destroy()
  133. {
  134. if (memory_mode == MEMORY_MODE_POOL) {
  135. #if BH_ENABLE_GC_VERIFY == 0
  136. (void)mem_allocator_destroy(pool_allocator);
  137. #else
  138. int ret = mem_allocator_destroy(pool_allocator);
  139. if (ret != 0) {
  140. /* Memory leak detected */
  141. exit(-1);
  142. }
  143. #endif
  144. }
  145. memory_mode = MEMORY_MODE_UNKNOWN;
  146. }
  147. unsigned
  148. wasm_runtime_memory_pool_size()
  149. {
  150. if (memory_mode == MEMORY_MODE_POOL)
  151. return global_pool_size;
  152. else
  153. return UINT32_MAX;
  154. }
  155. static inline void *
  156. wasm_runtime_malloc_internal(unsigned int size)
  157. {
  158. if (memory_mode == MEMORY_MODE_UNKNOWN) {
  159. LOG_WARNING(
  160. "wasm_runtime_malloc failed: memory hasn't been initialize.\n");
  161. return NULL;
  162. }
  163. else if (memory_mode == MEMORY_MODE_POOL) {
  164. return mem_allocator_malloc(pool_allocator, size);
  165. }
  166. else if (memory_mode == MEMORY_MODE_ALLOCATOR) {
  167. #if WASM_MEM_ALLOC_WITH_USER_DATA != 0
  168. return malloc_func(allocator_user_data, size);
  169. #else
  170. return malloc_func(size);
  171. #endif
  172. }
  173. else {
  174. return os_malloc(size);
  175. }
  176. }
  177. static inline void *
  178. wasm_runtime_realloc_internal(void *ptr, unsigned int size)
  179. {
  180. if (memory_mode == MEMORY_MODE_UNKNOWN) {
  181. LOG_WARNING(
  182. "wasm_runtime_realloc failed: memory hasn't been initialize.\n");
  183. return NULL;
  184. }
  185. else if (memory_mode == MEMORY_MODE_POOL) {
  186. return mem_allocator_realloc(pool_allocator, ptr, size);
  187. }
  188. else if (memory_mode == MEMORY_MODE_ALLOCATOR) {
  189. if (realloc_func)
  190. #if WASM_MEM_ALLOC_WITH_USER_DATA != 0
  191. return realloc_func(allocator_user_data, ptr, size);
  192. #else
  193. return realloc_func(ptr, size);
  194. #endif
  195. else
  196. return NULL;
  197. }
  198. else {
  199. return os_realloc(ptr, size);
  200. }
  201. }
  202. static inline void
  203. wasm_runtime_free_internal(void *ptr)
  204. {
  205. if (!ptr) {
  206. LOG_WARNING("warning: wasm_runtime_free with NULL pointer\n");
  207. #if BH_ENABLE_GC_VERIFY != 0
  208. exit(-1);
  209. #endif
  210. return;
  211. }
  212. if (memory_mode == MEMORY_MODE_UNKNOWN) {
  213. LOG_WARNING("warning: wasm_runtime_free failed: "
  214. "memory hasn't been initialize.\n");
  215. }
  216. else if (memory_mode == MEMORY_MODE_POOL) {
  217. mem_allocator_free(pool_allocator, ptr);
  218. }
  219. else if (memory_mode == MEMORY_MODE_ALLOCATOR) {
  220. #if WASM_MEM_ALLOC_WITH_USER_DATA != 0
  221. free_func(allocator_user_data, ptr);
  222. #else
  223. free_func(ptr);
  224. #endif
  225. }
  226. else {
  227. os_free(ptr);
  228. }
  229. }
  230. void *
  231. wasm_runtime_malloc(unsigned int size)
  232. {
  233. if (size == 0) {
  234. LOG_WARNING("warning: wasm_runtime_malloc with size zero\n");
  235. /* At lease alloc 1 byte to avoid malloc failed */
  236. size = 1;
  237. #if BH_ENABLE_GC_VERIFY != 0
  238. exit(-1);
  239. #endif
  240. }
  241. return wasm_runtime_malloc_internal(size);
  242. }
  243. void *
  244. wasm_runtime_realloc(void *ptr, unsigned int size)
  245. {
  246. return wasm_runtime_realloc_internal(ptr, size);
  247. }
  248. void
  249. wasm_runtime_free(void *ptr)
  250. {
  251. wasm_runtime_free_internal(ptr);
  252. }
  253. bool
  254. wasm_runtime_get_mem_alloc_info(mem_alloc_info_t *mem_alloc_info)
  255. {
  256. if (memory_mode == MEMORY_MODE_POOL) {
  257. return mem_allocator_get_alloc_info(pool_allocator, mem_alloc_info);
  258. }
  259. return false;
  260. }
  261. bool
  262. wasm_runtime_validate_app_addr(WASMModuleInstanceCommon *module_inst_comm,
  263. uint32 app_offset, uint32 size)
  264. {
  265. WASMModuleInstance *module_inst = (WASMModuleInstance *)module_inst_comm;
  266. WASMMemoryInstance *memory_inst;
  267. bh_assert(module_inst_comm->module_type == Wasm_Module_Bytecode
  268. || module_inst_comm->module_type == Wasm_Module_AoT);
  269. if (!is_bounds_checks_enabled(module_inst_comm)) {
  270. return true;
  271. }
  272. memory_inst = wasm_get_default_memory(module_inst);
  273. if (!memory_inst) {
  274. goto fail;
  275. }
  276. /* integer overflow check */
  277. if (app_offset > UINT32_MAX - size) {
  278. goto fail;
  279. }
  280. SHARED_MEMORY_LOCK(memory_inst);
  281. if (app_offset + size <= memory_inst->memory_data_size) {
  282. SHARED_MEMORY_UNLOCK(memory_inst);
  283. return true;
  284. }
  285. SHARED_MEMORY_UNLOCK(memory_inst);
  286. fail:
  287. wasm_set_exception(module_inst, "out of bounds memory access");
  288. return false;
  289. }
  290. bool
  291. wasm_runtime_validate_app_str_addr(WASMModuleInstanceCommon *module_inst_comm,
  292. uint32 app_str_offset)
  293. {
  294. WASMModuleInstance *module_inst = (WASMModuleInstance *)module_inst_comm;
  295. uint32 app_end_offset;
  296. char *str, *str_end;
  297. bh_assert(module_inst_comm->module_type == Wasm_Module_Bytecode
  298. || module_inst_comm->module_type == Wasm_Module_AoT);
  299. if (!is_bounds_checks_enabled(module_inst_comm)) {
  300. return true;
  301. }
  302. if (!wasm_runtime_get_app_addr_range(module_inst_comm, app_str_offset, NULL,
  303. &app_end_offset))
  304. goto fail;
  305. str = wasm_runtime_addr_app_to_native(module_inst_comm, app_str_offset);
  306. str_end = str + (app_end_offset - app_str_offset);
  307. while (str < str_end && *str != '\0')
  308. str++;
  309. if (str == str_end)
  310. goto fail;
  311. return true;
  312. fail:
  313. wasm_set_exception(module_inst, "out of bounds memory access");
  314. return false;
  315. }
  316. bool
  317. wasm_runtime_validate_native_addr(WASMModuleInstanceCommon *module_inst_comm,
  318. void *native_ptr, uint32 size)
  319. {
  320. WASMModuleInstance *module_inst = (WASMModuleInstance *)module_inst_comm;
  321. WASMMemoryInstance *memory_inst;
  322. uint8 *addr = (uint8 *)native_ptr;
  323. bh_assert(module_inst_comm->module_type == Wasm_Module_Bytecode
  324. || module_inst_comm->module_type == Wasm_Module_AoT);
  325. if (!is_bounds_checks_enabled(module_inst_comm)) {
  326. return true;
  327. }
  328. memory_inst = wasm_get_default_memory(module_inst);
  329. if (!memory_inst) {
  330. goto fail;
  331. }
  332. /* integer overflow check */
  333. if ((uintptr_t)addr > UINTPTR_MAX - size) {
  334. goto fail;
  335. }
  336. SHARED_MEMORY_LOCK(memory_inst);
  337. if (memory_inst->memory_data <= addr
  338. && addr + size <= memory_inst->memory_data_end) {
  339. SHARED_MEMORY_UNLOCK(memory_inst);
  340. return true;
  341. }
  342. SHARED_MEMORY_UNLOCK(memory_inst);
  343. fail:
  344. wasm_set_exception(module_inst, "out of bounds memory access");
  345. return false;
  346. }
  347. void *
  348. wasm_runtime_addr_app_to_native(WASMModuleInstanceCommon *module_inst_comm,
  349. uint32 app_offset)
  350. {
  351. WASMModuleInstance *module_inst = (WASMModuleInstance *)module_inst_comm;
  352. WASMMemoryInstance *memory_inst;
  353. uint8 *addr;
  354. bool bounds_checks;
  355. bh_assert(module_inst_comm->module_type == Wasm_Module_Bytecode
  356. || module_inst_comm->module_type == Wasm_Module_AoT);
  357. bounds_checks = is_bounds_checks_enabled(module_inst_comm);
  358. memory_inst = wasm_get_default_memory(module_inst);
  359. if (!memory_inst) {
  360. return NULL;
  361. }
  362. SHARED_MEMORY_LOCK(memory_inst);
  363. addr = memory_inst->memory_data + app_offset;
  364. if (bounds_checks) {
  365. if (memory_inst->memory_data <= addr
  366. && addr < memory_inst->memory_data_end) {
  367. SHARED_MEMORY_UNLOCK(memory_inst);
  368. return addr;
  369. }
  370. }
  371. /* If bounds checks is disabled, return the address directly */
  372. else if (app_offset != 0) {
  373. SHARED_MEMORY_UNLOCK(memory_inst);
  374. return addr;
  375. }
  376. SHARED_MEMORY_UNLOCK(memory_inst);
  377. return NULL;
  378. }
  379. uint32
  380. wasm_runtime_addr_native_to_app(WASMModuleInstanceCommon *module_inst_comm,
  381. void *native_ptr)
  382. {
  383. WASMModuleInstance *module_inst = (WASMModuleInstance *)module_inst_comm;
  384. WASMMemoryInstance *memory_inst;
  385. uint8 *addr = (uint8 *)native_ptr;
  386. bool bounds_checks;
  387. uint32 ret;
  388. bh_assert(module_inst_comm->module_type == Wasm_Module_Bytecode
  389. || module_inst_comm->module_type == Wasm_Module_AoT);
  390. bounds_checks = is_bounds_checks_enabled(module_inst_comm);
  391. memory_inst = wasm_get_default_memory(module_inst);
  392. if (!memory_inst) {
  393. return 0;
  394. }
  395. SHARED_MEMORY_LOCK(memory_inst);
  396. if (bounds_checks) {
  397. if (memory_inst->memory_data <= addr
  398. && addr < memory_inst->memory_data_end) {
  399. ret = (uint32)(addr - memory_inst->memory_data);
  400. SHARED_MEMORY_UNLOCK(memory_inst);
  401. return ret;
  402. }
  403. }
  404. /* If bounds checks is disabled, return the offset directly */
  405. else if (addr != NULL) {
  406. ret = (uint32)(addr - memory_inst->memory_data);
  407. SHARED_MEMORY_UNLOCK(memory_inst);
  408. return ret;
  409. }
  410. SHARED_MEMORY_UNLOCK(memory_inst);
  411. return 0;
  412. }
  413. bool
  414. wasm_runtime_get_app_addr_range(WASMModuleInstanceCommon *module_inst_comm,
  415. uint32 app_offset, uint32 *p_app_start_offset,
  416. uint32 *p_app_end_offset)
  417. {
  418. WASMModuleInstance *module_inst = (WASMModuleInstance *)module_inst_comm;
  419. WASMMemoryInstance *memory_inst;
  420. uint32 memory_data_size;
  421. bh_assert(module_inst_comm->module_type == Wasm_Module_Bytecode
  422. || module_inst_comm->module_type == Wasm_Module_AoT);
  423. memory_inst = wasm_get_default_memory(module_inst);
  424. if (!memory_inst) {
  425. return false;
  426. }
  427. SHARED_MEMORY_LOCK(memory_inst);
  428. memory_data_size = memory_inst->memory_data_size;
  429. if (app_offset < memory_data_size) {
  430. if (p_app_start_offset)
  431. *p_app_start_offset = 0;
  432. if (p_app_end_offset)
  433. *p_app_end_offset = memory_data_size;
  434. SHARED_MEMORY_UNLOCK(memory_inst);
  435. return true;
  436. }
  437. SHARED_MEMORY_UNLOCK(memory_inst);
  438. return false;
  439. }
  440. bool
  441. wasm_runtime_get_native_addr_range(WASMModuleInstanceCommon *module_inst_comm,
  442. uint8 *native_ptr,
  443. uint8 **p_native_start_addr,
  444. uint8 **p_native_end_addr)
  445. {
  446. WASMModuleInstance *module_inst = (WASMModuleInstance *)module_inst_comm;
  447. WASMMemoryInstance *memory_inst;
  448. uint8 *addr = (uint8 *)native_ptr;
  449. bh_assert(module_inst_comm->module_type == Wasm_Module_Bytecode
  450. || module_inst_comm->module_type == Wasm_Module_AoT);
  451. memory_inst = wasm_get_default_memory(module_inst);
  452. if (!memory_inst) {
  453. return false;
  454. }
  455. SHARED_MEMORY_LOCK(memory_inst);
  456. if (memory_inst->memory_data <= addr
  457. && addr < memory_inst->memory_data_end) {
  458. if (p_native_start_addr)
  459. *p_native_start_addr = memory_inst->memory_data;
  460. if (p_native_end_addr)
  461. *p_native_end_addr = memory_inst->memory_data_end;
  462. SHARED_MEMORY_UNLOCK(memory_inst);
  463. return true;
  464. }
  465. SHARED_MEMORY_UNLOCK(memory_inst);
  466. return false;
  467. }
  468. bool
  469. wasm_check_app_addr_and_convert(WASMModuleInstance *module_inst, bool is_str,
  470. uint32 app_buf_addr, uint32 app_buf_size,
  471. void **p_native_addr)
  472. {
  473. WASMMemoryInstance *memory_inst = wasm_get_default_memory(module_inst);
  474. uint8 *native_addr;
  475. bool bounds_checks;
  476. if (!memory_inst) {
  477. wasm_set_exception(module_inst, "out of bounds memory access");
  478. return false;
  479. }
  480. native_addr = memory_inst->memory_data + app_buf_addr;
  481. bounds_checks = is_bounds_checks_enabled((wasm_module_inst_t)module_inst);
  482. if (!bounds_checks) {
  483. if (app_buf_addr == 0) {
  484. native_addr = NULL;
  485. }
  486. goto success;
  487. }
  488. /* No need to check the app_offset and buf_size if memory access
  489. boundary check with hardware trap is enabled */
  490. #ifndef OS_ENABLE_HW_BOUND_CHECK
  491. SHARED_MEMORY_LOCK(memory_inst);
  492. if (app_buf_addr >= memory_inst->memory_data_size) {
  493. goto fail;
  494. }
  495. if (!is_str) {
  496. if (app_buf_size > memory_inst->memory_data_size - app_buf_addr) {
  497. goto fail;
  498. }
  499. }
  500. else {
  501. const char *str, *str_end;
  502. /* The whole string must be in the linear memory */
  503. str = (const char *)native_addr;
  504. str_end = (const char *)memory_inst->memory_data_end;
  505. while (str < str_end && *str != '\0')
  506. str++;
  507. if (str == str_end)
  508. goto fail;
  509. }
  510. SHARED_MEMORY_UNLOCK(memory_inst);
  511. #endif
  512. success:
  513. *p_native_addr = (void *)native_addr;
  514. return true;
  515. #ifndef OS_ENABLE_HW_BOUND_CHECK
  516. fail:
  517. SHARED_MEMORY_UNLOCK(memory_inst);
  518. wasm_set_exception(module_inst, "out of bounds memory access");
  519. return false;
  520. #endif
  521. }
  522. WASMMemoryInstance *
  523. wasm_get_default_memory(WASMModuleInstance *module_inst)
  524. {
  525. if (module_inst->memories)
  526. return module_inst->memories[0];
  527. else
  528. return NULL;
  529. }
  530. void
  531. wasm_runtime_set_mem_bound_check_bytes(WASMMemoryInstance *memory,
  532. uint64 memory_data_size)
  533. {
  534. #if WASM_ENABLE_FAST_JIT != 0 || WASM_ENABLE_JIT != 0 || WASM_ENABLE_AOT != 0
  535. #if UINTPTR_MAX == UINT64_MAX
  536. memory->mem_bound_check_1byte.u64 = memory_data_size - 1;
  537. memory->mem_bound_check_2bytes.u64 = memory_data_size - 2;
  538. memory->mem_bound_check_4bytes.u64 = memory_data_size - 4;
  539. memory->mem_bound_check_8bytes.u64 = memory_data_size - 8;
  540. memory->mem_bound_check_16bytes.u64 = memory_data_size - 16;
  541. #else
  542. memory->mem_bound_check_1byte.u32[0] = (uint32)memory_data_size - 1;
  543. memory->mem_bound_check_2bytes.u32[0] = (uint32)memory_data_size - 2;
  544. memory->mem_bound_check_4bytes.u32[0] = (uint32)memory_data_size - 4;
  545. memory->mem_bound_check_8bytes.u32[0] = (uint32)memory_data_size - 8;
  546. memory->mem_bound_check_16bytes.u32[0] = (uint32)memory_data_size - 16;
  547. #endif
  548. #endif
  549. }
  550. static void
  551. wasm_munmap_linear_memory(void *mapped_mem, uint64 commit_size, uint64 map_size)
  552. {
  553. #ifdef BH_PLATFORM_WINDOWS
  554. os_mem_decommit(mapped_mem, commit_size);
  555. #else
  556. (void)commit_size;
  557. #endif
  558. os_munmap(mapped_mem, map_size);
  559. }
  560. static void *
  561. wasm_mremap_linear_memory(void *mapped_mem, uint64 old_size, uint64 new_size,
  562. uint64 commit_size)
  563. {
  564. void *new_mem;
  565. bh_assert(new_size > 0);
  566. bh_assert(new_size > old_size);
  567. if (mapped_mem) {
  568. new_mem = os_mremap(mapped_mem, old_size, new_size);
  569. }
  570. else {
  571. new_mem = os_mmap(NULL, new_size, MMAP_PROT_NONE, MMAP_MAP_NONE,
  572. os_get_invalid_handle());
  573. }
  574. if (!new_mem) {
  575. return NULL;
  576. }
  577. #ifdef BH_PLATFORM_WINDOWS
  578. if (commit_size > 0
  579. && !os_mem_commit(new_mem, commit_size,
  580. MMAP_PROT_READ | MMAP_PROT_WRITE)) {
  581. os_munmap(new_mem, new_size);
  582. return NULL;
  583. }
  584. #endif
  585. if (os_mprotect(new_mem, commit_size, MMAP_PROT_READ | MMAP_PROT_WRITE)
  586. != 0) {
  587. wasm_munmap_linear_memory(new_mem, new_size, new_size);
  588. return NULL;
  589. }
  590. return new_mem;
  591. }
  592. static void *
  593. wasm_mmap_linear_memory(uint64_t map_size, uint64 commit_size)
  594. {
  595. return wasm_mremap_linear_memory(NULL, 0, map_size, commit_size);
  596. }
  597. bool
  598. wasm_enlarge_memory_internal(WASMModuleInstance *module, uint32 inc_page_count)
  599. {
  600. WASMMemoryInstance *memory = wasm_get_default_memory(module);
  601. uint8 *memory_data_old, *memory_data_new, *heap_data_old;
  602. uint32 num_bytes_per_page, heap_size, total_size_old = 0;
  603. uint32 cur_page_count, max_page_count, total_page_count;
  604. uint64 total_size_new;
  605. bool ret = true, full_size_mmaped;
  606. enlarge_memory_error_reason_t failure_reason = INTERNAL_ERROR;
  607. if (!memory) {
  608. ret = false;
  609. goto return_func;
  610. }
  611. #ifdef OS_ENABLE_HW_BOUND_CHECK
  612. full_size_mmaped = true;
  613. #elif WASM_ENABLE_SHARED_MEMORY != 0
  614. full_size_mmaped = shared_memory_is_shared(memory);
  615. #else
  616. full_size_mmaped = false;
  617. #endif
  618. memory_data_old = memory->memory_data;
  619. total_size_old = memory->memory_data_size;
  620. heap_data_old = memory->heap_data;
  621. heap_size = (uint32)(memory->heap_data_end - memory->heap_data);
  622. num_bytes_per_page = memory->num_bytes_per_page;
  623. cur_page_count = memory->cur_page_count;
  624. max_page_count = memory->max_page_count;
  625. total_page_count = inc_page_count + cur_page_count;
  626. total_size_new = num_bytes_per_page * (uint64)total_page_count;
  627. if (inc_page_count <= 0)
  628. /* No need to enlarge memory */
  629. return true;
  630. if (total_page_count < cur_page_count) { /* integer overflow */
  631. ret = false;
  632. goto return_func;
  633. }
  634. if (total_page_count > max_page_count) {
  635. failure_reason = MAX_SIZE_REACHED;
  636. ret = false;
  637. goto return_func;
  638. }
  639. bh_assert(total_size_new <= 4 * (uint64)BH_GB);
  640. if (total_size_new > UINT32_MAX) {
  641. /* Resize to 1 page with size 4G-1 */
  642. num_bytes_per_page = UINT32_MAX;
  643. total_page_count = max_page_count = 1;
  644. total_size_new = UINT32_MAX;
  645. }
  646. if (full_size_mmaped) {
  647. #ifdef BH_PLATFORM_WINDOWS
  648. if (!os_mem_commit(memory->memory_data_end,
  649. (uint32)total_size_new - total_size_old,
  650. MMAP_PROT_READ | MMAP_PROT_WRITE)) {
  651. ret = false;
  652. goto return_func;
  653. }
  654. #endif
  655. if (os_mprotect(memory->memory_data_end,
  656. (uint32)total_size_new - total_size_old,
  657. MMAP_PROT_READ | MMAP_PROT_WRITE)
  658. != 0) {
  659. #ifdef BH_PLATFORM_WINDOWS
  660. os_mem_decommit(memory->memory_data_end,
  661. (uint32)total_size_new - total_size_old);
  662. #endif
  663. ret = false;
  664. goto return_func;
  665. }
  666. }
  667. else {
  668. if (heap_size > 0) {
  669. if (mem_allocator_is_heap_corrupted(memory->heap_handle)) {
  670. wasm_runtime_show_app_heap_corrupted_prompt();
  671. ret = false;
  672. goto return_func;
  673. }
  674. }
  675. if (!(memory_data_new = wasm_mremap_linear_memory(
  676. memory_data_old, total_size_old, (uint32)total_size_new,
  677. (uint32)total_size_new))) {
  678. ret = false;
  679. goto return_func;
  680. }
  681. if (heap_size > 0) {
  682. if (mem_allocator_migrate(memory->heap_handle,
  683. (char *)heap_data_old
  684. + (memory_data_new - memory_data_old),
  685. heap_size)
  686. != 0) {
  687. /* Don't return here as memory->memory_data is obsolete and
  688. must be updated to be correctly used later. */
  689. ret = false;
  690. }
  691. }
  692. memory->heap_data = memory_data_new + (heap_data_old - memory_data_old);
  693. memory->heap_data_end = memory->heap_data + heap_size;
  694. memory->memory_data = memory_data_new;
  695. #if defined(os_writegsbase)
  696. /* write base addr of linear memory to GS segment register */
  697. os_writegsbase(memory_data_new);
  698. #endif
  699. }
  700. memory->num_bytes_per_page = num_bytes_per_page;
  701. memory->cur_page_count = total_page_count;
  702. memory->max_page_count = max_page_count;
  703. SET_LINEAR_MEMORY_SIZE(memory, (uint32)total_size_new);
  704. memory->memory_data_end = memory->memory_data + (uint32)total_size_new;
  705. wasm_runtime_set_mem_bound_check_bytes(memory, total_size_new);
  706. return_func:
  707. if (!ret && enlarge_memory_error_cb) {
  708. WASMExecEnv *exec_env = NULL;
  709. #if WASM_ENABLE_INTERP != 0
  710. if (module->module_type == Wasm_Module_Bytecode)
  711. exec_env =
  712. ((WASMModuleInstanceExtra *)module->e)->common.cur_exec_env;
  713. #endif
  714. #if WASM_ENABLE_AOT != 0
  715. if (module->module_type == Wasm_Module_AoT)
  716. exec_env =
  717. ((AOTModuleInstanceExtra *)module->e)->common.cur_exec_env;
  718. #endif
  719. enlarge_memory_error_cb(inc_page_count, total_size_old, 0,
  720. failure_reason,
  721. (WASMModuleInstanceCommon *)module, exec_env,
  722. enlarge_memory_error_user_data);
  723. }
  724. return ret;
  725. }
  726. void
  727. wasm_runtime_set_enlarge_mem_error_callback(
  728. const enlarge_memory_error_callback_t callback, void *user_data)
  729. {
  730. enlarge_memory_error_cb = callback;
  731. enlarge_memory_error_user_data = user_data;
  732. }
  733. bool
  734. wasm_enlarge_memory(WASMModuleInstance *module, uint32 inc_page_count)
  735. {
  736. bool ret = false;
  737. #if WASM_ENABLE_SHARED_MEMORY != 0
  738. if (module->memory_count > 0)
  739. shared_memory_lock(module->memories[0]);
  740. #endif
  741. ret = wasm_enlarge_memory_internal(module, inc_page_count);
  742. #if WASM_ENABLE_SHARED_MEMORY != 0
  743. if (module->memory_count > 0)
  744. shared_memory_unlock(module->memories[0]);
  745. #endif
  746. return ret;
  747. }
  748. void
  749. wasm_deallocate_linear_memory(WASMMemoryInstance *memory_inst)
  750. {
  751. uint64 map_size;
  752. bh_assert(memory_inst);
  753. bh_assert(memory_inst->memory_data);
  754. #ifndef OS_ENABLE_HW_BOUND_CHECK
  755. #if WASM_ENABLE_SHARED_MEMORY != 0
  756. if (shared_memory_is_shared(memory_inst)) {
  757. map_size = (uint64)memory_inst->num_bytes_per_page
  758. * memory_inst->max_page_count;
  759. }
  760. else
  761. #endif
  762. {
  763. map_size = (uint64)memory_inst->num_bytes_per_page
  764. * memory_inst->cur_page_count;
  765. }
  766. #else
  767. map_size = 8 * (uint64)BH_GB;
  768. #endif
  769. wasm_munmap_linear_memory(memory_inst->memory_data,
  770. memory_inst->memory_data_size, map_size);
  771. memory_inst->memory_data = NULL;
  772. }
  773. int
  774. wasm_allocate_linear_memory(uint8 **data, bool is_shared_memory,
  775. uint64 num_bytes_per_page, uint64 init_page_count,
  776. uint64 max_page_count, uint64 *memory_data_size)
  777. {
  778. uint64 map_size, page_size;
  779. bh_assert(data);
  780. bh_assert(memory_data_size);
  781. #ifndef OS_ENABLE_HW_BOUND_CHECK
  782. #if WASM_ENABLE_SHARED_MEMORY != 0
  783. if (is_shared_memory) {
  784. /* Allocate maximum memory size when memory is shared */
  785. map_size = max_page_count * num_bytes_per_page;
  786. }
  787. else
  788. #endif
  789. {
  790. map_size = init_page_count * num_bytes_per_page;
  791. }
  792. #else /* else of OS_ENABLE_HW_BOUND_CHECK */
  793. /* Totally 8G is mapped, the opcode load/store address range is 0 to 8G:
  794. * ea = i + memarg.offset
  795. * both i and memarg.offset are u32 in range 0 to 4G
  796. * so the range of ea is 0 to 8G
  797. */
  798. map_size = 8 * (uint64)BH_GB;
  799. #endif /* end of OS_ENABLE_HW_BOUND_CHECK */
  800. page_size = os_getpagesize();
  801. *memory_data_size = init_page_count * num_bytes_per_page;
  802. bh_assert(*memory_data_size <= UINT32_MAX);
  803. align_as_and_cast(*memory_data_size, page_size);
  804. if (map_size > 0) {
  805. if (!(*data = wasm_mmap_linear_memory(map_size, *memory_data_size))) {
  806. return BHT_ERROR;
  807. }
  808. }
  809. return BHT_OK;
  810. }