lib_pthread_wrapper.c 35 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 "bh_common.h"
  6. #include "bh_log.h"
  7. #include "wasm_export.h"
  8. #include "../interpreter/wasm.h"
  9. #include "../common/wasm_runtime_common.h"
  10. #include "thread_manager.h"
  11. #if WASM_ENABLE_INTERP != 0
  12. #include "wasm_runtime.h"
  13. #endif
  14. #if WASM_ENABLE_AOT != 0
  15. #include "aot_runtime.h"
  16. #endif
  17. #define WAMR_PTHREAD_KEYS_MAX 32
  18. /* clang-format off */
  19. #define get_module(exec_env) \
  20. wasm_exec_env_get_module(exec_env)
  21. #define get_module_inst(exec_env) \
  22. wasm_runtime_get_module_inst(exec_env)
  23. #define get_thread_arg(exec_env) \
  24. wasm_exec_env_get_thread_arg(exec_env)
  25. #define get_wasi_ctx(module_inst) \
  26. wasm_runtime_get_wasi_ctx(module_inst)
  27. #define validate_app_addr(offset, size) \
  28. wasm_runtime_validate_app_addr(module_inst, offset, size)
  29. #define validate_native_addr(addr, size) \
  30. wasm_runtime_validate_native_addr(module_inst, addr, size)
  31. #define addr_app_to_native(offset) \
  32. wasm_runtime_addr_app_to_native(module_inst, offset)
  33. #define addr_native_to_app(ptr) \
  34. wasm_runtime_addr_native_to_app(module_inst, ptr)
  35. /* clang-format on */
  36. enum {
  37. T_THREAD,
  38. T_MUTEX,
  39. T_COND,
  40. T_SEM,
  41. };
  42. enum thread_status_t {
  43. THREAD_INIT,
  44. THREAD_RUNNING,
  45. THREAD_CANCELLED,
  46. THREAD_EXIT,
  47. };
  48. enum mutex_status_t {
  49. MUTEX_CREATED,
  50. MUTEX_DESTROYED,
  51. };
  52. enum cond_status_t {
  53. COND_CREATED,
  54. COND_DESTROYED,
  55. };
  56. enum sem_status_t {
  57. SEM_CREATED,
  58. SEM_CLOSED,
  59. SEM_DESTROYED,
  60. };
  61. typedef struct ThreadKeyValueNode {
  62. bh_list_link l;
  63. wasm_exec_env_t exec_env;
  64. int32 thread_key_values[WAMR_PTHREAD_KEYS_MAX];
  65. } ThreadKeyValueNode;
  66. typedef struct KeyData {
  67. int32 destructor_func;
  68. bool is_created;
  69. } KeyData;
  70. typedef struct ClusterInfoNode {
  71. bh_list_link l;
  72. WASMCluster *cluster;
  73. HashMap *thread_info_map;
  74. /* Key data list */
  75. KeyData key_data_list[WAMR_PTHREAD_KEYS_MAX];
  76. korp_mutex key_data_list_lock;
  77. /* Every node contains the key value list for a thread */
  78. bh_list thread_list_head;
  79. bh_list *thread_list;
  80. } ClusterInfoNode;
  81. typedef struct ThreadInfoNode {
  82. wasm_exec_env_t parent_exec_env;
  83. wasm_exec_env_t exec_env;
  84. /* the id returned to app */
  85. uint32 handle;
  86. /* type can be [THREAD | MUTEX | CONDITION] */
  87. uint32 type;
  88. /* Thread status, this variable should be volatile
  89. as its value may be changed in different threads */
  90. volatile uint32 status;
  91. bool joinable;
  92. union {
  93. korp_tid thread;
  94. korp_mutex *mutex;
  95. korp_cond *cond;
  96. #if WASM_ENABLE_LIB_PTHREAD_SEMAPHORE != 0
  97. korp_sem *sem;
  98. #endif
  99. /* A copy of the thread return value */
  100. void *ret;
  101. } u;
  102. } ThreadInfoNode;
  103. typedef struct {
  104. ThreadInfoNode *info_node;
  105. /* table elem index of the app's entry function */
  106. uint32 elem_index;
  107. /* arg of the app's entry function */
  108. uint32 arg;
  109. wasm_module_inst_t module_inst;
  110. } ThreadRoutineArgs;
  111. typedef struct {
  112. uint32 handle;
  113. ThreadInfoNode *node;
  114. } SemCallbackArgs;
  115. static bh_list cluster_info_list;
  116. #if WASM_ENABLE_LIB_PTHREAD_SEMAPHORE != 0
  117. static HashMap *sem_info_map;
  118. #endif
  119. static korp_mutex thread_global_lock;
  120. static uint32 handle_id = 1;
  121. static void
  122. lib_pthread_destroy_callback(WASMCluster *cluster);
  123. static uint32
  124. thread_handle_hash(void *handle)
  125. {
  126. return (uint32)(uintptr_t)handle;
  127. }
  128. static bool
  129. thread_handle_equal(void *h1, void *h2)
  130. {
  131. return (uint32)(uintptr_t)h1 == (uint32)(uintptr_t)h2 ? true : false;
  132. }
  133. static void
  134. thread_info_destroy(void *node)
  135. {
  136. ThreadInfoNode *info_node = (ThreadInfoNode *)node;
  137. os_mutex_lock(&thread_global_lock);
  138. if (info_node->type == T_MUTEX) {
  139. if (info_node->status != MUTEX_DESTROYED)
  140. os_mutex_destroy(info_node->u.mutex);
  141. wasm_runtime_free(info_node->u.mutex);
  142. }
  143. else if (info_node->type == T_COND) {
  144. if (info_node->status != COND_DESTROYED)
  145. os_cond_destroy(info_node->u.cond);
  146. wasm_runtime_free(info_node->u.cond);
  147. }
  148. #if WASM_ENABLE_LIB_PTHREAD_SEMAPHORE != 0
  149. else if (info_node->type == T_SEM) {
  150. if (info_node->status != SEM_DESTROYED)
  151. os_sem_close(info_node->u.sem);
  152. }
  153. #endif
  154. wasm_runtime_free(info_node);
  155. os_mutex_unlock(&thread_global_lock);
  156. }
  157. bool
  158. lib_pthread_init()
  159. {
  160. if (0 != os_mutex_init(&thread_global_lock))
  161. return false;
  162. bh_list_init(&cluster_info_list);
  163. if (!wasm_cluster_register_destroy_callback(lib_pthread_destroy_callback)) {
  164. os_mutex_destroy(&thread_global_lock);
  165. return false;
  166. }
  167. #if WASM_ENABLE_LIB_PTHREAD_SEMAPHORE != 0
  168. if (!(sem_info_map = bh_hash_map_create(
  169. 32, true, (HashFunc)wasm_string_hash,
  170. (KeyEqualFunc)wasm_string_equal, NULL, thread_info_destroy))) {
  171. os_mutex_destroy(&thread_global_lock);
  172. return false;
  173. }
  174. #endif
  175. return true;
  176. }
  177. void
  178. lib_pthread_destroy()
  179. {
  180. #if WASM_ENABLE_LIB_PTHREAD_SEMAPHORE != 0
  181. bh_hash_map_destroy(sem_info_map);
  182. #endif
  183. os_mutex_destroy(&thread_global_lock);
  184. }
  185. static ClusterInfoNode *
  186. get_cluster_info(WASMCluster *cluster)
  187. {
  188. ClusterInfoNode *node;
  189. os_mutex_lock(&thread_global_lock);
  190. node = bh_list_first_elem(&cluster_info_list);
  191. while (node) {
  192. if (cluster == node->cluster) {
  193. os_mutex_unlock(&thread_global_lock);
  194. return node;
  195. }
  196. node = bh_list_elem_next(node);
  197. }
  198. os_mutex_unlock(&thread_global_lock);
  199. return NULL;
  200. }
  201. static KeyData *
  202. key_data_list_lookup(wasm_exec_env_t exec_env, int32 key)
  203. {
  204. ClusterInfoNode *node;
  205. WASMCluster *cluster = wasm_exec_env_get_cluster(exec_env);
  206. if ((node = get_cluster_info(cluster))) {
  207. return (key >= 0 && key < WAMR_PTHREAD_KEYS_MAX
  208. && node->key_data_list[key].is_created)
  209. ? &(node->key_data_list[key])
  210. : NULL;
  211. }
  212. return NULL;
  213. }
  214. /**
  215. * Lookup the thread key value node for a thread, create a new one if failed
  216. * This design will reduce the memory usage. If the thread doesn't use the
  217. * local storage, it will not occupy memory space.
  218. */
  219. static int32 *
  220. key_value_list_lookup_or_create(wasm_exec_env_t exec_env, ClusterInfoNode *info,
  221. int32 key)
  222. {
  223. KeyData *key_node;
  224. ThreadKeyValueNode *data;
  225. /* Check if the key is valid */
  226. key_node = key_data_list_lookup(exec_env, key);
  227. if (!key_node) {
  228. return NULL;
  229. }
  230. /* Find key values node */
  231. data = bh_list_first_elem(info->thread_list);
  232. while (data) {
  233. if (data->exec_env == exec_env)
  234. return data->thread_key_values;
  235. data = bh_list_elem_next(data);
  236. }
  237. /* If not found, create a new node for this thread */
  238. if (!(data = wasm_runtime_malloc(sizeof(ThreadKeyValueNode))))
  239. return NULL;
  240. memset(data, 0, sizeof(ThreadKeyValueNode));
  241. data->exec_env = exec_env;
  242. if (bh_list_insert(info->thread_list, data) != 0) {
  243. wasm_runtime_free(data);
  244. return NULL;
  245. }
  246. return data->thread_key_values;
  247. }
  248. static void
  249. call_key_destructor(wasm_exec_env_t exec_env)
  250. {
  251. int32 i;
  252. uint32 destructor_index;
  253. KeyData *key_node;
  254. ThreadKeyValueNode *value_node;
  255. WASMCluster *cluster = wasm_exec_env_get_cluster(exec_env);
  256. ClusterInfoNode *info = get_cluster_info(cluster);
  257. if (!info) {
  258. return;
  259. }
  260. value_node = bh_list_first_elem(info->thread_list);
  261. while (value_node) {
  262. if (value_node->exec_env == exec_env)
  263. break;
  264. value_node = bh_list_elem_next(value_node);
  265. }
  266. /* This thread hasn't created key value node */
  267. if (!value_node)
  268. return;
  269. /* Destroy key values */
  270. for (i = 0; i < WAMR_PTHREAD_KEYS_MAX; i++) {
  271. if (value_node->thread_key_values[i] != 0) {
  272. int32 value = value_node->thread_key_values[i];
  273. os_mutex_lock(&info->key_data_list_lock);
  274. if ((key_node = key_data_list_lookup(exec_env, i)))
  275. destructor_index = key_node->destructor_func;
  276. else
  277. destructor_index = 0;
  278. os_mutex_unlock(&info->key_data_list_lock);
  279. /* reset key value */
  280. value_node->thread_key_values[i] = 0;
  281. /* Call the destructor func provided by app */
  282. if (destructor_index) {
  283. uint32 argv[1];
  284. argv[0] = value;
  285. wasm_runtime_call_indirect(exec_env, destructor_index, 1, argv);
  286. }
  287. }
  288. }
  289. bh_list_remove(info->thread_list, value_node);
  290. wasm_runtime_free(value_node);
  291. }
  292. static void
  293. destroy_thread_key_value_list(bh_list *list)
  294. {
  295. ThreadKeyValueNode *node, *next;
  296. /* There should be only one node for main thread */
  297. bh_assert(list->len <= 1);
  298. if (list->len) {
  299. node = bh_list_first_elem(list);
  300. while (node) {
  301. next = bh_list_elem_next(node);
  302. call_key_destructor(node->exec_env);
  303. node = next;
  304. }
  305. }
  306. }
  307. static ClusterInfoNode *
  308. create_cluster_info(WASMCluster *cluster)
  309. {
  310. ClusterInfoNode *node;
  311. bh_list_status ret;
  312. if (!(node = wasm_runtime_malloc(sizeof(ClusterInfoNode)))) {
  313. return NULL;
  314. }
  315. memset(node, 0, sizeof(ClusterInfoNode));
  316. node->thread_list = &node->thread_list_head;
  317. ret = bh_list_init(node->thread_list);
  318. bh_assert(ret == BH_LIST_SUCCESS);
  319. if (os_mutex_init(&node->key_data_list_lock) != 0) {
  320. wasm_runtime_free(node);
  321. return NULL;
  322. }
  323. node->cluster = cluster;
  324. if (!(node->thread_info_map = bh_hash_map_create(
  325. 32, true, (HashFunc)thread_handle_hash,
  326. (KeyEqualFunc)thread_handle_equal, NULL, thread_info_destroy))) {
  327. os_mutex_destroy(&node->key_data_list_lock);
  328. wasm_runtime_free(node);
  329. return NULL;
  330. }
  331. os_mutex_lock(&thread_global_lock);
  332. ret = bh_list_insert(&cluster_info_list, node);
  333. bh_assert(ret == BH_LIST_SUCCESS);
  334. os_mutex_unlock(&thread_global_lock);
  335. (void)ret;
  336. return node;
  337. }
  338. static bool
  339. destroy_cluster_info(WASMCluster *cluster)
  340. {
  341. ClusterInfoNode *node = get_cluster_info(cluster);
  342. if (node) {
  343. bh_hash_map_destroy(node->thread_info_map);
  344. destroy_thread_key_value_list(node->thread_list);
  345. os_mutex_destroy(&node->key_data_list_lock);
  346. /* Remove from the cluster info list */
  347. os_mutex_lock(&thread_global_lock);
  348. bh_list_remove(&cluster_info_list, node);
  349. wasm_runtime_free(node);
  350. os_mutex_unlock(&thread_global_lock);
  351. return true;
  352. }
  353. return false;
  354. }
  355. static void
  356. lib_pthread_destroy_callback(WASMCluster *cluster)
  357. {
  358. destroy_cluster_info(cluster);
  359. }
  360. static void
  361. delete_thread_info_node(ThreadInfoNode *thread_info)
  362. {
  363. ClusterInfoNode *node;
  364. bool ret;
  365. WASMCluster *cluster = wasm_exec_env_get_cluster(thread_info->exec_env);
  366. if ((node = get_cluster_info(cluster))) {
  367. ret = bh_hash_map_remove(node->thread_info_map,
  368. (void *)(uintptr_t)thread_info->handle, NULL,
  369. NULL);
  370. (void)ret;
  371. }
  372. thread_info_destroy(thread_info);
  373. }
  374. static bool
  375. append_thread_info_node(ThreadInfoNode *thread_info)
  376. {
  377. ClusterInfoNode *node;
  378. WASMCluster *cluster = wasm_exec_env_get_cluster(thread_info->exec_env);
  379. if (!(node = get_cluster_info(cluster))) {
  380. if (!(node = create_cluster_info(cluster))) {
  381. return false;
  382. }
  383. }
  384. if (!bh_hash_map_insert(node->thread_info_map,
  385. (void *)(uintptr_t)thread_info->handle,
  386. thread_info)) {
  387. return false;
  388. }
  389. return true;
  390. }
  391. static ThreadInfoNode *
  392. get_thread_info(wasm_exec_env_t exec_env, uint32 handle)
  393. {
  394. WASMCluster *cluster = wasm_exec_env_get_cluster(exec_env);
  395. ClusterInfoNode *info = get_cluster_info(cluster);
  396. if (!info) {
  397. return NULL;
  398. }
  399. return bh_hash_map_find(info->thread_info_map, (void *)(uintptr_t)handle);
  400. }
  401. static uint32
  402. allocate_handle()
  403. {
  404. uint32 id;
  405. os_mutex_lock(&thread_global_lock);
  406. id = handle_id++;
  407. os_mutex_unlock(&thread_global_lock);
  408. return id;
  409. }
  410. static void *
  411. pthread_start_routine(void *arg)
  412. {
  413. wasm_exec_env_t exec_env = (wasm_exec_env_t)arg;
  414. wasm_exec_env_t parent_exec_env;
  415. ThreadRoutineArgs *routine_args = exec_env->thread_arg;
  416. ThreadInfoNode *info_node = routine_args->info_node;
  417. uint32 argv[1];
  418. parent_exec_env = info_node->parent_exec_env;
  419. os_mutex_lock(&parent_exec_env->wait_lock);
  420. info_node->exec_env = exec_env;
  421. info_node->u.thread = exec_env->handle;
  422. if (!append_thread_info_node(info_node)) {
  423. delete_thread_info_node(info_node);
  424. os_cond_signal(&parent_exec_env->wait_cond);
  425. os_mutex_unlock(&parent_exec_env->wait_lock);
  426. return NULL;
  427. }
  428. info_node->status = THREAD_RUNNING;
  429. os_cond_signal(&parent_exec_env->wait_cond);
  430. os_mutex_unlock(&parent_exec_env->wait_lock);
  431. wasm_exec_env_set_thread_info(exec_env);
  432. argv[0] = routine_args->arg;
  433. if (!wasm_runtime_call_indirect(exec_env, routine_args->elem_index, 1,
  434. argv)) {
  435. /* Exception has already been spread during throwing */
  436. }
  437. /* destroy pthread key values */
  438. call_key_destructor(exec_env);
  439. wasm_runtime_free(routine_args);
  440. /* if the thread is joinable, store the result in its info node,
  441. if the other threads join this thread after exited, then we
  442. can return the stored result */
  443. if (!info_node->joinable) {
  444. delete_thread_info_node(info_node);
  445. }
  446. else {
  447. info_node->u.ret = (void *)(uintptr_t)argv[0];
  448. #ifdef OS_ENABLE_HW_BOUND_CHECK
  449. if (WASM_SUSPEND_FLAGS_GET(exec_env->suspend_flags)
  450. & WASM_SUSPEND_FLAG_EXIT)
  451. /* argv[0] isn't set after longjmp(1) to
  452. invoke_native_with_hw_bound_check */
  453. info_node->u.ret = exec_env->thread_ret_value;
  454. #endif
  455. /* Update node status after ret value was set */
  456. info_node->status = THREAD_EXIT;
  457. }
  458. return (void *)(uintptr_t)argv[0];
  459. }
  460. static int
  461. pthread_create_wrapper(wasm_exec_env_t exec_env,
  462. uint32 *thread, /* thread_handle */
  463. const void *attr, /* not supported */
  464. uint32 elem_index, /* entry function */
  465. uint32 arg) /* arguments buffer */
  466. {
  467. wasm_module_t module = get_module(exec_env);
  468. wasm_module_inst_t module_inst = get_module_inst(exec_env);
  469. wasm_module_inst_t new_module_inst = NULL;
  470. ThreadInfoNode *info_node = NULL;
  471. ThreadRoutineArgs *routine_args = NULL;
  472. uint32 thread_handle;
  473. uint32 stack_size = 8192;
  474. int32 ret = -1;
  475. bh_assert(module);
  476. bh_assert(module_inst);
  477. #if WASM_ENABLE_INTERP != 0
  478. if (module_inst->module_type == Wasm_Module_Bytecode) {
  479. stack_size =
  480. ((WASMModuleInstance *)module_inst)->default_wasm_stack_size;
  481. }
  482. #endif
  483. #if WASM_ENABLE_AOT != 0
  484. if (module_inst->module_type == Wasm_Module_AoT) {
  485. stack_size =
  486. ((AOTModuleInstance *)module_inst)->default_wasm_stack_size;
  487. }
  488. #endif
  489. if (!(new_module_inst = wasm_runtime_instantiate_internal(
  490. module, module_inst, exec_env, stack_size, 0, NULL, 0)))
  491. return -1;
  492. /* Set custom_data to new module instance */
  493. wasm_runtime_set_custom_data_internal(
  494. new_module_inst, wasm_runtime_get_custom_data(module_inst));
  495. wasm_native_inherit_contexts(new_module_inst, module_inst);
  496. if (!(wasm_cluster_dup_c_api_imports(new_module_inst, module_inst)))
  497. goto fail;
  498. if (!(info_node = wasm_runtime_malloc(sizeof(ThreadInfoNode))))
  499. goto fail;
  500. memset(info_node, 0, sizeof(ThreadInfoNode));
  501. thread_handle = allocate_handle();
  502. info_node->parent_exec_env = exec_env;
  503. info_node->handle = thread_handle;
  504. info_node->type = T_THREAD;
  505. info_node->status = THREAD_INIT;
  506. info_node->joinable = true;
  507. if (!(routine_args = wasm_runtime_malloc(sizeof(ThreadRoutineArgs))))
  508. goto fail;
  509. routine_args->arg = arg;
  510. routine_args->elem_index = elem_index;
  511. routine_args->info_node = info_node;
  512. routine_args->module_inst = new_module_inst;
  513. os_mutex_lock(&exec_env->wait_lock);
  514. ret =
  515. wasm_cluster_create_thread(exec_env, new_module_inst, true,
  516. pthread_start_routine, (void *)routine_args);
  517. if (ret != 0) {
  518. os_mutex_unlock(&exec_env->wait_lock);
  519. goto fail;
  520. }
  521. /* Wait for the thread routine to assign the exec_env to
  522. thread_info_node, otherwise the exec_env in the thread
  523. info node may be NULL in the next pthread API call */
  524. os_cond_wait(&exec_env->wait_cond, &exec_env->wait_lock);
  525. os_mutex_unlock(&exec_env->wait_lock);
  526. if (thread)
  527. *thread = thread_handle;
  528. return 0;
  529. fail:
  530. if (new_module_inst)
  531. wasm_runtime_deinstantiate_internal(new_module_inst, true);
  532. if (info_node)
  533. wasm_runtime_free(info_node);
  534. if (routine_args)
  535. wasm_runtime_free(routine_args);
  536. return ret;
  537. }
  538. static int32
  539. pthread_join_wrapper(wasm_exec_env_t exec_env, uint32 thread,
  540. int32 retval_offset) /* void **retval */
  541. {
  542. uint32 *ret;
  543. int32 join_ret;
  544. void **retval;
  545. ThreadInfoNode *node;
  546. wasm_module_inst_t module_inst;
  547. wasm_exec_env_t target_exec_env;
  548. module_inst = get_module_inst(exec_env);
  549. /* validate addr, we can use current thread's
  550. module instance here as the memory is shared */
  551. if (!validate_app_addr(retval_offset, sizeof(int32))) {
  552. /* Join failed, but we don't want to terminate all threads,
  553. do not spread exception here */
  554. wasm_runtime_set_exception(module_inst, NULL);
  555. return -1;
  556. }
  557. retval = (void **)addr_app_to_native(retval_offset);
  558. node = get_thread_info(exec_env, thread);
  559. if (!node) {
  560. /* The thread has exited and not joinable, return 0 to app */
  561. return 0;
  562. }
  563. target_exec_env = node->exec_env;
  564. bh_assert(target_exec_env);
  565. if (node->status != THREAD_EXIT) {
  566. /* if the thread is still running, call the platforms join API */
  567. join_ret = wasm_cluster_join_thread(target_exec_env, (void **)&ret);
  568. }
  569. else {
  570. /* if the thread has exited, return stored results */
  571. /* this thread must be joinable, otherwise the
  572. info_node should be destroyed once exit */
  573. bh_assert(node->joinable);
  574. join_ret = 0;
  575. ret = node->u.ret;
  576. /* The target thread changes the node's status before calling
  577. wasm_cluster_exit_thread to exit, so here its resources may
  578. haven't been destroyed yet, we wait enough time to ensure that
  579. they are actually destroyed to avoid unexpected behavior. */
  580. os_mutex_lock(&exec_env->wait_lock);
  581. os_cond_reltimedwait(&exec_env->wait_cond, &exec_env->wait_lock, 1000);
  582. os_mutex_unlock(&exec_env->wait_lock);
  583. }
  584. if (retval_offset != 0)
  585. *(uint32 *)retval = (uint32)(uintptr_t)ret;
  586. return join_ret;
  587. }
  588. static int32
  589. pthread_detach_wrapper(wasm_exec_env_t exec_env, uint32 thread)
  590. {
  591. ThreadInfoNode *node;
  592. wasm_exec_env_t target_exec_env;
  593. node = get_thread_info(exec_env, thread);
  594. if (!node)
  595. return 0;
  596. node->joinable = false;
  597. target_exec_env = node->exec_env;
  598. bh_assert(target_exec_env != NULL);
  599. return wasm_cluster_detach_thread(target_exec_env);
  600. }
  601. static int32
  602. pthread_cancel_wrapper(wasm_exec_env_t exec_env, uint32 thread)
  603. {
  604. ThreadInfoNode *node;
  605. wasm_exec_env_t target_exec_env;
  606. node = get_thread_info(exec_env, thread);
  607. if (!node)
  608. return 0;
  609. node->status = THREAD_CANCELLED;
  610. node->joinable = false;
  611. target_exec_env = node->exec_env;
  612. bh_assert(target_exec_env != NULL);
  613. return wasm_cluster_cancel_thread(target_exec_env);
  614. }
  615. static int32
  616. pthread_self_wrapper(wasm_exec_env_t exec_env)
  617. {
  618. ThreadRoutineArgs *args = get_thread_arg(exec_env);
  619. /* If thread_arg is NULL, it's the exec_env of the main thread,
  620. return id 0 to app */
  621. if (!args)
  622. return 0;
  623. return args->info_node->handle;
  624. }
  625. /* emcc use __pthread_self rather than pthread_self */
  626. static int32
  627. __pthread_self_wrapper(wasm_exec_env_t exec_env)
  628. {
  629. return pthread_self_wrapper(exec_env);
  630. }
  631. static void
  632. pthread_exit_wrapper(wasm_exec_env_t exec_env, int32 retval_offset)
  633. {
  634. ThreadRoutineArgs *args = get_thread_arg(exec_env);
  635. /* Currently exit main thread is not allowed */
  636. if (!args)
  637. return;
  638. #if defined(OS_ENABLE_HW_BOUND_CHECK) && !defined(BH_PLATFORM_WINDOWS)
  639. /* If hardware bound check enabled, don't deinstantiate module inst
  640. and thread info node here for AoT module, as they will be freed
  641. in pthread_start_routine */
  642. if (exec_env->jmpbuf_stack_top) {
  643. wasm_cluster_exit_thread(exec_env, (void *)(uintptr_t)retval_offset);
  644. }
  645. #endif
  646. /* destroy pthread key values */
  647. call_key_destructor(exec_env);
  648. if (!args->info_node->joinable) {
  649. delete_thread_info_node(args->info_node);
  650. }
  651. else {
  652. args->info_node->u.ret = (void *)(uintptr_t)retval_offset;
  653. /* Update node status after ret value was set */
  654. args->info_node->status = THREAD_EXIT;
  655. }
  656. wasm_runtime_free(args);
  657. /* Don't destroy exec_env->module_inst in this functuntion since
  658. it will be destroyed in wasm_cluster_exit_thread */
  659. wasm_cluster_exit_thread(exec_env, (void *)(uintptr_t)retval_offset);
  660. }
  661. static int32
  662. pthread_mutex_init_wrapper(wasm_exec_env_t exec_env, uint32 *mutex, void *attr)
  663. {
  664. korp_mutex *pmutex;
  665. ThreadInfoNode *info_node;
  666. if (!(pmutex = wasm_runtime_malloc(sizeof(korp_mutex)))) {
  667. return -1;
  668. }
  669. if (os_mutex_init(pmutex) != 0) {
  670. goto fail1;
  671. }
  672. if (!(info_node = wasm_runtime_malloc(sizeof(ThreadInfoNode))))
  673. goto fail2;
  674. memset(info_node, 0, sizeof(ThreadInfoNode));
  675. info_node->exec_env = exec_env;
  676. info_node->handle = allocate_handle();
  677. info_node->type = T_MUTEX;
  678. info_node->u.mutex = pmutex;
  679. info_node->status = MUTEX_CREATED;
  680. if (!append_thread_info_node(info_node))
  681. goto fail3;
  682. /* Return the mutex handle to app */
  683. if (mutex)
  684. *(uint32 *)mutex = info_node->handle;
  685. return 0;
  686. fail3:
  687. delete_thread_info_node(info_node);
  688. fail2:
  689. os_mutex_destroy(pmutex);
  690. fail1:
  691. wasm_runtime_free(pmutex);
  692. return -1;
  693. }
  694. static int32
  695. pthread_mutex_lock_wrapper(wasm_exec_env_t exec_env, uint32 *mutex)
  696. {
  697. ThreadInfoNode *info_node = get_thread_info(exec_env, *mutex);
  698. if (!info_node || info_node->type != T_MUTEX)
  699. return -1;
  700. return os_mutex_lock(info_node->u.mutex);
  701. }
  702. static int32
  703. pthread_mutex_unlock_wrapper(wasm_exec_env_t exec_env, uint32 *mutex)
  704. {
  705. ThreadInfoNode *info_node = get_thread_info(exec_env, *mutex);
  706. if (!info_node || info_node->type != T_MUTEX)
  707. return -1;
  708. return os_mutex_unlock(info_node->u.mutex);
  709. }
  710. static int32
  711. pthread_mutex_destroy_wrapper(wasm_exec_env_t exec_env, uint32 *mutex)
  712. {
  713. int32 ret_val;
  714. ThreadInfoNode *info_node = get_thread_info(exec_env, *mutex);
  715. if (!info_node || info_node->type != T_MUTEX)
  716. return -1;
  717. ret_val = os_mutex_destroy(info_node->u.mutex);
  718. info_node->status = MUTEX_DESTROYED;
  719. delete_thread_info_node(info_node);
  720. return ret_val;
  721. }
  722. static int32
  723. pthread_cond_init_wrapper(wasm_exec_env_t exec_env, uint32 *cond, void *attr)
  724. {
  725. korp_cond *pcond;
  726. ThreadInfoNode *info_node;
  727. if (!(pcond = wasm_runtime_malloc(sizeof(korp_cond)))) {
  728. return -1;
  729. }
  730. if (os_cond_init(pcond) != 0) {
  731. goto fail1;
  732. }
  733. if (!(info_node = wasm_runtime_malloc(sizeof(ThreadInfoNode))))
  734. goto fail2;
  735. memset(info_node, 0, sizeof(ThreadInfoNode));
  736. info_node->exec_env = exec_env;
  737. info_node->handle = allocate_handle();
  738. info_node->type = T_COND;
  739. info_node->u.cond = pcond;
  740. info_node->status = COND_CREATED;
  741. if (!append_thread_info_node(info_node))
  742. goto fail3;
  743. /* Return the cond handle to app */
  744. if (cond)
  745. *(uint32 *)cond = info_node->handle;
  746. return 0;
  747. fail3:
  748. delete_thread_info_node(info_node);
  749. fail2:
  750. os_cond_destroy(pcond);
  751. fail1:
  752. wasm_runtime_free(pcond);
  753. return -1;
  754. }
  755. static int32
  756. pthread_cond_wait_wrapper(wasm_exec_env_t exec_env, uint32 *cond, uint32 *mutex)
  757. {
  758. ThreadInfoNode *cond_info_node, *mutex_info_node;
  759. cond_info_node = get_thread_info(exec_env, *cond);
  760. if (!cond_info_node || cond_info_node->type != T_COND)
  761. return -1;
  762. mutex_info_node = get_thread_info(exec_env, *mutex);
  763. if (!mutex_info_node || mutex_info_node->type != T_MUTEX)
  764. return -1;
  765. return os_cond_wait(cond_info_node->u.cond, mutex_info_node->u.mutex);
  766. }
  767. /**
  768. * Currently we don't support struct timespec in built-in libc,
  769. * so the pthread_cond_timedwait use useconds instead
  770. */
  771. static int32
  772. pthread_cond_timedwait_wrapper(wasm_exec_env_t exec_env, uint32 *cond,
  773. uint32 *mutex, uint64 useconds)
  774. {
  775. ThreadInfoNode *cond_info_node, *mutex_info_node;
  776. cond_info_node = get_thread_info(exec_env, *cond);
  777. if (!cond_info_node || cond_info_node->type != T_COND)
  778. return -1;
  779. mutex_info_node = get_thread_info(exec_env, *mutex);
  780. if (!mutex_info_node || mutex_info_node->type != T_MUTEX)
  781. return -1;
  782. return os_cond_reltimedwait(cond_info_node->u.cond,
  783. mutex_info_node->u.mutex, useconds);
  784. }
  785. static int32
  786. pthread_cond_signal_wrapper(wasm_exec_env_t exec_env, uint32 *cond)
  787. {
  788. ThreadInfoNode *info_node = get_thread_info(exec_env, *cond);
  789. if (!info_node || info_node->type != T_COND)
  790. return -1;
  791. return os_cond_signal(info_node->u.cond);
  792. }
  793. static int32
  794. pthread_cond_broadcast_wrapper(wasm_exec_env_t exec_env, uint32 *cond)
  795. {
  796. ThreadInfoNode *info_node = get_thread_info(exec_env, *cond);
  797. if (!info_node || info_node->type != T_COND)
  798. return -1;
  799. return os_cond_broadcast(info_node->u.cond);
  800. }
  801. static int32
  802. pthread_cond_destroy_wrapper(wasm_exec_env_t exec_env, uint32 *cond)
  803. {
  804. int32 ret_val;
  805. ThreadInfoNode *info_node = get_thread_info(exec_env, *cond);
  806. if (!info_node || info_node->type != T_COND)
  807. return -1;
  808. ret_val = os_cond_destroy(info_node->u.cond);
  809. info_node->status = COND_DESTROYED;
  810. delete_thread_info_node(info_node);
  811. return ret_val;
  812. }
  813. static int32
  814. pthread_key_create_wrapper(wasm_exec_env_t exec_env, int32 *key,
  815. int32 destructor_elem_index)
  816. {
  817. uint32 i;
  818. WASMCluster *cluster = wasm_exec_env_get_cluster(exec_env);
  819. ClusterInfoNode *info = get_cluster_info(cluster);
  820. if (!info) {
  821. /* The user may call pthread_key_create in main thread,
  822. in this case the cluster info hasn't been created */
  823. if (!(info = create_cluster_info(cluster))) {
  824. return -1;
  825. }
  826. }
  827. os_mutex_lock(&info->key_data_list_lock);
  828. for (i = 0; i < WAMR_PTHREAD_KEYS_MAX; i++) {
  829. if (!info->key_data_list[i].is_created) {
  830. break;
  831. }
  832. }
  833. if (i == WAMR_PTHREAD_KEYS_MAX) {
  834. os_mutex_unlock(&info->key_data_list_lock);
  835. return -1;
  836. }
  837. info->key_data_list[i].destructor_func = destructor_elem_index;
  838. info->key_data_list[i].is_created = true;
  839. *key = i;
  840. os_mutex_unlock(&info->key_data_list_lock);
  841. return 0;
  842. }
  843. static int32
  844. pthread_setspecific_wrapper(wasm_exec_env_t exec_env, int32 key,
  845. int32 value_offset)
  846. {
  847. WASMCluster *cluster = wasm_exec_env_get_cluster(exec_env);
  848. ClusterInfoNode *info = get_cluster_info(cluster);
  849. int32 *key_values;
  850. if (!info)
  851. return -1;
  852. os_mutex_lock(&info->key_data_list_lock);
  853. key_values = key_value_list_lookup_or_create(exec_env, info, key);
  854. if (!key_values) {
  855. os_mutex_unlock(&info->key_data_list_lock);
  856. return -1;
  857. }
  858. key_values[key] = value_offset;
  859. os_mutex_unlock(&info->key_data_list_lock);
  860. return 0;
  861. }
  862. static int32
  863. pthread_getspecific_wrapper(wasm_exec_env_t exec_env, int32 key)
  864. {
  865. WASMCluster *cluster = wasm_exec_env_get_cluster(exec_env);
  866. ClusterInfoNode *info = get_cluster_info(cluster);
  867. int32 ret, *key_values;
  868. if (!info)
  869. return 0;
  870. os_mutex_lock(&info->key_data_list_lock);
  871. key_values = key_value_list_lookup_or_create(exec_env, info, key);
  872. if (!key_values) {
  873. os_mutex_unlock(&info->key_data_list_lock);
  874. return 0;
  875. }
  876. ret = key_values[key];
  877. os_mutex_unlock(&info->key_data_list_lock);
  878. return ret;
  879. }
  880. static int32
  881. pthread_key_delete_wrapper(wasm_exec_env_t exec_env, int32 key)
  882. {
  883. KeyData *data;
  884. WASMCluster *cluster = wasm_exec_env_get_cluster(exec_env);
  885. ClusterInfoNode *info = get_cluster_info(cluster);
  886. if (!info)
  887. return -1;
  888. os_mutex_lock(&info->key_data_list_lock);
  889. data = key_data_list_lookup(exec_env, key);
  890. if (!data) {
  891. os_mutex_unlock(&info->key_data_list_lock);
  892. return -1;
  893. }
  894. memset(data, 0, sizeof(KeyData));
  895. os_mutex_unlock(&info->key_data_list_lock);
  896. return 0;
  897. }
  898. /**
  899. * Currently the memory allocator doesn't support alloc specific aligned
  900. * space, we wrap posix_memalign to simply malloc memory
  901. */
  902. static int32
  903. posix_memalign_wrapper(wasm_exec_env_t exec_env, void **memptr, int32 align,
  904. int32 size)
  905. {
  906. wasm_module_inst_t module_inst = get_module_inst(exec_env);
  907. void *p = NULL;
  908. *((int32 *)memptr) = module_malloc(size, (void **)&p);
  909. if (!p)
  910. return -1;
  911. return 0;
  912. }
  913. #if WASM_ENABLE_LIB_PTHREAD_SEMAPHORE != 0
  914. static int32
  915. sem_open_wrapper(wasm_exec_env_t exec_env, const char *name, int32 oflags,
  916. int32 mode, int32 val)
  917. {
  918. korp_sem *psem = NULL;
  919. ThreadInfoNode *info_node = NULL;
  920. /**
  921. * For RTOS, global semaphore map is safe for share the same semaphore
  922. * between task/pthread.
  923. * For Unix like system, it's dedicated for multiple processes.
  924. */
  925. if ((info_node = bh_hash_map_find(sem_info_map, (void *)name))) {
  926. return info_node->handle;
  927. }
  928. if (!(psem = os_sem_open(name, oflags, mode, val))) {
  929. goto fail1;
  930. }
  931. if (!(info_node = wasm_runtime_malloc(sizeof(ThreadInfoNode))))
  932. goto fail2;
  933. memset(info_node, 0, sizeof(ThreadInfoNode));
  934. info_node->exec_env = exec_env;
  935. info_node->handle = allocate_handle();
  936. info_node->type = T_SEM;
  937. info_node->u.sem = psem;
  938. info_node->status = SEM_CREATED;
  939. if (!bh_hash_map_insert(sem_info_map, (void *)name, info_node))
  940. goto fail3;
  941. return info_node->handle;
  942. fail3:
  943. wasm_runtime_free(info_node);
  944. fail2:
  945. os_sem_close(psem);
  946. fail1:
  947. return -1;
  948. }
  949. void
  950. sem_fetch_cb(void *key, void *value, void *user_data)
  951. {
  952. (void)key;
  953. SemCallbackArgs *args = user_data;
  954. ThreadInfoNode *info_node = value;
  955. if (args->handle == info_node->handle && info_node->status == SEM_CREATED) {
  956. args->node = info_node;
  957. }
  958. }
  959. static int32
  960. sem_close_wrapper(wasm_exec_env_t exec_env, uint32 sem)
  961. {
  962. (void)exec_env;
  963. int ret = -1;
  964. SemCallbackArgs args = { sem, NULL };
  965. bh_hash_map_traverse(sem_info_map, sem_fetch_cb, &args);
  966. if (args.node) {
  967. ret = os_sem_close(args.node->u.sem);
  968. if (ret == 0) {
  969. args.node->status = SEM_CLOSED;
  970. }
  971. }
  972. return ret;
  973. }
  974. static int32
  975. sem_wait_wrapper(wasm_exec_env_t exec_env, uint32 sem)
  976. {
  977. (void)exec_env;
  978. SemCallbackArgs args = { sem, NULL };
  979. bh_hash_map_traverse(sem_info_map, sem_fetch_cb, &args);
  980. if (args.node) {
  981. return os_sem_wait(args.node->u.sem);
  982. }
  983. return -1;
  984. }
  985. static int32
  986. sem_trywait_wrapper(wasm_exec_env_t exec_env, uint32 sem)
  987. {
  988. (void)exec_env;
  989. SemCallbackArgs args = { sem, NULL };
  990. bh_hash_map_traverse(sem_info_map, sem_fetch_cb, &args);
  991. if (args.node) {
  992. return os_sem_trywait(args.node->u.sem);
  993. }
  994. return -1;
  995. }
  996. static int32
  997. sem_post_wrapper(wasm_exec_env_t exec_env, uint32 sem)
  998. {
  999. (void)exec_env;
  1000. SemCallbackArgs args = { sem, NULL };
  1001. bh_hash_map_traverse(sem_info_map, sem_fetch_cb, &args);
  1002. if (args.node) {
  1003. return os_sem_post(args.node->u.sem);
  1004. }
  1005. return -1;
  1006. }
  1007. static int32
  1008. sem_getvalue_wrapper(wasm_exec_env_t exec_env, uint32 sem, int32 *sval)
  1009. {
  1010. int32 ret = -1;
  1011. wasm_module_inst_t module_inst = get_module_inst(exec_env);
  1012. (void)exec_env;
  1013. SemCallbackArgs args = { sem, NULL };
  1014. if (validate_native_addr(sval, sizeof(int32))) {
  1015. bh_hash_map_traverse(sem_info_map, sem_fetch_cb, &args);
  1016. if (args.node) {
  1017. ret = os_sem_getvalue(args.node->u.sem, sval);
  1018. }
  1019. }
  1020. return ret;
  1021. }
  1022. static int32
  1023. sem_unlink_wrapper(wasm_exec_env_t exec_env, const char *name)
  1024. {
  1025. (void)exec_env;
  1026. int32 ret_val;
  1027. ThreadInfoNode *info_node = bh_hash_map_find(sem_info_map, (void *)name);
  1028. if (!info_node || info_node->type != T_SEM)
  1029. return -1;
  1030. if (info_node->status != SEM_CLOSED) {
  1031. ret_val = os_sem_close(info_node->u.sem);
  1032. if (ret_val != 0) {
  1033. return ret_val;
  1034. }
  1035. }
  1036. ret_val = os_sem_unlink(name);
  1037. if (ret_val == 0) {
  1038. bh_hash_map_remove(sem_info_map, (void *)name, NULL, NULL);
  1039. info_node->status = SEM_DESTROYED;
  1040. thread_info_destroy(info_node);
  1041. }
  1042. return ret_val;
  1043. }
  1044. #endif
  1045. /* clang-format off */
  1046. #define REG_NATIVE_FUNC(func_name, signature) \
  1047. { #func_name, func_name##_wrapper, signature, NULL }
  1048. /* clang-format on */
  1049. static NativeSymbol native_symbols_lib_pthread[] = {
  1050. REG_NATIVE_FUNC(pthread_create, "(**ii)i"),
  1051. REG_NATIVE_FUNC(pthread_join, "(ii)i"),
  1052. REG_NATIVE_FUNC(pthread_detach, "(i)i"),
  1053. REG_NATIVE_FUNC(pthread_cancel, "(i)i"),
  1054. REG_NATIVE_FUNC(pthread_self, "()i"),
  1055. REG_NATIVE_FUNC(__pthread_self, "()i"),
  1056. REG_NATIVE_FUNC(pthread_exit, "(i)"),
  1057. REG_NATIVE_FUNC(pthread_mutex_init, "(**)i"),
  1058. REG_NATIVE_FUNC(pthread_mutex_lock, "(*)i"),
  1059. REG_NATIVE_FUNC(pthread_mutex_unlock, "(*)i"),
  1060. REG_NATIVE_FUNC(pthread_mutex_destroy, "(*)i"),
  1061. REG_NATIVE_FUNC(pthread_cond_init, "(**)i"),
  1062. REG_NATIVE_FUNC(pthread_cond_wait, "(**)i"),
  1063. REG_NATIVE_FUNC(pthread_cond_timedwait, "(**I)i"),
  1064. REG_NATIVE_FUNC(pthread_cond_signal, "(*)i"),
  1065. REG_NATIVE_FUNC(pthread_cond_broadcast, "(*)i"),
  1066. REG_NATIVE_FUNC(pthread_cond_destroy, "(*)i"),
  1067. REG_NATIVE_FUNC(pthread_key_create, "(*i)i"),
  1068. REG_NATIVE_FUNC(pthread_setspecific, "(ii)i"),
  1069. REG_NATIVE_FUNC(pthread_getspecific, "(i)i"),
  1070. REG_NATIVE_FUNC(pthread_key_delete, "(i)i"),
  1071. REG_NATIVE_FUNC(posix_memalign, "(*ii)i"),
  1072. #if WASM_ENABLE_LIB_PTHREAD_SEMAPHORE != 0
  1073. REG_NATIVE_FUNC(sem_open, "($iii)i"),
  1074. REG_NATIVE_FUNC(sem_close, "(i)i"),
  1075. REG_NATIVE_FUNC(sem_wait, "(i)i"),
  1076. REG_NATIVE_FUNC(sem_trywait, "(i)i"),
  1077. REG_NATIVE_FUNC(sem_post, "(i)i"),
  1078. REG_NATIVE_FUNC(sem_getvalue, "(i*)i"),
  1079. REG_NATIVE_FUNC(sem_unlink, "($)i"),
  1080. #endif
  1081. };
  1082. uint32
  1083. get_lib_pthread_export_apis(NativeSymbol **p_lib_pthread_apis)
  1084. {
  1085. *p_lib_pthread_apis = native_symbols_lib_pthread;
  1086. return sizeof(native_symbols_lib_pthread) / sizeof(NativeSymbol);
  1087. }