test_vfs_select.c 16 KB

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  1. // Copyright 2018-2019 Espressif Systems (Shanghai) PTE LTD
  2. //
  3. // Licensed under the Apache License, Version 2.0 (the "License");
  4. // you may not use this file except in compliance with the License.
  5. // You may obtain a copy of the License at
  6. //
  7. // http://www.apache.org/licenses/LICENSE-2.0
  8. //
  9. // Unless required by applicable law or agreed to in writing, software
  10. // distributed under the License is distributed on an "AS IS" BASIS,
  11. // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  12. // See the License for the specific language governing permissions and
  13. // limitations under the License.
  14. #include <stdio.h>
  15. #include <unistd.h>
  16. #include <sys/fcntl.h>
  17. #include <sys/param.h>
  18. #include "unity.h"
  19. #include "freertos/FreeRTOS.h"
  20. #include "driver/uart.h"
  21. #include "esp_vfs.h"
  22. #include "esp_vfs_dev.h"
  23. #include "esp_vfs_fat.h"
  24. #include "lwip/sockets.h"
  25. #include "lwip/netdb.h"
  26. #include "test_utils.h"
  27. typedef struct {
  28. int fd;
  29. int delay_ms;
  30. xSemaphoreHandle sem;
  31. } test_task_param_t;
  32. typedef struct {
  33. fd_set *rdfds;
  34. fd_set *wrfds;
  35. fd_set *errfds;
  36. int maxfds;
  37. struct timeval *tv;
  38. int select_ret;
  39. xSemaphoreHandle sem;
  40. } test_select_task_param_t;
  41. static const char message[] = "Hello world!";
  42. static int open_dummy_socket(void)
  43. {
  44. const struct addrinfo hints = {
  45. .ai_family = AF_INET,
  46. .ai_socktype = SOCK_DGRAM,
  47. };
  48. struct addrinfo *res = NULL;
  49. const int err = getaddrinfo("localhost", "80", &hints, &res);
  50. TEST_ASSERT_EQUAL(0, err);
  51. TEST_ASSERT_NOT_NULL(res);
  52. const int dummy_socket_fd = socket(res->ai_family, res->ai_socktype, 0);
  53. TEST_ASSERT(dummy_socket_fd >= 0);
  54. return dummy_socket_fd;
  55. }
  56. static int socket_init(void)
  57. {
  58. const struct addrinfo hints = {
  59. .ai_family = AF_INET,
  60. .ai_socktype = SOCK_DGRAM,
  61. };
  62. struct addrinfo *res;
  63. int err;
  64. struct sockaddr_in saddr = { 0 };
  65. int socket_fd = -1;
  66. err = getaddrinfo("localhost", "80", &hints, &res);
  67. TEST_ASSERT_EQUAL(err, 0);
  68. TEST_ASSERT_NOT_NULL(res);
  69. socket_fd = socket(res->ai_family, res->ai_socktype, 0);
  70. TEST_ASSERT(socket_fd >= 0);
  71. saddr.sin_family = PF_INET;
  72. saddr.sin_port = htons(80);
  73. saddr.sin_addr.s_addr = htonl(INADDR_ANY);
  74. err = bind(socket_fd, (struct sockaddr *) &saddr, sizeof(struct sockaddr_in));
  75. TEST_ASSERT(err >= 0);
  76. err = connect(socket_fd, res->ai_addr, res->ai_addrlen);
  77. TEST_ASSERT_EQUAL_MESSAGE(err, 0, "Socket connection failed");
  78. freeaddrinfo(res);
  79. return socket_fd;
  80. }
  81. static void uart1_init(void)
  82. {
  83. uart_config_t uart_config = {
  84. .baud_rate = 115200,
  85. .data_bits = UART_DATA_8_BITS,
  86. .parity = UART_PARITY_DISABLE,
  87. .stop_bits = UART_STOP_BITS_1,
  88. .flow_ctrl = UART_HW_FLOWCTRL_DISABLE
  89. };
  90. uart_param_config(UART_NUM_1, &uart_config);
  91. uart_driver_install(UART_NUM_1, 256, 256, 0, NULL, 0);
  92. }
  93. static void send_task(void *param)
  94. {
  95. const test_task_param_t *test_task_param = param;
  96. vTaskDelay(test_task_param->delay_ms / portTICK_PERIOD_MS);
  97. write(test_task_param->fd, message, sizeof(message));
  98. if (test_task_param->sem) {
  99. xSemaphoreGive(test_task_param->sem);
  100. }
  101. vTaskDelete(NULL);
  102. }
  103. static inline void start_task(const test_task_param_t *test_task_param)
  104. {
  105. xTaskCreate(send_task, "send_task", 4*1024, (void *) test_task_param, 5, NULL);
  106. }
  107. static void init(int *uart_fd, int *socket_fd)
  108. {
  109. test_case_uses_tcpip();
  110. uart1_init();
  111. UART1.conf0.loopback = 1;
  112. *uart_fd = open("/dev/uart/1", O_RDWR);
  113. TEST_ASSERT_NOT_EQUAL_MESSAGE(*uart_fd, -1, "Cannot open UART");
  114. esp_vfs_dev_uart_use_driver(1);
  115. *socket_fd = socket_init();
  116. }
  117. static void deinit(int uart_fd, int socket_fd)
  118. {
  119. esp_vfs_dev_uart_use_nonblocking(1);
  120. close(uart_fd);
  121. UART1.conf0.loopback = 0;
  122. uart_driver_delete(UART_NUM_1);
  123. close(socket_fd);
  124. }
  125. TEST_CASE("UART can do select()", "[vfs]")
  126. {
  127. int uart_fd;
  128. int socket_fd;
  129. struct timeval tv = {
  130. .tv_sec = 0,
  131. .tv_usec = 100000,
  132. };
  133. char recv_message[sizeof(message)];
  134. init(&uart_fd, &socket_fd);
  135. fd_set rfds;
  136. FD_ZERO(&rfds);
  137. FD_SET(uart_fd, &rfds);
  138. //without socket in rfds it will not use the same signalization
  139. const test_task_param_t test_task_param = {
  140. .fd = uart_fd,
  141. .delay_ms = 50,
  142. .sem = xSemaphoreCreateBinary(),
  143. };
  144. TEST_ASSERT_NOT_NULL(test_task_param.sem);
  145. start_task(&test_task_param);
  146. int s = select(uart_fd + 1, &rfds, NULL, NULL, &tv);
  147. TEST_ASSERT_EQUAL(s, 1);
  148. TEST_ASSERT(FD_ISSET(uart_fd, &rfds));
  149. TEST_ASSERT_UNLESS(FD_ISSET(socket_fd, &rfds));
  150. int read_bytes = read(uart_fd, recv_message, sizeof(message));
  151. TEST_ASSERT_EQUAL(read_bytes, sizeof(message));
  152. TEST_ASSERT_EQUAL_MEMORY(message, recv_message, sizeof(message));
  153. TEST_ASSERT_EQUAL(xSemaphoreTake(test_task_param.sem, 1000 / portTICK_PERIOD_MS), pdTRUE);
  154. FD_ZERO(&rfds);
  155. FD_SET(uart_fd, &rfds);
  156. FD_SET(socket_fd, &rfds);
  157. start_task(&test_task_param);
  158. s = select(MAX(uart_fd, socket_fd) + 1, &rfds, NULL, NULL, &tv);
  159. TEST_ASSERT_EQUAL(s, 1);
  160. TEST_ASSERT(FD_ISSET(uart_fd, &rfds));
  161. TEST_ASSERT_UNLESS(FD_ISSET(socket_fd, &rfds));
  162. read_bytes = read(uart_fd, recv_message, sizeof(message));
  163. TEST_ASSERT_EQUAL(read_bytes, sizeof(message));
  164. TEST_ASSERT_EQUAL_MEMORY(message, recv_message, sizeof(message));
  165. TEST_ASSERT_EQUAL(xSemaphoreTake(test_task_param.sem, 1000 / portTICK_PERIOD_MS), pdTRUE);
  166. vSemaphoreDelete(test_task_param.sem);
  167. deinit(uart_fd, socket_fd);
  168. }
  169. TEST_CASE("UART can do poll()", "[vfs]")
  170. {
  171. int uart_fd;
  172. int socket_fd;
  173. char recv_message[sizeof(message)];
  174. init(&uart_fd, &socket_fd);
  175. struct pollfd poll_fds[] = {
  176. {
  177. .fd = uart_fd,
  178. .events = POLLIN,
  179. },
  180. {
  181. .fd = -1, // should be ignored according to the documentation of poll()
  182. },
  183. };
  184. const test_task_param_t test_task_param = {
  185. .fd = uart_fd,
  186. .delay_ms = 50,
  187. .sem = xSemaphoreCreateBinary(),
  188. };
  189. TEST_ASSERT_NOT_NULL(test_task_param.sem);
  190. start_task(&test_task_param);
  191. int s = poll(poll_fds, sizeof(poll_fds)/sizeof(poll_fds[0]), 100);
  192. TEST_ASSERT_EQUAL(s, 1);
  193. TEST_ASSERT_EQUAL(uart_fd, poll_fds[0].fd);
  194. TEST_ASSERT_EQUAL(POLLIN, poll_fds[0].revents);
  195. TEST_ASSERT_EQUAL(-1, poll_fds[1].fd);
  196. TEST_ASSERT_EQUAL(0, poll_fds[1].revents);
  197. int read_bytes = read(uart_fd, recv_message, sizeof(message));
  198. TEST_ASSERT_EQUAL(read_bytes, sizeof(message));
  199. TEST_ASSERT_EQUAL_MEMORY(message, recv_message, sizeof(message));
  200. TEST_ASSERT_EQUAL(xSemaphoreTake(test_task_param.sem, 1000 / portTICK_PERIOD_MS), pdTRUE);
  201. poll_fds[1].fd = socket_fd;
  202. poll_fds[1].events = POLLIN;
  203. start_task(&test_task_param);
  204. s = poll(poll_fds, sizeof(poll_fds)/sizeof(poll_fds[0]), 100);
  205. TEST_ASSERT_EQUAL(s, 1);
  206. TEST_ASSERT_EQUAL(uart_fd, poll_fds[0].fd);
  207. TEST_ASSERT_EQUAL(POLLIN, poll_fds[0].revents);
  208. TEST_ASSERT_EQUAL(socket_fd, poll_fds[1].fd);
  209. TEST_ASSERT_EQUAL(0, poll_fds[1].revents);
  210. read_bytes = read(uart_fd, recv_message, sizeof(message));
  211. TEST_ASSERT_EQUAL(read_bytes, sizeof(message));
  212. TEST_ASSERT_EQUAL_MEMORY(message, recv_message, sizeof(message));
  213. TEST_ASSERT_EQUAL(xSemaphoreTake(test_task_param.sem, 1000 / portTICK_PERIOD_MS), pdTRUE);
  214. vSemaphoreDelete(test_task_param.sem);
  215. deinit(uart_fd, socket_fd);
  216. }
  217. TEST_CASE("socket can do select()", "[vfs]")
  218. {
  219. int uart_fd;
  220. int socket_fd;
  221. struct timeval tv = {
  222. .tv_sec = 0,
  223. .tv_usec = 100000,
  224. };
  225. char recv_message[sizeof(message)];
  226. init(&uart_fd, &socket_fd);
  227. const int dummy_socket_fd = open_dummy_socket();
  228. fd_set rfds;
  229. FD_ZERO(&rfds);
  230. FD_SET(uart_fd, &rfds);
  231. FD_SET(socket_fd, &rfds);
  232. FD_SET(dummy_socket_fd, &rfds);
  233. const test_task_param_t test_task_param = {
  234. .fd = socket_fd,
  235. .delay_ms = 50,
  236. .sem = xSemaphoreCreateBinary(),
  237. };
  238. TEST_ASSERT_NOT_NULL(test_task_param.sem);
  239. start_task(&test_task_param);
  240. const int s = select(MAX(MAX(uart_fd, socket_fd), dummy_socket_fd) + 1, &rfds, NULL, NULL, &tv);
  241. TEST_ASSERT_EQUAL(1, s);
  242. TEST_ASSERT_UNLESS(FD_ISSET(uart_fd, &rfds));
  243. TEST_ASSERT_UNLESS(FD_ISSET(dummy_socket_fd, &rfds));
  244. TEST_ASSERT(FD_ISSET(socket_fd, &rfds));
  245. int read_bytes = read(socket_fd, recv_message, sizeof(message));
  246. TEST_ASSERT_EQUAL(read_bytes, sizeof(message));
  247. TEST_ASSERT_EQUAL_MEMORY(message, recv_message, sizeof(message));
  248. TEST_ASSERT_EQUAL(xSemaphoreTake(test_task_param.sem, 1000 / portTICK_PERIOD_MS), pdTRUE);
  249. vSemaphoreDelete(test_task_param.sem);
  250. deinit(uart_fd, socket_fd);
  251. close(dummy_socket_fd);
  252. }
  253. TEST_CASE("socket can do poll()", "[vfs]")
  254. {
  255. int uart_fd;
  256. int socket_fd;
  257. char recv_message[sizeof(message)];
  258. init(&uart_fd, &socket_fd);
  259. const int dummy_socket_fd = open_dummy_socket();
  260. struct pollfd poll_fds[] = {
  261. {
  262. .fd = uart_fd,
  263. .events = POLLIN,
  264. },
  265. {
  266. .fd = socket_fd,
  267. .events = POLLIN,
  268. },
  269. {
  270. .fd = dummy_socket_fd,
  271. .events = POLLIN,
  272. },
  273. };
  274. const test_task_param_t test_task_param = {
  275. .fd = socket_fd,
  276. .delay_ms = 50,
  277. .sem = xSemaphoreCreateBinary(),
  278. };
  279. TEST_ASSERT_NOT_NULL(test_task_param.sem);
  280. start_task(&test_task_param);
  281. int s = poll(poll_fds, sizeof(poll_fds)/sizeof(poll_fds[0]), 100);
  282. TEST_ASSERT_EQUAL(s, 1);
  283. TEST_ASSERT_EQUAL(uart_fd, poll_fds[0].fd);
  284. TEST_ASSERT_EQUAL(0, poll_fds[0].revents);
  285. TEST_ASSERT_EQUAL(socket_fd, poll_fds[1].fd);
  286. TEST_ASSERT_EQUAL(POLLIN, poll_fds[1].revents);
  287. TEST_ASSERT_EQUAL(dummy_socket_fd, poll_fds[2].fd);
  288. TEST_ASSERT_EQUAL(0, poll_fds[2].revents);
  289. int read_bytes = read(socket_fd, recv_message, sizeof(message));
  290. TEST_ASSERT_EQUAL(read_bytes, sizeof(message));
  291. TEST_ASSERT_EQUAL_MEMORY(message, recv_message, sizeof(message));
  292. TEST_ASSERT_EQUAL(xSemaphoreTake(test_task_param.sem, 1000 / portTICK_PERIOD_MS), pdTRUE);
  293. vSemaphoreDelete(test_task_param.sem);
  294. deinit(uart_fd, socket_fd);
  295. close(dummy_socket_fd);
  296. }
  297. TEST_CASE("select() timeout", "[vfs]")
  298. {
  299. int uart_fd;
  300. int socket_fd;
  301. struct timeval tv = {
  302. .tv_sec = 0,
  303. .tv_usec = 100000,
  304. };
  305. init(&uart_fd, &socket_fd);
  306. fd_set rfds;
  307. FD_ZERO(&rfds);
  308. FD_SET(uart_fd, &rfds);
  309. FD_SET(socket_fd, &rfds);
  310. int s = select(MAX(uart_fd, socket_fd) + 1, &rfds, NULL, NULL, &tv);
  311. TEST_ASSERT_EQUAL(s, 0);
  312. TEST_ASSERT_UNLESS(FD_ISSET(uart_fd, &rfds));
  313. TEST_ASSERT_UNLESS(FD_ISSET(socket_fd, &rfds));
  314. FD_ZERO(&rfds);
  315. s = select(MAX(uart_fd, socket_fd) + 1, &rfds, NULL, NULL, &tv);
  316. TEST_ASSERT_EQUAL(s, 0);
  317. TEST_ASSERT_UNLESS(FD_ISSET(uart_fd, &rfds));
  318. TEST_ASSERT_UNLESS(FD_ISSET(socket_fd, &rfds));
  319. deinit(uart_fd, socket_fd);
  320. }
  321. TEST_CASE("poll() timeout", "[vfs]")
  322. {
  323. int uart_fd;
  324. int socket_fd;
  325. init(&uart_fd, &socket_fd);
  326. struct pollfd poll_fds[] = {
  327. {
  328. .fd = uart_fd,
  329. .events = POLLIN,
  330. },
  331. {
  332. .fd = socket_fd,
  333. .events = POLLIN,
  334. },
  335. };
  336. int s = poll(poll_fds, sizeof(poll_fds)/sizeof(poll_fds[0]), 100);
  337. TEST_ASSERT_EQUAL(s, 0);
  338. TEST_ASSERT_EQUAL(uart_fd, poll_fds[0].fd);
  339. TEST_ASSERT_EQUAL(0, poll_fds[0].revents);
  340. TEST_ASSERT_EQUAL(socket_fd, poll_fds[1].fd);
  341. TEST_ASSERT_EQUAL(0, poll_fds[1].revents);
  342. poll_fds[0].fd = -1;
  343. poll_fds[1].fd = -1;
  344. s = poll(poll_fds, sizeof(poll_fds)/sizeof(poll_fds[0]), 100);
  345. TEST_ASSERT_EQUAL(s, 0);
  346. TEST_ASSERT_EQUAL(-1, poll_fds[0].fd);
  347. TEST_ASSERT_EQUAL(0, poll_fds[0].revents);
  348. TEST_ASSERT_EQUAL(-1, poll_fds[1].fd);
  349. TEST_ASSERT_EQUAL(0, poll_fds[1].revents);
  350. deinit(uart_fd, socket_fd);
  351. }
  352. static void select_task(void *param)
  353. {
  354. const test_task_param_t *test_task_param = param;
  355. struct timeval tv = {
  356. .tv_sec = 0,
  357. .tv_usec = 100000,
  358. };
  359. fd_set rfds;
  360. FD_ZERO(&rfds);
  361. FD_SET(test_task_param->fd, &rfds);
  362. int s = select(test_task_param->fd + 1, &rfds, NULL, NULL, &tv);
  363. TEST_ASSERT_EQUAL(0, s); //timeout
  364. if (test_task_param->sem) {
  365. xSemaphoreGive(test_task_param->sem);
  366. }
  367. vTaskDelete(NULL);
  368. }
  369. TEST_CASE("concurent selects work", "[vfs]")
  370. {
  371. struct timeval tv = {
  372. .tv_sec = 0,
  373. .tv_usec = 100000,//irrelevant
  374. };
  375. int uart_fd, socket_fd;
  376. init(&uart_fd, &socket_fd);
  377. const int dummy_socket_fd = open_dummy_socket();
  378. fd_set rfds;
  379. FD_ZERO(&rfds);
  380. FD_SET(uart_fd, &rfds);
  381. test_task_param_t test_task_param = {
  382. .fd = uart_fd,
  383. .sem = xSemaphoreCreateBinary(),
  384. };
  385. TEST_ASSERT_NOT_NULL(test_task_param.sem);
  386. xTaskCreate(select_task, "select_task", 4*1024, (void *) &test_task_param, 5, NULL);
  387. vTaskDelay(10 / portTICK_PERIOD_MS); //make sure the task has started and waits in select()
  388. int s = select(uart_fd + 1, &rfds, NULL, NULL, &tv);
  389. TEST_ASSERT_EQUAL(-1, s); //this select should fail because two selects are accessing UART
  390. //(the other one is waiting for the timeout)
  391. TEST_ASSERT_EQUAL(EINTR, errno);
  392. TEST_ASSERT_EQUAL(pdTRUE, xSemaphoreTake(test_task_param.sem, 1000 / portTICK_PERIOD_MS));
  393. FD_ZERO(&rfds);
  394. FD_SET(socket_fd, &rfds);
  395. test_task_param.fd = dummy_socket_fd;
  396. xTaskCreate(select_task, "select_task", 4*1024, (void *) &test_task_param, 5, NULL);
  397. vTaskDelay(10 / portTICK_PERIOD_MS); //make sure the task has started and waits in select()
  398. s = select(socket_fd + 1, &rfds, NULL, NULL, &tv);
  399. TEST_ASSERT_EQUAL(0, s); //this select should timeout as well as the concurrent one because
  400. //concurrent socket select should work
  401. TEST_ASSERT_EQUAL(pdTRUE, xSemaphoreTake(test_task_param.sem, 1000 / portTICK_PERIOD_MS));
  402. vSemaphoreDelete(test_task_param.sem);
  403. deinit(uart_fd, socket_fd);
  404. close(dummy_socket_fd);
  405. }
  406. static void select_task2(void *task_param)
  407. {
  408. const test_select_task_param_t *param = task_param;
  409. int s = select(param->maxfds, param->rdfds, param->wrfds, param->errfds, param->tv);
  410. TEST_ASSERT_EQUAL(param->select_ret, s);
  411. if (param->sem) {
  412. xSemaphoreGive(param->sem);
  413. }
  414. vTaskDelete(NULL);
  415. }
  416. static void inline start_select_task2(test_select_task_param_t *param)
  417. {
  418. xTaskCreate(select_task2, "select_task2", 4*1024, (void *) param, 5, NULL);
  419. }
  420. TEST_CASE("select() works with concurrent mount", "[vfs][fatfs]")
  421. {
  422. wl_handle_t test_wl_handle;
  423. int uart_fd, socket_fd;
  424. init(&uart_fd, &socket_fd);
  425. const int dummy_socket_fd = open_dummy_socket();
  426. esp_vfs_fat_sdmmc_mount_config_t mount_config = {
  427. .format_if_mount_failed = true,
  428. .max_files = 2
  429. };
  430. // select() will be waiting for a socket & UART and FATFS mount will occur in parallel
  431. struct timeval tv = {
  432. .tv_sec = 1,
  433. .tv_usec = 0,
  434. };
  435. fd_set rdfds;
  436. FD_ZERO(&rdfds);
  437. FD_SET(uart_fd, &rdfds);
  438. FD_SET(dummy_socket_fd, &rdfds);
  439. test_select_task_param_t param = {
  440. .rdfds = &rdfds,
  441. .wrfds = NULL,
  442. .errfds = NULL,
  443. .maxfds = MAX(uart_fd, dummy_socket_fd) + 1,
  444. .tv = &tv,
  445. .select_ret = 0, // expected timeout
  446. .sem = xSemaphoreCreateBinary(),
  447. };
  448. TEST_ASSERT_NOT_NULL(param.sem);
  449. start_select_task2(&param);
  450. vTaskDelay(10 / portTICK_PERIOD_MS); //make sure the task has started and waits in select()
  451. TEST_ESP_OK(esp_vfs_fat_spiflash_mount("/spiflash", NULL, &mount_config, &test_wl_handle));
  452. TEST_ASSERT_EQUAL(pdTRUE, xSemaphoreTake(param.sem, 1500 / portTICK_PERIOD_MS));
  453. // select() will be waiting for a socket & UART and FATFS unmount will occur in parallel
  454. FD_ZERO(&rdfds);
  455. FD_SET(uart_fd, &rdfds);
  456. FD_SET(dummy_socket_fd, &rdfds);
  457. start_select_task2(&param);
  458. vTaskDelay(10 / portTICK_PERIOD_MS); //make sure the task has started and waits in select()
  459. TEST_ESP_OK(esp_vfs_fat_spiflash_unmount("/spiflash", test_wl_handle));
  460. TEST_ASSERT_EQUAL(pdTRUE, xSemaphoreTake(param.sem, 1500 / portTICK_PERIOD_MS));
  461. vSemaphoreDelete(param.sem);
  462. deinit(uart_fd, socket_fd);
  463. close(dummy_socket_fd);
  464. }