test_esp_timer.c 12 KB

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  1. #include <stdio.h>
  2. #include <stdlib.h>
  3. #include <time.h>
  4. #include <sys/time.h>
  5. #include "unity.h"
  6. #include "esp_timer.h"
  7. #include "freertos/FreeRTOS.h"
  8. #include "freertos/task.h"
  9. #include "freertos/semphr.h"
  10. #include "test_utils.h"
  11. TEST_CASE("esp_timer orders timers correctly", "[esp_timer]")
  12. {
  13. void dummy_cb(void* arg)
  14. {
  15. }
  16. uint64_t timeouts[] = { 10000, 1000, 10000, 5000, 20000, 1000 };
  17. size_t indices[] = { 3, 0, 4, 2, 5, 1 };
  18. const size_t num_timers = sizeof(timeouts)/sizeof(timeouts[0]);
  19. esp_timer_handle_t handles[num_timers];
  20. char* names[num_timers];
  21. for (size_t i = 0; i < num_timers; ++i) {
  22. asprintf(&names[i], "timer%d", i);
  23. esp_timer_create_args_t args = {
  24. .callback = &dummy_cb,
  25. .name = names[i]
  26. };
  27. TEST_ESP_OK(esp_timer_create(&args, &handles[i]));
  28. TEST_ESP_OK(esp_timer_start_once(handles[i], timeouts[i] * 100));
  29. }
  30. char* stream_str[1024];
  31. FILE* stream = fmemopen(stream_str, sizeof(stream_str), "r+");
  32. TEST_ESP_OK(esp_timer_dump(stream));
  33. for (size_t i = 0; i < num_timers; ++i) {
  34. TEST_ESP_OK(esp_timer_stop(handles[i]));
  35. TEST_ESP_OK(esp_timer_delete(handles[i]));
  36. free(names[i]);
  37. }
  38. fflush(stream);
  39. fseek(stream, 0, SEEK_SET);
  40. for (size_t i = 0; i < num_timers; ++i) {
  41. char line[128];
  42. TEST_ASSERT_NOT_NULL(fgets(line, sizeof(line), stream));
  43. #if WITH_PROFILING
  44. int timer_id;
  45. sscanf(line, "timer%d", &timer_id);
  46. TEST_ASSERT_EQUAL(indices[timer_id], i);
  47. #else
  48. intptr_t timer_ptr;
  49. sscanf(line, "timer@0x%x", &timer_ptr);
  50. for (size_t j = 0; j < num_timers; ++j) {
  51. if (indices[j] == i) {
  52. TEST_ASSERT_EQUAL_PTR(handles[j], timer_ptr);
  53. break;
  54. }
  55. }
  56. #endif
  57. }
  58. fclose(stream);
  59. }
  60. TEST_CASE("esp_timer produces correct delay", "[esp_timer]")
  61. {
  62. void timer_func(void* arg)
  63. {
  64. int64_t* p_end = (int64_t*) arg;
  65. *p_end = ref_clock_get();
  66. }
  67. int64_t t_end;
  68. esp_timer_handle_t timer1;
  69. esp_timer_create_args_t args = {
  70. .callback = &timer_func,
  71. .arg = &t_end,
  72. .name = "timer1"
  73. };
  74. TEST_ESP_OK(esp_timer_create(&args, &timer1));
  75. const int delays_ms[] = {20, 100, 200, 250};
  76. const size_t delays_count = sizeof(delays_ms)/sizeof(delays_ms[0]);
  77. ref_clock_init();
  78. for (size_t i = 0; i < delays_count; ++i) {
  79. t_end = 0;
  80. int64_t t_start = ref_clock_get();
  81. TEST_ESP_OK(esp_timer_start_once(timer1, delays_ms[i] * 1000));
  82. vTaskDelay(delays_ms[i] * 2 / portTICK_PERIOD_MS);
  83. TEST_ASSERT(t_end != 0);
  84. int32_t ms_diff = (t_end - t_start) / 1000;
  85. printf("%d %d\n", delays_ms[i], ms_diff);
  86. TEST_ASSERT_INT32_WITHIN(portTICK_PERIOD_MS, delays_ms[i], ms_diff);
  87. }
  88. ref_clock_deinit();
  89. TEST_ESP_OK( esp_timer_dump(stdout) );
  90. esp_timer_delete(timer1);
  91. }
  92. TEST_CASE("periodic esp_timer produces correct delays", "[esp_timer]")
  93. {
  94. // no, we can't make this a const size_t (§6.7.5.2)
  95. #define NUM_INTERVALS 16
  96. typedef struct {
  97. esp_timer_handle_t timer;
  98. size_t cur_interval;
  99. int intervals[NUM_INTERVALS];
  100. int64_t t_start;
  101. SemaphoreHandle_t done;
  102. } test_args_t;
  103. void timer_func(void* arg)
  104. {
  105. test_args_t* p_args = (test_args_t*) arg;
  106. int64_t t_end = ref_clock_get();
  107. int32_t ms_diff = (t_end - p_args->t_start) / 1000;
  108. printf("timer #%d %dms\n", p_args->cur_interval, ms_diff);
  109. p_args->intervals[p_args->cur_interval++] = ms_diff;
  110. // Deliberately make timer handler run longer.
  111. // We check that this doesn't affect the result.
  112. ets_delay_us(10*1000);
  113. if (p_args->cur_interval == NUM_INTERVALS) {
  114. printf("done\n");
  115. TEST_ESP_OK(esp_timer_stop(p_args->timer));
  116. xSemaphoreGive(p_args->done);
  117. }
  118. }
  119. const int delay_ms = 100;
  120. test_args_t args = {0};
  121. esp_timer_handle_t timer1;
  122. esp_timer_create_args_t create_args = {
  123. .callback = &timer_func,
  124. .arg = &args,
  125. .name = "timer1",
  126. };
  127. TEST_ESP_OK(esp_timer_create(&create_args, &timer1));
  128. ref_clock_init();
  129. args.timer = timer1;
  130. args.t_start = ref_clock_get();
  131. args.done = xSemaphoreCreateBinary();
  132. TEST_ESP_OK(esp_timer_start_periodic(timer1, delay_ms * 1000));
  133. TEST_ASSERT(xSemaphoreTake(args.done, delay_ms * NUM_INTERVALS * 2));
  134. TEST_ASSERT_EQUAL_UINT32(NUM_INTERVALS, args.cur_interval);
  135. for (size_t i = 0; i < NUM_INTERVALS; ++i) {
  136. TEST_ASSERT_INT32_WITHIN(portTICK_PERIOD_MS, (i + 1) * delay_ms, args.intervals[i]);
  137. }
  138. ref_clock_deinit();
  139. TEST_ESP_OK( esp_timer_dump(stdout) );
  140. TEST_ESP_OK( esp_timer_delete(timer1) );
  141. vSemaphoreDelete(args.done);
  142. #undef NUM_INTERVALS
  143. }
  144. TEST_CASE("multiple timers are ordered correctly", "[esp_timer]")
  145. {
  146. #define N 5
  147. typedef struct {
  148. const int order[N * 3];
  149. size_t count;
  150. } test_common_t;
  151. typedef struct {
  152. int timer_index;
  153. const int intervals[N];
  154. size_t intervals_count;
  155. esp_timer_handle_t timer;
  156. test_common_t* common;
  157. bool pass;
  158. SemaphoreHandle_t done;
  159. int64_t t_start;
  160. } test_args_t;
  161. void timer_func(void* arg)
  162. {
  163. test_args_t* p_args = (test_args_t*) arg;
  164. // check order
  165. size_t count = p_args->common->count;
  166. int expected_index = p_args->common->order[count];
  167. int ms_since_start = (ref_clock_get() - p_args->t_start) / 1000;
  168. printf("Time %dms, at count %d, expected timer %d, got timer %d\n",
  169. ms_since_start, count, expected_index, p_args->timer_index);
  170. if (expected_index != p_args->timer_index) {
  171. p_args->pass = false;
  172. esp_timer_stop(p_args->timer);
  173. xSemaphoreGive(p_args->done);
  174. return;
  175. }
  176. p_args->common->count++;
  177. if (++p_args->intervals_count == N) {
  178. esp_timer_stop(p_args->timer);
  179. xSemaphoreGive(p_args->done);
  180. return;
  181. }
  182. int next_interval = p_args->intervals[p_args->intervals_count];
  183. printf("starting timer %d interval #%d, %d ms\n",
  184. p_args->timer_index, p_args->intervals_count, next_interval);
  185. esp_timer_start_once(p_args->timer, next_interval * 1000);
  186. }
  187. test_common_t common = {
  188. .order = {1, 2, 3, 2, 1, 3, 1, 2, 1, 3, 2, 1, 3, 3, 2},
  189. .count = 0
  190. };
  191. SemaphoreHandle_t done = xSemaphoreCreateCounting(3, 0);
  192. ref_clock_init();
  193. int64_t now = ref_clock_get();
  194. test_args_t args1 = {
  195. .timer_index = 1,
  196. .intervals = {10, 40, 20, 40, 30},
  197. .common = &common,
  198. .pass = true,
  199. .done = done,
  200. .t_start = now
  201. };
  202. test_args_t args2 = {
  203. .timer_index = 2,
  204. .intervals = {20, 20, 60, 30, 40},
  205. .common = &common,
  206. .pass = true,
  207. .done = done,
  208. .t_start = now
  209. };
  210. test_args_t args3 = {
  211. .timer_index = 3,
  212. .intervals = {30, 30, 60, 30, 10},
  213. .common = &common,
  214. .pass = true,
  215. .done = done,
  216. .t_start = now
  217. };
  218. esp_timer_create_args_t create_args = {
  219. .callback = &timer_func,
  220. .arg = &args1,
  221. .name = "1"
  222. };
  223. TEST_ESP_OK(esp_timer_create(&create_args, &args1.timer));
  224. create_args.name = "2";
  225. create_args.arg = &args2;
  226. TEST_ESP_OK(esp_timer_create(&create_args, &args2.timer));
  227. create_args.name = "3";
  228. create_args.arg = &args3;
  229. TEST_ESP_OK(esp_timer_create(&create_args, &args3.timer));
  230. esp_timer_start_once(args1.timer, args1.intervals[0] * 1000);
  231. esp_timer_start_once(args2.timer, args2.intervals[0] * 1000);
  232. esp_timer_start_once(args3.timer, args3.intervals[0] * 1000);
  233. for (int i = 0; i < 3; ++i) {
  234. int result = xSemaphoreTake(done, 1000 / portTICK_PERIOD_MS);
  235. TEST_ASSERT_TRUE(result == pdPASS);
  236. }
  237. TEST_ASSERT_TRUE(args1.pass);
  238. TEST_ASSERT_TRUE(args2.pass);
  239. TEST_ASSERT_TRUE(args3.pass);
  240. ref_clock_deinit();
  241. TEST_ESP_OK( esp_timer_dump(stdout) );
  242. TEST_ESP_OK( esp_timer_delete(args1.timer) );
  243. TEST_ESP_OK( esp_timer_delete(args2.timer) );
  244. TEST_ESP_OK( esp_timer_delete(args3.timer) );
  245. #undef N
  246. }
  247. /* Create two timers, start them around the same time, and search through
  248. * timeout delta values to reproduce the case when timeouts occur close to
  249. * each other, testing the "multiple timers triggered" code path in timer_process_alarm.
  250. */
  251. TEST_CASE("esp_timer for very short intervals", "[esp_timer]")
  252. {
  253. SemaphoreHandle_t semaphore = xSemaphoreCreateCounting(2, 0);
  254. void timer_func(void* arg) {
  255. SemaphoreHandle_t done = (SemaphoreHandle_t) arg;
  256. xSemaphoreGive(done);
  257. printf(".");
  258. }
  259. esp_timer_create_args_t timer_args = {
  260. .callback = &timer_func,
  261. .arg = (void*) semaphore,
  262. .name = "foo"
  263. };
  264. esp_timer_handle_t timer1, timer2;
  265. ESP_ERROR_CHECK( esp_timer_create(&timer_args, &timer1) );
  266. ESP_ERROR_CHECK( esp_timer_create(&timer_args, &timer2) );
  267. const int timeout_ms = 10;
  268. for (int timeout_delta_us = -150; timeout_delta_us < 150; timeout_delta_us++) {
  269. printf("delta=%d", timeout_delta_us);
  270. ESP_ERROR_CHECK( esp_timer_start_once(timer1, timeout_ms * 1000) );
  271. ESP_ERROR_CHECK( esp_timer_start_once(timer2, timeout_ms * 1000 + timeout_delta_us) );
  272. TEST_ASSERT_EQUAL(pdPASS, xSemaphoreTake(semaphore, timeout_ms * 2));
  273. TEST_ASSERT_EQUAL(pdPASS, xSemaphoreTake(semaphore, timeout_ms * 2));
  274. printf("\n");
  275. TEST_ESP_ERR(ESP_ERR_INVALID_STATE, esp_timer_stop(timer1));
  276. TEST_ESP_ERR(ESP_ERR_INVALID_STATE, esp_timer_stop(timer2));
  277. }
  278. vSemaphoreDelete(semaphore);
  279. }
  280. TEST_CASE("esp_timer_get_time call takes less than 1us", "[esp_timer]")
  281. {
  282. int64_t begin = esp_timer_get_time();
  283. volatile int64_t end;
  284. const int iter_count = 10000;
  285. for (int i = 0; i < iter_count; ++i) {
  286. end = esp_timer_get_time();
  287. }
  288. int ns_per_call = (int) ((end - begin) * 1000 / iter_count);
  289. printf("esp_timer_get_time: %dns per call\n", ns_per_call);
  290. TEST_ASSERT(ns_per_call < 1000);
  291. }
  292. /* This test runs for about 10 minutes and is disabled in CI.
  293. * Such run time is needed to have FRC2 timer overflow a few times.
  294. */
  295. TEST_CASE("esp_timer_get_time returns monotonic values", "[esp_timer][ignore]")
  296. {
  297. void timer_test_task(void* arg) {
  298. int64_t delta = esp_timer_get_time() - ref_clock_get();
  299. const int iter_count = 1000000000;
  300. for (int i = 0; i < iter_count; ++i) {
  301. int64_t now = esp_timer_get_time();
  302. int64_t ref_now = ref_clock_get();
  303. int64_t diff = now - (ref_now + delta);
  304. /* Allow some difference due to rtos tick interrupting task between
  305. * getting 'now' and 'ref_now'.
  306. */
  307. TEST_ASSERT_INT32_WITHIN(100, 0, (int) diff);
  308. }
  309. xSemaphoreGive((SemaphoreHandle_t) arg);
  310. vTaskDelete(NULL);
  311. }
  312. ref_clock_init();
  313. SemaphoreHandle_t done_1 = xSemaphoreCreateBinary();
  314. SemaphoreHandle_t done_2 = xSemaphoreCreateBinary();
  315. xTaskCreatePinnedToCore(&timer_test_task, "t1", 4096, (void*) done_1, 6, NULL, 0);
  316. xTaskCreatePinnedToCore(&timer_test_task, "t2", 4096, (void*) done_2, 6, NULL, 1);
  317. TEST_ASSERT_TRUE( xSemaphoreTake(done_1, portMAX_DELAY) );
  318. TEST_ASSERT_TRUE( xSemaphoreTake(done_2, portMAX_DELAY) );
  319. vSemaphoreDelete(done_1);
  320. vSemaphoreDelete(done_2);
  321. ref_clock_deinit();
  322. }
  323. TEST_CASE("Can dump esp_timer stats", "[esp_timer]")
  324. {
  325. esp_timer_dump(stdout);
  326. }