test_pm.c 11 KB

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  1. #include <stdio.h>
  2. #include <stdlib.h>
  3. #include <time.h>
  4. #include <sys/time.h>
  5. #include <sys/param.h>
  6. #include "unity.h"
  7. #include "esp_pm.h"
  8. #include "esp_sleep.h"
  9. #include "freertos/FreeRTOS.h"
  10. #include "freertos/task.h"
  11. #include "freertos/semphr.h"
  12. #include "esp_log.h"
  13. #include "driver/timer.h"
  14. #include "driver/rtc_io.h"
  15. #include "soc/rtc_periph.h"
  16. #include "esp_rom_sys.h"
  17. #include "sdkconfig.h"
  18. #if CONFIG_IDF_TARGET_ESP32
  19. #include "esp32/clk.h"
  20. #include "esp32/ulp.h"
  21. #elif CONFIG_IDF_TARGET_ESP32S2
  22. #include "esp32s2/clk.h"
  23. #include "esp32s2/ulp.h"
  24. #elif CONFIG_IDF_TARGET_ESP32S3
  25. #include "esp32s3/clk.h"
  26. #include "esp32s3/ulp.h"
  27. #endif
  28. TEST_CASE("Can dump power management lock stats", "[pm]")
  29. {
  30. esp_pm_dump_locks(stdout);
  31. }
  32. #ifdef CONFIG_PM_ENABLE
  33. static void switch_freq(int mhz)
  34. {
  35. int xtal_freq = rtc_clk_xtal_freq_get();
  36. #if CONFIG_IDF_TARGET_ESP32
  37. esp_pm_config_esp32_t pm_config = {
  38. #elif CONFIG_IDF_TARGET_ESP32S2
  39. esp_pm_config_esp32s2_t pm_config = {
  40. #elif CONFIG_IDF_TARGET_ESP32S3
  41. esp_pm_config_esp32s3_t pm_config = {
  42. #endif
  43. .max_freq_mhz = mhz,
  44. .min_freq_mhz = MIN(mhz, xtal_freq),
  45. };
  46. ESP_ERROR_CHECK( esp_pm_configure(&pm_config) );
  47. printf("Waiting for frequency to be set to %d MHz...\n", mhz);
  48. while (esp_clk_cpu_freq() / MHZ != mhz) {
  49. vTaskDelay(pdMS_TO_TICKS(200));
  50. printf("Frequency is %d MHz\n", esp_clk_cpu_freq() / MHZ);
  51. }
  52. }
  53. TEST_CASE("Can switch frequency using esp_pm_configure", "[pm]")
  54. {
  55. int orig_freq_mhz = esp_clk_cpu_freq() / MHZ;
  56. switch_freq(240);
  57. switch_freq(40);
  58. switch_freq(160);
  59. switch_freq(240);
  60. switch_freq(80);
  61. switch_freq(40);
  62. switch_freq(240);
  63. switch_freq(40);
  64. switch_freq(80);
  65. switch_freq(10);
  66. switch_freq(80);
  67. switch_freq(20);
  68. switch_freq(40);
  69. switch_freq(orig_freq_mhz);
  70. }
  71. #if CONFIG_FREERTOS_USE_TICKLESS_IDLE
  72. static void light_sleep_enable(void)
  73. {
  74. int cur_freq_mhz = esp_clk_cpu_freq() / MHZ;
  75. int xtal_freq = (int) rtc_clk_xtal_freq_get();
  76. #if CONFIG_IDF_TARGET_ESP32
  77. esp_pm_config_esp32_t pm_config = {
  78. #elif CONFIG_IDF_TARGET_ESP32S2
  79. esp_pm_config_esp32s2_t pm_config = {
  80. #elif CONFIG_IDF_TARGET_ESP32S3
  81. esp_pm_config_esp32s3_t pm_config = {
  82. #endif
  83. .max_freq_mhz = cur_freq_mhz,
  84. .min_freq_mhz = xtal_freq,
  85. .light_sleep_enable = true
  86. };
  87. ESP_ERROR_CHECK( esp_pm_configure(&pm_config) );
  88. }
  89. static void light_sleep_disable(void)
  90. {
  91. int cur_freq_mhz = esp_clk_cpu_freq() / MHZ;
  92. #if CONFIG_IDF_TARGET_ESP32
  93. esp_pm_config_esp32_t pm_config = {
  94. #elif CONFIG_IDF_TARGET_ESP32S2
  95. esp_pm_config_esp32s2_t pm_config = {
  96. #elif CONFIG_IDF_TARGET_ESP32S3
  97. esp_pm_config_esp32s3_t pm_config = {
  98. #endif
  99. .max_freq_mhz = cur_freq_mhz,
  100. .min_freq_mhz = cur_freq_mhz,
  101. };
  102. ESP_ERROR_CHECK( esp_pm_configure(&pm_config) );
  103. }
  104. TEST_CASE("Automatic light occurs when tasks are suspended", "[pm]")
  105. {
  106. /* To figure out if light sleep takes place, use Timer Group timer.
  107. * It will stop working while in light sleep.
  108. */
  109. timer_config_t config = {
  110. .counter_dir = TIMER_COUNT_UP,
  111. .divider = 80 /* 1 us per tick */
  112. };
  113. timer_init(TIMER_GROUP_0, TIMER_0, &config);
  114. timer_set_counter_value(TIMER_GROUP_0, TIMER_0, 0);
  115. timer_start(TIMER_GROUP_0, TIMER_0);
  116. light_sleep_enable();
  117. for (int ticks_to_delay = CONFIG_FREERTOS_IDLE_TIME_BEFORE_SLEEP;
  118. ticks_to_delay < CONFIG_FREERTOS_IDLE_TIME_BEFORE_SLEEP * 10;
  119. ++ticks_to_delay) {
  120. /* Wait until next tick */
  121. vTaskDelay(1);
  122. /* The following delay should cause light sleep to start */
  123. uint64_t count_start;
  124. timer_get_counter_value(TIMER_GROUP_0, TIMER_0, &count_start);
  125. vTaskDelay(ticks_to_delay);
  126. uint64_t count_end;
  127. timer_get_counter_value(TIMER_GROUP_0, TIMER_0, &count_end);
  128. int timer_diff_us = (int) (count_end - count_start);
  129. const int us_per_tick = 1 * portTICK_PERIOD_MS * 1000;
  130. printf("%d %d\n", ticks_to_delay * us_per_tick, timer_diff_us);
  131. TEST_ASSERT(timer_diff_us < ticks_to_delay * us_per_tick);
  132. }
  133. light_sleep_disable();
  134. }
  135. #if !TEMPORARY_DISABLED_FOR_TARGETS(ESP32S2, ESP32S3)
  136. // Fix failure on ESP32 when running alone; passes when the previous test is run before this one
  137. TEST_CASE("Can wake up from automatic light sleep by GPIO", "[pm][ignore]")
  138. {
  139. #if CONFIG_IDF_TARGET_ESP32
  140. assert(CONFIG_ESP32_ULP_COPROC_RESERVE_MEM >= 16 && "this test needs ESP32_ULP_COPROC_RESERVE_MEM option set in menuconfig");
  141. #elif CONFIG_IDF_TARGET_ESP32S2
  142. assert(CONFIG_ESP32S2_ULP_COPROC_RESERVE_MEM >= 16 && "this test needs ESP32_ULP_COPROC_RESERVE_MEM option set in menuconfig");
  143. #elif CONFIG_IDF_TARGET_ESP32S3
  144. assert(CONFIG_ESP32S3_ULP_COPROC_RESERVE_MEM >= 16 && "this test needs ESP32_ULP_COPROC_RESERVE_MEM option set in menuconfig");
  145. #endif
  146. /* Set up GPIO used to wake up RTC */
  147. const int ext1_wakeup_gpio = 25;
  148. const int ext_rtc_io = RTCIO_GPIO25_CHANNEL;
  149. TEST_ESP_OK(rtc_gpio_init(ext1_wakeup_gpio));
  150. rtc_gpio_set_direction(ext1_wakeup_gpio, RTC_GPIO_MODE_INPUT_OUTPUT);
  151. rtc_gpio_set_level(ext1_wakeup_gpio, 0);
  152. /* Enable wakeup */
  153. TEST_ESP_OK(esp_sleep_enable_ext1_wakeup(1ULL << ext1_wakeup_gpio, ESP_EXT1_WAKEUP_ANY_HIGH));
  154. /* To simplify test environment, we'll use a ULP program to set GPIO high */
  155. ulp_insn_t ulp_code[] = {
  156. I_DELAY(65535), /* about 8ms, given 8MHz ULP clock */
  157. I_WR_REG_BIT(RTC_CNTL_HOLD_FORCE_REG, RTC_CNTL_PDAC1_HOLD_FORCE_S, 0),
  158. I_WR_REG_BIT(RTC_GPIO_OUT_REG, ext_rtc_io + RTC_GPIO_OUT_DATA_S, 1),
  159. I_DELAY(1000),
  160. I_WR_REG_BIT(RTC_GPIO_OUT_REG, ext_rtc_io + RTC_GPIO_OUT_DATA_S, 0),
  161. I_WR_REG_BIT(RTC_CNTL_HOLD_FORCE_REG, RTC_CNTL_PDAC1_HOLD_FORCE_S, 1),
  162. I_END(),
  163. I_HALT()
  164. };
  165. TEST_ESP_OK(ulp_set_wakeup_period(0, 1000 /* us */));
  166. size_t size = sizeof(ulp_code)/sizeof(ulp_insn_t);
  167. TEST_ESP_OK(ulp_process_macros_and_load(0, ulp_code, &size));
  168. light_sleep_enable();
  169. int rtcio_num = rtc_io_number_get(ext1_wakeup_gpio);
  170. for (int i = 0; i < 10; ++i) {
  171. /* Set GPIO low */
  172. REG_CLR_BIT(rtc_io_desc[rtcio_num].reg, rtc_io_desc[rtcio_num].hold_force);
  173. rtc_gpio_set_level(ext1_wakeup_gpio, 0);
  174. REG_SET_BIT(rtc_io_desc[rtcio_num].reg, rtc_io_desc[rtcio_num].hold_force);
  175. /* Wait for the next tick */
  176. vTaskDelay(1);
  177. /* Start ULP program */
  178. ulp_run(0);
  179. const int delay_ms = 200;
  180. const int delay_ticks = delay_ms / portTICK_PERIOD_MS;
  181. int64_t start_rtc = esp_clk_rtc_time();
  182. int64_t start_hs = esp_timer_get_time();
  183. uint32_t start_tick = xTaskGetTickCount();
  184. /* Will enter sleep here */
  185. vTaskDelay(delay_ticks);
  186. int64_t end_rtc = esp_clk_rtc_time();
  187. int64_t end_hs = esp_timer_get_time();
  188. uint32_t end_tick = xTaskGetTickCount();
  189. printf("%lld %lld %u\n", end_rtc - start_rtc, end_hs - start_hs, end_tick - start_tick);
  190. TEST_ASSERT_INT32_WITHIN(3, delay_ticks, end_tick - start_tick);
  191. TEST_ASSERT_INT32_WITHIN(2 * portTICK_PERIOD_MS * 1000, delay_ms * 1000, end_hs - start_hs);
  192. TEST_ASSERT_INT32_WITHIN(2 * portTICK_PERIOD_MS * 1000, delay_ms * 1000, end_rtc - start_rtc);
  193. }
  194. REG_CLR_BIT(rtc_io_desc[rtcio_num].reg, rtc_io_desc[rtcio_num].hold_force);
  195. rtc_gpio_deinit(ext1_wakeup_gpio);
  196. light_sleep_disable();
  197. }
  198. #endif
  199. typedef struct {
  200. int delay_us;
  201. int result;
  202. SemaphoreHandle_t done;
  203. } delay_test_arg_t;
  204. static void test_delay_task(void* p)
  205. {
  206. delay_test_arg_t* arg = (delay_test_arg_t*) p;
  207. vTaskDelay(1);
  208. uint64_t start = esp_clk_rtc_time();
  209. vTaskDelay(arg->delay_us / portTICK_PERIOD_MS / 1000);
  210. uint64_t stop = esp_clk_rtc_time();
  211. arg->result = (int) (stop - start);
  212. xSemaphoreGive(arg->done);
  213. vTaskDelete(NULL);
  214. }
  215. TEST_CASE("vTaskDelay duration is correct with light sleep enabled", "[pm]")
  216. {
  217. light_sleep_enable();
  218. delay_test_arg_t args = {
  219. .done = xSemaphoreCreateBinary()
  220. };
  221. const int delays[] = { 10, 20, 50, 100, 150, 200, 250 };
  222. const int delays_count = sizeof(delays) / sizeof(delays[0]);
  223. for (int i = 0; i < delays_count; ++i) {
  224. int delay_ms = delays[i];
  225. args.delay_us = delay_ms * 1000;
  226. xTaskCreatePinnedToCore(test_delay_task, "", 2048, (void*) &args, 3, NULL, 0);
  227. TEST_ASSERT( xSemaphoreTake(args.done, delay_ms * 10 / portTICK_PERIOD_MS) );
  228. printf("CPU0: %d %d\n", args.delay_us, args.result);
  229. TEST_ASSERT_INT32_WITHIN(1000 * portTICK_PERIOD_MS * 2, args.delay_us, args.result);
  230. #if portNUM_PROCESSORS == 2
  231. xTaskCreatePinnedToCore(test_delay_task, "", 2048, (void*) &args, 3, NULL, 1);
  232. TEST_ASSERT( xSemaphoreTake(args.done, delay_ms * 10 / portTICK_PERIOD_MS) );
  233. printf("CPU1: %d %d\n", args.delay_us, args.result);
  234. TEST_ASSERT_INT32_WITHIN(1000 * portTICK_PERIOD_MS * 2, args.delay_us, args.result);
  235. #endif
  236. }
  237. vSemaphoreDelete(args.done);
  238. light_sleep_disable();
  239. }
  240. /* This test is similar to the one in test_esp_timer.c, but since we can't use
  241. * ref_clock, this test uses RTC clock for timing. Also enables automatic
  242. * light sleep.
  243. */
  244. TEST_CASE("esp_timer produces correct delays with light sleep", "[pm]")
  245. {
  246. // no, we can't make this a const size_t (§6.7.5.2)
  247. #define NUM_INTERVALS 16
  248. typedef struct {
  249. esp_timer_handle_t timer;
  250. size_t cur_interval;
  251. int intervals[NUM_INTERVALS];
  252. int64_t t_start;
  253. SemaphoreHandle_t done;
  254. } test_args_t;
  255. void timer_func(void* arg)
  256. {
  257. test_args_t* p_args = (test_args_t*) arg;
  258. int64_t t_end = esp_clk_rtc_time();
  259. int32_t ms_diff = (t_end - p_args->t_start) / 1000;
  260. printf("timer #%d %dms\n", p_args->cur_interval, ms_diff);
  261. p_args->intervals[p_args->cur_interval++] = ms_diff;
  262. // Deliberately make timer handler run longer.
  263. // We check that this doesn't affect the result.
  264. esp_rom_delay_us(10*1000);
  265. if (p_args->cur_interval == NUM_INTERVALS) {
  266. printf("done\n");
  267. TEST_ESP_OK(esp_timer_stop(p_args->timer));
  268. xSemaphoreGive(p_args->done);
  269. }
  270. }
  271. light_sleep_enable();
  272. const int delay_ms = 100;
  273. test_args_t args = {0};
  274. esp_timer_handle_t timer1;
  275. esp_timer_create_args_t create_args = {
  276. .callback = &timer_func,
  277. .arg = &args,
  278. .name = "timer1",
  279. };
  280. TEST_ESP_OK(esp_timer_create(&create_args, &timer1));
  281. args.timer = timer1;
  282. args.t_start = esp_clk_rtc_time();
  283. args.done = xSemaphoreCreateBinary();
  284. TEST_ESP_OK(esp_timer_start_periodic(timer1, delay_ms * 1000));
  285. TEST_ASSERT(xSemaphoreTake(args.done, delay_ms * NUM_INTERVALS * 2));
  286. TEST_ASSERT_EQUAL_UINT32(NUM_INTERVALS, args.cur_interval);
  287. for (size_t i = 0; i < NUM_INTERVALS; ++i) {
  288. TEST_ASSERT_INT32_WITHIN(portTICK_PERIOD_MS, (i + 1) * delay_ms, args.intervals[i]);
  289. }
  290. TEST_ESP_OK( esp_timer_dump(stdout) );
  291. TEST_ESP_OK( esp_timer_delete(timer1) );
  292. vSemaphoreDelete(args.done);
  293. light_sleep_disable();
  294. #undef NUM_INTERVALS
  295. }
  296. #endif // CONFIG_FREERTOS_USE_TICKLESS_IDLE
  297. #endif // CONFIG_PM_ENABLE