ledc.c 37 KB

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  1. // Copyright 2015-2019 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. // http://www.apache.org/licenses/LICENSE-2.0
  7. //
  8. // Unless required by applicable law or agreed to in writing, software
  9. // distributed under the License is distributed on an "AS IS" BASIS,
  10. // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  11. // See the License for the specific language governing permissions and
  12. // limitations under the License.
  13. #include <string.h>
  14. #include <esp_types.h>
  15. #include "freertos/FreeRTOS.h"
  16. #include "freertos/semphr.h"
  17. #include "freertos/xtensa_api.h"
  18. #include "soc/gpio_periph.h"
  19. #include "driver/ledc.h"
  20. #include "soc/ledc_periph.h"
  21. #include "soc/rtc.h"
  22. #include "esp_log.h"
  23. static const char* LEDC_TAG = "ledc";
  24. static portMUX_TYPE ledc_spinlock = portMUX_INITIALIZER_UNLOCKED;
  25. #define LEDC_CHECK(a, str, ret_val) \
  26. if (!(a)) { \
  27. ESP_LOGE(LEDC_TAG, "%s(%d): %s", __FUNCTION__, __LINE__, str); \
  28. return (ret_val); \
  29. }
  30. #define LEDC_ARG_CHECK(a, param) LEDC_CHECK(a, param " argument is invalid", ESP_ERR_INVALID_ARG)
  31. typedef struct {
  32. uint16_t speed_mode;
  33. uint16_t direction;
  34. uint32_t target_duty;
  35. int cycle_num;
  36. int scale;
  37. ledc_fade_mode_t mode;
  38. xSemaphoreHandle ledc_fade_sem;
  39. xSemaphoreHandle ledc_fade_mux;
  40. #if CONFIG_SPIRAM_USE_MALLOC
  41. StaticQueue_t ledc_fade_sem_storage;
  42. #endif
  43. } ledc_fade_t;
  44. static ledc_fade_t *s_ledc_fade_rec[LEDC_SPEED_MODE_MAX][LEDC_CHANNEL_MAX];
  45. static ledc_isr_handle_t s_ledc_fade_isr_handle = NULL;
  46. #define LEDC_VAL_NO_CHANGE (-1)
  47. #define LEDC_STEP_NUM_MAX (1023)
  48. #define LEDC_DUTY_DECIMAL_BIT_NUM (4)
  49. #define LEDC_TIMER_DIV_NUM_MAX (0x3FFFF)
  50. #define LEDC_DUTY_NUM_MAX (LEDC_DUTY_NUM_LSCH0_V)
  51. #define LEDC_DUTY_CYCLE_MAX (LEDC_DUTY_CYCLE_LSCH0_V)
  52. #define LEDC_DUTY_SCALE_MAX (LEDC_DUTY_SCALE_LSCH0_V)
  53. #define LEDC_HPOINT_VAL_MAX (LEDC_HPOINT_LSCH1_V)
  54. #define DELAY_CLK8M_CLK_SWITCH (5)
  55. #define SLOW_CLK_CYC_CALIBRATE (13)
  56. #define LEDC_FADE_TOO_SLOW_STR "LEDC FADE TOO SLOW"
  57. #define LEDC_FADE_TOO_FAST_STR "LEDC FADE TOO FAST"
  58. static const char *LEDC_FADE_SERVICE_ERR_STR = "LEDC fade service not installed";
  59. static const char *LEDC_FADE_INIT_ERROR_STR = "LEDC fade channel init error, not enough memory or service not installed";
  60. //This value will be calibrated when in use.
  61. static uint32_t s_ledc_slow_clk_8M = 0;
  62. static void ledc_ls_timer_update(ledc_mode_t speed_mode, ledc_timer_t timer_sel)
  63. {
  64. if (speed_mode == LEDC_LOW_SPEED_MODE) {
  65. LEDC.timer_group[speed_mode].timer[timer_sel].conf.low_speed_update = 1;
  66. }
  67. }
  68. static IRAM_ATTR void ledc_ls_channel_update(ledc_mode_t speed_mode, ledc_channel_t channel_num)
  69. {
  70. if (speed_mode == LEDC_LOW_SPEED_MODE) {
  71. LEDC.channel_group[speed_mode].channel[channel_num].conf0.low_speed_update = 1;
  72. }
  73. }
  74. //We know that CLK8M is about 8M, but don't know the actual value. So we need to do a calibration.
  75. static bool ledc_slow_clk_calibrate(void)
  76. {
  77. #ifdef CONFIG_IDF_TARGET_ESP32
  78. //Enable CLK8M for LEDC
  79. SET_PERI_REG_MASK(RTC_CNTL_CLK_CONF_REG, RTC_CNTL_DIG_CLK8M_EN_M);
  80. //Waiting for CLK8M to turn on
  81. ets_delay_us(DELAY_CLK8M_CLK_SWITCH);
  82. uint32_t cal_val = rtc_clk_cal(RTC_CAL_8MD256, SLOW_CLK_CYC_CALIBRATE);
  83. if(cal_val == 0) {
  84. ESP_LOGE(LEDC_TAG, "CLK8M_CLK calibration failed");
  85. return false;
  86. }
  87. s_ledc_slow_clk_8M = 1000000ULL * (1 << RTC_CLK_CAL_FRACT) * 256 / cal_val;
  88. ESP_LOGD(LEDC_TAG, "Calibrate CLK8M_CLK : %d Hz", s_ledc_slow_clk_8M);
  89. return true;
  90. #else
  91. ESP_LOGE(LEDC_TAG, "CLK8M source currently only supported on ESP32");
  92. return false;
  93. #endif
  94. }
  95. static esp_err_t ledc_enable_intr_type(ledc_mode_t speed_mode, uint32_t channel, ledc_intr_type_t type)
  96. {
  97. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  98. uint32_t value;
  99. uint32_t intr_type = type;
  100. portENTER_CRITICAL(&ledc_spinlock);
  101. value = LEDC.int_ena.val;
  102. #ifdef CONFIG_IDF_TARGET_ESP32
  103. uint8_t int_en_base = LEDC_DUTY_CHNG_END_HSCH0_INT_ENA_S;
  104. #elif defined CONFIG_IDF_TARGET_ESP32S2BETA
  105. uint8_t int_en_base = LEDC_DUTY_CHNG_END_LSCH0_INT_ENA_S;
  106. #endif
  107. if (speed_mode == LEDC_LOW_SPEED_MODE) {
  108. int_en_base = LEDC_DUTY_CHNG_END_LSCH0_INT_ENA_S;
  109. }
  110. if (intr_type == LEDC_INTR_FADE_END) {
  111. LEDC.int_ena.val = value | BIT(int_en_base + channel);
  112. } else {
  113. LEDC.int_ena.val = (value & (~(BIT(int_en_base + channel))));
  114. }
  115. portEXIT_CRITICAL(&ledc_spinlock);
  116. return ESP_OK;
  117. }
  118. static void _ledc_fade_hw_acquire(ledc_mode_t mode, ledc_channel_t channel)
  119. {
  120. ledc_fade_t* fade = s_ledc_fade_rec[mode][channel];
  121. if (fade) {
  122. xSemaphoreTake(fade->ledc_fade_sem, portMAX_DELAY);
  123. ledc_enable_intr_type(mode, channel, LEDC_INTR_DISABLE);
  124. }
  125. }
  126. static void _ledc_fade_hw_release(ledc_mode_t mode, ledc_channel_t channel)
  127. {
  128. ledc_fade_t* fade = s_ledc_fade_rec[mode][channel];
  129. if (fade) {
  130. xSemaphoreGive(fade->ledc_fade_sem);
  131. }
  132. }
  133. static void _ledc_op_lock_acquire(ledc_mode_t mode, ledc_channel_t channel)
  134. {
  135. ledc_fade_t* fade = s_ledc_fade_rec[mode][channel];
  136. if (fade) {
  137. xSemaphoreTake(fade->ledc_fade_mux, portMAX_DELAY);
  138. }
  139. }
  140. static void _ledc_op_lock_release(ledc_mode_t mode, ledc_channel_t channel)
  141. {
  142. ledc_fade_t* fade = s_ledc_fade_rec[mode][channel];
  143. if (fade) {
  144. xSemaphoreGive(fade->ledc_fade_mux);
  145. }
  146. }
  147. static int ledc_get_max_duty(ledc_mode_t speed_mode, ledc_channel_t channel)
  148. {
  149. // The arguments are checked before internally calling this function.
  150. int timer_sel = LEDC.channel_group[speed_mode].channel[channel].conf0.timer_sel;
  151. int max_duty = (1 << (LEDC.timer_group[speed_mode].timer[timer_sel].conf.duty_resolution));
  152. return max_duty;
  153. }
  154. esp_err_t ledc_timer_set(ledc_mode_t speed_mode, ledc_timer_t timer_sel, uint32_t clock_divider, uint32_t duty_resolution,
  155. ledc_clk_src_t clk_src)
  156. {
  157. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  158. LEDC_ARG_CHECK(timer_sel < LEDC_TIMER_MAX, "timer_select");
  159. portENTER_CRITICAL(&ledc_spinlock);
  160. LEDC.timer_group[speed_mode].timer[timer_sel].conf.clock_divider = clock_divider;
  161. #ifdef CONFIG_IDF_TARGET_ESP32
  162. LEDC.timer_group[speed_mode].timer[timer_sel].conf.tick_sel = clk_src;
  163. #elif defined CONFIG_IDF_TARGET_ESP32S2BETA
  164. if(clk_src == LEDC_REF_TICK) {
  165. //REF_TICK can only be used when APB is selected.
  166. LEDC.timer_group[speed_mode].timer[timer_sel].conf.tick_sel = 1;
  167. LEDC.conf.apb_clk_sel = 1;
  168. } else {
  169. LEDC.timer_group[speed_mode].timer[timer_sel].conf.tick_sel = 0;
  170. LEDC.conf.apb_clk_sel = clk_src;
  171. }
  172. #endif
  173. LEDC.timer_group[speed_mode].timer[timer_sel].conf.duty_resolution = duty_resolution;
  174. ledc_ls_timer_update(speed_mode, timer_sel);
  175. portEXIT_CRITICAL(&ledc_spinlock);
  176. return ESP_OK;
  177. }
  178. static IRAM_ATTR esp_err_t ledc_duty_config(ledc_mode_t speed_mode, ledc_channel_t channel_num, int hpoint_val, int duty_val,
  179. uint32_t duty_direction, uint32_t duty_num, uint32_t duty_cycle, uint32_t duty_scale)
  180. {
  181. portENTER_CRITICAL(&ledc_spinlock);
  182. if (hpoint_val >= 0) {
  183. LEDC.channel_group[speed_mode].channel[channel_num].hpoint.hpoint = hpoint_val;
  184. }
  185. if (duty_val >= 0) {
  186. LEDC.channel_group[speed_mode].channel[channel_num].duty.duty = duty_val;
  187. }
  188. typeof(LEDC.channel_group[0].channel[0].conf1) channel_cfg;
  189. channel_cfg.val = 0;
  190. channel_cfg.duty_inc = duty_direction;
  191. channel_cfg.duty_num = duty_num;
  192. channel_cfg.duty_cycle = duty_cycle;
  193. channel_cfg.duty_scale = duty_scale;
  194. LEDC.channel_group[speed_mode].channel[channel_num].conf1.val = channel_cfg.val;
  195. ledc_ls_channel_update(speed_mode, channel_num);
  196. portEXIT_CRITICAL(&ledc_spinlock);
  197. return ESP_OK;
  198. }
  199. esp_err_t ledc_bind_channel_timer(ledc_mode_t speed_mode, ledc_channel_t channel, uint32_t timer_idx)
  200. {
  201. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  202. LEDC_ARG_CHECK(timer_idx < LEDC_TIMER_MAX, "timer_select"); portENTER_CRITICAL(&ledc_spinlock);
  203. LEDC.channel_group[speed_mode].channel[channel].conf0.timer_sel = timer_idx;
  204. ledc_ls_channel_update(speed_mode, channel);
  205. portEXIT_CRITICAL(&ledc_spinlock);
  206. return ESP_OK;
  207. }
  208. esp_err_t ledc_timer_rst(ledc_mode_t speed_mode, uint32_t timer_sel)
  209. {
  210. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  211. LEDC_ARG_CHECK(timer_sel < LEDC_TIMER_MAX, "timer_select");
  212. portENTER_CRITICAL(&ledc_spinlock);
  213. LEDC.timer_group[speed_mode].timer[timer_sel].conf.rst = 1;
  214. LEDC.timer_group[speed_mode].timer[timer_sel].conf.rst = 0;
  215. ledc_ls_timer_update(speed_mode, timer_sel);
  216. portEXIT_CRITICAL(&ledc_spinlock);
  217. return ESP_OK;
  218. }
  219. esp_err_t ledc_timer_pause(ledc_mode_t speed_mode, uint32_t timer_sel)
  220. {
  221. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  222. LEDC_ARG_CHECK(timer_sel < LEDC_TIMER_MAX, "timer_select");
  223. portENTER_CRITICAL(&ledc_spinlock);
  224. LEDC.timer_group[speed_mode].timer[timer_sel].conf.pause = 1;
  225. ledc_ls_timer_update(speed_mode, timer_sel);
  226. portEXIT_CRITICAL(&ledc_spinlock);
  227. return ESP_OK;
  228. }
  229. esp_err_t ledc_timer_resume(ledc_mode_t speed_mode, uint32_t timer_sel)
  230. {
  231. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  232. LEDC_ARG_CHECK(timer_sel < LEDC_TIMER_MAX, "timer_select");
  233. portENTER_CRITICAL(&ledc_spinlock);
  234. LEDC.timer_group[speed_mode].timer[timer_sel].conf.pause = 0;
  235. ledc_ls_timer_update(speed_mode, timer_sel);
  236. portEXIT_CRITICAL(&ledc_spinlock);
  237. return ESP_OK;
  238. }
  239. esp_err_t ledc_isr_register(void (*fn)(void*), void * arg, int intr_alloc_flags, ledc_isr_handle_t *handle)
  240. {
  241. esp_err_t ret;
  242. LEDC_ARG_CHECK(fn, "fn");
  243. portENTER_CRITICAL(&ledc_spinlock);
  244. ret = esp_intr_alloc(ETS_LEDC_INTR_SOURCE, intr_alloc_flags, fn, arg, handle);
  245. portEXIT_CRITICAL(&ledc_spinlock);
  246. return ret;
  247. }
  248. // Setting the LEDC timer divisor with the given source clock, frequency and resolution.
  249. static esp_err_t ledc_set_timer_div(ledc_mode_t speed_mode, ledc_timer_t timer_num, ledc_clk_cfg_t clk_cfg, int freq_hz, int duty_resolution)
  250. {
  251. uint32_t div_param = 0;
  252. uint32_t precision = ( 0x1 << duty_resolution );
  253. ledc_clk_src_t timer_clk_src = LEDC_APB_CLK;
  254. // Calculate the divisor
  255. // User specified source clock(RTC8M_CLK) for low speed channel
  256. if ((speed_mode == LEDC_LOW_SPEED_MODE) && (clk_cfg == LEDC_USE_RTC8M_CLK)) {
  257. if(s_ledc_slow_clk_8M == 0) {
  258. if (ledc_slow_clk_calibrate() == false) {
  259. goto error;
  260. }
  261. }
  262. div_param = ( (uint64_t) s_ledc_slow_clk_8M << 8 ) / freq_hz / precision;
  263. } else {
  264. // Automatically select APB or REF_TICK as the source clock.
  265. if (clk_cfg == LEDC_AUTO_CLK) {
  266. // Try calculating divisor based on LEDC_APB_CLK
  267. div_param = ( (uint64_t) LEDC_APB_CLK_HZ << 8 ) / freq_hz / precision;
  268. if (div_param > LEDC_TIMER_DIV_NUM_MAX) {
  269. // APB_CLK results in divisor which too high. Try using REF_TICK as clock source.
  270. timer_clk_src = LEDC_REF_TICK;
  271. div_param = ((uint64_t) LEDC_REF_CLK_HZ << 8) / freq_hz / precision;
  272. } else if (div_param < 256) {
  273. // divisor is too low
  274. goto error;
  275. }
  276. // User specified source clock(LEDC_APB_CLK_HZ or LEDC_REF_TICK)
  277. } else {
  278. timer_clk_src = (clk_cfg == LEDC_USE_APB_CLK) ? LEDC_APB_CLK : LEDC_REF_TICK;
  279. uint32_t sclk_freq = (clk_cfg == LEDC_USE_APB_CLK) ? LEDC_APB_CLK_HZ : LEDC_REF_CLK_HZ;
  280. div_param = ( (uint64_t) sclk_freq << 8 ) / freq_hz / precision;
  281. }
  282. }
  283. if (div_param < 256 || div_param > LEDC_TIMER_DIV_NUM_MAX) {
  284. goto error;
  285. }
  286. #ifdef CONFIG_IDF_TARGET_ESP32
  287. // For low speed channels, if RTC_8MCLK is used as the source clock, the `slow_clk_sel` register should be cleared, otherwise it should be set.
  288. if (speed_mode == LEDC_LOW_SPEED_MODE) {
  289. LEDC.conf.slow_clk_sel = (clk_cfg == LEDC_USE_RTC8M_CLK) ? 0 : 1;
  290. }
  291. #endif
  292. //Set the divisor
  293. ledc_timer_set(speed_mode, timer_num, div_param, duty_resolution, timer_clk_src);
  294. // reset the timer
  295. ledc_timer_rst(speed_mode, timer_num);
  296. return ESP_OK;
  297. error:
  298. ESP_LOGE(LEDC_TAG, "requested frequency and duty resolution can not be achieved, try reducing freq_hz or duty_resolution. div_param=%d",
  299. (uint32_t ) div_param);
  300. return ESP_FAIL;
  301. }
  302. esp_err_t ledc_timer_config(const ledc_timer_config_t* timer_conf)
  303. {
  304. LEDC_ARG_CHECK(timer_conf != NULL, "timer_conf");
  305. uint32_t freq_hz = timer_conf->freq_hz;
  306. uint32_t duty_resolution = timer_conf->duty_resolution;
  307. uint32_t timer_num = timer_conf->timer_num;
  308. uint32_t speed_mode = timer_conf->speed_mode;
  309. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  310. LEDC_ARG_CHECK(!((timer_conf->clk_cfg == LEDC_USE_RTC8M_CLK) && (speed_mode != LEDC_LOW_SPEED_MODE)), "Only low speed channel support RTC8M_CLK");
  311. periph_module_enable(PERIPH_LEDC_MODULE);
  312. if (freq_hz == 0 || duty_resolution == 0 || duty_resolution >= LEDC_TIMER_BIT_MAX) {
  313. ESP_LOGE(LEDC_TAG, "freq_hz=%u duty_resolution=%u", freq_hz, duty_resolution);
  314. return ESP_ERR_INVALID_ARG;
  315. }
  316. if (timer_num > LEDC_TIMER_3) {
  317. ESP_LOGE(LEDC_TAG, "invalid timer #%u", timer_num);
  318. return ESP_ERR_INVALID_ARG;
  319. }
  320. return ledc_set_timer_div(speed_mode, timer_num, timer_conf->clk_cfg, freq_hz, duty_resolution);
  321. }
  322. esp_err_t ledc_set_pin(int gpio_num, ledc_mode_t speed_mode, ledc_channel_t ledc_channel)
  323. {
  324. LEDC_ARG_CHECK(ledc_channel < LEDC_CHANNEL_MAX, "ledc_channel");
  325. LEDC_ARG_CHECK(GPIO_IS_VALID_OUTPUT_GPIO(gpio_num), "gpio_num");
  326. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  327. PIN_FUNC_SELECT(GPIO_PIN_MUX_REG[gpio_num], PIN_FUNC_GPIO);
  328. gpio_set_direction(gpio_num, GPIO_MODE_OUTPUT);
  329. gpio_matrix_out(gpio_num, ledc_periph_signal[speed_mode].sig_out0_idx + ledc_channel, 0, 0);
  330. return ESP_OK;
  331. }
  332. esp_err_t ledc_channel_config(const ledc_channel_config_t* ledc_conf)
  333. {
  334. LEDC_ARG_CHECK(ledc_conf, "ledc_conf");
  335. uint32_t speed_mode = ledc_conf->speed_mode;
  336. uint32_t gpio_num = ledc_conf->gpio_num;
  337. uint32_t ledc_channel = ledc_conf->channel;
  338. uint32_t timer_select = ledc_conf->timer_sel;
  339. uint32_t intr_type = ledc_conf->intr_type;
  340. uint32_t duty = ledc_conf->duty;
  341. uint32_t hpoint = ledc_conf->hpoint;
  342. LEDC_ARG_CHECK(ledc_channel < LEDC_CHANNEL_MAX, "ledc_channel");
  343. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  344. LEDC_ARG_CHECK(GPIO_IS_VALID_OUTPUT_GPIO(gpio_num), "gpio_num");
  345. LEDC_ARG_CHECK(timer_select < LEDC_TIMER_MAX, "timer_select");
  346. periph_module_enable(PERIPH_LEDC_MODULE);
  347. esp_err_t ret = ESP_OK;
  348. /*set channel parameters*/
  349. /* channel parameters decide how the waveform looks like in one period*/
  350. /* set channel duty and hpoint value, duty range is (0 ~ ((2 ** duty_resolution) - 1)), max hpoint value is 0xfffff*/
  351. ledc_set_duty_with_hpoint(speed_mode, ledc_channel, duty, hpoint);
  352. /*update duty settings*/
  353. ledc_update_duty(speed_mode, ledc_channel);
  354. /*bind the channel with the timer*/
  355. ledc_bind_channel_timer(speed_mode, ledc_channel, timer_select);
  356. /*set interrupt type*/
  357. ledc_enable_intr_type(speed_mode, ledc_channel, intr_type);
  358. ESP_LOGD(LEDC_TAG, "LEDC_PWM CHANNEL %1u|GPIO %02u|Duty %04u|Time %01u",
  359. ledc_channel, gpio_num, duty, timer_select
  360. );
  361. /*set LEDC signal in gpio matrix*/
  362. PIN_FUNC_SELECT(GPIO_PIN_MUX_REG[gpio_num], PIN_FUNC_GPIO);
  363. gpio_set_direction(gpio_num, GPIO_MODE_OUTPUT);
  364. gpio_matrix_out(gpio_num, ledc_periph_signal[speed_mode].sig_out0_idx + ledc_channel, 0, 0);
  365. return ret;
  366. }
  367. esp_err_t ledc_update_duty(ledc_mode_t speed_mode, ledc_channel_t channel)
  368. {
  369. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  370. LEDC_ARG_CHECK(channel < LEDC_CHANNEL_MAX, "channel");
  371. portENTER_CRITICAL(&ledc_spinlock);
  372. LEDC.channel_group[speed_mode].channel[channel].conf0.sig_out_en = 1;
  373. LEDC.channel_group[speed_mode].channel[channel].conf1.duty_start = 1;
  374. ledc_ls_channel_update(speed_mode, channel);
  375. portEXIT_CRITICAL(&ledc_spinlock);
  376. return ESP_OK;
  377. }
  378. esp_err_t ledc_stop(ledc_mode_t speed_mode, ledc_channel_t channel, uint32_t idle_level)
  379. {
  380. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  381. LEDC_ARG_CHECK(channel < LEDC_CHANNEL_MAX, "channel");
  382. portENTER_CRITICAL(&ledc_spinlock);
  383. LEDC.channel_group[speed_mode].channel[channel].conf0.idle_lv = idle_level & 0x1;
  384. LEDC.channel_group[speed_mode].channel[channel].conf0.sig_out_en = 0;
  385. LEDC.channel_group[speed_mode].channel[channel].conf1.duty_start = 0;
  386. ledc_ls_channel_update(speed_mode, channel);
  387. portEXIT_CRITICAL(&ledc_spinlock);
  388. return ESP_OK;
  389. }
  390. esp_err_t ledc_set_fade(ledc_mode_t speed_mode, ledc_channel_t channel, uint32_t duty, ledc_duty_direction_t fade_direction,
  391. uint32_t step_num, uint32_t duty_cyle_num, uint32_t duty_scale)
  392. {
  393. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  394. LEDC_ARG_CHECK(channel < LEDC_CHANNEL_MAX, "channel");
  395. LEDC_ARG_CHECK(fade_direction < LEDC_DUTY_DIR_MAX, "fade_direction");
  396. LEDC_ARG_CHECK(step_num <= LEDC_DUTY_NUM_MAX, "step_num");
  397. LEDC_ARG_CHECK(duty_cyle_num <= LEDC_DUTY_CYCLE_MAX, "duty_cycle_num");
  398. LEDC_ARG_CHECK(duty_scale <= LEDC_DUTY_SCALE_MAX, "duty_scale");
  399. _ledc_fade_hw_acquire(speed_mode, channel);
  400. ledc_duty_config(speed_mode,
  401. channel, //uint32_t chan_num,
  402. LEDC_VAL_NO_CHANGE,
  403. duty << 4, //uint32_t duty_val,the least 4 bits are decimal part
  404. fade_direction, //uint32_t increase,
  405. step_num, //uint32_t duty_num,
  406. duty_cyle_num, //uint32_t duty_cycle,
  407. duty_scale //uint32_t duty_scale
  408. );
  409. _ledc_fade_hw_release(speed_mode, channel);
  410. return ESP_OK;
  411. }
  412. esp_err_t ledc_set_duty_with_hpoint(ledc_mode_t speed_mode, ledc_channel_t channel, uint32_t duty, uint32_t hpoint)
  413. {
  414. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  415. LEDC_ARG_CHECK(channel < LEDC_CHANNEL_MAX, "channel");
  416. LEDC_ARG_CHECK(hpoint <= LEDC_HPOINT_VAL_MAX, "hpoint");
  417. /* The channel configuration should not be changed before the fade operation is done. */
  418. _ledc_fade_hw_acquire(speed_mode, channel);
  419. ledc_duty_config(speed_mode,
  420. channel, //uint32_t chan_num,
  421. hpoint, //uint32_t hpoint_val,
  422. duty << 4, //uint32_t duty_val,the least 4 bits are decimal part
  423. 1, //uint32_t increase,
  424. 1, //uint32_t duty_num,
  425. 1, //uint32_t duty_cycle,
  426. 0 //uint32_t duty_scale
  427. );
  428. _ledc_fade_hw_release(speed_mode, channel);
  429. return ESP_OK;
  430. }
  431. esp_err_t ledc_set_duty(ledc_mode_t speed_mode, ledc_channel_t channel, uint32_t duty)
  432. {
  433. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  434. LEDC_ARG_CHECK(channel < LEDC_CHANNEL_MAX, "channel");
  435. /* The channel configuration should not be changed before the fade operation is done. */
  436. _ledc_fade_hw_acquire(speed_mode, channel);
  437. ledc_duty_config(speed_mode,
  438. channel, //uint32_t chan_num,
  439. LEDC_VAL_NO_CHANGE,
  440. duty << 4, //uint32_t duty_val,the least 4 bits are decimal part
  441. 1, //uint32_t increase,
  442. 1, //uint32_t duty_num,
  443. 1, //uint32_t duty_cycle,
  444. 0 //uint32_t duty_scale
  445. );
  446. _ledc_fade_hw_release(speed_mode, channel);
  447. return ESP_OK;
  448. }
  449. uint32_t ledc_get_duty(ledc_mode_t speed_mode, ledc_channel_t channel)
  450. {
  451. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  452. uint32_t duty = (LEDC.channel_group[speed_mode].channel[channel].duty_rd.duty_read >> 4);
  453. return duty;
  454. }
  455. int ledc_get_hpoint(ledc_mode_t speed_mode, ledc_channel_t channel)
  456. {
  457. LEDC_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode argument is invalid", LEDC_ERR_VAL);
  458. LEDC_CHECK(channel < LEDC_CHANNEL_MAX, "channel argument is invalid", LEDC_ERR_VAL);
  459. uint32_t hpoint = LEDC.channel_group[speed_mode].channel[channel].hpoint.hpoint;
  460. return hpoint;
  461. }
  462. esp_err_t ledc_set_freq(ledc_mode_t speed_mode, ledc_timer_t timer_num, uint32_t freq_hz)
  463. {
  464. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  465. portENTER_CRITICAL(&ledc_spinlock);
  466. esp_err_t ret = ESP_OK;
  467. uint32_t clock_divider = 0;
  468. uint32_t duty_resolution = LEDC.timer_group[speed_mode].timer[timer_num].conf.duty_resolution;
  469. uint32_t timer_source_clk = LEDC.timer_group[speed_mode].timer[timer_num].conf.tick_sel;
  470. uint32_t precision = (0x1 << duty_resolution);
  471. if (timer_source_clk == LEDC_APB_CLK) {
  472. clock_divider = ((uint64_t) LEDC_APB_CLK_HZ << 8) / freq_hz / precision;
  473. } else {
  474. clock_divider = ((uint64_t) LEDC_REF_CLK_HZ << 8) / freq_hz / precision;
  475. }
  476. if (clock_divider <= 256 || clock_divider > LEDC_TIMER_DIV_NUM_MAX) {
  477. ESP_LOGE(LEDC_TAG, "div param err,div_param=%u", clock_divider);
  478. ret = ESP_FAIL;
  479. }
  480. LEDC.timer_group[speed_mode].timer[timer_num].conf.clock_divider = clock_divider;
  481. ledc_ls_timer_update(speed_mode, timer_num);
  482. portEXIT_CRITICAL(&ledc_spinlock);
  483. return ret;
  484. }
  485. uint32_t ledc_get_freq(ledc_mode_t speed_mode, ledc_timer_t timer_num)
  486. {
  487. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  488. portENTER_CRITICAL(&ledc_spinlock);
  489. uint32_t freq = 0;
  490. uint32_t timer_source_clk = LEDC.timer_group[speed_mode].timer[timer_num].conf.tick_sel;
  491. uint32_t duty_resolution = LEDC.timer_group[speed_mode].timer[timer_num].conf.duty_resolution;
  492. uint32_t clock_divider = LEDC.timer_group[speed_mode].timer[timer_num].conf.clock_divider;
  493. uint32_t precision = (0x1 << duty_resolution);
  494. if (timer_source_clk == LEDC_APB_CLK) {
  495. freq = ((uint64_t) LEDC_APB_CLK_HZ << 8) / precision / clock_divider;
  496. } else {
  497. freq = ((uint64_t) LEDC_REF_CLK_HZ << 8) / precision / clock_divider;
  498. }
  499. portEXIT_CRITICAL(&ledc_spinlock);
  500. return freq;
  501. }
  502. static inline void ledc_calc_fade_end_channel(uint32_t *fade_end_status, int *channel, int *speed_mode)
  503. {
  504. int i = __builtin_ffs((*fade_end_status)) - 1;
  505. (*fade_end_status) &= ~(1 << i);
  506. *speed_mode = LEDC_LOW_SPEED_MODE;
  507. *channel = i;
  508. #ifdef CONFIG_IDF_TARGET_ESP32
  509. if (i < LEDC_CHANNEL_MAX) {
  510. *speed_mode = LEDC_HIGH_SPEED_MODE;
  511. } else {
  512. *channel = i - LEDC_CHANNEL_MAX;
  513. }
  514. #endif
  515. }
  516. void IRAM_ATTR ledc_fade_isr(void* arg)
  517. {
  518. portBASE_TYPE HPTaskAwoken = pdFALSE;
  519. uint32_t intr_status = LEDC.int_st.val; //read LEDC interrupt status.
  520. uint32_t fade_end_status = (intr_status >> LEDC_LSTIMER0_OVF_INT_ST_S);
  521. int speed_mode;
  522. int channel;
  523. while (fade_end_status) {
  524. ledc_calc_fade_end_channel(&fade_end_status, &channel, &speed_mode);
  525. if (s_ledc_fade_rec[speed_mode][channel] == NULL) {
  526. //fade object not initialized yet.
  527. continue;
  528. }
  529. uint32_t duty_cur = LEDC.channel_group[speed_mode].channel[channel].duty_rd.duty_read >> LEDC_DUTY_DECIMAL_BIT_NUM;
  530. if (duty_cur == s_ledc_fade_rec[speed_mode][channel]->target_duty) {
  531. xSemaphoreGiveFromISR(s_ledc_fade_rec[speed_mode][channel]->ledc_fade_sem, &HPTaskAwoken);
  532. continue;
  533. }
  534. uint32_t duty_tar = s_ledc_fade_rec[speed_mode][channel]->target_duty;
  535. int scale = s_ledc_fade_rec[speed_mode][channel]->scale;
  536. if (scale == 0) {
  537. xSemaphoreGiveFromISR(s_ledc_fade_rec[speed_mode][channel]->ledc_fade_sem, &HPTaskAwoken);
  538. continue;
  539. }
  540. int cycle = s_ledc_fade_rec[speed_mode][channel]->cycle_num;
  541. int delta = s_ledc_fade_rec[speed_mode][channel]->direction == LEDC_DUTY_DIR_DECREASE ? duty_cur - duty_tar : duty_tar - duty_cur;
  542. int step = delta / scale > LEDC_STEP_NUM_MAX ? LEDC_STEP_NUM_MAX : delta / scale;
  543. if (delta > scale) {
  544. ledc_duty_config(
  545. speed_mode,
  546. channel,
  547. LEDC_VAL_NO_CHANGE,
  548. duty_cur << LEDC_DUTY_DECIMAL_BIT_NUM,
  549. s_ledc_fade_rec[speed_mode][channel]->direction,
  550. step,
  551. cycle,
  552. scale);
  553. } else {
  554. ledc_duty_config(
  555. speed_mode,
  556. channel,
  557. LEDC_VAL_NO_CHANGE,
  558. duty_tar << LEDC_DUTY_DECIMAL_BIT_NUM,
  559. s_ledc_fade_rec[speed_mode][channel]->direction,
  560. 1,
  561. 1,
  562. 0);
  563. }
  564. LEDC.channel_group[speed_mode].channel[channel].conf1.duty_start = 1;
  565. }
  566. LEDC.int_clr.val = intr_status; //clear LEDC interrupt status.
  567. if (HPTaskAwoken == pdTRUE) {
  568. portYIELD_FROM_ISR();
  569. }
  570. }
  571. static esp_err_t ledc_fade_channel_deinit(ledc_mode_t speed_mode, ledc_channel_t channel)
  572. {
  573. if (s_ledc_fade_rec[speed_mode][channel]) {
  574. if (s_ledc_fade_rec[speed_mode][channel]->ledc_fade_mux) {
  575. vSemaphoreDelete(s_ledc_fade_rec[speed_mode][channel]->ledc_fade_mux);
  576. s_ledc_fade_rec[speed_mode][channel]->ledc_fade_mux = NULL;
  577. }
  578. if (s_ledc_fade_rec[speed_mode][channel]->ledc_fade_sem) {
  579. vSemaphoreDelete(s_ledc_fade_rec[speed_mode][channel]->ledc_fade_sem);
  580. s_ledc_fade_rec[speed_mode][channel]->ledc_fade_sem = NULL;
  581. }
  582. free(s_ledc_fade_rec[speed_mode][channel]);
  583. s_ledc_fade_rec[speed_mode][channel] = NULL;
  584. }
  585. return ESP_OK;
  586. }
  587. static esp_err_t ledc_fade_channel_init_check(ledc_mode_t speed_mode, ledc_channel_t channel)
  588. {
  589. if (s_ledc_fade_isr_handle == NULL) {
  590. ESP_LOGE(LEDC_TAG, "Fade service not installed, call ledc_fade_func_install");
  591. return ESP_FAIL;
  592. }
  593. if (s_ledc_fade_rec[speed_mode][channel] == NULL) {
  594. #if CONFIG_SPIRAM_USE_MALLOC
  595. s_ledc_fade_rec[speed_mode][channel] = (ledc_fade_t *) heap_caps_calloc(1, sizeof(ledc_fade_t), MALLOC_CAP_INTERNAL|MALLOC_CAP_8BIT);
  596. if (!s_ledc_fade_rec[speed_mode][channel]) {
  597. ledc_fade_channel_deinit(speed_mode, channel);
  598. return ESP_FAIL;
  599. }
  600. memset(&s_ledc_fade_rec[speed_mode][channel]->ledc_fade_sem_storage, 0, sizeof(StaticQueue_t));
  601. s_ledc_fade_rec[speed_mode][channel]->ledc_fade_sem = xSemaphoreCreateBinaryStatic(&s_ledc_fade_rec[speed_mode][channel]->ledc_fade_sem_storage);
  602. #else
  603. s_ledc_fade_rec[speed_mode][channel] = (ledc_fade_t *) calloc(1, sizeof(ledc_fade_t));
  604. s_ledc_fade_rec[speed_mode][channel]->ledc_fade_sem = xSemaphoreCreateBinary();
  605. #endif
  606. s_ledc_fade_rec[speed_mode][channel]->ledc_fade_mux = xSemaphoreCreateMutex();
  607. xSemaphoreGive(s_ledc_fade_rec[speed_mode][channel]->ledc_fade_sem);
  608. }
  609. if (s_ledc_fade_rec[speed_mode][channel]
  610. && s_ledc_fade_rec[speed_mode][channel]->ledc_fade_mux
  611. && s_ledc_fade_rec[speed_mode][channel]->ledc_fade_sem) {
  612. return ESP_OK;
  613. } else {
  614. ledc_fade_channel_deinit(speed_mode, channel);
  615. return ESP_FAIL;
  616. }
  617. }
  618. static esp_err_t _ledc_set_fade_with_step(ledc_mode_t speed_mode, ledc_channel_t channel, uint32_t target_duty, int scale, int cycle_num)
  619. {
  620. portENTER_CRITICAL(&ledc_spinlock);
  621. uint32_t duty_cur = LEDC.channel_group[speed_mode].channel[channel].duty_rd.duty_read >> LEDC_DUTY_DECIMAL_BIT_NUM;
  622. // When duty == max_duty, meanwhile, if scale == 1 and fade_down == 1, counter would overflow.
  623. if (duty_cur == ledc_get_max_duty(speed_mode, channel)) {
  624. duty_cur -= 1;
  625. }
  626. s_ledc_fade_rec[speed_mode][channel]->speed_mode = speed_mode;
  627. s_ledc_fade_rec[speed_mode][channel]->target_duty = target_duty;
  628. s_ledc_fade_rec[speed_mode][channel]->cycle_num = cycle_num;
  629. s_ledc_fade_rec[speed_mode][channel]->scale = scale;
  630. int step_num = 0;
  631. int dir = LEDC_DUTY_DIR_DECREASE;
  632. if (scale > 0) {
  633. if (duty_cur > target_duty) {
  634. s_ledc_fade_rec[speed_mode][channel]->direction = LEDC_DUTY_DIR_DECREASE;
  635. step_num = (duty_cur - target_duty) / scale;
  636. step_num = step_num > LEDC_STEP_NUM_MAX ? LEDC_STEP_NUM_MAX : step_num;
  637. } else {
  638. s_ledc_fade_rec[speed_mode][channel]->direction = LEDC_DUTY_DIR_INCREASE;
  639. dir = LEDC_DUTY_DIR_INCREASE;
  640. step_num = (target_duty - duty_cur) / scale;
  641. step_num = step_num > LEDC_STEP_NUM_MAX ? LEDC_STEP_NUM_MAX : step_num;
  642. }
  643. }
  644. portEXIT_CRITICAL(&ledc_spinlock);
  645. if (scale > 0 && step_num > 0) {
  646. ledc_duty_config(speed_mode, channel, LEDC_VAL_NO_CHANGE, duty_cur << 4, dir, step_num, cycle_num, scale);
  647. ESP_LOGD(LEDC_TAG, "cur duty: %d; target: %d, step: %d, cycle: %d; scale: %d; dir: %d\n",
  648. duty_cur, target_duty, step_num, cycle_num, scale, dir);
  649. } else {
  650. ledc_duty_config(speed_mode, channel, LEDC_VAL_NO_CHANGE, target_duty << 4, dir, 0, 1, 0);
  651. ESP_LOGD(LEDC_TAG, "Set to target duty: %d", target_duty);
  652. }
  653. return ESP_OK;
  654. }
  655. static esp_err_t _ledc_set_fade_with_time(ledc_mode_t speed_mode, ledc_channel_t channel, uint32_t target_duty, int max_fade_time_ms)
  656. {
  657. int timer_sel = LEDC.channel_group[speed_mode].channel[channel].conf0.timer_sel;
  658. uint32_t freq = ledc_get_freq(speed_mode, timer_sel);
  659. uint32_t duty_cur = LEDC.channel_group[speed_mode].channel[channel].duty_rd.duty_read >> LEDC_DUTY_DECIMAL_BIT_NUM;
  660. uint32_t duty_delta = target_duty > duty_cur ? target_duty - duty_cur : duty_cur - target_duty;
  661. if (duty_delta == 0) {
  662. return _ledc_set_fade_with_step(speed_mode, channel, target_duty, 0, 0);
  663. }
  664. int total_cycles = max_fade_time_ms * freq / 1000;
  665. if (total_cycles == 0) {
  666. ESP_LOGW(LEDC_TAG, LEDC_FADE_TOO_FAST_STR);
  667. return _ledc_set_fade_with_step(speed_mode, channel, target_duty, 0, 0);
  668. }
  669. int scale, cycle_num;
  670. if (total_cycles > duty_delta) {
  671. scale = 1;
  672. cycle_num = total_cycles / duty_delta;
  673. if (cycle_num > LEDC_DUTY_NUM_MAX) {
  674. ESP_LOGW(LEDC_TAG, LEDC_FADE_TOO_SLOW_STR);
  675. cycle_num = LEDC_DUTY_NUM_MAX;
  676. }
  677. } else {
  678. cycle_num = 1;
  679. scale = duty_delta / total_cycles;
  680. if (scale > LEDC_DUTY_SCALE_MAX) {
  681. ESP_LOGW(LEDC_TAG, LEDC_FADE_TOO_FAST_STR);
  682. scale = LEDC_DUTY_SCALE_MAX;
  683. }
  684. }
  685. return _ledc_set_fade_with_step(speed_mode, channel, target_duty, scale, cycle_num);
  686. }
  687. static void _ledc_fade_start(ledc_mode_t speed_mode, ledc_channel_t channel, ledc_fade_mode_t fade_mode)
  688. {
  689. s_ledc_fade_rec[speed_mode][channel]->mode = fade_mode;
  690. // Clear interrupt status of channel
  691. #ifdef CONFIG_IDF_TARGET_ESP32
  692. int duty_resolution_ch0 = (speed_mode == LEDC_HIGH_SPEED_MODE) ? LEDC_DUTY_CHNG_END_HSCH0_INT_ENA_S : LEDC_DUTY_CHNG_END_LSCH0_INT_ENA_S;
  693. #elif defined CONFIG_IDF_TARGET_ESP32S2BETA
  694. int duty_resolution_ch0 = LEDC_DUTY_CHNG_END_LSCH0_INT_ENA_S;
  695. #endif
  696. LEDC.int_clr.val |= BIT(duty_resolution_ch0 + channel);
  697. // Enable interrupt for channel
  698. ledc_enable_intr_type(speed_mode, channel, LEDC_INTR_FADE_END);
  699. ledc_update_duty(speed_mode, channel);
  700. if (fade_mode == LEDC_FADE_WAIT_DONE) {
  701. xSemaphoreTake(s_ledc_fade_rec[speed_mode][channel]->ledc_fade_sem, portMAX_DELAY);
  702. }
  703. }
  704. esp_err_t ledc_set_fade_with_time(ledc_mode_t speed_mode, ledc_channel_t channel, uint32_t target_duty, int max_fade_time_ms)
  705. {
  706. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  707. LEDC_ARG_CHECK(channel < LEDC_CHANNEL_MAX, "channel");
  708. LEDC_ARG_CHECK(target_duty <= ledc_get_max_duty(speed_mode, channel), "target_duty");
  709. LEDC_CHECK(ledc_fade_channel_init_check(speed_mode, channel) == ESP_OK , LEDC_FADE_INIT_ERROR_STR, ESP_FAIL);
  710. _ledc_fade_hw_acquire(speed_mode, channel);
  711. _ledc_set_fade_with_time(speed_mode, channel, target_duty, max_fade_time_ms);
  712. _ledc_fade_hw_release(speed_mode, channel);
  713. return ESP_OK;
  714. }
  715. esp_err_t ledc_set_fade_with_step(ledc_mode_t speed_mode, ledc_channel_t channel, uint32_t target_duty, uint32_t scale, uint32_t cycle_num)
  716. {
  717. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  718. LEDC_ARG_CHECK(channel < LEDC_CHANNEL_MAX, "channel");
  719. LEDC_ARG_CHECK((scale > 0) && (scale <= LEDC_DUTY_SCALE_MAX), "fade scale");
  720. LEDC_ARG_CHECK((cycle_num > 0) && (cycle_num <= LEDC_DUTY_CYCLE_MAX), "cycle_num");
  721. LEDC_ARG_CHECK(target_duty <= ledc_get_max_duty(speed_mode, channel), "target_duty");
  722. LEDC_CHECK(ledc_fade_channel_init_check(speed_mode, channel) == ESP_OK , LEDC_FADE_INIT_ERROR_STR, ESP_FAIL);
  723. _ledc_fade_hw_acquire(speed_mode, channel);
  724. _ledc_set_fade_with_step(speed_mode, channel, target_duty, scale, cycle_num);
  725. _ledc_fade_hw_release(speed_mode, channel);
  726. return ESP_OK;
  727. }
  728. esp_err_t ledc_fade_start(ledc_mode_t speed_mode, ledc_channel_t channel, ledc_fade_mode_t fade_mode)
  729. {
  730. LEDC_CHECK(s_ledc_fade_rec != NULL, LEDC_FADE_SERVICE_ERR_STR, ESP_ERR_INVALID_STATE);
  731. LEDC_ARG_CHECK(fade_mode < LEDC_FADE_MAX, "fade_mode");
  732. _ledc_fade_hw_acquire(speed_mode, channel);
  733. _ledc_fade_start(speed_mode, channel, fade_mode);
  734. _ledc_fade_hw_release(speed_mode, channel);
  735. return ESP_OK;
  736. }
  737. esp_err_t ledc_fade_func_install(int intr_alloc_flags)
  738. {
  739. //OR intr_alloc_flags with ESP_INTR_FLAG_IRAM because the fade isr is in IRAM
  740. return ledc_isr_register(ledc_fade_isr, NULL, intr_alloc_flags | ESP_INTR_FLAG_IRAM, &s_ledc_fade_isr_handle);
  741. }
  742. void ledc_fade_func_uninstall(void)
  743. {
  744. if (s_ledc_fade_rec == NULL) {
  745. return;
  746. }
  747. if (s_ledc_fade_isr_handle) {
  748. esp_intr_free(s_ledc_fade_isr_handle);
  749. s_ledc_fade_isr_handle = NULL;
  750. }
  751. int channel, mode;
  752. for (mode = 0; mode < LEDC_SPEED_MODE_MAX; mode++) {
  753. for (channel = 0; channel < LEDC_CHANNEL_MAX; channel++) {
  754. ledc_fade_channel_deinit(mode, channel);
  755. }
  756. }
  757. return;
  758. }
  759. /*
  760. * The functions below are thread-safe version of APIs for duty and fade control.
  761. * These APIs can be called from different tasks.
  762. */
  763. esp_err_t ledc_set_duty_and_update(ledc_mode_t speed_mode, ledc_channel_t channel, uint32_t duty, uint32_t hpoint)
  764. {
  765. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  766. LEDC_ARG_CHECK(channel < LEDC_CHANNEL_MAX, "channel");
  767. LEDC_ARG_CHECK(duty <= ledc_get_max_duty(speed_mode, channel), "target_duty");
  768. LEDC_CHECK(ledc_fade_channel_init_check(speed_mode, channel) == ESP_OK , LEDC_FADE_INIT_ERROR_STR, ESP_FAIL);
  769. _ledc_op_lock_acquire(speed_mode, channel);
  770. _ledc_fade_hw_acquire(speed_mode, channel);
  771. _ledc_set_fade_with_step(speed_mode, channel, duty, 0, 1);
  772. _ledc_fade_start(speed_mode, channel, LEDC_FADE_WAIT_DONE);
  773. _ledc_fade_hw_release(speed_mode, channel);
  774. _ledc_op_lock_release(speed_mode, channel);
  775. return ESP_OK;
  776. }
  777. esp_err_t ledc_set_fade_time_and_start(ledc_mode_t speed_mode, ledc_channel_t channel, uint32_t target_duty, uint32_t max_fade_time_ms, ledc_fade_mode_t fade_mode)
  778. {
  779. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  780. LEDC_ARG_CHECK(channel < LEDC_CHANNEL_MAX, "channel");
  781. LEDC_ARG_CHECK(fade_mode < LEDC_FADE_MAX, "fade_mode");
  782. LEDC_CHECK(ledc_fade_channel_init_check(speed_mode, channel) == ESP_OK , LEDC_FADE_INIT_ERROR_STR, ESP_FAIL);
  783. LEDC_ARG_CHECK(target_duty <= ledc_get_max_duty(speed_mode, channel), "target_duty");
  784. _ledc_op_lock_acquire(speed_mode, channel);
  785. _ledc_fade_hw_acquire(speed_mode, channel);
  786. _ledc_set_fade_with_time(speed_mode, channel, target_duty, max_fade_time_ms);
  787. _ledc_fade_start(speed_mode, channel, fade_mode);
  788. if (fade_mode == LEDC_FADE_WAIT_DONE) {
  789. _ledc_fade_hw_release(speed_mode, channel);
  790. }
  791. _ledc_op_lock_release(speed_mode, channel);
  792. return ESP_OK;
  793. }
  794. esp_err_t ledc_set_fade_step_and_start(ledc_mode_t speed_mode, ledc_channel_t channel, uint32_t target_duty, uint32_t scale, uint32_t cycle_num, ledc_fade_mode_t fade_mode)
  795. {
  796. LEDC_ARG_CHECK(speed_mode < LEDC_SPEED_MODE_MAX, "speed_mode");
  797. LEDC_ARG_CHECK(channel < LEDC_CHANNEL_MAX, "channel");
  798. LEDC_ARG_CHECK(fade_mode < LEDC_FADE_MAX, "fade_mode");
  799. LEDC_CHECK(ledc_fade_channel_init_check(speed_mode, channel) == ESP_OK , LEDC_FADE_INIT_ERROR_STR, ESP_FAIL);
  800. LEDC_ARG_CHECK((scale > 0) && (scale <= LEDC_DUTY_SCALE_MAX), "fade scale");
  801. LEDC_ARG_CHECK((cycle_num > 0) && (cycle_num <= LEDC_DUTY_CYCLE_MAX), "cycle_num");
  802. LEDC_ARG_CHECK(target_duty <= ledc_get_max_duty(speed_mode, channel), "target_duty");
  803. _ledc_op_lock_acquire(speed_mode, channel);
  804. _ledc_fade_hw_acquire(speed_mode, channel);
  805. _ledc_set_fade_with_step(speed_mode, channel, target_duty, scale, cycle_num);
  806. _ledc_fade_start(speed_mode, channel, fade_mode);
  807. if (fade_mode == LEDC_FADE_WAIT_DONE) {
  808. _ledc_fade_hw_release(speed_mode, channel);
  809. }
  810. _ledc_op_lock_release(speed_mode, channel);
  811. return ESP_OK;
  812. }