feat: Adiciona suporte para controle de LED RGB e animações de estado

This commit is contained in:
2026-01-15 22:55:23 +00:00
parent a05ac96d97
commit 2b9642ebd2
9 changed files with 354 additions and 11 deletions
+1 -1
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@@ -1,5 +1,5 @@
idf_component_register( idf_component_register(
SRC_DIRS "." SRC_DIRS "."
INCLUDE_DIRS "." INCLUDE_DIRS "."
PRIV_REQUIRES nvs_flash esp_driver_gpio esp_driver_uart ieee802154 PRIV_REQUIRES nvs_flash esp_driver_gpio esp_driver_uart ieee802154 heap esp_driver_rmt
) )
+9 -1
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@@ -22,6 +22,7 @@
#include "ha/esp_zigbee_ha_standard.h" #include "ha/esp_zigbee_ha_standard.h"
#include "zcl_utility.h" #include "zcl_utility.h"
#include "esp_zb_switch.h" #include "esp_zb_switch.h"
#include "led_indicator.h"
typedef struct light_bulb_device_params_s { typedef struct light_bulb_device_params_s {
esp_zb_ieee_addr_t ieee_addr; esp_zb_ieee_addr_t ieee_addr;
@@ -58,6 +59,9 @@ static void zb_buttons_handler(switch_func_pair_t *button_func_pair)
static esp_err_t deferred_driver_init(void) static esp_err_t deferred_driver_init(void)
{ {
/* Inicializa o LED RGB */
led_indicator_init(GPIO_LED_RGB);
/* Inicializa o relay */ /* Inicializa o relay */
relay_driver_init(); relay_driver_init();
@@ -161,9 +165,11 @@ void esp_zb_app_signal_handler(esp_zb_app_signal_t *signal_struct)
if (esp_zb_bdb_is_factory_new()) { if (esp_zb_bdb_is_factory_new()) {
ESP_LOGI(TAG, "Start network steering (joining network)"); ESP_LOGI(TAG, "Start network steering (joining network)");
ESP_LOGI(TAG, "Scanning for available Zigbee networks on all channels..."); ESP_LOGI(TAG, "Scanning for available Zigbee networks on all channels...");
led_indicator_set_state(LED_PAIRING); /* LED azul piscando */
esp_zb_bdb_start_top_level_commissioning(ESP_ZB_BDB_MODE_NETWORK_STEERING); esp_zb_bdb_start_top_level_commissioning(ESP_ZB_BDB_MODE_NETWORK_STEERING);
} else { } else {
ESP_LOGI(TAG, "Device rebooted, rejoining network"); ESP_LOGI(TAG, "Device rebooted, rejoining network");
led_indicator_set_state(LED_PAIRING); /* LED azul piscando */
esp_zb_bdb_start_top_level_commissioning(ESP_ZB_BDB_MODE_NETWORK_STEERING); esp_zb_bdb_start_top_level_commissioning(ESP_ZB_BDB_MODE_NETWORK_STEERING);
} }
} else { } else {
@@ -193,6 +199,7 @@ void esp_zb_app_signal_handler(esp_zb_app_signal_t *signal_struct)
ESP_LOGI(TAG, " IEEE Address: %02x:%02x:%02x:%02x:%02x:%02x:%02x:%02x", ESP_LOGI(TAG, " IEEE Address: %02x:%02x:%02x:%02x:%02x:%02x:%02x:%02x",
ieee_addr[7], ieee_addr[6], ieee_addr[5], ieee_addr[4], ieee_addr[7], ieee_addr[6], ieee_addr[5], ieee_addr[4],
ieee_addr[3], ieee_addr[2], ieee_addr[1], ieee_addr[0]); ieee_addr[3], ieee_addr[2], ieee_addr[1], ieee_addr[0]);
led_indicator_set_state(LED_CONNECTED); /* LED verde fixo */
} else { } else {
ESP_LOGW(TAG, "Network steering failed (status: %s)", esp_err_to_name(err_status)); ESP_LOGW(TAG, "Network steering failed (status: %s)", esp_err_to_name(err_status));
ESP_LOGI(TAG, "No networks found or unable to join. Retrying in 5 seconds..."); ESP_LOGI(TAG, "No networks found or unable to join. Retrying in 5 seconds...");
@@ -200,6 +207,7 @@ void esp_zb_app_signal_handler(esp_zb_app_signal_t *signal_struct)
ESP_LOGI(TAG, " 1. Powered on and working"); ESP_LOGI(TAG, " 1. Powered on and working");
ESP_LOGI(TAG, " 2. In 'permit join' mode (network open)"); ESP_LOGI(TAG, " 2. In 'permit join' mode (network open)");
ESP_LOGI(TAG, " 3. Within range (< 10 meters recommended)"); ESP_LOGI(TAG, " 3. Within range (< 10 meters recommended)");
led_indicator_set_state(LED_DISCONNECTED); /* LED vermelho piscando */
esp_zb_scheduler_alarm((esp_zb_callback_t)bdb_start_top_level_commissioning_cb, ESP_ZB_BDB_MODE_NETWORK_STEERING, 5000); esp_zb_scheduler_alarm((esp_zb_callback_t)bdb_start_top_level_commissioning_cb, ESP_ZB_BDB_MODE_NETWORK_STEERING, 5000);
} }
break; break;
@@ -266,7 +274,7 @@ static void esp_zb_task(void *pvParameters)
esp_zb_core_action_handler_register(zb_action_handler); esp_zb_core_action_handler_register(zb_action_handler);
ESP_LOGI(TAG, "Setting channel mask: 0x%08lx (channel 20)", (unsigned long)ESP_ZB_PRIMARY_CHANNEL_MASK); ESP_LOGI(TAG, "Setting channel mask: 0x%08lx (all channels)", (unsigned long)ESP_ZB_PRIMARY_CHANNEL_MASK);
esp_zb_set_primary_network_channel_set(ESP_ZB_PRIMARY_CHANNEL_MASK); esp_zb_set_primary_network_channel_set(ESP_ZB_PRIMARY_CHANNEL_MASK);
ESP_ERROR_CHECK(esp_zb_start(false)); ESP_ERROR_CHECK(esp_zb_start(false));
esp_zb_stack_main_loop(); esp_zb_stack_main_loop();
+1 -1
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@@ -18,7 +18,7 @@
#define MAX_CHILDREN 10 /* the max amount of connected devices */ #define MAX_CHILDREN 10 /* the max amount of connected devices */
#define INSTALLCODE_POLICY_ENABLE false /* enable the install code policy for security */ #define INSTALLCODE_POLICY_ENABLE false /* enable the install code policy for security */
#define HA_ONOFF_SWITCH_ENDPOINT 1 /* esp light switch device endpoint */ #define HA_ONOFF_SWITCH_ENDPOINT 1 /* esp light switch device endpoint */
#define ESP_ZB_PRIMARY_CHANNEL_MASK (1l << 20) /* Zigbee primary channel mask - Channel 20 for ZHA */ #define ESP_ZB_PRIMARY_CHANNEL_MASK ESP_ZB_TRANSCEIVER_ALL_CHANNELS_MASK /* Zigbee primary channel mask use all channels */
/* Basic manufacturer information */ /* Basic manufacturer information */
#define ESP_MANUFACTURER_NAME "\x09""ESPRESSIF" /* Customized manufacturer name */ #define ESP_MANUFACTURER_NAME "\x09""ESPRESSIF" /* Customized manufacturer name */
+149
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@@ -0,0 +1,149 @@
#include "led_indicator.h"
#include "led_strip_encoder.h"
#include "freertos/FreeRTOS.h"
#include "freertos/task.h"
#include "driver/rmt_tx.h"
#include "esp_log.h"
#include <math.h>
static const char *TAG = "LED_INDICATOR";
#define LED_STRIP_RMT_RES_HZ (10 * 1000 * 1000) // 10MHz resolution
static rmt_channel_handle_t led_channel = NULL;
static rmt_encoder_handle_t led_encoder = NULL;
static TaskHandle_t led_task_handle = NULL;
static led_state_t current_led_state = LED_OFF;
static gpio_num_t led_gpio = GPIO_NUM_NC;
typedef struct {
uint8_t green;
uint8_t red;
uint8_t blue;
} grb_t;
static void led_write(grb_t color) {
uint8_t led_data[3];
led_data[0] = color.green;
led_data[1] = color.red;
led_data[2] = color.blue;
rmt_transmit_config_t tx_config = {
.loop_count = 0,
};
ESP_ERROR_CHECK(rmt_enable(led_channel));
ESP_ERROR_CHECK(rmt_transmit(led_channel, led_encoder, led_data, sizeof(led_data), &tx_config));
ESP_ERROR_CHECK(rmt_tx_wait_all_done(led_channel, portMAX_DELAY));
ESP_ERROR_CHECK(rmt_disable(led_channel));
}
static void led_indicator_task(void *arg) {
grb_t color;
uint32_t tick = 0;
while (1) {
switch (current_led_state) {
case LED_OFF:
color = (grb_t){0, 0, 0};
led_write(color);
vTaskDelay(pdMS_TO_TICKS(1000));
break;
case LED_PAIRING:
// Azul piscando
color = (tick % 2 == 0) ? (grb_t){0, 0, 50} : (grb_t){0, 0, 0};
led_write(color);
vTaskDelay(pdMS_TO_TICKS(500));
tick++;
break;
case LED_CONNECTED:
// Verde fixo
color = (grb_t){30, 0, 0};
led_write(color);
vTaskDelay(pdMS_TO_TICKS(1000));
break;
case LED_DISCONNECTED:
// Vermelho piscando
color = (tick % 2 == 0) ? (grb_t){0, 50, 0} : (grb_t){0, 0, 0};
led_write(color);
vTaskDelay(pdMS_TO_TICKS(300));
tick++;
break;
case LED_RELAY_ON:
// Verde brilhante
color = (grb_t){60, 0, 0};
led_write(color);
vTaskDelay(pdMS_TO_TICKS(100));
break;
case LED_RELAY_OFF:
// Verde escuro
color = (grb_t){10, 0, 0};
led_write(color);
vTaskDelay(pdMS_TO_TICKS(100));
break;
case LED_FACTORY_RESET:
// Arco-íris rotativo
{
float hue = (tick % 360) * 3.14159f / 180.0f;
color = (grb_t){
(uint8_t)(30 * (1 + sinf(hue))),
(uint8_t)(30 * (1 + sinf(hue + 2.0943f))),
(uint8_t)(30 * (1 + sinf(hue + 4.1888f)))
};
led_write(color);
vTaskDelay(pdMS_TO_TICKS(20));
tick++;
}
break;
}
}
}
esp_err_t led_indicator_init(gpio_num_t gpio_num) {
esp_err_t ret;
led_gpio = gpio_num;
ESP_LOGI(TAG, "Inicializando LED RGB no GPIO %d", gpio_num);
// Configurar canal RMT TX
rmt_tx_channel_config_t tx_chan_config = {
.clk_src = RMT_CLK_SRC_DEFAULT,
.gpio_num = gpio_num,
.mem_block_symbols = 64,
.resolution_hz = LED_STRIP_RMT_RES_HZ,
.trans_queue_depth = 4,
};
ret = rmt_new_tx_channel(&tx_chan_config, &led_channel);
if (ret != ESP_OK) {
ESP_LOGE(TAG, "Falha ao criar canal RMT TX: %s", esp_err_to_name(ret));
return ret;
}
// Criar encoder customizado para LED strip
led_strip_encoder_config_t encoder_config = {
.resolution = LED_STRIP_RMT_RES_HZ,
};
ret = rmt_new_led_strip_encoder(&encoder_config, &led_encoder);
if (ret != ESP_OK) {
ESP_LOGE(TAG, "Falha ao criar encoder LED: %s", esp_err_to_name(ret));
return ret;
}
// Criar task para controlar LED
xTaskCreate(led_indicator_task, "led_indicator", 2048, NULL, 5, &led_task_handle);
ESP_LOGI(TAG, "LED RGB inicializado com sucesso");
return ESP_OK;
}
void led_indicator_set_state(led_state_t state) {
current_led_state = state;
}
+20
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@@ -0,0 +1,20 @@
#ifndef LED_INDICATOR_H
#define LED_INDICATOR_H
#include "driver/gpio.h"
#include "esp_err.h"
typedef enum {
LED_OFF,
LED_PAIRING,
LED_CONNECTED,
LED_DISCONNECTED,
LED_RELAY_ON,
LED_RELAY_OFF,
LED_FACTORY_RESET
} led_state_t;
esp_err_t led_indicator_init(gpio_num_t gpio_num);
void led_indicator_set_state(led_state_t state);
#endif // LED_INDICATOR_H
+126
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@@ -0,0 +1,126 @@
/*
* SPDX-FileCopyrightText: 2021-2024 Espressif Systems (Shanghai) CO LTD
*
* SPDX-License-Identifier: Apache-2.0
*/
#include "esp_check.h"
#include "led_strip_encoder.h"
static const char *TAG = "led_encoder";
typedef struct {
rmt_encoder_t base;
rmt_encoder_t *bytes_encoder;
rmt_encoder_t *copy_encoder;
int state;
rmt_symbol_word_t reset_code;
} rmt_led_strip_encoder_t;
static size_t rmt_encode_led_strip(rmt_encoder_t *encoder, rmt_channel_handle_t channel, const void *primary_data, size_t data_size, rmt_encode_state_t *ret_state)
{
rmt_led_strip_encoder_t *led_encoder = __containerof(encoder, rmt_led_strip_encoder_t, base);
rmt_encoder_handle_t bytes_encoder = led_encoder->bytes_encoder;
rmt_encoder_handle_t copy_encoder = led_encoder->copy_encoder;
rmt_encode_state_t session_state = RMT_ENCODING_RESET;
rmt_encode_state_t state = RMT_ENCODING_RESET;
size_t encoded_symbols = 0;
switch (led_encoder->state) {
case 0: // send RGB data
encoded_symbols += bytes_encoder->encode(bytes_encoder, channel, primary_data, data_size, &session_state);
if (session_state & RMT_ENCODING_COMPLETE) {
led_encoder->state = 1; // switch to next state when current encoding session finished
}
if (session_state & RMT_ENCODING_MEM_FULL) {
state |= RMT_ENCODING_MEM_FULL;
goto out; // yield if there's no free space for encoding artifacts
}
// fall-through
case 1: // send reset code
encoded_symbols += copy_encoder->encode(copy_encoder, channel, &led_encoder->reset_code,
sizeof(led_encoder->reset_code), &session_state);
if (session_state & RMT_ENCODING_COMPLETE) {
led_encoder->state = RMT_ENCODING_RESET; // back to the initial encoding session
state |= RMT_ENCODING_COMPLETE;
}
if (session_state & RMT_ENCODING_MEM_FULL) {
state |= RMT_ENCODING_MEM_FULL;
goto out; // yield if there's no free space for encoding artifacts
}
}
out:
*ret_state = state;
return encoded_symbols;
}
static esp_err_t rmt_del_led_strip_encoder(rmt_encoder_t *encoder)
{
rmt_led_strip_encoder_t *led_encoder = __containerof(encoder, rmt_led_strip_encoder_t, base);
rmt_del_encoder(led_encoder->bytes_encoder);
rmt_del_encoder(led_encoder->copy_encoder);
free(led_encoder);
return ESP_OK;
}
static esp_err_t rmt_led_strip_encoder_reset(rmt_encoder_t *encoder)
{
rmt_led_strip_encoder_t *led_encoder = __containerof(encoder, rmt_led_strip_encoder_t, base);
rmt_encoder_reset(led_encoder->bytes_encoder);
rmt_encoder_reset(led_encoder->copy_encoder);
led_encoder->state = RMT_ENCODING_RESET;
return ESP_OK;
}
esp_err_t rmt_new_led_strip_encoder(const led_strip_encoder_config_t *config, rmt_encoder_handle_t *ret_encoder)
{
esp_err_t ret = ESP_OK;
rmt_led_strip_encoder_t *led_encoder = NULL;
ESP_GOTO_ON_FALSE(config && ret_encoder, ESP_ERR_INVALID_ARG, err, TAG, "invalid argument");
led_encoder = calloc(1, sizeof(rmt_led_strip_encoder_t));
ESP_GOTO_ON_FALSE(led_encoder, ESP_ERR_NO_MEM, err, TAG, "no mem for led strip encoder");
led_encoder->base.encode = rmt_encode_led_strip;
led_encoder->base.del = rmt_del_led_strip_encoder;
led_encoder->base.reset = rmt_led_strip_encoder_reset;
// WS2812 timing: 0: 0.4us/0.85us, 1: 0.8us/0.45us
rmt_bytes_encoder_config_t bytes_encoder_config = {
.bit0 = {
.level0 = 1,
.duration0 = 0.3 * config->resolution / 1000000, // T0H=0.3us
.level1 = 0,
.duration1 = 0.9 * config->resolution / 1000000, // T0L=0.9us
},
.bit1 = {
.level0 = 1,
.duration0 = 0.9 * config->resolution / 1000000, // T1H=0.9us
.level1 = 0,
.duration1 = 0.3 * config->resolution / 1000000, // T1L=0.3us
},
.flags.msb_first = 1 // WS2812 transfer bit order: G7...G0R7...R0B7...B0
};
ESP_GOTO_ON_ERROR(rmt_new_bytes_encoder(&bytes_encoder_config, &led_encoder->bytes_encoder), err, TAG, "create bytes encoder failed");
rmt_copy_encoder_config_t copy_encoder_config = {};
ESP_GOTO_ON_ERROR(rmt_new_copy_encoder(&copy_encoder_config, &led_encoder->copy_encoder), err, TAG, "create copy encoder failed");
uint32_t reset_ticks = config->resolution / 1000000 * 50 / 2; // reset code duration defaults to 50us
led_encoder->reset_code = (rmt_symbol_word_t) {
.level0 = 0,
.duration0 = reset_ticks,
.level1 = 0,
.duration1 = reset_ticks,
};
*ret_encoder = &led_encoder->base;
return ESP_OK;
err:
if (led_encoder) {
if (led_encoder->bytes_encoder) {
rmt_del_encoder(led_encoder->bytes_encoder);
}
if (led_encoder->copy_encoder) {
rmt_del_encoder(led_encoder->copy_encoder);
}
free(led_encoder);
}
return ret;
}
+36
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@@ -0,0 +1,36 @@
/*
* SPDX-FileCopyrightText: 2021-2024 Espressif Systems (Shanghai) CO LTD
*
* SPDX-License-Identifier: Apache-2.0
*/
#pragma once
#include <stdint.h>
#include "driver/rmt_encoder.h"
#ifdef __cplusplus
extern "C" {
#endif
/**
* @brief Type of led strip encoder configuration
*/
typedef struct {
uint32_t resolution; /*!< Encoder resolution, in Hz */
} led_strip_encoder_config_t;
/**
* @brief Create RMT encoder for encoding LED strip pixels into RMT symbols
*
* @param[in] config Encoder configuration
* @param[out] ret_encoder Returned encoder handle
* @return
* - ESP_ERR_INVALID_ARG for any invalid arguments
* - ESP_ERR_NO_MEM out of memory when creating led strip encoder
* - ESP_OK if creating encoder successfully
*/
esp_err_t rmt_new_led_strip_encoder(const led_strip_encoder_config_t *config, rmt_encoder_handle_t *ret_encoder);
#ifdef __cplusplus
}
#endif
+8 -7
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@@ -41,6 +41,7 @@
#include "freertos/queue.h" #include "freertos/queue.h"
#include "esp_zigbee_core.h" #include "esp_zigbee_core.h"
#include "switch_driver.h" #include "switch_driver.h"
#include "led_indicator.h"
/* Estado atual do relay */ /* Estado atual do relay */
static bool relay_state = false; static bool relay_state = false;
@@ -123,13 +124,9 @@ static void switch_driver_button_detected(void *arg)
if ((current_time - press_start_time) >= LONG_PRESS_DURATION_MS) { if ((current_time - press_start_time) >= LONG_PRESS_DURATION_MS) {
ESP_LOGI(TAG, "Botão pressionado por 5 segundos - Iniciando factory reset..."); ESP_LOGI(TAG, "Botão pressionado por 5 segundos - Iniciando factory reset...");
ESP_LOGI(TAG, "Dispositivo entrará em modo de pareamento após reiniciar"); ESP_LOGI(TAG, "Dispositivo entrará em modo de pareamento após reiniciar");
/* Piscar relay para feedback visual */ /* Animação arco-íris no LED para feedback visual */
for (int i = 0; i < 5; i++) { led_indicator_set_state(LED_FACTORY_RESET);
relay_set_state(true); vTaskDelay(pdMS_TO_TICKS(2000)); /* 2 segundos de animação */
vTaskDelay(pdMS_TO_TICKS(100));
relay_set_state(false);
vTaskDelay(pdMS_TO_TICKS(100));
}
/* Factory reset - limpa NVS e reinicia */ /* Factory reset - limpa NVS e reinicia */
esp_zb_factory_reset(); esp_zb_factory_reset();
switch_state = SWITCH_IDLE; switch_state = SWITCH_IDLE;
@@ -229,6 +226,10 @@ void relay_set_state(bool state)
{ {
relay_state = state; relay_state = state;
gpio_set_level(GPIO_OUTPUT_RELAY, state ? 1 : 0); gpio_set_level(GPIO_OUTPUT_RELAY, state ? 1 : 0);
/* Atualiza LED para refletir estado do relay */
led_indicator_set_state(state ? LED_RELAY_ON : LED_RELAY_OFF);
ESP_LOGI(TAG, "Relay %s", state ? "LIGADO" : "DESLIGADO"); ESP_LOGI(TAG, "Relay %s", state ? "LIGADO" : "DESLIGADO");
} }
+4 -1
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@@ -46,7 +46,10 @@ extern "C" {
#define GPIO_INPUT_IO_TOGGLE_SWITCH GPIO_NUM_9 #define GPIO_INPUT_IO_TOGGLE_SWITCH GPIO_NUM_9
/* GPIO para controlar o relay */ /* GPIO para controlar o relay */
#define GPIO_OUTPUT_RELAY GPIO_NUM_8 #define GPIO_OUTPUT_RELAY GPIO_NUM_4
/* GPIO para o LED RGB (WS2812) */
#define GPIO_LED_RGB GPIO_NUM_8
/* config button level depends on the pull up/down setting /* config button level depends on the pull up/down setting
push button level is on level = 1 when pull-down enable push button level is on level = 1 when pull-down enable