Files
ESP-Scope/main/main.c
2026-04-04 17:58:29 +02:00

545 lines
18 KiB
C

#include <inttypes.h>
#include <stdbool.h>
#include <stdint.h>
#include <stdio.h>
#include <string.h>
#include "cJSON.h"
#include "driver/gpio.h"
#include "driver/ledc.h"
#include "esp_adc/adc_continuous.h"
#include "esp_event.h"
#include "esp_http_server.h"
#include "esp_log.h"
#include "esp_sleep.h"
#include "esp_system.h"
#include "esp_wifi.h"
#include "esp_timer.h"
#include "freertos/FreeRTOS.h"
#include "freertos/event_groups.h"
#include "freertos/task.h"
#include "wifi_manager.h"
#include "nvs_flash.h"
// Tag for logging
static const char* TAG = "ESP-SCOPE";
// Embedded index.html
extern const uint8_t index_html_start[] asm("_binary_index_html_start");
extern const uint8_t index_html_end[] asm("_binary_index_html_end");
extern const uint8_t index_js_start[] asm("_binary_index_js_start");
extern const uint8_t index_js_end[] asm("_binary_index_js_end");
// Forward declarations
static void start_webserver(void);
// ADC Configuration
#define ADC_UNIT ADC_UNIT_1
#define ADC_UNIT ADC_UNIT_1
#define ADC_CONV_MODE ADC_CONV_SINGLE_UNIT_1
#define ADC_ATTEN ADC_ATTEN_DB_11
#define ADC_BIT_WIDTH ADC_BITWIDTH_12
#define ADC_OUTPUT_TYPE ADC_DIGI_OUTPUT_FORMAT_TYPE2
#define ADC_GET_DATA(p_data) ((p_data)->type2.data)
/*
* Web Server Configuration
*/
static httpd_handle_t s_server = NULL;
static bool is_ap = false;
#define ADC_READ_LEN 4096
static adc_continuous_handle_t adc_handle = NULL;
// Single client support for simplicity, or use a list for multiple
static int s_ws_client_fd = -1;
// Global configuration state
static volatile bool s_reconfig_needed = false;
static uint32_t s_sample_rate = 20000;
static adc_atten_t s_atten = ADC_ATTEN_DB_12;
static adc_bitwidth_t s_bit_width = ADC_BIT_WIDTH;
static uint16_t s_test_hz = 100;
// Forward declarations
static void continuous_adc_init(adc_channel_t* channel, uint8_t channel_num,
adc_continuous_handle_t* out_handle);
static esp_err_t ws_handler(httpd_req_t* req);
// Helper to calculate optimal buffer size (approx 50ms latency, max 4096, aligned to 4)
static uint32_t get_optimal_buffer_size(uint32_t sample_rate) {
uint32_t bytes_per_sec = sample_rate * sizeof(adc_digi_output_data_t);
uint32_t target_size = bytes_per_sec / 50; // 20ms (50Hz)
// Clamp to min/max
if (target_size < 128) target_size = 128;
if (target_size > ADC_READ_LEN) target_size = ADC_READ_LEN;
// Align to 4 bytes
return (target_size + 3) & ~3;
}
/*
* Task to read from ADC Continuous driver
*/
static void adc_read_task(void* arg) {
esp_err_t ret;
uint32_t ret_num = 0;
uint8_t result[ADC_READ_LEN] = {0};
memset(result, 0xcc, ADC_READ_LEN);
// ADC Init (Moved from app_main)
// TODO: Make this configurable or find a good default pin.
// For ESP32C6 ADC1 Channel 0 is usually GPIO 0. Let's use Channel 0 for now.
adc_channel_t channel[1] = {ADC_CHANNEL_0};
continuous_adc_init(channel, sizeof(channel) / sizeof(adc_channel_t),
&adc_handle);
ESP_ERROR_CHECK(adc_continuous_start(adc_handle));
while (1) {
if (s_reconfig_needed) {
ESP_LOGI(TAG, "Reconfiguring ADC...");
if (adc_handle) {
ESP_LOGI(TAG, "Stopping ADC...");
ret = adc_continuous_stop(adc_handle);
if (ret != ESP_OK) {
ESP_LOGE(TAG, "adc_continuous_stop failed: %s", esp_err_to_name(ret));
}
ESP_LOGI(TAG, "Deinitializing ADC...");
ret = adc_continuous_deinit(adc_handle);
if (ret != ESP_OK) {
ESP_LOGE(TAG, "adc_continuous_deinit failed: %s",
esp_err_to_name(ret));
}
adc_handle = NULL;
}
// Small delay to ensure hardware state clears
vTaskDelay(pdMS_TO_TICKS(20));
// Update global defaults for next init
// Note: In a robust app, we should pass these to init function
// For now, we rely on the global s_sample_rate etc being read by init
adc_channel_t channel[1] = {ADC_CHANNEL_0};
continuous_adc_init(channel, 1, &adc_handle);
ESP_LOGI(TAG, "Starting ADC...");
ESP_ERROR_CHECK(adc_continuous_start(adc_handle));
ESP_LOGI(TAG, "ADC Reconfigured and Restarted");
s_reconfig_needed = false;
}
ret = adc_continuous_read(adc_handle, result, get_optimal_buffer_size(s_sample_rate), &ret_num, 0);
if (ret == ESP_OK) {
// ESP_LOGI(TAG, "ret is %x, ret_num is %"PRIu32" bytes", ret, ret_num);
// OPTIMIZED BATCH SENDING
// We have `ret_num` bytes of data in `result`.
// It contains `adc_digi_output_data_t` structs (4 bytes each).
// We want to extract just the data (12-16 bits) to save bandwidth?
// The original code was: `uint16_t val = (uint16_t)data;` and sent that.
// So we have 1/2 the size.
if (s_ws_client_fd != -1) {
// Allocate a small temp buffer on stack or static to avoid malloc in loop
// ret_num is up to ADC_READ_LEN (1024). 1024 / 4 = 256 samples.
// 256 * 2 bytes = 512 bytes output. Stack safe.
uint16_t out_buf[ADC_READ_LEN / sizeof(adc_digi_output_data_t)];
int out_idx = 0;
for (int i = 0; i < ret_num; i += sizeof(adc_digi_output_data_t)) {
adc_digi_output_data_t* p = (adc_digi_output_data_t*)&result[i];
uint32_t val = ADC_GET_DATA(p);
out_buf[out_idx++] = (uint16_t)val;
}
if (out_idx > 0) {
httpd_ws_frame_t ws_frame = {
.final = true,
.fragmented = false,
.type = HTTPD_WS_TYPE_BINARY,
.payload = (uint8_t*)out_buf,
.len = out_idx * sizeof(uint16_t)};
// Non-blocking send (best effort)
esp_err_t ret_ws = httpd_ws_send_frame_async(s_server, s_ws_client_fd, &ws_frame);
if (ret_ws != ESP_OK) {
ESP_LOGW(TAG, "dropped: %s", esp_err_to_name(ret_ws));
// Invalidate FD if it's no longer valid (client disconnected)
if (ret_ws == ESP_ERR_INVALID_ARG || ret_ws == ESP_FAIL) {
s_ws_client_fd = -1;
}
}
}
}
/**
* Yield check
*/
taskYIELD(); /* Explicit yield to let WiFi stack run if needed, though send_async should handle it */
} else if (ret == ESP_ERR_TIMEOUT) {
// We try to read `ADC_READ_LEN` until API returns timeout, which means
// there's no available data
vTaskDelay(pdMS_TO_TICKS(10));
}
}
}
static void continuous_adc_init(adc_channel_t* channel, uint8_t channel_num,
adc_continuous_handle_t* out_handle) {
uint32_t frame_size = get_optimal_buffer_size(s_sample_rate);
ESP_LOGI(TAG, "Dynamic Buffer Size: %lu bytes", frame_size);
adc_continuous_handle_cfg_t adc_config = {
.max_store_buf_size = 16384,
.conv_frame_size = frame_size,
};
ESP_ERROR_CHECK(adc_continuous_new_handle(&adc_config, out_handle));
// Update the global read length used by the task (hacky but simple for now)
// Ideally return it, but our init function signature is fixed.
// We can rely on get_optimal_buffer_size(s_sample_rate) being consistent.
adc_continuous_config_t dig_cfg = {
.sample_freq_hz = s_sample_rate,
.conv_mode = ADC_CONV_MODE,
.format = ADC_OUTPUT_TYPE,
};
adc_digi_pattern_config_t adc_pattern[SOC_ADC_PATT_LEN_MAX] = {0};
dig_cfg.pattern_num = channel_num;
for (int i = 0; i < channel_num; i++) {
adc_pattern[i].atten = s_atten;
adc_pattern[i].channel = channel[i] & 0x7;
adc_pattern[i].unit = ADC_UNIT;
adc_pattern[i].bit_width = s_bit_width;
ESP_LOGI(TAG, "adc_pattern[%d].atten is :%" PRIx8, i, adc_pattern[i].atten);
ESP_LOGI(TAG, "adc_pattern[%d].channel is :%" PRIx8, i,
adc_pattern[i].channel);
ESP_LOGI(TAG, "adc_pattern[%d].unit is :%" PRIx8, i, adc_pattern[i].unit);
}
dig_cfg.adc_pattern = adc_pattern;
ESP_ERROR_CHECK(adc_continuous_config(*out_handle, &dig_cfg));
}
#define TEST_SIGNAL_GPIO 4
static bool ledc_inited = false;
static void start_test_signal(uint32_t hz) {
if (ledc_inited) {
ESP_LOGI(TAG, "De-init test signal");
gpio_reset_pin(TEST_SIGNAL_GPIO);
// Stop the PWM signal on channel 0
ledc_stop(LEDC_LOW_SPEED_MODE, LEDC_CHANNEL_0, 0);
// Reset the timer configuration
ledc_timer_rst(LEDC_LOW_SPEED_MODE, LEDC_TIMER_0);
// (Optional) Uninstall fade functionality if used
ledc_fade_func_uninstall();
}
ESP_LOGI(TAG, "Starting test signal at %u Hz on GPIO %d", hz, TEST_SIGNAL_GPIO);
ledc_timer_config_t ledc_timer = {
.speed_mode = LEDC_LOW_SPEED_MODE,
.duty_resolution = LEDC_TIMER_14_BIT,
.timer_num = LEDC_TIMER_0,
.freq_hz = hz,
.clk_cfg = LEDC_AUTO_CLK};
ledc_channel_config_t ledc_channel = {
.gpio_num = TEST_SIGNAL_GPIO,
.speed_mode = LEDC_LOW_SPEED_MODE,
.channel = LEDC_CHANNEL_0,
.timer_sel = LEDC_TIMER_0,
.duty = 1 << (ledc_timer.duty_resolution - 1), // 512, // 50% duty cycle (1024 / 2 for 10-bit resolution)
.hpoint = 0};
// Initialize the PWM
ledc_timer_config(&ledc_timer);
ledc_channel_config(&ledc_channel);
// Start the PWM signal
ledc_set_duty(ledc_channel.speed_mode, ledc_channel.channel, ledc_channel.duty); // 50% duty cycle
ledc_update_duty(ledc_channel.speed_mode, ledc_channel.channel);
ledc_inited = true;
}
static void show_status_led() {
#ifdef CONFIG_BSP_CONFIG_GPIO
gpio_config_t rst_conf = {
.pin_bit_mask = (1ULL << CONFIG_BSP_CONFIG_GPIO),
.mode = GPIO_MODE_INPUT,
.pull_up_en = GPIO_PULLUP_ENABLE,
.pull_down_en = GPIO_PULLDOWN_DISABLE,
.intr_type = GPIO_INTR_DISABLE
};
gpio_config(&rst_conf);
#endif
int64_t reset_pressed_time = 0;
while (true) {
int64_t now = esp_timer_get_time() / 1000;
#ifdef CONFIG_LED_BUILTIN
if (is_ap) {
vTaskDelay(pdMS_TO_TICKS(500));
gpio_set_level(CONFIG_LED_BUILTIN, 1);
vTaskDelay(pdMS_TO_TICKS(500));
} else {
if (is_connected()) {
vTaskDelay(pdMS_TO_TICKS(100));
gpio_set_level(CONFIG_LED_BUILTIN, 1);
}
vTaskDelay(pdMS_TO_TICKS(s_ws_client_fd == -1 ? 900 : 200));
}
gpio_set_level(CONFIG_LED_BUILTIN, 0);
#else
vTaskDelay(pdMS_TO_TICKS(1000));
#endif
// Check Reset Pin
#ifdef CONFIG_BSP_CONFIG_GPIO
if (!is_ap && gpio_get_level(CONFIG_BSP_CONFIG_GPIO) == 0) {
if (now - reset_pressed_time > 1000) {
ESP_LOGW(TAG, "Reset to WiFi-AP mode triggered via GPIO %d", CONFIG_BSP_CONFIG_GPIO);
wifi_manager_erase_config();
esp_restart();
} else {
reset_pressed_time = now;
}
} else {
reset_pressed_time = 0;
}
#endif
}
}
void app_main(void) {
// Initialize NVS
esp_err_t ret = nvs_flash_init();
if (ret == ESP_ERR_NVS_NO_FREE_PAGES ||
ret == ESP_ERR_NVS_NEW_VERSION_FOUND) {
ESP_ERROR_CHECK(nvs_flash_erase());
ret = nvs_flash_init();
}
ESP_ERROR_CHECK(ret);
#ifdef CONFIG_LED_BUILTIN
gpio_config_t led_io_conf = {
.pin_bit_mask = (1ULL << CONFIG_LED_BUILTIN),
.mode = GPIO_MODE_OUTPUT,
.pull_up_en = GPIO_PULLUP_DISABLE,
.pull_down_en = GPIO_PULLDOWN_DISABLE,
.intr_type = GPIO_INTR_DISABLE};
gpio_config(&led_io_conf);
gpio_set_level(CONFIG_LED_BUILTIN, 0);
#endif
/* Board-specific initialisation hook. Defaults to boards/default.h (empty).
* To customise, create main/boards/<your_board>.h and set CONFIG_BOARD_SPECIFIC_INIT
* to "boards/<your_board>.h" via menuconfig or sdkconfig. */
#include CONFIG_BOARD_SPECIFIC_INIT
is_ap = wifi_manager_init_wifi();
// In STA mode, wait for an IP before touching hardware peripherals.
// ADC continuous mode on ESP32 conflicts with WiFi initialisation if started too early.
if (!is_ap) {
ESP_LOGI(TAG, "Waiting for WiFi connection...");
while (!is_connected()) {
vTaskDelay(pdMS_TO_TICKS(100));
}
}
start_webserver();
start_test_signal(s_test_hz);
xTaskCreate(adc_read_task, "adc_read_task", 8192 + ADC_READ_LEN, NULL, 5, NULL);
show_status_led();
}
/*
* WebSocket Handler
*/
static esp_err_t ws_handler(httpd_req_t* req) {
if (req->method == HTTP_GET) {
// Handshake
return ESP_OK;
}
httpd_ws_frame_t ws_pkt;
uint8_t* buf = NULL;
memset(&ws_pkt, 0, sizeof(httpd_ws_frame_t));
ws_pkt.type = HTTPD_WS_TYPE_TEXT;
// Get frame len
esp_err_t ret = httpd_ws_recv_frame(req, &ws_pkt, 0);
if (ret != ESP_OK)
return ret;
if (ws_pkt.len) {
buf = calloc(1, ws_pkt.len + 1);
if (buf == NULL)
return ESP_ERR_NO_MEM;
ws_pkt.payload = buf;
ret = httpd_ws_recv_frame(req, &ws_pkt, ws_pkt.len);
if (ret != ESP_OK) {
free(buf);
return ret;
}
// Check for "hello"
if (ws_pkt.type == HTTPD_WS_TYPE_TEXT &&
strcmp((char*)ws_pkt.payload, "hello") == 0) {
ESP_LOGI(TAG, "New WS client connected, fd=%d", httpd_req_to_sockfd(req));
s_ws_client_fd = httpd_req_to_sockfd(req);
}
free(buf);
}
return ESP_OK;
}
/*
* Control Params Handler (POST /params)
*/
static esp_err_t params_handler(httpd_req_t* req) {
char buf[256];
int ret, remaining = req->content_len;
if (remaining >= sizeof(buf)) {
httpd_resp_send_500(req);
return ESP_FAIL;
}
ret = httpd_req_recv(req, buf, remaining);
if (ret <= 0)
return ESP_FAIL;
buf[ret] = '\0';
cJSON* root = cJSON_Parse(buf);
if (root) {
cJSON* sample_rate = cJSON_GetObjectItem(root, "sample_rate");
if (sample_rate && s_sample_rate != sample_rate->valueint) {
s_reconfig_needed = true;
s_sample_rate = sample_rate->valueint;
}
cJSON* atten = cJSON_GetObjectItem(root, "atten");
if (atten && s_atten != (adc_atten_t)atten->valueint) {
s_reconfig_needed = true;
s_atten = (adc_atten_t)atten->valueint;
}
cJSON* bit_width = cJSON_GetObjectItem(root, "bit_width");
if (bit_width && s_bit_width != (adc_bitwidth_t)bit_width->valueint) {
s_reconfig_needed = true;
s_bit_width = (adc_bitwidth_t)bit_width->valueint;
}
cJSON* test_hz = cJSON_GetObjectItem(root, "test_hz");
if (test_hz) {
if (s_test_hz != (adc_bitwidth_t)test_hz->valueint) {
s_test_hz = (adc_bitwidth_t)test_hz->valueint;
start_test_signal(s_test_hz);
}
}
ESP_LOGI(TAG, "Config Request: Rate=%lu, Atten=%d, Width=%d, TestHz=%u, s_reconfig_needed=%d", s_sample_rate,
s_atten, s_bit_width, s_test_hz,
s_reconfig_needed);
cJSON_Delete(root);
}
httpd_resp_send(req, "OK", 2);
return ESP_OK;
}
static const httpd_uri_t uri_ws = {.uri = "/signal",
.method = HTTP_GET,
.handler = ws_handler,
.user_ctx = NULL,
.is_websocket = true};
static const httpd_uri_t uri_params = {.uri = "/params",
.method = HTTP_POST,
.handler = params_handler,
.user_ctx = NULL};
/* Handler for serving index.html */
static esp_err_t index_handler(httpd_req_t* req) {
httpd_resp_set_type(req, "text/html");
httpd_resp_set_hdr(req, "Content-Type", "text/html; charset=utf-8");
uint32_t len = index_html_end - index_html_start;
// Workaround for some build systems adding null byte
while (len && index_js_start[len - 1] == 0) len--;
httpd_resp_send(req, (const char*)index_html_start, len);
return ESP_OK;
}
static const httpd_uri_t uri_index = {
.uri = "/", .method = HTTP_GET, .handler = index_handler, .user_ctx = NULL};
/* Handler for serving index.js */
static esp_err_t index_js_handler(httpd_req_t* req) {
httpd_resp_set_type(req, "text/javascript");
httpd_resp_set_hdr(req, "Content-Type", "text/javascript; charset=utf-8");
uint32_t len = index_js_end - index_js_start;
// Workaround for some build systems adding null byte
while (len && index_js_start[len - 1] == 0) len--;
httpd_resp_send(req, (const char*)index_js_start, len);
return ESP_OK;
}
static const httpd_uri_t uri_index_js = {
.uri = "/index.js", .method = HTTP_GET, .handler = index_js_handler, .user_ctx = NULL};
static const char *bye = "<head></head><body style='font-family: -apple-system, BlinkMacSystemFont, &quot;Segoe UI&quot;, Roboto, Helvetica, Arial, sans-serif;\n background: #1a1a1a;\n color: #e0e0e0;'><h1>Bye!</h1>Press \"reset\" on your esp-scope to start it up again</body>";
static esp_err_t power_handler(httpd_req_t* req) {
httpd_resp_set_type(req, "text/html");
httpd_resp_set_hdr(req, "Content-Type", "text/html; charset=utf-8");
httpd_resp_send(req, bye, HTTPD_RESP_USE_STRLEN);
// delay to ensure network is flushed
vTaskDelay(pdMS_TO_TICKS(200));
esp_deep_sleep_start();
return ESP_OK;
}
static const httpd_uri_t uri_power = {
.uri = "/poweroff", .method = HTTP_GET, .handler = power_handler, .user_ctx = NULL};
/* Error handler for 404 - Redirects to captive portal */
static esp_err_t http_404_error_handler(httpd_req_t *req, httpd_err_code_t err)
{
/* Set status 302 Redirect */
httpd_resp_set_status(req, "302 Found");
httpd_resp_set_hdr(req, "Location", "/");
httpd_resp_send(req, NULL, 0); // No body needed
return ESP_OK;
}
static void start_webserver(void) {
httpd_config_t config = HTTPD_DEFAULT_CONFIG();
config.lru_purge_enable = true;
ESP_LOGI(TAG, "Starting webserver on port: '%d'", config.server_port);
if (httpd_start(&s_server, &config) == ESP_OK) {
ESP_LOGI(TAG, "Registering URI handlers");
httpd_register_uri_handler(s_server, &uri_index);
httpd_register_uri_handler(s_server, &uri_index_js);
httpd_register_uri_handler(s_server, &uri_ws);
httpd_register_uri_handler(s_server, &uri_params);
// Register WiFi Manager endpoints
wifi_manager_register_uri(s_server);
httpd_register_uri_handler(s_server, &uri_power);
// Register 404 handler for Captive Portal redirection
httpd_register_err_handler(s_server, HTTPD_404_NOT_FOUND, http_404_error_handler);
} else {
ESP_LOGI(TAG, "Error starting server!");
}
}