Initial commit - ESP32 MAVLink WiFi relay
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6
.gitignore
vendored
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6
.gitignore
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.pio
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.vscode/.browse.c_cpp.db*
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.vscode/c_cpp_properties.json
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.vscode/launch.json
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.vscode/ipch
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include/credentials.h
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10
.vscode/extensions.json
vendored
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10
.vscode/extensions.json
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{
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// See http://go.microsoft.com/fwlink/?LinkId=827846
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// for the documentation about the extensions.json format
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"recommendations": [
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"platformio.platformio-ide"
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],
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"unwantedRecommendations": [
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"ms-vscode.cpptools-extension-pack"
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]
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}
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37
include/README
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include/README
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This directory is intended for project header files.
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A header file is a file containing C declarations and macro definitions
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to be shared between several project source files. You request the use of a
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header file in your project source file (C, C++, etc) located in `src` folder
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by including it, with the C preprocessing directive `#include'.
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```src/main.c
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#include "header.h"
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int main (void)
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{
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...
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}
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```
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Including a header file produces the same results as copying the header file
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into each source file that needs it. Such copying would be time-consuming
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and error-prone. With a header file, the related declarations appear
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in only one place. If they need to be changed, they can be changed in one
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place, and programs that include the header file will automatically use the
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new version when next recompiled. The header file eliminates the labor of
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finding and changing all the copies as well as the risk that a failure to
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find one copy will result in inconsistencies within a program.
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In C, the convention is to give header files names that end with `.h'.
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Read more about using header files in official GCC documentation:
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* Include Syntax
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* Include Operation
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* Once-Only Headers
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* Computed Includes
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https://gcc.gnu.org/onlinedocs/cpp/Header-Files.html
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46
lib/README
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lib/README
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This directory is intended for project specific (private) libraries.
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PlatformIO will compile them to static libraries and link into the executable file.
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The source code of each library should be placed in a separate directory
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("lib/your_library_name/[Code]").
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For example, see the structure of the following example libraries `Foo` and `Bar`:
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|--lib
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| |
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| |--Bar
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| | |--docs
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| | |--examples
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| | |--src
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| | |- Bar.c
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| | |- Bar.h
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| | |- library.json (optional. for custom build options, etc) https://docs.platformio.org/page/librarymanager/config.html
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| |
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| |--Foo
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| | |- Foo.c
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| | |- Foo.h
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| |
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| |- README --> THIS FILE
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|
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|- platformio.ini
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|--src
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|- main.c
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Example contents of `src/main.c` using Foo and Bar:
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```
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#include <Foo.h>
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#include <Bar.h>
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int main (void)
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{
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...
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}
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```
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The PlatformIO Library Dependency Finder will find automatically dependent
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libraries by scanning project source files.
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More information about PlatformIO Library Dependency Finder
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- https://docs.platformio.org/page/librarymanager/ldf.html
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16
platformio.ini
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platformio.ini
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; PlatformIO Project Configuration File
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;
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; Build options: build flags, source filter
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; Upload options: custom upload port, speed and extra flags
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; Library options: dependencies, extra library storages
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; Advanced options: extra scripting
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;
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; Please visit documentation for the other options and examples
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; https://docs.platformio.org/page/projectconf.html
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[env:esp32dev]
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platform = espressif32
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board = esp32dev
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framework = arduino
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monitor_speed = 115200
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lib_deps = okalachev/MAVLink@^2.0.29
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130
src/main.cpp
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src/main.cpp
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#include <Arduino.h>
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#include <WiFi.h>
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#include <WiFiUDP.h>
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#include "credentials.h"
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// ── Ports ───────────────────────────────────────────────
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const uint16_t JETSON_PORT_MAVSDK = 14551;
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const uint16_t JETSON_PORT_PYMAV = 14552;
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const uint16_t LOCAL_PORT = 14550;
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// ── UART vers Pi Zero ───────────────────────────────────
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#define UART_BAUD 57600
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#define UART_RX_PIN 16
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#define UART_TX_PIN 17
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// ── LED status ──────────────────────────────────────────
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#define LED_PIN 2
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#define LED_WIFI_OK 500 // clignote lentement = WiFi OK
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#define LED_WIFI_WAIT 100 // clignote vite = attente WiFi
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// ── Variables globales ──────────────────────────────────
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WiFiUDP udp;
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HardwareSerial MavSerial(2);
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bool wifiConnected = false;
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unsigned long lastBlink = 0;
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bool ledState = false;
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int blinkInterval = LED_WIFI_WAIT;
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unsigned long lastHeartbeat = 0;
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// ── Blink non bloquant ──────────────────────────────────
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void updateLED() {
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if (millis() - lastBlink > blinkInterval) {
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ledState = !ledState;
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digitalWrite(LED_PIN, ledState);
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lastBlink = millis();
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}
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}
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void setup() {
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Serial.begin(115200);
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pinMode(LED_PIN, OUTPUT);
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Serial.println("\n=== WireClaw ESP32 ===");
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// UART2 vers Pi Zero / Matek H743
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MavSerial.begin(UART_BAUD, SERIAL_8N1, UART_RX_PIN, UART_TX_PIN);
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Serial.printf("UART2 init: %d baud (RX=%d TX=%d)\n", UART_BAUD, UART_RX_PIN, UART_TX_PIN);
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// WiFi
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Serial.printf("Connexion WiFi: %s\n", WIFI_SSID);
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WiFi.begin(WIFI_SSID, WIFI_PASSWORD);
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int attempts = 0;
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while (WiFi.status() != WL_CONNECTED && attempts < 20) {
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updateLED();
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delay(500);
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Serial.print(".");
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attempts++;
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}
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if (WiFi.status() == WL_CONNECTED) {
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WiFi.setSleep(false);
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wifiConnected = true;
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blinkInterval = LED_WIFI_OK;
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Serial.println("\nWiFi connecte !");
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Serial.print("IP ESP32: ");
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Serial.println(WiFi.localIP());
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Serial.printf("Jetson IP: %s\n", JETSON_IP);
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udp.begin(LOCAL_PORT);
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// Test immédiat au démarrage
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delay(1000);
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Serial.printf("Test envoi vers %s:14551\n", JETSON_IP);
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const char* testMsg = "ESP32-boot-test";
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int result = udp.beginPacket(JETSON_IP, JETSON_PORT_MAVSDK);
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Serial.printf("beginPacket result: %d\n", result);
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udp.write((const uint8_t*)testMsg, strlen(testMsg));
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int sent = udp.endPacket();
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Serial.printf("endPacket result: %d\n", sent);
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Serial.printf("UDP ecoute sur port %d\n", LOCAL_PORT);
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} else {
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Serial.println("\nEchec WiFi — verifier credentials.h");
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}
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}
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void loop() {
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updateLED();
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// ── Heartbeat test → Jetson toutes les 5s ──
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if (millis() - lastHeartbeat > 5000) {
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lastHeartbeat = millis();
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const char* msg = "WireClaw-ESP32-heartbeat";
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udp.beginPacket(JETSON_IP, JETSON_PORT_MAVSDK);
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udp.write((const uint8_t*)msg, strlen(msg));
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udp.endPacket();
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Serial.println("Heartbeat envoyé → Jetson:14551");
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}
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if (!wifiConnected) return;
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// ── WiFi → UART (Jetson → Pi Zero) ──
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int packetSize = udp.parsePacket();
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if (packetSize > 0) {
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uint8_t buf[512];
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int len = udp.read(buf, sizeof(buf));
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if (len > 0) {
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MavSerial.write(buf, len);
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Serial.printf("WiFi→UART: %d bytes\n", len);
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}
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}
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// ── UART → WiFi (Pi Zero → Jetson) ──
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if (MavSerial.available()) {
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uint8_t buf[512];
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int len = 0;
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while (MavSerial.available() && len < 512) {
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buf[len++] = MavSerial.read();
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}
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if (len > 0) {
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udp.beginPacket(JETSON_IP, JETSON_PORT_MAVSDK);
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udp.write(buf, len);
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udp.endPacket();
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udp.beginPacket(JETSON_IP, JETSON_PORT_PYMAV);
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udp.write(buf, len);
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udp.endPacket();
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Serial.printf("UART→WiFi: %d bytes\n", len);
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}
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}
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}
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11
test/README
Normal file
11
test/README
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@ -0,0 +1,11 @@
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This directory is intended for PlatformIO Test Runner and project tests.
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Unit Testing is a software testing method by which individual units of
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source code, sets of one or more MCU program modules together with associated
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control data, usage procedures, and operating procedures, are tested to
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determine whether they are fit for use. Unit testing finds problems early
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in the development cycle.
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More information about PlatformIO Unit Testing:
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- https://docs.platformio.org/en/latest/advanced/unit-testing/index.html
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