Files
HaloKeymind/examples/simple_repeater/main.cpp
T
mikecarper a814a00ce7 Add configurable battery and USB display behavior
Persist separate display modes and timeouts in seconds for battery and USB power, expose four controls in WebConfig and CLI, and apply one shared policy across display-equipped roles.

Detect R8 external power from a USB host or calibrated battery voltage above 4.21 V, with cached sampling and hysteresis. Add policy, persistence, browser, and R8 power-detection regression coverage.
2026-09-10 21:03:15 -07:00

404 lines
12 KiB
C++

#include <Arduino.h> // needed for PlatformIO
#include <Mesh.h>
#include <helpers/IdentityGeneration.h>
#if MESH_PACKET_LOGGING
#include <helpers/SerialPacketLog.h>
#endif
#include "MyMesh.h"
#if defined(ESP32_PLATFORM)
#include <helpers/ESP32TrueRandom.h>
#endif
#if defined(ESP32) && MAX_RECENT_REPEATERS > 0
#include <new>
#endif
#ifdef DISPLAY_CLASS
#include "UITask.h"
static UITask ui_task(board, display);
static bool display_ready = false;
#endif
#ifdef ETHERNET_ENABLED
#define ETHERNET_CLI_BANNER "MeshCore Repeater CLI"
#include <helpers/nrf52/EthernetCLI.h>
#endif
StdRNG fast_rng;
#if MAX_RECENT_REPEATERS > 0
#if defined(ESP32)
// Classic ESP32 has a much smaller link-time DRAM window than its runtime heap
// map. Allocate this large, fixed-capacity history at startup so enabling WiFi
// features (including WebConfig) does not overflow that static DRAM window.
// Global constructors run before setup(), while the heap is still
// unfragmented; a failed allocation safely falls back to no history table.
SimpleMeshTables::RecentRepeaterInfo* recent_repeater_storage =
new (std::nothrow) SimpleMeshTables::RecentRepeaterInfo[MAX_RECENT_REPEATERS];
SimpleMeshTables tables(recent_repeater_storage,
recent_repeater_storage ? MAX_RECENT_REPEATERS : 0);
#else
SimpleMeshTables::RecentRepeaterInfo recent_repeater_storage[MAX_RECENT_REPEATERS];
SimpleMeshTables tables(recent_repeater_storage, MAX_RECENT_REPEATERS);
#endif
#else
SimpleMeshTables tables;
#endif
MyMesh the_mesh(board, radio_driver, *new ArduinoMillis(), fast_rng, rtc_clock, tables);
void halt() {
while (1) ;
}
#if MESH_ENABLE_HOST_CLI
static constexpr size_t LOCAL_SERIAL_COMMAND_MAX =
mesh::HostCliBridge::SERIAL_REPLY_COMMAND_MAX;
#else
static constexpr size_t LOCAL_SERIAL_COMMAND_MAX = 159U;
#endif
static char command[LOCAL_SERIAL_COMMAND_MAX + 2U];
static bool command_overflow = false;
#ifdef ETHERNET_ENABLED
static char ethernet_command[160];
#endif
// For power saving
unsigned long POWERSAVING_FIRSTSLEEP_SECS = 120; // The first sleep (if enabled) from boot
#if defined(PIN_USER_BTN) && defined(_SEEED_SENSECAP_SOLAR_H_)
static unsigned long userBtnDownAt = 0;
#define USER_BTN_HOLD_OFF_MILLIS 1500
#endif
void setup() {
mesh::prepareUsbLoggingPort();
Serial.begin(115200);
#if MESH_ESP32_USB_CONSOLE_COOPERATIVE
mesh::beginUsbLoggingPort();
#endif
#if MESH_PACKET_LOGGING
mesh::serialLogBegin();
#endif
delay(1000);
board.begin();
#ifdef HAS_EXTERNAL_WATCHDOG
external_watchdog.begin();
#endif
#if defined(MESH_DEBUG) && defined(NRF52_PLATFORM)
// give some extra time for serial to settle so
// boot debug messages can be seen on terminal
delay(5000);
#endif
#ifdef DISPLAY_CLASS
display_ready = display.begin();
if (display_ready) {
display.turnOff(); // Stay dark until the saved display policy is loaded.
}
#endif
int radioinit_attempts = 0;
while (!radio_init()) {
++radioinit_attempts;
MESH_DEBUG_PRINTLN("Radio init failed! (attempt %d)", radioinit_attempts);
if (radioinit_attempts >= 3) {
#ifdef RECOVERABLE_EXTERNAL_RADIO
// A remote external-radio node must not churn USB or require a physical
// power cut merely because its radio is temporarily unavailable. Keep
// the MCU alive and retry in place; target radio_init() performs the
// board-specific regulator/reset/wake recovery on each attempt.
mesh::usbConsolePort().println("Radio unavailable; retrying in 60 seconds");
radioinit_attempts = 0;
const uint32_t retry_started = millis();
while (millis() - retry_started < 60000UL) {
#if MESH_ESP32_USB_CONSOLE_COOPERATIVE
mesh::serviceUsbLoggingPort();
mesh::serviceUsbTerminalPort();
#endif
#if defined(NRF52_PLATFORM)
board.feedWatchdog();
#endif
#ifdef HAS_EXTERNAL_WATCHDOG
external_watchdog.loop();
#endif
delay(10);
}
#else
MESH_DEBUG_PRINTLN("Radio init failed 3x - rebooting");
board.reboot();
#endif
}
delay(500);
}
fast_rng.begin(radio_driver.getRngSeed());
FILESYSTEM* fs;
#if defined(NRF52_PLATFORM) || defined(STM32_PLATFORM)
InternalFS.begin();
fs = &InternalFS;
IdentityStore store(InternalFS, "");
#elif defined(ESP32)
SPIFFS.begin(true);
fs = &SPIFFS;
IdentityStore store(SPIFFS, "/identity");
#elif defined(RP2040_PLATFORM)
LittleFS.begin();
fs = &LittleFS;
IdentityStore store(LittleFS, "/identity");
store.begin();
#else
#error "need to define filesystem"
#endif
const bool needs_identity = !store.load("_main", the_mesh.self_id)
|| mesh::hasReservedIdentityPrefix(the_mesh.self_id);
bool identity_ready = true;
if (needs_identity) {
MESH_DEBUG_PRINTLN("Generating new keypair");
identity_ready = mesh::generateUsableLocalIdentity(the_mesh.self_id, radio_new_identity);
if (identity_ready) store.save("_main", the_mesh.self_id);
}
#if defined(ESP32_PLATFORM)
mesh::discardESP32TrueRandom();
#endif
if (!identity_ready) {
MESH_DEBUG_PRINTLN("Identity generation exhausted all attempts; rebooting");
board.reboot();
return;
}
// Print the running firmware version at boot so it's visible after an OTA
// reboot without having to issue `ver` manually.
Stream& console = mesh::usbConsolePort();
console.print("Firmware: "); console.print(FIRMWARE_VERSION);
console.print(" (built "); console.print(FIRMWARE_BUILD_DATE); console.println(")");
console.print("Repeater ID: ");
mesh::Utils::printHex(console, the_mesh.self_id.pub_key, PUB_KEY_SIZE); console.println();
command[0] = 0;
#ifdef ETHERNET_ENABLED
ethernet_command[0] = 0;
#endif
#if ENV_INCLUDE_GPS == 1
if (sensors.getLocationProvider() != NULL) {
// Keep GPS awake for at most 10 minutes, then asleep for one day.
sensors.getLocationProvider()->setPowerSavingProfile(600, 86400);
}
#endif
sensors.begin();
the_mesh.begin(fs);
#ifdef DISPLAY_CLASS
if (display_ready) {
#ifdef WITH_MQTT_BRIDGE
ui_task.setObserverPrefs(the_mesh.getObserverPrefs());
#endif
#ifdef DISPLAY_ACTIVITY_DASHBOARD
ui_task.setActivityWindow(the_mesh.getActivityWindow());
#endif
ui_task.begin(the_mesh.getNodePrefs(), FIRMWARE_BUILD_DATE, FIRMWARE_VERSION);
}
#endif
#ifdef ETHERNET_ENABLED
ethernet_start_task();
#endif
// send out initial zero hop Advertisement to the mesh
#if ENABLE_ADVERT_ON_BOOT == 1
the_mesh.sendSelfAdvertisement(16000, false);
#endif
board.onBootComplete();
}
static void __attribute__((noinline)) serviceCommandInterfaces() {
bool usb_ready = true;
#if MESH_ESP32_USB_CONSOLE_COOPERATIVE
mesh::serviceUsbLoggingPort();
mesh::serviceUsbTerminalPort();
if (mesh::takeUsbTerminalSessionReset()) {
command[0] = 0;
command_overflow = false;
the_mesh.cancelPendingSerialOutput();
}
// A busy USB session cleanup may defer the CLI, never the radio loop.
usb_ready = mesh::tryCompleteUsbTerminalSessionReset();
// Large listings advance from MyMesh::loop without blocking radio service.
usb_ready = usb_ready && !the_mesh.hasPendingSerialOutput()
&& mesh::canAcceptUsbConsoleCommand();
#endif
Stream& console = mesh::usbConsolePort();
// Handle Serial CLI
int len = strlen(command);
bool line_complete = false;
bool overlong_line_complete = false;
size_t read_budget = 256;
while (usb_ready && read_budget-- > 0 && console.available()) {
char c = console.read();
if (c == '\n') continue;
console.print(c);
if (command_overflow) {
if (c == '\r') {
command_overflow = false;
overlong_line_complete = true;
break;
}
continue;
}
if (c == '\r') {
line_complete = true;
break;
}
if ((size_t)len < LOCAL_SERIAL_COMMAND_MAX) {
command[len++] = c;
command[len] = 0;
} else {
// Discard the entire record through its delimiter. Never parse a
// truncated prefix as one command and its tail as a second command.
command[0] = 0;
len = 0;
command_overflow = true;
}
}
if (overlong_line_complete) {
console.print('\n');
console.println(" -> Err - command too long");
command[0] = 0;
return;
}
if (line_complete) {
console.print('\n');
char reply[160];
reply[0] = 0;
#ifdef ETHERNET_ENABLED
if (!ethernet_handle_command(command, reply)) {
#if MESH_ENABLE_HOST_CLI
if (!the_mesh.handleHostCliSerialReply(command, reply)) {
the_mesh.handleUsbCommand(command, reply);
}
#else
the_mesh.handleUsbCommand(command, reply);
#endif
}
#else
#if MESH_ENABLE_HOST_CLI
if (!the_mesh.handleHostCliSerialReply(command, reply)) {
the_mesh.handleUsbCommand(command, reply);
}
#else
the_mesh.handleUsbCommand(command, reply);
#endif
#endif
if (reply[0]) {
console.printf(" -> %s\r\n", reply);
}
command[0] = 0; // reset command buffer
}
#ifdef ETHERNET_ENABLED
ethernet_loop_maintain();
if (ethernet_take_session_reset() || !ethernet_client.connected()) {
the_mesh.cancelLocalOutput(ethernet_client);
ethernet_command[0] = 0;
}
if (!the_mesh.hasPendingLocalOutput() && ethernet_read_line(ethernet_command, sizeof(ethernet_command))) {
char reply[160];
reply[0] = 0;
if (!ethernet_handle_command(ethernet_command, reply)) {
the_mesh.handleLocalCommand(ethernet_command, reply, ethernet_client);
}
ethernet_send_reply(reply);
ethernet_command[0] = 0;
}
#endif
}
void loop() {
#if defined(NRF52_PLATFORM)
board.feedWatchdog(the_mesh.getNodePrefs()->system_watchdog_enabled != 0);
#endif
serviceCommandInterfaces();
#if defined(PIN_USER_BTN) && defined(_SEEED_SENSECAP_SOLAR_H_) && !defined(DISPLAY_CLASS)
// Hold the user button to power off the SenseCAP Solar repeater.
int btnState = digitalRead(PIN_USER_BTN);
if (btnState == LOW) {
if (userBtnDownAt == 0) {
userBtnDownAt = millis();
} else if ((unsigned long)(millis() - userBtnDownAt) >= USER_BTN_HOLD_OFF_MILLIS) {
mesh::usbConsolePort().println("Powering off...");
board.powerOff(); // does not return
}
} else {
userBtnDownAt = 0;
}
#endif
the_mesh.loop();
sensors.loop();
#ifdef DISPLAY_CLASS
if (display_ready) ui_task.loop();
#endif
rtc_clock.tick();
#if MESH_ESP32_USB_CONSOLE_COOPERATIVE
mesh::serviceUsbTerminalPort();
#endif
#ifdef TBEAM_1W
board.updateFanControl();
#endif
#ifdef HAS_EXTERNAL_WATCHDOG
external_watchdog.loop();
#endif
bool can_power_save = the_mesh.getNodePrefs()->powersaving_enabled
&& !board.isUsbDataConnected();
#if defined(MOMENTARY_BUTTON_WAKE_FROM_SLEEP) \
&& MOMENTARY_BUTTON_WAKE_FROM_SLEEP \
&& defined(PIN_USER_BTN) && defined(DISPLAY_CLASS)
// GPIO wake starts the first poll. Keep debounce and multi-click deadlines
// awake too, so a release cannot strand the remaining 25/280 ms interval.
// The G3 also retains its two-minute button wake interval here.
can_power_save = can_power_save && !user_btn.needsPolling();
#endif
if (can_power_save) {
uint32_t sleep_secs = the_mesh.getPowerSaveSleepSeconds(30);
#ifdef HAS_EXTERNAL_WATCHDOG
if (sleep_secs > 0) external_watchdog.feed();
#endif
#if defined(NRF52_PLATFORM)
if (sleep_secs > 0) {
board.sleep(0); // nrf ignores seconds param, sleeps whenever possible
}
#else
if (sleep_secs > 0 && the_mesh.millisHasNowPassed(POWERSAVING_FIRSTSLEEP_SECS * 1000)) { // To check if it is time to sleep
board.sleep(sleep_secs); // Sleep. Wake up for scheduled jobs or when receiving a LoRa packet
}
#endif
}
#if defined(ESP32_PLATFORM)
if (!can_power_save && the_mesh.getNodePrefs()->powersaving_enabled) {
delay(1); // Idle without suspending USB or the button wake interval.
}
#endif
if (the_mesh.getNodePrefs()->reboot_interval > 0 &&
the_mesh.millisHasNowPassed(the_mesh.getNodePrefs()->reboot_interval * 3600000)) {
board.reboot();
}
}