mirror of
https://github.com/meshcore-dev/MeshCore.git
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877 lines
30 KiB
C++
877 lines
30 KiB
C++
#include <Arduino.h> // needed for PlatformIO
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#include <Mesh.h>
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#if defined(NRF52_PLATFORM) || defined(STM32_PLATFORM)
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#include <InternalFileSystem.h>
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#elif defined(RP2040_PLATFORM)
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#include <LittleFS.h>
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#elif defined(ESP32)
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#include <SPIFFS.h>
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#endif
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#include <helpers/ArduinoHelpers.h>
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#include <helpers/StaticPoolPacketManager.h>
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#include <helpers/SimpleMeshTables.h>
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#include <helpers/IdentityStore.h>
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#include <helpers/AdvertDataHelpers.h>
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#include <helpers/TxtDataHelpers.h>
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#include <helpers/CommonCLI.h>
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#include <RTClib.h>
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#include <target.h>
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/* ------------------------------ Config -------------------------------- */
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#ifndef FIRMWARE_BUILD_DATE
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#define FIRMWARE_BUILD_DATE "24 Jul 2025"
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#endif
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#ifndef FIRMWARE_VERSION
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#define FIRMWARE_VERSION "v1.7.4"
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#endif
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#ifndef LORA_FREQ
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#define LORA_FREQ 915.0
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#endif
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#ifndef LORA_BW
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#define LORA_BW 250
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#endif
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#ifndef LORA_SF
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#define LORA_SF 10
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#endif
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#ifndef LORA_CR
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#define LORA_CR 5
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#endif
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#ifndef LORA_TX_POWER
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#define LORA_TX_POWER 20
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#endif
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#ifndef ADVERT_NAME
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#define ADVERT_NAME "repeater"
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#endif
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#ifndef ADVERT_LAT
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#define ADVERT_LAT 0.0
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#endif
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#ifndef ADVERT_LON
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#define ADVERT_LON 0.0
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#endif
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#ifndef ADMIN_PASSWORD
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#define ADMIN_PASSWORD "password"
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#endif
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#ifndef SERVER_RESPONSE_DELAY
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#define SERVER_RESPONSE_DELAY 300
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#endif
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#ifndef TXT_ACK_DELAY
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#define TXT_ACK_DELAY 200
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#endif
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#ifdef DISPLAY_CLASS
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#include "UITask.h"
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static UITask ui_task(display);
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#endif
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#define FIRMWARE_ROLE "repeater"
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#define PACKET_LOG_FILE "/packet_log"
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/* ------------------------------ Code -------------------------------- */
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#define REQ_TYPE_GET_STATUS 0x01 // same as _GET_STATS
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#define REQ_TYPE_KEEP_ALIVE 0x02
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#define REQ_TYPE_GET_TELEMETRY_DATA 0x03
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#define RESP_SERVER_LOGIN_OK 0 // response to ANON_REQ
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struct RepeaterStats {
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uint16_t batt_milli_volts;
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uint16_t curr_tx_queue_len;
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int16_t noise_floor;
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int16_t last_rssi;
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uint32_t n_packets_recv;
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uint32_t n_packets_sent;
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uint32_t total_air_time_secs;
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uint32_t total_up_time_secs;
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uint32_t n_sent_flood, n_sent_direct;
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uint32_t n_recv_flood, n_recv_direct;
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uint16_t err_events; // was 'n_full_events'
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int16_t last_snr; // x 4
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uint16_t n_direct_dups, n_flood_dups;
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uint32_t total_rx_air_time_secs;
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};
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struct ClientInfo {
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mesh::Identity id;
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uint32_t last_timestamp, last_activity;
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uint8_t secret[PUB_KEY_SIZE];
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bool is_admin;
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int8_t out_path_len;
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uint8_t out_path[MAX_PATH_SIZE];
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};
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#ifndef MAX_CLIENTS
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#define MAX_CLIENTS 32
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#endif
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struct NeighbourInfo {
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mesh::Identity id;
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uint32_t advert_timestamp;
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uint32_t heard_timestamp;
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int8_t snr; // multiplied by 4, user should divide to get float value
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};
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#define CLI_REPLY_DELAY_MILLIS 600
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class MyMesh : public mesh::Mesh, public CommonCLICallbacks {
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FILESYSTEM* _fs;
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unsigned long next_local_advert, next_flood_advert;
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bool _logging;
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NodePrefs _prefs;
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CommonCLI _cli;
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uint8_t reply_data[MAX_PACKET_PAYLOAD];
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ClientInfo known_clients[MAX_CLIENTS];
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#if MAX_NEIGHBOURS
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NeighbourInfo neighbours[MAX_NEIGHBOURS];
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#endif
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CayenneLPP telemetry;
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unsigned long set_radio_at, revert_radio_at;
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float pending_freq;
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float pending_bw;
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uint8_t pending_sf;
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uint8_t pending_cr;
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ClientInfo* putClient(const mesh::Identity& id) {
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uint32_t min_time = 0xFFFFFFFF;
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ClientInfo* oldest = &known_clients[0];
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for (int i = 0; i < MAX_CLIENTS; i++) {
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if (known_clients[i].last_activity < min_time) {
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oldest = &known_clients[i];
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min_time = oldest->last_activity;
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}
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if (id.matches(known_clients[i].id)) return &known_clients[i]; // already known
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}
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oldest->id = id;
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oldest->out_path_len = -1; // initially out_path is unknown
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oldest->last_timestamp = 0;
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return oldest;
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}
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void putNeighbour(const mesh::Identity& id, uint32_t timestamp, float snr) {
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#if MAX_NEIGHBOURS // check if neighbours enabled
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// find existing neighbour, else use least recently updated
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uint32_t oldest_timestamp = 0xFFFFFFFF;
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NeighbourInfo* neighbour = &neighbours[0];
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for (int i = 0; i < MAX_NEIGHBOURS; i++) {
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// if neighbour already known, we should update it
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if (id.matches(neighbours[i].id)) {
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neighbour = &neighbours[i];
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break;
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}
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// otherwise we should update the least recently updated neighbour
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if (neighbours[i].heard_timestamp < oldest_timestamp) {
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neighbour = &neighbours[i];
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oldest_timestamp = neighbour->heard_timestamp;
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}
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}
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// update neighbour info
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neighbour->id = id;
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neighbour->advert_timestamp = timestamp;
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neighbour->heard_timestamp = getRTCClock()->getCurrentTime();
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neighbour->snr = (int8_t) (snr * 4);
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#endif
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}
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int handleRequest(ClientInfo* sender, uint32_t sender_timestamp, uint8_t* payload, size_t payload_len) {
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// uint32_t now = getRTCClock()->getCurrentTimeUnique();
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// memcpy(reply_data, &now, 4); // response packets always prefixed with timestamp
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memcpy(reply_data, &sender_timestamp, 4); // reflect sender_timestamp back in response packet (kind of like a 'tag')
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switch (payload[0]) {
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case REQ_TYPE_GET_STATUS: { // guests can also access this now
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RepeaterStats stats;
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stats.batt_milli_volts = board.getBattMilliVolts();
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stats.curr_tx_queue_len = _mgr->getOutboundCount(0xFFFFFFFF);
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stats.noise_floor = (int16_t)_radio->getNoiseFloor();
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stats.last_rssi = (int16_t) radio_driver.getLastRSSI();
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stats.n_packets_recv = radio_driver.getPacketsRecv();
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stats.n_packets_sent = radio_driver.getPacketsSent();
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stats.total_air_time_secs = getTotalAirTime() / 1000;
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stats.total_up_time_secs = _ms->getMillis() / 1000;
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stats.n_sent_flood = getNumSentFlood();
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stats.n_sent_direct = getNumSentDirect();
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stats.n_recv_flood = getNumRecvFlood();
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stats.n_recv_direct = getNumRecvDirect();
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stats.err_events = _err_flags;
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stats.last_snr = (int16_t)(radio_driver.getLastSNR() * 4);
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stats.n_direct_dups = ((SimpleMeshTables *)getTables())->getNumDirectDups();
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stats.n_flood_dups = ((SimpleMeshTables *)getTables())->getNumFloodDups();
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stats.total_rx_air_time_secs = getReceiveAirTime() / 1000;
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memcpy(&reply_data[4], &stats, sizeof(stats));
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return 4 + sizeof(stats); // reply_len
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}
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case REQ_TYPE_GET_TELEMETRY_DATA: {
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uint8_t perm_mask = ~(payload[1]); // NEW: first reserved byte (of 4), is now inverse mask to apply to permissions
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telemetry.reset();
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telemetry.addVoltage(TELEM_CHANNEL_SELF, (float)board.getBattMilliVolts() / 1000.0f);
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// query other sensors -- target specific
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sensors.querySensors((sender->is_admin ? 0xFF : 0x00) & perm_mask, telemetry);
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uint8_t tlen = telemetry.getSize();
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memcpy(&reply_data[4], telemetry.getBuffer(), tlen);
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return 4 + tlen; // reply_len
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}
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}
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return 0; // unknown command
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}
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mesh::Packet* createSelfAdvert() {
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uint8_t app_data[MAX_ADVERT_DATA_SIZE];
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uint8_t app_data_len;
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{
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AdvertDataBuilder builder(ADV_TYPE_REPEATER, _prefs.node_name, _prefs.node_lat, _prefs.node_lon);
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app_data_len = builder.encodeTo(app_data);
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}
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return createAdvert(self_id, app_data, app_data_len);
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}
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File openAppend(const char* fname) {
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#if defined(NRF52_PLATFORM) || defined(STM32_PLATFORM)
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return _fs->open(fname, FILE_O_WRITE);
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#elif defined(RP2040_PLATFORM)
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return _fs->open(fname, "a");
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#else
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return _fs->open(fname, "a", true);
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#endif
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}
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protected:
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float getAirtimeBudgetFactor() const override {
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return _prefs.airtime_factor;
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}
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bool allowPacketForward(const mesh::Packet* packet) override {
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if (_prefs.disable_fwd) return false;
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if (packet->isRouteFlood() && packet->path_len >= _prefs.flood_max) return false;
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return true;
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}
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const char* getLogDateTime() override {
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static char tmp[32];
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uint32_t now = getRTCClock()->getCurrentTime();
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DateTime dt = DateTime(now);
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sprintf(tmp, "%02d:%02d:%02d - %d/%d/%d U", dt.hour(), dt.minute(), dt.second(), dt.day(), dt.month(), dt.year());
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return tmp;
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}
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void logRxRaw(float snr, float rssi, const uint8_t raw[], int len) override {
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#if MESH_PACKET_LOGGING
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Serial.print(getLogDateTime());
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Serial.print(" RAW: ");
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mesh::Utils::printHex(Serial, raw, len);
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Serial.println();
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#endif
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}
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void logRx(mesh::Packet* pkt, int len, float score) override {
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if (_logging) {
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File f = openAppend(PACKET_LOG_FILE);
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if (f) {
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f.print(getLogDateTime());
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f.printf(": RX, len=%d (type=%d, route=%s, payload_len=%d) SNR=%d RSSI=%d score=%d",
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len, pkt->getPayloadType(), pkt->isRouteDirect() ? "D" : "F", pkt->payload_len,
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(int)_radio->getLastSNR(), (int)_radio->getLastRSSI(), (int)(score*1000));
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if (pkt->getPayloadType() == PAYLOAD_TYPE_PATH || pkt->getPayloadType() == PAYLOAD_TYPE_REQ
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|| pkt->getPayloadType() == PAYLOAD_TYPE_RESPONSE || pkt->getPayloadType() == PAYLOAD_TYPE_TXT_MSG) {
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f.printf(" [%02X -> %02X]\n", (uint32_t)pkt->payload[1], (uint32_t)pkt->payload[0]);
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} else {
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f.printf("\n");
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}
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f.close();
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}
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}
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}
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void logTx(mesh::Packet* pkt, int len) override {
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if (_logging) {
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File f = openAppend(PACKET_LOG_FILE);
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if (f) {
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f.print(getLogDateTime());
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f.printf(": TX, len=%d (type=%d, route=%s, payload_len=%d)",
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len, pkt->getPayloadType(), pkt->isRouteDirect() ? "D" : "F", pkt->payload_len);
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if (pkt->getPayloadType() == PAYLOAD_TYPE_PATH || pkt->getPayloadType() == PAYLOAD_TYPE_REQ
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|| pkt->getPayloadType() == PAYLOAD_TYPE_RESPONSE || pkt->getPayloadType() == PAYLOAD_TYPE_TXT_MSG) {
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f.printf(" [%02X -> %02X]\n", (uint32_t)pkt->payload[1], (uint32_t)pkt->payload[0]);
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} else {
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f.printf("\n");
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}
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f.close();
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}
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}
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}
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void logTxFail(mesh::Packet* pkt, int len) override {
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if (_logging) {
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File f = openAppend(PACKET_LOG_FILE);
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if (f) {
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f.print(getLogDateTime());
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f.printf(": TX FAIL!, len=%d (type=%d, route=%s, payload_len=%d)\n",
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len, pkt->getPayloadType(), pkt->isRouteDirect() ? "D" : "F", pkt->payload_len);
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f.close();
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}
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}
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}
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int calcRxDelay(float score, uint32_t air_time) const override {
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if (_prefs.rx_delay_base <= 0.0f) return 0;
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return (int) ((pow(_prefs.rx_delay_base, 0.85f - score) - 1.0) * air_time);
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}
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uint32_t getRetransmitDelay(const mesh::Packet* packet) override {
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uint32_t t = (_radio->getEstAirtimeFor(packet->path_len + packet->payload_len + 2) * _prefs.tx_delay_factor);
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return getRNG()->nextInt(0, 6)*t;
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}
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uint32_t getDirectRetransmitDelay(const mesh::Packet* packet) override {
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uint32_t t = (_radio->getEstAirtimeFor(packet->path_len + packet->payload_len + 2) * _prefs.direct_tx_delay_factor);
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return getRNG()->nextInt(0, 6)*t;
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}
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int getInterferenceThreshold() const override {
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return _prefs.interference_threshold;
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}
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int getAGCResetInterval() const override {
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return ((int)_prefs.agc_reset_interval) * 4000; // milliseconds
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}
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uint8_t getExtraAckTransmitCount() const override {
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return _prefs.multi_acks;
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}
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void onAnonDataRecv(mesh::Packet* packet, const uint8_t* secret, const mesh::Identity& sender, uint8_t* data, size_t len) override {
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if (packet->getPayloadType() == PAYLOAD_TYPE_ANON_REQ) { // received an initial request by a possible admin client (unknown at this stage)
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uint32_t timestamp;
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memcpy(×tamp, data, 4);
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bool is_admin;
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data[len] = 0; // ensure null terminator
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if (strcmp((char *) &data[4], _prefs.password) == 0) { // check for valid password
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is_admin = true;
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} else if (strcmp((char *) &data[4], _prefs.guest_password) == 0) { // check guest password
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is_admin = false;
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} else {
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#if MESH_DEBUG
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MESH_DEBUG_PRINTLN("Invalid password: %s", &data[4]);
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#endif
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return;
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}
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auto client = putClient(sender); // add to known clients (if not already known)
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if (timestamp <= client->last_timestamp) {
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MESH_DEBUG_PRINTLN("Possible login replay attack!");
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return; // FATAL: client table is full -OR- replay attack
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}
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MESH_DEBUG_PRINTLN("Login success!");
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client->last_timestamp = timestamp;
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client->last_activity = getRTCClock()->getCurrentTime();
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client->is_admin = is_admin;
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memcpy(client->secret, secret, PUB_KEY_SIZE);
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uint32_t now = getRTCClock()->getCurrentTimeUnique();
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memcpy(reply_data, &now, 4); // response packets always prefixed with timestamp
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#if 0
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memcpy(&reply_data[4], "OK", 2); // legacy response
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#else
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reply_data[4] = RESP_SERVER_LOGIN_OK;
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reply_data[5] = 0; // NEW: recommended keep-alive interval (secs / 16)
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reply_data[6] = is_admin ? 1 : 0;
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reply_data[7] = 0; // FUTURE: reserved
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getRNG()->random(&reply_data[8], 4); // random blob to help packet-hash uniqueness
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#endif
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if (packet->isRouteFlood()) {
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// let this sender know path TO here, so they can use sendDirect(), and ALSO encode the response
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mesh::Packet* path = createPathReturn(sender, client->secret, packet->path, packet->path_len,
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PAYLOAD_TYPE_RESPONSE, reply_data, 12);
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if (path) sendFlood(path, SERVER_RESPONSE_DELAY);
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} else {
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mesh::Packet* reply = createDatagram(PAYLOAD_TYPE_RESPONSE, sender, client->secret, reply_data, 12);
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if (reply) {
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if (client->out_path_len >= 0) { // we have an out_path, so send DIRECT
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sendDirect(reply, client->out_path, client->out_path_len, SERVER_RESPONSE_DELAY);
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} else {
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sendFlood(reply, SERVER_RESPONSE_DELAY);
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}
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}
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}
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}
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}
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int matching_peer_indexes[MAX_CLIENTS];
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int searchPeersByHash(const uint8_t* hash) override {
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int n = 0;
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for (int i = 0; i < MAX_CLIENTS; i++) {
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if (known_clients[i].id.isHashMatch(hash)) {
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matching_peer_indexes[n++] = i; // store the INDEXES of matching contacts (for subsequent 'peer' methods)
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}
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}
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return n;
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}
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void getPeerSharedSecret(uint8_t* dest_secret, int peer_idx) override {
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int i = matching_peer_indexes[peer_idx];
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if (i >= 0 && i < MAX_CLIENTS) {
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// lookup pre-calculated shared_secret
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memcpy(dest_secret, known_clients[i].secret, PUB_KEY_SIZE);
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} else {
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MESH_DEBUG_PRINTLN("getPeerSharedSecret: Invalid peer idx: %d", i);
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}
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}
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void onAdvertRecv(mesh::Packet* packet, const mesh::Identity& id, uint32_t timestamp, const uint8_t* app_data, size_t app_data_len) {
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mesh::Mesh::onAdvertRecv(packet, id, timestamp, app_data, app_data_len); // chain to super impl
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// if this a zero hop advert, add it to neighbours
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if (packet->path_len == 0) {
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AdvertDataParser parser(app_data, app_data_len);
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if (parser.isValid() && parser.getType() == ADV_TYPE_REPEATER) { // just keep neigbouring Repeaters
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putNeighbour(id, timestamp, packet->getSNR());
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}
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}
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}
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void onPeerDataRecv(mesh::Packet* packet, uint8_t type, int sender_idx, const uint8_t* secret, uint8_t* data, size_t len) override {
|
|
int i = matching_peer_indexes[sender_idx];
|
|
if (i < 0 || i >= MAX_CLIENTS) { // get from our known_clients table (sender SHOULD already be known in this context)
|
|
MESH_DEBUG_PRINTLN("onPeerDataRecv: invalid peer idx: %d", i);
|
|
return;
|
|
}
|
|
auto client = &known_clients[i];
|
|
if (type == PAYLOAD_TYPE_REQ) { // request (from a Known admin client!)
|
|
uint32_t timestamp;
|
|
memcpy(×tamp, data, 4);
|
|
|
|
if (timestamp > client->last_timestamp) { // prevent replay attacks
|
|
int reply_len = handleRequest(client, timestamp, &data[4], len - 4);
|
|
if (reply_len == 0) return; // invalid command
|
|
|
|
client->last_timestamp = timestamp;
|
|
client->last_activity = getRTCClock()->getCurrentTime();
|
|
|
|
if (packet->isRouteFlood()) {
|
|
// let this sender know path TO here, so they can use sendDirect(), and ALSO encode the response
|
|
mesh::Packet* path = createPathReturn(client->id, secret, packet->path, packet->path_len,
|
|
PAYLOAD_TYPE_RESPONSE, reply_data, reply_len);
|
|
if (path) sendFlood(path, SERVER_RESPONSE_DELAY);
|
|
} else {
|
|
mesh::Packet* reply = createDatagram(PAYLOAD_TYPE_RESPONSE, client->id, secret, reply_data, reply_len);
|
|
if (reply) {
|
|
if (client->out_path_len >= 0) { // we have an out_path, so send DIRECT
|
|
sendDirect(reply, client->out_path, client->out_path_len, SERVER_RESPONSE_DELAY);
|
|
} else {
|
|
sendFlood(reply, SERVER_RESPONSE_DELAY);
|
|
}
|
|
}
|
|
}
|
|
} else {
|
|
MESH_DEBUG_PRINTLN("onPeerDataRecv: possible replay attack detected");
|
|
}
|
|
} else if (type == PAYLOAD_TYPE_TXT_MSG && len > 5 && client->is_admin) { // a CLI command
|
|
uint32_t sender_timestamp;
|
|
memcpy(&sender_timestamp, data, 4); // timestamp (by sender's RTC clock - which could be wrong)
|
|
uint flags = (data[4] >> 2); // message attempt number, and other flags
|
|
|
|
if (!(flags == TXT_TYPE_PLAIN || flags == TXT_TYPE_CLI_DATA)) {
|
|
MESH_DEBUG_PRINTLN("onPeerDataRecv: unsupported text type received: flags=%02x", (uint32_t)flags);
|
|
} else if (sender_timestamp >= client->last_timestamp) { // prevent replay attacks
|
|
bool is_retry = (sender_timestamp == client->last_timestamp);
|
|
client->last_timestamp = sender_timestamp;
|
|
client->last_activity = getRTCClock()->getCurrentTime();
|
|
|
|
// len can be > original length, but 'text' will be padded with zeroes
|
|
data[len] = 0; // need to make a C string again, with null terminator
|
|
|
|
if (flags == TXT_TYPE_PLAIN) { // for legacy CLI, send Acks
|
|
uint32_t ack_hash; // calc truncated hash of the message timestamp + text + sender pub_key, to prove to sender that we got it
|
|
mesh::Utils::sha256((uint8_t *) &ack_hash, 4, data, 5 + strlen((char *)&data[5]), client->id.pub_key, PUB_KEY_SIZE);
|
|
|
|
mesh::Packet* ack = createAck(ack_hash);
|
|
if (ack) {
|
|
if (client->out_path_len < 0) {
|
|
sendFlood(ack, TXT_ACK_DELAY);
|
|
} else {
|
|
sendDirect(ack, client->out_path, client->out_path_len, TXT_ACK_DELAY);
|
|
}
|
|
}
|
|
}
|
|
|
|
uint8_t temp[166];
|
|
char *command = (char *) &data[5];
|
|
char *reply = (char *) &temp[5];
|
|
if (is_retry) {
|
|
*reply = 0;
|
|
} else {
|
|
handleCommand(sender_timestamp, command, reply);
|
|
}
|
|
int text_len = strlen(reply);
|
|
if (text_len > 0) {
|
|
uint32_t timestamp = getRTCClock()->getCurrentTimeUnique();
|
|
if (timestamp == sender_timestamp) {
|
|
// WORKAROUND: the two timestamps need to be different, in the CLI view
|
|
timestamp++;
|
|
}
|
|
memcpy(temp, ×tamp, 4); // mostly an extra blob to help make packet_hash unique
|
|
temp[4] = (TXT_TYPE_CLI_DATA << 2); // NOTE: legacy was: TXT_TYPE_PLAIN
|
|
|
|
auto reply = createDatagram(PAYLOAD_TYPE_TXT_MSG, client->id, secret, temp, 5 + text_len);
|
|
if (reply) {
|
|
if (client->out_path_len < 0) {
|
|
sendFlood(reply, CLI_REPLY_DELAY_MILLIS);
|
|
} else {
|
|
sendDirect(reply, client->out_path, client->out_path_len, CLI_REPLY_DELAY_MILLIS);
|
|
}
|
|
}
|
|
}
|
|
} else {
|
|
MESH_DEBUG_PRINTLN("onPeerDataRecv: possible replay attack detected");
|
|
}
|
|
}
|
|
}
|
|
|
|
bool onPeerPathRecv(mesh::Packet* packet, int sender_idx, const uint8_t* secret, uint8_t* path, uint8_t path_len, uint8_t extra_type, uint8_t* extra, uint8_t extra_len) override {
|
|
// TODO: prevent replay attacks
|
|
int i = matching_peer_indexes[sender_idx];
|
|
|
|
if (i >= 0 && i < MAX_CLIENTS) { // get from our known_clients table (sender SHOULD already be known in this context)
|
|
MESH_DEBUG_PRINTLN("PATH to client, path_len=%d", (uint32_t) path_len);
|
|
auto client = &known_clients[i];
|
|
memcpy(client->out_path, path, client->out_path_len = path_len); // store a copy of path, for sendDirect()
|
|
} else {
|
|
MESH_DEBUG_PRINTLN("onPeerPathRecv: invalid peer idx: %d", i);
|
|
}
|
|
|
|
// NOTE: no reciprocal path send!!
|
|
return false;
|
|
}
|
|
|
|
public:
|
|
MyMesh(mesh::MainBoard& board, mesh::Radio& radio, mesh::MillisecondClock& ms, mesh::RNG& rng, mesh::RTCClock& rtc, mesh::MeshTables& tables)
|
|
: mesh::Mesh(radio, ms, rng, rtc, *new StaticPoolPacketManager(32), tables),
|
|
_cli(board, rtc, &_prefs, this), telemetry(MAX_PACKET_PAYLOAD - 4)
|
|
{
|
|
memset(known_clients, 0, sizeof(known_clients));
|
|
next_local_advert = next_flood_advert = 0;
|
|
set_radio_at = revert_radio_at = 0;
|
|
_logging = false;
|
|
|
|
#if MAX_NEIGHBOURS
|
|
memset(neighbours, 0, sizeof(neighbours));
|
|
#endif
|
|
|
|
// defaults
|
|
memset(&_prefs, 0, sizeof(_prefs));
|
|
_prefs.airtime_factor = 1.0; // one half
|
|
_prefs.rx_delay_base = 0.0f; // turn off by default, was 10.0;
|
|
_prefs.tx_delay_factor = 0.5f; // was 0.25f
|
|
StrHelper::strncpy(_prefs.node_name, ADVERT_NAME, sizeof(_prefs.node_name));
|
|
_prefs.node_lat = ADVERT_LAT;
|
|
_prefs.node_lon = ADVERT_LON;
|
|
StrHelper::strncpy(_prefs.password, ADMIN_PASSWORD, sizeof(_prefs.password));
|
|
_prefs.freq = LORA_FREQ;
|
|
_prefs.sf = LORA_SF;
|
|
_prefs.bw = LORA_BW;
|
|
_prefs.cr = LORA_CR;
|
|
_prefs.tx_power_dbm = LORA_TX_POWER;
|
|
_prefs.advert_interval = 1; // default to 2 minutes for NEW installs
|
|
_prefs.flood_advert_interval = 3; // 3 hours
|
|
_prefs.flood_max = 64;
|
|
_prefs.interference_threshold = 0; // disabled
|
|
}
|
|
|
|
void begin(FILESYSTEM* fs) {
|
|
mesh::Mesh::begin();
|
|
_fs = fs;
|
|
// load persisted prefs
|
|
_cli.loadPrefs(_fs);
|
|
|
|
radio_set_params(_prefs.freq, _prefs.bw, _prefs.sf, _prefs.cr);
|
|
radio_set_tx_power(_prefs.tx_power_dbm);
|
|
|
|
updateAdvertTimer();
|
|
updateFloodAdvertTimer();
|
|
}
|
|
|
|
const char* getFirmwareVer() override { return FIRMWARE_VERSION; }
|
|
const char* getBuildDate() override { return FIRMWARE_BUILD_DATE; }
|
|
const char* getRole() override { return FIRMWARE_ROLE; }
|
|
const char* getNodeName() { return _prefs.node_name; }
|
|
NodePrefs* getNodePrefs() {
|
|
return &_prefs;
|
|
}
|
|
|
|
void savePrefs() override {
|
|
_cli.savePrefs(_fs);
|
|
}
|
|
|
|
void applyTempRadioParams(float freq, float bw, uint8_t sf, uint8_t cr, int timeout_mins) override {
|
|
set_radio_at = futureMillis(2000); // give CLI reply some time to be sent back, before applying temp radio params
|
|
pending_freq = freq;
|
|
pending_bw = bw;
|
|
pending_sf = sf;
|
|
pending_cr = cr;
|
|
|
|
revert_radio_at = futureMillis(2000 + timeout_mins*60*1000); // schedule when to revert radio params
|
|
}
|
|
|
|
bool formatFileSystem() override {
|
|
#if defined(NRF52_PLATFORM) || defined(STM32_PLATFORM)
|
|
return InternalFS.format();
|
|
#elif defined(RP2040_PLATFORM)
|
|
return LittleFS.format();
|
|
#elif defined(ESP32)
|
|
return SPIFFS.format();
|
|
#else
|
|
#error "need to implement file system erase"
|
|
return false;
|
|
#endif
|
|
}
|
|
|
|
void sendSelfAdvertisement(int delay_millis) override {
|
|
mesh::Packet* pkt = createSelfAdvert();
|
|
if (pkt) {
|
|
sendFlood(pkt, delay_millis);
|
|
} else {
|
|
MESH_DEBUG_PRINTLN("ERROR: unable to create advertisement packet!");
|
|
}
|
|
}
|
|
|
|
void updateAdvertTimer() override {
|
|
if (_prefs.advert_interval > 0) { // schedule local advert timer
|
|
next_local_advert = futureMillis( ((uint32_t)_prefs.advert_interval) * 2 * 60 * 1000);
|
|
} else {
|
|
next_local_advert = 0; // stop the timer
|
|
}
|
|
}
|
|
void updateFloodAdvertTimer() override {
|
|
if (_prefs.flood_advert_interval > 0) { // schedule flood advert timer
|
|
next_flood_advert = futureMillis( ((uint32_t)_prefs.flood_advert_interval) * 60 * 60 * 1000);
|
|
} else {
|
|
next_flood_advert = 0; // stop the timer
|
|
}
|
|
}
|
|
|
|
void setLoggingOn(bool enable) override { _logging = enable; }
|
|
|
|
void eraseLogFile() override {
|
|
_fs->remove(PACKET_LOG_FILE);
|
|
}
|
|
|
|
void dumpLogFile() override {
|
|
#if defined(RP2040_PLATFORM)
|
|
File f = _fs->open(PACKET_LOG_FILE, "r");
|
|
#else
|
|
File f = _fs->open(PACKET_LOG_FILE);
|
|
#endif
|
|
if (f) {
|
|
while (f.available()) {
|
|
int c = f.read();
|
|
if (c < 0) break;
|
|
Serial.print((char)c);
|
|
}
|
|
f.close();
|
|
}
|
|
}
|
|
|
|
void setTxPower(uint8_t power_dbm) override {
|
|
radio_set_tx_power(power_dbm);
|
|
}
|
|
|
|
void formatNeighborsReply(char *reply) override {
|
|
char *dp = reply;
|
|
|
|
#if MAX_NEIGHBOURS
|
|
for (int i = 0; i < MAX_NEIGHBOURS && dp - reply < 134; i++) {
|
|
NeighbourInfo* neighbour = &neighbours[i];
|
|
if (neighbour->heard_timestamp == 0) continue; // skip empty slots
|
|
|
|
// add new line if not first item
|
|
if (i > 0) *dp++ = '\n';
|
|
|
|
char hex[10];
|
|
// get 4 bytes of neighbour id as hex
|
|
mesh::Utils::toHex(hex, neighbour->id.pub_key, 4);
|
|
|
|
// add next neighbour
|
|
uint32_t secs_ago = getRTCClock()->getCurrentTime() - neighbour->heard_timestamp;
|
|
sprintf(dp, "%s:%d:%d", hex, secs_ago, neighbour->snr);
|
|
while (*dp) dp++; // find end of string
|
|
}
|
|
#endif
|
|
if (dp == reply) { // no neighbours, need empty response
|
|
strcpy(dp, "-none-"); dp += 6;
|
|
}
|
|
*dp = 0; // null terminator
|
|
}
|
|
|
|
mesh::LocalIdentity& getSelfId() override { return self_id; }
|
|
|
|
void clearStats() override {
|
|
radio_driver.resetStats();
|
|
resetStats();
|
|
((SimpleMeshTables *)getTables())->resetStats();
|
|
}
|
|
|
|
void handleCommand(uint32_t sender_timestamp, char* command, char* reply) {
|
|
while (*command == ' ') command++; // skip leading spaces
|
|
|
|
if (strlen(command) > 4 && command[2] == '|') { // optional prefix (for companion radio CLI)
|
|
memcpy(reply, command, 3); // reflect the prefix back
|
|
reply += 3;
|
|
command += 3;
|
|
}
|
|
|
|
_cli.handleCommand(sender_timestamp, command, reply); // common CLI commands
|
|
}
|
|
|
|
void loop() {
|
|
mesh::Mesh::loop();
|
|
|
|
if (next_flood_advert && millisHasNowPassed(next_flood_advert)) {
|
|
mesh::Packet* pkt = createSelfAdvert();
|
|
if (pkt) sendFlood(pkt);
|
|
|
|
updateFloodAdvertTimer(); // schedule next flood advert
|
|
updateAdvertTimer(); // also schedule local advert (so they don't overlap)
|
|
} else if (next_local_advert && millisHasNowPassed(next_local_advert)) {
|
|
mesh::Packet* pkt = createSelfAdvert();
|
|
if (pkt) sendZeroHop(pkt);
|
|
|
|
updateAdvertTimer(); // schedule next local advert
|
|
}
|
|
|
|
if (set_radio_at && millisHasNowPassed(set_radio_at)) { // apply pending (temporary) radio params
|
|
set_radio_at = 0; // clear timer
|
|
radio_set_params(pending_freq, pending_bw, pending_sf, pending_cr);
|
|
MESH_DEBUG_PRINTLN("Temp radio params");
|
|
}
|
|
|
|
if (revert_radio_at && millisHasNowPassed(revert_radio_at)) { // revert radio params to orig
|
|
revert_radio_at = 0; // clear timer
|
|
radio_set_params(_prefs.freq, _prefs.bw, _prefs.sf, _prefs.cr);
|
|
MESH_DEBUG_PRINTLN("Radio params restored");
|
|
}
|
|
|
|
#ifdef DISPLAY_CLASS
|
|
ui_task.loop();
|
|
#endif
|
|
}
|
|
};
|
|
|
|
StdRNG fast_rng;
|
|
SimpleMeshTables tables;
|
|
|
|
MyMesh the_mesh(board, radio_driver, *new ArduinoMillis(), fast_rng, rtc_clock, tables);
|
|
|
|
void halt() {
|
|
while (1) ;
|
|
}
|
|
|
|
static char command[160];
|
|
|
|
void setup() {
|
|
Serial.begin(115200);
|
|
delay(1000);
|
|
|
|
board.begin();
|
|
|
|
#ifdef DISPLAY_CLASS
|
|
if (display.begin()) {
|
|
display.startFrame();
|
|
display.print("Please wait...");
|
|
display.endFrame();
|
|
}
|
|
#endif
|
|
|
|
if (!radio_init()) { halt(); }
|
|
|
|
fast_rng.begin(radio_get_rng_seed());
|
|
|
|
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
|
|
if (!store.load("_main", the_mesh.self_id)) {
|
|
MESH_DEBUG_PRINTLN("Generating new keypair");
|
|
the_mesh.self_id = radio_new_identity(); // create new random identity
|
|
int count = 0;
|
|
while (count < 10 && (the_mesh.self_id.pub_key[0] == 0x00 || the_mesh.self_id.pub_key[0] == 0xFF)) { // reserved id hashes
|
|
the_mesh.self_id = radio_new_identity(); count++;
|
|
}
|
|
store.save("_main", the_mesh.self_id);
|
|
}
|
|
|
|
Serial.print("Repeater ID: ");
|
|
mesh::Utils::printHex(Serial, the_mesh.self_id.pub_key, PUB_KEY_SIZE); Serial.println();
|
|
|
|
command[0] = 0;
|
|
|
|
sensors.begin();
|
|
|
|
the_mesh.begin(fs);
|
|
|
|
#ifdef DISPLAY_CLASS
|
|
ui_task.begin(the_mesh.getNodePrefs(), FIRMWARE_BUILD_DATE, FIRMWARE_VERSION);
|
|
#endif
|
|
|
|
// send out initial Advertisement to the mesh
|
|
the_mesh.sendSelfAdvertisement(16000);
|
|
}
|
|
|
|
void loop() {
|
|
int len = strlen(command);
|
|
while (Serial.available() && len < sizeof(command)-1) {
|
|
char c = Serial.read();
|
|
if (c != '\n') {
|
|
command[len++] = c;
|
|
command[len] = 0;
|
|
}
|
|
Serial.print(c);
|
|
}
|
|
if (len == sizeof(command)-1) { // command buffer full
|
|
command[sizeof(command)-1] = '\r';
|
|
}
|
|
|
|
if (len > 0 && command[len - 1] == '\r') { // received complete line
|
|
command[len - 1] = 0; // replace newline with C string null terminator
|
|
char reply[160];
|
|
the_mesh.handleCommand(0, command, reply); // NOTE: there is no sender_timestamp via serial!
|
|
if (reply[0]) {
|
|
Serial.print(" -> "); Serial.println(reply);
|
|
}
|
|
|
|
command[0] = 0; // reset command buffer
|
|
}
|
|
|
|
the_mesh.loop();
|
|
sensors.loop();
|
|
}
|