Files
HaloKeymind/examples/simple_repeater/MyMesh.cpp
T

7169 lines
266 KiB
C++

#include "MyMesh.h"
#include <algorithm>
#include <stdlib.h> // for qsort()
#include <helpers/CLICommandUtils.h>
#include <helpers/ClockSyncUtils.h>
#include <helpers/RxReservePacketManager.h>
#ifdef WITH_WEBCONFIG
#include <WiFi.h>
#endif
/* ------------------------------ Config -------------------------------- */
#ifndef LORA_FREQ
#define LORA_FREQ 915.0
#endif
#ifndef LORA_BW
#define LORA_BW 250
#endif
#ifndef LORA_SF
#define LORA_SF 10
#endif
#ifndef LORA_CR
#define LORA_CR 5
#endif
#ifndef LORA_TX_POWER
#define LORA_TX_POWER 20
#endif
#ifndef DEFAULT_ADVERT_INTERVAL_MINUTES
#define DEFAULT_ADVERT_INTERVAL_MINUTES 2
#endif
#ifndef DEFAULT_FLOOD_ADVERT_INTERVAL_HOURS
#define DEFAULT_FLOOD_ADVERT_INTERVAL_HOURS 47
#endif
#ifndef DEFAULT_AGC_RESET_INTERVAL_SECONDS
#define DEFAULT_AGC_RESET_INTERVAL_SECONDS 0
#endif
#ifndef DEFAULT_RX_DELAY_BASE
#define DEFAULT_RX_DELAY_BASE 0.0f
#endif
#ifndef DEFAULT_MULTI_ACKS
#define DEFAULT_MULTI_ACKS 0
#endif
#ifndef DEFAULT_PATH_HASH_MODE
#define DEFAULT_PATH_HASH_MODE 0
#endif
#ifndef DEFAULT_LOOP_DETECT
#define DEFAULT_LOOP_DETECT LOOP_DETECT_OFF
#endif
#ifndef ADVERT_NAME
#define ADVERT_NAME "repeater"
#endif
#ifndef ADVERT_LAT
#define ADVERT_LAT 0.0
#endif
#ifndef ADVERT_LON
#define ADVERT_LON 0.0
#endif
#ifndef ADMIN_PASSWORD
#define ADMIN_PASSWORD "password"
#endif
#ifndef SERVER_RESPONSE_DELAY
#define SERVER_RESPONSE_DELAY 300
#endif
#ifndef TXT_ACK_DELAY
#define TXT_ACK_DELAY 200
#endif
#define FIRMWARE_VER_LEVEL 2
#define REQ_TYPE_GET_STATUS 0x01 // same as _GET_STATS
#define REQ_TYPE_KEEP_ALIVE 0x02
#define REQ_TYPE_GET_TELEMETRY_DATA 0x03
#define REQ_TYPE_GET_ACCESS_LIST 0x05
#define REQ_TYPE_GET_NEIGHBOURS 0x06
#define REQ_TYPE_GET_OWNER_INFO 0x07 // FIRMWARE_VER_LEVEL >= 2
#define RESP_SERVER_LOGIN_OK 0 // response to ANON_REQ
#define ANON_REQ_TYPE_REGIONS 0x01
#define ANON_REQ_TYPE_OWNER 0x02
#define ANON_REQ_TYPE_BASIC 0x03 // just remote clock
#define CLI_REPLY_DELAY_MILLIS 600
#define LAZY_CONTACTS_WRITE_DELAY 5000
#define FLOOD_CHANNEL_BLOCK_FILE "/flood_ch_block"
#define FLOOD_PACKET_FILTER_FILE "/flood_filter"
#define FLOOD_CHANNEL_SCOPE_FILE "/flood_ch_scope"
#define FLOOD_CHANNEL_SCOPE_TEMP_FILE "/flood_ch_scope.tmp"
#define FLOOD_GROUP_MODERATION_FILE "/flood_grp_mod"
#define CLOCK_SYNC_PREFS_FILE "/clock_sync"
#define FLOOD_PACKET_FILTER_LOGIN_PROTECTED_HOPS 7
#define FLOOD_PACKET_FILTER_TXT_MSG_PROTECTED_HOPS 5
#define DEFAULT_FLOOD_CHANNEL_BLOCK_NAME "#wardriving"
#ifndef DEFAULT_FLOOD_CHANNEL_BLOCK_HOPS
#define DEFAULT_FLOOD_CHANNEL_BLOCK_HOPS 4
#endif
#ifndef REPEATERS_CHANNEL_KEY_HEX
#define REPEATERS_CHANNEL_KEY_HEX "89db441e2814dccf0dbd2e8cc5f501a3"
#endif
#ifndef BATT_MIN_MILLIVOLTS
#define BATT_MIN_MILLIVOLTS 3000
#endif
#ifndef BATT_MAX_MILLIVOLTS
#define BATT_MAX_MILLIVOLTS 4200
#endif
#define LOW_BATTERY_MIN_VALID_MV 1000
#define LOW_BATTERY_STARTUP_DELAY (30ULL * 60ULL * 1000ULL)
#define LOW_BATTERY_CHECK_INTERVAL (30UL * 60UL * 1000UL)
#define LOW_BATTERY_ALERT_INTERVAL (12UL * 60UL * 60UL * 1000UL)
#define RX_INACTIVITY_WATCHDOG_INTERVAL (12UL * 60UL * 60UL * 1000UL)
#define CLOCK_SYNC_VALID_YEARS 10
enum ClockSyncSource : uint8_t {
CLOCK_SYNC_SOURCE_NONE = 0,
CLOCK_SYNC_SOURCE_MESH = 1,
CLOCK_SYNC_SOURCE_INTERNET = 2
};
enum ClockSyncResult : uint8_t {
CLOCK_SYNC_RESULT_WAITING = 0,
CLOCK_SYNC_RESULT_COLLECTING = 1,
CLOCK_SYNC_RESULT_INTERNET_PENDING = 2,
CLOCK_SYNC_RESULT_NO_CONSENSUS = 3,
CLOCK_SYNC_RESULT_INTERNET_UNAVAILABLE = 4,
CLOCK_SYNC_RESULT_WITHIN_DRIFT = 5,
CLOCK_SYNC_RESULT_CORRECTED_FORWARD = 6,
CLOCK_SYNC_RESULT_CORRECTED_BACKWARD = 7
};
static bool clockSyncLeapYear(uint16_t year) {
return (year % 4U == 0 && year % 100U != 0) || year % 400U == 0;
}
static uint32_t clockSyncMinimumValidEpoch() {
#if FIRMWARE_BUILD_EPOCH > 0
return (uint32_t)FIRMWARE_BUILD_EPOCH;
#else
static uint32_t minimum = 0;
if (minimum == 0) minimum = DateTime(__DATE__, __TIME__).unixtime();
return minimum;
#endif
}
static uint32_t clockSyncMaximumValidEpoch() {
static uint32_t maximum = 0;
if (maximum == 0) {
DateTime built(clockSyncMinimumValidEpoch());
uint16_t upper_year = built.year() + CLOCK_SYNC_VALID_YEARS;
uint8_t upper_day = built.day();
if (built.month() == 2 && upper_day == 29 && !clockSyncLeapYear(upper_year)) upper_day = 28;
maximum = DateTime(upper_year, built.month(), upper_day,
built.hour(), built.minute(), built.second()).unixtime();
}
return maximum;
}
static bool clockSyncEpochIsValid(uint32_t epoch) {
return epoch >= clockSyncMinimumValidEpoch() && epoch <= clockSyncMaximumValidEpoch();
}
// Channel encryption uses a 128-bit key, while MACThenDecrypt's shared-secret
// buffer is PUB_KEY_SIZE bytes. Keep the unused half zero-padded like GroupChannel.
static const uint8_t FLOOD_PUBLIC_CHANNEL_SECRET[PUB_KEY_SIZE] = {
0x8b, 0x33, 0x87, 0xe9, 0xc5, 0xcd, 0xea, 0x6a,
0xc9, 0xe5, 0xed, 0xba, 0xa1, 0x15, 0xcd, 0x72
};
static uint32_t nextRadioApplyRetryDelay(uint8_t& failure_count) {
uint8_t shift = failure_count < 5 ? failure_count : 5;
if (failure_count < 6) failure_count++;
uint32_t delay_ms = 1000UL << shift;
return delay_ms > 30000UL ? 30000UL : delay_ms;
}
static const char* skipLocalSpaces(const char* text) {
while (text != NULL && *text == ' ') text++;
return text;
}
static bool selectorIsEmpty(const char* text) {
text = skipLocalSpaces(text);
return text == NULL || *text == 0;
}
static bool selectorIsAll(const char* text) {
text = skipLocalSpaces(text);
if (text == NULL || memcmp(text, "all", 3) != 0) {
return false;
}
text += 3;
while (*text == ' ') text++;
return *text == 0;
}
static bool parsePositiveSelector(const char* text, int& value) {
text = skipLocalSpaces(text);
if (text == NULL || *text == 0) {
return false;
}
uint32_t n = 0;
bool saw_digit = false;
while (*text >= '0' && *text <= '9') {
saw_digit = true;
n = (n * 10) + (uint32_t)(*text - '0');
if (n > 32767) {
return false;
}
text++;
}
while (*text == ' ') text++;
if (!saw_digit || n == 0 || *text != 0) {
return false;
}
value = (int)n;
return true;
}
static bool bwMatches(float bw, float allowed) {
float diff = bw - allowed;
if (diff < 0.0f) diff = -diff;
return diff <= 0.001f;
}
static bool isValidLoRaBandwidth(float bw) {
#if defined(USE_LR1110)
return bwMatches(bw, 62.5f)
|| bwMatches(bw, 125.0f)
|| bwMatches(bw, 250.0f)
|| bwMatches(bw, 500.0f);
#elif defined(USE_LLCC68) || defined(USE_SX1272)
return bwMatches(bw, 125.0f)
|| bwMatches(bw, 250.0f)
|| bwMatches(bw, 500.0f);
#else
return bwMatches(bw, 7.8f)
|| bwMatches(bw, 10.4f)
|| bwMatches(bw, 15.6f)
|| bwMatches(bw, 20.8f)
|| bwMatches(bw, 31.25f)
|| bwMatches(bw, 41.7f)
|| bwMatches(bw, 62.5f)
|| bwMatches(bw, 125.0f)
|| bwMatches(bw, 250.0f)
|| bwMatches(bw, 500.0f);
#endif
}
static bool isValidScheduledRadioParams(float freq, float bw, uint8_t sf, uint8_t cr) {
return freq >= 150.0f && freq <= 2500.0f
&& isValidLoRaBandwidth(bw)
&& sf >= 5 && sf <= 12
&& cr >= 5 && cr <= 8;
}
static bool buildRepeatersChannel(mesh::GroupChannel& channel) {
const char* hex = REPEATERS_CHANNEL_KEY_HEX;
size_t hex_len = strlen(hex);
if (!(hex_len == 32 || hex_len == 64)) return false;
for (size_t i = 0; i < hex_len; i++) {
if (!mesh::Utils::isHexChar(hex[i])) return false;
}
memset(channel.secret, 0, sizeof(channel.secret));
size_t key_len = hex_len / 2;
if (!mesh::Utils::fromHex(channel.secret, key_len, hex)) return false;
mesh::Utils::sha256(channel.hash, sizeof(channel.hash), channel.secret, key_len);
return true;
}
static File openFloodChannelBlockRead(FILESYSTEM* fs, const char* filename) {
#if defined(RP2040_PLATFORM)
return fs->open(filename, "r");
#else
return fs->open(filename);
#endif
}
static File openFloodChannelBlockWrite(FILESYSTEM* fs, const char* filename) {
#if defined(NRF52_PLATFORM) || defined(STM32_PLATFORM)
fs->remove(filename);
return fs->open(filename, FILE_O_WRITE);
#elif defined(RP2040_PLATFORM)
return fs->open(filename, "w");
#else
return fs->open(filename, "w", true);
#endif
}
static uint8_t batteryPercentFromMilliVolts(uint16_t batt_mv) {
const int min_mv = BATT_MIN_MILLIVOLTS;
const int max_mv = BATT_MAX_MILLIVOLTS;
if (max_mv <= min_mv) return 100;
int pct = (((int)batt_mv - min_mv) * 100) / (max_mv - min_mv);
if (pct < 0) return 0;
if (pct > 100) return 100;
return (uint8_t)pct;
}
static bool parseBatteryAlertPercent(const char* value, uint8_t min_value, uint8_t max_value, uint8_t& result) {
if (value == NULL || *value == 0) {
return false;
}
uint16_t parsed = 0;
while (*value) {
if (*value < '0' || *value > '9') {
return false;
}
parsed = (uint16_t)(parsed * 10 + (*value - '0'));
if (parsed > max_value) {
return false;
}
value++;
}
if (parsed < min_value) {
return false;
}
result = (uint8_t)parsed;
return true;
}
static void formatFixed3(char* dest, size_t dest_len, float value) {
long scaled = (long)(value * 1000.0f + (value >= 0.0f ? 0.5f : -0.5f));
long whole = scaled / 1000;
long decimals = scaled % 1000;
if (decimals < 0) decimals = -decimals;
snprintf(dest, dest_len, "%ld.%03ld", whole, decimals);
}
void MyMesh::putNeighbour(const mesh::Identity &id, uint32_t timestamp, float snr) {
#if MAX_NEIGHBOURS // check if neighbours enabled
// find existing neighbour, else use least recently updated
uint32_t oldest_timestamp = 0xFFFFFFFF;
NeighbourInfo *neighbour = &neighbours[0];
for (int i = 0; i < MAX_NEIGHBOURS; i++) {
// if neighbour already known, we should update it
if (id.matches(neighbours[i].id)) {
neighbour = &neighbours[i];
break;
}
// otherwise we should update the least recently updated neighbour
if (neighbours[i].heard_timestamp < oldest_timestamp) {
neighbour = &neighbours[i];
oldest_timestamp = neighbour->heard_timestamp;
}
}
// update neighbour info
neighbour->id = id;
neighbour->advert_timestamp = timestamp;
neighbour->heard_timestamp = getRTCClock()->getCurrentTime();
neighbour->snr = (int8_t)(snr * 4);
#endif
}
uint8_t MyMesh::handleLoginReq(const mesh::Identity& sender, const uint8_t* secret, uint32_t sender_timestamp, const uint8_t* data, bool is_flood) {
ClientInfo* client = NULL;
if (strcmp((char *)data, _prefs.password) != 0) { // admin pw bypasses ACL (allows upgrade)
client = acl.getClient(sender.pub_key, PUB_KEY_SIZE);
if (client == NULL) {
#if MESH_DEBUG
MESH_DEBUG_PRINTLN("Login, sender not in ACL");
#endif
}
}
if (client == NULL) {
uint8_t perms;
if (strcmp((char *)data, _prefs.password) == 0) { // check for valid admin password
perms = PERM_ACL_ADMIN;
} else if (strcmp((char *)data, _prefs.guest_password) == 0) { // check guest password
perms = PERM_ACL_GUEST;
} else {
#if MESH_DEBUG
MESH_DEBUG_PRINTLN("Invalid password: %s", data);
#endif
return 0;
}
client = acl.putClient(sender, 0); // add to contacts (if not already known)
if (client == NULL) {
MESH_DEBUG_PRINTLN("Login rejected: ACL is full of protected contacts");
return 0;
}
if (sender_timestamp <= client->last_timestamp) {
MESH_DEBUG_PRINTLN("Possible login replay attack!");
return 0; // FATAL: client table is full -OR- replay attack
}
MESH_DEBUG_PRINTLN("Login success!");
client->last_timestamp = sender_timestamp;
client->last_activity = getRTCClock()->getCurrentTime();
client->permissions &= ~PERM_ACL_ROLE_MASK;
client->permissions |= perms;
memcpy(client->shared_secret, secret, PUB_KEY_SIZE);
if (perms != PERM_ACL_GUEST) { // keep number of FS writes to a minimum
dirty_contacts_expiry = futureMillis(LAZY_CONTACTS_WRITE_DELAY);
}
}
if (is_flood) {
client->out_path_len = OUT_PATH_UNKNOWN; // need to rediscover out_path
}
uint32_t now = getRTCClock()->getCurrentTimeUnique();
memcpy(reply_data, &now, 4); // response packets always prefixed with timestamp
reply_data[4] = RESP_SERVER_LOGIN_OK;
reply_data[5] = 0; // Legacy: was recommended keep-alive interval (secs / 16)
reply_data[6] = (client->isAdmin() || client->isRegionMgr() || client->isFilterMgr()) ? 1 : 0;
reply_data[7] = client->permissions;
getRNG()->random(&reply_data[8], 4); // random blob to help packet-hash uniqueness
reply_data[12] = FIRMWARE_VER_LEVEL; // New field
return 13; // reply length
}
// Comparison functions for qsort() - defined at file scope to avoid heap allocations
static int cmp_neighbours_newest_to_oldest(const void* a, const void* b) {
const NeighbourInfo* na = *(const NeighbourInfo**)a;
const NeighbourInfo* nb = *(const NeighbourInfo**)b;
if (nb->heard_timestamp > na->heard_timestamp) return 1;
if (nb->heard_timestamp < na->heard_timestamp) return -1;
return 0;
}
static int cmp_neighbours_oldest_to_newest(const void* a, const void* b) {
const NeighbourInfo* na = *(const NeighbourInfo**)a;
const NeighbourInfo* nb = *(const NeighbourInfo**)b;
if (na->heard_timestamp > nb->heard_timestamp) return 1;
if (na->heard_timestamp < nb->heard_timestamp) return -1;
return 0;
}
static int cmp_neighbours_strongest_to_weakest(const void* a, const void* b) {
const NeighbourInfo* na = *(const NeighbourInfo**)a;
const NeighbourInfo* nb = *(const NeighbourInfo**)b;
if (nb->snr > na->snr) return 1;
if (nb->snr < na->snr) return -1;
return 0;
}
static int cmp_neighbours_weakest_to_strongest(const void* a, const void* b) {
const NeighbourInfo* na = *(const NeighbourInfo**)a;
const NeighbourInfo* nb = *(const NeighbourInfo**)b;
if (na->snr > nb->snr) return 1;
if (na->snr < nb->snr) return -1;
return 0;
}
uint8_t MyMesh::handleAnonRegionsReq(const mesh::Identity& sender, uint32_t sender_timestamp, const uint8_t* data) {
if (anon_limiter.allow(rtc_clock.getCurrentTime())) {
// request data has: {reply-path-len}{reply-path}
reply_path_len = *data & 63;
reply_path_hash_size = (*data >> 6) + 1;
data++;
memcpy(reply_path, data, ((uint8_t)reply_path_len) * reply_path_hash_size);
// data += (uint8_t)reply_path_len * reply_path_hash_size;
memcpy(reply_data, &sender_timestamp, 4); // prefix with sender_timestamp, like a tag
uint32_t now = getRTCClock()->getCurrentTime();
memcpy(&reply_data[4], &now, 4); // include our clock (for easy clock sync, and packet hash uniqueness)
return 8 + region_map.exportNamesTo((char *) &reply_data[8], sizeof(reply_data) - 12, REGION_DENY_FLOOD); // reply length
}
return 0;
}
uint8_t MyMesh::handleAnonOwnerReq(const mesh::Identity& sender, uint32_t sender_timestamp, const uint8_t* data) {
if (anon_limiter.allow(rtc_clock.getCurrentTime())) {
// request data has: {reply-path-len}{reply-path}
reply_path_len = *data & 63;
reply_path_hash_size = (*data >> 6) + 1;
data++;
memcpy(reply_path, data, ((uint8_t)reply_path_len) * reply_path_hash_size);
// data += (uint8_t)reply_path_len * reply_path_hash_size;
memcpy(reply_data, &sender_timestamp, 4); // prefix with sender_timestamp, like a tag
uint32_t now = getRTCClock()->getCurrentTime();
memcpy(&reply_data[4], &now, 4); // include our clock (for easy clock sync, and packet hash uniqueness)
sprintf((char *) &reply_data[8], "%s\n%s", _prefs.node_name, _prefs.owner_info);
return 8 + strlen((char *) &reply_data[8]); // reply length
}
return 0;
}
uint8_t MyMesh::handleAnonClockReq(const mesh::Identity& sender, uint32_t sender_timestamp, const uint8_t* data) {
if (anon_limiter.allow(rtc_clock.getCurrentTime())) {
// request data has: {reply-path-len}{reply-path}
reply_path_len = *data & 63;
reply_path_hash_size = (*data >> 6) + 1;
data++;
memcpy(reply_path, data, ((uint8_t)reply_path_len) * reply_path_hash_size);
// data += (uint8_t)reply_path_len * reply_path_hash_size;
memcpy(reply_data, &sender_timestamp, 4); // prefix with sender_timestamp, like a tag
uint32_t now = getRTCClock()->getCurrentTime();
memcpy(&reply_data[4], &now, 4); // include our clock (for easy clock sync, and packet hash uniqueness)
reply_data[8] = 0; // features
#ifdef WITH_RS232_BRIDGE
reply_data[8] |= 0x01; // is bridge, type UART
#elif WITH_ESPNOW_BRIDGE
reply_data[8] |= 0x03; // is bridge, type ESP-NOW
#endif
if (_prefs.disable_fwd) { // is this repeater currently disabled
reply_data[8] |= 0x80; // is disabled
}
// TODO: add some kind of moving-window utilisation metric, so can query 'how busy' is this repeater
return 9; // reply length
}
return 0;
}
int MyMesh::handleRequest(ClientInfo *sender, uint32_t sender_timestamp, uint8_t *payload, size_t payload_len) {
// uint32_t now = getRTCClock()->getCurrentTimeUnique();
// memcpy(reply_data, &now, 4); // response packets always prefixed with timestamp
memcpy(reply_data, &sender_timestamp, 4); // reflect sender_timestamp back in response packet (kind of like a 'tag')
if (payload[0] == REQ_TYPE_GET_STATUS) { // guests can also access this now
RepeaterStats stats;
stats.batt_milli_volts = board.getBattMilliVolts();
stats.curr_tx_queue_len = _mgr->getOutboundCount(0xFFFFFFFF);
stats.noise_floor = (int16_t)_radio->getNoiseFloor();
stats.last_rssi = (int16_t)radio_driver.getLastRSSI();
stats.n_packets_recv = radio_driver.getPacketsRecv();
stats.n_packets_sent = radio_driver.getPacketsSent();
stats.total_air_time_secs = getTotalAirTime() / 1000;
stats.total_up_time_secs = uptime_millis / 1000;
stats.n_sent_flood = getNumSentFlood();
stats.n_sent_direct = getNumSentDirect();
stats.n_recv_flood = getNumRecvFlood();
stats.n_recv_direct = getNumRecvDirect();
stats.err_events = _err_flags;
stats.last_snr = (int16_t)(radio_driver.getLastSNR() * 4);
stats.n_direct_dups = ((SimpleMeshTables *)getTables())->getNumDirectDups();
stats.n_flood_dups = ((SimpleMeshTables *)getTables())->getNumFloodDups();
stats.total_rx_air_time_secs = getReceiveAirTime() / 1000;
stats.n_recv_errors = radio_driver.getPacketsRecvErrors();
memcpy(&reply_data[4], &stats, sizeof(stats));
return 4 + sizeof(stats); // reply_len
}
if (payload[0] == REQ_TYPE_GET_TELEMETRY_DATA) {
uint8_t perm_mask = ~(payload[1]); // NEW: first reserved byte (of 4), is now inverse mask to apply to permissions
telemetry.reset();
telemetry.addVoltage(TELEM_CHANNEL_SELF, (float)board.getBattMilliVolts() / 1000.0f);
// query other sensors -- target specific
if ((sender->permissions & PERM_ACL_ROLE_MASK) == PERM_ACL_GUEST) {
perm_mask = 0x00; // just base telemetry allowed
}
sensors.querySensors(perm_mask, telemetry);
// This default temperature will be overridden by external sensors (if any)
float temperature = board.getMCUTemperature();
if(!isnan(temperature)) { // Supported boards with built-in temperature sensor. ESP32-C3 may return NAN
telemetry.addTemperature(TELEM_CHANNEL_SELF, temperature); // Built-in MCU Temperature
}
uint8_t tlen = telemetry.getSize();
memcpy(&reply_data[4], telemetry.getBuffer(), tlen);
return 4 + tlen; // reply_len
}
if (payload[0] == REQ_TYPE_GET_ACCESS_LIST && sender->isAdmin()) {
uint8_t res1 = payload[1]; // reserved for future (extra query params)
uint8_t res2 = payload[2];
if (res1 == 0 && res2 == 0) {
uint8_t ofs = 4;
for (int i = 0; i < acl.getNumClients() && ofs + 7 <= sizeof(reply_data) - 4; i++) {
auto c = acl.getClientByIdx(i);
if (c->permissions == 0) continue; // skip deleted entries
memcpy(&reply_data[ofs], c->id.pub_key, 6); ofs += 6; // just 6-byte pub_key prefix
reply_data[ofs++] = c->permissions;
}
return ofs;
}
}
if (payload[0] == REQ_TYPE_GET_NEIGHBOURS) {
uint8_t request_version = payload[1];
if (request_version == 0) {
// reply data offset (after response sender_timestamp/tag)
int reply_offset = 4;
// get request params
uint8_t count = payload[2]; // how many neighbours to fetch (0-255)
uint16_t offset;
memcpy(&offset, &payload[3], 2); // offset from start of neighbours list (0-65535)
uint8_t order_by = payload[5]; // how to order neighbours. 0=newest_to_oldest, 1=oldest_to_newest, 2=strongest_to_weakest, 3=weakest_to_strongest
uint8_t pubkey_prefix_length = payload[6]; // how many bytes of neighbour pub key we want
// we also send a 4 byte random blob in payload[7...10] to help packet uniqueness
MESH_DEBUG_PRINTLN("REQ_TYPE_GET_NEIGHBOURS count=%d, offset=%d, order_by=%d, pubkey_prefix_length=%d", count, offset, order_by, pubkey_prefix_length);
// clamp pub key prefix length to max pub key length
if(pubkey_prefix_length > PUB_KEY_SIZE){
pubkey_prefix_length = PUB_KEY_SIZE;
MESH_DEBUG_PRINTLN("REQ_TYPE_GET_NEIGHBOURS invalid pubkey_prefix_length=%d clamping to %d", pubkey_prefix_length, PUB_KEY_SIZE);
}
// Early exit if no neighbours to avoid unnecessary processing
int16_t neighbours_count = 0;
#if MAX_NEIGHBOURS
NeighbourInfo* sorted_neighbours[MAX_NEIGHBOURS];
#endif
for (int i = 0; i < MAX_NEIGHBOURS; i++) {
if (neighbours[i].heard_timestamp > 0) {
neighbours_count++;
}
}
if (neighbours_count == 0) {
// No neighbours - return minimal response
memcpy(&reply_data[reply_offset], &neighbours_count, 2); reply_offset += 2;
uint16_t zero = 0;
memcpy(&reply_data[reply_offset], &zero, 2); reply_offset += 2; // results_count = 0
return reply_offset;
}
// create copy of neighbours list, skipping empty entries so we can sort it separately from main list
int16_t sorted_idx = 0;
for (int i = 0; i < MAX_NEIGHBOURS; i++) {
auto neighbour = &neighbours[i];
if (neighbour->heard_timestamp > 0) {
sorted_neighbours[sorted_idx++] = neighbour;
}
}
// Sort neighbours based on order using qsort() - standard C library function
// qsort() doesn't allocate heap memory (uses stack-based recursion) and is O(n log n)
// This matches the pattern used elsewhere in the codebase (e.g., BaseChatMesh)
if (order_by == 0) {
// sort by newest to oldest
qsort(sorted_neighbours, neighbours_count, sizeof(NeighbourInfo*), cmp_neighbours_newest_to_oldest);
} else if (order_by == 1) {
// sort by oldest to newest
qsort(sorted_neighbours, neighbours_count, sizeof(NeighbourInfo*), cmp_neighbours_oldest_to_newest);
} else if (order_by == 2) {
// sort by strongest to weakest
qsort(sorted_neighbours, neighbours_count, sizeof(NeighbourInfo*), cmp_neighbours_strongest_to_weakest);
} else if (order_by == 3) {
// sort by weakest to strongest
qsort(sorted_neighbours, neighbours_count, sizeof(NeighbourInfo*), cmp_neighbours_weakest_to_strongest);
}
// build results buffer
int results_count = 0;
int results_offset = 0;
uint8_t results_buffer[130];
for(int index = 0; index < count && index + offset < neighbours_count; index++){
// stop if we can't fit another entry in results
int entry_size = pubkey_prefix_length + 4 + 1;
if(results_offset + entry_size > sizeof(results_buffer)){
MESH_DEBUG_PRINTLN("REQ_TYPE_GET_NEIGHBOURS no more entries can fit in results buffer");
break;
}
#if MAX_NEIGHBOURS
// add next neighbour to results
auto neighbour = sorted_neighbours[index + offset];
uint32_t heard_seconds_ago = getRTCClock()->getCurrentTime() - neighbour->heard_timestamp;
memcpy(&results_buffer[results_offset], neighbour->id.pub_key, pubkey_prefix_length); results_offset += pubkey_prefix_length;
memcpy(&results_buffer[results_offset], &heard_seconds_ago, 4); results_offset += 4;
memcpy(&results_buffer[results_offset], &neighbour->snr, 1); results_offset += 1;
results_count++;
#endif
}
// build reply
MESH_DEBUG_PRINTLN("REQ_TYPE_GET_NEIGHBOURS neighbours_count=%d results_count=%d", neighbours_count, results_count);
memcpy(&reply_data[reply_offset], &neighbours_count, 2); reply_offset += 2;
memcpy(&reply_data[reply_offset], &results_count, 2); reply_offset += 2;
memcpy(&reply_data[reply_offset], &results_buffer, results_offset); reply_offset += results_offset;
return reply_offset;
}
} else if (payload[0] == REQ_TYPE_GET_OWNER_INFO) {
sprintf((char *) &reply_data[4], "%s\n%s\n%s", FIRMWARE_VERSION, _prefs.node_name, _prefs.owner_info);
return 4 + strlen((char *) &reply_data[4]);
}
return 0; // unknown command
}
mesh::Packet *MyMesh::createSelfAdvert() {
uint8_t app_data[MAX_ADVERT_DATA_SIZE];
uint8_t app_data_len = _cli.buildAdvertData(ADV_TYPE_REPEATER, app_data);
return createAdvert(self_id, app_data, app_data_len);
}
File MyMesh::openAppend(const char *fname) {
#if defined(NRF52_PLATFORM) || defined(STM32_PLATFORM)
return _fs->open(fname, FILE_O_WRITE);
#elif defined(RP2040_PLATFORM)
return _fs->open(fname, "a");
#else
return _fs->open(fname, "a", true);
#endif
}
static uint8_t max_loop_minimal[] = { 0, /* 1-byte */ 4, /* 2-byte */ 2, /* 3-byte */ 1 };
static uint8_t max_loop_moderate[] = { 0, /* 1-byte */ 2, /* 2-byte */ 1, /* 3-byte */ 1 };
static uint8_t max_loop_strict[] = { 0, /* 1-byte */ 1, /* 2-byte */ 1, /* 3-byte */ 1 };
bool MyMesh::isLooped(const mesh::Packet* packet, const uint8_t max_counters[]) {
uint8_t hash_size = packet->getPathHashSize();
uint8_t hash_count = packet->getPathHashCount();
uint8_t n = 0;
const uint8_t* path = packet->path;
while (hash_count > 0) { // count how many times this node is already in the path
if (self_id.isHashMatch(path, hash_size)) n++;
hash_count--;
path += hash_size;
}
return n >= max_counters[hash_size];
}
void MyMesh::sendFloodReply(mesh::Packet* packet, unsigned long delay_millis, uint8_t path_hash_size) {
if (recv_pkt_region && !recv_pkt_region->isWildcard()) { // if _request_ packet scope is known, send reply with same scope
TransportKey scope;
if (region_map.getTransportKeysFor(*recv_pkt_region, &scope, 1) > 0) {
sendFloodScoped(scope, packet, delay_millis, path_hash_size);
} else {
sendFlood(packet, delay_millis, path_hash_size); // send un-scoped
}
} else {
sendFlood(packet, delay_millis, path_hash_size); // send un-scoped
}
}
static bool directPathsEqual(const uint8_t* a_path, uint8_t a_len, const uint8_t* b_path, uint8_t b_len) {
if (!mesh::Packet::isValidPathLen(a_len) || !mesh::Packet::isValidPathLen(b_len) || a_len != b_len) {
return false;
}
uint8_t hash_count = a_len & 63;
uint8_t hash_size = (a_len >> 6) + 1;
uint8_t byte_len = hash_count * hash_size;
return byte_len == 0 || memcmp(a_path, b_path, byte_len) == 0;
}
void MyMesh::sendClientReply(ClientInfo* client, mesh::Packet* packet, unsigned long delay_millis, uint8_t path_hash_size) {
if (packet == NULL) {
return;
}
if (client == NULL || !mesh::Packet::isValidPathLen(client->out_path_len)) {
sendFloodReply(packet, delay_millis, path_hash_size);
return;
}
mesh::Packet* alt = NULL;
if (mesh::Packet::isValidPathLen(client->alt_path_len)
&& !directPathsEqual(client->out_path, client->out_path_len, client->alt_path, client->alt_path_len)) {
alt = obtainNewPacket();
if (alt != NULL) {
*alt = *packet;
} else {
MESH_DEBUG_PRINTLN("sendClientReply: altpath packet pool empty");
}
}
sendDirect(packet, client->out_path, client->out_path_len, delay_millis);
if (alt != NULL) {
uint8_t direct_retry_enabled = _prefs.direct_retry_enabled;
_prefs.direct_retry_enabled = 0;
sendDirect(alt, client->alt_path, client->alt_path_len, delay_millis);
_prefs.direct_retry_enabled = direct_retry_enabled;
}
}
uint8_t MyMesh::resolveFloodChannelBlockHops(uint8_t max_hops) const {
return max_hops == FLOOD_CHANNEL_BLOCK_HOPS_INHERIT ? _prefs.flood_channel_block_max_hops : max_hops;
}
bool MyMesh::floodChannelBlockHopApplies(const mesh::Packet* packet, uint8_t max_hops) const {
if (packet == NULL) {
return false;
}
max_hops = resolveFloodChannelBlockHops(max_hops);
return max_hops == FLOOD_CHANNEL_BLOCK_HOPS_ALL || packet->getPathHashCount() > max_hops;
}
bool MyMesh::floodChannelDataHopApplies(const mesh::Packet* packet) const {
if (packet == NULL) {
return false;
}
uint8_t max_hops = _prefs.flood_channel_data_max_hops;
return max_hops == FLOOD_CHANNEL_BLOCK_HOPS_ALL || packet->getPathHashCount() > max_hops;
}
bool MyMesh::floodChannelBlockMatches(const FloodChannelBlockEntry& entry, const mesh::Packet* packet) const {
if (!entry.active || packet == NULL || !packet->isRouteFlood()) {
return false;
}
if (!floodChannelBlockHopApplies(packet, entry.max_hops)) {
return false;
}
uint8_t type = packet->getPayloadType();
if (type != PAYLOAD_TYPE_GRP_TXT && type != PAYLOAD_TYPE_GRP_DATA) {
return false;
}
if (packet->payload_len <= PATH_HASH_SIZE + CIPHER_MAC_SIZE || packet->payload[0] != entry.hash_prefix[0]) {
return false;
}
uint8_t data[MAX_PACKET_PAYLOAD];
int len = mesh::Utils::MACThenDecrypt(entry.secret, data, &packet->payload[PATH_HASH_SIZE],
packet->payload_len - PATH_HASH_SIZE);
return len > 0;
}
bool MyMesh::shouldBlockFloodChannelForward(const mesh::Packet* packet) const {
for (int i = 0; i < FLOOD_CHANNEL_BLOCK_SLOTS; i++) {
if (floodChannelBlockMatches(flood_channel_blocks[i], packet)) {
MESH_DEBUG_PRINTLN("allowPacketForward: flood.channel.block matched slot=%d name=%s hops=%d",
i + 1, flood_channel_blocks[i].name, packet->getPathHashCount());
return true;
}
}
return false;
}
bool MyMesh::allowPacketForward(const mesh::Packet *packet) {
if (_prefs.disable_fwd) return false;
if (packet->isRouteFlood()) {
const bool trace = packet->getPayloadType() == PAYLOAD_TYPE_TRACE;
if (packet->getPathHashCount() >= _prefs.flood_max) return false;
if (!trace && packet->getRouteType() == ROUTE_TYPE_FLOOD
&& packet->getPathHashCount() >= _prefs.flood_max_unscoped) return false;
if (packet->getPayloadType() == PAYLOAD_TYPE_ADVERT && packet->getPathHashCount() >= _prefs.flood_max_advert) return false;
#if !defined(PORTABLE_MQTT_OBSERVER)
if (!_prefs.flood_channel_data_enabled
&& packet->getPayloadType() == PAYLOAD_TYPE_GRP_DATA
&& floodChannelDataHopApplies(packet)) {
MESH_DEBUG_PRINTLN("allowPacketForward: flood.channel.data off, blocking GRP_DATA hops=%d",
packet->getPathHashCount());
return false;
}
if (shouldBlockFloodPacketForward(packet)) return false;
if (shouldBlockFloodChannelForward(packet)) return false;
#endif
}
if (packet->isRouteFlood() && packet->getPayloadType() != PAYLOAD_TYPE_TRACE
&& recv_pkt_region == NULL) {
MESH_DEBUG_PRINTLN("allowPacketForward: unknown transport code, or wildcard not allowed for FLOOD packet");
return false;
}
if (packet->isRouteFlood() && _prefs.loop_detect != LOOP_DETECT_OFF) {
const uint8_t* maximums;
if (_prefs.loop_detect == LOOP_DETECT_MINIMAL) {
maximums = max_loop_minimal;
} else if (_prefs.loop_detect == LOOP_DETECT_MODERATE) {
maximums = max_loop_moderate;
} else {
maximums = max_loop_strict;
}
if (isLooped(packet, maximums)) {
MESH_DEBUG_PRINTLN("allowPacketForward: FLOOD packet loop detected!");
return false;
}
}
// Moderation has rate-counter side effects, so evaluate it only after every
// other forwarding gate has accepted the packet. Quota is then spent only
// for a message this repeater will actually retransmit.
#if !defined(PORTABLE_MQTT_OBSERVER)
if (packet->isRouteFlood() && shouldBlockFloodGroupTextForward(packet)) return false;
// Clock evidence is collected only after every forwarding filter accepts the
// packet. Blocked regions, moderated users, hop/type rules, and looped packets
// therefore cannot influence the estimate.
recordAcceptedFloodClockSample(packet);
#endif
return true;
}
const char *MyMesh::getLogDateTime() {
static char tmp[32];
uint32_t now = getRTCClock()->getCurrentTime();
DateTime dt = DateTime(now);
sprintf(tmp, "%02d:%02d:%02d - %d/%d/%d U", dt.hour(), dt.minute(), dt.second(), dt.day(), dt.month(),
dt.year());
return tmp;
}
void MyMesh::logRxRaw(float snr, float rssi, const uint8_t raw[], int len) {
#if MESH_PACKET_LOGGING
if (Serial.availableForWrite() > 0) {
Serial.print(getLogDateTime());
Serial.print(" RAW: ");
mesh::Utils::printHex(Serial, raw, len);
Serial.println();
}
#endif
#ifdef WITH_MQTT_BRIDGE
if (_prefs.bridge_enabled) {
// Store raw radio data for MQTT messages
if (mqtt_bridge) mqtt_bridge->storeRawRadioData(raw, len, snr, rssi);
}
#endif
}
void MyMesh::logRx(mesh::Packet *pkt, int len, float score) {
#ifdef WITH_MQTT_BRIDGE
// MQTT bridge: always feed RX packets - bridge decides based on mqtt.rx setting
if (mqtt_bridge) mqtt_bridge->onPacketReceived(pkt);
#elif defined(WITH_BRIDGE)
// Non-MQTT bridge: use bridge.source setting
if (_prefs.bridge_pkt_src == 1) {
activeBridge()->sendPacket(pkt);
}
#endif
if (_logging) {
File f = openAppend(PACKET_LOG_FILE);
if (f) {
f.print(getLogDateTime());
f.printf(": RX, len=%d (type=%d, route=%s, payload_len=%d) SNR=%d RSSI=%d score=%d", len,
pkt->getPayloadType(), pkt->isRouteDirect() ? "D" : "F", pkt->payload_len,
(int)_radio->getLastSNR(), (int)_radio->getLastRSSI(), (int)(score * 1000));
if (pkt->getPayloadType() == PAYLOAD_TYPE_PATH || pkt->getPayloadType() == PAYLOAD_TYPE_REQ ||
pkt->getPayloadType() == PAYLOAD_TYPE_RESPONSE || pkt->getPayloadType() == PAYLOAD_TYPE_TXT_MSG) {
f.printf(" [%02X -> %02X]\n", (uint32_t)pkt->payload[1], (uint32_t)pkt->payload[0]);
} else {
f.printf("\n");
}
f.close();
}
}
}
void MyMesh::logTx(mesh::Packet *pkt, int len) {
#ifdef WITH_MQTT_BRIDGE
// MQTT bridge: always feed TX packets - bridge decides based on mqtt.tx setting
if (mqtt_bridge) mqtt_bridge->sendPacket(pkt);
#elif defined(WITH_BRIDGE)
// Non-MQTT bridge: use bridge.source setting
if (_prefs.bridge_pkt_src == 0) {
activeBridge()->sendPacket(pkt);
}
#endif
if (_logging) {
File f = openAppend(PACKET_LOG_FILE);
if (f) {
f.print(getLogDateTime());
f.printf(": TX, len=%d (type=%d, route=%s, payload_len=%d)", len, pkt->getPayloadType(),
pkt->isRouteDirect() ? "D" : "F", pkt->payload_len);
if (pkt->getPayloadType() == PAYLOAD_TYPE_PATH || pkt->getPayloadType() == PAYLOAD_TYPE_REQ ||
pkt->getPayloadType() == PAYLOAD_TYPE_RESPONSE || pkt->getPayloadType() == PAYLOAD_TYPE_TXT_MSG) {
f.printf(" [%02X -> %02X]\n", (uint32_t)pkt->payload[1], (uint32_t)pkt->payload[0]);
} else {
f.printf("\n");
}
f.close();
}
}
}
void MyMesh::logTxFail(mesh::Packet *pkt, int len) {
if (_logging) {
File f = openAppend(PACKET_LOG_FILE);
if (f) {
f.print(getLogDateTime());
f.printf(": TX FAIL!, len=%d (type=%d, route=%s, payload_len=%d)\n", len, pkt->getPayloadType(),
pkt->isRouteDirect() ? "D" : "F", pkt->payload_len);
f.close();
}
}
}
int MyMesh::calcRxDelay(float score, uint32_t air_time) const {
if (_prefs.rx_delay_base <= 0.0f) return 0;
return (int)((pow(_prefs.rx_delay_base, 0.85f - score) - 1.0) * air_time);
}
uint32_t MyMesh::getRetransmitDelay(const mesh::Packet *packet) {
uint32_t t = (_radio->getEstAirtimeFor(packet->getPathByteLen() + packet->payload_len + 2) * _prefs.tx_delay_factor);
return getRNG()->nextInt(0, 5*t + 1);
}
uint32_t MyMesh::getDirectRetransmitDelay(const mesh::Packet *packet) {
uint32_t t = (_radio->getEstAirtimeFor(packet->getPathByteLen() + packet->payload_len + 2) * _prefs.direct_tx_delay_factor);
return getRNG()->nextInt(0, 5*t + 1);
}
void MyMesh::onRetryConfigChanged() {
if (!_prefs.direct_retry_enabled) cancelAllDirectRetries();
if (_prefs.disable_fwd || _prefs.flood_retry_attempts == 0) cancelAllFloodRetries();
}
bool MyMesh::extractDirectRetryPrefix(const mesh::Packet* packet, uint8_t* prefix, uint8_t& prefix_len) const {
if (packet == NULL || !packet->isRouteDirect() || packet->getPathHashCount() == 0) {
return false;
}
prefix_len = packet->getPathHashSize();
memcpy(prefix, packet->path, prefix_len);
return true;
}
static bool isDirectShortcutPayload(const mesh::Packet* packet) {
if (packet == NULL || !packet->isRouteDirect()) {
return false;
}
switch (packet->getPayloadType()) {
case PAYLOAD_TYPE_PATH:
case PAYLOAD_TYPE_REQ:
case PAYLOAD_TYPE_RESPONSE:
case PAYLOAD_TYPE_TXT_MSG:
case PAYLOAD_TYPE_ANON_REQ:
return true;
default:
return false;
}
}
bool MyMesh::maybeShortCircuitDirect(mesh::Packet* packet) {
if (!isDirectShortcutPayload(packet)) {
return false;
}
uint8_t hash_size = packet->getPathHashSize();
uint8_t hash_count = packet->getPathHashCount();
if (hash_size == 0 || hash_size > MAX_ROUTE_HASH_BYTES || hash_count < 3) {
return false;
}
int self_idx = -1;
for (uint8_t i = 1; i + 1 < hash_count; i++) {
if (self_id.isHashMatch(&packet->path[i * hash_size], hash_size)) {
self_idx = i;
break;
}
}
if (self_idx < 1) {
return false;
}
const SimpleMeshTables* tables = static_cast<const SimpleMeshTables*>(getTables());
if (tables == NULL) {
return false;
}
const uint8_t* previous_hop = &packet->path[(self_idx - 1) * hash_size];
const uint8_t* next_hop = &packet->path[(self_idx + 1) * hash_size];
if (tables->findRecentRepeaterByHash(previous_hop, hash_size) == NULL
|| tables->findRecentRepeaterByHash(next_hop, hash_size) == NULL) {
return false;
}
uint8_t remaining_count = hash_count - (uint8_t)self_idx;
memmove(packet->path, &packet->path[self_idx * hash_size], remaining_count * hash_size);
packet->setPathHashCount(remaining_count);
MESH_DEBUG_PRINTLN("direct shortcut: skipped %u planned hop(s), remaining=%u",
(uint32_t)self_idx,
(uint32_t)remaining_count);
return true;
}
int8_t MyMesh::getDirectRetryMinSNRX4() const {
switch (active_sf) {
case 7: return -30;
case 8: return -40;
case 9: return -50;
case 10: return -60;
case 11: return -70;
case 12: return -80;
default: return -60;
}
}
uint8_t MyMesh::getDirectRetryCodingRateForSNR(int8_t snr_x4) const {
if (!_prefs.direct_retry_cr_enabled) return 0;
if (snr_x4 >= _prefs.direct_retry_cr4_snr_x4) return 4;
if (snr_x4 >= _prefs.direct_retry_cr5_snr_x4) return 5;
if (snr_x4 <= _prefs.direct_retry_cr8_snr_x4) return 8;
if (snr_x4 >= _prefs.direct_retry_cr7_snr_x4) return 7;
return 7;
}
uint8_t MyMesh::getDirectRetryConfiguredMaxAttempts() const {
return constrain(_prefs.direct_retry_attempts, 1, 15);
}
uint32_t MyMesh::getDirectRetryAttemptStepMillis() const {
return _prefs.direct_retry_step_ms;
}
bool MyMesh::allowDirectRetry(const mesh::Packet* packet, const uint8_t* next_hop_hash, uint8_t next_hop_hash_len) const {
(void)packet;
if (!_prefs.direct_retry_enabled) {
return false;
}
if (!_prefs.direct_retry_recent_enabled) {
return true;
}
if (next_hop_hash == NULL || next_hop_hash_len == 0) {
return true;
}
const SimpleMeshTables* tables = static_cast<const SimpleMeshTables*>(getTables());
const SimpleMeshTables::RecentRepeaterInfo* repeater = tables != NULL
? tables->findRecentRepeaterByHash(next_hop_hash, next_hop_hash_len)
: NULL;
if (repeater == NULL) {
// Retry unknown repeaters too. If they fail, onDirectRetryFailed() seeds the
// recent-repeater table below the +3.00 dB starting point.
return true;
}
int16_t retry_floor_x4 = (int16_t)getDirectRetryMinSNRX4() + (int16_t)_prefs.direct_retry_snr_margin_x4;
return (int16_t)repeater->snr_x4 >= retry_floor_x4;
}
void MyMesh::configureDirectRetryPacket(mesh::Packet* retry, const mesh::Packet* original, uint8_t retry_attempt) {
int8_t snr_x4 = 12; // unknown repeaters start at +3.00 dB
const SimpleMeshTables* tables = static_cast<const SimpleMeshTables*>(getTables());
if (tables != NULL) {
uint8_t prefix[MAX_HASH_SIZE];
uint8_t prefix_len = 0;
if (extractDirectRetryPrefix(original, prefix, prefix_len)) {
const SimpleMeshTables::RecentRepeaterInfo* repeater = tables->findRecentRepeaterByHash(prefix, prefix_len);
if (repeater != NULL) {
snr_x4 = repeater->snr_x4;
}
}
}
retry->tx_cr = getDirectRetryCodingRateForAttempt(getDirectRetryCodingRateForSNR(snr_x4), retry_attempt);
}
uint32_t MyMesh::getDirectRetryEchoDelay(const mesh::Packet* packet) const {
uint32_t base_wait_millis = constrain((uint32_t)_prefs.direct_retry_base_ms, (uint32_t)10, (uint32_t)5000);
if (packet == NULL) {
return base_wait_millis;
}
// Use the driver's LoRa airtime calculation for the echo window.
return base_wait_millis + getDirectRetryPacketAirtimeDelay(packet);
}
static uint8_t decodeDirectRetryTraceHashSize(uint8_t flags, uint8_t route_bytes) {
uint8_t code = flags & 0x03;
uint8_t size_pow2 = (uint8_t)(1U << code);
uint8_t size_linear = (uint8_t)(code + 1U);
bool pow2_ok = size_pow2 > 0 && (route_bytes % size_pow2) == 0;
bool linear_ok = size_linear > 0 && (route_bytes % size_linear) == 0;
if (pow2_ok && !linear_ok) return size_pow2;
if (linear_ok && !pow2_ok) return size_linear;
if (pow2_ok) return size_pow2;
return size_linear;
}
uint8_t MyMesh::getDirectRetryMaxAttempts(const mesh::Packet* packet) const {
if (packet != NULL && packet->getPayloadType() == PAYLOAD_TYPE_TXT_MSG) {
return 21;
}
uint8_t configured_attempts = getDirectRetryConfiguredMaxAttempts();
uint8_t total_hops = 0;
if (packet != NULL) {
if (packet->isRouteDirect() && packet->getPayloadType() == PAYLOAD_TYPE_TRACE && packet->payload_len >= 9) {
uint8_t route_bytes = packet->payload_len - 9;
uint8_t hash_size = decodeDirectRetryTraceHashSize(packet->payload[8], route_bytes);
if (hash_size > 0) {
total_hops = (uint8_t)(route_bytes / hash_size);
}
} else {
total_hops = packet->getPathHashCount();
}
}
uint8_t path_cap = 15;
if (total_hops <= 3) {
path_cap = 8;
} else if (total_hops == 4) {
path_cap = 12;
}
return configured_attempts < path_cap ? configured_attempts : path_cap;
}
uint32_t MyMesh::getDirectRetryAttemptDelay(const mesh::Packet* packet, uint8_t attempt_idx) {
uint32_t retry_delay = getDirectRetryEchoDelay(packet) + ((uint32_t)attempt_idx * getDirectRetryAttemptStepMillis());
if (packet == NULL) {
return retry_delay;
}
return getDirectRetransmitDelay(packet) + retry_delay;
}
static void formatDirectRetryTarget(char* dest, size_t dest_len, const uint8_t* target_hash, uint8_t target_hash_len) {
if (dest == NULL || dest_len == 0) {
return;
}
if (target_hash == NULL || target_hash_len == 0 || target_hash_len > MAX_HASH_SIZE) {
StrHelper::strncpy(dest, "-", dest_len);
return;
}
size_t hex_len = (size_t)target_hash_len * 2;
if (dest_len <= hex_len) {
StrHelper::strncpy(dest, "-", dest_len);
return;
}
mesh::Utils::toHex(dest, target_hash, target_hash_len);
dest[hex_len] = 0;
}
static uint8_t getRetryLogCodingRate(const mesh::Packet* packet, uint8_t default_cr) {
if (packet != NULL && packet->tx_cr >= 4 && packet->tx_cr <= 8) {
return packet->tx_cr;
}
return default_cr;
}
static uint16_t getRetryLogPreambleLength(const mesh::Packet* packet, uint16_t default_preamble_len) {
if (packet != NULL && packet->tx_cr >= 4 && packet->tx_cr <= 8) {
return 32;
}
return default_preamble_len;
}
void MyMesh::onDirectRetryEvent(const char* event, const mesh::Packet* packet, uint32_t delay_millis, uint8_t retry_attempt,
const uint8_t* target_hash, uint8_t target_hash_len, int16_t payload_type) {
#if defined(PORTABLE_MQTT_OBSERVER)
(void)event; (void)packet; (void)delay_millis; (void)retry_attempt;
(void)target_hash; (void)target_hash_len; (void)payload_type;
return;
#endif
char type_label[8];
char target_label[(MAX_HASH_SIZE * 2) + 1];
const char* route_label = packet != NULL ? (packet->isRouteDirect() ? "D" : "F") : "D";
if (packet != NULL) {
snprintf(type_label, sizeof(type_label), "%u", (uint32_t)packet->getPayloadType());
} else if (payload_type >= 0) {
snprintf(type_label, sizeof(type_label), "%u", (uint32_t)payload_type);
} else {
strcpy(type_label, "?");
}
formatDirectRetryTarget(target_label, sizeof(target_label), target_hash, target_hash_len);
uint8_t log_cr = getRetryLogCodingRate(packet, getDefaultTxCodingRate());
uint16_t log_preamble_len = getRetryLogPreambleLength(packet, radio_driver.getDefaultPreambleLength());
#if MESH_DEBUG
MESH_DEBUG_PRINTLN("direct retry %s attempt=%u delay=%lu type=%s route=%s target=%s cr=%u preamble_len=%u",
event ? event : "?",
(uint32_t)retry_attempt,
(unsigned long)delay_millis,
type_label,
route_label,
target_label,
(uint32_t)log_cr,
(uint32_t)log_preamble_len);
#endif
if (_logging) {
File f = openAppend(PACKET_LOG_FILE);
if (f) {
f.print(getLogDateTime());
f.printf(": direct retry %s attempt=%u delay=%lu type=%s route=%s target=%s cr=%u preamble_len=%u\n",
event ? event : "?",
(uint32_t)retry_attempt,
(unsigned long)delay_millis,
type_label,
route_label,
target_label,
(uint32_t)log_cr,
(uint32_t)log_preamble_len);
f.close();
}
}
}
void MyMesh::onDirectRetryFailed(const uint8_t* next_hop_hash, uint8_t next_hop_hash_len) {
if (next_hop_hash == NULL || next_hop_hash_len == 0) {
return;
}
SimpleMeshTables* tables = static_cast<SimpleMeshTables*>(getTables());
if (tables != NULL) {
if (!tables->decrementRecentRepeaterSnrX4(next_hop_hash, next_hop_hash_len, 1)) {
tables->setRecentRepeater(next_hop_hash, next_hop_hash_len, 11);
}
}
}
void MyMesh::onDirectRetrySucceeded(const uint8_t* next_hop_hash, uint8_t next_hop_hash_len, int8_t snr_x4) {
if (next_hop_hash == NULL || next_hop_hash_len == 0) {
return;
}
SimpleMeshTables* tables = static_cast<SimpleMeshTables*>(getTables());
if (tables != NULL) {
tables->setRecentRepeater(next_hop_hash, next_hop_hash_len, snr_x4);
}
}
bool MyMesh::hasFloodRetryPrefixes() const {
for (int i = 0; i < FLOOD_RETRY_PREFIX_SLOTS; i++) {
const uint8_t* configured = _prefs.flood_retry_prefixes[i];
if (configured[0] != 0 || configured[1] != 0 || configured[2] != 0) {
return true;
}
}
return false;
}
static bool configuredFloodRetryPrefixMatches(const uint8_t* configured,
const uint8_t* observed,
uint8_t observed_len) {
return (configured[0] != 0 || configured[1] != 0 || configured[2] != 0)
&& routeHashPrefixesOverlap(configured, FLOOD_RETRY_PREFIX_LEN, observed, observed_len);
}
bool MyMesh::floodRetryLastHopMatches(const mesh::Packet* packet) const {
if (packet == NULL || packet->getPathHashCount() == 0) {
return false;
}
uint8_t hash_size = packet->getPathHashSize();
if (hash_size == 0 || hash_size > MAX_ROUTE_HASH_BYTES) {
return false;
}
const uint8_t* heard_prefix = &packet->path[(packet->getPathHashCount() - 1) * hash_size];
for (int i = 0; i < FLOOD_RETRY_PREFIX_SLOTS; i++) {
const uint8_t* configured = _prefs.flood_retry_prefixes[i];
if (configuredFloodRetryPrefixMatches(configured, heard_prefix, hash_size)) {
return true;
}
}
return false;
}
bool MyMesh::floodRetryPrefixMatches(const mesh::Packet* packet) const {
if (packet == NULL || packet->getPathHashCount() == 0) {
return false;
}
uint8_t hash_size = packet->getPathHashSize();
if (hash_size == 0 || hash_size > MAX_ROUTE_HASH_BYTES) {
return false;
}
const uint8_t* path = packet->path;
for (int hop = 0; hop < packet->getPathHashCount(); hop++) {
for (int i = 0; i < FLOOD_RETRY_PREFIX_SLOTS; i++) {
const uint8_t* configured = _prefs.flood_retry_prefixes[i];
if (configuredFloodRetryPrefixMatches(configured, path, hash_size)) {
return true;
}
}
path += hash_size;
}
return false;
}
bool MyMesh::floodRetryPrefixIgnored(const uint8_t* prefix, uint8_t prefix_len) const {
if (prefix == NULL || prefix_len == 0 || prefix_len > MAX_ROUTE_HASH_BYTES) {
return false;
}
for (int i = 0; i < FLOOD_RETRY_IGNORE_PREFIXES; i++) {
const uint8_t* ignored = _prefs.flood_retry_ignore_prefixes[i];
if (configuredFloodRetryPrefixMatches(ignored, prefix, prefix_len)) {
return true;
}
}
return false;
}
uint8_t MyMesh::floodRetryEffectivePathLength(const mesh::Packet* packet, uint8_t max_hops) const {
if (packet == NULL || !packet->isRouteFlood() || packet->getPathHashCount() == 0) {
return 0;
}
uint8_t hash_size = packet->getPathHashSize();
if (hash_size == 0 || hash_size > MAX_ROUTE_HASH_BYTES) {
return packet->getPathHashCount();
}
uint8_t hop_count = packet->getPathHashCount();
if (max_hops < hop_count) {
hop_count = max_hops;
}
uint8_t effective_len = 0;
const uint8_t* path = packet->path;
for (uint8_t hop = 0; hop < hop_count; hop++) {
if (!floodRetryPrefixIgnored(path, hash_size)) {
effective_len++;
}
path += hash_size;
}
return effective_len;
}
bool MyMesh::floodRetryPrefixFresh(const uint8_t* prefix, uint8_t prefix_len) const {
const SimpleMeshTables* tables = static_cast<const SimpleMeshTables*>(getTables());
if (tables == NULL) {
return false;
}
const auto* recent = tables->findRecentRepeaterByHash(prefix, prefix_len);
if (recent == NULL || recent->last_heard_millis == 0) {
return false;
}
return (uint32_t)(millis() - recent->last_heard_millis) <= 3600000UL;
}
static const uint8_t FLOOD_RETRY_BRIDGE_OTHER_BUCKET = FLOOD_RETRY_BRIDGE_BUCKETS;
static uint8_t floodRetryBucketMask(uint8_t bucket) {
if (bucket >= 8) {
return 0;
}
return (uint8_t)(1U << bucket);
}
uint8_t MyMesh::floodRetryBucketMaskForPrefix(const uint8_t* prefix, uint8_t prefix_len, bool require_fresh) const {
if (prefix == NULL || prefix_len == 0 || prefix_len > MAX_ROUTE_HASH_BYTES) {
return 0;
}
if (floodRetryPrefixIgnored(prefix, prefix_len)) {
return 0;
}
if (require_fresh && !floodRetryPrefixFresh(prefix, prefix_len)) {
return 0;
}
uint8_t mask = 0;
for (int bucket = 0; bucket < FLOOD_RETRY_BRIDGE_BUCKETS; bucket++) {
for (int i = 0; i < FLOOD_RETRY_BUCKET_PREFIXES; i++) {
const uint8_t* configured = _prefs.flood_retry_bridge_buckets[bucket][i];
if (configuredFloodRetryPrefixMatches(configured, prefix, prefix_len)) {
mask |= floodRetryBucketMask((uint8_t)bucket);
break;
}
}
}
for (int i = 0; i < FLOOD_RETRY_PREFIX_SLOTS; i++) {
if (configuredFloodRetryPrefixMatches(_prefs.flood_retry_prefixes[i], prefix, prefix_len)) {
mask |= floodRetryBucketMask(FLOOD_RETRY_BRIDGE_OTHER_BUCKET);
break;
}
}
return mask;
}
uint8_t MyMesh::floodRetryBucketMaskForPathHop(const uint8_t* prefix, uint8_t prefix_len, uint8_t hop,
uint8_t progress_marker) const {
return floodRetryBucketMaskForPrefix(prefix, prefix_len, hop < progress_marker);
}
uint8_t MyMesh::floodRetrySourceMask(const mesh::Packet* packet) const {
if (packet == NULL) {
return 0;
}
uint8_t hash_size = packet->getPathHashSize();
if (hash_size == 0 || hash_size > MAX_ROUTE_HASH_BYTES) {
return 0;
}
if (packet->getPathHashCount() < 2) {
return floodRetryBucketMask(FLOOD_RETRY_BRIDGE_OTHER_BUCKET);
}
const uint8_t* source_prefix = &packet->path[(packet->getPathHashCount() - 2) * hash_size];
return floodRetryBucketMaskForPrefix(source_prefix, hash_size, true);
}
bool MyMesh::floodRetryBridgeBucketFresh(uint8_t bucket) const {
if (bucket > FLOOD_RETRY_BRIDGE_OTHER_BUCKET) {
return false;
}
const uint8_t (*prefixes)[FLOOD_RETRY_PREFIX_LEN];
uint8_t prefix_count;
if (bucket == FLOOD_RETRY_BRIDGE_OTHER_BUCKET) {
prefixes = _prefs.flood_retry_prefixes;
prefix_count = FLOOD_RETRY_PREFIX_SLOTS;
} else {
prefixes = _prefs.flood_retry_bridge_buckets[bucket];
prefix_count = FLOOD_RETRY_BUCKET_PREFIXES;
}
for (uint8_t i = 0; i < prefix_count; i++) {
const uint8_t* configured = prefixes[i];
if ((configured[0] != 0 || configured[1] != 0 || configured[2] != 0)
&& !floodRetryPrefixIgnored(configured, FLOOD_RETRY_PREFIX_LEN)
&& floodRetryPrefixFresh(configured, FLOOD_RETRY_PREFIX_LEN)) {
return true;
}
}
const FloodRetryBridgeReachability& reachable = flood_retry_bridge_reachability[bucket];
if (reachable.prefix_len == 0 || reachable.last_heard_millis == 0
|| (uint32_t)(millis() - reachable.last_heard_millis) > 3600000UL) {
return false;
}
return (floodRetryBucketMaskForPrefix(reachable.prefix, reachable.prefix_len, false)
& floodRetryBucketMask(bucket)) != 0;
}
void MyMesh::recordFloodRetryBridgeReachability(const uint8_t* prefix, uint8_t prefix_len,
uint8_t bucket_mask) {
if (prefix == NULL || prefix_len == 0 || prefix_len > MAX_ROUTE_HASH_BYTES) {
return;
}
uint32_t now = millis();
if (now == 0) {
now = 1; // zero means unused
}
for (uint8_t bucket = 0; bucket <= FLOOD_RETRY_BRIDGE_OTHER_BUCKET; bucket++) {
if ((bucket_mask & floodRetryBucketMask(bucket)) == 0) {
continue;
}
FloodRetryBridgeReachability& reachable = flood_retry_bridge_reachability[bucket];
memset(reachable.prefix, 0, sizeof(reachable.prefix));
memcpy(reachable.prefix, prefix, prefix_len);
reachable.prefix_len = prefix_len;
reachable.last_heard_millis = now;
}
}
uint8_t MyMesh::floodRetryBridgeTargetMask(uint8_t source_mask) const {
uint8_t mask = 0;
for (int bucket = 0; bucket < FLOOD_RETRY_BRIDGE_BUCKETS; bucket++) {
uint8_t bucket_mask = floodRetryBucketMask((uint8_t)bucket);
if ((source_mask & bucket_mask) != 0) {
continue;
}
if (floodRetryBridgeBucketFresh((uint8_t)bucket)) {
mask |= bucket_mask;
}
}
uint8_t other_mask = floodRetryBucketMask(FLOOD_RETRY_BRIDGE_OTHER_BUCKET);
if ((source_mask & other_mask) == 0
&& floodRetryBridgeBucketFresh(FLOOD_RETRY_BRIDGE_OTHER_BUCKET)) {
mask |= other_mask;
}
return mask;
}
uint8_t MyMesh::floodRetryBridgeHeardMask(const mesh::Packet* packet, uint8_t source_mask,
uint8_t progress_marker) const {
if (packet == NULL || packet->getPathHashCount() == 0) {
return 0;
}
uint8_t hash_size = packet->getPathHashSize();
if (hash_size == 0 || hash_size > MAX_ROUTE_HASH_BYTES) {
return 0;
}
uint8_t mask = 0;
const uint8_t* path = packet->path;
for (int hop = 0; hop < packet->getPathHashCount(); hop++) {
if (progress_marker > 0 && hop == progress_marker - 1) {
path += hash_size;
continue;
}
uint8_t bucket_mask = floodRetryBucketMaskForPathHop(path, hash_size, (uint8_t)hop, progress_marker);
mask |= bucket_mask & (uint8_t)~source_mask;
path += hash_size;
}
return mask;
}
bool MyMesh::floodRetryBridgeEligible(const mesh::Packet* packet) const {
FloodRetryBridgeState* state = floodRetryBridgeStateFor(packet, false);
if (state != NULL) {
return (state->heard_mask & state->target_mask) != state->target_mask;
}
uint8_t source_mask = floodRetrySourceMask(packet);
if (source_mask == 0) {
return false;
}
uint8_t target_mask = floodRetryBridgeTargetMask(source_mask);
if (target_mask == 0) {
return false;
}
uint8_t progress_marker = packet->getPathHashCount();
uint8_t heard_mask = floodRetryBridgeHeardMask(packet, source_mask, progress_marker) & target_mask;
return (heard_mask & target_mask) != target_mask;
}
MyMesh::FloodRetryBridgeState* MyMesh::floodRetryBridgeStateFor(const mesh::Packet* packet, bool create) const {
if (packet == NULL) {
return NULL;
}
uint8_t key[MAX_HASH_SIZE];
packet->calculatePacketHash(key);
FloodRetryBridgeState* free_slot = NULL;
for (int i = 0; i < MAX_FLOOD_RETRY_SLOTS; i++) {
if (flood_retry_bridge_states[i].active
&& memcmp(flood_retry_bridge_states[i].key, key, MAX_HASH_SIZE) == 0) {
return &flood_retry_bridge_states[i];
}
if (!flood_retry_bridge_states[i].active && free_slot == NULL) {
free_slot = &flood_retry_bridge_states[i];
}
}
if (!create || free_slot == NULL) {
return NULL;
}
uint8_t source_mask = floodRetrySourceMask(packet);
if (source_mask == 0) {
return NULL;
}
uint8_t target_mask = floodRetryBridgeTargetMask(source_mask);
if (target_mask == 0) {
return NULL;
}
uint8_t progress_marker = packet->getPathHashCount();
uint8_t heard_mask = floodRetryBridgeHeardMask(packet, source_mask, progress_marker) & target_mask;
if ((heard_mask & target_mask) == target_mask) {
return NULL;
}
memset(free_slot, 0, sizeof(*free_slot));
memcpy(free_slot->key, key, sizeof(free_slot->key));
free_slot->source_mask = source_mask;
free_slot->target_mask = target_mask;
free_slot->heard_mask = heard_mask;
free_slot->progress_marker = progress_marker;
free_slot->active = true;
return free_slot;
}
bool MyMesh::allowFloodRetry(const mesh::Packet* packet) const {
if (_prefs.disable_fwd || constrain(_prefs.flood_retry_attempts, 0, 15) == 0) {
return false;
}
if (packet != NULL && packet->getPayloadType() == PAYLOAD_TYPE_ADVERT && !_prefs.flood_retry_advert_enabled) {
return false;
}
if (!_prefs.flood_retry_bridge_enabled) {
return true;
}
return floodRetryBridgeEligible(packet);
}
bool MyMesh::prepareFloodRetry(const mesh::Packet* packet) const {
if (!_prefs.flood_retry_bridge_enabled) {
return true;
}
return floodRetryBridgeStateFor(packet, true) != NULL;
}
void MyMesh::clearFloodRetryBridgeStateByKey(const uint8_t* retry_key) {
if (retry_key == NULL) {
return;
}
for (int i = 0; i < MAX_FLOOD_RETRY_SLOTS; i++) {
if (flood_retry_bridge_states[i].active
&& memcmp(flood_retry_bridge_states[i].key, retry_key, MAX_HASH_SIZE) == 0) {
flood_retry_bridge_states[i].active = false;
return;
}
}
}
void MyMesh::refreshFloodRetryReachability(const mesh::Packet* packet) {
if (packet == NULL || !packet->isRouteFlood() || packet->getPathHashCount() == 0) {
return;
}
uint8_t hash_size = packet->getPathHashSize();
if (hash_size == 0 || hash_size > MAX_ROUTE_HASH_BYTES) {
return;
}
SimpleMeshTables* tables = static_cast<SimpleMeshTables*>(getTables());
if (tables == NULL) {
return;
}
uint8_t path_count = packet->getPathHashCount();
const uint8_t* last_hop = &packet->path[(path_count - 1) * hash_size];
tables->setRecentRepeater(last_hop, hash_size, packet->_snr, false, true);
const uint8_t* path = packet->path;
if (_prefs.flood_retry_bridge_enabled) {
FloodRetryBridgeState* state = floodRetryBridgeStateFor(packet, false);
if (state != NULL) {
for (uint8_t hop = 0; hop < path_count; hop++) {
if (state->progress_marker > 0 && hop == state->progress_marker - 1) {
path += hash_size;
continue;
}
uint8_t bucket_mask = floodRetryBucketMaskForPathHop(path, hash_size, (uint8_t)hop,
state->progress_marker);
bucket_mask &= state->target_mask & (uint8_t)~state->source_mask;
if (bucket_mask != 0 && hop != path_count - 1) {
recordFloodRetryBridgeReachability(path, hash_size, bucket_mask);
}
path += hash_size;
}
}
}
}
void MyMesh::formatFloodRetryPath(char* dest, size_t dest_len, const mesh::Packet* packet) const {
if (dest == NULL || dest_len == 0) {
return;
}
dest[0] = 0;
if (packet == NULL || packet->getPathHashCount() == 0) {
StrHelper::strncpy(dest, "-", dest_len);
return;
}
uint8_t hash_size = packet->getPathHashSize();
if (hash_size == 0 || hash_size > MAX_ROUTE_HASH_BYTES) {
StrHelper::strncpy(dest, "invalid", dest_len);
return;
}
char* out = dest;
size_t remaining = dest_len;
const uint8_t* path = packet->path;
for (int hop = 0; hop < packet->getPathHashCount(); hop++) {
size_t needed = (hop > 0 ? 1 : 0) + ((size_t)hash_size * 2) + 1;
if (remaining < needed) {
if (remaining > 4) {
strcpy(out, "...");
}
return;
}
if (hop > 0) {
*out++ = '>';
remaining--;
}
mesh::Utils::toHex(out, path, hash_size);
out += (size_t)hash_size * 2;
remaining -= (size_t)hash_size * 2;
path += hash_size;
}
}
bool MyMesh::formatFloodRetryHeard(char* dest, size_t dest_len, const mesh::Packet* packet) const {
if (dest == NULL || dest_len == 0 || packet == NULL || packet->getPathHashCount() == 0) {
return false;
}
dest[0] = 0;
uint8_t hash_size = packet->getPathHashSize();
if (hash_size == 0 || hash_size > MAX_ROUTE_HASH_BYTES) {
return false;
}
char* out = dest;
size_t remaining = dest_len;
bool first = true;
if (_prefs.flood_retry_bridge_enabled) {
FloodRetryBridgeState* state = floodRetryBridgeStateFor(packet, false);
if (state == NULL) {
return false;
}
const uint8_t* path = packet->path;
for (int hop = 0; hop < packet->getPathHashCount(); hop++) {
if (state->progress_marker > 0 && hop == state->progress_marker - 1) {
path += hash_size;
continue;
}
uint8_t matching_mask = floodRetryBucketMaskForPathHop(path, hash_size, (uint8_t)hop,
state->progress_marker);
matching_mask &= state->target_mask & (uint8_t)~state->source_mask;
for (uint8_t bucket = 0; bucket <= FLOOD_RETRY_BRIDGE_OTHER_BUCKET; bucket++) {
uint8_t bucket_mask = floodRetryBucketMask(bucket);
if ((matching_mask & bucket_mask) == 0) {
continue;
}
char bucket_label[8];
if (bucket == FLOOD_RETRY_BRIDGE_OTHER_BUCKET) {
strcpy(bucket_label, "other");
} else {
snprintf(bucket_label, sizeof(bucket_label), "b%d", bucket + 1);
}
size_t needed = (first ? 0 : 1) + strlen(bucket_label) + 1 + ((size_t)hash_size * 2) + 1;
if (remaining < needed) {
if (remaining > 4) {
strcpy(out, "...");
}
return dest[0] != 0;
}
if (!first) {
*out++ = ',';
remaining--;
}
int n = snprintf(out, remaining, "%s:", bucket_label);
if (n < 0 || (size_t)n >= remaining) {
return dest[0] != 0;
}
out += n;
remaining -= n;
mesh::Utils::toHex(out, path, hash_size);
out += (size_t)hash_size * 2;
remaining -= (size_t)hash_size * 2;
first = false;
}
path += hash_size;
}
return dest[0] != 0;
}
const uint8_t* heard_prefix = &packet->path[(packet->getPathHashCount() - 1) * hash_size];
if (remaining < ((size_t)hash_size * 2) + 1) {
return false;
}
mesh::Utils::toHex(out, heard_prefix, hash_size);
return true;
}
void MyMesh::onFloodRetryEvent(const char* event, const mesh::Packet* packet, uint32_t delay_millis, uint8_t retry_attempt) {
#if defined(PORTABLE_MQTT_OBSERVER)
(void)event; (void)packet; (void)delay_millis; (void)retry_attempt;
return;
#endif
if (event == NULL) {
return;
}
if (strcmp(event, "failure") == 0) {
return;
}
if (packet == NULL) {
MESH_DEBUG_PRINTLN("flood retry %s (retry=%u, elapsed_ms=%lu, packet=released)",
event, (unsigned int)retry_attempt, (unsigned long)delay_millis);
if (_logging) {
File f = openAppend(PACKET_LOG_FILE);
if (f) {
f.print(getLogDateTime());
f.printf(": FLOOD RETRY %s (retry=%u, elapsed_ms=%lu, packet=released)\n",
event, (unsigned int)retry_attempt, (unsigned long)delay_millis);
f.close();
}
}
return;
}
const char* time_label = "time_ms";
if (strcmp(event, "queued") == 0 || strcmp(event, "dropped_queue_full") == 0) {
time_label = "wait_ms";
} else if (strcmp(event, "resent") == 0 || strcmp(event, "failed_all_tries") == 0
|| strcmp(event, "failure") == 0 || strncmp(event, "dropped_", 8) == 0) {
time_label = "elapsed_ms";
} else if (strcmp(event, "good") == 0) {
time_label = "echo_ms";
}
char path_log[208];
char heard_log[96];
char heard_suffix[112];
formatFloodRetryPath(path_log, sizeof(path_log), packet);
heard_suffix[0] = 0;
if (strcmp(event, "good") == 0 && formatFloodRetryHeard(heard_log, sizeof(heard_log), packet)) {
refreshFloodRetryReachability(packet);
snprintf(heard_suffix, sizeof(heard_suffix), ", heard=%s", heard_log);
}
uint8_t log_cr = getRetryLogCodingRate(packet, getDefaultTxCodingRate());
uint16_t log_preamble_len = getRetryLogPreambleLength(packet, radio_driver.getDefaultPreambleLength());
MESH_DEBUG_PRINTLN("flood retry %s (retry=%u, type=%d, route=%s, payload_len=%d, hop=%u, path=%s%s, %s=%lu, cr=%u, preamble_len=%u)",
event,
(unsigned int)retry_attempt,
(uint32_t)packet->getPayloadType(),
packet->isRouteDirect() ? "D" : "F",
(uint32_t)packet->payload_len,
(unsigned int)packet->getPathHashCount(),
path_log,
heard_suffix,
time_label,
(unsigned long)delay_millis,
(uint32_t)log_cr,
(uint32_t)log_preamble_len);
if (_logging) {
File f = openAppend(PACKET_LOG_FILE);
if (f) {
f.print(getLogDateTime());
f.printf(": FLOOD RETRY %s (retry=%u, type=%d, route=%s, payload_len=%d, hop=%u, path=%s%s, %s=%lu, cr=%u, preamble_len=%u)\n",
event,
(unsigned int)retry_attempt,
(uint32_t)packet->getPayloadType(),
packet->isRouteDirect() ? "D" : "F",
(uint32_t)packet->payload_len,
(unsigned int)packet->getPathHashCount(),
path_log,
heard_suffix,
time_label,
(unsigned long)delay_millis,
(uint32_t)log_cr,
(uint32_t)log_preamble_len);
f.close();
}
}
}
void MyMesh::onFloodRetrySlotReleased(const uint8_t* retry_key) {
clearFloodRetryBridgeStateByKey(retry_key);
}
bool MyMesh::hasFloodRetryTargetPrefix(const mesh::Packet* packet) const {
if (_prefs.flood_retry_bridge_enabled) {
return false;
}
return floodRetryPrefixMatches(packet);
}
uint8_t MyMesh::getFloodRetryMaxPathLength(const mesh::Packet* packet) const {
uint8_t gate = _prefs.flood_retry_max_path;
if (gate != FLOOD_RETRY_PATH_GATE_DISABLED) {
if (gate > 63) {
gate = FLOOD_RETRY_ROOFTOP_MAX_PATH;
}
uint8_t raw_hops = packet != NULL ? packet->getPathHashCount() : 0;
uint8_t effective_hops = floodRetryEffectivePathLength(packet);
uint8_t ignored_hops = raw_hops > effective_hops ? raw_hops - effective_hops : 0;
uint16_t adjusted_gate = (uint16_t)gate + ignored_hops;
gate = adjusted_gate > 63 ? 63 : (uint8_t)adjusted_gate;
}
uint8_t group_data_gate = _prefs.flood_retry_group_max_path == FLOOD_RETRY_PATH_GATE_DISABLED
? FLOOD_RETRY_PATH_GATE_DISABLED
: constrain(_prefs.flood_retry_group_max_path, 0, 63);
return applyGroupDataFloodRetryPathGate(packet, gate, group_data_gate);
}
uint8_t MyMesh::getFloodRetryMaxAttempts(const mesh::Packet* packet) const {
if (_prefs.disable_fwd) {
return 0;
}
uint8_t attempts = constrain(_prefs.flood_retry_attempts, 0, 15);
uint16_t scaled_attempts = attempts;
uint8_t hops = packet != NULL ? packet->getPathHashCount() : 0;
if (hops == 0) {
scaled_attempts = (uint16_t)attempts * 2U;
} else if (hops == 1) {
scaled_attempts = (((uint16_t)attempts * 3U) + 1U) / 2U;
}
return scaled_attempts > 15 ? 15 : (uint8_t)scaled_attempts;
}
bool MyMesh::isFloodRetryEchoTarget(const mesh::Packet* packet, uint8_t progress_marker) const {
if (packet == NULL || !packet->isRouteFlood()) {
return false;
}
if (packet->getPathHashCount() == 0) {
return false;
}
uint8_t hash_size = packet->getPathHashSize();
if (hash_size == 0 || hash_size > MAX_ROUTE_HASH_BYTES) {
return false;
}
const uint8_t* heard_prefix = &packet->path[(packet->getPathHashCount() - 1) * hash_size];
if (floodRetryPrefixIgnored(heard_prefix, hash_size)) {
return false;
}
if (_prefs.flood_retry_bridge_enabled) {
FloodRetryBridgeState* state = floodRetryBridgeStateFor(packet, false);
if (state == NULL) {
return false;
}
state->heard_mask |= floodRetryBridgeHeardMask(packet, state->source_mask, state->progress_marker) & state->target_mask;
return (state->heard_mask & state->target_mask) == state->target_mask;
}
if (hasFloodRetryPrefixes()) {
return floodRetryLastHopMatches(packet);
}
return true;
}
static void formatLocalSnrX4(char* dest, size_t dest_len, int16_t snr_x4) {
int16_t v = snr_x4;
const char* sign = "";
if (v < 0) {
sign = "-";
v = -v;
}
snprintf(dest, dest_len, "%s%d.%02d", sign, v / 4, (v % 4) * 25);
size_t len = strlen(dest);
if (len > 3 && dest[len - 1] == '0') {
dest[len - 1] = 0;
}
}
static bool parseRecentRepeatersPageCommand(const char* command, int& page) {
if (strncmp(command, "get ", 4) != 0) {
return false;
}
const char* cursor = command + 4;
if (strncmp(cursor, "recent.repeater", 15) != 0) {
return false;
}
cursor += 15;
if (*cursor == 's') {
cursor++;
}
if (*cursor == 0) {
return false;
}
if (*cursor != ' ') {
return false;
}
while (*cursor == ' ') cursor++;
if (strncmp(cursor, "page", 4) == 0 && (cursor[4] == 0 || cursor[4] == ' ')) {
cursor += 4;
while (*cursor == ' ') cursor++;
}
page = 1;
if (*cursor) page = atoi(cursor);
if (page < 1) page = 1;
return true;
}
void MyMesh::formatRecentRepeatersReply(char *reply, int page) {
const SimpleMeshTables* tables = static_cast<const SimpleMeshTables*>(getTables());
if (tables == NULL) {
strcpy(reply, "Error: unsupported");
return;
}
int count = tables->getRecentRepeaterCount();
if (count <= 0) {
strcpy(reply, "> -none-");
return;
}
const int page_size = 10;
int pages = (count + page_size - 1) / page_size;
if (page < 1) page = 1;
if (page > pages) page = pages;
int len = snprintf(reply, 160, "> %d/%d", page, pages);
int start = (page - 1) * page_size;
for (int i = 0; i < page_size && len < 150; i++) {
const SimpleMeshTables::RecentRepeaterInfo* info = tables->getRecentRepeaterBySortedIdx(start + i);
if (info == NULL) break;
char prefix[MAX_ROUTE_HASH_BYTES * 2 + 1];
char snr[12];
mesh::Utils::toHex(prefix, info->prefix, info->prefix_len);
prefix[info->prefix_len * 2] = 0;
formatLocalSnrX4(snr, sizeof(snr), info->snr_x4);
len += snprintf(&reply[len], 160 - len, "\n%s,%s%s",
prefix,
snr[0] == '-' ? "" : " ",
snr);
}
}
void MyMesh::printRecentRepeatersSerial() {
const SimpleMeshTables* tables = static_cast<const SimpleMeshTables*>(getTables());
if (tables == NULL) {
Serial.println("Error: unsupported");
return;
}
int count = tables->getRecentRepeaterCount();
Serial.printf("Recent repeaters (%d):\n", count);
if (count <= 0) {
Serial.println("-none-");
return;
}
for (int i = 0; i < count; i++) {
const SimpleMeshTables::RecentRepeaterInfo* info = tables->getRecentRepeaterBySortedIdx(i);
if (info == NULL) break;
char prefix[MAX_ROUTE_HASH_BYTES * 2 + 1];
char snr[12];
mesh::Utils::toHex(prefix, info->prefix, info->prefix_len);
prefix[info->prefix_len * 2] = 0;
formatLocalSnrX4(snr, sizeof(snr), info->snr_x4);
Serial.printf("%s,%s%s\n", prefix, snr[0] == '-' ? "" : " ", snr);
}
}
bool MyMesh::setRecentRepeater(const uint8_t* prefix, uint8_t prefix_len, int8_t snr_x4) {
SimpleMeshTables* tables = static_cast<SimpleMeshTables*>(getTables());
return tables != NULL && tables->setRecentRepeater(prefix, prefix_len, snr_x4);
}
void MyMesh::clearRecentRepeaters() {
SimpleMeshTables* tables = static_cast<SimpleMeshTables*>(getTables());
if (tables != NULL) {
tables->clearRecentRepeaters();
}
}
void MyMesh::expireRecentRepeatersIfDue() {
if (!next_recent_repeater_sweep || !millisHasNowPassed(next_recent_repeater_sweep)) {
return;
}
SimpleMeshTables* tables = static_cast<SimpleMeshTables*>(getTables());
if (tables != NULL) {
int expired = tables->expireRecentRepeaters(_ms->getMillis(), RECENT_REPEATER_MAX_AGE_MILLIS);
if (expired > 0) {
MESH_DEBUG_PRINTLN("Recent repeaters: expired %d entries", expired);
}
}
next_recent_repeater_sweep = futureMillis(RECENT_REPEATER_SWEEP_INTERVAL_MILLIS);
}
mesh::DispatcherAction MyMesh::onRecvPacket(mesh::Packet* pkt) {
#if !defined(PORTABLE_MQTT_OBSERVER)
if (pkt->getRouteType() == ROUTE_TYPE_FLOOD) {
applyFloodChannelScope(pkt);
}
#endif
if (pkt->getRouteType() == ROUTE_TYPE_TRANSPORT_FLOOD) {
recv_pkt_region = region_map.findMatch(pkt, REGION_DENY_FLOOD);
} else if (pkt->getRouteType() == ROUTE_TYPE_FLOOD) {
if (region_map.getWildcard().flags & REGION_DENY_FLOOD) {
recv_pkt_region = NULL;
} else {
recv_pkt_region = &region_map.getWildcard();
}
} else {
recv_pkt_region = NULL;
}
return Mesh::onRecvPacket(pkt);
}
void MyMesh::onAnonDataRecv(mesh::Packet *packet, const uint8_t *secret, const mesh::Identity &sender,
uint8_t *data, size_t len) {
if (packet->getPayloadType() == PAYLOAD_TYPE_ANON_REQ) { // received an initial request by a possible admin
// client (unknown at this stage)
uint32_t timestamp;
memcpy(&timestamp, data, 4);
data[len] = 0; // ensure null terminator
uint8_t reply_len;
reply_path_len = -1;
if (data[4] == 0 || data[4] >= ' ') { // is password, ie. a login request
reply_len = handleLoginReq(sender, secret, timestamp, &data[4], packet->isRouteFlood());
} else if (data[4] == ANON_REQ_TYPE_REGIONS && packet->isRouteDirect()) {
reply_len = handleAnonRegionsReq(sender, timestamp, &data[5]);
} else if (data[4] == ANON_REQ_TYPE_OWNER && packet->isRouteDirect()) {
reply_len = handleAnonOwnerReq(sender, timestamp, &data[5]);
} else if (data[4] == ANON_REQ_TYPE_BASIC && packet->isRouteDirect()) {
reply_len = handleAnonClockReq(sender, timestamp, &data[5]);
} else {
reply_len = 0; // unknown/invalid request type
}
if (reply_len == 0) return; // invalid request
if (packet->isRouteFlood()) {
// let this sender know path TO here, so they can use sendDirect(), and ALSO encode the response
mesh::Packet* path = createPathReturn(sender, secret, packet->path, packet->path_len,
PAYLOAD_TYPE_RESPONSE, reply_data, reply_len);
if (path) sendFloodReply(path, SERVER_RESPONSE_DELAY, packet->getPathHashSize());
} else if (reply_path_len < 0) {
mesh::Packet* reply = createDatagram(PAYLOAD_TYPE_RESPONSE, sender, secret, reply_data, reply_len);
if (reply) sendFloodReply(reply, SERVER_RESPONSE_DELAY, packet->getPathHashSize());
} else {
mesh::Packet* reply = createDatagram(PAYLOAD_TYPE_RESPONSE, sender, secret, reply_data, reply_len);
uint8_t path_len = ((reply_path_hash_size - 1) << 6) | (reply_path_len & 63);
if (reply) sendDirect(reply, reply_path, path_len, SERVER_RESPONSE_DELAY);
}
}
}
int MyMesh::searchPeersByHash(const uint8_t *hash) {
int n = 0;
for (int i = 0; i < acl.getNumClients(); i++) {
if (acl.getClientByIdx(i)->id.isHashMatch(hash)) {
matching_peer_indexes[n++] = i; // store the INDEXES of matching contacts (for subsequent 'peer' methods)
}
}
return n;
}
void MyMesh::getPeerSharedSecret(uint8_t *dest_secret, int peer_idx) {
int i = matching_peer_indexes[peer_idx];
if (i >= 0 && i < acl.getNumClients()) {
// lookup pre-calculated shared_secret
memcpy(dest_secret, acl.getClientByIdx(i)->shared_secret, PUB_KEY_SIZE);
} else {
MESH_DEBUG_PRINTLN("getPeerSharedSecret: Invalid peer idx: %d", i);
}
}
static bool isShare(const mesh::Packet *packet) {
if (packet->hasTransportCodes()) {
return packet->transport_codes[0] == 0 && packet->transport_codes[1] == 0; // codes { 0, 0 } means 'send to nowhere'
}
return false;
}
void MyMesh::onAdvertRecv(mesh::Packet *packet, const mesh::Identity &id, uint32_t timestamp,
const uint8_t *app_data, size_t app_data_len) {
mesh::Mesh::onAdvertRecv(packet, id, timestamp, app_data, app_data_len); // chain to super impl
// if this a zero hop advert (and not via 'Share'), add it to neighbours
if (packet->getPathHashCount() == 0 && !isShare(packet)) {
AdvertDataParser parser(app_data, app_data_len);
if (parser.isValid() && parser.getType() == ADV_TYPE_REPEATER) { // just keep neigbouring Repeaters
putNeighbour(id, timestamp, packet->getSNR());
}
}
}
void MyMesh::onPeerDataRecv(mesh::Packet *packet, uint8_t type, int sender_idx, const uint8_t *secret,
uint8_t *data, size_t len) {
int i = matching_peer_indexes[sender_idx];
if (i < 0 || i >= acl.getNumClients()) { // get from our known_clients table (sender SHOULD already be known in this context)
MESH_DEBUG_PRINTLN("onPeerDataRecv: invalid peer idx: %d", i);
return;
}
ClientInfo* client = acl.getClientByIdx(i);
if (type == PAYLOAD_TYPE_REQ) { // request (from a Known admin client!)
uint32_t timestamp;
memcpy(&timestamp, 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) sendFloodReply(path, SERVER_RESPONSE_DELAY, packet->getPathHashSize());
} else {
mesh::Packet *reply =
createDatagram(PAYLOAD_TYPE_RESPONSE, client->id, secret, reply_data, reply_len);
sendClientReply(client, reply, SERVER_RESPONSE_DELAY, packet->getPathHashSize());
}
} else {
MESH_DEBUG_PRINTLN("onPeerDataRecv: possible replay attack detected");
}
} else if (type == PAYLOAD_TYPE_TXT_MSG && len > 5
&& (client->isAdmin() || client->isRegionMgr() || client->isFilterMgr())) { // a CLI command
uint32_t sender_timestamp;
memcpy(&sender_timestamp, data, 4); // timestamp (by sender's RTC clock - which could be wrong)
uint8_t 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);
sendClientReply(client, ack, TXT_ACK_DELAY, packet->getPathHashSize());
}
uint8_t temp[166];
char *command = (char *)&data[5];
char *reply = (char *)&temp[5];
if (is_retry) {
*reply = 0;
} else {
handleCommand(sender_timestamp, client, 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, &timestamp, 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);
sendClientReply(client, reply, CLI_REPLY_DELAY_MILLIS, packet->getPathHashSize());
}
} else {
MESH_DEBUG_PRINTLN("onPeerDataRecv: possible replay attack detected");
}
}
}
bool MyMesh::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) {
// TODO: prevent replay attacks
int i = matching_peer_indexes[sender_idx];
if (i >= 0 && i < acl.getNumClients()) { // 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 = acl.getClientByIdx(i);
// store a copy of path, for sendDirect()
if (client->out_path_len != OUT_PATH_FORCE_FLOOD) {
client->out_path_len = mesh::Packet::copyPath(client->out_path, path, path_len);
}
client->last_activity = getRTCClock()->getCurrentTime();
} else {
MESH_DEBUG_PRINTLN("onPeerPathRecv: invalid peer idx: %d", i);
}
// NOTE: no reciprocal path send!!
return false;
}
#define CTL_TYPE_NODE_DISCOVER_REQ 0x80
#define CTL_TYPE_NODE_DISCOVER_RESP 0x90
void MyMesh::onControlDataRecv(mesh::Packet* packet) {
uint8_t type = packet->payload[0] & 0xF0; // just test upper 4 bits
if (type == CTL_TYPE_NODE_DISCOVER_REQ && packet->payload_len >= 6 && discover_limiter.allow(rtc_clock.getCurrentTime())) {
int i = 1;
uint8_t filter = packet->payload[i++];
uint32_t tag;
memcpy(&tag, &packet->payload[i], 4); i += 4;
uint32_t since;
if (packet->payload_len >= i+4) { // optional since field
memcpy(&since, &packet->payload[i], 4); i += 4;
} else {
since = 0;
}
if ((filter & (1 << ADV_TYPE_REPEATER)) != 0 && _prefs.discovery_mod_timestamp >= since) {
bool prefix_only = packet->payload[0] & 1;
uint8_t data[6 + PUB_KEY_SIZE];
data[0] = CTL_TYPE_NODE_DISCOVER_RESP | ADV_TYPE_REPEATER; // low 4-bits for node type
data[1] = packet->_snr; // let sender know the inbound SNR ( x 4)
memcpy(&data[2], &tag, 4); // include tag from request, for client to match to
memcpy(&data[6], self_id.pub_key, PUB_KEY_SIZE);
auto resp = createControlData(data, prefix_only ? 6 + 8 : 6 + PUB_KEY_SIZE);
if (resp) {
sendZeroHop(resp, getRetransmitDelay(resp)*4); // apply random delay (widened x4), as multiple nodes can respond to this
}
}
} else if (type == CTL_TYPE_NODE_DISCOVER_RESP && packet->payload_len >= 6) {
uint8_t node_type = packet->payload[0] & 0x0F;
if (node_type != ADV_TYPE_REPEATER) {
return;
}
if (packet->payload_len < 6 + PUB_KEY_SIZE) {
MESH_DEBUG_PRINTLN("onControlDataRecv: DISCOVER_RESP pubkey too short: %d", (uint32_t)packet->payload_len);
return;
}
if (pending_discover_tag == 0 || millisHasNowPassed(pending_discover_until)) {
pending_discover_tag = 0;
return;
}
uint32_t tag;
memcpy(&tag, &packet->payload[2], 4);
if (tag != pending_discover_tag) {
return;
}
mesh::Identity id(&packet->payload[6]);
if (id.matches(self_id)) {
return;
}
putNeighbour(id, rtc_clock.getCurrentTime(), packet->getSNR());
}
}
void MyMesh::sendNodeDiscoverReq() {
uint8_t data[10];
data[0] = CTL_TYPE_NODE_DISCOVER_REQ; // prefix_only=0
data[1] = (1 << ADV_TYPE_REPEATER);
getRNG()->random(&data[2], 4); // tag
memcpy(&pending_discover_tag, &data[2], 4);
pending_discover_until = futureMillis(60000);
uint32_t since = 0;
memcpy(&data[6], &since, 4);
auto pkt = createControlData(data, sizeof(data));
if (pkt) {
sendZeroHop(pkt);
}
}
MyMesh::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, *createObserverPacketManager(32), tables),
region_map(key_store), temp_map(key_store),
_cli(board, rtc, sensors, region_map, acl, &_prefs, this),
telemetry(MAX_PACKET_PAYLOAD - 4),
discover_limiter(4, 120), // max 4 every 2 minutes
anon_limiter(4, 180) // max 4 every 3 minutes
#if defined(WITH_MQTT_BRIDGE)
, mqtt_bridge(nullptr)
#elif defined(WITH_RS232_BRIDGE)
, bridge(&_prefs, WITH_RS232_BRIDGE, _mgr, &rtc)
#elif defined(WITH_ESPNOW_BRIDGE)
, bridge(&_prefs, _mgr, &rtc)
#endif
{
static_cast<StaticPoolPacketManager*>(_mgr)->setFloodScopePreference(
scoreFloodTransportScope, this);
last_millis = 0;
uptime_millis = 0;
next_local_advert = next_flood_advert = 0;
next_battery_alert_check = 0;
next_rx_watchdog_check = 0;
next_recent_repeater_sweep = 0;
last_battery_alert_sent = 0;
pending_battery_alert_packet = NULL;
battery_alert_sent = false;
dirty_contacts_expiry = 0;
active_bw = 0.0f;
active_sf = 0;
active_cr = 0;
saved_radio_apply_pending = false;
temp_radio_handoff_pending = false;
temp_radio_applied = false;
scheduled_temp_radio_started = false;
next_scheduled_radio_time = 0;
next_scheduled_radio_check_at = 0;
scheduled_temp_radio_end_time = 0;
scheduled_temp_radio_end_check_at = 0;
scheduled_temp_radio_end_check_final = false;
scheduled_radio_retry_at = 0;
scheduled_radio_retry_failures = 0;
memset(scheduled_radio_settings, 0, sizeof(scheduled_radio_settings));
_logging = false;
region_load_active = false;
memset(flood_retry_bridge_states, 0, sizeof(flood_retry_bridge_states));
memset(flood_retry_bridge_reachability, 0, sizeof(flood_retry_bridge_reachability));
recv_pkt_region = NULL;
memset(flood_channel_blocks, 0, sizeof(flood_channel_blocks));
memset(flood_packet_filters, 0, sizeof(flood_packet_filters));
memset(flood_channel_scopes, 0, sizeof(flood_channel_scopes));
memset(flood_group_moderation, 0, sizeof(flood_group_moderation));
memset(clock_sync_samples, 0, sizeof(clock_sync_samples));
clock_sync_mesh_enabled = CLOCK_SYNC_MESH_DEFAULT_ENABLED != 0;
clock_sync_mesh_edge_enabled = CLOCK_SYNC_MESH_EDGE_DEFAULT_ENABLED != 0;
clock_sync_internet_enabled = false;
clock_sync_complete = false;
clock_sync_internet_pending = false;
clock_sync_force_mesh_pending = false;
clock_sync_mesh_suppressed_by = CLOCK_SYNC_MESH_SUPPRESS_NONE;
clock_sync_last_result = CLOCK_SYNC_RESULT_WAITING;
clock_sync_last_source = CLOCK_SYNC_SOURCE_NONE;
clock_sync_last_sample_count = 0;
clock_sync_last_fresh_count = 0;
clock_sync_last_required_count = CLOCK_SYNC_REQUIRED_SAMPLES_DEFAULT;
clock_sync_required_samples = CLOCK_SYNC_REQUIRED_SAMPLES_DEFAULT;
clock_sync_drift_seconds = CLOCK_SYNC_DRIFT_DEFAULT_SECONDS;
clock_sync_last_estimate = 0;
clock_sync_last_abs_drift = 0;
clock_sync_internet_requested_millis = 0;
clock_sync_next_attempt_uptime = CLOCK_SYNC_STARTUP_DELAY_MILLIS;
#if MAX_NEIGHBOURS
memset(neighbours, 0, sizeof(neighbours));
#endif
// defaults
memset(&_prefs, 0, sizeof(_prefs));
_prefs.airtime_factor = 1.0;
_prefs.rx_delay_base = DEFAULT_RX_DELAY_BASE; // fork kept this off by default (macro defaults 0.0f)
_prefs.tx_delay_factor = 0.5f; // was 0.25f
_prefs.direct_tx_delay_factor = 0.3f; // was 0.2
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 = DEFAULT_ADVERT_INTERVAL_MINUTES / 2;
_prefs.flood_advert_interval = DEFAULT_FLOOD_ADVERT_INTERVAL_HOURS;
_prefs.flood_max = 64;
_prefs.flood_max_unscoped = 64;
_prefs.flood_max_advert = 8;
_prefs.interference_threshold = 0; // disabled
_prefs.cad_enabled = DEFAULT_CAD_ENABLED; // Cascade defaults CAD on; target default remains off
_prefs.agc_reset_interval = DEFAULT_AGC_RESET_INTERVAL_SECONDS / 4;
_prefs.multi_acks = DEFAULT_MULTI_ACKS;
_prefs.path_hash_mode = DEFAULT_PATH_HASH_MODE;
_prefs.loop_detect = DEFAULT_LOOP_DETECT;
_prefs.retry_preset = RETRY_PRESET_ROOFTOP;
_prefs.direct_retry_attempts = DIRECT_RETRY_ROOFTOP_COUNT;
_prefs.direct_retry_base_ms = DIRECT_RETRY_ROOFTOP_BASE_MS;
_prefs.direct_retry_step_ms = DIRECT_RETRY_ROOFTOP_STEP_MS;
_prefs.direct_retry_snr_margin_x4 = DIRECT_RETRY_ROOFTOP_MARGIN_X4;
_prefs.direct_retry_cr4_snr_x4 = DIRECT_RETRY_CR4_MIN_SNR_X4_DEFAULT;
_prefs.direct_retry_cr5_snr_x4 = DIRECT_RETRY_CR5_MIN_SNR_X4_DEFAULT;
_prefs.direct_retry_cr7_snr_x4 = DIRECT_RETRY_CR7_MIN_SNR_X4_DEFAULT;
_prefs.direct_retry_cr8_snr_x4 = DIRECT_RETRY_CR8_MAX_SNR_X4_DEFAULT;
_prefs.direct_retry_enabled = 1;
_prefs.direct_retry_cr_enabled = 1;
_prefs.direct_retry_prefs_magic[0] = DIRECT_RETRY_PREFS_MAGIC_0;
_prefs.direct_retry_prefs_magic[1] = DIRECT_RETRY_PREFS_MAGIC_1;
_prefs.direct_retry_recent_enabled = DIRECT_RETRY_RECENT_DEFAULT;
_prefs.flood_retry_attempts = FLOOD_RETRY_ROOFTOP_COUNT;
_prefs.flood_retry_max_path = FLOOD_RETRY_ROOFTOP_MAX_PATH;
_prefs.flood_retry_group_max_path = FLOOD_RETRY_GROUP_MAX_PATH_DEFAULT;
_prefs.flood_retry_bridge_enabled = 0;
_prefs.flood_retry_advert_enabled = FLOOD_RETRY_ADVERT_DEFAULT;
_prefs.flood_channel_data_enabled = 1;
_prefs.flood_channel_block_max_hops = FLOOD_CHANNEL_BLOCK_HOPS_ALL;
_prefs.flood_channel_data_max_hops = FLOOD_CHANNEL_BLOCK_HOPS_ALL;
_prefs.battery_alert_enabled = 0;
_prefs.battery_alert_low_percent = BATTERY_ALERT_LOW_PERCENT_DEFAULT;
_prefs.battery_alert_critical_percent = BATTERY_ALERT_CRITICAL_PERCENT_DEFAULT;
#ifdef WITH_MQTT_BRIDGE
_prefs.agc_reset_interval = 7; // 28 seconds (secs/4) - prevents AGC drift on long-running observers
#endif
// Observer defaults (radio_watchdog, alert.*, snmp.*) moved to applyMQTTDefaults()
// in MQTTDefaults.h - they live in /mqtt_prefs now, not NodePrefs.
_prefs.rx_ps_rx_us = RX_POWERSAVING_DEFAULT_RX_US;
_prefs.rx_ps_sleep_us = RX_POWERSAVING_DEFAULT_SLEEP_US;
// bridge defaults
_prefs.bridge_enabled = 1; // enabled
_prefs.bridge_delay = 500; // milliseconds
_prefs.bridge_pkt_src = 1; // logRx (RX packets)
_prefs.bridge_baud = 115200; // baud rate
_prefs.bridge_channel = 1; // channel 1
StrHelper::strncpy(_prefs.bridge_secret, "LVSITANOS", sizeof(_prefs.bridge_secret));
// GPS defaults
_prefs.gps_enabled = 0;
_prefs.gps_interval = 0;
_prefs.advert_loc_policy = ADVERT_LOC_PREFS;
// MQTT/WiFi/timezone/radio_watchdog defaults live in /mqtt_prefs now (see applyMQTTDefaults).
_prefs.adc_multiplier = 0.0f; // 0.0f means use default board multiplier
#if defined(USE_SX1262) || defined(USE_SX1268)
#ifdef SX126X_RX_BOOSTED_GAIN
_prefs.rx_boosted_gain = SX126X_RX_BOOSTED_GAIN;
#else
_prefs.rx_boosted_gain = 1; // enabled by default;
#endif
#endif
_prefs.radio_fem_rxgain = 1; // LoRa FEM RX gain on by default (FEM boards)
pending_discover_tag = 0;
pending_discover_until = 0;
memset(default_scope.key, 0, sizeof(default_scope.key));
}
// OTA mesh-integration (receive/begin/loop) is centralized in mesh::Mesh - no per-example wiring.
void MyMesh::begin(FILESYSTEM *fs) {
mesh::Mesh::begin(); // also starts OTA (ota_ctx().begin) for all roles
_fs = fs;
// load persisted prefs
_cli.loadPrefs(_fs);
acl.load(_fs, self_id);
// TODO: key_store.begin();
region_map.load(_fs);
#if !defined(PORTABLE_MQTT_OBSERVER)
loadFloodChannelBlocks();
loadFloodPacketFilters();
loadFloodChannelScopes();
loadFloodGroupModeration();
loadClockSyncPrefs();
#endif
// establish default-scope
{
RegionEntry* r = region_map.getDefaultRegion();
if (r) {
region_map.getTransportKeysFor(*r, &default_scope, 1);
} else {
#ifdef DEFAULT_FLOOD_SCOPE_NAME
r = region_map.findByName(DEFAULT_FLOOD_SCOPE_NAME);
if (r == NULL) {
r = region_map.putRegion(DEFAULT_FLOOD_SCOPE_NAME, 0); // auto-create the default scope region
if (r) { r->flags = 0; } // Allow-flood
}
if (r) {
region_map.setDefaultRegion(r);
region_map.getTransportKeysFor(*r, &default_scope, 1);
}
#endif
}
}
#if defined(WITH_BRIDGE)
if (_prefs.bridge_enabled) {
#ifdef WITH_MQTT_BRIDGE
// Defer construction to avoid static init crashes on ESP32 classic
MQTTNodeInfo node_info;
node_info.node_name = _prefs.node_name;
node_info.freq = &_prefs.freq;
node_info.bw = &_prefs.bw;
node_info.sf = &_prefs.sf;
node_info.cr = &_prefs.cr;
node_info.repeat_flag = &_prefs.disable_fwd;
node_info.repeat_when_nonzero = false;
mqtt_bridge = new MQTTBridge(node_info, _cli.getObserverPrefs(),
getRTCClock(), &self_id);
#endif
AbstractBridge* active_bridge = activeBridge();
if (active_bridge) {
#ifdef WITH_MQTT_BRIDGE
// Set device public key for MQTT topics
char device_id[65];
mesh::LocalIdentity self_id = getSelfId();
mesh::Utils::toHex(device_id, self_id.pub_key, PUB_KEY_SIZE);
MESH_DEBUG_PRINTLN("Setting device ID: %s", device_id);
mqtt_bridge->setDeviceID(device_id);
// Set firmware version
mqtt_bridge->setFirmwareVersion(getFirmwareVer());
// Set board model
mqtt_bridge->setBoardModel(_cli.getBoard()->getManufacturerName());
// Set build date
mqtt_bridge->setBuildDate(getBuildDate());
// Set stats sources for automatic stats collection
mqtt_bridge->setStatsSources(this, _radio, _cli.getBoard(), _ms);
#ifdef WITH_SNMP
if (_cli.getObserverPrefs()->snmp_enabled) {
_snmp_agent.setNodeName(_prefs.node_name);
_snmp_agent.setFirmwareVersion(getFirmwareVer());
mqtt_bridge->setSNMPAgent(&_snmp_agent);
}
#endif
#endif
active_bridge->begin();
}
}
#endif
// Wire fault-alert reporter. begin() is safe regardless of bridge state.
// Passing `this` as the callbacks lets the reporter resolve a TransportKey
// scope (alert.region override, falling back to default_scope) so alert
// floods ride the same scope as adverts/channel messages.
#ifdef WITH_MQTT_BRIDGE
_alerter.begin(&_prefs, _cli.getObserverPrefs(), this, this);
_alerter.setBridge(mqtt_bridge);
#endif
#if defined(WITH_WEBCONFIG) && !defined(WEBCONFIG_NO_AUTO_AP)
bool start_webui = WebConfigServer::loadEnabled(false);
#ifdef WITH_MQTT_BRIDGE
// Preserve the MQTT observer's first-boot setup experience even though the
// persistent WebUI master switch defaults off on infrastructure roles.
start_webui = start_webui || _cli.getObserverPrefs()->wifi_ssid[0] == 0;
if (start_webui && _cli.getObserverPrefs()->wifi_ssid[0] == 0) {
if (mqtt_bridge && mqtt_bridge->isRunning()) mqtt_bridge->end();
}
#endif
if (start_webui) {
char wc_reply[160];
startWebConfig(false, wc_reply);
Serial.println(wc_reply);
}
#endif
saved_radio_apply_pending = !applySavedRadioParams();
if (!saved_radio_apply_pending) {
radio_driver.setTxPower(_prefs.tx_power_dbm);
radio_driver.setRxBoostedGainMode(_prefs.rx_boosted_gain);
}
MESH_DEBUG_PRINTLN("RX Boosted Gain Mode: %s",
radio_driver.getRxBoostedGainMode() ? "Enabled" : "Disabled");
const bool fem_gain_changed = board.canControlLoRaFemLna()
&& board.isLoRaFemLnaEnabled() != (_prefs.radio_fem_rxgain != 0);
if (board.setLoRaFemLnaEnabled(_prefs.radio_fem_rxgain) && fem_gain_changed) {
_radio->recalibrateNoiseFloor();
}
setRxPowerSaving(_prefs.rx_powersaving_enabled, _prefs.rx_ps_rx_us, _prefs.rx_ps_sleep_us);
updateAdvertTimer();
updateFloodAdvertTimer();
next_recent_repeater_sweep = futureMillis(RECENT_REPEATER_SWEEP_INTERVAL_MILLIS);
#if ENV_INCLUDE_GPS == 1
applyGpsPrefs();
#endif
}
bool MyMesh::sendFloodScoped(const TransportKey& scope, mesh::Packet* pkt, uint32_t delay_millis, uint8_t path_hash_size) {
if (scope.isNull()) {
return sendFlood(pkt, delay_millis, path_hash_size);
} else {
uint16_t codes[2];
codes[0] = scope.calcTransportCode(pkt);
codes[1] = 0; // REVISIT: set to 'home' Region, for sender/return region?
return sendFlood(pkt, codes, delay_millis, path_hash_size);
}
}
bool MyMesh::resolveAlertScope(TransportKey& dest) {
// Prefer an explicit alert.region override; look it up lazily via
// RegionMap so the operator can name a region that doesn't exist yet
// without polluting region_map state - we just silently fall through
// to default_scope on miss.
#ifdef WITH_MQTT_BRIDGE
const char* alert_region = _cli.getObserverPrefs()->alert_region;
if (alert_region[0]) {
auto r = region_map.findByNamePrefix(alert_region);
if (r && region_map.getTransportKeysFor(*r, &dest, 1) > 0 && !dest.isNull()) {
return true;
}
}
#endif
if (!default_scope.isNull()) {
dest = default_scope;
return true;
}
return false;
}
uint8_t MyMesh::getRegionDepth(const RegionEntry* region) {
if (region == NULL || region->isWildcard()) return 0;
uint8_t depth = 1;
uint16_t parent_id = region->parent;
const int region_count = region_map.getCount();
for (int hops = 0; parent_id != 0; hops++) {
if (hops >= region_count) return 0;
const RegionEntry* parent = region_map.findById(parent_id);
if (parent == NULL || parent->isWildcard()) return 0;
depth++;
parent_id = parent->parent;
}
return depth;
}
const RegionEntry* MyMesh::findNarrowestBatteryAlertRegion(bool& ambiguous) {
ambiguous = false;
const RegionEntry* narrowest = NULL;
uint8_t narrowest_depth = 0;
const int region_count = region_map.getCount();
for (int i = 0; i < region_count; i++) {
const RegionEntry* candidate = region_map.getByIdx(i);
// Bound the shared hierarchy walk so an unsaved temporary cycle cannot
// hang either alert selection or rxdelay scope arbitration.
uint8_t depth = getRegionDepth(candidate);
if (depth == 0) continue;
// A named region is not necessarily a usable transport scope. In
// particular, private regions need a stored key; do not select one merely
// because it happens to be the deepest entry in the hierarchy.
TransportKey candidate_scope;
if (!getBatteryAlertScopeForRegion(*candidate, candidate_scope)) continue;
if (depth > narrowest_depth) {
narrowest = candidate;
narrowest_depth = depth;
ambiguous = false;
} else if (depth == narrowest_depth) {
ambiguous = true;
}
}
return narrowest;
}
bool MyMesh::getBatteryAlertScopeForRegion(const RegionEntry& region, TransportKey& scope) {
if (region.isWildcard()) return false;
return region_map.getTransportKeysFor(region, &scope, 1) > 0 && !scope.isNull();
}
bool MyMesh::resolveBatteryAlertScope(TransportKey& scope) {
if (_prefs.battery_alert_region[0] == 0) return false;
const RegionEntry* region = region_map.findByName(_prefs.battery_alert_region);
return region != NULL && getBatteryAlertScopeForRegion(*region, scope);
}
bool MyMesh::sendRepeatersFloodText(const char* text, const TransportKey* scope,
mesh::Packet** queued_packet) {
if (queued_packet != NULL) *queued_packet = NULL;
if (text == NULL || *text == 0) return false;
mesh::GroupChannel channel;
if (!buildRepeatersChannel(channel)) {
return false;
}
uint8_t temp[MAX_PACKET_PAYLOAD];
uint32_t timestamp = getRTCClock()->getCurrentTimeUnique();
memcpy(temp, &timestamp, 4);
temp[4] = (TXT_TYPE_PLAIN << 2);
const size_t max_data_len = MAX_PACKET_PAYLOAD - CIPHER_BLOCK_SIZE;
const size_t prefix_cap = max_data_len > 5 ? max_data_len - 5 + 1 : 0;
char node_name[sizeof(_prefs.node_name)];
StrHelper::strncpy(node_name, _prefs.node_name, sizeof(node_name));
for (char* p = node_name; *p; p++) {
if (*p == ':') *p = ';';
}
int prefix_written = prefix_cap > 0
? snprintf((char*)&temp[5], prefix_cap, "%s: ", node_name)
: -1;
if (prefix_written < 0) {
return false;
}
size_t prefix_len = (size_t)prefix_written;
if (prefix_len >= prefix_cap) {
prefix_len = prefix_cap - 1;
}
size_t text_len = strlen(text);
size_t max_text_len = max_data_len - 5 - prefix_len;
if (text_len > max_text_len) {
text_len = max_text_len;
}
memcpy(&temp[5 + prefix_len], text, text_len);
auto pkt = createGroupDatagram(PAYLOAD_TYPE_GRP_TXT, channel, temp, 5 + prefix_len + text_len);
if (pkt == NULL) {
return false;
}
const TransportKey& send_scope = scope == NULL ? default_scope : *scope;
if (!sendFloodScoped(send_scope, pkt, 0, _prefs.path_hash_mode + 1)) {
return false;
}
if (queued_packet != NULL) *queued_packet = pkt;
return true;
}
void MyMesh::onSendComplete(mesh::Packet* packet) {
mesh::Mesh::onSendComplete(packet);
if (packet == pending_battery_alert_packet) {
pending_battery_alert_packet = NULL;
battery_alert_sent = true;
last_battery_alert_sent = uptime_millis + (uint32_t)(millis() - last_millis);
}
}
void MyMesh::onSendFail(mesh::Packet* packet) {
mesh::Mesh::onSendFail(packet);
if (packet == pending_battery_alert_packet) {
pending_battery_alert_packet = NULL;
}
}
void MyMesh::checkBatteryAlert() {
if (!_prefs.battery_alert_enabled) {
return;
}
if (next_battery_alert_check && !millisHasNowPassed(next_battery_alert_check)) {
return;
}
const uint64_t current_uptime_millis =
uptime_millis + (uint32_t)(millis() - last_millis);
// Ignore startup voltage sag and give solar/charger hardware time to settle.
// uptime_millis is 64-bit and includes time spent in the platform's light or
// event sleep, so this guard remains reliable across millis() wraparound.
// Arm the remaining startup delay once so subsequent loops use the cheaper
// 32-bit deadline check above and powersaving can include it as a wake limit.
if (current_uptime_millis < LOW_BATTERY_STARTUP_DELAY) {
next_battery_alert_check = futureMillis(
(unsigned long)(LOW_BATTERY_STARTUP_DELAY - current_uptime_millis));
return;
}
next_battery_alert_check = futureMillis(LOW_BATTERY_CHECK_INTERVAL);
// Only a completed over-the-air transmission starts the fixed cooldown.
// A queued packet remains tracked until Dispatcher reports success/failure.
if (pending_battery_alert_packet != NULL) {
return;
}
// Do this before region resolution and ADC sampling so repeat checks during
// the cooldown stay cheap. Battery recovery and alert toggles must not bypass
// the cooldown within this boot.
if (battery_alert_sent) {
if (current_uptime_millis - last_battery_alert_sent < LOW_BATTERY_ALERT_INTERVAL) {
return;
}
battery_alert_sent = false;
}
// Check the cheap configuration path first. This avoids powering the ADC or
// battery-divider circuitry when the selected region has been removed or no
// longer has a usable transport key.
TransportKey alert_scope;
if (!resolveBatteryAlertScope(alert_scope)) {
return; // low-battery alerts are never sent as an unscoped flood
}
uint16_t batt_mv = board.getBattMilliVolts();
uint8_t batt_pct = batteryPercentFromMilliVolts(batt_mv);
if (batt_mv <= LOW_BATTERY_MIN_VALID_MV || batt_pct >= _prefs.battery_alert_low_percent) {
return;
}
char text[96];
const char* severity = batt_pct <= _prefs.battery_alert_critical_percent
? "CRITICAL BATTERY"
: "LOW BATTERY";
snprintf(text, sizeof(text), "%s %u%% (%u mV)", severity, (uint32_t)batt_pct, (uint32_t)batt_mv);
mesh::Packet* queued_packet = NULL;
if (sendRepeatersFloodText(text, &alert_scope, &queued_packet)) {
pending_battery_alert_packet = queued_packet;
}
}
void MyMesh::checkRxInactivityWatchdog() {
if (!_prefs.rx_watchdog_enabled) {
next_rx_watchdog_check = 0;
return;
}
if (next_rx_watchdog_check == 0) {
next_rx_watchdog_check = futureMillis(RX_INACTIVITY_WATCHDOG_INTERVAL);
if (next_rx_watchdog_check == 0) next_rx_watchdog_check = 1;
return;
}
if (!millisHasNowPassed(next_rx_watchdog_check)) {
return;
}
next_rx_watchdog_check = futureMillis(RX_INACTIVITY_WATCHDOG_INTERVAL);
if (next_rx_watchdog_check == 0) next_rx_watchdog_check = 1;
const unsigned long now = millis();
const unsigned long last_rx = _radio->getLastRecvMillis();
if (last_rx == 0 || (uint32_t)(now - last_rx) >= RX_INACTIVITY_WATCHDOG_INTERVAL) {
MESH_DEBUG_PRINTLN("RX watchdog: no packet received in 12 hours, rebooting");
_cli.getBoard()->reboot();
}
}
bool MyMesh::applyRadioParams(float freq, float bw, uint8_t sf, uint8_t cr) {
uint32_t rx_us = _prefs.rx_ps_rx_us;
uint32_t sleep_us = _prefs.rx_ps_sleep_us;
if (_prefs.rx_powersaving_enabled && _prefs.rx_ps_level != 0) {
uint32_t preamble = _prefs.rx_ps_preamble ? _prefs.rx_ps_preamble : (sf <= 8 ? 32UL : 16UL);
if (!CommonCLI::calculateRxPowerSavingLevel(
_prefs.rx_ps_level, sf, bw, preamble, &rx_us, &sleep_us)) return false;
}
uint32_t timings[2] = {rx_us, sleep_us};
const uint32_t* applied_timings = _prefs.rx_powersaving_enabled
&& radio_driver.supportsRxPowerSaving() ? timings : NULL;
if (!radio_driver.setParams(freq, bw, sf, cr,
applied_timings)) {
MESH_DEBUG_PRINTLN("Radio schedule: radio busy or parameter apply failed");
return false;
}
active_bw = bw;
active_sf = sf;
active_cr = cr;
return true;
}
bool MyMesh::applySavedRadioParams() {
return applyRadioParams(_prefs.freq, _prefs.bw, _prefs.sf, _prefs.cr);
}
void MyMesh::queueSavedRadioApply() {
saved_radio_apply_pending = true;
scheduled_radio_retry_at = 0;
scheduled_radio_retry_failures = 0;
}
void MyMesh::refreshScheduledRadioState() {
next_scheduled_radio_time = 0;
scheduled_temp_radio_started = false;
scheduled_temp_radio_end_time = 0;
for (int i = 0; i < MAX_SCHEDULED_RADIO_SETTINGS; i++) {
const ScheduledRadioSetting& setting = scheduled_radio_settings[i];
if (!setting.active) continue;
uint32_t deadline = setting.start_time;
if (setting.temporary && setting.started) {
scheduled_temp_radio_started = true;
if (scheduled_temp_radio_end_time == 0 || setting.end_time < scheduled_temp_radio_end_time) {
scheduled_temp_radio_end_time = setting.end_time;
}
deadline = setting.end_time;
}
if (next_scheduled_radio_time == 0 || deadline < next_scheduled_radio_time) {
next_scheduled_radio_time = deadline;
}
}
const uint32_t now = (next_scheduled_radio_time != 0 || scheduled_temp_radio_end_time != 0)
? getRTCClock()->getCurrentTime()
: 0;
if (next_scheduled_radio_time != 0) {
uint32_t delay_ms = 0;
if (next_scheduled_radio_time > now) {
uint32_t delay_secs = next_scheduled_radio_time - now;
// millis timers are only unambiguous for half of their rollover range.
// A minute checkpoint handles RTC corrections without per-loop RTC reads
// or table scans, while bounding a forward clock-sync delay to one minute.
if (delay_secs > SCHEDULED_RADIO_CLOCK_CHECKPOINT_SECS) {
delay_secs = SCHEDULED_RADIO_CLOCK_CHECKPOINT_SECS;
}
delay_ms = delay_secs * 1000UL;
}
next_scheduled_radio_check_at = futureMillis(delay_ms);
} else {
next_scheduled_radio_check_at = 0;
}
if (scheduled_temp_radio_end_time != 0) {
uint32_t delay_ms = 0;
scheduled_temp_radio_end_check_final = true;
if (scheduled_temp_radio_end_time > now) {
uint32_t delay_secs = scheduled_temp_radio_end_time - now;
if (delay_secs > SCHEDULED_RADIO_CLOCK_CHECKPOINT_SECS) {
delay_secs = SCHEDULED_RADIO_CLOCK_CHECKPOINT_SECS;
scheduled_temp_radio_end_check_final = false;
}
delay_ms = delay_secs * 1000UL;
}
scheduled_temp_radio_end_check_at = futureMillis(delay_ms);
} else {
scheduled_temp_radio_end_check_at = 0;
scheduled_temp_radio_end_check_final = false;
}
if (next_scheduled_radio_time == 0 && !saved_radio_apply_pending) {
scheduled_radio_retry_at = 0;
scheduled_radio_retry_failures = 0;
}
}
bool MyMesh::hasStartedScheduledTempRadio() const {
return scheduled_temp_radio_started;
}
bool MyMesh::isTempRadioActive() const {
return temp_radio_applied;
}
int MyMesh::findFreeScheduledRadioSlot() const {
for (int i = 0; i < MAX_SCHEDULED_RADIO_SETTINGS; i++) {
if (!scheduled_radio_settings[i].active) {
return i;
}
}
return -1;
}
int MyMesh::countScheduledRadioSettings(bool temporary) const {
int count = 0;
for (int i = 0; i < MAX_SCHEDULED_RADIO_SETTINGS; i++) {
const ScheduledRadioSetting& setting = scheduled_radio_settings[i];
if (setting.active && setting.temporary == temporary) {
count++;
}
}
return count;
}
int MyMesh::findScheduledRadioSettingByIndex(bool temporary, int wanted) const {
bool used[MAX_SCHEDULED_RADIO_SETTINGS] = {};
for (int rank = 1; rank <= wanted; rank++) {
int best = -1;
for (int i = 0; i < MAX_SCHEDULED_RADIO_SETTINGS; i++) {
const ScheduledRadioSetting& setting = scheduled_radio_settings[i];
if (!setting.active || setting.temporary != temporary || used[i]) {
continue;
}
if (best < 0 || setting.start_time < scheduled_radio_settings[best].start_time
|| (setting.start_time == scheduled_radio_settings[best].start_time && i < best)) {
best = i;
}
}
if (best < 0) {
return -1;
}
used[best] = true;
if (rank == wanted) {
return best;
}
}
return -1;
}
int MyMesh::getScheduledRadioSettingIndex(bool temporary, int slot_idx) const {
int count = countScheduledRadioSettings(temporary);
for (int i = 1; i <= count; i++) {
if (findScheduledRadioSettingByIndex(temporary, i) == slot_idx) {
return i;
}
}
return -1;
}
bool MyMesh::scheduledRadioConflicts(bool temporary, uint32_t start_time, uint32_t end_time) const {
for (int i = 0; i < MAX_SCHEDULED_RADIO_SETTINGS; i++) {
const ScheduledRadioSetting& setting = scheduled_radio_settings[i];
if (!setting.active) {
continue;
}
if (temporary) {
if (setting.temporary && start_time < setting.end_time && end_time > setting.start_time) {
return true;
}
if (!setting.temporary && setting.start_time >= start_time && setting.start_time < end_time) {
return true;
}
} else {
if (!setting.temporary && setting.start_time == start_time) {
return true;
}
if (setting.temporary && start_time >= setting.start_time && start_time < setting.end_time) {
return true;
}
}
}
return false;
}
void MyMesh::clearScheduledRadioSetting(int idx, bool restore_if_started) {
if (idx < 0 || idx >= MAX_SCHEDULED_RADIO_SETTINGS) {
return;
}
bool restore_radio = restore_if_started
&& scheduled_radio_settings[idx].active
&& scheduled_radio_settings[idx].temporary
&& scheduled_radio_settings[idx].started;
scheduled_radio_settings[idx].active = false;
scheduled_radio_settings[idx].started = false;
refreshScheduledRadioState();
if (scheduled_radio_settings[idx].temporary && temp_radio_handoff_pending
&& countScheduledRadioSettings(true) == 0) {
temp_radio_handoff_pending = false;
queueSavedRadioApply();
}
if ((restore_radio || saved_radio_apply_pending) && !hasStartedScheduledTempRadio()) {
queueSavedRadioApply();
}
}
void MyMesh::formatScheduledRadioDuration(char* dest, size_t dest_len, uint32_t target_time) const {
uint32_t now = getRTCClock()->getCurrentTime();
if (target_time <= now) {
StrHelper::strncpy(dest, "now", dest_len);
return;
}
uint32_t seconds = target_time - now;
uint32_t days = seconds / 86400;
seconds %= 86400;
uint32_t hours = seconds / 3600;
seconds %= 3600;
uint32_t minutes = seconds / 60;
seconds %= 60;
if (days > 0) {
snprintf(dest, dest_len, "%lud%luh", (unsigned long)days, (unsigned long)hours);
} else if (hours > 0) {
snprintf(dest, dest_len, "%luh%lum", (unsigned long)hours, (unsigned long)minutes);
} else if (minutes > 0) {
snprintf(dest, dest_len, "%lum%lus", (unsigned long)minutes, (unsigned long)seconds);
} else {
snprintf(dest, dest_len, "%lus", (unsigned long)seconds);
}
}
void MyMesh::formatRadioParamTuple(char* dest, size_t dest_len, const ScheduledRadioSetting& setting) const {
char freq[16];
char bw[16];
formatFixed3(freq, sizeof(freq), setting.freq);
StrHelper::strncpy(bw, StrHelper::ftoa3(setting.bw), sizeof(bw));
snprintf(dest, dest_len, "%s,%s,%u,%u", freq, bw, (uint32_t)setting.sf, (uint32_t)setting.cr);
}
void MyMesh::formatScheduledRadioSetting(char* reply, int setting_idx, int display_idx) const {
const ScheduledRadioSetting& setting = scheduled_radio_settings[setting_idx];
char params[40];
char delay[16];
formatRadioParamTuple(params, sizeof(params), setting);
if (setting.temporary) {
if (setting.started) {
formatScheduledRadioDuration(delay, sizeof(delay), setting.end_time);
snprintf(reply, 160, "> %d:%s@%lu-%lu active ends in %s",
display_idx,
params,
(unsigned long)setting.start_time,
(unsigned long)setting.end_time,
delay);
} else {
formatScheduledRadioDuration(delay, sizeof(delay), setting.start_time);
snprintf(reply, 160, "> %d:%s@%lu-%lu starts in %s",
display_idx,
params,
(unsigned long)setting.start_time,
(unsigned long)setting.end_time,
delay);
}
} else {
formatScheduledRadioDuration(delay, sizeof(delay), setting.start_time);
snprintf(reply, 160, "> %d:%s@%lu in %s",
display_idx,
params,
(unsigned long)setting.start_time,
delay);
}
}
void MyMesh::addScheduledRadioParams(bool temporary, float freq, float bw, uint8_t sf, uint8_t cr,
uint32_t start_time, uint32_t end_time, char* reply) {
uint32_t now = getRTCClock()->getCurrentTime();
if (!isValidScheduledRadioParams(freq, bw, sf, cr)) {
strcpy(reply, "Error, invalid radio params");
return;
}
if (start_time <= now) {
strcpy(reply, "Error: start is in the past");
return;
}
if (temporary && end_time <= now) {
strcpy(reply, "Error: end is in the past");
return;
}
if (temporary && end_time <= start_time) {
strcpy(reply, "Error: end must be after start");
return;
}
if (countScheduledRadioSettings(temporary) >= MAX_SCHEDULED_RADIO_SETTINGS_PER_TYPE) {
snprintf(reply, 160, "Error: max %d queued", MAX_SCHEDULED_RADIO_SETTINGS_PER_TYPE);
return;
}
if (scheduledRadioConflicts(temporary, start_time, end_time)) {
strcpy(reply, "Error: schedule conflict");
return;
}
int slot = findFreeScheduledRadioSlot();
if (slot < 0) {
strcpy(reply, "Error: queue full");
return;
}
scheduled_radio_settings[slot].active = true;
scheduled_radio_settings[slot].temporary = temporary;
scheduled_radio_settings[slot].started = false;
scheduled_radio_settings[slot].freq = freq;
scheduled_radio_settings[slot].bw = bw;
scheduled_radio_settings[slot].sf = sf;
scheduled_radio_settings[slot].cr = cr;
scheduled_radio_settings[slot].start_time = start_time;
scheduled_radio_settings[slot].end_time = temporary ? end_time : 0;
// A newly requested schedule must not inherit the backoff of an older radio
// apply failure, especially when its deadline is sooner than that retry.
scheduled_radio_retry_at = 0;
scheduled_radio_retry_failures = 0;
refreshScheduledRadioState();
char delay[16];
formatScheduledRadioDuration(delay, sizeof(delay), start_time);
snprintf(reply, 160, "OK - %s %d in %s",
temporary ? "tempradioat" : "radioat",
getScheduledRadioSettingIndex(temporary, slot),
delay);
}
void MyMesh::formatScheduledRadioParams(bool temporary, const char* selector, char* reply) {
if (selectorIsEmpty(selector) || selectorIsAll(selector)) {
int count = countScheduledRadioSettings(temporary);
if (count == 0) {
strcpy(reply, "> -none-");
return;
}
int len = snprintf(reply, 160, "> ");
for (int display_idx = 1; display_idx <= count && len < 159; display_idx++) {
int idx = findScheduledRadioSettingByIndex(temporary, display_idx);
if (idx < 0) {
break;
}
char params[40];
formatRadioParamTuple(params, sizeof(params), scheduled_radio_settings[idx]);
int written;
if (temporary) {
written = snprintf(&reply[len], 160 - len, "%s%d:%s@%lu-%lu",
display_idx == 1 ? "" : " ",
display_idx,
params,
(unsigned long)scheduled_radio_settings[idx].start_time,
(unsigned long)scheduled_radio_settings[idx].end_time);
} else {
written = snprintf(&reply[len], 160 - len, "%s%d:%s@%lu",
display_idx == 1 ? "" : " ",
display_idx,
params,
(unsigned long)scheduled_radio_settings[idx].start_time);
}
if (written < 0 || written >= 160 - len) {
reply[159] = 0;
break;
}
len += written;
}
return;
}
int wanted = 0;
if (!parsePositiveSelector(selector, wanted)) {
strcpy(reply, temporary ? "Error, use: get tempradioat [n]" : "Error, use: get radioat [n]");
return;
}
int idx = findScheduledRadioSettingByIndex(temporary, wanted);
if (idx < 0) {
strcpy(reply, "Error: not found");
return;
}
formatScheduledRadioSetting(reply, idx, wanted);
}
void MyMesh::deleteScheduledRadioParams(bool temporary, const char* selector, char* reply) {
if (selectorIsEmpty(selector) || selectorIsAll(selector)) {
int deleted = 0;
bool restore_radio = false;
for (int i = 0; i < MAX_SCHEDULED_RADIO_SETTINGS; i++) {
ScheduledRadioSetting& setting = scheduled_radio_settings[i];
if (setting.active && setting.temporary == temporary) {
restore_radio = restore_radio || (setting.temporary && setting.started);
setting.active = false;
setting.started = false;
deleted++;
}
}
refreshScheduledRadioState();
if ((restore_radio || saved_radio_apply_pending) && !hasStartedScheduledTempRadio()) {
queueSavedRadioApply();
}
if (temporary && temp_radio_handoff_pending) {
temp_radio_handoff_pending = false;
queueSavedRadioApply();
}
snprintf(reply, 160, "OK - deleted %d", deleted);
return;
}
int wanted = 0;
if (!parsePositiveSelector(selector, wanted)) {
strcpy(reply, temporary ? "Error, use: del tempradioat [n]" : "Error, use: del radioat [n]");
return;
}
int idx = findScheduledRadioSettingByIndex(temporary, wanted);
if (idx < 0) {
strcpy(reply, "Error: not found");
return;
}
clearScheduledRadioSetting(idx, true);
strcpy(reply, "OK");
}
void MyMesh::processScheduledRadioSettings() {
if (scheduled_radio_retry_at && !millisHasNowPassed(scheduled_radio_retry_at)) return;
const bool schedule_check_due = next_scheduled_radio_time != 0
&& (next_scheduled_radio_check_at == 0
|| millisHasNowPassed(next_scheduled_radio_check_at));
uint32_t now = 0;
bool schedule_due = false;
if (schedule_check_due) {
now = getRTCClock()->getCurrentTime();
schedule_due = now >= next_scheduled_radio_time;
if (!schedule_due) refreshScheduledRadioState();
}
bool saved_apply_due = saved_radio_apply_pending && !temp_radio_handoff_pending
&& !scheduled_temp_radio_started;
if (!schedule_due && !saved_apply_due) return;
// Never touch modulation registers while a packet is still on air. Back off
// this check too; a long packet should not make the scheduler poll every loop.
if (hasOutbound()) {
scheduled_radio_retry_at = futureMillis(RADIO_APPLY_RETRY_INTERVAL_MILLIS);
return;
}
bool apply_failed = false;
bool saved_params_changed = false;
while (schedule_due) {
int due_idx = -1;
for (int i = 0; i < MAX_SCHEDULED_RADIO_SETTINGS; i++) {
const ScheduledRadioSetting& setting = scheduled_radio_settings[i];
if (!setting.active || setting.temporary || now < setting.start_time) {
continue;
}
if (due_idx < 0 || setting.start_time < scheduled_radio_settings[due_idx].start_time
|| (setting.start_time == scheduled_radio_settings[due_idx].start_time && i < due_idx)) {
due_idx = i;
}
}
if (due_idx < 0) {
break;
}
ScheduledRadioSetting& setting = scheduled_radio_settings[due_idx];
_prefs.freq = setting.freq;
_prefs.bw = setting.bw;
_prefs.sf = setting.sf;
_prefs.cr = setting.cr;
setting.active = false;
setting.started = false;
saved_params_changed = true;
}
if (saved_params_changed) {
// Keep level-derived RX duty-cycle windows synchronized with the newly
// persisted SF/BW. Manual RX/sleep timings intentionally remain fixed.
CommonCLI::recalculateRxPowerSavingFromLevel(&_prefs);
savePrefs();
queueSavedRadioApply();
}
if (schedule_due) {
for (int i = 0; i < MAX_SCHEDULED_RADIO_SETTINGS; i++) {
ScheduledRadioSetting& setting = scheduled_radio_settings[i];
if (setting.active && setting.temporary && setting.started && now >= setting.end_time) {
setting.active = false;
setting.started = false;
queueSavedRadioApply();
}
}
for (int i = 0; i < MAX_SCHEDULED_RADIO_SETTINGS; i++) {
ScheduledRadioSetting& setting = scheduled_radio_settings[i];
if (setting.active && setting.temporary && !setting.started && now >= setting.start_time) {
if (now >= setting.end_time) {
setting.active = false;
if (temp_radio_handoff_pending) {
temp_radio_handoff_pending = false;
queueSavedRadioApply();
}
} else if (applyRadioParams(setting.freq, setting.bw, setting.sf, setting.cr)) {
setting.started = true;
temp_radio_applied = true;
temp_radio_handoff_pending = false;
} else {
// setParams() can fail after changing only part of the modulation
// tuple. Restore the saved tuple if this temporary window expires
// before a later retry succeeds.
saved_radio_apply_pending = true;
apply_failed = true;
break;
}
}
}
}
refreshScheduledRadioState();
if (saved_radio_apply_pending && !temp_radio_handoff_pending
&& !scheduled_temp_radio_started && !apply_failed) {
// If begin() deferred the saved params to preserve a wake packet, its gain
// update was deferred for the same reason. Retry both at the first safe
// handoff; unsupported boosted-gain modes remain harmless here.
radio_driver.setRxBoostedGainMode(_prefs.rx_boosted_gain);
if (applySavedRadioParams()) {
radio_driver.setTxPower(_prefs.tx_power_dbm);
saved_radio_apply_pending = false;
temp_radio_applied = false;
} else {
apply_failed = true;
}
}
if (apply_failed) {
scheduled_radio_retry_at = futureMillis(nextRadioApplyRetryDelay(scheduled_radio_retry_failures));
} else {
scheduled_radio_retry_at = 0;
scheduled_radio_retry_failures = 0;
}
}
bool MyMesh::isMillisTimerDue(unsigned long timestamp) const {
return timestamp && millisHasNowPassed(timestamp);
}
bool MyMesh::hasScheduledRadioWorkDue() const {
if (scheduled_radio_retry_at && !millisHasNowPassed(scheduled_radio_retry_at)) return false;
if (saved_radio_apply_pending && !temp_radio_handoff_pending
&& !scheduled_temp_radio_started) return true;
return next_scheduled_radio_time != 0
&& (next_scheduled_radio_check_at == 0
|| millisHasNowPassed(next_scheduled_radio_check_at));
}
uint32_t MyMesh::limitSleepToMillisTimer(unsigned long timestamp, uint32_t sleep_secs) const {
if (!timestamp || sleep_secs == 0) {
return sleep_secs;
}
unsigned long now = millis();
if ((long)(now - timestamp) >= 0) {
return 0;
}
unsigned long remaining_ms = timestamp - now;
uint32_t remaining_secs = (remaining_ms + 999UL) / 1000UL;
return remaining_secs < sleep_secs ? remaining_secs : sleep_secs;
}
uint32_t MyMesh::limitSleepToScheduledRadioWork(uint32_t sleep_secs) const {
if (scheduled_radio_retry_at && !millisHasNowPassed(scheduled_radio_retry_at)) {
return limitSleepToMillisTimer(scheduled_radio_retry_at, sleep_secs);
}
return limitSleepToMillisTimer(next_scheduled_radio_check_at, sleep_secs);
}
uint32_t MyMesh::getPowerSaveSleepSeconds(uint32_t max_secs) const {
if (max_secs == 0 || hasPendingWork()) {
return 0;
}
uint32_t sleep_secs = max_secs;
uint32_t queue_delay_ms;
if (getNextQueueWakeDelay(queue_delay_ms)) {
uint32_t queue_delay_secs = (queue_delay_ms + 999UL) / 1000UL;
if (queue_delay_secs < sleep_secs) sleep_secs = queue_delay_secs;
}
uint32_t retry_delay_ms;
if (getNextRetryWakeDelay(retry_delay_ms)) {
uint32_t retry_delay_secs = (retry_delay_ms + 999UL) / 1000UL;
if (retry_delay_secs < sleep_secs) sleep_secs = retry_delay_secs;
}
sleep_secs = limitSleepToMillisTimer(next_flood_advert, sleep_secs);
sleep_secs = limitSleepToMillisTimer(next_local_advert, sleep_secs);
sleep_secs = limitSleepToMillisTimer(dirty_contacts_expiry, sleep_secs);
sleep_secs = limitSleepToMillisTimer(next_recent_repeater_sweep, sleep_secs);
if (_prefs.battery_alert_enabled) {
sleep_secs = limitSleepToMillisTimer(next_battery_alert_check, sleep_secs);
}
sleep_secs = limitSleepToScheduledRadioWork(sleep_secs);
return sleep_secs;
}
void MyMesh::applyTempRadioParams(float freq, float bw, uint8_t sf, uint8_t cr, int timeout_mins) {
scheduled_radio_retry_at = 0;
scheduled_radio_retry_failures = 0;
bool cancelled_started_temp = false;
for (int i = 0; i < MAX_SCHEDULED_RADIO_SETTINGS; i++) {
if (scheduled_radio_settings[i].active && scheduled_radio_settings[i].temporary) {
cancelled_started_temp = cancelled_started_temp || scheduled_radio_settings[i].started;
scheduled_radio_settings[i].active = false;
scheduled_radio_settings[i].started = false;
}
}
if (cancelled_started_temp) {
// Keep the currently-active channel long enough for the CLI reply and use
// the new temporary entry as an explicit handoff. If that entry expires or
// is deleted before applying, the scheduler restores saved parameters.
temp_radio_handoff_pending = true;
}
int slot = findFreeScheduledRadioSlot();
if (slot < 0) {
if (temp_radio_handoff_pending) {
temp_radio_handoff_pending = false;
queueSavedRadioApply();
}
refreshScheduledRadioState();
return;
}
uint32_t start_time = getRTCClock()->getCurrentTime() + 2; // give CLI reply time to be sent first
scheduled_radio_settings[slot].active = true;
scheduled_radio_settings[slot].temporary = true;
scheduled_radio_settings[slot].started = false;
scheduled_radio_settings[slot].freq = freq;
scheduled_radio_settings[slot].bw = bw;
scheduled_radio_settings[slot].sf = sf;
scheduled_radio_settings[slot].cr = cr;
scheduled_radio_settings[slot].start_time = start_time;
scheduled_radio_settings[slot].end_time = start_time + ((uint32_t)timeout_mins * 60);
refreshScheduledRadioState();
}
bool MyMesh::formatFileSystem() {
#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 MyMesh::sendSelfAdvertisement(int delay_millis, bool flood) {
mesh::Packet *pkt = createSelfAdvert();
if (pkt) {
if (flood) {
sendFloodScoped(default_scope, pkt, delay_millis, _prefs.path_hash_mode + 1);
} else {
sendZeroHop(pkt, delay_millis);
}
} else {
MESH_DEBUG_PRINTLN("ERROR: unable to create advertisement packet!");
}
}
void MyMesh::updateAdvertTimer() {
if (_prefs.advert_interval > 0) { // schedule local advert timer
next_local_advert = futureMillis((int)((uint32_t)_prefs.advert_interval * 2 * 60 * 1000));
} else {
next_local_advert = 0; // stop the timer
}
}
void MyMesh::updateFloodAdvertTimer() {
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 MyMesh::dumpLogFile() {
#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 MyMesh::setTxPower(int8_t power_dbm) {
radio_driver.setTxPower(power_dbm);
}
bool MyMesh::setRxPowerSaving(bool enable, uint32_t rx_us, uint32_t sleep_us) {
bool ok = radio_driver.setRxPowerSaving(enable, rx_us, sleep_us);
MESH_DEBUG_PRINTLN("RX Power Saving: %s (%lu/%lu us)%s",
enable ? "Enabled" : "Disabled",
(unsigned long)rx_us,
(unsigned long)sleep_us,
ok ? "" : " unsupported");
return ok;
}
void MyMesh::getRxPsWatchdogCounts(uint32_t* soft, uint32_t* hard) {
*soft = radio_driver.getRxPsWatchdogSoftCount();
*hard = radio_driver.getRxPsWatchdogHardCount();
}
bool MyMesh::setRxBoostedGain(bool enable) {
return radio_driver.setRxBoostedGainMode(enable);
}
void MyMesh::formatNeighborsReply(char *reply) {
char *dp = reply;
#if MAX_NEIGHBOURS
// create copy of neighbours list, skipping empty entries so we can sort it separately from main list
int16_t neighbours_count = 0;
NeighbourInfo* sorted_neighbours[MAX_NEIGHBOURS];
for (int i = 0; i < MAX_NEIGHBOURS; i++) {
auto neighbour = &neighbours[i];
if (neighbour->heard_timestamp > 0) {
sorted_neighbours[neighbours_count] = neighbour;
neighbours_count++;
}
}
// sort neighbours newest to oldest
std::sort(sorted_neighbours, sorted_neighbours + neighbours_count, [](const NeighbourInfo* a, const NeighbourInfo* b) {
return a->heard_timestamp > b->heard_timestamp; // desc
});
for (int i = 0; i < neighbours_count && dp - reply < 134; i++) {
NeighbourInfo *neighbour = sorted_neighbours[i];
// 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
}
void MyMesh::removeNeighbor(const uint8_t *pubkey, int key_len) {
#if MAX_NEIGHBOURS
if (pubkey == NULL || key_len <= 0 || key_len > PUB_KEY_SIZE) return;
for (int i = 0; i < MAX_NEIGHBOURS; i++) {
NeighbourInfo *neighbour = &neighbours[i];
if (memcmp(neighbour->id.pub_key, pubkey, key_len) == 0) {
neighbours[i] = NeighbourInfo(); // clear neighbour entry
}
}
#endif
}
void MyMesh::startRegionsLoad() {
temp_map.resetFrom(region_map); // rebuild regions in a temp instance
memset(load_stack, 0, sizeof(load_stack));
load_stack[0] = &temp_map.getWildcard();
region_load_active = true;
}
bool MyMesh::saveRegions() {
return region_map.save(_fs);
}
void MyMesh::onDefaultRegionChanged(const RegionEntry* r) {
if (r) {
region_map.getTransportKeysFor(*r, &default_scope, 1);
} else {
memset(default_scope.key, 0, sizeof(default_scope.key));
}
}
void MyMesh::clearFloodChannelBlockEntry(FloodChannelBlockEntry& entry) {
memset(&entry, 0, sizeof(entry));
}
void MyMesh::deriveFloodChannelBlockPrefix(const uint8_t* secret, uint8_t key_len,
uint8_t prefix[FLOOD_CHANNEL_BLOCK_PREFIX_LEN]) const {
mesh::Utils::sha256(prefix, FLOOD_CHANNEL_BLOCK_PREFIX_LEN, secret, key_len);
}
void MyMesh::seedDefaultFloodChannelBlocks() {
auto& entry = flood_channel_blocks[0];
clearFloodChannelBlockEntry(entry);
entry.active = true;
entry.key_len = CIPHER_KEY_SIZE;
entry.max_hops = DEFAULT_FLOOD_CHANNEL_BLOCK_HOPS;
mesh::Utils::sha256(entry.secret, CIPHER_KEY_SIZE,
(const uint8_t*)DEFAULT_FLOOD_CHANNEL_BLOCK_NAME,
strlen(DEFAULT_FLOOD_CHANNEL_BLOCK_NAME));
memset(&entry.secret[CIPHER_KEY_SIZE], 0, PUB_KEY_SIZE - CIPHER_KEY_SIZE);
deriveFloodChannelBlockPrefix(entry.secret, entry.key_len, entry.hash_prefix);
StrHelper::strncpy(entry.name, DEFAULT_FLOOD_CHANNEL_BLOCK_NAME, sizeof(entry.name));
}
void MyMesh::loadFloodChannelBlocks() {
memset(flood_channel_blocks, 0, sizeof(flood_channel_blocks));
if (_fs == NULL) {
return;
}
if (!_fs->exists(FLOOD_CHANNEL_BLOCK_FILE)) {
seedDefaultFloodChannelBlocks();
saveFloodChannelBlocks();
return;
}
File file = openFloodChannelBlockRead(_fs, FLOOD_CHANNEL_BLOCK_FILE);
if (!file) {
return;
}
uint8_t magic[4];
uint8_t count = 0;
bool success = file.read(magic, sizeof(magic)) == sizeof(magic)
&& memcmp(magic, "FCB2", sizeof(magic)) == 0
&& file.read(&count, sizeof(count)) == sizeof(count);
for (int i = 0; success && i < count && i < FLOOD_CHANNEL_BLOCK_SLOTS; i++) {
uint8_t active = 0;
uint8_t key_len = 0;
uint8_t max_hops = FLOOD_CHANNEL_BLOCK_HOPS_INHERIT;
uint8_t hash_prefix[FLOOD_CHANNEL_BLOCK_PREFIX_LEN];
uint8_t secret[PUB_KEY_SIZE];
char name[FLOOD_CHANNEL_BLOCK_NAME_LEN];
success = file.read(&active, sizeof(active)) == sizeof(active);
success = success && file.read(&key_len, sizeof(key_len)) == sizeof(key_len);
success = success && file.read(&max_hops, sizeof(max_hops)) == sizeof(max_hops);
success = success && file.read(hash_prefix, sizeof(hash_prefix)) == sizeof(hash_prefix);
success = success && file.read(secret, sizeof(secret)) == sizeof(secret);
success = success && file.read((uint8_t*)name, sizeof(name)) == sizeof(name);
if (!success) {
break;
}
name[sizeof(name) - 1] = 0;
if (active && (key_len == CIPHER_KEY_SIZE || key_len == PUB_KEY_SIZE) && name[0] != 0) {
auto& entry = flood_channel_blocks[i];
entry.active = true;
entry.key_len = key_len;
entry.max_hops = (max_hops == FLOOD_CHANNEL_BLOCK_HOPS_ALL
|| max_hops == FLOOD_CHANNEL_BLOCK_HOPS_INHERIT
|| (max_hops >= 1 && max_hops <= 7)) ? max_hops : FLOOD_CHANNEL_BLOCK_HOPS_INHERIT;
memcpy(entry.secret, secret, sizeof(entry.secret));
if (entry.key_len == CIPHER_KEY_SIZE) {
memset(&entry.secret[CIPHER_KEY_SIZE], 0, PUB_KEY_SIZE - CIPHER_KEY_SIZE);
}
deriveFloodChannelBlockPrefix(entry.secret, entry.key_len, entry.hash_prefix);
StrHelper::strncpy(entry.name, name, sizeof(entry.name));
}
}
file.close();
}
bool MyMesh::saveFloodChannelBlocks() {
if (_fs == NULL) {
return false;
}
File file = openFloodChannelBlockWrite(_fs, FLOOD_CHANNEL_BLOCK_FILE);
if (!file) {
return false;
}
const uint8_t magic[4] = {'F', 'C', 'B', '2'};
uint8_t count = FLOOD_CHANNEL_BLOCK_SLOTS;
bool success = file.write(magic, sizeof(magic)) == sizeof(magic);
success = success && file.write(&count, sizeof(count)) == sizeof(count);
for (int i = 0; success && i < FLOOD_CHANNEL_BLOCK_SLOTS; i++) {
const auto& entry = flood_channel_blocks[i];
uint8_t active = entry.active ? 1 : 0;
uint8_t max_hops = entry.active ? entry.max_hops : FLOOD_CHANNEL_BLOCK_HOPS_INHERIT;
success = file.write(&active, sizeof(active)) == sizeof(active);
success = success && file.write(&entry.key_len, sizeof(entry.key_len)) == sizeof(entry.key_len);
success = success && file.write(&max_hops, sizeof(max_hops)) == sizeof(max_hops);
success = success && file.write(entry.hash_prefix, sizeof(entry.hash_prefix)) == sizeof(entry.hash_prefix);
success = success && file.write(entry.secret, sizeof(entry.secret)) == sizeof(entry.secret);
success = success && file.write((const uint8_t*)entry.name, sizeof(entry.name)) == sizeof(entry.name);
}
file.close();
return success;
}
static const char* skipFloodFilterSpaces(const char* text) {
while (text != NULL && *text == ' ') text++;
return text == NULL ? "" : text;
}
static bool floodFilterAsciiEqual(const char* left, const char* right) {
if (left == NULL || right == NULL) return false;
while (*left && *right) {
char a = *left++;
char b = *right++;
if (a >= 'A' && a <= 'Z') a = (char)(a - 'A' + 'a');
if (b >= 'A' && b <= 'Z') b = (char)(b - 'A' + 'a');
if (a != b) return false;
}
return *left == 0 && *right == 0;
}
static bool floodFilterAsciiStartsWith(const char* text, const char* prefix) {
if (text == NULL || prefix == NULL) return false;
while (*prefix) {
char a = *text++;
char b = *prefix++;
if (a >= 'A' && a <= 'Z') a = (char)(a - 'A' + 'a');
if (b >= 'A' && b <= 'Z') b = (char)(b - 'A' + 'a');
if (a != b) return false;
}
return true;
}
static bool parseFloodFilterUnsigned(const char* text, uint8_t maximum, uint8_t& value) {
if (text == NULL || *text == 0) return false;
uint16_t parsed = 0;
for (const char* p = text; *p; p++) {
if (*p < '0' || *p > '9') return false;
uint16_t digit = (uint16_t)(*p - '0');
if (digit > maximum || parsed > (uint16_t)(maximum - digit) / 10U) return false;
parsed = (uint16_t)(parsed * 10U + digit);
}
value = (uint8_t)parsed;
return true;
}
static const char* floodFilterPayloadTypeName(uint8_t type) {
switch (type) {
case PAYLOAD_TYPE_REQ: return "req";
case PAYLOAD_TYPE_RESPONSE: return "response";
case PAYLOAD_TYPE_TXT_MSG: return "txt_msg";
case PAYLOAD_TYPE_ACK: return "ack";
case PAYLOAD_TYPE_ADVERT: return "advert";
case PAYLOAD_TYPE_GRP_TXT: return "grp_txt";
case PAYLOAD_TYPE_GRP_DATA: return "grp_data";
case PAYLOAD_TYPE_ANON_REQ: return "anon_req";
case PAYLOAD_TYPE_PATH: return "path";
case PAYLOAD_TYPE_TRACE: return "trace";
case PAYLOAD_TYPE_MULTIPART: return "multipart";
case PAYLOAD_TYPE_CONTROL: return "control";
case PAYLOAD_TYPE_OTA: return "ota";
case 0x0D: return "reserved13";
case 0x0E: return "reserved14";
case PAYLOAD_TYPE_RAW_CUSTOM: return "raw_custom";
case FLOOD_PACKET_FILTER_ANY_TYPE: return "any";
default: return "invalid";
}
}
static bool parseFloodFilterPayloadType(const char* text, uint8_t& type) {
uint8_t numeric;
if (parseFloodFilterUnsigned(text, PH_TYPE_MASK, numeric)) {
type = numeric;
return true;
}
if (text != NULL && text[0] == '0' && (text[1] == 'x' || text[1] == 'X') && text[2] != 0) {
uint8_t parsed = 0;
for (const char* p = text + 2; *p; p++) {
uint8_t digit;
if (*p >= '0' && *p <= '9') digit = (uint8_t)(*p - '0');
else if (*p >= 'a' && *p <= 'f') digit = (uint8_t)(*p - 'a' + 10);
else if (*p >= 'A' && *p <= 'F') digit = (uint8_t)(*p - 'A' + 10);
else return false;
if (parsed > (PH_TYPE_MASK - digit) / 16U) return false;
parsed = (uint8_t)(parsed * 16U + digit);
}
type = parsed;
return true;
}
if (floodFilterAsciiStartsWith(text, "payload_type_")) text += strlen("payload_type_");
if (floodFilterAsciiEqual(text, "any")) type = FLOOD_PACKET_FILTER_ANY_TYPE;
else if (floodFilterAsciiEqual(text, "req")) type = PAYLOAD_TYPE_REQ;
else if (floodFilterAsciiEqual(text, "response") || floodFilterAsciiEqual(text, "resp")) type = PAYLOAD_TYPE_RESPONSE;
else if (floodFilterAsciiEqual(text, "txt_msg") || floodFilterAsciiEqual(text, "txt")) type = PAYLOAD_TYPE_TXT_MSG;
else if (floodFilterAsciiEqual(text, "ack")) type = PAYLOAD_TYPE_ACK;
else if (floodFilterAsciiEqual(text, "advert")) type = PAYLOAD_TYPE_ADVERT;
else if (floodFilterAsciiEqual(text, "grp_txt") || floodFilterAsciiEqual(text, "group_text")) type = PAYLOAD_TYPE_GRP_TXT;
else if (floodFilterAsciiEqual(text, "grp_data") || floodFilterAsciiEqual(text, "group_data")) type = PAYLOAD_TYPE_GRP_DATA;
else if (floodFilterAsciiEqual(text, "anon_req")) type = PAYLOAD_TYPE_ANON_REQ;
else if (floodFilterAsciiEqual(text, "path")) type = PAYLOAD_TYPE_PATH;
else if (floodFilterAsciiEqual(text, "trace")) type = PAYLOAD_TYPE_TRACE;
else if (floodFilterAsciiEqual(text, "multipart")) type = PAYLOAD_TYPE_MULTIPART;
else if (floodFilterAsciiEqual(text, "control")) type = PAYLOAD_TYPE_CONTROL;
else if (floodFilterAsciiEqual(text, "ota")) type = PAYLOAD_TYPE_OTA;
else if (floodFilterAsciiEqual(text, "raw") || floodFilterAsciiEqual(text, "raw_custom")) type = PAYLOAD_TYPE_RAW_CUSTOM;
else return false;
return true;
}
static bool parseFloodFilterHopSpec(const char* text, uint8_t& min_hops, uint8_t& max_hops) {
if (text == NULL || *text == 0) return false;
if (floodFilterAsciiEqual(text, "all")) {
min_hops = 0;
max_hops = FLOOD_PACKET_FILTER_MAX_HOPS;
return true;
}
char spec[12];
if (strlen(text) >= sizeof(spec)) return false;
strcpy(spec, text);
size_t len = strlen(spec);
if (len > 1 && spec[len - 1] == '+') {
spec[len - 1] = 0;
if (!parseFloodFilterUnsigned(spec, FLOOD_PACKET_FILTER_MAX_HOPS, min_hops)) return false;
max_hops = FLOOD_PACKET_FILTER_MAX_HOPS;
return true;
}
char* dash = strchr(spec, '-');
if (dash != NULL) {
*dash++ = 0;
if (!parseFloodFilterUnsigned(spec, FLOOD_PACKET_FILTER_MAX_HOPS, min_hops)
|| !parseFloodFilterUnsigned(dash, FLOOD_PACKET_FILTER_MAX_HOPS, max_hops)) {
return false;
}
return min_hops <= max_hops;
}
if (!parseFloodFilterUnsigned(spec, FLOOD_PACKET_FILTER_MAX_HOPS, min_hops)) return false;
max_hops = min_hops;
return true;
}
static void formatFloodFilterHopSpec(char* dest, size_t dest_len, uint8_t min_hops, uint8_t max_hops) {
if (min_hops == 0 && max_hops == FLOOD_PACKET_FILTER_MAX_HOPS) {
snprintf(dest, dest_len, "all");
} else if (max_hops == FLOOD_PACKET_FILTER_MAX_HOPS) {
snprintf(dest, dest_len, "%u+", (uint32_t)min_hops);
} else if (min_hops == max_hops) {
snprintf(dest, dest_len, "%u", (uint32_t)min_hops);
} else {
snprintf(dest, dest_len, "%u-%u", (uint32_t)min_hops, (uint32_t)max_hops);
}
}
static uint8_t floodPacketFilterProtectedHops(const mesh::Packet* packet) {
if (packet == NULL) return 0;
switch (packet->getPayloadType()) {
case PAYLOAD_TYPE_RESPONSE:
case PAYLOAD_TYPE_ANON_REQ:
case PAYLOAD_TYPE_PATH:
return FLOOD_PACKET_FILTER_LOGIN_PROTECTED_HOPS;
case PAYLOAD_TYPE_TXT_MSG:
return FLOOD_PACKET_FILTER_TXT_MSG_PROTECTED_HOPS;
default:
return 0;
}
}
void MyMesh::seedDefaultFloodPacketFilters() {
auto& entry = flood_packet_filters[0];
memset(&entry, 0, sizeof(entry));
entry.active = true;
entry.payload_type = PAYLOAD_TYPE_OTA;
entry.min_hops = 0;
entry.max_hops = FLOOD_PACKET_FILTER_MAX_HOPS;
entry.suspend_on_temp_radio = true;
}
void MyMesh::loadFloodPacketFilters() {
memset(flood_packet_filters, 0, sizeof(flood_packet_filters));
if (_fs == NULL) {
seedDefaultFloodPacketFilters();
return;
}
if (!_fs->exists(FLOOD_PACKET_FILTER_FILE)) {
seedDefaultFloodPacketFilters();
saveFloodPacketFilters();
return;
}
File file = openFloodChannelBlockRead(_fs, FLOOD_PACKET_FILTER_FILE);
if (!file) return;
FloodPacketFilterEntry loaded[FLOOD_PACKET_FILTER_SLOTS];
memset(loaded, 0, sizeof(loaded));
uint8_t magic[4];
uint8_t count = 0;
bool success = file.read(magic, sizeof(magic)) == sizeof(magic);
bool version_1 = success && memcmp(magic, "FPF1", sizeof(magic)) == 0;
bool version_2 = success && memcmp(magic, "FPF2", sizeof(magic)) == 0;
success = (version_1 || version_2)
&& file.read(&count, sizeof(count)) == sizeof(count)
&& count <= FLOOD_PACKET_FILTER_SLOTS;
for (int i = 0; success && i < count; i++) {
uint8_t active = 0;
uint8_t suspend_on_temp_radio = 0;
success = file.read(&active, sizeof(active)) == sizeof(active);
success = success && file.read(&loaded[i].payload_type, sizeof(loaded[i].payload_type)) == sizeof(loaded[i].payload_type);
success = success && file.read(&loaded[i].min_hops, sizeof(loaded[i].min_hops)) == sizeof(loaded[i].min_hops);
success = success && file.read(&loaded[i].max_hops, sizeof(loaded[i].max_hops)) == sizeof(loaded[i].max_hops);
if (success && version_2) {
success = file.read(&suspend_on_temp_radio, sizeof(suspend_on_temp_radio)) == sizeof(suspend_on_temp_radio);
}
loaded[i].active = active != 0;
loaded[i].suspend_on_temp_radio = suspend_on_temp_radio != 0;
if (success && (active > 1 || suspend_on_temp_radio > 1
|| (loaded[i].suspend_on_temp_radio && !loaded[i].active))) {
success = false;
}
if (success && loaded[i].active
&& !((loaded[i].payload_type <= PH_TYPE_MASK
|| loaded[i].payload_type == FLOOD_PACKET_FILTER_ANY_TYPE)
&& loaded[i].min_hops <= loaded[i].max_hops
&& loaded[i].max_hops <= FLOOD_PACKET_FILTER_MAX_HOPS)) {
success = false;
}
}
file.close();
// A truncated or invalid file fails open; filtering must never be enabled by corrupt bytes.
if (success) memcpy(flood_packet_filters, loaded, sizeof(flood_packet_filters));
}
bool MyMesh::saveFloodPacketFilters() {
if (_fs == NULL) return false;
File file = openFloodChannelBlockWrite(_fs, FLOOD_PACKET_FILTER_FILE);
if (!file) return false;
const uint8_t magic[4] = {'F', 'P', 'F', '2'};
uint8_t count = FLOOD_PACKET_FILTER_SLOTS;
bool success = file.write(magic, sizeof(magic)) == sizeof(magic)
&& file.write(&count, sizeof(count)) == sizeof(count);
for (int i = 0; success && i < FLOOD_PACKET_FILTER_SLOTS; i++) {
const auto& entry = flood_packet_filters[i];
uint8_t active = entry.active ? 1 : 0;
uint8_t suspend_on_temp_radio = entry.suspend_on_temp_radio ? 1 : 0;
success = file.write(&active, sizeof(active)) == sizeof(active);
success = success && file.write(&entry.payload_type, sizeof(entry.payload_type)) == sizeof(entry.payload_type);
success = success && file.write(&entry.min_hops, sizeof(entry.min_hops)) == sizeof(entry.min_hops);
success = success && file.write(&entry.max_hops, sizeof(entry.max_hops)) == sizeof(entry.max_hops);
success = success && file.write(&suspend_on_temp_radio, sizeof(suspend_on_temp_radio)) == sizeof(suspend_on_temp_radio);
}
file.close();
return success;
}
bool MyMesh::shouldBlockFloodPacketForward(const mesh::Packet* packet) const {
if (packet == NULL || !packet->isRouteFlood()) return false;
uint8_t type = packet->getPayloadType();
uint8_t hops = packet->getPathHashCount();
// A transit repeater cannot decrypt enough to distinguish remote-login/CLI
// packets from ordinary peer traffic of the same outer types.
// Keep the short-path management transport reachable despite `flood.filter`;
// the existing repeat, flood.max, region, and loop gates still apply.
uint8_t protected_hops = floodPacketFilterProtectedHops(packet);
if (hops < protected_hops) {
MESH_DEBUG_PRINTLN("allowPacketForward: flood.filter remote-admin protection type=%d hops=%d",
type, hops);
return false;
}
for (int i = 0; i < FLOOD_PACKET_FILTER_SLOTS; i++) {
const auto& entry = flood_packet_filters[i];
if (!entry.active) continue;
// When the temporary radio is active, skip a row explicitly marked with
// `suspend=tempradio`. Other rows remain in force.
if (entry.suspend_on_temp_radio && isTempRadioActive()) continue;
// TRACE deliberately ignores catch-all rows so traceroute cannot be
// disabled accidentally. An explicit `trace` row remains available.
if (type == PAYLOAD_TYPE_TRACE && entry.payload_type == FLOOD_PACKET_FILTER_ANY_TYPE) continue;
if ((entry.payload_type == FLOOD_PACKET_FILTER_ANY_TYPE || entry.payload_type == type)
&& hops >= entry.min_hops && hops <= entry.max_hops) {
MESH_DEBUG_PRINTLN("allowPacketForward: flood.filter matched slot=%d type=%d hops=%d range=%d-%d",
i + 1, type, hops, entry.min_hops, entry.max_hops);
return true;
}
}
return false;
}
void MyMesh::formatFloodPacketFilterDetail(int index, char* reply, size_t reply_len) const {
if (index < 0 || index >= FLOOD_PACKET_FILTER_SLOTS || !flood_packet_filters[index].active) {
snprintf(reply, reply_len, "Err - empty filter slot");
return;
}
const auto& entry = flood_packet_filters[index];
char hops[12];
formatFloodFilterHopSpec(hops, sizeof(hops), entry.min_hops, entry.max_hops);
const char* suspension = entry.suspend_on_temp_radio ? " suspend=tempradio" : "";
if (entry.payload_type == FLOOD_PACKET_FILTER_ANY_TYPE) {
snprintf(reply, reply_len, "> %d type=any hops=%s route=flood%s", index + 1, hops, suspension);
} else {
snprintf(reply, reply_len, "> %d type=%s(%u) hops=%s route=flood%s", index + 1,
floodFilterPayloadTypeName(entry.payload_type), (uint32_t)entry.payload_type, hops, suspension);
}
}
void MyMesh::formatFloodPacketFilters(const char* args, char* reply) const {
const char* selector = skipFloodFilterSpaces(args);
if (*selector == '.') selector = skipFloodFilterSpaces(selector + 1);
if (*selector != 0) {
uint8_t slot;
if (!parseFloodFilterUnsigned(selector, FLOOD_PACKET_FILTER_SLOTS, slot) || slot == 0) {
snprintf(reply, 160, "Err - filter slot must be 1-%d", FLOOD_PACKET_FILTER_SLOTS);
return;
}
formatFloodPacketFilterDetail(slot - 1, reply, 160);
return;
}
size_t used = (size_t)snprintf(reply, 160, ">");
int active_count = 0;
bool truncated = false;
for (int i = 0; i < FLOOD_PACKET_FILTER_SLOTS; i++) {
const auto& entry = flood_packet_filters[i];
if (!entry.active) continue;
active_count++;
char hops[12];
char item[40];
formatFloodFilterHopSpec(hops, sizeof(hops), entry.min_hops, entry.max_hops);
snprintf(item, sizeof(item), entry.suspend_on_temp_radio ? " %d=%s@%s~tempradio" : " %d=%s@%s",
i + 1, floodFilterPayloadTypeName(entry.payload_type), hops);
size_t item_len = strlen(item);
if (used + item_len >= 156) {
truncated = true;
break;
}
memcpy(&reply[used], item, item_len + 1);
used += item_len;
}
if (active_count == 0) {
strcpy(reply, "> off");
} else if (truncated) {
StrHelper::strncpy(&reply[used], " ...", 160 - used);
}
}
void MyMesh::setFloodPacketFilter(const char* args, char* reply) {
const char* cursor = skipFloodFilterSpaces(args);
int requested_slot = -1;
if (*cursor == '.') {
cursor++;
const char* slot_start = cursor;
while (*cursor >= '0' && *cursor <= '9') cursor++;
size_t slot_len = (size_t)(cursor - slot_start);
char slot_text[8];
if (slot_len == 0 || slot_len >= sizeof(slot_text)) {
snprintf(reply, 160, "Err - filter slot must be 1-%d", FLOOD_PACKET_FILTER_SLOTS);
return;
}
memcpy(slot_text, slot_start, slot_len);
slot_text[slot_len] = 0;
uint8_t slot;
if (!parseFloodFilterUnsigned(slot_text, FLOOD_PACKET_FILTER_SLOTS, slot) || slot == 0) {
snprintf(reply, 160, "Err - filter slot must be 1-%d", FLOOD_PACKET_FILTER_SLOTS);
return;
}
requested_slot = slot - 1;
if (*cursor != ' ') {
strcpy(reply, "Err - expected packet type");
return;
}
}
cursor = skipFloodFilterSpaces(cursor);
if (strlen(cursor) >= 64) {
strcpy(reply, "Err - filter parameters too long");
return;
}
char params[64];
strcpy(params, cursor);
char* tokens[4];
int token_count = 0;
char* token = params;
while (*token != 0) {
if (token_count >= 4) {
strcpy(reply, "Err - too many flood filter parameters");
return;
}
tokens[token_count++] = token;
char* separator = strchr(token, ' ');
if (separator == NULL) break;
*separator++ = 0;
while (*separator == ' ') separator++;
token = separator;
}
if (token_count == 0) {
strcpy(reply, "Err - use: set flood.filter[.n] <type> [hops] [suspend=tempradio]");
return;
}
uint8_t payload_type;
if (!parseFloodFilterPayloadType(tokens[0], payload_type)) {
strcpy(reply, "Err - packet type must be name, any, 0-15, or 0x00-0x0F");
return;
}
uint8_t min_hops = 0;
uint8_t max_hops = FLOOD_PACKET_FILTER_MAX_HOPS;
bool hops_set = false;
bool suspend_on_temp_radio = false;
for (int i = 1; i < token_count; i++) {
if (floodFilterAsciiEqual(tokens[i], "suspend=tempradio")) {
if (suspend_on_temp_radio) {
strcpy(reply, "Err - duplicate suspend=tempradio");
return;
}
suspend_on_temp_radio = true;
} else if (!hops_set && parseFloodFilterHopSpec(tokens[i], min_hops, max_hops)) {
hops_set = true;
} else {
strcpy(reply, "Err - use one hop expression and optional suspend=tempradio");
return;
}
}
int slot = requested_slot;
if (slot < 0) {
for (int i = 0; i < FLOOD_PACKET_FILTER_SLOTS; i++) {
const auto& entry = flood_packet_filters[i];
if (entry.active && entry.payload_type == payload_type
&& entry.min_hops == min_hops && entry.max_hops == max_hops
&& entry.suspend_on_temp_radio == suspend_on_temp_radio) {
slot = i;
break;
}
}
}
if (slot < 0) {
for (int i = 0; i < FLOOD_PACKET_FILTER_SLOTS; i++) {
if (!flood_packet_filters[i].active) {
slot = i;
break;
}
}
}
if (slot < 0) {
strcpy(reply, "Err - filter table full");
return;
}
FloodPacketFilterEntry previous = flood_packet_filters[slot];
auto& entry = flood_packet_filters[slot];
entry.active = true;
entry.payload_type = payload_type;
entry.min_hops = min_hops;
entry.max_hops = max_hops;
entry.suspend_on_temp_radio = suspend_on_temp_radio;
if (!saveFloodPacketFilters()) {
entry = previous;
strcpy(reply, "Err - unable to save flood filter");
return;
}
char detail[160];
formatFloodPacketFilterDetail(slot, detail, sizeof(detail));
snprintf(reply, 160, "OK - %s", detail[0] == '>' ? skipFloodFilterSpaces(detail + 1) : detail);
}
void MyMesh::deleteFloodPacketFilter(const char* args, char* reply) {
const char* selector = skipFloodFilterSpaces(args);
if (*selector == '.') selector = skipFloodFilterSpaces(selector + 1);
if (floodFilterAsciiEqual(selector, "all")) {
FloodPacketFilterEntry previous[FLOOD_PACKET_FILTER_SLOTS];
memcpy(previous, flood_packet_filters, sizeof(previous));
memset(flood_packet_filters, 0, sizeof(flood_packet_filters));
if (!saveFloodPacketFilters()) {
memcpy(flood_packet_filters, previous, sizeof(flood_packet_filters));
strcpy(reply, "Err - unable to save flood filter");
} else {
strcpy(reply, "OK - all flood filters removed");
}
return;
}
uint8_t slot;
if (!parseFloodFilterUnsigned(selector, FLOOD_PACKET_FILTER_SLOTS, slot) || slot == 0) {
snprintf(reply, 160, "Err - use: del flood.filter.<1-%d>|all", FLOOD_PACKET_FILTER_SLOTS);
return;
}
int index = slot - 1;
if (!flood_packet_filters[index].active) {
strcpy(reply, "Err - empty filter slot");
return;
}
FloodPacketFilterEntry previous = flood_packet_filters[index];
memset(&flood_packet_filters[index], 0, sizeof(flood_packet_filters[index]));
if (!saveFloodPacketFilters()) {
flood_packet_filters[index] = previous;
strcpy(reply, "Err - unable to save flood filter");
} else {
strcpy(reply, "OK");
}
}
static bool isExactFloodChannelScopeSelector(uint8_t selector) {
return selector == CIPHER_KEY_SIZE || selector == PUB_KEY_SIZE;
}
static bool isLoginFloodPayloadType(uint8_t type) {
switch (type) {
case PAYLOAD_TYPE_REQ:
case PAYLOAD_TYPE_RESPONSE:
case PAYLOAD_TYPE_TXT_MSG:
case PAYLOAD_TYPE_ANON_REQ:
case PAYLOAD_TYPE_PATH:
return true;
default:
return false;
}
}
static uint8_t wildcardFloodChannelScopeSelector(uint8_t type) {
if (type == PAYLOAD_TYPE_GRP_TXT || type == PAYLOAD_TYPE_GRP_DATA) {
return FLOOD_CHANNEL_SCOPE_TXT_ANY;
}
if (isLoginFloodPayloadType(type)) return FLOOD_CHANNEL_SCOPE_LOGIN_ANY;
return FLOOD_CHANNEL_SCOPE_OTHER_ANY;
}
static const char* wildcardFloodChannelScopeName(uint8_t selector) {
if (selector == FLOOD_CHANNEL_SCOPE_TXT_ANY) return "txt:*";
if (selector == FLOOD_CHANNEL_SCOPE_LOGIN_ANY) return "login:*";
if (selector == FLOOD_CHANNEL_SCOPE_OTHER_ANY) return "other:*";
return NULL;
}
void MyMesh::loadFloodChannelScopes() {
memset(flood_channel_scopes, 0, sizeof(flood_channel_scopes));
if (_fs == NULL || !_fs->exists(FLOOD_CHANNEL_SCOPE_FILE)) return;
File file = openFloodChannelBlockRead(_fs, FLOOD_CHANNEL_SCOPE_FILE);
if (!file) return;
uint8_t magic[4];
uint8_t count = 0;
bool success = file.read(magic, sizeof(magic)) == sizeof(magic)
&& memcmp(magic, "FCS1", sizeof(magic)) == 0
&& file.read(&count, sizeof(count)) == sizeof(count);
uint8_t retained = count < FLOOD_CHANNEL_SCOPE_SLOTS ? count : FLOOD_CHANNEL_SCOPE_SLOTS;
size_t retained_bytes = (size_t)retained * sizeof(FloodChannelScopeEntry);
success = success && file.read((uint8_t*)flood_channel_scopes, retained_bytes) == retained_bytes;
FloodChannelScopeEntry discarded;
for (int i = retained; success && i < count; i++) {
success = file.read((uint8_t*)&discarded, sizeof(discarded)) == sizeof(discarded);
}
for (int i = 0; success && i < retained; i++) {
auto& entry = flood_channel_scopes[i];
if (entry.region_id == 0) {
memset(&entry, 0, sizeof(entry));
} else if (entry.selector <= FLOOD_CHANNEL_SCOPE_OTHER_ANY) {
entry.channel_hash = 0;
memset(entry.secret, 0, sizeof(entry.secret));
} else if (isExactFloodChannelScopeSelector(entry.selector)) {
mesh::Utils::sha256(&entry.channel_hash, sizeof(entry.channel_hash), entry.secret, entry.selector);
if (entry.selector == CIPHER_KEY_SIZE) {
memset(&entry.secret[CIPHER_KEY_SIZE], 0, PUB_KEY_SIZE - CIPHER_KEY_SIZE);
}
} else {
success = false;
}
}
file.close();
// A malformed table is inert; corrupt storage must never assign a scope.
if (!success) memset(flood_channel_scopes, 0, sizeof(flood_channel_scopes));
}
bool MyMesh::saveFloodChannelScopes(bool empty_table) {
if (_fs == NULL) return false;
File file = openFloodChannelBlockWrite(_fs, FLOOD_CHANNEL_SCOPE_TEMP_FILE);
if (!file) return false;
const uint8_t magic[4] = {'F', 'C', 'S', '1'};
uint8_t count = FLOOD_CHANNEL_SCOPE_SLOTS;
bool success = file.write(magic, sizeof(magic)) == sizeof(magic)
&& file.write(&count, sizeof(count)) == sizeof(count);
if (success && empty_table) {
FloodChannelScopeEntry empty;
memset(&empty, 0, sizeof(empty));
for (int i = 0; success && i < FLOOD_CHANNEL_SCOPE_SLOTS; i++) {
success = file.write((const uint8_t*)&empty, sizeof(empty)) == sizeof(empty);
}
} else if (success) {
success = file.write((const uint8_t*)flood_channel_scopes,
sizeof(flood_channel_scopes)) == sizeof(flood_channel_scopes);
}
file.close();
if (!success || !_fs->rename(FLOOD_CHANNEL_SCOPE_TEMP_FILE, FLOOD_CHANNEL_SCOPE_FILE)) {
_fs->remove(FLOOD_CHANNEL_SCOPE_TEMP_FILE);
return false;
}
return true;
}
bool MyMesh::applyFloodChannelScopeTarget(mesh::Packet* packet,
const FloodChannelScopeEntry& entry) {
RegionEntry* region = region_map.findById(entry.region_id);
TransportKey scope;
if (region == NULL || region->isWildcard() || (region->flags & REGION_DENY_FLOOD) != 0
|| region_map.getTransportKeysFor(*region, &scope, 1) <= 0 || scope.isNull()) {
return false;
}
packet->header = (packet->header & (uint8_t)~PH_ROUTE_MASK) | ROUTE_TYPE_TRANSPORT_FLOOD;
packet->transport_codes[0] = scope.calcTransportCode(packet);
packet->transport_codes[1] = 0;
MESH_DEBUG_PRINTLN("force-scoped unscoped flood type=%u to region=%s",
(unsigned int)packet->getPayloadType(), region->name);
return true;
}
bool MyMesh::applyFloodChannelScope(mesh::Packet* packet) {
if (packet == NULL || packet->getRouteType() != ROUTE_TYPE_FLOOD) return false;
uint8_t type = packet->getPayloadType();
// TRACE must cross region boundaries unchanged. Normal traceroute is direct,
// but preserve the same rule for any flood-form trace received over the air.
if (type == PAYLOAD_TYPE_TRACE) return false;
bool valid_channel_layout = (type == PAYLOAD_TYPE_GRP_TXT || type == PAYLOAD_TYPE_GRP_DATA)
&& packet->payload_len >= PATH_HASH_SIZE + CIPHER_MAC_SIZE + CIPHER_BLOCK_SIZE
&& ((packet->payload_len - PATH_HASH_SIZE - CIPHER_MAC_SIZE) % CIPHER_BLOCK_SIZE) == 0;
if (valid_channel_layout) {
uint8_t data[MAX_PACKET_PAYLOAD];
for (int i = 0; i < FLOOD_CHANNEL_SCOPE_SLOTS; i++) {
const auto& entry = flood_channel_scopes[i];
if (entry.region_id == 0 || !isExactFloodChannelScopeSelector(entry.selector)
|| packet->payload[0] != entry.channel_hash) continue;
if (mesh::Utils::MACThenDecrypt(entry.secret, data, &packet->payload[PATH_HASH_SIZE],
packet->payload_len - PATH_HASH_SIZE) > 0
&& applyFloodChannelScopeTarget(packet, entry)) return true;
}
}
uint8_t wildcard = wildcardFloodChannelScopeSelector(type);
for (int i = 0; i < FLOOD_CHANNEL_SCOPE_SLOTS; i++) {
const auto& entry = flood_channel_scopes[i];
if (entry.region_id != 0 && entry.selector == wildcard
&& applyFloodChannelScopeTarget(packet, entry)) return true;
}
return false;
}
uint8_t MyMesh::scoreFloodTransportScope(const mesh::Packet* packet, void* context) {
return static_cast<MyMesh*>(context)->getFloodTransportScopeDepth(packet);
}
uint8_t MyMesh::getFloodTransportScopeDepth(const mesh::Packet* packet) {
if (packet == NULL || packet->getRouteType() != ROUTE_TYPE_TRANSPORT_FLOOD) return 0;
uint8_t best_depth = 0;
const int region_count = region_map.getCount();
for (int i = 0; i < region_count; i++) {
const RegionEntry* region = region_map.getByIdx(i);
if ((region->flags & REGION_DENY_FLOOD) != 0) continue;
uint8_t depth = getRegionDepth(region);
if (depth <= best_depth) continue;
TransportKey keys[4];
int key_count = region_map.getTransportKeysFor(*region, keys, 4);
for (int key_idx = 0; key_idx < key_count; key_idx++) {
if (keys[key_idx].calcTransportCode(packet) == packet->transport_codes[0]) {
best_depth = depth;
break;
}
}
}
return best_depth;
}
static bool parseFloodModerationUnsigned(const char* text, uint32_t maximum, uint32_t& value) {
if (text == NULL || *text == 0) return false;
uint32_t parsed = 0;
for (const char* p = text; *p; p++) {
if (*p < '0' || *p > '9') return false;
uint32_t digit = (uint32_t)(*p - '0');
if (digit > maximum || parsed > (maximum - digit) / 10U) return false;
parsed = parsed * 10U + digit;
}
value = parsed;
return true;
}
// Returns 1 for a token, 0 at end of input, and -1 for malformed/oversize input.
static int takeFloodModerationToken(const char*& cursor, char* dest, size_t dest_len) {
cursor = skipFloodFilterSpaces(cursor);
if (*cursor == 0) return 0;
char quote = 0;
if (*cursor == '\'' || *cursor == '"') quote = *cursor++;
const char* start = cursor;
if (quote) {
while (*cursor && *cursor != quote) cursor++;
if (*cursor != quote) return -1;
} else {
while (*cursor && *cursor != ' ') cursor++;
}
size_t len = (size_t)(cursor - start);
if (len >= dest_len) return -1;
memcpy(dest, start, len);
dest[len] = 0;
if (quote) {
cursor++;
if (*cursor != 0 && *cursor != ' ') return -1;
}
return 1;
}
static bool parseFloodModerationChannel(const char* text, uint8_t secret[PUB_KEY_SIZE],
uint8_t& key_len, uint8_t hash_prefix[FLOOD_CHANNEL_BLOCK_PREFIX_LEN],
char* name, size_t name_len) {
if (text == NULL || *text == 0) return false;
memset(secret, 0, PUB_KEY_SIZE);
if (floodFilterAsciiEqual(text, "public")) {
key_len = CIPHER_KEY_SIZE;
memcpy(secret, FLOOD_PUBLIC_CHANNEL_SECRET, sizeof(FLOOD_PUBLIC_CHANNEL_SECRET));
StrHelper::strncpy(name, "public", name_len);
} else if (text[0] == '#' && text[1] != 0) {
key_len = CIPHER_KEY_SIZE;
mesh::Utils::sha256(secret, key_len, (const uint8_t*)text, strlen(text));
StrHelper::strncpy(name, text, name_len);
} else {
size_t hex_len = strlen(text);
if (hex_len != CIPHER_KEY_SIZE * 2 && hex_len != PUB_KEY_SIZE * 2) return false;
for (size_t i = 0; i < hex_len; i++) {
if (!mesh::Utils::isHexChar(text[i])) return false;
}
key_len = (uint8_t)(hex_len / 2);
if (!mesh::Utils::fromHex(secret, key_len, text)) return false;
mesh::Utils::sha256(hash_prefix, FLOOD_CHANNEL_BLOCK_PREFIX_LEN, secret, key_len);
char prefix_hex[FLOOD_CHANNEL_BLOCK_PREFIX_LEN * 2 + 1];
mesh::Utils::toHex(prefix_hex, hash_prefix, FLOOD_CHANNEL_BLOCK_PREFIX_LEN);
snprintf(name, name_len, "key:%s", prefix_hex);
}
mesh::Utils::sha256(hash_prefix, FLOOD_CHANNEL_BLOCK_PREFIX_LEN, secret, key_len);
return true;
}
static bool parseFloodChannelScopeIndex(const char*& cursor, int& index) {
cursor = skipFloodFilterSpaces(cursor);
index = -1;
if (*cursor != '.') return true;
cursor++;
const char* start = cursor;
while (*cursor >= '0' && *cursor <= '9') cursor++;
size_t len = (size_t)(cursor - start);
char text[4];
if (len == 0 || len >= sizeof(text)) return false;
memcpy(text, start, len);
text[len] = 0;
uint8_t slot = 0;
if (!parseFloodFilterUnsigned(text, FLOOD_CHANNEL_SCOPE_SLOTS, slot) || slot == 0) return false;
if (*cursor != 0 && *cursor != ' ') return false;
cursor = skipFloodFilterSpaces(cursor);
index = slot - 1;
return true;
}
void MyMesh::formatFloodChannelScopeDetail(int index, char* reply, size_t reply_len) {
if (index < 0 || index >= FLOOD_CHANNEL_SCOPE_SLOTS) {
snprintf(reply, reply_len, "Err - scope slot must be 1-%d", FLOOD_CHANNEL_SCOPE_SLOTS);
return;
}
const auto& entry = flood_channel_scopes[index];
if (entry.region_id == 0) {
snprintf(reply, reply_len, "> %d empty", index + 1);
return;
}
char channel[12];
const char* wildcard = wildcardFloodChannelScopeName(entry.selector);
if (wildcard != NULL) {
strcpy(channel, wildcard);
} else {
uint8_t prefix[FLOOD_CHANNEL_BLOCK_PREFIX_LEN];
mesh::Utils::sha256(prefix, sizeof(prefix), entry.secret, entry.selector);
mesh::Utils::toHex(channel, prefix, sizeof(prefix));
}
RegionEntry* region = region_map.findById(entry.region_id);
if (region != NULL) {
snprintf(reply, reply_len, "> %d match=%s scope=%s", index + 1, channel, region->name);
} else {
snprintf(reply, reply_len, "> %d match=%s scope=id:%u?", index + 1, channel,
(unsigned int)entry.region_id);
}
}
void MyMesh::formatFloodChannelScopes(const char* args, char* reply) {
const char* cursor = args;
int index = -1;
if (!parseFloodChannelScopeIndex(cursor, index)) {
snprintf(reply, 160, "Err - scope slot must be 1-%d", FLOOD_CHANNEL_SCOPE_SLOTS);
return;
}
if (*cursor != 0) {
strcpy(reply, "Err - use get flood.channel.scope[.n]");
return;
}
if (index >= 0) {
formatFloodChannelScopeDetail(index, reply, 160);
return;
}
int active = 0;
for (int i = 0; i < FLOOD_CHANNEL_SCOPE_SLOTS; i++) {
if (flood_channel_scopes[i].region_id != 0) active++;
}
snprintf(reply, 160, "> %d/%d active; use get flood.channel.scope.<n>",
active, FLOOD_CHANNEL_SCOPE_SLOTS);
}
void MyMesh::setFloodChannelScope(const char* args, char* reply) {
const char* cursor = args;
int requested_slot = -1;
if (!parseFloodChannelScopeIndex(cursor, requested_slot)) {
strcpy(reply, "Err - bad scope slot");
return;
}
char channel_text[80];
char region_text[32];
char extra[2];
if (takeFloodModerationToken(cursor, channel_text, sizeof(channel_text)) != 1
|| takeFloodModerationToken(cursor, region_text, sizeof(region_text)) != 1
|| takeFloodModerationToken(cursor, extra, sizeof(extra)) != 0) {
strcpy(reply, "Err - use: set flood.channel.scope[.n] <match> <region>");
return;
}
RegionEntry* region = region_map.findByNamePrefix(region_text);
TransportKey scope;
if (region == NULL || region->isWildcard() || (region->flags & REGION_DENY_FLOOD) != 0
|| region_map.getTransportKeysFor(*region, &scope, 1) <= 0 || scope.isNull()) {
strcpy(reply, "Err - bad scope region");
return;
}
uint8_t secret[PUB_KEY_SIZE];
memset(secret, 0, sizeof(secret));
uint8_t selector = FLOOD_CHANNEL_SCOPE_TXT_ANY;
uint8_t key_len = 0;
uint8_t hash_prefix[FLOOD_CHANNEL_BLOCK_PREFIX_LEN];
memset(hash_prefix, 0, sizeof(hash_prefix));
if (strcmp(channel_text, "*") == 0 || floodFilterAsciiEqual(channel_text, "txt:*")) {
selector = FLOOD_CHANNEL_SCOPE_TXT_ANY;
} else if (floodFilterAsciiEqual(channel_text, "login:*")) {
selector = FLOOD_CHANNEL_SCOPE_LOGIN_ANY;
} else if (floodFilterAsciiEqual(channel_text, "other:*")) {
selector = FLOOD_CHANNEL_SCOPE_OTHER_ANY;
} else {
char ignored_name[FLOOD_GROUP_MODERATION_NAME_LEN];
if (!parseFloodModerationChannel(channel_text, secret, key_len, hash_prefix,
ignored_name, sizeof(ignored_name))) {
strcpy(reply, "Err - bad scope matcher");
return;
}
selector = key_len;
}
int matching_slot = -1;
int free_slot = -1;
for (int i = 0; i < FLOOD_CHANNEL_SCOPE_SLOTS; i++) {
const auto& entry = flood_channel_scopes[i];
if (entry.region_id == 0) {
if (free_slot < 0) free_slot = i;
} else if (entry.selector == selector
&& (!isExactFloodChannelScopeSelector(selector)
|| memcmp(entry.secret, secret, PUB_KEY_SIZE) == 0)) {
matching_slot = i;
break;
}
}
int slot = requested_slot >= 0 ? requested_slot : (matching_slot >= 0 ? matching_slot : free_slot);
if (slot < 0) {
strcpy(reply, "Err - scope table full");
return;
}
FloodChannelScopeEntry previous = flood_channel_scopes[slot];
auto& entry = flood_channel_scopes[slot];
memset(&entry, 0, sizeof(entry));
entry.region_id = region->id;
entry.selector = selector;
if (isExactFloodChannelScopeSelector(selector)) {
entry.channel_hash = hash_prefix[0];
memcpy(entry.secret, secret, sizeof(entry.secret));
}
if (!saveFloodChannelScopes()) {
entry = previous;
strcpy(reply, "Err - save failed");
return;
}
formatFloodChannelScopeDetail(slot, reply, 160);
}
void MyMesh::deleteFloodChannelScope(const char* args, char* reply) {
const char* cursor = skipFloodFilterSpaces(args);
if (floodFilterAsciiEqual(cursor, "all")) {
if (!saveFloodChannelScopes(true)) {
strcpy(reply, "Err - save failed");
} else {
memset(flood_channel_scopes, 0, sizeof(flood_channel_scopes));
strcpy(reply, "OK");
}
return;
}
int index = -1;
if (!parseFloodChannelScopeIndex(cursor, index)) index = -1;
if (index < 0 || *cursor != 0) {
strcpy(reply, "Err - use: del flood.channel.scope.<n>|all");
return;
}
if (flood_channel_scopes[index].region_id == 0) {
strcpy(reply, "Err - empty scope slot");
return;
}
FloodChannelScopeEntry previous = flood_channel_scopes[index];
memset(&flood_channel_scopes[index], 0, sizeof(flood_channel_scopes[index]));
if (!saveFloodChannelScopes()) {
flood_channel_scopes[index] = previous;
strcpy(reply, "Err - save failed");
} else {
strcpy(reply, "OK");
}
}
static bool parseFloodModerationPath(const char* text, uint8_t& hash_size, uint8_t& path_hops,
uint8_t path[FLOOD_GROUP_MODERATION_PATH_BYTES_MAX]) {
memset(path, 0, FLOOD_GROUP_MODERATION_PATH_BYTES_MAX);
if (text == NULL || *text == 0 || strcmp(text, "*") == 0) {
hash_size = 0;
path_hops = 0;
return text != NULL && *text != 0;
}
if (strlen(text) >= 32) return false;
char input[32];
strcpy(input, text);
char* token = input;
uint8_t parsed_size = 0;
uint8_t count = 0;
while (token != NULL) {
char* comma = strchr(token, ',');
if (comma) *comma = 0;
size_t hex_len = strlen(token);
if (hex_len != 2 && hex_len != 4 && hex_len != 6) return false;
uint8_t token_size = (uint8_t)(hex_len / 2);
if ((parsed_size != 0 && parsed_size != token_size)
|| count >= FLOOD_GROUP_MODERATION_PATH_HOPS_MAX) return false;
for (size_t i = 0; i < hex_len; i++) {
if (!mesh::Utils::isHexChar(token[i])) return false;
}
parsed_size = token_size;
if (!mesh::Utils::fromHex(&path[count * parsed_size], parsed_size, token)) return false;
count++;
token = comma ? comma + 1 : NULL;
}
if (count == 0) return false;
hash_size = parsed_size;
path_hops = count;
return true;
}
static void formatFloodModerationPath(char* dest, size_t dest_len, uint8_t hash_size, uint8_t path_hops,
const uint8_t path[FLOOD_GROUP_MODERATION_PATH_BYTES_MAX]) {
if (hash_size == 0 || path_hops == 0) {
StrHelper::strncpy(dest, "*", dest_len);
return;
}
size_t used = 0;
dest[0] = 0;
for (uint8_t i = 0; i < path_hops; i++) {
char hop[7];
mesh::Utils::toHex(hop, &path[i * hash_size], hash_size);
int written = snprintf(&dest[used], dest_len - used, "%s%s", i == 0 ? "" : ",", hop);
if (written < 0 || (size_t)written >= dest_len - used) {
dest[dest_len - 1] = 0;
return;
}
used += (size_t)written;
}
}
static bool floodModerationSenderNameValid(const char* sender) {
if (sender == NULL || *sender == 0 || strlen(sender) >= FLOOD_GROUP_MODERATION_NAME_LEN) return false;
if (strcmp(sender, "*") == 0) return true;
for (const char* p = sender; *p; p++) {
if (*p == ':' || *p == '\r' || *p == '\n' || (uint8_t)*p < 0x20) return false;
}
return true;
}
static bool floodModerationPathMatches(const mesh::Packet* packet, uint8_t hash_size, uint8_t path_hops,
const uint8_t path[FLOOD_GROUP_MODERATION_PATH_BYTES_MAX]) {
if (path_hops == 0) return true;
if (packet == NULL || packet->getPathHashSize() != hash_size
|| packet->getPathHashCount() < path_hops) return false;
return memcmp(packet->path, path, path_hops * hash_size) == 0;
}
void MyMesh::loadFloodGroupModeration() {
memset(flood_group_moderation, 0, sizeof(flood_group_moderation));
if (_fs == NULL || !_fs->exists(FLOOD_GROUP_MODERATION_FILE)) return;
File file = openFloodChannelBlockRead(_fs, FLOOD_GROUP_MODERATION_FILE);
if (!file) return;
FloodGroupModerationEntry loaded[FLOOD_GROUP_MODERATION_SLOTS];
memset(loaded, 0, sizeof(loaded));
uint8_t magic[4];
uint8_t count = 0;
bool success = file.read(magic, sizeof(magic)) == sizeof(magic)
&& memcmp(magic, "FGM1", sizeof(magic)) == 0
&& file.read(&count, sizeof(count)) == sizeof(count)
&& count <= FLOOD_GROUP_MODERATION_SLOTS;
for (int i = 0; success && i < count; i++) {
auto& entry = loaded[i];
uint8_t active = 0;
success = file.read(&active, sizeof(active)) == sizeof(active);
success = success && file.read(&entry.key_len, sizeof(entry.key_len)) == sizeof(entry.key_len);
success = success && file.read(entry.secret, sizeof(entry.secret)) == sizeof(entry.secret);
success = success && file.read((uint8_t*)entry.channel_name, sizeof(entry.channel_name)) == sizeof(entry.channel_name);
success = success && file.read((uint8_t*)entry.sender, sizeof(entry.sender)) == sizeof(entry.sender);
success = success && file.read(&entry.path_hash_size, sizeof(entry.path_hash_size)) == sizeof(entry.path_hash_size);
success = success && file.read(&entry.path_hops, sizeof(entry.path_hops)) == sizeof(entry.path_hops);
success = success && file.read(entry.path, sizeof(entry.path)) == sizeof(entry.path);
success = success && file.read(&entry.max_hops, sizeof(entry.max_hops)) == sizeof(entry.max_hops);
success = success && file.read((uint8_t*)&entry.rate_per_minute, sizeof(entry.rate_per_minute)) == sizeof(entry.rate_per_minute);
entry.channel_name[sizeof(entry.channel_name) - 1] = 0;
entry.sender[sizeof(entry.sender) - 1] = 0;
entry.active = active != 0;
if (success && entry.active) {
bool path_valid = (entry.path_hops == 0 && entry.path_hash_size == 0)
|| (entry.path_hops >= 1 && entry.path_hops <= FLOOD_GROUP_MODERATION_PATH_HOPS_MAX
&& entry.path_hash_size >= 1 && entry.path_hash_size <= 3);
bool hops_valid = entry.max_hops == FLOOD_GROUP_MODERATION_HOPS_ALL
|| entry.max_hops <= FLOOD_PACKET_FILTER_MAX_HOPS;
success = (entry.key_len == CIPHER_KEY_SIZE || entry.key_len == PUB_KEY_SIZE)
&& entry.channel_name[0] != 0 && floodModerationSenderNameValid(entry.sender)
&& path_valid && hops_valid;
if (success) {
mesh::Utils::sha256(entry.hash_prefix, sizeof(entry.hash_prefix), entry.secret, entry.key_len);
}
}
}
file.close();
// As with the general table, malformed persistence fails open.
if (success) memcpy(flood_group_moderation, loaded, sizeof(flood_group_moderation));
}
bool MyMesh::saveFloodGroupModeration() {
if (_fs == NULL) return false;
File file = openFloodChannelBlockWrite(_fs, FLOOD_GROUP_MODERATION_FILE);
if (!file) return false;
const uint8_t magic[4] = {'F', 'G', 'M', '1'};
uint8_t count = FLOOD_GROUP_MODERATION_SLOTS;
bool success = file.write(magic, sizeof(magic)) == sizeof(magic)
&& file.write(&count, sizeof(count)) == sizeof(count);
for (int i = 0; success && i < FLOOD_GROUP_MODERATION_SLOTS; i++) {
const auto& entry = flood_group_moderation[i];
uint8_t active = entry.active ? 1 : 0;
success = file.write(&active, sizeof(active)) == sizeof(active);
success = success && file.write(&entry.key_len, sizeof(entry.key_len)) == sizeof(entry.key_len);
success = success && file.write(entry.secret, sizeof(entry.secret)) == sizeof(entry.secret);
success = success && file.write((const uint8_t*)entry.channel_name, sizeof(entry.channel_name)) == sizeof(entry.channel_name);
success = success && file.write((const uint8_t*)entry.sender, sizeof(entry.sender)) == sizeof(entry.sender);
success = success && file.write(&entry.path_hash_size, sizeof(entry.path_hash_size)) == sizeof(entry.path_hash_size);
success = success && file.write(&entry.path_hops, sizeof(entry.path_hops)) == sizeof(entry.path_hops);
success = success && file.write(entry.path, sizeof(entry.path)) == sizeof(entry.path);
success = success && file.write(&entry.max_hops, sizeof(entry.max_hops)) == sizeof(entry.max_hops);
success = success && file.write((const uint8_t*)&entry.rate_per_minute, sizeof(entry.rate_per_minute)) == sizeof(entry.rate_per_minute);
}
file.close();
return success;
}
bool MyMesh::decodeFloodGroupPlainText(const mesh::Packet* packet, const uint8_t* secret, uint8_t key_len,
uint32_t& timestamp, char* sender, size_t sender_len) const {
if (sender != NULL && sender_len > 0) sender[0] = 0;
if (packet == NULL || secret == NULL || sender == NULL || sender_len < 2
|| !packet->isRouteFlood() || packet->getPayloadType() != PAYLOAD_TYPE_GRP_TXT
|| (key_len != CIPHER_KEY_SIZE && key_len != PUB_KEY_SIZE)
|| packet->payload_len <= PATH_HASH_SIZE + CIPHER_MAC_SIZE) return false;
uint8_t channel_hash = 0;
mesh::Utils::sha256(&channel_hash, sizeof(channel_hash), secret, key_len);
if (packet->payload[0] != channel_hash) return false;
uint8_t data[MAX_PACKET_PAYLOAD];
int len = mesh::Utils::MACThenDecrypt(secret, data, &packet->payload[PATH_HASH_SIZE],
packet->payload_len - PATH_HASH_SIZE);
if (len <= 5 || (data[4] >> 2) != TXT_TYPE_PLAIN) return false;
memcpy(&timestamp, data, sizeof(timestamp));
const uint8_t* text = &data[5];
size_t text_len = (size_t)len - 5;
const uint8_t* colon = (const uint8_t*)memchr(text, ':', text_len);
if (colon == NULL) return false;
size_t parsed_len = (size_t)(colon - text);
while (parsed_len > 0 && text[parsed_len - 1] == ' ') parsed_len--;
if (parsed_len == 0 || parsed_len >= sender_len) return false;
for (size_t i = 0; i < parsed_len; i++) {
if (text[i] == '\r' || text[i] == '\n' || text[i] < 0x20) return false;
}
memcpy(sender, text, parsed_len);
sender[parsed_len] = 0;
return true;
}
bool MyMesh::shouldBlockFloodGroupTextForward(const mesh::Packet* packet) {
if (packet == NULL || !packet->isRouteFlood() || packet->getPayloadType() != PAYLOAD_TYPE_GRP_TXT
|| packet->payload_len <= PATH_HASH_SIZE + CIPHER_MAC_SIZE) return false;
uint8_t cached_secret[PUB_KEY_SIZE];
uint8_t cached_key_len = 0;
bool cache_present = false;
bool cache_valid = false;
char decoded_sender[FLOOD_GROUP_MODERATION_NAME_LEN];
decoded_sender[0] = 0;
uint8_t hops = packet->getPathHashCount();
uint8_t rate_slots[FLOOD_GROUP_MODERATION_SLOTS];
uint8_t rate_slot_count = 0;
uint32_t now = _ms->getMillis();
for (int i = 0; i < FLOOD_GROUP_MODERATION_SLOTS; i++) {
auto& entry = flood_group_moderation[i];
if (!entry.active || packet->payload[0] != entry.hash_prefix[0]
|| !floodModerationPathMatches(packet, entry.path_hash_size, entry.path_hops, entry.path)) continue;
bool same_cached_key = cache_present && cached_key_len == entry.key_len
&& memcmp(cached_secret, entry.secret, entry.key_len) == 0;
if (!same_cached_key) {
cache_present = true;
cached_key_len = entry.key_len;
memcpy(cached_secret, entry.secret, entry.key_len);
cache_valid = false;
decoded_sender[0] = 0;
uint32_t ignored_timestamp = 0;
cache_valid = decodeFloodGroupPlainText(packet, entry.secret, entry.key_len,
ignored_timestamp, decoded_sender,
sizeof(decoded_sender));
}
if (!cache_valid
|| (strcmp(entry.sender, "*") != 0 && !floodFilterAsciiEqual(entry.sender, decoded_sender))) continue;
bool rule_blocked = entry.max_hops != FLOOD_GROUP_MODERATION_HOPS_ALL && hops >= entry.max_hops;
if (entry.rate_per_minute != FLOOD_GROUP_MODERATION_RATE_UNLIMITED) {
uint16_t effective_count = (!entry.rate_window_active
|| now - entry.rate_window_started >= 60000UL)
? 0 : entry.rate_window_count;
if (entry.rate_per_minute == 0 || effective_count >= entry.rate_per_minute) {
rule_blocked = true;
}
}
if (rule_blocked) {
MESH_DEBUG_PRINTLN("allowPacketForward: flood.moderation slot=%d channel=%s sender=%s hops=%d rate=%d",
i + 1, entry.channel_name, decoded_sender, hops, entry.rate_per_minute);
return true;
}
if (entry.rate_per_minute != FLOOD_GROUP_MODERATION_RATE_UNLIMITED) {
rate_slots[rate_slot_count++] = (uint8_t)i;
}
}
// All matching deny rules accepted the packet. Only now spend the quota for
// each applicable rate rule, so hop-blocked or otherwise denied packets do
// not reduce the number of messages this repeater may actually forward.
for (uint8_t i = 0; i < rate_slot_count; i++) {
auto& entry = flood_group_moderation[rate_slots[i]];
if (!entry.rate_window_active || now - entry.rate_window_started >= 60000UL) {
entry.rate_window_active = true;
entry.rate_window_started = now;
entry.rate_window_count = 0;
}
entry.rate_window_count++;
}
return false;
}
void MyMesh::formatFloodGroupModerationDetail(int index, char* reply, size_t reply_len) const {
if (index < 0 || index >= FLOOD_GROUP_MODERATION_SLOTS || !flood_group_moderation[index].active) {
snprintf(reply, reply_len, "Err - empty moderation slot");
return;
}
const auto& entry = flood_group_moderation[index];
char path[32];
char rate[24];
char hops[12];
formatFloodModerationPath(path, sizeof(path), entry.path_hash_size, entry.path_hops, entry.path);
if (entry.rate_per_minute == FLOOD_GROUP_MODERATION_RATE_UNLIMITED) strcpy(rate, "unlimited");
else snprintf(rate, sizeof(rate), "%u/min", (uint32_t)entry.rate_per_minute);
if (entry.max_hops == FLOOD_GROUP_MODERATION_HOPS_ALL) strcpy(hops, "all");
else snprintf(hops, sizeof(hops), "%u", (uint32_t)entry.max_hops);
snprintf(reply, reply_len, "> %d channel=%s sender=\"%s\" path=%s rate=%s hops=%s",
index + 1, entry.channel_name, entry.sender, path, rate, hops);
}
void MyMesh::formatFloodGroupModeration(const char* args, char* reply) const {
const char* selector = skipFloodFilterSpaces(args);
if (*selector == '.') selector = skipFloodFilterSpaces(selector + 1);
if (*selector != 0) {
uint8_t slot;
if (!parseFloodFilterUnsigned(selector, FLOOD_GROUP_MODERATION_SLOTS, slot) || slot == 0) {
snprintf(reply, 160, "Err - moderation slot must be 1-%d", FLOOD_GROUP_MODERATION_SLOTS);
return;
}
formatFloodGroupModerationDetail(slot - 1, reply, 160);
return;
}
size_t used = (size_t)snprintf(reply, 160, ">");
int active_count = 0;
bool truncated = false;
for (int i = 0; i < FLOOD_GROUP_MODERATION_SLOTS; i++) {
const auto& entry = flood_group_moderation[i];
if (!entry.active) continue;
active_count++;
char action[20];
if (entry.rate_per_minute == 0) strcpy(action, "drop");
else if (entry.rate_per_minute != FLOOD_GROUP_MODERATION_RATE_UNLIMITED) {
snprintf(action, sizeof(action), "r%u", (uint32_t)entry.rate_per_minute);
} else if (entry.max_hops != FLOOD_GROUP_MODERATION_HOPS_ALL) {
snprintf(action, sizeof(action), "h%u", (uint32_t)entry.max_hops);
} else {
strcpy(action, "off");
}
char item[72];
snprintf(item, sizeof(item), " %d=%s/%s@%s", i + 1, entry.channel_name, entry.sender, action);
size_t item_len = strlen(item);
if (used + item_len >= 156) {
truncated = true;
break;
}
memcpy(&reply[used], item, item_len + 1);
used += item_len;
}
if (active_count == 0) strcpy(reply, "> off");
else if (truncated) StrHelper::strncpy(&reply[used], " ...", 160 - used);
}
void MyMesh::setFloodGroupModeration(const char* args, char* reply) {
const char* cursor = skipFloodFilterSpaces(args);
int requested_slot = -1;
if (*cursor == '.') {
cursor++;
const char* slot_start = cursor;
while (*cursor >= '0' && *cursor <= '9') cursor++;
size_t slot_len = (size_t)(cursor - slot_start);
char slot_text[8];
if (slot_len == 0 || slot_len >= sizeof(slot_text)) {
snprintf(reply, 160, "Err - moderation slot must be 1-%d", FLOOD_GROUP_MODERATION_SLOTS);
return;
}
memcpy(slot_text, slot_start, slot_len);
slot_text[slot_len] = 0;
uint8_t slot;
if (!parseFloodFilterUnsigned(slot_text, FLOOD_GROUP_MODERATION_SLOTS, slot) || slot == 0) {
snprintf(reply, 160, "Err - moderation slot must be 1-%d", FLOOD_GROUP_MODERATION_SLOTS);
return;
}
requested_slot = slot - 1;
if (*cursor != ' ') {
strcpy(reply, "Err - expected channel, sender, and action");
return;
}
}
char channel_text[80];
char sender[FLOOD_GROUP_MODERATION_NAME_LEN];
int token_result = takeFloodModerationToken(cursor, channel_text, sizeof(channel_text));
if (token_result != 1 || takeFloodModerationToken(cursor, sender, sizeof(sender)) != 1) {
strcpy(reply, "Err - use: set flood.moderation[.n] <channel> <sender> <action>");
return;
}
if (!floodModerationSenderNameValid(sender)) {
strcpy(reply, "Err - sender must be 1-31 chars; quote names with spaces");
return;
}
uint8_t path_hash_size = 0;
uint8_t path_hops = 0;
uint8_t path[FLOOD_GROUP_MODERATION_PATH_BYTES_MAX];
memset(path, 0, sizeof(path));
uint8_t max_hops = FLOOD_GROUP_MODERATION_HOPS_ALL;
uint16_t rate_per_minute = FLOOD_GROUP_MODERATION_RATE_UNLIMITED;
bool action_set = false;
bool rate_set = false;
char option[48];
while ((token_result = takeFloodModerationToken(cursor, option, sizeof(option))) == 1) {
if (strcmp(option, "drop") == 0) {
if (rate_set) {
strcpy(reply, "Err - use only one rate/drop option");
return;
}
rate_per_minute = 0;
rate_set = true;
action_set = true;
} else if (strncmp(option, "rate=", 5) == 0) {
if (rate_set) {
strcpy(reply, "Err - use only one rate/drop option");
return;
}
char rate_text[24];
StrHelper::strncpy(rate_text, option + 5, sizeof(rate_text));
char* slash = strchr(rate_text, '/');
if (slash == NULL || !(strcmp(slash, "/min") == 0 || strcmp(slash, "/m") == 0)) {
strcpy(reply, "Err - rate format is X/min");
return;
}
*slash = 0;
uint32_t parsed;
if (!parseFloodModerationUnsigned(rate_text, FLOOD_GROUP_MODERATION_RATE_UNLIMITED - 1, parsed)) {
strcpy(reply, "Err - rate must be 0-65534/min");
return;
}
rate_per_minute = (uint16_t)parsed;
rate_set = true;
action_set = true;
} else if (strncmp(option, "hops=", 5) == 0) {
if (strcmp(option + 5, "all") == 0) {
max_hops = FLOOD_GROUP_MODERATION_HOPS_ALL;
} else {
uint32_t parsed;
if (!parseFloodModerationUnsigned(option + 5, FLOOD_PACKET_FILTER_MAX_HOPS, parsed)) {
strcpy(reply, "Err - hops must be all or 0-63");
return;
}
max_hops = (uint8_t)parsed;
action_set = true;
}
} else if (strncmp(option, "path=", 5) == 0) {
if (!parseFloodModerationPath(option + 5, path_hash_size, path_hops, path)) {
strcpy(reply, "Err - path is * or 1-3 comma-separated 1/2/3-byte hashes");
return;
}
} else {
strcpy(reply, "Err - options: drop rate=X/min hops=N|all path=H1[,H2,H3]");
return;
}
}
if (token_result < 0) {
strcpy(reply, "Err - malformed or overlong moderation option");
return;
}
if (!action_set) {
strcpy(reply, "Err - set drop, rate=X/min, or hops=N");
return;
}
if (strcmp(sender, "*") == 0 && rate_per_minute != FLOOD_GROUP_MODERATION_RATE_UNLIMITED) {
strcpy(reply, "Err - rate limiting requires an exact sender name");
return;
}
uint8_t secret[PUB_KEY_SIZE];
uint8_t key_len = 0;
uint8_t hash_prefix[FLOOD_CHANNEL_BLOCK_PREFIX_LEN];
char channel_name[FLOOD_GROUP_MODERATION_NAME_LEN];
if (!parseFloodModerationChannel(channel_text, secret, key_len, hash_prefix,
channel_name, sizeof(channel_name))) {
strcpy(reply, "Err - channel must be public, #channel, or 128/256-bit hex key");
return;
}
int slot = requested_slot;
if (slot < 0) {
for (int i = 0; i < FLOOD_GROUP_MODERATION_SLOTS; i++) {
const auto& entry = flood_group_moderation[i];
if (entry.active && entry.key_len == key_len && memcmp(entry.secret, secret, key_len) == 0
&& floodFilterAsciiEqual(entry.sender, sender)
&& entry.path_hash_size == path_hash_size && entry.path_hops == path_hops
&& memcmp(entry.path, path, sizeof(path)) == 0) {
slot = i;
break;
}
}
}
if (slot < 0) {
for (int i = 0; i < FLOOD_GROUP_MODERATION_SLOTS; i++) {
if (!flood_group_moderation[i].active) {
slot = i;
break;
}
}
}
if (slot < 0) {
strcpy(reply, "Err - moderation table full");
return;
}
FloodGroupModerationEntry previous = flood_group_moderation[slot];
auto& entry = flood_group_moderation[slot];
memset(&entry, 0, sizeof(entry));
entry.active = true;
entry.key_len = key_len;
memcpy(entry.hash_prefix, hash_prefix, sizeof(entry.hash_prefix));
memcpy(entry.secret, secret, sizeof(entry.secret));
StrHelper::strncpy(entry.channel_name, channel_name, sizeof(entry.channel_name));
StrHelper::strncpy(entry.sender, sender, sizeof(entry.sender));
entry.path_hash_size = path_hash_size;
entry.path_hops = path_hops;
memcpy(entry.path, path, sizeof(entry.path));
entry.max_hops = max_hops;
entry.rate_per_minute = rate_per_minute;
if (!saveFloodGroupModeration()) {
entry = previous;
strcpy(reply, "Err - unable to save moderation rule");
return;
}
char detail[160];
formatFloodGroupModerationDetail(slot, detail, sizeof(detail));
snprintf(reply, 160, "OK - %s", detail[0] == '>' ? skipFloodFilterSpaces(detail + 1) : detail);
}
void MyMesh::deleteFloodGroupModeration(const char* args, char* reply) {
const char* selector = skipFloodFilterSpaces(args);
if (*selector == '.') selector = skipFloodFilterSpaces(selector + 1);
if (floodFilterAsciiEqual(selector, "all")) {
FloodGroupModerationEntry previous[FLOOD_GROUP_MODERATION_SLOTS];
memcpy(previous, flood_group_moderation, sizeof(previous));
memset(flood_group_moderation, 0, sizeof(flood_group_moderation));
if (!saveFloodGroupModeration()) {
memcpy(flood_group_moderation, previous, sizeof(flood_group_moderation));
strcpy(reply, "Err - unable to save moderation rules");
} else {
strcpy(reply, "OK - all moderation rules removed");
}
return;
}
uint8_t slot;
if (!parseFloodFilterUnsigned(selector, FLOOD_GROUP_MODERATION_SLOTS, slot) || slot == 0) {
snprintf(reply, 160, "Err - use: del flood.moderation.<1-%d>|all", FLOOD_GROUP_MODERATION_SLOTS);
return;
}
int index = slot - 1;
if (!flood_group_moderation[index].active) {
strcpy(reply, "Err - empty moderation slot");
return;
}
FloodGroupModerationEntry previous = flood_group_moderation[index];
memset(&flood_group_moderation[index], 0, sizeof(flood_group_moderation[index]));
if (!saveFloodGroupModeration()) {
flood_group_moderation[index] = previous;
strcpy(reply, "Err - unable to save moderation rules");
} else {
strcpy(reply, "OK");
}
}
void MyMesh::loadClockSyncPrefs() {
clock_sync_mesh_enabled = CLOCK_SYNC_MESH_DEFAULT_ENABLED != 0;
clock_sync_mesh_edge_enabled = CLOCK_SYNC_MESH_EDGE_DEFAULT_ENABLED != 0;
clock_sync_internet_enabled = false;
clock_sync_drift_seconds = CLOCK_SYNC_DRIFT_DEFAULT_SECONDS;
clock_sync_required_samples = CLOCK_SYNC_REQUIRED_SAMPLES_DEFAULT;
if (_fs != NULL && _fs->exists(CLOCK_SYNC_PREFS_FILE)) {
File file = openFloodChannelBlockRead(_fs, CLOCK_SYNC_PREFS_FILE);
if (file) {
uint8_t magic[4];
uint8_t mesh_enabled = 0;
uint8_t mesh_edge_enabled = CLOCK_SYNC_MESH_EDGE_DEFAULT_ENABLED != 0 ? 1 : 0;
uint8_t internet_enabled = 0;
uint8_t required_samples = CLOCK_SYNC_REQUIRED_SAMPLES_DEFAULT;
uint32_t drift_seconds = 0;
bool valid = file.read(magic, sizeof(magic)) == sizeof(magic);
bool version3 = valid && memcmp(magic, "CTS3", sizeof(magic)) == 0;
bool version4 = valid && memcmp(magic, "CTS4", sizeof(magic)) == 0;
valid = valid && (version3 || version4)
&& file.read(&mesh_enabled, sizeof(mesh_enabled)) == sizeof(mesh_enabled)
&& file.read(&internet_enabled, sizeof(internet_enabled)) == sizeof(internet_enabled)
&& file.read((uint8_t*)&drift_seconds, sizeof(drift_seconds)) == sizeof(drift_seconds)
&& file.read(&required_samples, sizeof(required_samples)) == sizeof(required_samples);
if (valid && version4) {
valid = file.read(&mesh_edge_enabled, sizeof(mesh_edge_enabled)) == sizeof(mesh_edge_enabled);
}
valid = valid && mesh_enabled <= 1 && mesh_edge_enabled <= 1 && internet_enabled <= 1
&& drift_seconds >= CLOCK_SYNC_DRIFT_MIN_SECONDS
&& drift_seconds <= CLOCK_SYNC_DRIFT_MAX_SECONDS
&& required_samples >= CLOCK_SYNC_REQUIRED_SAMPLES_MIN
&& required_samples <= CLOCK_SYNC_REQUIRED_SAMPLES_MAX;
file.close();
if (valid) {
clock_sync_mesh_enabled = mesh_enabled != 0;
clock_sync_mesh_edge_enabled = mesh_edge_enabled != 0;
clock_sync_internet_enabled = internet_enabled != 0;
clock_sync_drift_seconds = drift_seconds;
clock_sync_required_samples = required_samples;
}
}
}
resetClockSyncAttempt();
}
bool MyMesh::saveClockSyncPrefs() {
if (_fs == NULL) return false;
File file = openFloodChannelBlockWrite(_fs, CLOCK_SYNC_PREFS_FILE);
if (!file) return false;
const uint8_t magic[4] = {'C', 'T', 'S', '4'};
const uint8_t mesh_enabled = clock_sync_mesh_enabled ? 1 : 0;
const uint8_t mesh_edge_enabled = clock_sync_mesh_edge_enabled ? 1 : 0;
const uint8_t internet_enabled = clock_sync_internet_enabled ? 1 : 0;
bool success = file.write(magic, sizeof(magic)) == sizeof(magic)
&& file.write(&mesh_enabled, sizeof(mesh_enabled)) == sizeof(mesh_enabled)
&& file.write(&internet_enabled, sizeof(internet_enabled)) == sizeof(internet_enabled)
&& file.write((const uint8_t*)&clock_sync_drift_seconds,
sizeof(clock_sync_drift_seconds)) == sizeof(clock_sync_drift_seconds)
&& file.write(&clock_sync_required_samples,
sizeof(clock_sync_required_samples)) == sizeof(clock_sync_required_samples)
&& file.write(&mesh_edge_enabled, sizeof(mesh_edge_enabled)) == sizeof(mesh_edge_enabled);
file.close();
return success;
}
void MyMesh::resetClockSyncAttempt() {
clock_sync_complete = false;
clock_sync_internet_pending = false;
clock_sync_force_mesh_pending = false;
clock_sync_last_result = CLOCK_SYNC_RESULT_WAITING;
clock_sync_last_source = CLOCK_SYNC_SOURCE_NONE;
clock_sync_last_sample_count = 0;
clock_sync_last_fresh_count = 0;
clock_sync_last_required_count = clock_sync_required_samples;
clock_sync_last_estimate = 0;
clock_sync_last_abs_drift = 0;
clock_sync_internet_requested_millis = 0;
clock_sync_next_attempt_uptime = uptime_millis < CLOCK_SYNC_STARTUP_DELAY_MILLIS
? CLOCK_SYNC_STARTUP_DELAY_MILLIS : uptime_millis;
}
static const char* clockSyncMeshSuppressionName(uint8_t source) {
switch (source) {
case CLOCK_SYNC_MESH_SUPPRESS_CLI: return "cli";
case CLOCK_SYNC_MESH_SUPPRESS_GPS: return "gps";
case CLOCK_SYNC_MESH_SUPPRESS_INTERNET: return "internet";
default: return "none";
}
}
void MyMesh::suppressMeshClockSyncForBoot(uint8_t source) {
if (source == CLOCK_SYNC_MESH_SUPPRESS_NONE
|| clock_sync_mesh_suppressed_by != CLOCK_SYNC_MESH_SUPPRESS_NONE) return;
clock_sync_mesh_suppressed_by = source;
clock_sync_force_mesh_pending = false;
memset(clock_sync_samples, 0, sizeof(clock_sync_samples));
MESH_DEBUG_PRINTLN("Clock sync: LoRa estimate suppressed by %s until reboot",
clockSyncMeshSuppressionName(source));
}
void MyMesh::onManualClockSet() {
suppressMeshClockSyncForBoot(CLOCK_SYNC_MESH_SUPPRESS_CLI);
}
void MyMesh::checkGpsClockSyncOverride() {
LocationProvider* location = sensors.getLocationProvider();
if (location != NULL && location->consumeTimeSyncApplied()) {
suppressMeshClockSyncForBoot(CLOCK_SYNC_MESH_SUPPRESS_GPS);
}
}
bool MyMesh::isClockSyncCollectionActive() const {
if (!clock_sync_mesh_enabled
|| clock_sync_mesh_suppressed_by != CLOCK_SYNC_MESH_SUPPRESS_NONE) return false;
if (!clock_sync_complete) return true;
if (clock_sync_next_attempt_uptime == 0) return false;
if (uptime_millis >= clock_sync_next_attempt_uptime) return true;
// Keep only the evidence that could still be fresh at the next scheduled
// evaluation. This opens a two-hour rolling collection window before each
// seven-day re-sync without decrypting Public traffic for the entire week.
return clock_sync_next_attempt_uptime - uptime_millis
<= (uint64_t)CLOCK_SYNC_SAMPLE_MAX_AGE_MILLIS;
}
static void deriveClockSyncPathId(const mesh::Packet* packet,
uint8_t path_id[CLOCK_SYNC_PATH_ID_SIZE]) {
uint8_t material[2 + MAX_PATH_SIZE];
uint8_t count = packet->getPathHashCount();
uint8_t path_bytes = packet->getPathByteLen();
// All zero-hop receptions represent the same empty route, regardless of the
// otherwise-unused hash-size bits in path_len.
material[0] = count == 0 ? 0 : packet->getPathHashSize();
material[1] = count;
if (path_bytes > 0) memcpy(&material[2], packet->path, path_bytes);
mesh::Utils::sha256(path_id, CLOCK_SYNC_PATH_ID_SIZE, material, 2 + path_bytes);
}
uint32_t MyMesh::estimateClockTransitMillis(const mesh::Packet* packet) const {
if (packet == NULL || _radio == NULL) return 0;
uint8_t hops = packet->getPathHashCount();
uint8_t hash_size = packet->getPathHashSize();
int base_length = packet->getRawLength() - packet->getPathByteLen();
if (base_length < 2) return 0;
// The origin sends the packet without a path entry. Each relay then appends
// one entry, waits for its flood jitter, and transmits the longer packet.
uint64_t total = _radio->getEstAirtimeFor(base_length);
const uint64_t maximum = (uint64_t)CLOCK_SYNC_CONSENSUS_WINDOW_SECONDS * 1000ULL;
for (uint8_t relay = 1; relay <= hops; relay++) {
uint32_t airtime = _radio->getEstAirtimeFor(base_length + relay * hash_size);
if (_prefs.tx_delay_factor > 0.0f) {
// Flood forwarding selects uniformly from 0..5*t, where
// t=airtime*tx_delay_factor. Use its midpoint as the best expectation.
float expected_delay = (float)airtime * _prefs.tx_delay_factor * 2.5f;
if (expected_delay > 0.0f) total += (uint32_t)(expected_delay + 0.5f);
}
total += airtime;
if (total >= maximum) return (uint32_t)maximum;
}
return (uint32_t)total;
}
void MyMesh::recordClockSyncSample(uint8_t source_kind, const uint8_t source_id[4], uint32_t epoch,
const mesh::Packet* packet) {
if (!isClockSyncCollectionActive() || source_id == NULL
|| packet == NULL || !packet->isRouteFlood() || !clockSyncEpochIsValid(epoch)) return;
uint32_t transit_millis = estimateClockTransitMillis(packet);
uint32_t transit_seconds = (transit_millis + 500UL) / 1000UL;
uint32_t maximum = clockSyncMaximumValidEpoch();
if (epoch > maximum - transit_seconds) return;
epoch += transit_seconds;
uint8_t path_id[CLOCK_SYNC_PATH_ID_SIZE];
deriveClockSyncPathId(packet, path_id);
uint32_t now = _ms->getMillis();
uint32_t received_millis = _radio == NULL ? 0 : _radio->getLastRecvMillis();
// RadioLib records this immediately after reading the packet. Starting age
// there also accounts for signature/decryption/filter processing before this
// function runs. Fall back for radio backends that do not expose RX time.
if (received_millis == 0 || now - received_millis > 60000UL) received_millis = now;
int source_slot = -1;
for (int i = 0; i < CLOCK_SYNC_SAMPLE_SLOTS; i++) {
const ClockSyncSample& sample = clock_sync_samples[i];
if (sample.active && sample.source_kind == source_kind
&& memcmp(sample.source_id, source_id, sizeof(sample.source_id)) == 0) {
source_slot = i;
break;
}
}
if (source_slot >= 0) {
const ClockSyncSample& prior = clock_sync_samples[source_slot];
// An identical reception must not make old evidence look fresh.
if (prior.epoch == epoch
&& memcmp(prior.path_id, path_id, sizeof(prior.path_id)) == 0) return;
}
if (mesh::clockSyncRequiresUniquePath(clock_sync_mesh_edge_enabled)) {
// In normal mode every fresh vote must arrive through a distinct full
// received path. This also means only one zero-hop vote can be present.
for (int i = 0; i < CLOCK_SYNC_SAMPLE_SLOTS; i++) {
const ClockSyncSample& sample = clock_sync_samples[i];
if (i == source_slot || !sample.active
|| now - sample.received_millis > CLOCK_SYNC_SAMPLE_MAX_AGE_MILLIS) continue;
if (memcmp(sample.path_id, path_id, sizeof(sample.path_id)) == 0) return;
}
}
int slot = source_slot;
int reusable = -1;
int oldest = 0;
uint32_t oldest_age = 0;
for (int i = 0; slot < 0 && i < CLOCK_SYNC_SAMPLE_SLOTS; i++) {
const ClockSyncSample& sample = clock_sync_samples[i];
uint32_t age = sample.active ? now - sample.received_millis : 0;
if ((!sample.active || age > CLOCK_SYNC_SAMPLE_MAX_AGE_MILLIS) && reusable < 0) reusable = i;
if (sample.active && age >= oldest_age) {
oldest_age = age;
oldest = i;
}
}
if (slot < 0) slot = reusable >= 0 ? reusable : oldest;
ClockSyncSample& sample = clock_sync_samples[slot];
sample.active = true;
sample.source_kind = source_kind;
memcpy(sample.source_id, source_id, sizeof(sample.source_id));
memcpy(sample.path_id, path_id, sizeof(sample.path_id));
sample.epoch = epoch;
sample.received_millis = received_millis;
}
void MyMesh::recordAcceptedFloodClockSample(const mesh::Packet* packet) {
if (!isClockSyncCollectionActive() || packet == NULL) return;
if (packet->getPayloadType() == PAYLOAD_TYPE_GRP_TXT) {
recordPublicChannelClockSample(packet);
} else if (packet->getPayloadType() == PAYLOAD_TYPE_ADVERT) {
// Mesh::onRecvPacket reaches allowPacketForward() for adverts only after
// verifying the Ed25519 signature over this identity and timestamp.
const size_t minimum = PUB_KEY_SIZE + sizeof(uint32_t) + SIGNATURE_SIZE;
if (packet->payload_len < minimum) return;
uint8_t source_id[4];
mesh::Utils::sha256(source_id, sizeof(source_id), packet->payload, PUB_KEY_SIZE);
uint32_t timestamp = 0;
memcpy(&timestamp, &packet->payload[PUB_KEY_SIZE], sizeof(timestamp));
recordClockSyncSample(mesh::CLOCK_SYNC_SAMPLE_SOURCE_SIGNED_ADVERT,
source_id, timestamp, packet);
}
}
void MyMesh::recordPublicChannelClockSample(const mesh::Packet* packet) {
if (!isClockSyncCollectionActive()) return;
uint32_t timestamp = 0;
char sender[FLOOD_GROUP_MODERATION_NAME_LEN];
if (!decodeFloodGroupPlainText(packet, FLOOD_PUBLIC_CHANNEL_SECRET, CIPHER_KEY_SIZE,
timestamp, sender, sizeof(sender))) return;
// Treat ASCII case variants of the same display name as one (unverified) source.
for (char* p = sender; *p; p++) {
if (*p >= 'A' && *p <= 'Z') *p = (char)(*p - 'A' + 'a');
}
uint8_t source_id[4];
mesh::Utils::sha256(source_id, sizeof(source_id), (const uint8_t*)sender, strlen(sender));
recordClockSyncSample(mesh::CLOCK_SYNC_SAMPLE_SOURCE_PUBLIC_CHANNEL,
source_id, timestamp, packet);
}
bool MyMesh::estimateMeshClock(uint32_t& estimate, uint8_t& fresh_count,
uint8_t& agreeing_count, uint8_t& required_count) const {
uint32_t values[CLOCK_SYNC_SAMPLE_SLOTS];
uint8_t count = 0;
uint32_t now = _ms->getMillis();
uint32_t maximum = clockSyncMaximumValidEpoch();
for (int i = 0; i < CLOCK_SYNC_SAMPLE_SLOTS; i++) {
const ClockSyncSample& sample = clock_sync_samples[i];
if (!sample.active) continue;
uint32_t age_millis = now - sample.received_millis;
if (age_millis > CLOCK_SYNC_SAMPLE_MAX_AGE_MILLIS) continue;
uint32_t age_seconds = age_millis / 1000UL;
if (sample.epoch > maximum - age_seconds) continue;
values[count++] = sample.epoch + age_seconds;
}
mesh::ClockSyncConsensusResult result = mesh::evaluateClockSyncConsensus(
values, count, clock_sync_required_samples, CLOCK_SYNC_CONSENSUS_WINDOW_SECONDS);
fresh_count = result.fresh_count;
agreeing_count = result.agreeing_count;
required_count = result.required_count;
estimate = result.estimate;
return result.consensus;
}
static uint32_t rebaseClockTimestamp(uint32_t timestamp, uint32_t old_now, uint32_t new_now) {
if (timestamp == 0) return 0;
uint32_t age = old_now >= timestamp ? old_now - timestamp : 0;
return new_now > age ? new_now - age : 1;
}
bool MyMesh::applyClockEstimate(uint32_t estimate, uint8_t source, uint8_t sample_count) {
if (!clockSyncEpochIsValid(estimate)) return false;
#ifdef WITH_MQTT_BRIDGE
// Close the normal cross-core race where NTP can finish after checkClockSync()
// selected mesh fallback but before that estimate reaches the RTC.
if (source == CLOCK_SYNC_SOURCE_MESH && mqtt_bridge != NULL && mqtt_bridge->hasNtpTime()) {
suppressMeshClockSyncForBoot(CLOCK_SYNC_MESH_SUPPRESS_INTERNET);
return true;
}
#endif
uint32_t old_now = getRTCClock()->getCurrentTime();
int64_t delta = (int64_t)estimate - (int64_t)old_now;
uint64_t magnitude = delta < 0 ? (uint64_t)(-delta) : (uint64_t)delta;
clock_sync_last_source = source;
clock_sync_last_sample_count = sample_count;
clock_sync_last_estimate = estimate;
clock_sync_last_abs_drift = magnitude > UINT32_MAX ? UINT32_MAX : (uint32_t)magnitude;
clock_sync_complete = true;
clock_sync_next_attempt_uptime = uptime_millis + CLOCK_SYNC_RESYNC_INTERVAL_MILLIS;
if (magnitude <= clock_sync_drift_seconds) {
clock_sync_last_result = CLOCK_SYNC_RESULT_WITHIN_DRIFT;
MESH_DEBUG_PRINTLN("Clock sync: within drift (%lu seconds, source=%u)",
(unsigned long)clock_sync_last_abs_drift, (unsigned int)source);
return true;
}
getRTCClock()->setCurrentTime(estimate);
getRTCClock()->resetUniqueTime(estimate);
clock_sync_last_result = delta > 0
? CLOCK_SYNC_RESULT_CORRECTED_FORWARD : CLOCK_SYNC_RESULT_CORRECTED_BACKWARD;
#if MAX_NEIGHBOURS
for (int i = 0; i < MAX_NEIGHBOURS; i++) {
neighbours[i].heard_timestamp = rebaseClockTimestamp(neighbours[i].heard_timestamp,
old_now, estimate);
}
#endif
for (int i = 0; i < acl.getNumClients(); i++) {
ClientInfo* client = acl.getClientByIdx(i);
client->last_activity = rebaseClockTimestamp(client->last_activity, old_now, estimate);
}
discover_limiter.reset();
anon_limiter.reset();
refreshScheduledRadioState();
MESH_DEBUG_PRINTLN("Clock sync: corrected %s by %lu seconds (source=%u samples=%u)",
delta > 0 ? "forward" : "backward",
(unsigned long)clock_sync_last_abs_drift,
(unsigned int)source, (unsigned int)sample_count);
return true;
}
void MyMesh::checkClockSync() {
#ifdef WITH_MQTT_BRIDGE
// MQTT/WiFi builds already set the RTC as soon as an NTP server answers.
// Once that authoritative source succeeds, LoRa remains only a next-boot
// fallback and must not replace internet time later in this boot.
if (mqtt_bridge != NULL && mqtt_bridge->hasNtpTime()) {
suppressMeshClockSyncForBoot(CLOCK_SYNC_MESH_SUPPRESS_INTERNET);
}
#endif
bool mesh_available = clock_sync_mesh_enabled
&& clock_sync_mesh_suppressed_by == CLOCK_SYNC_MESH_SUPPRESS_NONE;
bool force_mesh = clock_sync_force_mesh_pending && mesh_available;
if ((!mesh_available && !clock_sync_internet_enabled)
|| (!force_mesh && uptime_millis < clock_sync_next_attempt_uptime)) return;
// A manual mesh request bypasses both the normal deadline and the optional
// internet-first probe once. It never bypasses the source safety latch.
if (force_mesh) clock_sync_force_mesh_pending = false;
// A successful estimate closes the current attempt but leaves a seven-day
// deadline behind. Reopen the attempt when that deadline arrives; failures
// below retain the existing 30-minute retry cadence until the next success.
if (clock_sync_complete) clock_sync_complete = false;
if (!force_mesh) {
#ifdef WITH_MQTT_BRIDGE
if (clock_sync_internet_enabled && mqtt_bridge != NULL && mqtt_bridge->isRunning()) {
if (clock_sync_internet_pending) {
uint32_t estimate = 0;
bool finished = false;
bool success = mqtt_bridge->takeNtpTimeEstimate(estimate, finished);
if (!finished && _ms->getMillis() - clock_sync_internet_requested_millis < 30000UL) return;
clock_sync_internet_pending = false;
if (success && applyClockEstimate(estimate, CLOCK_SYNC_SOURCE_INTERNET, 1)) return;
clock_sync_last_result = CLOCK_SYNC_RESULT_INTERNET_UNAVAILABLE;
} else if (mqtt_bridge->requestNtpTimeEstimate()) {
clock_sync_internet_pending = true;
clock_sync_internet_requested_millis = _ms->getMillis();
clock_sync_last_result = CLOCK_SYNC_RESULT_INTERNET_PENDING;
return;
} else {
clock_sync_last_result = CLOCK_SYNC_RESULT_INTERNET_UNAVAILABLE;
}
} else if (clock_sync_internet_enabled) {
clock_sync_internet_pending = false;
clock_sync_last_result = CLOCK_SYNC_RESULT_INTERNET_UNAVAILABLE;
}
#else
if (clock_sync_internet_enabled) {
clock_sync_internet_pending = false;
clock_sync_last_result = CLOCK_SYNC_RESULT_INTERNET_UNAVAILABLE;
}
#endif
}
if (mesh_available) {
uint32_t estimate = 0;
uint8_t fresh = 0;
uint8_t agreeing = 0;
uint8_t required = clock_sync_required_samples;
bool consensus = estimateMeshClock(estimate, fresh, agreeing, required);
clock_sync_last_fresh_count = fresh;
clock_sync_last_sample_count = agreeing;
clock_sync_last_required_count = required;
if (consensus && applyClockEstimate(estimate, CLOCK_SYNC_SOURCE_MESH, agreeing)) return;
clock_sync_last_result = fresh < clock_sync_required_samples
? CLOCK_SYNC_RESULT_COLLECTING : CLOCK_SYNC_RESULT_NO_CONSENSUS;
}
clock_sync_next_attempt_uptime = uptime_millis + CLOCK_SYNC_RETRY_INTERVAL_MILLIS;
}
static const char* clockSyncSampleKindName(uint8_t source_kind) {
if (source_kind == mesh::CLOCK_SYNC_SAMPLE_SOURCE_SIGNED_ADVERT) return "advert";
if (source_kind == mesh::CLOCK_SYNC_SAMPLE_SOURCE_PUBLIC_CHANNEL) return "public";
return "unknown";
}
static char clockSyncSampleKindCode(uint8_t source_kind) {
if (source_kind == mesh::CLOCK_SYNC_SAMPLE_SOURCE_SIGNED_ADVERT) return 'A';
if (source_kind == mesh::CLOCK_SYNC_SAMPLE_SOURCE_PUBLIC_CHANNEL) return 'P';
return '?';
}
void MyMesh::formatClockSyncSampleDetail(int index, char* reply, size_t reply_len) const {
if (index < 0 || index >= CLOCK_SYNC_SAMPLE_SLOTS) {
snprintf(reply, reply_len, "Err - clock sample slot must be 1-%d", CLOCK_SYNC_SAMPLE_SLOTS);
return;
}
const ClockSyncSample& sample = clock_sync_samples[index];
if (!sample.active) {
snprintf(reply, reply_len, "> %d empty", index + 1);
return;
}
uint32_t age_seconds = (_ms->getMillis() - sample.received_millis) / 1000UL;
bool fresh = age_seconds <= CLOCK_SYNC_SAMPLE_MAX_AGE_MILLIS / 1000UL;
uint32_t current_epoch = sample.epoch;
if (age_seconds <= UINT32_MAX - current_epoch) current_epoch += age_seconds;
uint32_t local_epoch = getRTCClock()->getCurrentTime();
char delta_sign = current_epoch >= local_epoch ? '+' : '-';
uint32_t delta = current_epoch >= local_epoch
? current_epoch - local_epoch : local_epoch - current_epoch;
char source_id[sizeof(sample.source_id) * 2 + 1];
char path_id[sizeof(sample.path_id) * 2 + 1];
mesh::Utils::toHex(source_id, sample.source_id, sizeof(sample.source_id));
mesh::Utils::toHex(path_id, sample.path_id, sizeof(sample.path_id));
snprintf(reply, reply_len,
"> %d %s id=%s path=%s age=%lus epoch=%lu delta=%c%lus fresh=%s",
index + 1, clockSyncSampleKindName(sample.source_kind), source_id, path_id,
(unsigned long)age_seconds, (unsigned long)current_epoch, delta_sign,
(unsigned long)delta, fresh ? "yes" : "no");
}
void MyMesh::formatClockSyncTable(char* reply, size_t reply_len) const {
uint32_t now = _ms->getMillis();
uint8_t fresh = 0;
uint8_t active = 0;
for (int i = 0; i < CLOCK_SYNC_SAMPLE_SLOTS; i++) {
if (!clock_sync_samples[i].active) continue;
active++;
if (now - clock_sync_samples[i].received_millis <= CLOCK_SYNC_SAMPLE_MAX_AGE_MILLIS) fresh++;
}
const char* mode = clock_sync_mesh_edge_enabled ? "edge" : "paths";
size_t used = (size_t)snprintf(reply, reply_len, "> %s collect=%s fresh=%u/%u",
mode, isClockSyncCollectionActive() ? "active" : "inactive",
(unsigned int)fresh,
(unsigned int)clock_sync_required_samples);
if (active == 0 || used >= reply_len) {
if (active == 0 && used + 5 < reply_len) StrHelper::strncpy(&reply[used], " none", reply_len - used);
return;
}
for (int i = 0; i < CLOCK_SYNC_SAMPLE_SLOTS && used + 1 < reply_len; i++) {
const ClockSyncSample& sample = clock_sync_samples[i];
if (!sample.active) continue;
uint32_t age_seconds = (now - sample.received_millis) / 1000UL;
unsigned long age_value = age_seconds < 120UL
? (unsigned long)age_seconds : (unsigned long)(age_seconds / 60UL);
char age_unit = age_seconds < 120UL ? 's' : 'm';
bool sample_fresh = age_seconds <= CLOCK_SYNC_SAMPLE_MAX_AGE_MILLIS / 1000UL;
char item[24];
snprintf(item, sizeof(item), " %d:%c:%02X%02X:%lu%c%s", i + 1,
clockSyncSampleKindCode(sample.source_kind), sample.source_id[0],
sample.source_id[1], age_value, age_unit, sample_fresh ? "" : "!");
size_t item_len = strlen(item);
if (used + item_len >= reply_len - 4) {
StrHelper::strncpy(&reply[used], " ...", reply_len - used);
return;
}
memcpy(&reply[used], item, item_len + 1);
used += item_len;
}
}
void MyMesh::formatClockSyncStatus(const char* args, char* reply, size_t reply_len) const {
if (reply == NULL || reply_len == 0) return;
const char* selector = skipLocalSpaces(args);
if (selector != NULL && *selector == '.') selector = skipLocalSpaces(selector + 1);
if (selector != NULL && *selector != 0) {
if (strcmp(selector, "table") == 0) {
formatClockSyncTable(reply, reply_len);
return;
}
int slot = 0;
if (parsePositiveSelector(selector, slot) && slot <= CLOCK_SYNC_SAMPLE_SLOTS) {
formatClockSyncSampleDetail(slot - 1, reply, reply_len);
return;
}
snprintf(reply, reply_len, "Err - use get clock.sync.status[.table|.1-.%d]",
CLOCK_SYNC_SAMPLE_SLOTS);
return;
}
uint8_t fresh = 0;
uint8_t active = 0;
uint32_t now = _ms->getMillis();
for (int i = 0; i < CLOCK_SYNC_SAMPLE_SLOTS; i++) {
if (!clock_sync_samples[i].active) continue;
active++;
if (now - clock_sync_samples[i].received_millis <= CLOCK_SYNC_SAMPLE_MAX_AGE_MILLIS) fresh++;
}
bool mesh_available = clock_sync_mesh_enabled
&& clock_sync_mesh_suppressed_by == CLOCK_SYNC_MESH_SUPPRESS_NONE;
const char* mesh_state = !clock_sync_mesh_enabled ? "off"
: (mesh_available ? "on"
: (clock_sync_mesh_suppressed_by == CLOCK_SYNC_MESH_SUPPRESS_CLI
? "suppressed-cli"
: (clock_sync_mesh_suppressed_by == CLOCK_SYNC_MESH_SUPPRESS_GPS
? "suppressed-gps" : "suppressed-internet")));
const char* mesh_mode = clock_sync_mesh_edge_enabled ? "edge" : "paths";
const char* evidence_name = clock_sync_mesh_edge_enabled ? "sources" : "paths";
bool collection_active = isClockSyncCollectionActive();
uint64_t remaining_ms = clock_sync_next_attempt_uptime > uptime_millis
? clock_sync_next_attempt_uptime - uptime_millis : 0;
unsigned long next_seconds = (unsigned long)((remaining_ms + 999ULL) / 1000ULL);
if (!mesh_available && !clock_sync_internet_enabled) {
const char* reason = clock_sync_mesh_enabled ? mesh_state : "mesh-off";
snprintf(reply, reply_len,
"> not-set reason=%s collect=inactive mode=%s %s=%u/%u table=%u",
reason, mesh_mode, evidence_name, (unsigned int)fresh,
(unsigned int)clock_sync_required_samples, (unsigned int)active);
return;
}
const char* result = "waiting";
switch (clock_sync_last_result) {
case CLOCK_SYNC_RESULT_COLLECTING: result = "collecting"; break;
case CLOCK_SYNC_RESULT_INTERNET_PENDING: result = "internet-pending"; break;
case CLOCK_SYNC_RESULT_NO_CONSENSUS: result = "no-consensus"; break;
case CLOCK_SYNC_RESULT_INTERNET_UNAVAILABLE: result = "internet-unavailable"; break;
case CLOCK_SYNC_RESULT_WITHIN_DRIFT: result = "within-drift"; break;
case CLOCK_SYNC_RESULT_CORRECTED_FORWARD: result = "corrected-forward"; break;
case CLOCK_SYNC_RESULT_CORRECTED_BACKWARD: result = "corrected-backward"; break;
default: break;
}
const char* source = clock_sync_last_source == CLOCK_SYNC_SOURCE_INTERNET ? "internet"
: (clock_sync_last_source == CLOCK_SYNC_SOURCE_MESH ? "mesh" : "none");
if (clock_sync_complete) {
bool clock_was_set = clock_sync_last_result == CLOCK_SYNC_RESULT_CORRECTED_FORWARD
|| clock_sync_last_result == CLOCK_SYNC_RESULT_CORRECTED_BACKWARD;
snprintf(reply, reply_len,
"> %s reason=%s difference=%lus threshold=%lus via=%s collect=%s mode=%s table=%u next=%lus",
clock_was_set ? "set" : "not-set", result,
(unsigned long)clock_sync_last_abs_drift,
(unsigned long)clock_sync_drift_seconds, source,
collection_active ? "active" : "inactive", mesh_mode,
(unsigned int)active, next_seconds);
} else {
if (clock_sync_last_result == CLOCK_SYNC_RESULT_NO_CONSENSUS) {
snprintf(reply, reply_len,
"> not-set reason=no-consensus collect=%s mode=%s %s=%u agree=%u/%u table=%u next=%lus",
collection_active ? "active" : "inactive", mesh_mode, evidence_name,
(unsigned int)fresh,
(unsigned int)clock_sync_last_sample_count,
(unsigned int)clock_sync_last_required_count,
(unsigned int)active, next_seconds);
} else {
const char* reason = result;
if (clock_sync_last_result == CLOCK_SYNC_RESULT_WAITING) reason = "waiting-deadline";
else if (clock_sync_last_result == CLOCK_SYNC_RESULT_COLLECTING) {
reason = clock_sync_mesh_edge_enabled ? "need-more-sources" : "need-more-paths";
}
snprintf(reply, reply_len,
"> not-set reason=%s collect=%s mesh=%s mode=%s %s=%u/%u table=%u next=%lus",
reason, collection_active ? "active" : "inactive", mesh_state, mesh_mode,
evidence_name, (unsigned int)fresh,
(unsigned int)clock_sync_required_samples, (unsigned int)active, next_seconds);
}
}
}
static void trimFloodChannelBlockSelector(const char* selector, char* dest, size_t dest_len) {
selector = skipLocalSpaces(selector);
StrHelper::strncpy(dest, selector == NULL ? "" : selector, dest_len);
size_t len = strlen(dest);
while (len > 0 && dest[len - 1] == ' ') {
dest[--len] = 0;
}
}
static bool parseFloodChannelBlockPrefixSelector(const char* selector,
uint8_t prefix[FLOOD_CHANNEL_BLOCK_PREFIX_LEN]) {
char text[16];
trimFloodChannelBlockSelector(selector, text, sizeof(text));
if (strlen(text) != FLOOD_CHANNEL_BLOCK_PREFIX_LEN * 2) {
return false;
}
for (int i = 0; i < FLOOD_CHANNEL_BLOCK_PREFIX_LEN * 2; i++) {
if (!mesh::Utils::isHexChar(text[i])) {
return false;
}
}
return mesh::Utils::fromHex(prefix, FLOOD_CHANNEL_BLOCK_PREFIX_LEN, text);
}
static void formatFloodChannelBlockHops(char* dest, uint8_t max_hops) {
if (max_hops == FLOOD_CHANNEL_BLOCK_HOPS_ALL) {
strcpy(dest, "h=all");
} else if (max_hops == FLOOD_CHANNEL_BLOCK_HOPS_INHERIT) {
strcpy(dest, "h=def");
} else {
sprintf(dest, "h>%u", (unsigned int)max_hops);
}
}
int MyMesh::findFloodChannelBlockBySelector(const char* selector) const {
uint8_t prefix[FLOOD_CHANNEL_BLOCK_PREFIX_LEN];
if (parseFloodChannelBlockPrefixSelector(selector, prefix)) {
for (int i = 0; i < FLOOD_CHANNEL_BLOCK_SLOTS; i++) {
const auto& entry = flood_channel_blocks[i];
if (entry.active && memcmp(entry.hash_prefix, prefix, sizeof(entry.hash_prefix)) == 0) {
return i;
}
}
return -1;
}
int index = 0;
if (parsePositiveSelector(selector, index)) {
return (index >= 1 && index <= FLOOD_CHANNEL_BLOCK_SLOTS) ? index - 1 : -1;
}
char name[FLOOD_CHANNEL_BLOCK_NAME_LEN];
trimFloodChannelBlockSelector(selector, name, sizeof(name));
if (name[0] == 0) {
return -1;
}
for (int i = 0; i < FLOOD_CHANNEL_BLOCK_SLOTS; i++) {
const auto& entry = flood_channel_blocks[i];
if (entry.active && strcmp(entry.name, name) == 0) {
return i;
}
}
return -1;
}
int MyMesh::findFloodChannelBlockSlot(const uint8_t prefix[FLOOD_CHANNEL_BLOCK_PREFIX_LEN], const char* name) const {
int free_slot = -1;
for (int i = 0; i < FLOOD_CHANNEL_BLOCK_SLOTS; i++) {
const auto& entry = flood_channel_blocks[i];
if (entry.active) {
if (memcmp(entry.hash_prefix, prefix, FLOOD_CHANNEL_BLOCK_PREFIX_LEN) == 0 || strcmp(entry.name, name) == 0) {
return i;
}
} else if (free_slot < 0) {
free_slot = i;
}
}
return free_slot;
}
void MyMesh::formatFloodChannelBlockDetail(char* reply, int idx) const {
if (idx < 0 || idx >= FLOOD_CHANNEL_BLOCK_SLOTS) {
strcpy(reply, "Err - not found");
return;
}
const auto& entry = flood_channel_blocks[idx];
if (!entry.active) {
snprintf(reply, 150, "> %d empty", idx + 1);
return;
}
char prefix[FLOOD_CHANNEL_BLOCK_PREFIX_LEN * 2 + 1];
char hops[8];
mesh::Utils::toHex(prefix, entry.hash_prefix, FLOOD_CHANNEL_BLOCK_PREFIX_LEN);
formatFloodChannelBlockHops(hops, entry.max_hops);
snprintf(reply, 150, "> %d %s %u %s %s", idx + 1, prefix, (unsigned int)entry.key_len * 8, hops, entry.name);
}
void MyMesh::setFloodChannelBlock(int index, const uint8_t* secret, uint8_t key_len,
const char* name, uint8_t max_hops, char* reply) {
if ((key_len != CIPHER_KEY_SIZE && key_len != PUB_KEY_SIZE) || secret == NULL || name == NULL || name[0] == 0) {
strcpy(reply, "Err - bad params");
return;
}
if (index < 0 || index > FLOOD_CHANNEL_BLOCK_SLOTS) {
snprintf(reply, 160, "Err - index 1-%d", FLOOD_CHANNEL_BLOCK_SLOTS);
return;
}
if (max_hops != FLOOD_CHANNEL_BLOCK_HOPS_ALL
&& max_hops != FLOOD_CHANNEL_BLOCK_HOPS_INHERIT
&& (max_hops < 1 || max_hops > 7)) {
strcpy(reply, "Err - bad hops");
return;
}
uint8_t prefix[FLOOD_CHANNEL_BLOCK_PREFIX_LEN];
deriveFloodChannelBlockPrefix(secret, key_len, prefix);
int slot = index > 0 ? index - 1 : findFloodChannelBlockSlot(prefix, name);
if (slot < 0 || slot >= FLOOD_CHANNEL_BLOCK_SLOTS) {
strcpy(reply, "Err - block list full");
return;
}
auto& entry = flood_channel_blocks[slot];
clearFloodChannelBlockEntry(entry);
entry.active = true;
entry.key_len = key_len;
entry.max_hops = max_hops;
memcpy(entry.secret, secret, PUB_KEY_SIZE);
if (entry.key_len == CIPHER_KEY_SIZE) {
memset(&entry.secret[CIPHER_KEY_SIZE], 0, PUB_KEY_SIZE - CIPHER_KEY_SIZE);
}
deriveFloodChannelBlockPrefix(entry.secret, entry.key_len, entry.hash_prefix);
StrHelper::strncpy(entry.name, name, sizeof(entry.name));
if (!saveFloodChannelBlocks()) {
strcpy(reply, "Err - save failed");
return;
}
formatFloodChannelBlockDetail(reply, slot);
}
void MyMesh::formatFloodChannelBlocks(const char* selector, char* reply) {
if (!selectorIsEmpty(selector)) {
int idx = findFloodChannelBlockBySelector(selector);
if (idx < 0) {
strcpy(reply, "Err - not found");
} else {
formatFloodChannelBlockDetail(reply, idx);
}
return;
}
char* out = reply;
const size_t reply_limit = 150;
size_t remaining = reply_limit;
char hops[8];
formatFloodChannelBlockHops(hops, _prefs.flood_channel_block_max_hops);
size_t full_len = 2 + strlen(hops);
for (int i = 0; i < FLOOD_CHANNEL_BLOCK_SLOTS; i++) {
const auto& entry = flood_channel_blocks[i];
size_t display_len = entry.active ? strlen(entry.name) : 1;
full_len += 1 + (i + 1 >= 10 ? 2 : 1) + 1 + display_len;
if (entry.active && entry.max_hops != FLOOD_CHANNEL_BLOCK_HOPS_INHERIT) {
char row_hops[8];
formatFloodChannelBlockHops(row_hops, entry.max_hops);
full_len += 1 + strlen(row_hops);
}
}
bool trim_names = full_len >= reply_limit;
int written = snprintf(out, remaining, "> %s", hops);
if (written < 0 || (size_t)written >= remaining) {
reply[0] = 0;
return;
}
out += written;
remaining -= written;
for (int i = 0; i < FLOOD_CHANNEL_BLOCK_SLOTS && remaining > 1; i++) {
const char* display = "-";
char short_display[6];
const auto& entry = flood_channel_blocks[i];
if (entry.active) {
char row_hops[8];
row_hops[0] = 0;
if (entry.max_hops != FLOOD_CHANNEL_BLOCK_HOPS_INHERIT) {
formatFloodChannelBlockHops(row_hops, entry.max_hops);
}
if (trim_names) {
StrHelper::strncpy(short_display, entry.name, sizeof(short_display));
if (strlen(entry.name) >= sizeof(short_display)) {
short_display[sizeof(short_display) - 2] = '~';
short_display[sizeof(short_display) - 1] = 0;
}
display = short_display;
} else {
display = entry.name;
}
written = snprintf(out, remaining, " %d:%s%s%s", i + 1, display,
row_hops[0] ? "/" : "", row_hops);
} else {
written = snprintf(out, remaining, " %d:%s", i + 1, display);
}
if (written < 0 || (size_t)written >= remaining) {
out[remaining - 1] = 0;
break;
}
out += written;
remaining -= written;
}
}
void MyMesh::deleteFloodChannelBlock(const char* selector, char* reply) {
int idx = findFloodChannelBlockBySelector(selector);
if (idx < 0 || idx >= FLOOD_CHANNEL_BLOCK_SLOTS || !flood_channel_blocks[idx].active) {
strcpy(reply, "Err - not found");
return;
}
clearFloodChannelBlockEntry(flood_channel_blocks[idx]);
if (!saveFloodChannelBlocks()) {
strcpy(reply, "Err - save failed");
return;
}
strcpy(reply, "OK");
}
void MyMesh::formatStatsReply(char *reply) {
StatsFormatHelper::formatCoreStats(reply, board, *_ms, _err_flags, _mgr);
}
void MyMesh::formatRadioStatsReply(char *reply) {
StatsFormatHelper::formatRadioStats(reply, _radio, radio_driver, getTotalAirTime(), getReceiveAirTime());
}
void MyMesh::formatRadioDiagReply(char *reply) {
StatsFormatHelper::formatRadioDiag(reply, _radio, radio_driver, *_ms, _err_flags, hasOutbound());
}
void MyMesh::formatPacketStatsReply(char *reply) {
StatsFormatHelper::formatPacketStats(reply, radio_driver, getNumSentFlood(), getNumSentDirect(),
getNumRecvFlood(), getNumRecvDirect());
}
void MyMesh::saveIdentity(const mesh::LocalIdentity &new_id) {
#if defined(NRF52_PLATFORM) || defined(STM32_PLATFORM)
IdentityStore store(*_fs, "");
#elif defined(ESP32)
IdentityStore store(*_fs, "/identity");
#elif defined(RP2040_PLATFORM)
IdentityStore store(*_fs, "/identity");
#else
#error "need to define saveIdentity()"
#endif
store.save("_main", new_id);
}
void MyMesh::clearStats() {
radio_driver.resetStats();
resetStats();
((SimpleMeshTables *)getTables())->resetStats();
}
#ifdef WITH_WEBCONFIG
void MyMesh::getNodeSnapshot(WebConfigServer::NodeSnapshot& s) {
memset(&s, 0, sizeof(s));
StrHelper::strncpy(s.name, _prefs.node_name, sizeof(s.name));
StrHelper::strncpy(s.admin_password, _prefs.password, sizeof(s.admin_password));
s.lat = _prefs.node_lat;
s.lon = _prefs.node_lon;
s.freq = _prefs.freq;
s.bw = _prefs.bw;
s.sf = _prefs.sf;
s.cr = _prefs.cr;
s.tx_power = _prefs.tx_power_dbm;
s.airtime_factor = _prefs.airtime_factor;
s.rx_delay = _prefs.rx_delay_base;
s.tx_delay = _prefs.tx_delay_factor;
s.cad = _prefs.cad_enabled;
s.rx_gain = _prefs.rx_boosted_gain;
s.fem_rx_gain = board.isLoRaFemLnaEnabled();
s.repeat = !_prefs.disable_fwd;
s.advert_interval = _prefs.advert_interval * 2;
s.flood_advert_interval = _prefs.flood_advert_interval;
s.flood_max = _prefs.flood_max;
s.flood_max_advert = _prefs.flood_max_advert;
s.flood_max_unscoped = _prefs.flood_max_unscoped;
s.loop_detect = _prefs.loop_detect;
s.capabilities = WebConfigServer::CAP_LOCATION | WebConfigServer::CAP_AIRTIME
| WebConfigServer::CAP_DELAYS | WebConfigServer::CAP_CAD
| WebConfigServer::CAP_RX_GAIN | WebConfigServer::CAP_REPEAT
| WebConfigServer::CAP_ADVERT | WebConfigServer::CAP_FLOOD
| WebConfigServer::CAP_LOOP | WebConfigServer::CAP_WIFI_POWER_SAVE;
if (board.canControlLoRaFemLna()) {
s.capabilities |= WebConfigServer::CAP_FEM_RX_GAIN;
}
}
bool MyMesh::startWebConfig(bool force_ap, char* reply) {
if (_cli.getBoard()->isOTAUpdateRunning()) {
strcpy(reply, "Err: OTA server is running - 'stop ota' first");
return true;
}
if (_webconfig && (_webconfig->isRunning() || _webconfig->isStopping())) {
strcpy(reply, _webconfig->isStopping() ? "Err: webconfig still stopping, retry shortly"
: "Err: webconfig already running");
return true;
}
if (!_webconfig) {
void* mqtt_prefs = nullptr;
bool owns_wifi = true;
#ifdef WITH_MQTT_BRIDGE
mqtt_prefs = _cli.getObserverPrefs();
owns_wifi = false;
#endif
_webconfig = new WebConfigServer(this, mqtt_prefs, owns_wifi,
self_id.pub_key, getFirmwareVer(), getRole(),
_cli.getBoard()->getManufacturerName());
if (!_webconfig) {
strcpy(reply, "Err: not enough memory for webconfig");
return true;
}
}
if (force_ap) {
#ifdef WITH_MQTT_BRIDGE
if (mqtt_bridge && mqtt_bridge->isRunning()) {
strcpy(reply, "Err: MQTT bridge is running - 'set bridge off' first");
return true;
}
#endif
_webconfig->startSetupMode(reply);
} else {
_webconfig->startAutoMode(reply);
}
return true;
}
bool MyMesh::stopWebConfig(char* reply) {
if (!_webconfig || !_webconfig->isRunning()) {
strcpy(reply, "Err: webconfig not running");
return true;
}
_webconfig->requestStop();
strcpy(reply, "OK - webconfig stopping");
return true;
}
bool MyMesh::setWebUIEnabled(bool enabled, char* reply) {
if (!WebConfigServer::saveEnabled(enabled)) {
strcpy(reply, "Error: failed to save webui setting");
return true;
}
if (enabled) {
if (_webconfig && (_webconfig->isRunning() || _webconfig->isStopping())) {
strcpy(reply, "OK - webui on (already active)");
} else {
startWebConfig(false, reply);
if (strncmp(reply, "WebConfig", 9) == 0) {
char tmp[160];
StrHelper::strncpy(tmp, reply, sizeof(tmp));
snprintf(reply, 160, "OK - webui on; %s", tmp);
}
}
} else {
if (_webconfig && _webconfig->isRunning()) _webconfig->requestStop();
strcpy(reply, "OK - webui off");
}
return true;
}
bool MyMesh::getWebUIStatus(char* reply) const {
const bool enabled = WebConfigServer::loadEnabled(false);
if (!_webconfig || (!_webconfig->isRunning() && !_webconfig->isStopping())) {
snprintf(reply, 160, "> %s, inactive", enabled ? "on" : "off");
} else if (_webconfig->mode() == WebConfigServer::MODE_SETUP) {
char ssid[33], ip[16];
WebConfigServer::getSetupInfo(ssid, sizeof(ssid), ip, sizeof(ip));
snprintf(reply, 160, "> %s, setup AP %s http://%s/", enabled ? "on" : "off", ssid, ip);
} else if (_webconfig->mode() == WebConfigServer::MODE_CONNECTING) {
snprintf(reply, 160, "> %s, connecting to WiFi", enabled ? "on" : "off");
} else {
snprintf(reply, 160, "> %s, http://%s/", enabled ? "on" : "off",
WiFi.localIP().toString().c_str());
}
return true;
}
void MyMesh::onConfigBatchEnd() {
_wc_batch_active = false;
#ifdef WITH_MQTT_BRIDGE
if (_wc_restart_pending) {
_wc_restart_pending = false;
_wc_slot_restart_mask = 0;
restartBridge();
return;
}
const uint8_t mask = _wc_slot_restart_mask;
_wc_slot_restart_mask = 0;
for (int i = 0; i < RUNTIME_MQTT_SLOTS; i++) {
if (mask & (1U << i)) restartBridgeSlot(i);
}
#else
_wc_restart_pending = false;
_wc_slot_restart_mask = 0;
#endif
}
void MyMesh::buildStatsJson(char* buf, size_t buf_size) {
char ip[20] = "";
int wifi_rssi = 0;
if (WiFi.status() == WL_CONNECTED) {
strncpy(ip, WiFi.localIP().toString().c_str(), sizeof(ip) - 1);
wifi_rssi = WiFi.RSSI();
} else if (_webconfig && _webconfig->mode() == WebConfigServer::MODE_SETUP) {
strncpy(ip, WiFi.softAPIP().toString().c_str(), sizeof(ip) - 1);
}
int pos = snprintf(buf, buf_size,
"{\"uptime_s\":%lu,\"batt_mv\":%u,"
"\"heap_free\":%lu,\"heap_min\":%lu,\"heap_max_alloc\":%lu,"
"\"noise\":%d,\"rssi\":%d,\"snr\":%.1f,"
"\"airtime_s\":%lu,\"rx_airtime_s\":%lu,"
"\"recv\":%lu,\"sent\":%lu,\"rx_err\":%lu,"
"\"sent_flood\":%lu,\"sent_direct\":%lu,\"recv_flood\":%lu,\"recv_direct\":%lu,"
"\"tx_queue\":%d,\"wifi_rssi\":%d,\"ip\":\"%s\",\"mqtt_queue\":%d,\"slots\":[",
(unsigned long)(uptime_millis / 1000), (unsigned)board.getBattMilliVolts(),
(unsigned long)ESP.getFreeHeap(), (unsigned long)ESP.getMinFreeHeap(),
(unsigned long)ESP.getMaxAllocHeap(),
(int)_radio->getNoiseFloor(), (int)radio_driver.getLastRSSI(),
radio_driver.getLastSNR(),
(unsigned long)(getTotalAirTime() / 1000), (unsigned long)(getReceiveAirTime() / 1000),
(unsigned long)radio_driver.getPacketsRecv(), (unsigned long)radio_driver.getPacketsSent(),
(unsigned long)radio_driver.getPacketsRecvErrors(),
(unsigned long)getNumSentFlood(), (unsigned long)getNumSentDirect(),
(unsigned long)getNumRecvFlood(), (unsigned long)getNumRecvDirect(),
(int)_mgr->getOutboundCount(0xFFFFFFFF), wifi_rssi, ip,
#ifdef WITH_MQTT_BRIDGE
mqtt_bridge ? mqtt_bridge->getQueueSize() : 0);
#else
0);
#endif
if (pos < 0 || pos >= static_cast<int>(buf_size) - 3) return;
bool first = true;
#ifdef WITH_MQTT_BRIDGE
for (int i = 0; i < RUNTIME_MQTT_SLOTS; i++) {
MQTTBridge::SlotStatusSnapshot status;
if (!MQTTBridge::getSlotStatusSnapshot(i, &status)) continue;
int written;
if (status.has_publish_counts) {
written = snprintf(buf + pos, buf_size - pos,
"%s{\"n\":%d,\"name\":\"%s\",\"state\":\"%s\",\"ok\":%lu,\"err\":%lu}",
first ? "" : ",", i + 1, status.name, status.state,
status.publish_ok, status.publish_err);
} else {
written = snprintf(buf + pos, buf_size - pos,
"%s{\"n\":%d,\"name\":\"%s\",\"state\":\"%s\"}",
first ? "" : ",", i + 1, status.name, status.state);
}
if (written < 0 || written >= static_cast<int>(buf_size - pos)) break;
pos += written;
first = false;
}
#else
(void)first;
#endif
snprintf(buf + pos, buf_size - pos, "]}");
}
#endif
static char* trimSpaces(char* s) {
while (*s == ' ') s++;
char* end = s + strlen(s);
while (end > s && end[-1] == ' ') end--;
*end = 0;
return s;
}
static bool parsePathCommand(char* raw, uint8_t* out_path, uint8_t& out_path_len, const char*& err) {
if (raw == NULL || out_path == NULL) {
err = "Err - bad params";
return false;
}
char* spec = trimSpaces(raw);
if (*spec == 0) {
err = "Err - missing path";
return false;
}
if (strcmp(spec, "clear") == 0 || strcmp(spec, "-") == 0 || strcmp(spec, "none") == 0) {
out_path_len = OUT_PATH_UNKNOWN;
return true;
}
if (strcmp(spec, "flood") == 0) {
out_path_len = OUT_PATH_FORCE_FLOOD;
return true;
}
if (strcmp(spec, "direct") == 0) {
out_path_len = 0;
return true;
}
uint8_t hash_size = 0;
uint8_t hop_count = 0;
char* token = spec;
while (token && *token) {
char* comma = strchr(token, ',');
if (comma) *comma = 0;
token = trimSpaces(token);
int hex_len = strlen(token);
if (!(hex_len == 2 || hex_len == 4 || hex_len == 6)) {
err = "Err - bad params";
return false;
}
uint8_t hop_hash_size = (uint8_t)(hex_len / 2);
if (hash_size == 0) {
hash_size = hop_hash_size;
} else if (hash_size != hop_hash_size) {
err = "Err - bad params";
return false;
}
if (hop_count >= 63 || (hop_count + 1) * hash_size > MAX_PATH_SIZE) {
err = "Err - bad params";
return false;
}
if (!mesh::Utils::fromHex(&out_path[hop_count * hash_size], hash_size, token)) {
err = "Err - bad hex";
return false;
}
hop_count++;
token = comma ? comma + 1 : NULL;
}
if (hash_size == 0 || hop_count == 0) {
err = "Err - missing path";
return false;
}
out_path_len = ((hash_size - 1) << 6) | (hop_count & 63);
return true;
}
static void formatPathReply(const uint8_t* path, uint8_t path_len, char* out, size_t out_len) {
if (path_len == OUT_PATH_FORCE_FLOOD) {
snprintf(out, out_len, "> flood");
return;
}
if (path_len == OUT_PATH_UNKNOWN) {
snprintf(out, out_len, "> unknown");
return;
}
if (!mesh::Packet::isValidPathLen(path_len)) {
snprintf(out, out_len, "> invalid");
return;
}
if ((path_len & 63) == 0) {
snprintf(out, out_len, "> direct");
return;
}
uint8_t hash_size = (path_len >> 6) + 1;
uint8_t hop_count = path_len & 63;
size_t path_text_len = (size_t)hop_count * hash_size * 2 + (hop_count - 1);
// Every path that fits in the 160-byte CLI command buffer also fits this
// shorter reply form. Retain a compact, complete fallback for a path learned
// from an unusually long over-the-air route rather than truncating it.
if (path_text_len + 3 > out_len) {
out[0] = '>';
out[1] = ' ';
mesh::Utils::toHex(out + 2, path, (size_t)hop_count * hash_size);
return;
}
size_t pos = 0;
out[pos++] = '>';
out[pos++] = ' ';
for (uint8_t hop = 0; hop < hop_count; hop++) {
mesh::Utils::toHex(out + pos, path + ((size_t)hop * hash_size), hash_size);
pos += hash_size * 2;
if (hop + 1 < hop_count) out[pos++] = ',';
}
out[pos] = 0;
}
static bool commandFamilyMatches(const char* command, const char* family) {
size_t len = strlen(family);
if (strncmp(command, family, len) != 0) return false;
return command[len] == 0 || command[len] == ' ' || command[len] == '.';
}
static bool isCommonManagerReadOnlyAllowed(const char* cmd) {
while (*cmd == ' ') cmd++; // skip leading spaces
if (commandFamilyMatches(cmd, "ver") || commandFamilyMatches(cmd, "board")
|| commandFamilyMatches(cmd, "neighbors") || strcmp(cmd, "clock") == 0) return true;
// sensor reads only
if (commandFamilyMatches(cmd, "sensor get") || commandFamilyMatches(cmd, "sensor list")) return true;
// Keep delegated reads explicit. CommonCLI's generic `get` namespace also
// contains credentials (guest.password, WiFi/MQTT secrets, bridge.secret,
// and similar settings), so it must never be granted wholesale.
return commandFamilyMatches(cmd, "get role")
|| commandFamilyMatches(cmd, "get public.key")
|| commandFamilyMatches(cmd, "get clock.sync")
|| commandFamilyMatches(cmd, "get battery.alert")
|| commandFamilyMatches(cmd, "get rx.watchdog")
|| commandFamilyMatches(cmd, "get recent.repeater")
|| commandFamilyMatches(cmd, "get recent.repeaters")
|| commandFamilyMatches(cmd, "get outpath")
|| commandFamilyMatches(cmd, "get altpath");
}
// Whitelist helpers for delegated manager roles. Admins bypass both lists.
static bool isRegionMgrAllowed(const char* cmd) {
while (*cmd == ' ') cmd++;
return commandFamilyMatches(cmd, "region")
|| commandFamilyMatches(cmd, "get flood.channel.scope")
|| commandFamilyMatches(cmd, "set flood.channel.scope")
|| commandFamilyMatches(cmd, "del flood.channel.scope")
|| isCommonManagerReadOnlyAllowed(cmd);
}
static bool isFilterMgrAllowed(const char* cmd) {
while (*cmd == ' ') cmd++;
if (isCommonManagerReadOnlyAllowed(cmd)) return true;
if (commandFamilyMatches(cmd, "get repeat")
|| commandFamilyMatches(cmd, "get loop.detect")
|| commandFamilyMatches(cmd, "get flood.max")
|| commandFamilyMatches(cmd, "get flood.channel.data")
|| commandFamilyMatches(cmd, "get flood.channel.block")
|| commandFamilyMatches(cmd, "get flood.filter")
|| commandFamilyMatches(cmd, "get flood.moderation")) return true;
// General payload/hop filters plus the existing keyed-channel and flood-hop gates.
return commandFamilyMatches(cmd, "set flood.filter")
|| commandFamilyMatches(cmd, "del flood.filter")
|| commandFamilyMatches(cmd, "set flood.moderation")
|| commandFamilyMatches(cmd, "del flood.moderation")
|| commandFamilyMatches(cmd, "set flood.channel.data")
|| commandFamilyMatches(cmd, "set flood.channel.block")
|| commandFamilyMatches(cmd, "del flood.channel.block")
|| commandFamilyMatches(cmd, "set flood.max")
|| commandFamilyMatches(cmd, "set loop.detect")
|| commandFamilyMatches(cmd, "set repeat");
}
void MyMesh::handleCommand(uint32_t sender_timestamp, ClientInfo* sender, char *command, char *reply) {
char* reply_start = reply;
int recent_page = 1;
// Remote admin clients may include a line ending in the command payload.
// Normalize it here so exact-match commands such as `get outpath` behave the
// same over LoRa and serial. Keep leading whitespace intact until after the
// region-load handler because it encodes region hierarchy indentation.
char* command_end = command + strlen(command);
while (command_end > command
&& (command_end[-1] == ' ' || command_end[-1] == '\t'
|| command_end[-1] == '\r' || command_end[-1] == '\n')) {
*--command_end = 0;
}
if (region_load_active && sender && !sender->isAdmin() && !sender->isRegionMgr()) {
strcpy(reply, "Err - region load owned by admin/region manager");
return;
}
if (region_load_active) {
if (StrHelper::isBlank(command)) { // empty/blank line, signal to terminate 'load' operation
region_load_active = false;
// resetFrom() preserves the selected IDs. Reject a replacement that
// omitted either selected region instead of leaving a dangling ID.
bool missing_default = region_map.getDefaultRegion() != NULL
&& temp_map.getDefaultRegion() == NULL;
bool missing_home = region_map.getHomeRegion() != NULL
&& temp_map.getHomeRegion() == NULL;
if (!missing_default && !missing_home) {
region_map = temp_map;
sprintf(reply, "OK - loaded %d regions", region_map.getCount());
} else {
strcpy(reply, "Err - invalid region map; previous map retained");
}
} else {
char *np = command;
while (*np == ' ') np++; // skip indent
int indent = np - command;
char *ep = np;
while (RegionMap::is_name_char(*ep)) ep++;
if (*ep) { *ep++ = 0; } // set null terminator for end of name
while (*ep && *ep != 'F') ep++; // look for (optional) flags
if (indent > 0 && indent < 8 && strlen(np) > 0) {
auto parent = load_stack[indent - 1];
if (parent) {
auto old = region_map.findByName(np);
auto nw = temp_map.putRegion(np, parent->id, old ? old->id : 0); // carry-over the current ID (if name already exists)
if (nw) {
nw->flags = old ? old->flags : (*ep == 'F' ? 0 : REGION_DENY_FLOOD); // carry-over flags from curr
load_stack[indent] = nw; // keep pointers to parent regions, to resolve parent_id's
}
}
}
reply[0] = 0;
}
return;
}
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;
}
mesh::cli::normalizeCommandVerb(command);
#if defined(PORTABLE_MQTT_OBSERVER)
// The portable observer exposes its MQTT/WiFi/update controls through
// CommonCLI. Omit the repeater's large remote-administration command tree;
// its mesh behavior remains fixed by the selected build profile.
_cli.handleCommand(sender_timestamp, command, reply);
return;
#endif
if (sender && !sender->isAdmin()) {
bool allowed = (sender->isRegionMgr() && isRegionMgrAllowed(command))
|| (sender->isFilterMgr() && isFilterMgrAllowed(command));
if (!allowed) {
strcpy(reply, "Err - not permitted");
return;
}
}
// handle ACL related commands
if (commandFamilyMatches(command, "get flood.channel.scope")) {
formatFloodChannelScopes(command + strlen("get flood.channel.scope"), reply);
} else if (commandFamilyMatches(command, "set flood.channel.scope")) {
setFloodChannelScope(command + strlen("set flood.channel.scope"), reply);
} else if (commandFamilyMatches(command, "del flood.channel.scope")) {
deleteFloodChannelScope(command + strlen("del flood.channel.scope"), reply);
} else if (commandFamilyMatches(command, "get flood.filter")) {
formatFloodPacketFilters(command + strlen("get flood.filter"), reply);
} else if (commandFamilyMatches(command, "set flood.filter")) {
setFloodPacketFilter(command + strlen("set flood.filter"), reply);
} else if (commandFamilyMatches(command, "del flood.filter")) {
deleteFloodPacketFilter(command + strlen("del flood.filter"), reply);
} else if (commandFamilyMatches(command, "get flood.moderation")) {
formatFloodGroupModeration(command + strlen("get flood.moderation"), reply);
} else if (commandFamilyMatches(command, "set flood.moderation")) {
setFloodGroupModeration(command + strlen("set flood.moderation"), reply);
} else if (commandFamilyMatches(command, "del flood.moderation")) {
deleteFloodGroupModeration(command + strlen("del flood.moderation"), reply);
} else if (commandFamilyMatches(command, "get clock.sync.status")) {
formatClockSyncStatus(command + strlen("get clock.sync.status"), reply, 160);
} else if (strcmp(command, "get clock.sync") == 0) {
formatClockSyncStatus("", reply, 160);
} else if (strcmp(command, "get clock.sync.mesh") == 0) {
if (clock_sync_mesh_enabled
&& clock_sync_mesh_suppressed_by != CLOCK_SYNC_MESH_SUPPRESS_NONE) {
sprintf(reply, "> on (suppressed by %s until reboot)",
clockSyncMeshSuppressionName(clock_sync_mesh_suppressed_by));
} else {
sprintf(reply, "> %s", clock_sync_mesh_enabled ? "on" : "off");
}
} else if (strcmp(command, "get clock.sync.mesh.edge") == 0) {
sprintf(reply, "> %s", clock_sync_mesh_edge_enabled ? "on" : "off");
} else if (strcmp(command, "get clock.sync.internet") == 0) {
#ifdef WITH_MQTT_BRIDGE
sprintf(reply, "> %s", clock_sync_internet_enabled ? "on" : "off");
#else
sprintf(reply, "> %s (unavailable on this build)", clock_sync_internet_enabled ? "on" : "off");
#endif
} else if (strcmp(command, "get clock.sync.drift") == 0) {
sprintf(reply, "> %lu", (unsigned long)clock_sync_drift_seconds);
} else if (strcmp(command, "get clock.sync.samples") == 0) {
sprintf(reply, "> %u", (unsigned int)clock_sync_required_samples);
} else if (strcmp(command, "clock.sync.mesh now") == 0) {
if (!clock_sync_mesh_enabled) {
strcpy(reply, "Err - mesh clock sync is off");
} else if (clock_sync_mesh_suppressed_by != CLOCK_SYNC_MESH_SUPPRESS_NONE) {
sprintf(reply, "Err - mesh sync suppressed by %s until reboot",
clockSyncMeshSuppressionName(clock_sync_mesh_suppressed_by));
} else {
resetClockSyncAttempt();
clock_sync_force_mesh_pending = true;
clock_sync_next_attempt_uptime = uptime_millis;
strcpy(reply, "OK - mesh clock sync queued");
}
} else if (strncmp(command, "set clock.sync.mesh ", 20) == 0) {
const char* value = command + 20;
bool enabled;
if (strcmp(value, "on") == 0) enabled = true;
else if (strcmp(value, "off") == 0) enabled = false;
else {
strcpy(reply, "Err - usage: set clock.sync.mesh <on|off>");
return;
}
bool previous = clock_sync_mesh_enabled;
clock_sync_mesh_enabled = enabled;
if (!saveClockSyncPrefs()) {
clock_sync_mesh_enabled = previous;
strcpy(reply, "Err - unable to save clock sync settings");
} else {
if (enabled && !previous) memset(clock_sync_samples, 0, sizeof(clock_sync_samples));
resetClockSyncAttempt();
if (enabled && clock_sync_mesh_suppressed_by != CLOCK_SYNC_MESH_SUPPRESS_NONE) {
sprintf(reply, "OK - enabled; suppressed by %s until reboot",
clockSyncMeshSuppressionName(clock_sync_mesh_suppressed_by));
} else {
strcpy(reply, enabled ? "OK - mesh clock sync enabled" : "OK - mesh clock sync disabled");
}
}
} else if (strncmp(command, "set clock.sync.mesh.edge ", 25) == 0) {
const char* value = command + 25;
bool enabled;
if (strcmp(value, "on") == 0) enabled = true;
else if (strcmp(value, "off") == 0) enabled = false;
else {
strcpy(reply, "Err - usage: set clock.sync.mesh.edge <on|off>");
return;
}
bool previous = clock_sync_mesh_edge_enabled;
clock_sync_mesh_edge_enabled = enabled;
if (!saveClockSyncPrefs()) {
clock_sync_mesh_edge_enabled = previous;
strcpy(reply, "Err - unable to save clock sync settings");
} else {
if (enabled != previous) memset(clock_sync_samples, 0, sizeof(clock_sync_samples));
resetClockSyncAttempt();
strcpy(reply, enabled ? "OK - edge clock sync enabled" : "OK - edge clock sync disabled");
}
} else if (strncmp(command, "set clock.sync.internet ", 24) == 0) {
const char* value = command + 24;
bool enabled;
if (strcmp(value, "on") == 0) enabled = true;
else if (strcmp(value, "off") == 0) enabled = false;
else {
strcpy(reply, "Err - usage: set clock.sync.internet <on|off>");
return;
}
bool previous = clock_sync_internet_enabled;
clock_sync_internet_enabled = enabled;
if (!saveClockSyncPrefs()) {
clock_sync_internet_enabled = previous;
strcpy(reply, "Err - unable to save clock sync settings");
} else {
resetClockSyncAttempt();
#ifdef WITH_MQTT_BRIDGE
strcpy(reply, enabled ? "OK - internet clock sync enabled" : "OK - internet clock sync disabled");
#else
strcpy(reply, enabled ? "OK - enabled (internet unavailable on this build)" : "OK - internet clock sync disabled");
#endif
}
} else if (strncmp(command, "set clock.sync.drift ", 21) == 0) {
uint32_t drift = 0;
if (!parseFloodModerationUnsigned(command + 21, CLOCK_SYNC_DRIFT_MAX_SECONDS, drift)
|| drift < CLOCK_SYNC_DRIFT_MIN_SECONDS) {
strcpy(reply, "Err - drift must be 30-86400 seconds");
} else {
uint32_t previous = clock_sync_drift_seconds;
clock_sync_drift_seconds = drift;
if (!saveClockSyncPrefs()) {
clock_sync_drift_seconds = previous;
strcpy(reply, "Err - unable to save clock sync settings");
} else {
resetClockSyncAttempt();
sprintf(reply, "OK - clock drift threshold %lu seconds", (unsigned long)drift);
}
}
} else if (strncmp(command, "set clock.sync.samples ", 23) == 0) {
uint32_t required = 0;
if (!parseFloodModerationUnsigned(command + 23, CLOCK_SYNC_REQUIRED_SAMPLES_MAX, required)
|| required < CLOCK_SYNC_REQUIRED_SAMPLES_MIN) {
strcpy(reply, "Err - samples must be 3-16");
} else {
uint8_t previous = clock_sync_required_samples;
clock_sync_required_samples = (uint8_t)required;
if (!saveClockSyncPrefs()) {
clock_sync_required_samples = previous;
strcpy(reply, "Err - unable to save clock sync settings");
} else {
resetClockSyncAttempt();
sprintf(reply, "OK - clock sync requires %u samples", (unsigned int)required);
}
}
} else if (memcmp(command, "setperm ", 8) == 0) { // format: setperm {pubkey-hex} {permissions-int8}
char* hex = &command[8];
char* sp = strchr(hex, ' '); // look for separator char
if (sp == NULL) {
strcpy(reply, "Err - bad params");
} else {
size_t hex_len = (size_t)(sp - hex);
*sp++ = 0; // replace space with null terminator
uint8_t pubkey[PUB_KEY_SIZE];
if (hex_len > 0 && hex_len <= PUB_KEY_SIZE * 2 && (hex_len & 1) == 0
&& mesh::Utils::fromHex(pubkey, (int)(hex_len / 2), hex)) {
uint8_t perms = atoi(sp);
if (acl.applyPermissions(self_id, pubkey, (int)(hex_len / 2), perms)) {
dirty_contacts_expiry = futureMillis(LAZY_CONTACTS_WRITE_DELAY); // trigger acl.save()
strcpy(reply, "OK");
} else {
strcpy(reply, "Err - invalid params");
}
} else {
strcpy(reply, "Err - bad pubkey");
}
}
} else if (sender_timestamp == 0 && sender == NULL && parseRecentRepeatersPageCommand(command, recent_page)) {
formatRecentRepeatersReply(reply, recent_page);
} else if (sender_timestamp == 0 && sender == NULL
&& (strcmp(command, "get recent.repeater") == 0 || strcmp(command, "get recent.repeaters") == 0)) {
printRecentRepeatersSerial();
reply_start[0] = 0;
} else if (sender_timestamp == 0 && strcmp(command, "get acl") == 0) {
Serial.println("ACL:");
for (int i = 0; i < acl.getNumClients(); i++) {
auto c = acl.getClientByIdx(i);
if (c->permissions == 0) continue; // skip deleted (or guest) entries
Serial.printf("%02X ", c->permissions);
mesh::Utils::printHex(Serial, c->id.pub_key, PUB_KEY_SIZE);
Serial.printf("\n");
}
reply[0] = 0;
} else if (strcmp(command, "get outpath") == 0
|| strcmp(command, "set outpath") == 0
|| strncmp(command, "set outpath ", 12) == 0
|| strcmp(command, "get altpath") == 0
|| strcmp(command, "set altpath") == 0
|| strncmp(command, "set altpath ", 12) == 0) {
bool is_get = strncmp(command, "get ", 4) == 0;
bool is_alt = strncmp(command + 4, "altpath", 7) == 0;
if (sender == NULL) {
strcpy(reply, "Err - command needs remote client context");
} else {
uint8_t* stored_path = is_alt ? sender->alt_path : sender->out_path;
uint8_t* stored_path_len = is_alt ? &sender->alt_path_len : &sender->out_path_len;
if (is_get) {
formatPathReply(stored_path, *stored_path_len, reply, 160);
return;
}
char* spec = command + 11; // length of "set outpath" or "set altpath"
if (*spec == ' ') spec++;
uint8_t path[MAX_PATH_SIZE];
uint8_t path_len = OUT_PATH_UNKNOWN;
const char* err = NULL;
if (!parsePathCommand(spec, path, path_len, err)) {
strcpy(reply, err ? err : "Err - invalid path");
} else {
if (path_len == OUT_PATH_UNKNOWN || path_len == OUT_PATH_FORCE_FLOOD) {
memset(stored_path, 0, MAX_PATH_SIZE);
*stored_path_len = path_len;
} else {
*stored_path_len = mesh::Packet::copyPath(stored_path, path, path_len);
}
dirty_contacts_expiry = futureMillis(LAZY_CONTACTS_WRITE_DELAY);
formatPathReply(stored_path, *stored_path_len, reply, 160);
}
}
} else if (strncmp(command, "send text.flood ", 16) == 0) {
char* text = trimSpaces(command + 16);
if (*text == 0) {
strcpy(reply, "Err - usage: send text.flood <message>");
} else if (sendRepeatersFloodText(text)) {
strcpy(reply, "OK");
} else {
strcpy(reply, "Err - unable to create packet");
}
} else if (strcmp(command, "get battery.alert") == 0) {
sprintf(reply, "> %s", _prefs.battery_alert_enabled ? "on" : "off");
} else if (strcmp(command, "get battery.alert.region") == 0) {
sprintf(reply, "> %s", _prefs.battery_alert_region[0]
? _prefs.battery_alert_region : "<unset>");
} else if (strcmp(command, "get battery.alert.low") == 0) {
sprintf(reply, "> %u", (uint32_t)_prefs.battery_alert_low_percent);
} else if (strcmp(command, "get battery.alert.critical") == 0) {
sprintf(reply, "> %u", (uint32_t)_prefs.battery_alert_critical_percent);
} else if (strcmp(command, "get rx.watchdog") == 0) {
sprintf(reply, "> %s", _prefs.rx_watchdog_enabled ? "on" : "off");
} else if (strncmp(command, "set rx.watchdog ", 16) == 0) {
const char* value = command + 16;
if (strcmp(value, "on") == 0) {
_prefs.rx_watchdog_enabled = 1;
next_rx_watchdog_check = 0;
savePrefs();
strcpy(reply, "OK - RX watchdog enabled; first check in 12 hours");
} else if (strcmp(value, "off") == 0) {
_prefs.rx_watchdog_enabled = 0;
next_rx_watchdog_check = 0;
savePrefs();
strcpy(reply, "OK - RX watchdog disabled");
} else {
strcpy(reply, "Err - usage: set rx.watchdog <on|off>");
}
} else if (strncmp(command, "set battery.alert ", 18) == 0) {
const char* value = command + 18;
if (strncmp(value, "on", 2) == 0 && (value[2] == 0 || value[2] == ' ')) {
const char* region_name = skipLocalSpaces(value + 2);
const RegionEntry* region = NULL;
bool ambiguous = false;
if (*region_name) {
if (strchr(region_name, ' ') != NULL) {
strcpy(reply, "Err - region names cannot contain spaces");
return;
}
region = region_map.findByName(region_name);
if (region == NULL || region->isWildcard()) {
strcpy(reply, "Err - unknown or invalid alert region");
return;
}
} else {
region = findNarrowestBatteryAlertRegion(ambiguous);
if (region == NULL) {
strcpy(reply, "Err - define a usable region before enabling battery alerts");
return;
}
if (ambiguous) {
strcpy(reply, "Err - multiple narrowest regions; specify one");
return;
}
}
TransportKey region_scope;
if (!getBatteryAlertScopeForRegion(*region, region_scope)) {
strcpy(reply, "Err - alert region has no usable transport key");
return;
}
StrHelper::strncpy(_prefs.battery_alert_region, region->name,
sizeof(_prefs.battery_alert_region));
_prefs.battery_alert_enabled = 1;
next_battery_alert_check = 0;
savePrefs();
sprintf(reply, "OK - battery alerts scoped to %s", _prefs.battery_alert_region);
} else if (strcmp(value, "off") == 0) {
_prefs.battery_alert_enabled = 0;
next_battery_alert_check = 0;
savePrefs();
strcpy(reply, "OK");
} else {
strcpy(reply, "Err - usage: set battery.alert <on [region]|off>");
}
} else if (strncmp(command, "set battery.alert.low ", 22) == 0) {
uint8_t percent;
if (!parseBatteryAlertPercent(command + 22, 1, 100, percent)) {
strcpy(reply, "Err - usage: set battery.alert.low <1-100>");
} else if (percent <= _prefs.battery_alert_critical_percent) {
strcpy(reply, "Err - low must be greater than critical");
} else {
_prefs.battery_alert_low_percent = percent;
next_battery_alert_check = 0;
savePrefs();
strcpy(reply, "OK");
}
} else if (strncmp(command, "set battery.alert.critical ", 27) == 0) {
uint8_t percent;
if (!parseBatteryAlertPercent(command + 27, 0, 99, percent)) {
strcpy(reply, "Err - usage: set battery.alert.critical <0-99>");
} else if (percent >= _prefs.battery_alert_low_percent) {
strcpy(reply, "Err - critical must be less than low");
} else {
_prefs.battery_alert_critical_percent = percent;
next_battery_alert_check = 0;
savePrefs();
strcpy(reply, "OK");
}
} else if (memcmp(command, "discover.neighbors", 18) == 0) {
const char* sub = command + 18;
while (*sub == ' ') sub++;
if (*sub != 0) {
strcpy(reply, "Err - discover.neighbors has no options");
} else {
sendNodeDiscoverReq();
strcpy(reply, "OK - Discover sent");
}
} else{
_cli.handleCommand(sender_timestamp, command, reply); // common CLI commands
}
}
void MyMesh::loop() {
// Check radio FIRST to ensure we don't miss incoming packets
// MQTT processing runs in a separate FreeRTOS task on Core 0, so we don't call bridge.loop() here
mesh::Mesh::loop();
checkRxInactivityWatchdog();
#if !defined(PORTABLE_MQTT_OBSERVER)
checkBatteryAlert();
expireRecentRepeatersIfDue();
#endif
#if defined(WITH_BRIDGE) && !defined(WITH_MQTT_BRIDGE)
// MQTT runs its own task; serial and ESP-NOW bridges remain cooperative.
AbstractBridge* active_bridge = activeBridge();
if (active_bridge && active_bridge->isRunning()) active_bridge->loop();
#endif
if (next_flood_advert && millisHasNowPassed(next_flood_advert)) {
mesh::Packet *pkt = createSelfAdvert();
uint32_t delay_millis = 0;
if (pkt) sendFloodScoped(default_scope, pkt, delay_millis, _prefs.path_hash_mode + 1);
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 !defined(PORTABLE_MQTT_OBSERVER)
processScheduledRadioSettings();
#endif
#if defined(WITH_MQTT_BRIDGE) && defined(OTA_MANIFEST_BASE)
if (_ota_update_at && millisHasNowPassed(_ota_update_at)) { // deferred `ota update`
_ota_update_at = 0; // clear timer
// The "Beginning update..." reply has now gone out. Free the bridge for heap
// headroom, then flash: otaFromManifest reboots into the new image on success
// (so this never returns); on any abort (already up to date, partition change,
// download error) it returns and we resume the bridge.
Serial.println("OTA: starting update");
setBridgeState(false);
char ota_reply[160];
if (!_cli.getBoard()->otaFromManifest(getFirmwareVer(), false, ota_reply)) {
Serial.print("OTA: aborted, resuming bridge - "); Serial.println(ota_reply);
setBridgeState(true);
}
}
#endif
#ifdef WITH_WEBCONFIG
if (WebConfigServer::takeButtonToggleRequest()) {
char wc_reply[160];
setWebUIEnabled(!WebConfigServer::loadEnabled(false), wc_reply);
Serial.println(wc_reply);
}
if (_webconfig) {
_webconfig->tick(millis());
if (!_webconfig->isRunning() && !_webconfig->isStopping()) {
delete _webconfig;
_webconfig = nullptr;
}
}
#endif
// is pending dirty contacts write needed?
if (dirty_contacts_expiry && millisHasNowPassed(dirty_contacts_expiry)) {
acl.save(_fs);
dirty_contacts_expiry = 0;
}
// update uptime
uint32_t now = millis();
uptime_millis += now - last_millis;
last_millis = now;
#if !defined(PORTABLE_MQTT_OBSERVER)
checkGpsClockSyncOverride();
checkClockSync();
#endif
#ifdef WITH_MQTT_BRIDGE
_alerter.onLoop(now);
#endif
#ifdef WITH_SNMP
// Push radio stats to SNMP agent every 2 seconds
if (_snmp_agent.isRunning()) {
static unsigned long last_snmp_stats = 0;
if (now - last_snmp_stats >= 2000) {
last_snmp_stats = now;
_snmp_agent.updateRadioStats(
radio_driver.getPacketsRecv(), radio_driver.getPacketsSent(),
radio_driver.getPacketsRecvErrors(),
(int16_t)_radio->getNoiseFloor(),
(int16_t)radio_driver.getLastRSSI(),
(int16_t)(radio_driver.getLastSNR() * 4),
getNumSentFlood(), getNumSentDirect(),
getNumRecvFlood(), getNumRecvDirect(),
getTotalAirTime() / 1000, uptime_millis / 1000);
}
}
#endif
}
// To check if there is pending work
bool MyMesh::hasPendingWork() const {
#if defined(WITH_BRIDGE)
const AbstractBridge* active_bridge = activeBridge();
if (active_bridge && active_bridge->isRunning()) return true;
#endif
if (radio_driver.isWatchdogObserving()) return true; // keep MCU awake for one radio duty cycle
if (radio_driver.isCalibratingNoiseFloor()) return true; // keep MCU awake for the noise-floor window
if (hasQueuedWorkDue() || hasRetryWorkDue()) return true;
if (isMillisTimerDue(next_flood_advert) || isMillisTimerDue(next_local_advert)) return true;
if (isMillisTimerDue(dirty_contacts_expiry)) return true;
if (isMillisTimerDue(next_recent_repeater_sweep)) return true;
if (_prefs.battery_alert_enabled && isMillisTimerDue(next_battery_alert_check)) return true;
return hasScheduledRadioWorkDue();
}