Files
bitchat/bitchat/Services/BluetoothMeshService.swift
T
jack f77cec3fb2 Analyze scalability and prepare for TestFlight
- Deep analysis of mesh network scalability limits
- Current full mesh topology supports ~20-30 users maximum
- Identified bottlenecks: O(n²) connections, message flooding, battery impact
- Documented future scaling solutions: hierarchical topology, DHT routing
- Ready for TestFlight submission with current capacity constraints
2025-07-04 11:53:57 +02:00

1827 lines
80 KiB
Swift

import Foundation
import CoreBluetooth
import Combine
import CryptoKit
#if os(macOS)
import AppKit
import IOKit.ps
#else
import UIKit
#endif
// Extension for hex encoding
extension Data {
func hexEncodedString() -> String {
if self.isEmpty {
return ""
}
return self.map { String(format: "%02x", $0) }.joined()
}
}
class BluetoothMeshService: NSObject {
static let serviceUUID = CBUUID(string: "F47B5E2D-4A9E-4C5A-9B3F-8E1D2C3A4B5C")
static let characteristicUUID = CBUUID(string: "A1B2C3D4-E5F6-4A5B-8C9D-0E1F2A3B4C5D")
private var centralManager: CBCentralManager!
private var peripheralManager: CBPeripheralManager!
private var discoveredPeripherals: [CBPeripheral] = []
private var connectedPeripherals: [String: CBPeripheral] = [:]
private var peripheralCharacteristics: [CBPeripheral: CBCharacteristic] = [:]
private var characteristic: CBMutableCharacteristic!
private var subscribedCentrals: [CBCentral] = []
private var peerNicknames: [String: String] = [:]
private var activePeers: Set<String> = [] // Track all active peers
private var peerRSSI: [String: NSNumber] = [:] // Track RSSI values for peers
private var peripheralRSSI: [String: NSNumber] = [:] // Track RSSI by peripheral ID during discovery
weak var delegate: BitchatDelegate?
private let encryptionService = EncryptionService()
private let messageQueue = DispatchQueue(label: "bitchat.messageQueue", attributes: .concurrent)
private var processedMessages = Set<String>()
private let maxTTL: UInt8 = 5 // Increased for better reach
private var announcedToPeers = Set<String>() // Track which peers we've announced to
private var announcedPeers = Set<String>() // Track peers who have already been announced
// Store-and-forward message cache
private struct StoredMessage {
let packet: BitchatPacket
let timestamp: Date
let messageID: String
let isForFavorite: Bool // Messages for favorites stored indefinitely
}
private var messageCache: [StoredMessage] = []
private let messageCacheTimeout: TimeInterval = 43200 // 12 hours for regular peers
private let maxCachedMessages = 100 // For regular peers
private let maxCachedMessagesForFavorites = 1000 // Much larger cache for favorites
private var favoriteMessageQueue: [String: [StoredMessage]] = [:] // Per-favorite message queues
// Battery and range optimizations
private var scanDutyCycleTimer: Timer?
private var isActivelyScanning = true
private var activeScanDuration: TimeInterval = 2.0 // Scan actively for 2 seconds - will be adjusted based on battery
private var scanPauseDuration: TimeInterval = 3.0 // Pause for 3 seconds - will be adjusted based on battery
private var lastRSSIUpdate: [String: Date] = [:] // Throttle RSSI updates
private var batteryMonitorTimer: Timer?
private var currentBatteryLevel: Float = 1.0 // Default to full battery
// Cover traffic for privacy
private var coverTrafficTimer: Timer?
private let coverTrafficPrefix = "☂DUMMY☂" // Prefix to identify dummy messages after decryption
private var lastCoverTrafficTime = Date()
// Timing randomization for privacy
private let minMessageDelay: TimeInterval = 0.05 // 50ms minimum
private let maxMessageDelay: TimeInterval = 0.5 // 500ms maximum
// Fragment handling
private var incomingFragments: [String: [Int: Data]] = [:] // fragmentID -> [index: data]
private var fragmentMetadata: [String: (originalType: UInt8, totalFragments: Int, timestamp: Date)] = [:]
private let maxFragmentSize = 500 // Optimized for BLE 5.0 extended data length
let myPeerID: String
// Helper method to get fingerprint from public key data
private func getPublicKeyFingerprint(_ publicKeyData: Data) -> String {
let fingerprint = SHA256.hash(data: publicKeyData)
.compactMap { String(format: "%02x", $0) }
.joined()
.prefix(16) // Use first 16 chars for brevity
.lowercased()
return String(fingerprint)
}
override init() {
// Generate ephemeral peer ID for each session to prevent tracking
// Use random bytes instead of UUID for better anonymity
var randomBytes = [UInt8](repeating: 0, count: 4)
_ = SecRandomCopyBytes(kSecRandomDefault, 4, &randomBytes)
self.myPeerID = randomBytes.map { String(format: "%02x", $0) }.joined()
super.init()
print("[STARTUP] Generated ephemeral peer ID: \(myPeerID)")
centralManager = CBCentralManager(delegate: self, queue: nil)
peripheralManager = CBPeripheralManager(delegate: self, queue: nil)
// Register for app termination notifications
#if os(macOS)
NotificationCenter.default.addObserver(
self,
selector: #selector(appWillTerminate),
name: NSApplication.willTerminateNotification,
object: nil
)
#else
NotificationCenter.default.addObserver(
self,
selector: #selector(appWillTerminate),
name: UIApplication.willTerminateNotification,
object: nil
)
#endif
}
deinit {
cleanup()
scanDutyCycleTimer?.invalidate()
batteryMonitorTimer?.invalidate()
coverTrafficTimer?.invalidate()
}
@objc private func appWillTerminate() {
cleanup()
}
private func cleanup() {
// Send leave announcement before disconnecting
sendLeaveAnnouncement()
// Give the leave message time to send
Thread.sleep(forTimeInterval: 0.2)
// First, disconnect all peripherals which will trigger disconnect delegates
for (_, peripheral) in connectedPeripherals {
centralManager.cancelPeripheralConnection(peripheral)
}
// Stop advertising
if peripheralManager.isAdvertising {
peripheralManager.stopAdvertising()
}
// Stop scanning
centralManager.stopScan()
// Remove all services - this will disconnect any connected centrals
if peripheralManager.state == .poweredOn {
peripheralManager.removeAllServices()
}
// Clear all tracking
connectedPeripherals.removeAll()
subscribedCentrals.removeAll()
activePeers.removeAll()
announcedPeers.removeAll()
// Clear announcement tracking
announcedToPeers.removeAll()
}
func startServices() {
// Start both central and peripheral services
if centralManager.state == .poweredOn {
startScanning()
}
if peripheralManager.state == .poweredOn {
setupPeripheral()
startAdvertising()
}
// Send initial announces after services are ready
DispatchQueue.main.asyncAfter(deadline: .now() + 1.0) { [weak self] in
self?.sendBroadcastAnnounce()
}
// Start battery monitoring
startBatteryMonitoring()
// Start cover traffic for privacy
startCoverTraffic()
}
func sendBroadcastAnnounce() {
guard let vm = delegate as? ChatViewModel else { return }
let announcePacket = BitchatPacket(
type: MessageType.announce.rawValue,
ttl: 1,
senderID: myPeerID,
payload: Data(vm.nickname.utf8)
)
print("[ANNOUNCE] Sending proactive broadcast announce with nickname: \(vm.nickname)")
// Initial send with random delay
let initialDelay = self.randomDelay()
DispatchQueue.main.asyncAfter(deadline: .now() + initialDelay) { [weak self] in
self?.broadcastPacket(announcePacket)
}
// Send multiple times for reliability with jittered delays
for baseDelay in [0.5, 1.0, 2.0] {
let jitteredDelay = baseDelay + self.randomDelay()
DispatchQueue.main.asyncAfter(deadline: .now() + jitteredDelay) { [weak self] in
guard let self = self else { return }
self.broadcastPacket(announcePacket)
// [ANNOUNCE] Re-sending broadcast announce with jitter
}
}
}
func startAdvertising() {
guard peripheralManager.state == .poweredOn else {
return
}
// Use generic advertising to avoid identification
// No identifying prefixes or app names for activist safety
let advertisementData: [String: Any] = [
CBAdvertisementDataServiceUUIDsKey: [BluetoothMeshService.serviceUUID],
// Use only peer ID without any identifying prefix
CBAdvertisementDataLocalNameKey: myPeerID,
CBAdvertisementDataIsConnectable: true
]
// [BLUETOOTH] Starting advertising
peripheralManager.startAdvertising(advertisementData)
}
func startScanning() {
guard centralManager.state == .poweredOn else {
return
}
// [BLUETOOTH] Starting scan
// Enable duplicate detection for RSSI tracking
let scanOptions: [String: Any] = [
CBCentralManagerScanOptionAllowDuplicatesKey: true
]
centralManager.scanForPeripherals(
withServices: [BluetoothMeshService.serviceUUID],
options: scanOptions
)
// Update scan parameters based on battery before starting
updateScanParametersForBattery()
// Implement scan duty cycling for battery efficiency
scheduleScanDutyCycle()
}
private func scheduleScanDutyCycle() {
guard scanDutyCycleTimer == nil else { return }
// Start with active scanning
isActivelyScanning = true
scanDutyCycleTimer = Timer.scheduledTimer(withTimeInterval: activeScanDuration, repeats: true) { [weak self] _ in
guard let self = self else { return }
if self.isActivelyScanning {
// Pause scanning to save battery
self.centralManager.stopScan()
self.isActivelyScanning = false
// [BLUETOOTH] Pausing scan
// Schedule resume
DispatchQueue.main.asyncAfter(deadline: .now() + self.scanPauseDuration) { [weak self] in
guard let self = self else { return }
if self.centralManager.state == .poweredOn {
self.centralManager.scanForPeripherals(
withServices: [BluetoothMeshService.serviceUUID],
options: [CBCentralManagerScanOptionAllowDuplicatesKey: true]
)
self.isActivelyScanning = true
// [BLUETOOTH] Resuming scan
}
}
}
}
}
private func setupPeripheral() {
let characteristic = CBMutableCharacteristic(
type: BluetoothMeshService.characteristicUUID,
properties: [.read, .write, .writeWithoutResponse, .notify],
value: nil,
permissions: [.readable, .writeable]
)
let service = CBMutableService(type: BluetoothMeshService.serviceUUID, primary: true)
service.characteristics = [characteristic]
peripheralManager.add(service)
self.characteristic = characteristic
}
func sendMessage(_ content: String, mentions: [String] = [], to recipientID: String? = nil) {
messageQueue.async { [weak self] in
guard let self = self else { return }
let nickname = self.delegate as? ChatViewModel
let senderNick = nickname?.nickname ?? self.myPeerID
let message = BitchatMessage(
sender: senderNick,
content: content,
timestamp: Date(),
isRelay: false,
originalSender: nil,
mentions: mentions.isEmpty ? nil : mentions
)
if let messageData = message.toBinaryPayload() {
// Sign the message payload (no encryption for broadcasts)
let signature: Data?
do {
signature = try self.encryptionService.sign(messageData)
print("[CRYPTO] Successfully signed broadcast message")
} catch {
print("[CRYPTO] Failed to sign message: \(error)")
signature = nil
}
// Use unified message type with broadcast recipient
let packet = BitchatPacket(
type: MessageType.message.rawValue,
senderID: Data(self.myPeerID.utf8),
recipientID: SpecialRecipients.broadcast, // Special broadcast ID
timestamp: UInt64(Date().timeIntervalSince1970),
payload: messageData,
signature: signature,
ttl: self.maxTTL
)
// Add random delay before initial send
let initialDelay = self.randomDelay()
DispatchQueue.main.asyncAfter(deadline: .now() + initialDelay) { [weak self] in
self?.broadcastPacket(packet)
print("[MESSAGE] Sending: \(content) (delayed by \(Int(initialDelay * 1000))ms)")
}
// Retry with randomized delays for reliability
let baseDelays = [0.2, 0.5]
for baseDelay in baseDelays {
let jitteredDelay = baseDelay + self.randomDelay()
DispatchQueue.main.asyncAfter(deadline: .now() + jitteredDelay) { [weak self] in
self?.broadcastPacket(packet)
// Re-sending message with jitter
}
}
}
}
}
func sendPrivateMessage(_ content: String, to recipientPeerID: String, recipientNickname: String) {
messageQueue.async { [weak self] in
guard let self = self else { return }
let nickname = self.delegate as? ChatViewModel
let senderNick = nickname?.nickname ?? self.myPeerID
let message = BitchatMessage(
sender: senderNick,
content: content,
timestamp: Date(),
isRelay: false,
originalSender: nil,
isPrivate: true,
recipientNickname: recipientNickname,
senderPeerID: self.myPeerID
)
if let messageData = message.toBinaryPayload() {
// Pad message to standard block size for privacy
let blockSize = MessagePadding.optimalBlockSize(for: messageData.count)
let paddedData = MessagePadding.pad(messageData, toSize: blockSize)
print("[PRIVACY] Padded message from \(messageData.count) to \(paddedData.count) bytes")
// Encrypt the padded message for the recipient
let encryptedPayload: Data
do {
encryptedPayload = try self.encryptionService.encrypt(paddedData, for: recipientPeerID)
print("[CRYPTO] Successfully encrypted private message for \(recipientPeerID)")
} catch {
print("[CRYPTO] Failed to encrypt private message: \(error)")
// Don't send unencrypted private messages
return
}
// Sign the encrypted payload
let signature: Data?
do {
signature = try self.encryptionService.sign(encryptedPayload)
print("[CRYPTO] Successfully signed private message")
} catch {
print("[CRYPTO] Failed to sign private message: \(error)")
signature = nil
}
// Create packet with recipient ID for proper routing
let packet = BitchatPacket(
type: MessageType.message.rawValue,
senderID: Data(self.myPeerID.utf8),
recipientID: Data(recipientPeerID.utf8),
timestamp: UInt64(Date().timeIntervalSince1970),
payload: encryptedPayload,
signature: signature,
ttl: self.maxTTL
)
print("[PRIVATE] Sending encrypted message to \(recipientPeerID): \(content)")
// Add random delay for timing obfuscation
let delay = self.randomDelay()
DispatchQueue.main.asyncAfter(deadline: .now() + delay) { [weak self] in
self?.broadcastPacket(packet)
print("[PRIVACY] Private message sent with \(Int(delay * 1000))ms delay")
}
// Don't call didReceiveMessage here - let the view model handle it directly
}
}
}
private func sendAnnouncementToPeer(_ peerID: String) {
guard let vm = delegate as? ChatViewModel else { return }
print("[ANNOUNCE] Sending announce to \(peerID) with nickname: \(vm.nickname)")
// Always send announce, don't check if already announced
// This ensures peers get our nickname even if they reconnect
let packet = BitchatPacket(
type: MessageType.announce.rawValue,
ttl: 1,
senderID: myPeerID,
payload: Data(vm.nickname.utf8)
)
if let data = packet.toBinaryData() {
print("[ANNOUNCE] Broadcasting announce packet")
// Try both broadcast and targeted send
broadcastPacket(packet)
// Also try targeted send if we have the peripheral
if let peripheral = connectedPeripherals[peerID],
let characteristic = peripheral.services?.first(where: { $0.uuid == BluetoothMeshService.serviceUUID })?.characteristics?.first(where: { $0.uuid == BluetoothMeshService.characteristicUUID }) {
print("[ANNOUNCE] Also sending targeted announce to peripheral \(peerID)")
peripheral.writeValue(data, for: characteristic, type: .withResponse)
} else {
print("[ANNOUNCE] No peripheral found for targeted send to \(peerID)")
}
} else {
print("[ANNOUNCE] Failed to create binary data for announce packet")
}
announcedToPeers.insert(peerID)
}
private func sendLeaveAnnouncement() {
guard let vm = delegate as? ChatViewModel else { return }
let packet = BitchatPacket(
type: MessageType.leave.rawValue,
ttl: 1, // Don't relay leave messages
senderID: myPeerID,
payload: Data(vm.nickname.utf8)
)
broadcastPacket(packet)
}
func getPeerNicknames() -> [String: String] {
return peerNicknames
}
func getPeerRSSI() -> [String: NSNumber] {
return peerRSSI
}
// Emergency disconnect for panic situations
func emergencyDisconnectAll() {
// Stop advertising immediately
if peripheralManager.isAdvertising {
peripheralManager.stopAdvertising()
}
// Stop scanning
centralManager.stopScan()
scanDutyCycleTimer?.invalidate()
scanDutyCycleTimer = nil
// Disconnect all peripherals
for (_, peripheral) in connectedPeripherals {
centralManager.cancelPeripheralConnection(peripheral)
}
// Clear all peer data
connectedPeripherals.removeAll()
peripheralCharacteristics.removeAll()
discoveredPeripherals.removeAll()
subscribedCentrals.removeAll()
peerNicknames.removeAll()
activePeers.removeAll()
peerRSSI.removeAll()
peripheralRSSI.removeAll()
announcedToPeers.removeAll()
announcedPeers.removeAll()
processedMessages.removeAll()
incomingFragments.removeAll()
fragmentMetadata.removeAll()
// Clear persistent identity
encryptionService.clearPersistentIdentity()
print("[PANIC] Emergency disconnect completed")
}
private func getAllConnectedPeerIDs() -> [String] {
// Only return peers who have announced (have nicknames)
let announcedPeers = Set(activePeers.compactMap { peerID -> String? in
// Ensure peerID is valid and not nil
guard !peerID.isEmpty,
peerID != "unknown",
peerID != myPeerID,
peerID.count <= 8, // Filter out temp IDs
peerNicknames[peerID] != nil else { // Only include peers who have announced
return nil
}
return peerID
})
// Active peers: \(announcedPeers.count)
return Array(announcedPeers).sorted()
}
// MARK: - Store-and-Forward Methods
private func cacheMessage(_ packet: BitchatPacket, messageID: String) {
messageQueue.async(flags: .barrier) { [weak self] in
guard let self = self else { return }
// Don't cache certain message types
guard packet.type != MessageType.keyExchange.rawValue,
packet.type != MessageType.announce.rawValue,
packet.type != MessageType.leave.rawValue,
packet.type != MessageType.fragmentStart.rawValue,
packet.type != MessageType.fragmentContinue.rawValue,
packet.type != MessageType.fragmentEnd.rawValue else {
return
}
// Check if this is a private message for a favorite
var isForFavorite = false
if packet.type == MessageType.message.rawValue,
let recipientID = packet.recipientID,
let recipientPeerID = String(data: recipientID.trimmingNullBytes(), encoding: .utf8) {
// Check if recipient is a favorite via their public key fingerprint
if let publicKeyData = self.encryptionService.getPeerIdentityKey(recipientPeerID) {
let fingerprint = self.getPublicKeyFingerprint(publicKeyData)
isForFavorite = self.delegate?.isFavorite(fingerprint: fingerprint) ?? false
}
}
// Create stored message
let storedMessage = StoredMessage(
packet: packet,
timestamp: Date(),
messageID: messageID,
isForFavorite: isForFavorite
)
if isForFavorite {
// Store in favorite-specific queue
if let recipientID = packet.recipientID,
let recipientPeerID = String(data: recipientID.trimmingNullBytes(), encoding: .utf8) {
if self.favoriteMessageQueue[recipientPeerID] == nil {
self.favoriteMessageQueue[recipientPeerID] = []
}
self.favoriteMessageQueue[recipientPeerID]?.append(storedMessage)
// Limit favorite queue size
if let count = self.favoriteMessageQueue[recipientPeerID]?.count,
count > self.maxCachedMessagesForFavorites {
self.favoriteMessageQueue[recipientPeerID]?.removeFirst()
}
print("[CACHE] Cached message for favorite \(recipientPeerID), queue size: \(self.favoriteMessageQueue[recipientPeerID]?.count ?? 0)")
}
} else {
// Clean up old messages first (only for regular cache)
self.cleanupMessageCache()
// Add to regular cache
self.messageCache.append(storedMessage)
// Limit cache size
if self.messageCache.count > self.maxCachedMessages {
self.messageCache.removeFirst()
}
print("[CACHE] Cached message (type: \(packet.type)), cache size: \(self.messageCache.count)")
}
}
}
private func cleanupMessageCache() {
let cutoffTime = Date().addingTimeInterval(-messageCacheTimeout)
// Only remove non-favorite messages that are older than timeout
messageCache.removeAll { !$0.isForFavorite && $0.timestamp < cutoffTime }
}
private func sendCachedMessages(to peerID: String) {
messageQueue.async { [weak self] in
guard let self = self,
let peripheral = self.connectedPeripherals[peerID],
let characteristic = self.peripheralCharacteristics[peripheral] else {
return
}
// Clean up old messages first
self.cleanupMessageCache()
var messagesToSend: [StoredMessage] = []
// First, check if this peer has any favorite messages waiting
if let favoriteMessages = self.favoriteMessageQueue[peerID] {
messagesToSend.append(contentsOf: favoriteMessages)
// Clear the favorite queue after adding to send list
self.favoriteMessageQueue[peerID] = nil
print("[CACHE] Found \(favoriteMessages.count) favorite messages for \(peerID)")
}
// Then add regular cached messages
messagesToSend.append(contentsOf: self.messageCache)
print("[CACHE] Sending \(messagesToSend.count) total cached messages to \(peerID)")
// Send cached messages with slight delay between each
for (index, storedMessage) in messagesToSend.enumerated() {
let delay = Double(index) * 0.1 // 100ms between messages
DispatchQueue.main.asyncAfter(deadline: .now() + delay) { [weak peripheral] in
guard let peripheral = peripheral,
peripheral.state == .connected else { return }
// Create a new packet with fresh timestamp
let updatedPacket = BitchatPacket(
type: storedMessage.packet.type,
senderID: storedMessage.packet.senderID,
recipientID: storedMessage.packet.recipientID,
timestamp: UInt64(Date().timeIntervalSince1970),
payload: storedMessage.packet.payload,
signature: storedMessage.packet.signature,
ttl: storedMessage.packet.ttl
)
if let data = updatedPacket.toBinaryData() {
peripheral.writeValue(data, for: characteristic, type: .withoutResponse)
print("[CACHE] Sent cached message \(index + 1)/\(messagesToSend.count) to \(peerID)")
}
}
}
}
}
private func estimateDistance(rssi: Int) -> Int {
// Rough distance estimation based on RSSI
// Using path loss formula: RSSI = TxPower - 10 * n * log10(distance)
// Assuming TxPower = -59 dBm at 1m, n = 2.0 (free space)
let txPower = -59.0
let pathLossExponent = 2.0
let ratio = (txPower - Double(rssi)) / (10.0 * pathLossExponent)
let distance = pow(10.0, ratio)
return Int(distance)
}
private func broadcastPacket(_ packet: BitchatPacket) {
guard let data = packet.toBinaryData() else {
print("[ERROR] Failed to convert packet to binary data")
return
}
// [BROADCAST] Type: \(packet.type), peripherals: \(connectedPeripherals.count), centrals: \(subscribedCentrals.count)
// Send to connected peripherals (as central)
var sentToPeripherals = 0
for (peerID, peripheral) in connectedPeripherals {
if let characteristic = peripheralCharacteristics[peripheral] {
// Check if peripheral is connected before writing
if peripheral.state == .connected {
// Use withoutResponse for faster transmission when possible
// Only use withResponse for critical messages or when MTU negotiation needed
let writeType: CBCharacteristicWriteType = data.count > 512 ? .withResponse : .withoutResponse
peripheral.writeValue(data, for: characteristic, type: writeType)
sentToPeripherals += 1
} else {
print("[BROADCAST] Peripheral \(peerID) not connected (state: \(peripheral.state.rawValue))")
}
} else {
// No characteristic for peripheral
}
}
// Sent to \(sentToPeripherals) peripherals
// Send to subscribed centrals (as peripheral)
if let char = characteristic, !subscribedCentrals.isEmpty {
// Send to all subscribed centrals
let success = peripheralManager.updateValue(data, for: char, onSubscribedCentrals: nil)
if success {
// Sent to centrals
} else {
print("[BROADCAST] Failed to send to centrals - queue full, will retry on delegate callback")
}
} else {
if characteristic == nil {
// No characteristic or centrals
}
}
}
private func handleReceivedPacket(_ packet: BitchatPacket, from peerID: String, peripheral: CBPeripheral? = nil) {
messageQueue.async(flags: .barrier) { [weak self] in
guard let self = self else { return }
guard packet.ttl > 0 else {
print("[PACKET] Dropping packet with TTL 0")
return
}
// Validate packet has payload
guard !packet.payload.isEmpty else {
print("[PACKET] Dropping packet with empty payload")
return
}
// Replay attack protection: Check timestamp is within reasonable window (5 minutes)
let currentTime = UInt64(Date().timeIntervalSince1970)
let timeDiff = abs(Int64(currentTime) - Int64(packet.timestamp))
if timeDiff > 300 { // 5 minutes
print("[SECURITY] Dropping packet with timestamp too far from current time: \(timeDiff) seconds")
return
}
// For fragments, include packet type in messageID to avoid dropping CONTINUE/END fragments
let messageID: String
if packet.type == MessageType.fragmentStart.rawValue ||
packet.type == MessageType.fragmentContinue.rawValue ||
packet.type == MessageType.fragmentEnd.rawValue {
// Include both type and payload hash for fragments to ensure uniqueness
messageID = "\(packet.timestamp)-\(String(data: packet.senderID.trimmingNullBytes(), encoding: .utf8) ?? "")-\(packet.type)-\(packet.payload.hashValue)"
} else {
messageID = "\(packet.timestamp)-\(String(data: packet.senderID.trimmingNullBytes(), encoding: .utf8) ?? "")"
}
guard !processedMessages.contains(messageID) else {
return
}
processedMessages.insert(messageID)
if processedMessages.count > 1000 {
processedMessages.removeAll()
}
let _ = String(data: packet.senderID.trimmingNullBytes(), encoding: .utf8) ?? "unknown"
// Received packet type: \(packet.type) from \(peerID)
// Note: We'll decode messages in the switch statement below, not here
switch MessageType(rawValue: packet.type) {
case .message:
// Unified message handler for both broadcast and private messages
guard let senderID = String(data: packet.senderID.trimmingNullBytes(), encoding: .utf8) else {
return
}
// Ignore our own messages
if senderID == myPeerID {
return
}
// Check if this is a broadcast or private message
if let recipientID = packet.recipientID {
if recipientID == SpecialRecipients.broadcast {
// BROADCAST MESSAGE
print("[MESSAGE] Received broadcast message")
// Verify signature if present
if let signature = packet.signature {
do {
let isValid = try encryptionService.verify(signature, for: packet.payload, from: senderID)
if !isValid {
print("[CRYPTO] Invalid signature from \(senderID), dropping message")
return
}
} catch {
print("[CRYPTO] Failed to verify signature from \(senderID): \(error)")
}
}
// Parse broadcast message (not encrypted)
if let message = BitchatMessage.fromBinaryPayload(packet.payload) {
print("[MESSAGE] Broadcast from \(message.sender): \(message.content)")
// Store nickname mapping
peerNicknames[senderID] = message.sender
let messageWithPeerID = BitchatMessage(
sender: message.sender,
content: message.content,
timestamp: message.timestamp,
isRelay: message.isRelay,
originalSender: message.originalSender,
isPrivate: false,
recipientNickname: nil,
senderPeerID: senderID,
mentions: message.mentions
)
DispatchQueue.main.async {
self.delegate?.didReceiveMessage(messageWithPeerID)
}
}
// Relay if TTL > 0
var relayPacket = packet
relayPacket.ttl -= 1
if relayPacket.ttl > 0 {
self.cacheMessage(relayPacket, messageID: messageID)
self.broadcastPacket(relayPacket)
}
} else if let recipientIDString = String(data: recipientID.trimmingNullBytes(), encoding: .utf8),
recipientIDString == myPeerID {
// PRIVATE MESSAGE FOR US
print("[MESSAGE] Received private message for us")
// Verify signature if present
if let signature = packet.signature {
do {
let isValid = try encryptionService.verify(signature, for: packet.payload, from: senderID)
if !isValid {
print("[CRYPTO] Invalid signature on private message from \(senderID), dropping")
return
}
} catch {
print("[CRYPTO] Failed to verify signature from \(senderID): \(error)")
}
}
// Decrypt the message
let decryptedPayload: Data
do {
let decryptedPadded = try encryptionService.decrypt(packet.payload, from: senderID)
print("[CRYPTO] Successfully decrypted private message from \(senderID)")
// Remove padding
decryptedPayload = MessagePadding.unpad(decryptedPadded)
print("[PRIVACY] Unpadded message from \(decryptedPadded.count) to \(decryptedPayload.count) bytes")
} catch {
print("[CRYPTO] Failed to decrypt private message from \(senderID): \(error)")
return
}
// Parse the decrypted message
if let message = BitchatMessage.fromBinaryPayload(decryptedPayload) {
// Check if this is a dummy message for cover traffic
if message.content.hasPrefix(self.coverTrafficPrefix) {
print("[PRIVACY] Received and discarded cover traffic from \(senderID)")
return // Silently discard dummy messages
}
print("[MESSAGE] Private from \(senderID): \(message.content)")
// Store nickname mapping if we don't have it
if peerNicknames[senderID] == nil {
peerNicknames[senderID] = message.sender
}
let messageWithPeerID = BitchatMessage(
sender: message.sender,
content: message.content,
timestamp: message.timestamp,
isRelay: message.isRelay,
originalSender: message.originalSender,
isPrivate: message.isPrivate,
recipientNickname: message.recipientNickname,
senderPeerID: senderID
)
DispatchQueue.main.async {
self.delegate?.didReceiveMessage(messageWithPeerID)
}
}
} else if packet.ttl > 0 {
// RELAY PRIVATE MESSAGE (not for us)
print("[MESSAGE] Relaying private message not meant for us (TTL: \(packet.ttl))")
var relayPacket = packet
relayPacket.ttl -= 1
// Check if this message is for an offline favorite and cache it
if let recipientIDString = String(data: recipientID.trimmingNullBytes(), encoding: .utf8),
let publicKeyData = self.encryptionService.getPeerIdentityKey(recipientIDString) {
let fingerprint = self.getPublicKeyFingerprint(publicKeyData)
if self.delegate?.isFavorite(fingerprint: fingerprint) ?? false {
print("[CACHE] Caching relayed message for offline favorite: \(recipientIDString)")
self.cacheMessage(relayPacket, messageID: messageID)
}
}
self.broadcastPacket(relayPacket)
}
}
case .keyExchange:
// Use senderID from packet for consistency
if let senderID = String(data: packet.senderID.trimmingNullBytes(), encoding: .utf8) {
if packet.payload.count > 0 {
let publicKeyData = packet.payload
do {
try encryptionService.addPeerPublicKey(senderID, publicKeyData: publicKeyData)
print("[KEY_EXCHANGE] Successfully added public key for \(senderID)")
} catch {
print("[KEY_EXCHANGE] Failed to add public key for \(senderID): \(error)")
}
// Register identity key with view model for persistent favorites
if let viewModel = self.delegate as? ChatViewModel,
let identityKeyData = encryptionService.getPeerIdentityKey(senderID) {
viewModel.registerPeerPublicKey(peerID: senderID, publicKeyData: identityKeyData)
}
// Track this peer temporarily
if senderID != "unknown" && senderID != myPeerID {
// Check if we need to update peripheral mapping from the specific peripheral that sent this
if let peripheral = peripheral {
// Find if this peripheral is currently mapped with a temp ID
if let tempID = self.connectedPeripherals.first(where: { $0.value == peripheral })?.key,
tempID.count > 8 { // It's a temp ID
// Remove temp mapping and add real peer ID mapping
self.connectedPeripherals.removeValue(forKey: tempID)
self.connectedPeripherals[senderID] = peripheral
print("[KEY_EXCHANGE] Updated peripheral mapping from temp ID \(tempID) to \(senderID)")
// Transfer RSSI from temp ID to peer ID
if let rssi = self.peripheralRSSI[tempID] {
self.peerRSSI[senderID] = rssi
self.peripheralRSSI.removeValue(forKey: tempID)
print("[KEY_EXCHANGE] Transferred RSSI \(rssi) to peer \(senderID)")
}
}
}
// Add to active peers immediately on key exchange
activePeers.insert(senderID)
let connectedPeerIDs = self.getAllConnectedPeerIDs()
DispatchQueue.main.async {
self.delegate?.didUpdatePeerList(connectedPeerIDs)
}
}
// Send announce with our nickname immediately
print("[KEY_EXCHANGE] Calling sendAnnouncementToPeer for \(senderID)")
self.sendAnnouncementToPeer(senderID)
// Check if this peer has cached messages (especially for favorites)
self.sendCachedMessages(to: senderID)
}
}
case .announce:
print("[ANNOUNCE] Processing announce packet, payload size: \(packet.payload.count)")
if let nickname = String(data: packet.payload, encoding: .utf8),
let senderID = String(data: packet.senderID.trimmingNullBytes(), encoding: .utf8) {
// Received announce from \(senderID): \(nickname)
// Ignore if it's from ourselves
if senderID == myPeerID {
return
}
// Check if we've already announced this peer
let isFirstAnnounce = !announcedPeers.contains(senderID)
// Store the nickname
peerNicknames[senderID] = nickname
print("[ANNOUNCE] Stored nickname for \(senderID): \(nickname)")
// Updated nicknames
// Note: We can't update peripheral mapping here since we don't have
// access to which peripheral sent this announce. The mapping will be
// updated when we receive key exchange packets where we do have the peripheral.
// Add to active peers if not already there
if senderID != "unknown" {
if !activePeers.contains(senderID) {
activePeers.insert(senderID)
}
// Show join message only for first announce
if isFirstAnnounce {
announcedPeers.insert(senderID)
DispatchQueue.main.async {
self.delegate?.didConnectToPeer(nickname)
self.delegate?.didUpdatePeerList(self.getAllConnectedPeerIDs())
// Check if this is a favorite peer and send notification
// Note: This might not work immediately if key exchange hasn't happened yet
DispatchQueue.main.asyncAfter(deadline: .now() + 0.5) { [weak self] in
guard let self = self else { return }
// Check if this is a favorite using their public key fingerprint
if let publicKeyData = self.encryptionService.getPeerIdentityKey(senderID) {
let fingerprint = self.getPublicKeyFingerprint(publicKeyData)
if self.delegate?.isFavorite(fingerprint: fingerprint) ?? false {
NotificationService.shared.sendFavoriteOnlineNotification(nickname: nickname)
// Send any cached messages for this favorite
print("[CACHE] Favorite peer \(senderID) came online, checking for cached messages")
self.sendCachedMessages(to: senderID)
}
} else if let viewModel = self.delegate as? ChatViewModel,
viewModel.isFavorite(peerID: senderID) {
// Fallback for backwards compatibility
NotificationService.shared.sendFavoriteOnlineNotification(nickname: nickname)
}
}
}
} else {
// Just update the peer list
DispatchQueue.main.async {
self.delegate?.didUpdatePeerList(self.getAllConnectedPeerIDs())
}
}
} else {
}
} else {
print("[ANNOUNCE] Failed to decode announce packet - senderID or nickname invalid")
}
case .leave:
print("[LEAVE] Processing leave packet")
if let nickname = String(data: packet.payload, encoding: .utf8),
let senderID = String(data: packet.senderID.trimmingNullBytes(), encoding: .utf8) {
print("[LEAVE] \(nickname) (\(senderID)) is leaving")
// Remove from active peers
activePeers.remove(senderID)
announcedPeers.remove(senderID)
// Show leave message
DispatchQueue.main.async {
self.delegate?.didDisconnectFromPeer(nickname)
self.delegate?.didUpdatePeerList(self.getAllConnectedPeerIDs())
}
// Clean up peer data
peerNicknames.removeValue(forKey: senderID)
} else {
print("[LEAVE] Failed to parse leave packet")
}
case .fragmentStart, .fragmentContinue, .fragmentEnd:
let fragmentTypeStr = packet.type == MessageType.fragmentStart.rawValue ? "START" :
(packet.type == MessageType.fragmentContinue.rawValue ? "CONTINUE" : "END")
print("[PACKET] Handling fragment type: \(fragmentTypeStr) (\(packet.type)), payload size: \(packet.payload.count), from: \(peerID)")
// Validate fragment has minimum required size
if packet.payload.count < 13 {
print("[PACKET] Fragment payload too small: \(packet.payload.count) bytes, dropping")
return
}
handleFragment(packet, from: peerID)
// Relay fragments if TTL > 0
var relayPacket = packet
relayPacket.ttl -= 1
if relayPacket.ttl > 0 {
print("[PACKET] Relaying fragment with TTL: \(relayPacket.ttl)")
self.broadcastPacket(relayPacket)
}
default:
break
}
}
}
private func sendFragmentedPacket(_ packet: BitchatPacket) {
guard let fullData = packet.toBinaryData() else { return }
// Generate a fixed 8-byte fragment ID
var fragmentID = Data(count: 8)
fragmentID.withUnsafeMutableBytes { bytes in
arc4random_buf(bytes.baseAddress, 8)
}
let fragments = stride(from: 0, to: fullData.count, by: maxFragmentSize).map { offset in
fullData[offset..<min(offset + maxFragmentSize, fullData.count)]
}
print("[FRAGMENT] Splitting into \(fragments.count) fragments of max \(maxFragmentSize) bytes")
print("[FRAGMENT] Fragment ID: \(fragmentID.hexEncodedString())")
print("[FRAGMENT] Original packet size: \(fullData.count) bytes")
// Optimize fragment transmission for speed
// Use minimal delay for BLE 5.0 which supports better throughput
let delayBetweenFragments: TimeInterval = 0.02 // 20ms between fragments for faster transmission
for (index, fragmentData) in fragments.enumerated() {
var fragmentPayload = Data()
// Fragment header: fragmentID (8) + index (2) + total (2) + originalType (1) + data
fragmentPayload.append(fragmentID)
fragmentPayload.append(UInt8((index >> 8) & 0xFF))
fragmentPayload.append(UInt8(index & 0xFF))
fragmentPayload.append(UInt8((fragments.count >> 8) & 0xFF))
fragmentPayload.append(UInt8(fragments.count & 0xFF))
fragmentPayload.append(packet.type)
fragmentPayload.append(fragmentData)
let fragmentType: MessageType
if index == 0 {
fragmentType = .fragmentStart
} else if index == fragments.count - 1 {
fragmentType = .fragmentEnd
} else {
fragmentType = .fragmentContinue
}
let fragmentPacket = BitchatPacket(
type: fragmentType.rawValue,
ttl: packet.ttl,
senderID: myPeerID,
payload: fragmentPayload
)
// Send fragments with linear delay
let totalDelay = Double(index) * delayBetweenFragments
// Send fragments on background queue with calculated delay
messageQueue.asyncAfter(deadline: .now() + totalDelay) { [weak self] in
self?.broadcastPacket(fragmentPacket)
print("[FRAGMENT] Sent fragment \(index + 1)/\(fragments.count) type: \(fragmentType) at +\(totalDelay)s")
}
}
let totalTime = Double(fragments.count - 1) * delayBetweenFragments
print("[FRAGMENT] Total send time: \(totalTime)s for \(fragments.count) fragments")
}
private func handleFragment(_ packet: BitchatPacket, from peerID: String) {
print("[FRAGMENT] Starting to handle fragment, payload size: \(packet.payload.count)")
guard packet.payload.count >= 13 else {
print("[FRAGMENT] Payload too small: \(packet.payload.count) bytes (need at least 13)")
return
}
// Convert to array for safer access
let payloadArray = Array(packet.payload)
var offset = 0
// Extract fragment ID as binary data (8 bytes)
guard payloadArray.count >= 8 else {
print("[FRAGMENT] Payload too small for fragment ID")
return
}
let fragmentIDData = Data(payloadArray[0..<8])
let fragmentID = fragmentIDData.hexEncodedString()
print("[FRAGMENT] Fragment ID: \(fragmentID)")
offset = 8
// Safely extract index
guard payloadArray.count >= offset + 2 else {
print("[FRAGMENT] Not enough data for index at offset \(offset)")
return
}
let index = Int(payloadArray[offset]) << 8 | Int(payloadArray[offset + 1])
offset += 2
print("[FRAGMENT] Index: \(index)")
// Safely extract total
guard payloadArray.count >= offset + 2 else {
print("[FRAGMENT] Not enough data for total at offset \(offset)")
return
}
let total = Int(payloadArray[offset]) << 8 | Int(payloadArray[offset + 1])
offset += 2
print("[FRAGMENT] Total fragments: \(total)")
// Safely extract original type
guard payloadArray.count >= offset + 1 else {
print("[FRAGMENT] Not enough data for type at offset \(offset)")
return
}
let originalType = payloadArray[offset]
offset += 1
print("[FRAGMENT] Original type: \(originalType)")
// Extract fragment data
let fragmentData: Data
if payloadArray.count > offset {
fragmentData = Data(payloadArray[offset...])
} else {
fragmentData = Data()
}
print("[FRAGMENT] Received fragment \(index + 1)/\(total) for ID: \(fragmentID), data size: \(fragmentData.count)")
// Initialize fragment collection if needed
if incomingFragments[fragmentID] == nil {
incomingFragments[fragmentID] = [:]
fragmentMetadata[fragmentID] = (originalType, total, Date())
print("[FRAGMENT] Started collecting fragments for ID: \(fragmentID), expecting \(total) fragments")
}
// Store fragment
incomingFragments[fragmentID]?[index] = fragmentData
print("[FRAGMENT] Progress for ID \(fragmentID): \(incomingFragments[fragmentID]?.count ?? 0)/\(total) fragments collected")
// Check if we have all fragments
if let fragments = incomingFragments[fragmentID],
fragments.count == total {
// Reassemble the original packet
var reassembledData = Data()
for i in 0..<total {
if let fragment = fragments[i] {
reassembledData.append(fragment)
} else {
print("[FRAGMENT] Missing fragment \(i) for ID: \(fragmentID)")
return
}
}
print("[FRAGMENT] Successfully reassembled \(total) fragments into \(reassembledData.count) bytes")
// Parse and handle the reassembled packet
if let reassembledPacket = BitchatPacket.from(reassembledData) {
// Clean up
incomingFragments.removeValue(forKey: fragmentID)
fragmentMetadata.removeValue(forKey: fragmentID)
// Handle the reassembled packet
handleReceivedPacket(reassembledPacket, from: peerID, peripheral: nil)
}
}
// Clean up old fragments (older than 30 seconds)
let cutoffTime = Date().addingTimeInterval(-30)
for (fragID, metadata) in fragmentMetadata {
if metadata.timestamp < cutoffTime {
incomingFragments.removeValue(forKey: fragID)
fragmentMetadata.removeValue(forKey: fragID)
print("[FRAGMENT] Cleaned up expired fragments for ID: \(fragID)")
}
}
}
}
extension BluetoothMeshService: CBCentralManagerDelegate {
func centralManagerDidUpdateState(_ central: CBCentralManager) {
if central.state == .poweredOn {
startScanning()
// Send announces when central manager is ready
DispatchQueue.main.asyncAfter(deadline: .now() + 0.5) { [weak self] in
self?.sendBroadcastAnnounce()
}
}
}
func centralManager(_ central: CBCentralManager, didDiscover peripheral: CBPeripheral, advertisementData: [String : Any], rssi RSSI: NSNumber) {
// Optimize for 300m range - only connect to strong enough signals
let rssiValue = RSSI.intValue
// Filter out very weak signals (below -90 dBm) to save battery
guard rssiValue > -90 else { return }
// Throttle RSSI updates to save CPU
let peripheralID = peripheral.identifier.uuidString
if let lastUpdate = lastRSSIUpdate[peripheralID],
Date().timeIntervalSince(lastUpdate) < 1.0 {
return // Skip update if less than 1 second since last update
}
lastRSSIUpdate[peripheralID] = Date()
// Store RSSI by peripheral ID for later use
peripheralRSSI[peripheralID] = RSSI
// Extract peer ID from name (no prefix for stealth)
if let name = peripheral.name, name.count == 8 {
// Assume 8-character names are peer IDs
let peerID = name
peerRSSI[peerID] = RSSI
print("[BLUETOOTH] Discovered potential peer: \(peerID) with RSSI: \(RSSI) dBm (range: ~\(estimateDistance(rssi: rssiValue))m)")
}
// Connect to any device we discover - we'll filter by service later
if !discoveredPeripherals.contains(peripheral) {
discoveredPeripherals.append(peripheral)
peripheral.delegate = self
// Use optimized connection parameters for better range
let connectionOptions: [String: Any] = [
CBConnectPeripheralOptionNotifyOnConnectionKey: true,
CBConnectPeripheralOptionNotifyOnDisconnectionKey: true,
CBConnectPeripheralOptionNotifyOnNotificationKey: true
]
central.connect(peripheral, options: connectionOptions)
}
}
func centralManager(_ central: CBCentralManager, didConnect peripheral: CBPeripheral) {
peripheral.delegate = self
peripheral.discoverServices([BluetoothMeshService.serviceUUID])
// Store peripheral by its system ID temporarily until we get the real peer ID
let tempID = peripheral.identifier.uuidString
connectedPeripherals[tempID] = peripheral
print("[BLUETOOTH] Connected to peripheral (temp ID: \(tempID)), waiting for real peer ID...")
// Request RSSI reading
peripheral.readRSSI()
}
func centralManager(_ central: CBCentralManager, didDisconnectPeripheral peripheral: CBPeripheral, error: Error?) {
if let peerID = connectedPeripherals.first(where: { $0.value == peripheral })?.key {
connectedPeripherals.removeValue(forKey: peerID)
peripheralCharacteristics.removeValue(forKey: peripheral)
// Remove from active peers
activePeers.remove(peerID)
announcedPeers.remove(peerID)
announcedToPeers.remove(peerID)
// Only show disconnect if we have a resolved nickname
if let nickname = peerNicknames[peerID], nickname != peerID {
DispatchQueue.main.async {
self.delegate?.didDisconnectFromPeer(nickname)
self.delegate?.didUpdatePeerList(self.getAllConnectedPeerIDs())
}
} else {
DispatchQueue.main.async {
self.delegate?.didUpdatePeerList(self.getAllConnectedPeerIDs())
}
}
}
// Remove from discovered list to allow reconnection
discoveredPeripherals.removeAll { $0 == peripheral }
// Continue scanning for reconnection
if centralManager.state == .poweredOn {
// Stop and restart to ensure clean state
centralManager.stopScan()
centralManager.scanForPeripherals(withServices: [BluetoothMeshService.serviceUUID], options: [CBCentralManagerScanOptionAllowDuplicatesKey: false])
}
}
}
extension BluetoothMeshService: CBPeripheralDelegate {
func peripheral(_ peripheral: CBPeripheral, didDiscoverServices error: Error?) {
guard let services = peripheral.services else { return }
for service in services {
peripheral.discoverCharacteristics([BluetoothMeshService.characteristicUUID], for: service)
}
}
func peripheral(_ peripheral: CBPeripheral, didDiscoverCharacteristicsFor service: CBService, error: Error?) {
guard let characteristics = service.characteristics else { return }
for characteristic in characteristics {
if characteristic.uuid == BluetoothMeshService.characteristicUUID {
peripheral.setNotifyValue(true, for: characteristic)
peripheralCharacteristics[peripheral] = characteristic
// Request maximum MTU for faster data transfer
// iOS supports up to 512 bytes with BLE 5.0
peripheral.maximumWriteValueLength(for: .withoutResponse)
// Send key exchange and announce immediately without any delay
let publicKeyData = self.encryptionService.getCombinedPublicKeyData()
let packet = BitchatPacket(
type: MessageType.keyExchange.rawValue,
ttl: 1,
senderID: self.myPeerID,
payload: publicKeyData
)
if let data = packet.toBinaryData() {
peripheral.writeValue(data, for: characteristic, type: .withResponse)
// Sent key exchange
}
// Send announce packet immediately after key exchange
// Send multiple times for reliability
if let vm = self.delegate as? ChatViewModel {
// Send announces multiple times with delays
for delay in [0.1, 0.5, 1.0] {
DispatchQueue.main.asyncAfter(deadline: .now() + delay) { [weak self] in
guard let self = self else { return }
let announcePacket = BitchatPacket(
type: MessageType.announce.rawValue,
ttl: 1,
senderID: self.myPeerID,
payload: Data(vm.nickname.utf8)
)
self.broadcastPacket(announcePacket)
// [KEY_EXCHANGE] Sent announce broadcast
}
}
// Also send targeted announce to this specific peripheral
DispatchQueue.main.asyncAfter(deadline: .now() + 0.2) { [weak self, weak peripheral] in
guard let self = self,
let peripheral = peripheral,
let characteristic = peripheral.services?.first(where: { $0.uuid == BluetoothMeshService.serviceUUID })?.characteristics?.first(where: { $0.uuid == BluetoothMeshService.characteristicUUID }) else { return }
let announcePacket = BitchatPacket(
type: MessageType.announce.rawValue,
ttl: 1,
senderID: self.myPeerID,
payload: Data(vm.nickname.utf8)
)
if let data = announcePacket.toBinaryData() {
peripheral.writeValue(data, for: characteristic, type: .withResponse)
print("[KEY_EXCHANGE] Sent targeted announce to peripheral")
}
}
}
}
}
}
func peripheral(_ peripheral: CBPeripheral, didUpdateValueFor characteristic: CBCharacteristic, error: Error?) {
guard let data = characteristic.value else {
print("[PERIPHERAL] No data in characteristic")
return
}
guard let packet = BitchatPacket.from(data) else {
print("[PERIPHERAL] Failed to parse packet from data of size: \(data.count)")
return
}
// Use the sender ID from the packet, not our local mapping which might still be a temp ID
let localPeerID = connectedPeripherals.first(where: { $0.value == peripheral })?.key ?? "unknown"
let packetSenderID = String(data: packet.senderID.trimmingNullBytes(), encoding: .utf8) ?? "unknown"
print("[PERIPHERAL] Received data from localPeerID: \(localPeerID), packetSenderID: \(packetSenderID), packet type: \(packet.type)")
// Always handle received packets
handleReceivedPacket(packet, from: packetSenderID, peripheral: peripheral)
}
func peripheral(_ peripheral: CBPeripheral, didWriteValueFor characteristic: CBCharacteristic, error: Error?) {
if let error = error {
print("[PERIPHERAL] Write failed: \(error)")
} else {
// Write completed
}
}
func peripheral(_ peripheral: CBPeripheral, didModifyServices invalidatedServices: [CBService]) {
peripheral.discoverServices([BluetoothMeshService.serviceUUID])
}
func peripheral(_ peripheral: CBPeripheral, didUpdateNotificationStateFor characteristic: CBCharacteristic, error: Error?) {
// Handle notification state updates if needed
}
func peripheral(_ peripheral: CBPeripheral, didReadRSSI RSSI: NSNumber, error: Error?) {
guard error == nil else { return }
// Find the peer ID for this peripheral
if let peerID = connectedPeripherals.first(where: { $0.value == peripheral })?.key {
// Handle both temp IDs and real peer IDs
DispatchQueue.main.async { [weak self] in
guard let self = self else { return }
if peerID.count > 8 {
// It's a temp ID, store RSSI temporarily
self.peripheralRSSI[peerID] = RSSI
// Keep trying to read RSSI until we get real peer ID
DispatchQueue.main.asyncAfter(deadline: .now() + 0.5) { [weak peripheral] in
peripheral?.readRSSI()
}
} else {
// It's a real peer ID, store it
self.peerRSSI[peerID] = RSSI
// Force UI update when we have a real peer ID
self.delegate?.didUpdatePeerList(self.getAllConnectedPeerIDs())
}
}
// Periodically update RSSI
DispatchQueue.main.asyncAfter(deadline: .now() + 5.0) { [weak peripheral] in
peripheral?.readRSSI()
}
}
}
}
extension BluetoothMeshService: CBPeripheralManagerDelegate {
func peripheralManagerDidUpdateState(_ peripheral: CBPeripheralManager) {
switch peripheral.state {
case .poweredOn:
setupPeripheral()
startAdvertising()
// Send announces when peripheral manager is ready
DispatchQueue.main.asyncAfter(deadline: .now() + 0.5) { [weak self] in
self?.sendBroadcastAnnounce()
}
default:
break
}
}
func peripheralManager(_ peripheral: CBPeripheralManager, didAdd service: CBService, error: Error?) {
// Handle service addition if needed
}
func peripheralManager(_ peripheral: CBPeripheralManager, didReceiveWrite requests: [CBATTRequest]) {
for request in requests {
if let data = request.value,
let packet = BitchatPacket.from(data) {
// Try to identify peer from packet
let peerID = String(data: packet.senderID.trimmingNullBytes(), encoding: .utf8) ?? "unknown"
print("[PERIPHERAL_MANAGER] Received write from peer: \(peerID), packet type: \(packet.type)")
// Store the central for updates
if !subscribedCentrals.contains(request.central) {
subscribedCentrals.append(request.central)
}
// Track this peer as connected
if peerID != "unknown" && peerID != myPeerID {
// Send key exchange back if we haven't already
if packet.type == MessageType.keyExchange.rawValue {
let publicKeyData = self.encryptionService.getCombinedPublicKeyData()
let responsePacket = BitchatPacket(
type: MessageType.keyExchange.rawValue,
ttl: 1,
senderID: self.myPeerID,
payload: publicKeyData
)
if let data = responsePacket.toBinaryData() {
peripheral.updateValue(data, for: self.characteristic, onSubscribedCentrals: [request.central])
// Sent key exchange response
}
// Send announce immediately after key exchange
// Send multiple times for reliability
if let vm = self.delegate as? ChatViewModel {
for delay in [0.1, 0.5, 1.0] {
DispatchQueue.main.asyncAfter(deadline: .now() + delay) { [weak self] in
guard let self = self else { return }
let announcePacket = BitchatPacket(
type: MessageType.announce.rawValue,
ttl: 1,
senderID: self.myPeerID,
payload: Data(vm.nickname.utf8)
)
if let data = announcePacket.toBinaryData() {
peripheral.updateValue(data, for: self.characteristic, onSubscribedCentrals: nil)
// Sent announce
}
}
}
}
}
DispatchQueue.main.async {
self.delegate?.didUpdatePeerList(self.getAllConnectedPeerIDs())
}
}
handleReceivedPacket(packet, from: peerID)
peripheral.respond(to: request, withResult: .success)
}
}
}
func peripheralManager(_ peripheral: CBPeripheralManager, central: CBCentral, didSubscribeTo characteristic: CBCharacteristic) {
if !subscribedCentrals.contains(central) {
subscribedCentrals.append(central)
// Send our public key to the newly connected central
let publicKeyData = encryptionService.getCombinedPublicKeyData()
let keyPacket = BitchatPacket(
type: MessageType.keyExchange.rawValue,
ttl: 1,
senderID: myPeerID,
payload: publicKeyData
)
if let data = keyPacket.toBinaryData() {
peripheral.updateValue(data, for: self.characteristic, onSubscribedCentrals: [central])
print("[KEY_EXCHANGE] Sent initial key exchange as peripheral to new subscriber")
// We'll send announce when we receive their key exchange
}
// Update peer list to show we're connected (even without peer ID yet)
DispatchQueue.main.async {
self.delegate?.didUpdatePeerList(self.getAllConnectedPeerIDs())
}
}
}
func peripheralManager(_ peripheral: CBPeripheralManager, central: CBCentral, didUnsubscribeFrom characteristic: CBCharacteristic) {
subscribedCentrals.removeAll { $0 == central }
// If no more centrals are subscribed, clear all central-connected peers
if subscribedCentrals.isEmpty {
// Find and remove peers that were connected as centrals only
let peersToRemove = activePeers.filter { peerID in
!connectedPeripherals.keys.contains(peerID)
}
for peerID in peersToRemove {
activePeers.remove(peerID)
announcedToPeers.remove(peerID)
if let nickname = peerNicknames[peerID] {
DispatchQueue.main.async {
self.delegate?.didDisconnectFromPeer(nickname)
}
}
}
DispatchQueue.main.async {
self.delegate?.didUpdatePeerList(self.getAllConnectedPeerIDs())
}
}
// Ensure advertising continues for reconnection
if peripheralManager.state == .poweredOn && !peripheralManager.isAdvertising {
startAdvertising()
}
}
// MARK: - Battery Monitoring
private func startBatteryMonitoring() {
// Update battery level immediately
updateBatteryLevel()
// Monitor battery level every 30 seconds
batteryMonitorTimer = Timer.scheduledTimer(withTimeInterval: 30.0, repeats: true) { [weak self] _ in
self?.updateBatteryLevel()
}
}
private func updateBatteryLevel() {
#if os(iOS)
UIDevice.current.isBatteryMonitoringEnabled = true
currentBatteryLevel = UIDevice.current.batteryLevel
// Battery level is -1 when unknown (e.g., in simulator)
if currentBatteryLevel < 0 {
currentBatteryLevel = 1.0 // Assume full battery when unknown
}
#else
// macOS battery monitoring
if let batteryInfo = getMacOSBatteryInfo() {
currentBatteryLevel = batteryInfo
} else {
currentBatteryLevel = 1.0 // Assume full battery when unknown
}
#endif
print("[BATTERY] Current battery level: \(Int(currentBatteryLevel * 100))%")
updateScanParametersForBattery()
}
#if os(macOS)
private func getMacOSBatteryInfo() -> Float? {
let snapshot = IOPSCopyPowerSourcesInfo().takeRetainedValue()
let sources = IOPSCopyPowerSourcesList(snapshot).takeRetainedValue() as Array
for source in sources {
if let description = IOPSGetPowerSourceDescription(snapshot, source).takeUnretainedValue() as? [String: Any] {
if let currentCapacity = description[kIOPSCurrentCapacityKey] as? Int,
let maxCapacity = description[kIOPSMaxCapacityKey] as? Int {
return Float(currentCapacity) / Float(maxCapacity)
}
}
}
return nil
}
#endif
private func updateScanParametersForBattery() {
// Adaptive scanning based on battery level
// High battery (80%+): Normal scanning
// Medium battery (40-80%): Moderate power saving
// Low battery (20-40%): Aggressive power saving
// Critical battery (<20%): Maximum power saving
if currentBatteryLevel > 0.8 {
// High battery: Normal operation
activeScanDuration = 2.0
scanPauseDuration = 3.0
print("[BATTERY] High battery mode: normal scanning")
} else if currentBatteryLevel > 0.4 {
// Medium battery: Moderate power saving
activeScanDuration = 1.5
scanPauseDuration = 4.5
print("[BATTERY] Medium battery mode: moderate power saving")
} else if currentBatteryLevel > 0.2 {
// Low battery: Aggressive power saving
activeScanDuration = 1.0
scanPauseDuration = 8.0
print("[BATTERY] Low battery mode: aggressive power saving")
} else {
// Critical battery: Maximum power saving
activeScanDuration = 0.5
scanPauseDuration = 15.0
print("[BATTERY] Critical battery mode: maximum power saving")
}
// If we're currently in a duty cycle, restart it with new parameters
if scanDutyCycleTimer != nil {
scanDutyCycleTimer?.invalidate()
scheduleScanDutyCycle()
}
}
// MARK: - Privacy Utilities
private func randomDelay() -> TimeInterval {
// Generate random delay between min and max for timing obfuscation
return TimeInterval.random(in: minMessageDelay...maxMessageDelay)
}
// MARK: - Cover Traffic
private func startCoverTraffic() {
// Start cover traffic with random interval
scheduleCoverTraffic()
}
private func scheduleCoverTraffic() {
// Random interval between 30-120 seconds
let interval = TimeInterval.random(in: 30...120)
coverTrafficTimer?.invalidate()
coverTrafficTimer = Timer.scheduledTimer(withTimeInterval: interval, repeats: false) { [weak self] _ in
self?.sendDummyMessage()
self?.scheduleCoverTraffic() // Schedule next dummy message
}
}
private func sendDummyMessage() {
// Only send dummy messages if we have connected peers
let peers = getAllConnectedPeerIDs()
guard !peers.isEmpty else { return }
// Skip if battery is low
if currentBatteryLevel < 0.2 {
print("[PRIVACY] Skipping cover traffic due to low battery")
return
}
// Pick a random peer to send to
guard let randomPeer = peers.randomElement() else { return }
// Generate random dummy content
let dummyContent = generateDummyContent()
print("[PRIVACY] Sending cover traffic to \(randomPeer)")
// Send as a private message so it's encrypted
sendPrivateMessage(dummyContent, to: randomPeer, recipientNickname: peerNicknames[randomPeer] ?? "unknown")
}
private func generateDummyContent() -> String {
// Generate realistic-looking dummy messages
let templates = [
"hey",
"ok",
"got it",
"sure",
"sounds good",
"thanks",
"np",
"see you there",
"on my way",
"running late",
"be there soon",
"👍",
"✓",
"meeting at the usual spot",
"confirmed",
"roger that"
]
// Prefix with dummy marker (will be encrypted)
return coverTrafficPrefix + (templates.randomElement() ?? "ok")
}
}