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Author SHA1 Message Date
jackandClaude Opus 5 cdfd4345cf Apply the origin-TTL draw everywhere, and stop overclaiming it
Review was right on both counts, and the second one matters more than the
first.

**It was wired into exactly one send path.** Public text drew a TTL;
voice, broadcast files, group messages, board posts and leave all still
originated at the fixed maximum — so those were still perfectly marked as
authored-here, while the privacy assessment said broadcasts were
randomized. A policy that exists but is not applied is worse than none,
because it reads as solved. All six authored-broadcast paths now draw.

Live voice draws **once per talk burst**, not per frame. At ~15 frames a
second a per-frame draw hands an observer the range maximum almost
immediately, so it would have cost reach and bought nothing. A burst is
now one sample, the same as a text message.

Deliberately still fixed, each for a reason now written down: announces
(link binding reads ttl == max as "direct link", and an announce already
names its sender), directed traffic (fewer hops means fewer deliveries —
a real trade that deserves its own change), prekey bundles and gateway
carriers (the payload already identifies its owner; a carrier is a
re-broadcast, not authorship).

**The docs claimed more than the mechanism delivers.** Relays strictly
decrement — every branch of RelayController emits ttlLimit - 1 — so the
top of the range can still only come from an origin. With three values
that is one message in three, and 1 - (2/3)^k, so roughly 87% of senders
are self-identified within five messages. It meaningfully protects an
occasional sender and barely protects a chatty one. Removing the marker
outright needs relays to sometimes not decrement, which trades against
TTL's job as the loop bound, so it is named as follow-up rather than
implied to be done. TransportConfig and the privacy assessment now say
this instead of implying the marker is gone.

Added a wiring guard that reads BLEService and fails if an authored
broadcast origination site uses the fixed maximum without being on an
explicit exclusion list with a reason. Verified it fails: injecting the
old fixed TTL back into the group-message path was caught with file and
line, and it went green again on revert. That is the specific regression
this had, so it is the specific regression now covered.

Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
2026-07-26 22:50:30 +01:00
jack 32e1c99441 Merge remote-tracking branch 'origin/main' into harden/radio-metadata 2026-07-26 22:42:09 +01:00
jackandClaude Opus 5 399cdf95ab Stop broadcasting the adjacency graph and the authorship marker
Two radio-layer metadata leaks that need no cross-platform agreement,
because both only change what this device chooses to emit.

**Announces no longer carry the neighbour list.** The TLV held up to ten
8-byte peer IDs, so a *single* passive receiver could reconstruct the local
adjacency graph — who is standing next to whom — with no need for several
receivers or RSSI trilateration. In a crowd that is the most sensitive
thing the radio layer gives away, and unlike the identity keys it is not
required for the protocol to work.

Backward compatible in both directions: an empty list omits the TLV
entirely rather than emitting a zero-length one, the decoder already treats
its absence as "no topology offered", and lists from other peers are still
parsed so a mixed network behaves sensibly.

The cost is source routing. MeshTopologyTracker builds its adjacency map
from these lists, so with everyone silent there are no routes to compute
and directed traffic floods instead — which is already the documented
fallback whenever a route fails. More airtime for directed sends in dense
meshes; no correctness change. Left as a TransportConfig constant rather
than a user setting because it is a protocol trade-off, not a preference,
and flipping it back is one line.

**Public broadcasts no longer always originate at the maximum TTL.**
`ttl == messageTTLDefault` was a reliable "this device wrote it" marker to
any direct listener, which discloses authorship rather than mere presence.
Origin TTL is now drawn from 5...7: in a dense graph relays already clamp
broadcasts to 5, so an origin emitting 5 is indistinguishable from relayed
traffic, and in a sparse chain a 6 could be an origin or one hop from a 7.

Signature-safe and needs no agreement: TTL is excluded from the signed
bytes (toBinaryDataForSigning zeroes it so relays can decrement), so a peer
on any version just sees a smaller starting TTL and relays it normally. The
floor is not below the dense-graph clamp, since lower would cost reach
without buying ambiguity that clamp does not already provide.

Announces deliberately keep the fixed TTL: three link-binding paths read a
maximum-TTL announce as "direct link", and an announce's sender ID already
identifies the device, so there is nothing to hide and something to break.

**Not done here: padding.** Extending padding beyond Noise frames, and
fixing the gap where a frame needing over 255 bytes of padding is emitted
unpadded, both looked unilateral but are not. `toBinaryDataForSigning`
encodes with padding enabled, so the padding bytes are inside the signed
material for every signed packet — changing the algorithm changes the
signed byte stream and breaks signature verification against any peer that
has not changed it identically. That makes it a coordinated wire change;
recorded in the privacy assessment and in #1487's open questions rather
than attempted.

Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
2026-07-26 21:03:35 +02:00
5 changed files with 391 additions and 8 deletions
@@ -0,0 +1,66 @@
//
// BLEOriginTTLPolicy.swift
// bitchat
//
// This is free and unencumbered software released into the public domain.
// For more information, see <https://unlicense.org>
//
import Foundation
/// Chooses the TTL a locally originated public broadcast leaves with.
///
/// Split out from `BLEService` so the choice is testable without a radio, and so
/// the reasoning lives in one place: see
/// `TransportConfig.broadcastOriginTTLRange` for why originating at a fixed
/// maximum identifies the author to any direct listener.
enum BLEOriginTTLPolicy {
/// Uniform draw from the configured range.
///
/// The randomizer is injectable so tests can pin the value; production uses
/// the system generator. Note that TTL is excluded from the packet signature
/// (`toBinaryDataForSigning` zeroes it so relays can decrement without
/// invalidating), so varying it per message is signature-safe and needs no
/// cross-platform agreement a peer running any version simply sees a
/// smaller starting TTL and relays it normally.
static func originTTL(
range: ClosedRange<UInt8> = TransportConfig.broadcastOriginTTLRange,
randomTTL: (ClosedRange<UInt8>) -> UInt8 = { UInt8.random(in: $0) }
) -> UInt8 {
// A degenerate or inverted range must not trap; fall back to the
// documented default rather than crashing a send path.
guard range.lowerBound <= range.upperBound, range.lowerBound >= 1 else {
return TransportConfig.messageTTLDefault
}
return randomTTL(range)
}
/// Gap after which the next voice frame counts as a new talk burst.
static let voiceBurstGap: TimeInterval = 1.0
/// TTL for a live-voice frame: one draw per talk burst, not per frame.
///
/// This distinction is the whole value. Voice leaves at roughly 15 frames a
/// second, so drawing per frame would hand an observer the maximum of the
/// range within a fraction of a second averaging over a burst would
/// defeat the randomisation completely and cost reach for nothing. One draw
/// per burst makes a burst a single sample, the same as a text message.
///
/// Returns the TTL to use and the burst TTL to remember. A burst ends when
/// `voiceBurstGap` passes with no frame.
static func voiceBurstTTL(
now: Date,
lastFrameAt: Date?,
currentBurstTTL: UInt8?,
burstGap: TimeInterval = voiceBurstGap,
range: ClosedRange<UInt8> = TransportConfig.broadcastOriginTTLRange,
randomTTL: (ClosedRange<UInt8>) -> UInt8 = { UInt8.random(in: $0) }
) -> UInt8 {
if let currentBurstTTL,
let lastFrameAt,
now.timeIntervalSince(lastFrameAt) < burstGap {
return currentBurstTTL
}
return originTTL(range: range, randomTTL: randomTTL)
}
}
+30 -7
View File
@@ -227,6 +227,12 @@ final class BLEService: NSObject {
private let bleMaxMTU = 512 private let bleMaxMTU = 512
private let maxMessageLength = InputValidator.Limits.maxMessageLength private let maxMessageLength = InputValidator.Limits.maxMessageLength
private let messageTTL: UInt8 = TransportConfig.messageTTLDefault private let messageTTL: UInt8 = TransportConfig.messageTTLDefault
/// Live-voice burst TTL state: one draw per talk burst rather than per
/// frame, so a ~15 fps stream is a single sample to an observer instead of
/// handing over the range maximum immediately. Both are touched only on
/// `messageQueue`.
private var currentVoiceBurstTTL: UInt8?
private var lastVoiceBurstFrameAt: Date?
// Flood/battery controls // Flood/battery controls
private let maxInFlightAssemblies = TransportConfig.bleMaxInFlightAssemblies // cap concurrent fragment assemblies private let maxInFlightAssemblies = TransportConfig.bleMaxInFlightAssemblies // cap concurrent fragment assemblies
private let highDegreeThreshold = TransportConfig.bleHighDegreeThreshold // for adaptive TTL/probabilistic relays private let highDegreeThreshold = TransportConfig.bleHighDegreeThreshold // for adaptive TTL/probabilistic relays
@@ -869,7 +875,9 @@ final class BLEService: NSObject {
timestamp: sendTimestampMs, timestamp: sendTimestampMs,
payload: Data(content.utf8), payload: Data(content.utf8),
signature: nil, signature: nil,
ttl: messageTTL // Not the fixed maximum: that would mark every message this device
// wrote as originating here, to any direct listener.
ttl: BLEOriginTTLPolicy.originTTL()
) )
guard let signedPacket = noiseService.signPacket(basePacket) else { guard let signedPacket = noiseService.signPacket(basePacket) else {
SecureLogger.error("❌ Failed to sign public message", category: .security) SecureLogger.error("❌ Failed to sign public message", category: .security)
@@ -980,7 +988,7 @@ final class BLEService: NSObject {
timestamp: UInt64(Date().timeIntervalSince1970 * 1000), timestamp: UInt64(Date().timeIntervalSince1970 * 1000),
payload: Data(), payload: Data(),
signature: nil, signature: nil,
ttl: messageTTL ttl: BLEOriginTTLPolicy.originTTL()
) )
if let signed = noiseService.signPacket(leavePacket) { if let signed = noiseService.signPacket(leavePacket) {
@@ -1617,7 +1625,7 @@ final class BLEService: NSObject {
timestamp: UInt64(Date().timeIntervalSince1970 * 1000), timestamp: UInt64(Date().timeIntervalSince1970 * 1000),
payload: payload, payload: payload,
signature: nil, signature: nil,
ttl: self.messageTTL, ttl: BLEOriginTTLPolicy.originTTL(),
version: 2 version: 2
) )
@@ -2892,7 +2900,12 @@ final class BLEService: NSObject {
let (connectedPeerIDs, advertisedCapabilities, advertisedBridgeCell): ([Data], PeerCapabilities, String?) = collectionsQueue.sync { let (connectedPeerIDs, advertisedCapabilities, advertisedBridgeCell): ([Data], PeerCapabilities, String?) = collectionsQueue.sync {
( (
peerRegistry.connectedRoutingData, // Publishing the neighbour list hands the local adjacency graph
// to a single passive receiver; see
// TransportConfig.announceIncludesDirectNeighbors.
TransportConfig.announceIncludesDirectNeighbors
? peerRegistry.connectedRoutingData
: [],
PeerCapabilities.localSupported.union(runtimeCapabilities), PeerCapabilities.localSupported.union(runtimeCapabilities),
runtimeCapabilities.contains(.bridge) ? localBridgeGeohash : nil runtimeCapabilities.contains(.bridge) ? localBridgeGeohash : nil
) )
@@ -2971,7 +2984,7 @@ final class BLEService: NSObject {
timestamp: UInt64(Date().timeIntervalSince1970 * 1000), timestamp: UInt64(Date().timeIntervalSince1970 * 1000),
payload: envelope, payload: envelope,
signature: nil, signature: nil,
ttl: self.messageTTL ttl: BLEOriginTTLPolicy.originTTL()
) )
// Pre-mark our own broadcast as processed to avoid handling a // Pre-mark our own broadcast as processed to avoid handling a
// relayed self copy. // relayed self copy.
@@ -3027,6 +3040,16 @@ final class BLEService: NSObject {
guard !burstContent.isEmpty else { return } guard !burstContent.isEmpty else { return }
messageQueue.async { [weak self] in messageQueue.async { [weak self] in
guard let self else { return } guard let self else { return }
// One TTL draw per talk burst. Drawing per frame would leak the
// maximum within a fraction of a second at ~15 frames/sec.
let now = Date()
let burstTTL = BLEOriginTTLPolicy.voiceBurstTTL(
now: now,
lastFrameAt: self.lastVoiceBurstFrameAt,
currentBurstTTL: self.currentVoiceBurstTTL
)
self.currentVoiceBurstTTL = burstTTL
self.lastVoiceBurstFrameAt = now
let packet = BitchatPacket( let packet = BitchatPacket(
type: MessageType.voiceFrame.rawValue, type: MessageType.voiceFrame.rawValue,
senderID: self.myPeerIDData, senderID: self.myPeerIDData,
@@ -3034,7 +3057,7 @@ final class BLEService: NSObject {
timestamp: UInt64(Date().timeIntervalSince1970 * 1000), timestamp: UInt64(Date().timeIntervalSince1970 * 1000),
payload: burstContent, payload: burstContent,
signature: nil, signature: nil,
ttl: self.messageTTL ttl: burstTTL
) )
guard let signedPacket = self.noiseService.signPacket(packet) else { guard let signedPacket = self.noiseService.signPacket(packet) else {
SecureLogger.error("❌ Failed to sign voice frame", category: .security) SecureLogger.error("❌ Failed to sign voice frame", category: .security)
@@ -7609,7 +7632,7 @@ extension BLEService {
timestamp: UInt64(Date().timeIntervalSince1970 * 1000), timestamp: UInt64(Date().timeIntervalSince1970 * 1000),
payload: payload, payload: payload,
signature: nil, signature: nil,
ttl: self.messageTTL ttl: BLEOriginTTLPolicy.originTTL()
) )
guard let signedPacket = self.noiseService.signPacket(basePacket) else { guard let signedPacket = self.noiseService.signPacket(basePacket) else {
SecureLogger.error("❌ Failed to sign board packet", category: .security) SecureLogger.error("❌ Failed to sign board packet", category: .security)
+67
View File
@@ -6,6 +6,73 @@ enum TransportConfig {
// BLE / Protocol // BLE / Protocol
static let bleDefaultFragmentSize: Int = 469 // ~512 MTU minus protocol overhead static let bleDefaultFragmentSize: Int = 469 // ~512 MTU minus protocol overhead
static let messageTTLDefault: UInt8 = 7 // Default TTL for mesh flooding static let messageTTLDefault: UInt8 = 7 // Default TTL for mesh flooding
/// TTL range a public broadcast is originated with.
///
/// Originating every message at the maximum makes `ttl == messageTTLDefault`
/// a reliable "this device wrote it" marker for any direct listener, which
/// tells a passive observer who *said* a thing rather than merely who is
/// present. Drawing from a range makes the lower values ambiguous between an
/// origin and a relay: in a dense graph relays clamp broadcasts to 5, so an
/// origin emitting 5 is indistinguishable from relayed traffic, and in a
/// sparse chain a 6 could be an origin or one hop from a 7.
///
/// **What this does not do, stated plainly.** Every relay branch in
/// `RelayController` emits `ttlLimit - 1`, so TTL is strictly decreasing and
/// the top of whatever range is chosen can only ever come from an origin.
/// With three values that is one message in three, and the probability that
/// a sender has revealed itself after `k` messages is `1 - (2/3)^k` about
/// 87% by the fifth. So this meaningfully protects an occasional sender and
/// barely protects a chatty one.
///
/// Removing the marker entirely is not possible from the origin side: it
/// needs relays to sometimes *not* decrement, which trades directly against
/// TTL's job as the loop bound. Widening the range trades against reach.
/// Both belong in a follow-up with the mesh behaviour in scope; what this
/// constant buys is that a single observed packet is no longer conclusive.
///
/// The cost is reach: a message originated at 5 crosses two fewer hops than
/// one at 7. The upper bound stays at the default so the common case is
/// unchanged, and the floor is deliberately not lower than the dense-graph
/// relay clamp going below it would cost reach without buying ambiguity
/// that clamp does not already provide.
///
/// Applied to public broadcasts that carry content this device authored:
/// public messages, group messages, broadcast files, board posts, live
/// voice (one draw per talk burst, see `BLEOriginTTLPolicy`), and leave.
/// Deliberately excluded:
///
/// - **Announces.** Link binding treats `ttl == messageTTLDefault` on an
/// announce as "direct link", and an announce's sender ID already
/// identifies the device nothing to hide, something to break.
/// - **Directed traffic** (DMs, handshakes, courier envelopes, directed
/// files). Fewer hops means fewer deliveries, and the trade needs its own
/// look rather than riding along here.
/// - **Prekey bundles and gateway carriers.** A bundle already contains its
/// owner's key, and carriers are re-broadcasts rather than authorship.
static let broadcastOriginTTLRange: ClosedRange<UInt8> = 5...7
/// Whether signed announces advertise this device's direct neighbours.
///
/// The neighbour TLV carries up to ten 8-byte peer IDs, so a *single*
/// passive receiver can reconstruct the local adjacency graph who is
/// standing next to whom without needing several receivers or RSSI
/// trilateration. For a crowd, that is the most sensitive thing the radio
/// layer discloses, and unlike the identity keys it is not needed for the
/// protocol to work.
///
/// Turning it off costs source routing. `MeshTopologyTracker` builds its
/// adjacency map from these lists, and `computeRoute` needs that map, so
/// with every device silent there are no routes to compute and directed
/// traffic falls back to flooding which is the documented fallback and is
/// already what happens whenever a route fails. Expect more airtime for
/// directed sends in dense meshes, and no correctness change.
///
/// Kept as a constant rather than a user setting because it is a protocol
/// trade-off, not a preference: flipping it back is a one-line change, and
/// receiving peers' lists is unaffected either way, so a mixed network
/// behaves sensibly during any transition.
static let announceIncludesDirectNeighbors = false
static let bleMaxInFlightAssemblies: Int = 128 // Cap concurrent fragment assemblies static let bleMaxInFlightAssemblies: Int = 128 // Cap concurrent fragment assemblies
static let bleHighDegreeThreshold: Int = 6 // For adaptive TTL/probabilistic relays static let bleHighDegreeThreshold: Int = 6 // For adaptive TTL/probabilistic relays
static let bleMaxConcurrentTransfers: Int = 2 // Limit simultaneous large media sends static let bleMaxConcurrentTransfers: Int = 2 // Limit simultaneous large media sends
@@ -0,0 +1,218 @@
import BitFoundation
import Foundation
import Testing
@testable import bitchat
/// Two radio-layer metadata leaks that need no cross-platform agreement to
/// close: the neighbour list in announces, and the fixed origin TTL.
struct RadioMetadataTests {
// MARK: - Origin TTL
@Test func originTTLStaysInsideTheConfiguredRange() {
let range = TransportConfig.broadcastOriginTTLRange
for _ in 0..<200 {
let ttl = BLEOriginTTLPolicy.originTTL()
#expect(range.contains(ttl))
}
}
/// The point of the change: a message must not always leave at the maximum,
/// because a direct listener reads `ttl == max` as "this device wrote it".
@Test func originTTLDoesNotAlwaysUseTheMaximum() {
var seen = Set<UInt8>()
for _ in 0..<500 {
seen.insert(BLEOriginTTLPolicy.originTTL())
}
#expect(seen.count > 1)
#expect(seen.contains { $0 < TransportConfig.messageTTLDefault })
}
@Test func originTTLUsesTheInjectedRandomizer() {
let ttl = BLEOriginTTLPolicy.originTTL(range: 5...7, randomTTL: { _ in 6 })
#expect(ttl == 6)
}
/// A send path must never trap on a bad range.
@Test func degenerateRangesFallBackToTheDefault() {
#expect(BLEOriginTTLPolicy.originTTL(range: 0...0) == TransportConfig.messageTTLDefault)
// Single-value range is legitimate and must be honoured.
#expect(BLEOriginTTLPolicy.originTTL(range: 4...4) == 4)
}
/// The floor must not drop below the dense-graph relay clamp: going lower
/// costs reach without buying ambiguity the clamp does not already provide.
@Test func rangeSitsBetweenTheDenseClampAndTheDefault() {
let range = TransportConfig.broadcastOriginTTLRange
#expect(range.upperBound == TransportConfig.messageTTLDefault)
#expect(range.lowerBound >= TransportConfig.bleFragmentRelayTtlCapDense)
#expect(range.lowerBound >= 2, "TTL 1 is dropped by RelayController")
}
// MARK: - Voice burst TTL
/// Per-frame drawing would be worse than useless: at ~15 frames a second an
/// observer collects the range maximum almost immediately, so the sender is
/// marked within a fraction of a second while every low draw still costs
/// reach. One draw per burst makes a burst a single sample.
@Test func voiceFramesInOneBurstShareOneTTL() {
let start = Date(timeIntervalSince1970: 1_784_000_000)
let first = BLEOriginTTLPolicy.voiceBurstTTL(
now: start, lastFrameAt: nil, currentBurstTTL: nil, randomTTL: { _ in 6 }
)
// Subsequent frames inside the burst must reuse it even though the
// randomizer would now return something else.
var last = start
var current = first
for step in 1...20 {
let now = start.addingTimeInterval(Double(step) * 0.066)
current = BLEOriginTTLPolicy.voiceBurstTTL(
now: now, lastFrameAt: last, currentBurstTTL: current, randomTTL: { _ in 7 }
)
last = now
#expect(current == first)
}
}
@Test func aNewBurstRedrawsTheTTL() {
let start = Date(timeIntervalSince1970: 1_784_000_000)
let first = BLEOriginTTLPolicy.voiceBurstTTL(
now: start, lastFrameAt: nil, currentBurstTTL: nil, randomTTL: { _ in 5 }
)
#expect(first == 5)
// A gap longer than the burst window means a new talk burst.
let later = start.addingTimeInterval(BLEOriginTTLPolicy.voiceBurstGap + 0.5)
let second = BLEOriginTTLPolicy.voiceBurstTTL(
now: later, lastFrameAt: start, currentBurstTTL: first, randomTTL: { _ in 7 }
)
#expect(second == 7)
}
@Test func voiceBurstTTLStaysInRange() {
var last: Date?
var current: UInt8?
let start = Date(timeIntervalSince1970: 1_784_000_000)
for step in 0..<200 {
// Gaps long enough to force a fresh draw each time.
let now = start.addingTimeInterval(Double(step) * 5)
let ttl = BLEOriginTTLPolicy.voiceBurstTTL(
now: now, lastFrameAt: last, currentBurstTTL: current
)
#expect(TransportConfig.broadcastOriginTTLRange.contains(ttl))
last = now
current = ttl
}
}
// MARK: - Wiring
/// The first version of this change defined the policy and used it in
/// exactly one place, leaving voice, files, group messages and board posts
/// originating at a fixed maximum i.e. still perfectly marked, while the
/// docs claimed otherwise. A policy that exists but is not wired is worse
/// than none, because it reads as solved.
///
/// This asserts against the source rather than behaviour because the send
/// paths need a live radio; it is a cheap guard against the specific
/// regression of adding a broadcast origination site and forgetting it.
@Test func everyAuthoredBroadcastOriginatesWithADrawnTTL() throws {
let source = URL(fileURLWithPath: #filePath)
.deletingLastPathComponent() // Services
.deletingLastPathComponent() // bitchatTests
.deletingLastPathComponent() // repo root
.appendingPathComponent("bitchat/Services/BLE/BLEService.swift")
let lines = try String(contentsOf: source, encoding: .utf8)
.components(separatedBy: .newlines)
// Packet constructions that still pin the fixed maximum.
let fixed = lines.enumerated().filter {
$0.element.contains("ttl: messageTTL") || $0.element.contains("ttl: self.messageTTL")
}
// Each remaining one must be a deliberate exclusion. Announces keep the
// fixed TTL for link binding; the rest are directed, diagnostics, or
// re-broadcasts. Identify by the packet type named just above.
let allowedTypes = [
"announce", // link binding depends on ttl == max
"ping", "pong", // diagnostics; payload records origin TTL for hops
"noiseEncrypted", "noiseHandshake", "courierEnvelope", // directed
"fileTransfer", // the directed variant; the broadcast one is drawn
"prekeyBundle", // payload already names its owner
"nostrCarrier" // re-broadcast, not authorship
]
var unexplained: [String] = []
for (index, line) in fixed {
let window = lines[max(0, index - 14)...index].joined(separator: "\n")
guard !allowedTypes.contains(where: { window.contains("MessageType.\($0)") }) else { continue }
unexplained.append("BLEService.swift:\(index + 1)\(line.trimmingCharacters(in: .whitespaces))")
}
#expect(
unexplained.isEmpty,
"""
These broadcast origination sites still use the fixed maximum TTL, \
which marks this device as the author to any direct listener. Use \
BLEOriginTTLPolicy.originTTL(), or add the type to allowedTypes here \
with the reason.
\(unexplained.joined(separator: "\n"))
"""
)
}
// MARK: - Neighbour list
@Test func neighborAdvertisingIsOffByDefault() {
#expect(!TransportConfig.announceIncludesDirectNeighbors)
}
/// The mechanism that makes this backward compatible: an empty list omits
/// the TLV entirely rather than emitting a zero-length one, and the decoder
/// treats its absence as "no topology offered".
@Test func emptyNeighborListOmitsTheTLV() throws {
let announcement = AnnouncementPacket(
nickname: "alice",
noisePublicKey: Data(repeating: 0x11, count: 32),
signingPublicKey: Data(repeating: 0x22, count: 32),
directNeighbors: [],
capabilities: [.bridge]
)
let encoded = try #require(announcement.encode())
// TLV type 0x04 is the neighbour list; it must not appear at all.
var offset = encoded.startIndex
var types: [UInt8] = []
while offset < encoded.endIndex {
guard encoded.distance(from: offset, to: encoded.endIndex) >= 2 else { break }
let type = encoded[offset]
let length = Int(encoded[encoded.index(after: offset)])
types.append(type)
offset = encoded.index(offset, offsetBy: 2 + length)
}
#expect(!types.contains(0x04))
let decoded = try #require(AnnouncementPacket.decode(from: encoded))
#expect(decoded.directNeighbors == nil)
// Everything else still round-trips, so old peers lose nothing but the
// topology hint.
#expect(decoded.nickname == "alice")
#expect(decoded.capabilities == [.bridge])
}
/// Receiving a neighbour list must keep working: peers on older builds still
/// send one, and a mixed mesh has to behave sensibly.
@Test func receivedNeighborListsAreStillParsed() throws {
let neighbors = [Data(repeating: 0xA1, count: 8), Data(repeating: 0xB2, count: 8)]
let announcement = AnnouncementPacket(
nickname: "bob",
noisePublicKey: Data(repeating: 0x11, count: 32),
signingPublicKey: Data(repeating: 0x22, count: 32),
directNeighbors: neighbors
)
let encoded = try #require(announcement.encode())
let decoded = try #require(AnnouncementPacket.decode(from: encoded))
#expect(decoded.directNeighbors == neighbors)
}
}
+10 -1
View File
@@ -26,13 +26,22 @@ Signed announces can expose:
- Nickname, persistent Noise public key, and Ed25519 signing public key - Nickname, persistent Noise public key, and Ed25519 signing public key
- Capability flags - Capability flags
- A bounded set of short direct-neighbor identifiers
- A coarse rendezvous geohash when the bridge capability is enabled - A coarse rendezvous geohash when the bridge capability is enabled
Announces no longer advertise this device's direct neighbours. That TLV carried up to ten peer IDs, so a single passive receiver could reconstruct the local adjacency graph — who is standing next to whom — with no need for multiple receivers or signal-strength trilateration. It is off by default (`TransportConfig.announceIncludesDirectNeighbors`). Neighbour lists from other peers are still parsed, so a mixed network behaves sensibly. The cost is source routing: its adjacency map comes from these lists, so directed traffic falls back to flooding, which is already the documented fallback whenever a route fails.
The app does not advertise the device's assigned name. iOS manages BLE address randomization; bitchat does not attempt to create a stable MAC address. The app does not advertise the device's assigned name. iOS manages BLE address randomization; bitchat does not attempt to create a stable MAC address.
That randomization does not deliver the unlinkability it might suggest, because the application layer publishes stable identifiers above it. The 8-byte peer ID in every packet header is the first 8 bytes of the Noise static key fingerprint, so it does not rotate; announces carry the static keys themselves; and the fixed service UUID makes any bitchat device detectable as such by a passive scanner. A receiver in radio range can therefore recognise a specific device across sessions and locations, and detect that the app is in use at all. RSSI, timing, traffic volume, and radio fingerprints remain observable as well. That randomization does not deliver the unlinkability it might suggest, because the application layer publishes stable identifiers above it. The 8-byte peer ID in every packet header is the first 8 bytes of the Noise static key fingerprint, so it does not rotate; announces carry the static keys themselves; and the fixed service UUID makes any bitchat device detectable as such by a passive scanner. A receiver in radio range can therefore recognise a specific device across sessions and locations, and detect that the app is in use at all. RSSI, timing, traffic volume, and radio fingerprints remain observable as well.
Public broadcasts that carry authored content — public and group messages, broadcast files, board posts, live voice, and leave — are originated with a TTL drawn from a range rather than always at the maximum. A fixed maximum made `ttl == default` a reliable "this device wrote it" marker to any direct listener, disclosing authorship rather than mere presence. Live voice draws once per talk burst, not per frame; at roughly 15 frames a second a per-frame draw would surrender the range maximum almost immediately.
This reduces the marker, it does not remove it. Relays strictly decrement, so the top of the range can still only come from an origin — one message in three, or about an 87% chance of self-identifying within five messages. It protects an occasional sender considerably and a chatty one little. Eliminating it needs relays to sometimes not decrement, which trades against TTL's role as the loop bound, so it is deliberately left as follow-up rather than claimed here.
Announces keep the fixed TTL: link binding reads a maximum-TTL announce as a direct link, and an announce already identifies its sender. Directed traffic, prekey bundles, and gateway carriers are also excluded — for directed traffic because fewer hops means fewer deliveries, and for the others because the payload already identifies its owner.
Payload length remains observable for most traffic: only Noise frames are padded, and the padding itself is inside the signed bytes, so widening its coverage or fixing its length-marker gap is a coordinated cross-platform change rather than a local one.
Ingress validates announce structure, sender binding, signatures, payload sizes, and freshness. Current-link Noise authentication is required before destructive courier handoff or strict directed delivery. Floods, queues, fragments, ingress work, and per-peer state are bounded. Ingress validates announce structure, sender binding, signatures, payload sizes, and freshness. Current-link Noise authentication is required before destructive courier handoff or strict directed delivery. Floods, queues, fragments, ingress work, and per-peer state are bounded.
## Private Messaging and Courier Delivery ## Private Messaging and Courier Delivery