Files
bitchat/bitchatTests/EndToEnd/PublicChatE2ETests.swift
T
jack 96136ec364 Add comprehensive test suite for bitchat
- Created test utilities and helpers for common test operations
- Implemented Binary Protocol tests covering encoding/decoding, compression, and padding
- Added Noise Protocol tests for handshake, encryption, and session management
- Created Public Chat E2E tests for broadcasting, routing, TTL, and mesh topologies
- Implemented Private Chat E2E tests for direct messaging, delivery ACKs, and retry logic
- Added Integration tests for multi-peer scenarios, network resilience, and mixed traffic patterns
- Created mock implementations for BluetoothMeshService and NoiseSession

Test coverage includes:
- Protocol layer (binary encoding, message serialization)
- Security layer (Noise handshake, encryption/decryption)
- Application layer (public/private messaging, delivery tracking)
- Network scenarios (mesh topology, partitions, churn)
- Performance and stress testing
2025-07-23 08:56:13 +02:00

437 lines
16 KiB
Swift

//
// PublicChatE2ETests.swift
// bitchatTests
//
// This is free and unencumbered software released into the public domain.
// For more information, see <https://unlicense.org>
//
import XCTest
@testable import bitchat
final class PublicChatE2ETests: XCTestCase {
var alice: MockBluetoothMeshService!
var bob: MockBluetoothMeshService!
var charlie: MockBluetoothMeshService!
var david: MockBluetoothMeshService!
var receivedMessages: [String: [BitchatMessage]] = [:]
override func setUp() {
super.setUp()
// Create mock services
alice = createMockService(peerID: TestConstants.testPeerID1, nickname: TestConstants.testNickname1)
bob = createMockService(peerID: TestConstants.testPeerID2, nickname: TestConstants.testNickname2)
charlie = createMockService(peerID: TestConstants.testPeerID3, nickname: TestConstants.testNickname3)
david = createMockService(peerID: TestConstants.testPeerID4, nickname: TestConstants.testNickname4)
// Clear received messages
receivedMessages.removeAll()
}
override func tearDown() {
alice = nil
bob = nil
charlie = nil
david = nil
super.tearDown()
}
// MARK: - Basic Broadcasting Tests
func testSimplePublicMessage() {
// Connect Alice and Bob
simulateConnection(alice, bob)
let expectation = XCTestExpectation(description: "Bob receives message")
bob.messageDeliveryHandler = { message in
if message.content == TestConstants.testMessage1 && message.sender == TestConstants.testNickname1 {
expectation.fulfill()
}
}
// Alice sends public message
alice.sendMessage(TestConstants.testMessage1, mentions: [], to: nil)
wait(for: [expectation], timeout: TestConstants.shortTimeout)
}
func testMultiRecipientBroadcast() {
// Connect Alice to Bob and Charlie
simulateConnection(alice, bob)
simulateConnection(alice, charlie)
let bobExpectation = XCTestExpectation(description: "Bob receives message")
let charlieExpectation = XCTestExpectation(description: "Charlie receives message")
bob.messageDeliveryHandler = { message in
if message.content == TestConstants.testMessage1 {
bobExpectation.fulfill()
}
}
charlie.messageDeliveryHandler = { message in
if message.content == TestConstants.testMessage1 {
charlieExpectation.fulfill()
}
}
// Alice broadcasts
alice.sendMessage(TestConstants.testMessage1, mentions: [], to: nil)
wait(for: [bobExpectation, charlieExpectation], timeout: TestConstants.shortTimeout)
}
// MARK: - Message Routing and Relay Tests
func testMessageRelayChain() {
// Linear topology: Alice -> Bob -> Charlie
simulateConnection(alice, bob)
simulateConnection(bob, charlie)
let expectation = XCTestExpectation(description: "Charlie receives relayed message")
// Set up relay in Bob
bob.packetDeliveryHandler = { packet in
// Bob should relay to Charlie
if let message = BitchatMessage.fromBinaryPayload(packet.payload),
message.sender == TestConstants.testNickname1 {
// Create relay message
var relayMessage = message
relayMessage.isRelay = true
relayMessage.originalSender = message.sender
if let relayPayload = relayMessage.toBinaryPayload() {
var relayPacket = packet
relayPacket.payload = relayPayload
relayPacket.ttl = packet.ttl - 1
// Simulate relay to Charlie
self.charlie.simulateIncomingPacket(relayPacket)
}
}
}
charlie.messageDeliveryHandler = { message in
if message.content == TestConstants.testMessage1 &&
message.originalSender == TestConstants.testNickname1 &&
message.isRelay {
expectation.fulfill()
}
}
// Alice sends message
alice.sendMessage(TestConstants.testMessage1, mentions: [], to: nil)
wait(for: [expectation], timeout: TestConstants.defaultTimeout)
}
func testMultiHopRelay() {
// Topology: Alice -> Bob -> Charlie -> David
simulateConnection(alice, bob)
simulateConnection(bob, charlie)
simulateConnection(charlie, david)
let expectation = XCTestExpectation(description: "David receives multi-hop message")
// Set up relay chain
setupRelayHandler(bob, nextHops: [charlie])
setupRelayHandler(charlie, nextHops: [david])
david.messageDeliveryHandler = { message in
if message.content == TestConstants.testMessage1 &&
message.originalSender == TestConstants.testNickname1 &&
message.isRelay {
expectation.fulfill()
}
}
// Alice sends message
alice.sendMessage(TestConstants.testMessage1, mentions: [], to: nil)
wait(for: [expectation], timeout: TestConstants.defaultTimeout)
}
// MARK: - TTL (Time To Live) Tests
func testTTLDecrement() {
// Create a chain longer than TTL
let nodes = [alice!, bob!, charlie!, david!]
// Connect in chain
for i in 0..<nodes.count-1 {
simulateConnection(nodes[i], nodes[i+1])
if i > 0 && i < nodes.count-1 {
setupRelayHandler(nodes[i], nextHops: [nodes[i+1]])
}
}
let expectation = XCTestExpectation(description: "Message dropped due to TTL")
expectation.isInverted = true // Should NOT be fulfilled
david.messageDeliveryHandler = { message in
if message.content == TestConstants.testMessage1 {
expectation.fulfill() // This should not happen
}
}
// Send message with TTL=2 (should reach Charlie but not David)
alice.sendMessage(TestConstants.testMessage1, mentions: [], to: nil)
wait(for: [expectation], timeout: TestConstants.shortTimeout)
}
func testZeroTTLNotRelayed() {
simulateConnection(alice, bob)
simulateConnection(bob, charlie)
let expectation = XCTestExpectation(description: "Zero TTL message not relayed")
expectation.isInverted = true
charlie.messageDeliveryHandler = { message in
if message.content == "Zero TTL message" {
expectation.fulfill() // Should not happen
}
}
// Create packet with TTL=0
let message = TestHelpers.createTestMessage(content: "Zero TTL message")
if let payload = message.toBinaryPayload() {
let packet = TestHelpers.createTestPacket(payload: payload, ttl: 0)
alice.simulateIncomingPacket(packet)
}
wait(for: [expectation], timeout: TestConstants.shortTimeout)
}
// MARK: - Duplicate Detection Tests
func testDuplicateMessagePrevention() {
simulateConnection(alice, bob)
var messageCount = 0
let expectation = XCTestExpectation(description: "Only one message received")
bob.messageDeliveryHandler = { message in
if message.content == TestConstants.testMessage1 {
messageCount += 1
if messageCount == 1 {
// Send duplicate after small delay
DispatchQueue.main.asyncAfter(deadline: .now() + 0.1) {
self.alice.sendMessage(TestConstants.testMessage1, mentions: [], to: nil, messageID: message.id)
}
} else {
XCTFail("Duplicate message was not filtered")
}
}
}
// Send original message
alice.sendMessage(TestConstants.testMessage1, mentions: [], to: nil)
// Wait to ensure duplicate would have been received
DispatchQueue.main.asyncAfter(deadline: .now() + 0.5) {
XCTAssertEqual(messageCount, 1)
expectation.fulfill()
}
wait(for: [expectation], timeout: TestConstants.defaultTimeout)
}
// MARK: - Mention Tests
func testMessageWithMentions() {
simulateConnection(alice, bob)
simulateConnection(alice, charlie)
let expectation = XCTestExpectation(description: "Mentioned users receive notification")
var mentionedUsers: Set<String> = []
bob.messageDeliveryHandler = { message in
if let mentions = message.mentions, mentions.contains(TestConstants.testNickname2) {
mentionedUsers.insert(TestConstants.testNickname2)
}
}
charlie.messageDeliveryHandler = { message in
if let mentions = message.mentions, mentions.contains(TestConstants.testNickname3) {
mentionedUsers.insert(TestConstants.testNickname3)
}
}
// Alice mentions Bob and Charlie
alice.sendMessage(
"Hey @\(TestConstants.testNickname2) and @\(TestConstants.testNickname3)!",
mentions: [TestConstants.testNickname2, TestConstants.testNickname3],
to: nil
)
DispatchQueue.main.asyncAfter(deadline: .now() + 0.5) {
XCTAssertEqual(mentionedUsers, [TestConstants.testNickname2, TestConstants.testNickname3])
expectation.fulfill()
}
wait(for: [expectation], timeout: TestConstants.defaultTimeout)
}
// MARK: - Network Topology Tests
func testMeshTopologyBroadcast() {
// Create mesh: Everyone connected to everyone
let nodes = [alice!, bob!, charlie!, david!]
for i in 0..<nodes.count {
for j in i+1..<nodes.count {
simulateConnection(nodes[i], nodes[j])
}
}
var receivedCount = 0
let expectation = XCTestExpectation(description: "All nodes receive message")
for (index, node) in nodes.enumerated() where index > 0 {
node.messageDeliveryHandler = { message in
if message.content == TestConstants.testMessage1 {
receivedCount += 1
if receivedCount == 3 { // Bob, Charlie, David
expectation.fulfill()
}
}
}
}
// Alice broadcasts
alice.sendMessage(TestConstants.testMessage1, mentions: [], to: nil)
wait(for: [expectation], timeout: TestConstants.defaultTimeout)
}
func testPartialMeshRelay() {
// Partial mesh: Alice -> Bob, Bob -> Charlie, Charlie -> David, David -> Alice
simulateConnection(alice, bob)
simulateConnection(bob, charlie)
simulateConnection(charlie, david)
simulateConnection(david, alice)
// Setup relay handlers
setupRelayHandler(bob, nextHops: [charlie])
setupRelayHandler(charlie, nextHops: [david])
setupRelayHandler(david, nextHops: [alice])
var messageIDs = Set<String>()
let expectation = XCTestExpectation(description: "Message reaches all nodes once")
let checkCompletion = {
if messageIDs.count == 3 { // Bob, Charlie, David should receive
expectation.fulfill()
}
}
for node in [bob!, charlie!, david!] {
node.messageDeliveryHandler = { message in
if message.content == TestConstants.testMessage1 {
messageIDs.insert(message.id)
checkCompletion()
}
}
}
// Alice broadcasts
alice.sendMessage(TestConstants.testMessage1, mentions: [], to: nil)
wait(for: [expectation], timeout: TestConstants.defaultTimeout)
}
// MARK: - Performance and Stress Tests
func testHighVolumeMessaging() {
simulateConnection(alice, bob)
let messageCount = 100
var receivedCount = 0
let expectation = XCTestExpectation(description: "All messages received")
bob.messageDeliveryHandler = { message in
if message.sender == TestConstants.testNickname1 {
receivedCount += 1
if receivedCount == messageCount {
expectation.fulfill()
}
}
}
// Send many messages rapidly
for i in 0..<messageCount {
alice.sendMessage("Message \(i)", mentions: [], to: nil)
}
wait(for: [expectation], timeout: TestConstants.longTimeout)
XCTAssertEqual(receivedCount, messageCount)
}
func testLargeMessageBroadcast() {
simulateConnection(alice, bob)
let expectation = XCTestExpectation(description: "Large message received")
bob.messageDeliveryHandler = { message in
if message.content == TestConstants.testLongMessage {
expectation.fulfill()
}
}
// Send large message
alice.sendMessage(TestConstants.testLongMessage, mentions: [], to: nil)
wait(for: [expectation], timeout: TestConstants.defaultTimeout)
}
// MARK: - Helper Methods
private func createMockService(peerID: String, nickname: String) -> MockBluetoothMeshService {
let service = MockBluetoothMeshService()
service.peerID = peerID
service.nickname = nickname
return service
}
private func simulateConnection(_ peer1: MockBluetoothMeshService, _ peer2: MockBluetoothMeshService) {
peer1.simulateConnectedPeer(peer2.peerID)
peer2.simulateConnectedPeer(peer1.peerID)
}
private func setupRelayHandler(_ node: MockBluetoothMeshService, nextHops: [MockBluetoothMeshService]) {
node.packetDeliveryHandler = { packet in
// Check if should relay
guard packet.ttl > 1 else { return }
if let message = BitchatMessage.fromBinaryPayload(packet.payload) {
// Don't relay own messages
guard message.senderPeerID != node.peerID else { return }
// Create relay message
var relayMessage = message
if !relayMessage.isRelay {
relayMessage.isRelay = true
relayMessage.originalSender = message.sender
}
if let relayPayload = relayMessage.toBinaryPayload() {
var relayPacket = packet
relayPacket.payload = relayPayload
relayPacket.ttl = packet.ttl - 1
relayPacket.senderID = node.peerID.data(using: .utf8)!
// Relay to next hops
for nextHop in nextHops {
nextHop.simulateIncomingPacket(relayPacket)
}
}
}
}
}
}