acdream/tests/AcDream.Core.Net.Tests/Packets/FragmentAssemblerTests.cs
Erik f9c5e47e7f feat(net): N6 - ConnectResponse retransmit + fragment assembler eviction
Campaign N Slice N6, the final implementation slice.

ConnectResponse handshake retransmit:
- While the connection is unconfirmed, the Connect character-list pump
  resends the IDENTICAL cleartext ConnectResponse (same sequence 1, same
  cookie, the one encoded datagram - no new outbound state) on retail's
  strict 0.333333333 s gate. Retail: ClientNet::ProcessConnection
  @ 0x00545450, case cs_ConnectionRequestAcked @ 0x0054547B (the constant
  load at 0x00545481; the mask-0x41 strictly-greater x87 test at
  0x0054548C); ClientNet::SendConnectAck @ 0x005440F0 re-stamps
  lastSentHandshake_ (0x00544102) and rebuilds the same cookie packet.
- Confirmation = the first checksum-valid post-negotiation packet whose
  header lacks the ConnectRequest flag: retail's cs_ConnectionRequestAcked
  -> cs_Connected edge (ClientNet::ProcessPacket @ 0x00545100, the 0x40000
  exclusion at 0x0054514E, SetConnectionState(..., 5) at 0x00545160).
- The cadence rides the TransportClock (virtual-clock testable through
  TransportClockSource); the Connect deadline stays wall-clock.
- ACE safety pinned against the N0 model: a duplicate while still
  AuthConnectResponse re-routes idempotently through NetworkManager's
  pre-route; after acceptance CheckState clause 2 drops it pre-CRC at
  zero keystream cost.
- Pre-N6, one lost ConnectResponse was a hang to the Connect deadline;
  the N5 decorator deliberately arms after this window, so nothing
  covered it.

FragmentAssembler eviction (divergence register row AD-52):
- Partials evict 60 s after their last ACCEPTED fragment; the stamp
  refreshes on every new fragment (retail's re-stamp rule,
  ArrivedEphInfo::UpdateNetBlobID @ 0x0054AE00), so a merely-slow partial
  can never age out - 60 s is a floor, not a tunable. Swept from
  ReliableTransport.Sweep on retail's 5 s flush cadence
  (Indicator::FlushTimedOutEphInfo @ 0x0054A3D0, the gate at 0x0054A3DC;
  per-entry ArrivedEphInfo::fTimedOut @ 0x0054AE30). N4's RejectRetransmit
  abandonment made an unrecoverable partial a REACHABLE permanent state;
  the TTL reclaims it.
- A 64-entry completed-sequence ring drops late duplicate fragments of
  already-completed messages instead of allocating a fresh partial that
  can never complete (the completed-then-duplicate leak).

Fold-ins:
- N5 review LOW-5: NetProbeTests + LossyTransportDecoratorTests (the
  static NetDiagnostics / Console.SetOut mutators) share one
  DisableParallelization xunit collection so they never run alongside
  classes constructing WorldSession.
- Campaign section 9: N6 ledger row recorded; N5 row verified carrying
  4e290f00.

Gates: 757 Core.Net Release tests green (10 new); full solution Release
green (0 failures / 5 skips); connected lifecycle gate PASS; the
N5-strengthened connected loss gate PASS on its first live run (2%/seed 1:
dropped out=3 in=10, resends=1 nak-in=1 nak-out=5, cksum-fail=0
sanity-drop=0 uncached-nak=0).

Co-Authored-By: Claude Sonnet 5 <noreply@anthropic.com>
2026-07-29 17:20:12 +02:00

326 lines
13 KiB
C#

using AcDream.Core.Net.Packets;
namespace AcDream.Core.Net.Tests.Packets;
public class FragmentAssemblerTests
{
// NOTE: the first parameter name remains `id` for test-call-site clarity,
// but it now sets the fragment Sequence (the actual message-group key —
// the Id field is a constant on outbound fragments per AC protocol).
private static MessageFragment MakeFrag(uint id, ushort count, ushort index, byte[] payload, ushort queue = 7)
=> new(
new MessageFragmentHeader
{
Sequence = id,
Id = 0x80000000u, // matches ACE outbound constant
Count = count,
Index = index,
TotalSize = (ushort)(MessageFragmentHeader.Size + payload.Length),
Queue = queue,
},
payload);
[Fact]
public void Ingest_SingleFragmentMessage_ReleasesImmediately()
{
var assembler = new FragmentAssembler();
var frag = MakeFrag(id: 1, count: 1, index: 0, payload: new byte[] { 1, 2, 3 }, queue: 42);
var result = assembler.Ingest(frag, out var queue);
Assert.NotNull(result);
Assert.Equal(new byte[] { 1, 2, 3 }, result);
Assert.Equal(42, queue);
Assert.Equal(0, assembler.PartialCount);
}
[Fact]
public void Ingest_ThreeFragmentsInOrder_ReleasesOnLast()
{
// Queue is a property of the logical message, not individual fragments,
// so all three fragments carry the same queue value (captured from the
// first arrival). Testing with queue=9 on all three.
var assembler = new FragmentAssembler();
Assert.Null(assembler.Ingest(MakeFrag(7, 3, 0, new byte[] { 0xAA, 0xBB }, queue: 9), out _));
Assert.Equal(1, assembler.PartialCount);
Assert.Null(assembler.Ingest(MakeFrag(7, 3, 1, new byte[] { 0xCC, 0xDD }, queue: 9), out _));
var result = assembler.Ingest(MakeFrag(7, 3, 2, new byte[] { 0xEE }, queue: 9), out var queue);
Assert.NotNull(result);
Assert.Equal(new byte[] { 0xAA, 0xBB, 0xCC, 0xDD, 0xEE }, result);
Assert.Equal(9, queue);
Assert.Equal(0, assembler.PartialCount);
}
[Fact]
public void Ingest_OutOfOrderFragments_ReleasesCorrectlyOnLastArrival()
{
// Arrive as index 2, then 0, then 1 — the last arrival (index 1) is
// neither the first nor the last index, so this tests that the
// assembler releases on "count full", not "last index".
var assembler = new FragmentAssembler();
Assert.Null(assembler.Ingest(MakeFrag(3, 3, 2, new byte[] { 0xCC }), out _));
Assert.Null(assembler.Ingest(MakeFrag(3, 3, 0, new byte[] { 0xAA }), out _));
var result = assembler.Ingest(MakeFrag(3, 3, 1, new byte[] { 0xBB }), out _);
Assert.NotNull(result);
// Result must be assembled in INDEX order, not arrival order.
Assert.Equal(new byte[] { 0xAA, 0xBB, 0xCC }, result);
}
[Fact]
public void Ingest_DuplicateFragment_IsIdempotent()
{
var assembler = new FragmentAssembler();
Assert.Null(assembler.Ingest(MakeFrag(5, 2, 0, new byte[] { 0x11 }), out _));
// Resend index 0 — should not double-count or corrupt state.
Assert.Null(assembler.Ingest(MakeFrag(5, 2, 0, new byte[] { 0x11 }), out _));
// Assembler should still be waiting for index 1.
Assert.Equal(1, assembler.PartialCount);
var result = assembler.Ingest(MakeFrag(5, 2, 1, new byte[] { 0x22 }), out _);
Assert.NotNull(result);
Assert.Equal(new byte[] { 0x11, 0x22 }, result);
}
[Fact]
public void Ingest_MissingFragment_DoesNotRelease()
{
var assembler = new FragmentAssembler();
Assert.Null(assembler.Ingest(MakeFrag(9, 3, 0, new byte[] { 1 }), out _));
Assert.Null(assembler.Ingest(MakeFrag(9, 3, 2, new byte[] { 3 }), out _));
// Only 2 of 3 arrived → still waiting
Assert.Equal(1, assembler.PartialCount);
}
[Fact]
public void Ingest_TwoIndependentMessages_BuiltInParallel()
{
var assembler = new FragmentAssembler();
Assert.Null(assembler.Ingest(MakeFrag(100, 2, 0, new byte[] { 0xA1 }), out _));
Assert.Null(assembler.Ingest(MakeFrag(200, 2, 0, new byte[] { 0xB1 }), out _));
Assert.Equal(2, assembler.PartialCount);
var resultA = assembler.Ingest(MakeFrag(100, 2, 1, new byte[] { 0xA2 }), out _);
Assert.Equal(new byte[] { 0xA1, 0xA2 }, resultA);
Assert.Equal(1, assembler.PartialCount);
var resultB = assembler.Ingest(MakeFrag(200, 2, 1, new byte[] { 0xB2 }), out _);
Assert.Equal(new byte[] { 0xB1, 0xB2 }, resultB);
Assert.Equal(0, assembler.PartialCount);
}
[Fact]
public void DropAll_ClearsInFlightPartials()
{
var assembler = new FragmentAssembler();
assembler.Ingest(MakeFrag(1, 5, 0, new byte[] { 1 }), out _);
assembler.Ingest(MakeFrag(2, 5, 0, new byte[] { 2 }), out _);
Assert.Equal(2, assembler.PartialCount);
assembler.DropAll();
Assert.Equal(0, assembler.PartialCount);
}
[Fact]
public void TryIngest_BorrowedSingleFragment_ReturnsOriginalMemory()
{
var assembler = new FragmentAssembler();
byte[] payload = [1, 2, 3];
var fragment = new BorrowedMessageFragment(
MakeFrag(10, 1, 0, payload, 11).Header,
payload);
bool complete = assembler.TryIngest(
fragment,
out ReadOnlyMemory<byte> message,
out ushort queue);
payload[1] = 0xAA;
Assert.True(complete);
Assert.Equal(11, queue);
Assert.Equal(0xAA, message.Span[1]);
Assert.Equal(0, assembler.PartialCount);
}
[Fact]
public void TryIngest_BorrowedMultiFragment_CopiesAcrossDatagrams()
{
var assembler = new FragmentAssembler();
byte[] firstPayload = [1, 2];
byte[] secondPayload = [3, 4];
var first = new BorrowedMessageFragment(
MakeFrag(20, 2, 0, firstPayload, 12).Header,
firstPayload);
var second = new BorrowedMessageFragment(
MakeFrag(20, 2, 1, secondPayload, 12).Header,
secondPayload);
Assert.False(assembler.TryIngest(
first,
out _,
out _));
firstPayload[0] = 0xFF;
Assert.True(assembler.TryIngest(
second,
out ReadOnlyMemory<byte> message,
out ushort queue));
secondPayload[0] = 0xEE;
Assert.Equal(12, queue);
Assert.Equal(new byte[] { 1, 2, 3, 4 }, message.ToArray());
Assert.Equal(0, assembler.PartialCount);
}
[Fact]
public void TryIngest_ConflictingBorrowedIdentity_PreservesOriginalPartial()
{
var assembler = new FragmentAssembler();
var first = new BorrowedMessageFragment(
MakeFrag(30, 2, 0, [1], 13).Header,
new byte[] { 1 });
var conflict = new BorrowedMessageFragment(
MakeFrag(30, 3, 1, [9], 14).Header,
new byte[] { 9 });
var completion = new BorrowedMessageFragment(
MakeFrag(30, 2, 1, [2], 13).Header,
new byte[] { 2 });
Assert.False(assembler.TryIngest(first, out _, out _));
Assert.False(assembler.TryIngest(conflict, out _, out _));
Assert.Equal(1, assembler.PartialCount);
Assert.True(assembler.TryIngest(
completion,
out ReadOnlyMemory<byte> message,
out ushort queue));
Assert.Equal(13, queue);
Assert.Equal(new byte[] { 1, 2 }, message.ToArray());
Assert.Equal(0, assembler.PartialCount);
}
// =====================================================================
// Campaign N Slice N6 — age-based eviction + the completed ring.
// Retail shape: Indicator::FlushTimedOutEphInfo @ 0x0054A3D0 (5 s flush
// gate) over entries re-stamped on every update (ArrivedEphInfo::
// UpdateNetBlobID @ 0x0054AE00); the 60 s TTL and the 64-entry
// completed-sequence ring are the AD-52 adaptations.
// =====================================================================
private static BorrowedMessageFragment MakeBorrowed(
uint sequence, ushort count, ushort index, byte[] payload, ushort queue = 7)
=> new(MakeFrag(sequence, count, index, payload, queue).Header, payload);
[Fact]
public void SweepExpired_EvictsAgedPartial_KeepsFresh()
{
double now = 0;
var assembler = new FragmentAssembler(() => now);
Assert.False(assembler.TryIngest(MakeBorrowed(1, 2, 0, [0xA1]), out _, out _));
now = 30;
Assert.False(assembler.TryIngest(MakeBorrowed(2, 3, 0, [0xB1]), out _, out _));
Assert.Equal(2, assembler.PartialCount);
// At 60.0 exactly the first partial is AT the floor, not past it —
// an eviction floor, never an eager cutoff.
now = 60;
Assert.Equal(0, assembler.SweepExpired());
Assert.Equal(2, assembler.PartialCount);
// Past the floor: the aged partial goes, the fresh one stays.
now = 61;
Assert.Equal(1, assembler.SweepExpired());
Assert.Equal(1, assembler.PartialCount);
// The surviving partial still completes normally.
Assert.False(assembler.TryIngest(MakeBorrowed(2, 3, 1, [0xB2]), out _, out _));
Assert.True(assembler.TryIngest(
MakeBorrowed(2, 3, 2, [0xB3]),
out ReadOnlyMemory<byte> message,
out _));
Assert.Equal(new byte[] { 0xB1, 0xB2, 0xB3 }, message.ToArray());
Assert.Equal(0, assembler.PartialCount);
}
[Fact]
public void SweepExpired_SlowButAlivePartial_RefreshesOnEachNewFragment()
{
double now = 0;
var assembler = new FragmentAssembler(() => now);
Assert.False(assembler.TryIngest(MakeBorrowed(5, 3, 0, [1]), out _, out _));
now = 50;
Assert.False(assembler.TryIngest(MakeBorrowed(5, 3, 1, [2]), out _, out _));
// 61 s after creation but only 11 s after the last ACCEPTED
// fragment: the re-stamp rule (retail ArrivedEphInfo::
// UpdateNetBlobID @ 0x0054AE00) keeps a slow-but-alive partial.
now = 61;
Assert.Equal(0, assembler.SweepExpired());
Assert.Equal(1, assembler.PartialCount);
// A DUPLICATE of an already-held index adds nothing and must not
// refresh the stamp: 61 s after the last new fragment, it goes.
now = 100;
Assert.False(assembler.TryIngest(MakeBorrowed(5, 3, 1, [2]), out _, out _));
now = 111.5;
Assert.Equal(1, assembler.SweepExpired());
Assert.Equal(0, assembler.PartialCount);
}
[Fact]
public void TryIngest_LateDuplicateOfCompletedMessage_DropsWithoutRepartialing()
{
var assembler = new FragmentAssembler();
Assert.False(assembler.TryIngest(MakeBorrowed(9, 2, 0, [1]), out _, out _));
Assert.True(assembler.TryIngest(MakeBorrowed(9, 2, 1, [2]), out _, out _));
Assert.Equal(0, assembler.PartialCount);
// The pre-N6 leak: this late duplicate allocated a fresh partial
// that could never complete. Now it drops via the completed ring.
Assert.False(assembler.TryIngest(MakeBorrowed(9, 2, 0, [1]), out _, out _));
Assert.Equal(0, assembler.PartialCount);
}
[Fact]
public void Ingest_LateDuplicateOfCompletedMessage_DropsWithoutRepartialing()
{
var assembler = new FragmentAssembler();
Assert.Null(assembler.Ingest(MakeFrag(9, 2, 0, [1]), out _));
Assert.NotNull(assembler.Ingest(MakeFrag(9, 2, 1, [2]), out _));
Assert.Equal(0, assembler.PartialCount);
Assert.Null(assembler.Ingest(MakeFrag(9, 2, 0, [1]), out _));
Assert.Equal(0, assembler.PartialCount);
}
[Fact]
public void CompletedRing_IsBounded_OldestSequenceIsForgotten()
{
var assembler = new FragmentAssembler();
// Complete ring-size + 1 multi-fragment messages; sequence 0 is a
// legitimate value (ACE's fragment sequences start at 0).
for (uint seq = 0; seq <= 64; seq++)
{
Assert.False(assembler.TryIngest(MakeBorrowed(seq, 2, 0, [1]), out _, out _));
Assert.True(assembler.TryIngest(MakeBorrowed(seq, 2, 1, [2]), out _, out _));
}
// Sequence 0 was pushed out of the 64-entry ring: its late
// duplicate re-partials (the documented bound — memory stays
// bounded and the TTL sweep reclaims the stragglers).
Assert.False(assembler.TryIngest(MakeBorrowed(0, 2, 0, [1]), out _, out _));
Assert.Equal(1, assembler.PartialCount);
// The newest completion is still remembered.
Assert.False(assembler.TryIngest(MakeBorrowed(64, 2, 0, [1]), out _, out _));
Assert.Equal(1, assembler.PartialCount);
}
}