## Summary
Phase 3 of the anchored-time work: **every actively-written delta-time value in the engine now stores an anchored timestamp** — absolute on the wire, shifted forward by the downtime at load. Remaining time survives restarts (as delta did), and unlike delta, the bytes do not change on every save, so an idle world serializes identically save after save.
The answer to "is it possible everywhere": **yes** — including the one case that looked impossible.
## The GenericPersistence problem, solved
`GenericPersistence` bins (`Virtues.bin`, `StealableArtifacts.bin`, …) are raw payloads with no idx header, so they have no anchor of their own — anchored reads there would silently apply zero shift. But the anchor is a property of the **save**, not the file: every file in one save shares one `World.SaveStartTime`, and `Persistence.Load` reads **all** entity indexes (phase 1) before **any** persistence payload (phase 2). So the idx v5 header stamps a save-wide `World.LoadTimeShift`, and generic persistence readers inherit it. No file-format change, no per-bin header, old bins unaffected.
## Converted
- **Item v10 → v11**: `LastMoved` — previously whole-minute delta, rewritten every save for every item, the single largest source of idle-save churn — and `DecayResetTime` (retiring the TODO from #2583). **Mobile v37 → v38**: the three stat-gain stamps. **BaseCreature v20 → v21**: `SummonEnd`.
- **17 code-generated classes** (`[DeltaDateTime]` → `[AnchoredDateTime]`, version bump + `MigrateFrom` each): the five field spells, TransientItem, VirtueContext (×7 fields), PuzzleChestSolutionAndTime, BaseCamp, BaseBoat, RentedVendor, PlayerVendor, Ethics Player, Sheep, StarRoomGate, ChampionSpawn (×3), Corpse (`TimeOfDeath`, v19). The `MigrateFrom` bodies were generated from each class's current migration schema and are compiler-verified; VirtueContext's save-flagged nullables fall back to the same defaults the old deserialize left in place. Corpse's six migrations moved to a new `Corpse.Migrations.cs`.
- **Hand-written sites**: StealableArtifacts (v2), VendorInventory (v1), ML quest objectives (persistence v3) — each gated on its own version.
**Not converted, deliberately**: the ~25 read-only `ReadDeltaTime` sites in legacy version fallbacks and migration replays — they decode existing old bytes and must never change. `[DeltaDateTime]`/`WriteDeltaTime` remain available for them.
## Verification
- Build 0 errors / 0 warnings; **837 + 708 tests green**.
- Schema regeneration produced exactly the 17 expected new `vN.json` files (all `AnchoredTime` rule args), nothing else touched.
- **New acceptance tests** pin the point of the whole effort: serializing the same item at two save times **5 hours apart produces byte-identical output**, and `LastMoved`/`DecayResetTime` round-trip **exactly** at sub-minute precision (the old minutes encoding destroyed both properties).
## Notes for review
- `LastMoved` grows from a 1–3 byte encoded minutes value to 8-byte ticks per item — the price of byte-stability; it repays itself in incremental-save behavior since unchanged items now produce unchanged bytes.
- BaseEscortable-style semantics are unchanged: anchored shift preserves *remaining* time exactly, the same contract delta provided, so no gameplay-visible behavior changes — deadlines simply stop being consumed by downtime that delta already protected against, now with stable bytes.
## Enforcement
`WriteDeltaTime` is now `[Obsolete]` (interface + implementation). With the repo's warnings-as-errors, any new delta-time write — hand-written or emitted by a still-unconverted `[DeltaDateTime]` field — fails the build, with the migration instructions in the message. That the full solution still builds with **zero warnings** is itself the proof no active delta writer survived the conversion. `ReadDeltaTime` deliberately stays un-attributed: its remaining callers decode existing old bytes and are correct forever; its XML docs now state the legacy-decode-only contract.
## Summary
A GM flipping `Movable` back on for a long-frozen item made it vanish within one scheduler tick. The setter registered the item with a deadline computed from its stale `LastMoved`, so `ProcessActiveQueue` deleted it almost immediately. The pre-#2311 save-time sweep had the same semantics, just hidden behind the save cadence. The same failure existed for `Visible` and `Spawner` transitions.
`LastMoved` is deliberately left meaning actual movement — it feeds vendor inventory expiry and house moving-crate checks — so the fix does not rewrite it for state changes.
## Changes
- **`DecayResetTime`** (CompactInfo-backed): the decay countdown runs from the later of `LastMoved` and this stamp. `RestartDecay()` stamps it only when the item can decay and the stamp extends the current deadline, so hot paths with a fresh `LastMoved` allocate nothing.
- **`Movable`/`Visible`/`Spawner` setters** call `RestartDecay()` instead of registering a stale deadline.
- **Region-refusal retry** in `DecayScheduler` uses `RestartDecay()` instead of rewriting `LastMoved`.
- **Persistence**: the stamp survives save/load as a `WriteDeltaTime` delta under `SaveFlag.DecayReset` (to become `WriteAnchoredTime` once the save-time anchor is ported) (Item serialization v10), so a restart mid-window no longer deletes the item.
- **`LastMoved` setter** drops a superseded stamp so the `CompactInfo` can collapse instead of being held (~40 bytes) forever.
- **Raw `Map` setter** now counts as a move for parentless items: it stamps `LastMoved` and updates decay registration, closing the gap where an item moved out of `Map.Internal` via the setter never decayed.
- **`LiftItemDupe`**: the remainder of a partially lifted *ground* stack was placed via raw `Location`/`Map` assignments and never enrolled for decay (lingering-trash leak since #2311) — now enrolled via the Map setter. Parented remainders get their map from `AddItem` (parent first, then map), so container splits never transit the scheduler.
## Why
`PlayerConstructed` is per-instance provenance, and #2574 put it on every crafted item — including potions, arrows and other stackables. Stack operations were written when no item carried provenance of any kind, so they treated two piles of the same graphic as interchangeable.
**Merging** keeps the receiving stack's value. Dropping bought potions onto a crafted stack made the whole pile count as crafted; the reverse order erased it. Which one happened was decided by drag direction alone.
**Splitting** rebuilds one half in `Mobile.LiftItemDupe`, which copies a fixed list of fields rather than going through `Dupe`/`CopyProperties`. `PlayerConstructed` was not on that list, so dragging part of a pile off stripped the new half. Worth calling out: `[IgnoreDupe]` does **not** govern this path — it only applies to `Dupe()`. Reasoning "the field isn't `[IgnoreDupe]`, so it copies" is wrong here.
## Changes
- `Item.CanStackWith` compares `PlayerConstructed`, so crafted and non-crafted never merge into one indistinguishable pile.
- `Mobile.LiftItemDupe` copies `PlayerConstructed` onto the remainder, so a split cannot produce halves that disagree about what they are.
Refusing to merge is the whole fix. A stack has nowhere to record provenance, so the only coherent behaviour is to keep the two piles apart rather than pick a winner.
## What this deliberately does not do
Paths that genuinely **virtualize** an item — pouring from a `PotionKeg`, for one — rebuild it without the flag, and the result is simply treated as not crafted. That is accepted rather than worked around; the alternative is threading provenance through every count-based container, which buys little. The keg stores a `Held` int rather than a stack, so nothing there depends on merging and nothing breaks.
`CommodityDeed` is unaffected — it holds the real `Commodity` item rather than a count, so the flag rides along.
## Player-visible effect
Crafted potions and arrows will no longer stack with bought or looted ones. That is the intended invariant, and it is the reason the flag can be trusted at all.
## Tests
7 new tests in `Server.Tests`: both merge directions, the matching-provenance case, split copying, and the split/re-merge round trip.
`Server.Tests` **822 passing**, `UOContent.Tests` **701 passing**, build clean with 0 warnings.
## Problem
`RunEventLoop` span through its body regardless of whether there was anything to do — ~10% of a desktop core for an empty shard, and ~70% of a core on a 3 vCPU VPS. A process that never idles is exactly what burstable vCPU plans throttle, which is how this surfaced: lag spikes that went away when the operator bought more cores. The spin also denied the GC its natural pause points, so memory climbed until a world save forced a collection — alarming in task manager, harmless in practice, and a recurring source of "is my server leaking?" reports.
## Result
Windows desktop, real world of **190,728 items / 33,158 mobiles**, no players, saves and prebake off, three consecutive runs:
| | Legacy spin | Idle sleeping |
|---|---|---|
| **CPU** | 10.42 – 10.50% of one core | **0.78 – 1.00%** |
| **Tick lag** (peak/15s) | 4–10 ms | 5–11 ms |
**~10× less CPU with tick lag unchanged** — the CPU came free rather than being traded for latency. Slower hosts gain proportionally more. Spin mode (`server.eventLoopIdleWaitMs=0`) independently gained **7× the iterations per core** (1.19M → 8.3M cycles/sec) from the ring's AcceptEx rework.
## How
The loop blocks in `NetState.WaitForCompletion` whenever every queue it drains is empty (all the drains are bounded, so leftovers keep it awake). Receive completions, new connections, and cross-thread `LoopContext.Post` (via the ring's sticky `Wake()`) are all in the wait set, so sleeping adds no latency to any of them. Only timer-driven logic sees wheel lag, bounded by the idle wait.
**Health is measured at the only place sleeping can cause harm.** A sleep is bounded by the time to the next wheel turn, so a correctly honoured sleep can never miss a deadline — the only failure mode is the host returning the wait late. That overshoot is measured on every sleep (one extra timestamp read; production's entire accounting cost), and an escalating backoff suspends sleeping when it persists. By construction, server work — saves, heavy staff commands, deep timer callbacks — cannot trip it, so the warning means exactly one thing: *the host is not scheduling the process promptly*, with two known remedies (dedicated CPU, or `=0`). Hosts with no high-resolution wait mechanism at all are detected once at startup and spin instead.
**CPS is removed.** `Core.CyclesPerSecond`/`AverageCPS` measured nothing actionable before and became actively misleading once the loop sleeps (the rate is set by the sleep, not by shard health). The admin gump's Performance page now shows the verdict instead: `Healthy` / `Sleep suspended (host)` / `Spinning (configured)`.
## Configuration
| Setting | Default | Meaning |
|---|---|---|
| `server.eventLoopIdleWaitMs` | `2` | Longest idle block. Measured across 1/2/4/8 ms, 2 is where the trade stops being free. `0` = never sleep: ~98% of a core, zero scheduling overhead — for large shards on dedicated CPU. |
| `server.lateWakeThreshold` | `1` | Idle waits the host may return a full tick late, per second, before sleeping backs off. Raise for jittery hosts; very high disables the backoff. |
## Diagnostics (compiled out by default)
`dotnet build -p:EventLoopProfiling=true` compiles in `EventLoopProfiler` — every hook is `[Conditional("EVENT_LOOP_PROFILING")]`, so normal builds contain zero profiling IL. The profiling build decomposes each second of wall time into **work (per loop phase) / sleep / GC pause / stolen residual**, keeps ~15 minutes of history in a ring buffer, and the `[LoopStats` command prints the last minute and dumps the full history to CSV. `dev-docs/debugging-event-loop.md` is the diagnosis guide (for humans and AI): what production already tells you, when to flip the profiling build, the signature table for host-steal vs deep-processing vs GC vs wake bugs, why dotnet-trace comes last, and the GC/RAM "leak" misconception.
## Verification
- 815 Server.Tests green; both build configurations compile.
- Docker echo harness green on epoll and io_uring (ping-pong mode); kqueue verified manually on an M1 Max.
- A/B measurements and per-change numbers: `measure/event-loop` branch.
## Notes
The full measurement harness and vendored ring sources used to develop this live on the [`measure/event-loop`](https://github.com/modernuo/ModernUO/tree/measure/event-loop) branch, kept for future loop work.
## The bug
Any property getter reached from `GetProperties` that calls `InvalidateProperties` takes the tooltip build down with it:
```
System.ArgumentNullException: Value cannot be null. (Parameter 'array')
at Server.ObjectPropertyList.AppendStringDirect(String value)
at Server.Mobiles.PlayerMobile.GetProperties(IPropertyList list)
```
`InvalidateProperties` rebuilds **in place** — `Reset()`, then `GetProperties()` again on the same instance — and `Reset()` does two destructive things to a build already in flight:
1. **It returns the pooled interpolation buffer.** The compiler rents it in the handler ctor and returns it in the closing `Add`, so *every hole is evaluated while it is live*:
```csharp
var handler = new InterpolatedStringHandler(1, 2, list); // InitializeInterpolation() RENTS
handler.AppendFormatted(pl.Rank.Title); // <-- getter runs HERE
handler.AppendLiteral("\t");
handler.AppendFormatted(faction.Definition.PropName);
list.Add(1060776, ref handler); // consumes span, RETURNS
```
```
GetProperties(list)
├─ InitializeInterpolation() -> _arrayToReturnToPool = Rent(256) buffer LIVE
├─ « hole 1: pl.Rank.Title »
│ └─ PlayerState.Rank.get (lazy recompute)
│ └─ Invalidate() -> InvalidateProperties() -> m_PropertyList.Reset()
│ └─ Dispose(): Return(buf); _arrayToReturnToPool = null buffer GONE
└─ handler.AppendFormatted("Knight")
└─ _arrayToReturnToPool.AsSpan(_pos..)
└─ ArgumentNullException (Parameter 'array')
```
It surfaces as `ArgumentNullException` rather than `NullReferenceException` because the `Range` overload of `AsSpan` must read `array.Length`, so the BCL null-checks and names the parameter `array`.
2. **It rewinds the packet cursor**, so properties already written are overwritten by the nested pass — a silently corrupted tooltip even where the buffer survives.
## The fix: refuse, don't recover
There is no correct recovery, and retrying the build would only hide the defect. A nested invalidation now logs an error with a stack trace, **throws in `DEBUG`** so it gets found and fixed, and in `RELEASE` returns without touching the list — a possibly stale tooltip, but no crash, no corrupted packet, and nothing leaked back to the pool. Getters that genuinely must invalidate should defer:
```csharp
Timer.DelayCall(InvalidateProperties);
```
The guard flag lives on the `ObjectPropertyList`, not the entity: it is that list's own lifecycle, it costs nothing (both `Item` and `ObjectPropertyList` absorb it in existing padding, and the list is allocated lazily), and it stays correct when builds for different entities nest.
Base instance sizes are unchanged from `main`: Item 128 B, Mobile 792 B, ObjectPropertyList 72 B, PlayerMobile 1216 B.
`PropertyList` also publishes the list into `m_PropertyList` **before** building it rather than assigning through `??=` afterwards, so a nested `InvalidateProperties` sees the build in progress instead of recursing into a second throwaway list whose work is discarded.
`ObjectPropertyList` re-rents its scratch buffer instead of spanning a null array, so a stray `Reset()` from any other caller degrades rather than aborting `GetProperties`.
## Factions `PlayerState`: maintained, not lazily computed
The getter that surfaced this is now a plain field read — the whole `if (m_InvalidateRank)` block and the flag itself are gone:
```csharp
public RankDefinition Rank => m_Rank;
```
`UpdateRank()` recomputes at each point an input actually changes:
| Site | Why |
|---|---|
| `RankIndex` setter | this player's index changed |
| end of `KillPoints` setter | two paths write `m_RankIndex` directly, bypassing the setter; runs once the swap bookkeeping and `ZeroRankOffset` have settled |
| `Faction.AddMember` | *after* the insert — the member count is not settled during the ctor |
| `FactionState` load | once ordering and `ZeroRankOffset` are final |
Supporting fixes this forced out:
- **Both ctors seed the lowest rank.** Nothing recomputes on read any more, so `Rank` has to be usable immediately — including for members that never get a `RankIndex` assigned, which is *every member with no kill points*. Without this, `Rank.Title` NREs.
- **`Rank` always resolves.** Ranks are ordered by `Required` descending ending at `0`, so a *negative* percent (`RankIndex` out of sync with `ZeroRankOffset`) matched nothing and left `m_Rank` null. It no longer divides by a zero `ZeroRankOffset` either.
- **A pre-existing staleness bug.** The `KillPoints` setter writes `m_RankIndex` directly in two places, so the cached rank was never refreshed when a player crossed zero kill points.
All six readers of `Rank` were checked; none relied on the old side effect.
One behaviour change worth flagging: rank refreshes are now **eager** where they used to be lazy, so a `KillPoints` change invalidates each swapped player as it happens. The swap loops break as soon as ordering is satisfied — typically 0–2 swaps — but it is on the path that runs on every faction kill.
## Documentation
The rule is written down so it is enforceable rather than folklore:
- **CLAUDE.md** audit rule 19
- **`dev-docs/property-lists.md`** — new "Never Invalidate From Inside `GetProperties`" section with the failing/passing pattern
- **`dev-docs/claude-skills/modernuo-property-lists.md`** — key rule + anti-pattern
- **`dev-docs/claude-skills/modernuo-code-audit.md`** — rule 19, ERROR severity
## Tests
- `ObjectPropertyListReentrancyTests` — `Reset()` and `Dispose()` re-entered mid-hole (both red against `main` with the exact exception above), nesting behaviour, and the new contract: `DEBUG` throws, `RELEASE` survives, and the build is never retried into a loop.
- `FactionRankTests` — `Rank` is populated before anything reads it, tracks `RankIndex` without a read, is stable across reads, and still resolves when `RankIndex` is out of sync with `ZeroRankOffset`. Red-verified: removing the ctor seed fails the first one.
793/793 `Server.Tests` and 608/608 `UOContent.Tests` pass.
## Noted, not addressed here
`~ObjectPropertyList()` returns the rented array to `STArrayPool<char>.Shared` from the **finalizer thread**, and that pool is single-threaded by design. Left alone as a separate concern.
### Summary
Moves inventory insurance out of `Mobile`/`PlayerMobile` into its own system at `Projects/UOContent/Engines/Insurance/`, wires it into the feature flag system, and makes disabling it actually disable it everywhere.
### Changes
**New `Server.Engines.Insurance.Insurance` system**
* Owns its own `Configure()`, seeding from the existing `insurance.enable` setting (default `Core.AOS`), so no config migration is needed. `Mobile.InsuranceEnabled` is gone, along with its line in `ExpansionConfiguration`.
* `CanInsure`, `GetInsuranceCost`, `ToggleItemInsurance`, `AutoRenewInventoryInsurance`, `CancelRenewInventoryInsurance` and `OpenItemInsuranceMenu` move here from `PlayerMobile`, which keeps four one-line shims for the context-menu callbacks.
* Every entry point is gated on `Insurance.Enabled`, and the death-time state is only allocated when insurance is on — a shard without insurance pays nothing for it.
**Feature flag integration**
Insurance is now a first-class feature flag: `ServerFeatureFlags.InsuranceEnabled`, registered under the `insurance` key in `FeatureFlagManager.SyncStaticFlag`, so it can be inspected and toggled through the normal flag command/gump rather than only at boot. `Insurance.Enabled` reads through to the flag, so there is one source of truth for every consumer.
**Fixes a memory leak from PvP**
`PlayerMobile.m_InsuranceAward` was a `Mobile` field assigned on every death and never cleared, so every player permanently pinned a strong reference to the last player who killed them. Killers were kept alive by their victims indefinitely.
Death-time insurance state now lives in a `Dictionary<Mobile, InsuranceContext>` owned by the insurance system: the entry is created in `OnBeforeDeath` and removed in `OnDeath`, so nothing outlives the death that created it.
**Removes insurance fields from every PlayerMobile**
`m_InsuranceAward`, `m_InsuranceBonus` and `m_NonAutoreinsuredItems` were carried by every `PlayerMobile` whether or not the shard ran insurance. All three are gone; the equivalent state is allocated per-death, only for players who actually die with insured items, only when insurance is enabled.
**Stale `Insured` flags are inert when insurance is off**
`Item.Insured` is a persisted flag, so items stay marked after a shard turns insurance off. Every read path now checks the flag first, so those items behave exactly as if they were never insured:
* `Item.CheckBlessed` / `Item.IsStandardLoot` — they drop again instead of acting blessed
* `Item.AddLootTypeProperty` — no more phantom "insured" tooltip
* `PlayerMobile.FindItems_Callback` — not yanked out of nested bags on death
* `DestroyEquipment` — no longer immune
* `ClothingBlessDeed` — no longer reports "that item is already blessed"
**Gumps promoted out of `PlayerMobile`**
`ItemInsuranceMenuGump`, `ItemInsuranceMenuConfirmGump` and `CancelRenewInventoryInsuranceGump` were private nested classes reaching into `PlayerMobile` privates. They are now public types in `Engines/Insurance/Gumps/`, talking to the insurance system through its public API. `ItemInsuranceMenuGump.ToggleSelected()` replaces the confirm gump's reach-in to the parent's `_items`/`_insure` arrays.
### Behavior changes
* The per-item "You lack the funds to purchase the insurance" message on failed auto-renewal is no longer sent during death; players get the single 1061115 summary instead. Marked with a TODO pending a decision on whether the per-item message should spam.
* The killer's insurance bonus is deposited once at the end of death processing rather than 300 gold at a time per insured item, and the "gold has been deposited" message is now conditional on the deposit succeeding. Same total.
### Drive-by cleanups
`PoisonImpl.IncreaseLevel` -> `Poison.IncreaseLevel`, a redundant `is NetState { } ns` pattern, `new List<Item>(Items)` -> collection expression, alignment of the `SyncStaticFlag` switch arms, and some comment/formatting fixes in `PlayerMobile`.
Reduces the world-save freeze window from ~740ms to ~78ms (measured on a synthetic 10M-entity / 1.7GB world, 24 cores, through the real pipeline classes) by removing the per-entity handoff between the game loop and the serialization workers, fixing how large indivisible payloads are scheduled, rewriting the BufferWriter hot path, removing per-entity placement state entirely, and finally replacing the global serialized-types tracking with a per-file type table (idx v4) that also shrinks idx files by ~21% and speeds the background write phase. The pipeline has also been validated end-to-end on live-copy worlds in the multi-million-entity range, where the freeze is drain-bound (real `Serialize()` costs far more CPU per byte than synthetic writes) — the same structural wins hold, and entity/file round-trips are byte-clean across both load paths.
## The problem
The freeze window is `max(main-thread handoff, slowest worker drain)`:
1. **The producer was the bottleneck.** The main thread round-robined every entity through per-worker `ConcurrentQueue`s — two interlocked ops per entity, ~740ms of freeze floor at 10M entities before any serialization happened.
2. **Round-robin distributes count, not cost.** "Deep" systems (50MB generic persistence blobs) and "thick" entities (100K-item storage keys) landed on arbitrary workers, producing lopsided drain times on large worlds.
3. **Worst-case scheduling.** `GenericEntityPersistence.Serialize` pushed its self-payload *after* all entities, and generic persistences sort last in the registry — so the biggest indivisible blobs started serializing at the very end, extending the freeze by their entire duration.
## The fix
**Commit 1 — chunked handoff + LPT scheduling + heap pre-sizing:**
- Pooled 4096-entity chunks published to one shared queue; workers pull chunks and load-balance dynamically (a worker busy with a thick entity simply takes fewer chunks).
- `Persistence.SerializeAll` pushes systems largest-first (LPT) using the previous save's payload size (or loaded file size on first boot); self-payloads get dedicated single-entity chunks so they overlap the entity stream instead of ending it.
- Worker heaps pre-size from the loaded save's `.bin` totals, eliminating copy-on-grow inside the first save's freeze.
- `SpinWait` backoff in the drain loop (never `Sleep(1)`), per-worker balance stats logged in debug builds (the call site is compiled out of Release), 1MB snapshot write buffer.
**Commit 2 — workers iterate the dictionaries directly + main thread joins the drain:**
- `GenericEntityPersistence` publishes 4096-slot ranges over its dictionary's backing entries array; workers serialize occupied slots (`value != null`) directly through a `ShadowEntry<TValue>` struct mirroring the runtime's private `Entry` layout. Safe because the dictionary is frozen during `Saving` (mutations divert to the pending safety queues).
- The layout is **proven at startup before any code reads through it**: validation measures the true `Entry` stride via precise allocation accounting (guaranteeing all shadow reads are in-bounds), then verifies every key/value of a churned, resized, freelist-exercised dictionary — reading value slots as raw pointer bits only, never materializing a managed reference until the layout is proven. If a future runtime changes `Dictionary` internals, validation fails with a logged warning and saves fall back to the (fully maintained) enumerate-and-push path.
- The main thread joins the drain via an inline worker after publishing, instead of idling — worth a full worker share, proportionally more on low-core hosts.
**Commit 3 — 2.2x faster BufferWriter write path, single-pass short strings:**
- PGO already devirtualizes and inlines every `IGenericWriter.Write` callsite (interface vs concrete measured identical) — the real per-write cost was the non-inlinable `Index` setter (range-check throw path + per-write high-water tracking) plus span bounds checks. Writes now reserve capacity once, then do an unaligned store through a ref with a raw index increment; the high-water mark folds at Seek/Resize instead of per write.
- Class-level implementations of the hottest default interface methods keep nested writes inlined (a DIM re-dispatches on `this` even at a devirtualized callsite).
- Strings of 85 chars or fewer encode once into a stack scratch instead of walking the string twice (`GetByteCount` + `GetBytes`). Byte output is identical.
- Measured: 34.4 → 15.7 ns/entity on a generated-style write mix; end-to-end freeze ~99ms → ~74-82ms.
**Commit 4 — branch-free fallback push loop:**
- A bare `foreach { PushToCache(entity); }` runs at 2.3ns/entity; the same loop carrying a per-entity heavy-check runs 2.3x slower — the cost is the fatter loop body defeating tight-loop codegen. Entity-level >1MB payloads are rare enough to ride in shared chunks; system self-payloads (the large ones) are still explicitly scheduled largest-first.
**Commit 5 — drop the 9-byte per-entity placement state; snapshots write from worker segment logs:**
- Every `ISerializable` carried `SerializedThread/SerializedPosition/SerializedLength` so `WriteSnapshot` could gather each entity's bytes from the worker heaps in dictionary order. But the idx records absolute positions — bin order is free — so the snapshot is now written in worker-heap order and the join inverts: workers log segments (owner, slot range, heap start) plus one length per record as they serialize; positions are implicit because a worker's writes are contiguous, and identity comes from re-walking the same snapshot slots in the same order (stable until `PostWorldSave`).
- Chunks are persistence-homogeneous (the partial chunk publishes at each `SerializeAll` boundary) so segments route to files by owner with zero per-entity state. Self-payloads keep placement as three private fields on the handful of persistence instances.
- Net: 9 bytes (plus padding) of resident state removed from every item, mobile, guild, and account on every shard; three interface-property stores per entity leave the drain hot path (stamping dirtied one cache line per entity mid-freeze — the lengths log is one sequential stream); each segment's bytes hit the bin as a single span write instead of one copy per entity, speeding the background write phase; and `IGenericSerializable` shrinks to just `Serialize(IGenericWriter)`. Transient cost: ~4 bytes per entity in pooled per-worker logs, released after each write. The save format was unchanged at this point (idx v3, same loader); the v4 bump comes later in the branch.
**Commit 6 — staged file writes replace memory-mapped snapshot writing:**
- `MemoryMapFileWriter` is removed. `FileBufferWriter` composes through the full `BufferWriter` raw write path into a pooled staging block that drains to the file as large sequential positional writes (`RandomAccess.Write`); seeks flush the block and move the file offset, so backwards patches (the idx entity count) become small positional writes.
- Memory-mapped composition paid a soft page fault on every composed page plus unpredictable dirty-section teardown stalls at dispose — measured ~4x slower end-to-end than staged writes at snapshot sizes.
**Commits 7–11 — idx v4: per-file type table replaces SerializedTypes.db and all runtime type tracking:**
- Previously every `Write(Type)` from every worker enqueued into a shared `ConcurrentQueue<Type>` during the freeze (interlocked writes on a shared cache line, millions of mostly-duplicate entries), the background phase drained and deduped it all into a `HashSet`, and the snapshot recomputed `xxHash64(Type.FullName)` once per entity record (~5.4M redundant hashes per save on a large world) to write 9-byte tag+hash idx records plus a global `SerializedTypes.db`.
- The db's only real job was diagnostics: the string name behind "Type `<X>` was not found. Delete all of those types?" during idx loading. That map now lives in the idx itself: each `GenericEntityPersistence<T>` keeps an insertion-ordered `Type -> ushort` table, hydrated at `AddEntity` and on every deserialize path — one dictionary `TryAdd` per entity add on the game thread, amortized across gameplay, and provably immutable while the background writer reads it (adds divert to the pending queues during saves).
- idx v4 layout: the table (names only) is written before the records; records reference it by 2-byte index, shrinking from 33 to 26 bytes (−21%). The loader resolves each table name **once** (`FindTypeByHash(ComputeHash64(name))` — semantically identical to v3 resolution, `TypeAlias` included) into a constructor array, and each record becomes an array index instead of an 8-byte hash read plus dictionary probe. The unresolved-type prompt now surfaces once per type, with the name.
- Deleted outright: `World.SerializedTypes`, the drain/dedupe pass in `WriteFiles`, `BufferWriter`'s type tracking (its `Write(Type)` is now pure — payload format unchanged: tag byte + xxHash64), `FileBufferWriter`'s typeSet parameter, `Persistence.WriteSerializedTypesSnapshot`, and the adhoc db write. SerializedTypes.db is no longer produced.
- **Backward compatibility:** v0–v3 saves (including their SerializedTypes.db and legacy tdb files) load exactly as before, and every legacy load path hydrates the new table so the first v4 save after an upgrade is complete. Stale db files in existing save folders are simply ignored. Verified live: a v3 save boots, saves as v4 (Items.idx −20.2% on a dev world), and reloads with identical entity counts.
## Measured (synthetic 10M entities / 1.7GB, 64+64+32MB system blobs, 24x 2MB thick entities, dense write profile, 24 cores)
| Metric | Before | After |
|---|---|---|
| Steady-state freeze | ~740 ms | **~78 ms** |
| Main-thread publish cost | ~740 ms | **~0.1 ms** |
| Steady-state allocations | 0 | 0 (by iter 2) |
| Worker byte-load spread | 2x | ~1.15x |
The freeze is now bound by pure serialize throughput (payload / cores).
## Tests
- 779 Server.Tests + 501 UOContent.Tests pass.
- New across the branch: chunk fill/flush/owner-boundary tests, pool reuse/clear tests, an end-to-end multi-worker drain through the real wake/push/flush/pause protocol, a 50K-entry churn equivalence test for the shadow iteration re-walk (the exact pairing the snapshot writer relies on), byte-level BufferWriter output/position pins, `RuntimeLayoutIsSupported` so a silent fallback on a future runtime upgrade fails loudly in CI, and a full snapshot **round-trip test** that serializes 25K entities plus a self-payload through real workers, writes the idx/bin from the segment logs, and reloads them through the standard loader (now in v4 format).
- For idx v4 specifically: `FileBufferWriter` staging/drain/seek-patch and oversized-item tests, type-table registration tests, a hand-written v4 fixture proving an unresolvable type name skips only its own records through the console confirmation flow, and a hand-written **legacy v3 fixture** proving old saves still load and hydrate the type table for their next save.
## Trade-offs
- Chunk scheduling is nondeterministic, so worker heaps ratchet to each worker's max-ever draw rather than a fixed share. With slot ranges the balance is tight (~1.15x), so the effect is small; a shared slab pool remains an option if production shows retention creep.
- Entity-level heavy items inside slot ranges are serialized wherever they're encountered (no LPT for them); worst-case tail is one thick entity's serialize time (~ms). System self-payloads — the large ones — are still explicitly scheduled largest-first.
- Snapshot-write error granularity is per segment rather than per entity (heap-bounds bugs were the only thing the per-entity catch ever caught; idx metadata reads keep per-record granularity).
- idx v4 is a save-format version bump: old saves load unchanged through the preserved legacy paths, but saves written by this branch require this loader. Per-persistence type tables cap at 65,535 distinct entity types per boot (hard throw, orders of magnitude of headroom), and a type's table slot persists until restart even if its last entity is deleted — a few stale name entries per file, by design.
## Problem
A creature equipped with two items that resolve to the **same layer** can crash the legacy EA 2D client (use-after-free). Equipment `Layer` comes from tiledata (`Layer = (Layer)ItemData.Quality`), so a **two-handed weapon and a shield both resolve to `Layer.TwoHanded`**. `Mobile.FindItemOnLayer` even documents the invariant: *"We only allow 1 item per layer. Its an implicit contract."*
## Root cause
- `SendMobileIncoming` (0x78) **dedupes by layer** (the `layers` span) and sends only the first item per slot — so a static creature is fine.
- But the per-item **`SendEquipUpdate` (0x2E)** and the item **OPL** sends do **not** dedupe. On any equip/property delta (`Item.ProcessDelta`) they fire per item and leak the second same-layer item on its own.
- The client then holds two items on one equipment slot; when that slot is torn down (e.g. a large group of such creatures and the player runs out of range → mass remove) the legacy 2D client frees one and dereferences it → UAF. ClassicUO bounds-checks and is unaffected, but the server is emitting an invalid, self-contradictory stream either way.
## Fix
Make per-item equip/OPL sends honor the same first-item-per-layer rule `SendMobileIncoming` already uses:
- `Item.IsDupedEquipLayer()` — `m_Parent is Mobile m && m.FindItemOnLayer(m_Layer) != this` (reuses the existing helper; true when an earlier item already holds this items layer).
- `Item.ProcessDelta`: early-return before the per-client loop for a duped equipped item (skips the EquipUpdate and OPL to everyone).
- `Mobile` lift-reject re-show: skip the EquipUpdate and OPL for the dupe.
No behavioral change for valid equipment (distinct layers → never duped). For the invalid duped-layer case the second item was already omitted by the 0x78 packet; this just stops it leaking back via the per-item paths.
## Summary
`Mobile.SayTo(Mobile to, int number, string args = "")` always sends the localized message using `SpeechHue`. This adds a parallel overload that accepts an explicit `hue`:
```csharp
public void SayTo(Mobile to, int number, int hue, string args = "") =>
to.NetState.SendMessageLocalized(Serial, Body, MessageType.Regular, hue, 3, number, Name, args);
```
It mirrors the existing localized overload exactly, only substituting the caller-provided `hue` for `SpeechHue`, so content can send a cliloc message to a single mobile in a chosen color without dropping down to `NetState.SendMessageLocalized` directly. This restores the hued-cliloc `SayTo` that RunUO/ServUO content commonly relied on (e.g. `SayTo(from, 1042205, 0x3B2)`).
## Notes
- Purely additive; no behavior change to existing call sites.
- No overload ambiguity: `SayTo(m, num)` and `SayTo(m, num, "args")` still bind to the existing overload; `SayTo(m, num, hue)` binds to the new one (the third positional arg is `int` vs `string`).
- Null-safe to the same degree as the existing overload (`SendMessageLocalized` guards via `CannotSendPackets()`).
## Test Plan
- [x] `dotnet build Projects/Server` — 0 warnings, 0 errors.
- One-line additive overload mirroring an existing (untested) method; no existing `Mobile.SayTo` unit tests to extend. Happy to add coverage if preferred.
Fixes#2462
## Summary
Removes the per-object `VirtualHairInfo` heap wrapper for mobile/corpse hair. Hair is now stored **inline** on `Mobile` and `Corpse` as `int _hairItemId` / `int _hairHue` plus a lazily-allocated, **non-serialized** ephemeral `Serial _hairSerial` (in the high virtual-serial range) — and likewise for facial hair. The `VirtualHairInfo` class is deleted, with a **lossless** save migration.
This delivers three things:
1. **Fixes a hair-removal bug.** `Delta(MobileDelta.Hair)` is deferred (it enqueues; `ProcessDeltaQueue` runs later in the tick). The old `HairItemID = 0` setter nulled `_hair` *immediately*, so by the time `ProcessDelta` built the remove packet the equipped virtual serial was already gone — the old `??=` code then re-materialized a **fresh** serial (≠ the equipped one), so clients never removed the right entity, and it left a phantom ItemId-0 object behind. The serial now lives on the entity and **persists across removal**, so remove packets carry the correct serial.
2. **Lightens the entity.** No heap hair object; bald mobiles allocate nothing (the serial is minted lazily only when hair is present). This was the original reason `HairItemID`/`HairHue` exist.
3. **Removes `VirtualHairInfo` entirely**, keeping the high-range virtual serial behavior.
## How
- **Mobile** (manual serialization): inline `_hairItemId/_hairHue/_hairSerial` (+facial); lazy `HairSerial`/`FacialHairSerial`; `ProcessDelta` reads those. Serialization **v36 → v37** — the v30-v37 deserialize is unified, reading the legacy per-hair `VirtualHairInfo` version int only when `version < 37`. Setting item id to 0 clears the hue (matching the old object-nulling) while retaining the serial.
- **Corpse** (codegen serialization): decomposed to `[SerializableField] int _hairItemId/_hairHue` (+facial) + ephemeral serial; **v16 → v17** with `MigrateFrom(V16Content)`.
- **Lossless migration:** the loader validates exact byte length, and the old corpse hair is a presence-bool-gated block, so a tiny **migration-only** `LegacyHairInfo` reader (no runtime role) consumes the legacy `[bool][int ver][int itemId][int hue]` bytes. Frozen `Corpse.v14/v15/v16.json` are retyped to it; `v17.json` describes the new int fields.
- All consumers updated to discrete accessors: `OutgoingMobilePackets`, `CorpsePackets`, corpse subclasses (`MilitiaFighterCorpse`, `SchmendrickApprenticeCorpse`), and the packet test mirrors.
- `VirtualHair.cs` renamed to `OutgoingVirtualHairPackets.cs` (the only type left in it after `VirtualHairInfo` was removed).
## Test Plan
- [x] Full solution build: **0 warnings, 0 errors** (`TreatWarningsAsErrors`).
- [x] `Server.Tests`: **708 passed** (incl. new `RemoveHairUsesEquippedSerial` / `RemoveFacialHairUsesEquippedSerial` proving the serial survives removal + hue clears).
- [x] `UOContent.Tests` corpse/hair: **6 passed** (incl. `CorpseHairMigrationTests` asserting the legacy hair bytes are consumed exactly — the loader's length invariant).
- [x] Generated migration code inspected: V14/V15/V16 readers consume the legacy block byte-for-byte; serial never written to disk.
## Upgrade notes
- Old Mobile (v30–v36) and Corpse (v13–v16) saves load losslessly.
- Minor cosmetic-only change: `SchmendrickApprenticeCorpse` hair/facial-hair RNG draws shift order within each pair (same draw count); irrelevant for a quest NPC corpse.
## Summary
Phase 3 PR B of the message-interpolation cleanup. Handles the multi-line restructure sites flagged in `dev-docs/string-handling-message-interp-audit.md` (Phase 2). Phase 3.1 (PR #2436) handled trivial sweeps; this PR handles sites that needed an `if/else` hoist or switch restructure to eliminate `string.Format` while preserving exact message text.
Each site previously allocated an intermediate `string.Format(...)` result before passing to the message handler, despite Phase 1 making the handler accept interpolated string handlers natively.
## Sites fixed
- **`Projects/Server/Mobiles/Mobile.cs:7911`** - Title/guild header was using `string.Format` with a conditional template (`"[{1}]{2}"` vs `"[{0}, {1}]{2}"`). Split into `if (title.Length <= 0)` / `else` with direct `$"..."` interpolation.
- **`Projects/UOContent/Engines/ConPVP/DuelContext.cs:1337`** - View-ladder rank text used `string.Format(text, from == pm ? "You" : "They")`. Split into `if (from == pm)` / `else` with direct `$"..."` interpolation in each branch.
- **`Projects/UOContent/Engines/ConPVP/DuelContext.cs:1463`** - Showladder text reused a single format string for both `LocalOverheadMessage` ("You ... are ...") and `NonlocalOverheadMessage` ("`{pm.Name}` ... is ..."). Each call now uses an inline `$"..."` directly; no shared template.
- **`Projects/UOContent/Engines/ConPVP/Gumps/ConfirmSignupGump.cs:518`** - The signup confirmation message used a `switch` expression assigning a literal format string to `fmt`, then `string.Format(fmt, from.Female ? "Lady" : "Lord", timeUntil)`. Converted to a `switch` statement where each case calls `_registrar.PrivateOverheadMessage(...)` directly with an inline `$"..."`. Lady/Lord branching is hoisted to a `title` local.
## Exempted
- **`Projects/UOContent/Engines/ConPVP/Participant.cs:138`** - The `nonLocalOverhead` format string is a parameter passed in by callers of `Participant.Broadcast`. Investigation found 5 call sites in `DuelContext.cs` (lines 782, 802, 1187, 1196, and three at 1535/1564/1608) that pass distinct literal format strings. Refactoring would require changing all 5 callers and the method signature - out of scope for this PR. Marked with a `// Phase 3 audit:` comment per the audit's exemption convention.
## Summary
Phase 1 of a multi-phase optimization to eliminate intermediate string allocations between `$"..."` interpolation and the packet text region for ModernUO's player-facing message APIs.
- Adds `[InterpolatedStringHandler]` overloads to every `Send*`/`Public/Local/Private/NonlocalOverheadMessage`/`Say`/`Emote`/`Whisper`/`Yell`/`SendLocalizedMessageTo` API in `OutgoingMessagePackets`, `Mobile`, and `Item`. Each overload is a 3-line shim that forwards `handler.Text` to the existing span-based path then calls `handler.Clear()` to return the rented `STArrayPool<char>` buffer (matches the established `SpanWriter.WriteAscii(ref RawInterpolatedStringHandler)` precedent).
- Converts `string text/args/affix/name` parameters to `ReadOnlySpan<char>` for consistency with the handler path. `lang` intentionally stays `string` (it's never interpolated and the `??= "ENU"` fallback stays cleaner).
- Adds `int charCount` overloads of the three `GetMaxMessage*Length` helpers so stackalloc sizing can avoid the redundant `ROS<char>` round-trip.
- Moves `Mobile` (17 methods) and `Item` (4 methods) message methods into new partial-class files (`Mobile.Messages.cs`, `Item.Messages.cs`) for organization.
No UOContent call sites change in this PR — existing `string`/`ROS<char>` calls compile unchanged via implicit conversion. Phase 2 (intermediate-string audit) and Phase 3 (cleanup PRs) follow.
## Files
- `Projects/Server/Network/Packets/OutgoingMessagePackets.cs` — `string` → `ROS<char>` for text params, `int charCount` length helpers added, class made `partial`
- `Projects/Server/Network/Packets/OutgoingMessagePackets.Interpolated.cs` (new) — 3 `ref RawInterpolatedStringHandler` extension overloads
- `Projects/Server/Mobiles/Mobile.cs` — message methods extracted (-262 lines)
- `Projects/Server/Mobiles/Mobile.Messages.cs` (new, 463 lines) — moved + ROS-converted methods + 25 handler overloads
- `Projects/Server/Items/Item.cs` — message methods extracted (-93 lines)
- `Projects/Server/Items/Item.Messages.cs` (new, 142 lines) — moved + ROS-converted methods + 4 handler overloads
- `Projects/Server.Tests/Tests/Network/Packets/Outgoing/MessagePacketTests.cs` — 3 new regression tests verifying byte-equivalence for the handler overloads
## Summary
Migrates the Old Guild System (pre-AOS guild stones) gumps from the legacy `Gump` class to `DynamicGump`, following the same pattern used for the Quest gump migration in #2416. All concrete gumps now have private constructors gated by static `DisplayTo` entry points (empty-gump rule), and `Singleton => true` is set across the board so reopening a sibling dialog automatically closes the previous one.
**Migrated gumps:**
- `GuildGump` - main guild dialog
- `GuildmasterGump` - guildmaster functions
- `GuildCharterGump` - charter and website display
- `GuildWarGump` - warfare status (kept as player-facing)
- `GuildWarAdminGump` - war menu (retained as player-facing - reachable from `GuildmasterGump`'s WAR button by guildmasters)
- `GuildChangeTypeGump` - Standard/Order/Chaos selection
**Abstract bases:** `GuildListGump` and `GuildMobileListGump` keep their shared list-rendering chrome inside a single concrete `BuildLayout` on the abstract class and expose a `protected abstract void BuildHeader(ref DynamicGumpBuilder builder)` hook for subclasses (replacing the old `Design()` override). This mirrors the abstract-base treatment used for the ML quest base in the quest-gump migration PR.
**Concrete subclasses migrated alongside the abstract bases:**
- `GuildListGump` subclasses: `GuildAcceptWarGump`, `GuildDeclarePeaceGump`, `GuildDeclareWarGump`, `GuildRejectWarGump`, `GuildRescindDeclarationGump`
- `GuildMobileListGump` subclasses: `DeclareFealtyGump`, `GrantGuildTitleGump`, `GuildAdminCandidatesGump`, `GuildCandidatesGump`, `GuildDismissGump`, `GuildRosterGump`
**Cliloc rule:** Every gump bakes per-instance dynamic content (guild names, member names, war declarations, candidate lists), which would defeat `StaticGump<T>` caching. Per the cliloc rule, all are `DynamicGump`.
**External callers updated:** the prompt files (`GuildAbbrvPrompt`, `GuildCharterPrompt`, `GuildDeclareWarPrompt`, `GuildNamePrompt`, `GuildTitlePrompt`, `GuildWebsitePrompt`), `RecruitTarget`, the `Guildstone` item, and the New Guild System `GuildInfoGump`'s Order/Chaos handler all now go through static `DisplayTo` entry points instead of `new XGump(...)`.
## Summary
Server-side movement throttle that prevents speed hacking while accurately identifying cheaters with detection of lagging connections.
**Key features:**
- Credit buffer (200ms) absorbs timing jitter from legitimate players
- Movement queue handles larger bursts, draining at proper game-tick intervals
- RTT measurement distinguishes network lag from speed hacks
- Queue depth detection catches ACK-throttled speed hacks (going straight)
## How It Works
**Throttle** (prevention): Movements arriving too early either consume credit or get queued. The queue drains at
correct intervals, so speed hackers can't move faster regardless of what they send.
**Detection** (identification): Combines multiple signals to identify cheaters:
| Signal | What it catches |
|--------|-----------------|
| Queue depth ≥4 sustained | ACK-throttled speed hacks (client limits unacked moves to 5) |
| Movement rate >1.05x | Direction-change speed hacks where timing is visible |
| Stable RTT + high queue | Eliminates false positives from laggy players |
**RTT-Aware Logic:**
- Probes only sent to players actively moving (event-driven, not global loop)
- Stable low-latency + problems = suspicious
- Unstable/high-latency + problems = probably just lag, throttle handles it
## Configuration
```json
{
"movementThrottle.maxCredit": 200,
"movementThrottle.softQueueLimit": 6,
"movementThrottle.hardQueueLimit": 10,
"movementThrottle.debugLogging": false
}
```
## Summary
- Adds `public virtual bool Murderer => Kills >= 5` property to `Mobile`, replacing ~30 scattered `Kills >= 5` / `Kills < 5` magic-number checks across the codebase
- `BaseCreature` overrides `Murderer` to also return `true` when `AlwaysMurderer` is set
- Updates `Corpse` serialization to v15, storing `_murderer` as a `bool` field (migrated from `int Kills >= 5` in earlier versions)
> [!IMPORTANT]
> **Breaking Changes**
> - DecodePacket and EncodePacket delegates replaced with IClientEncryption interface
> - NetState.Connection (Socket) replaced with internal RingSocket management
> - NetState.RecvPipe and NetState.SendPipe removed (buffers managed internally)
## Summary
Upgrades the networking stack from PollGroup-based I/O to io_uring, significantly improving I/O performance on Linux.
This also adds native client encryption support for encrypted UO clients.
## Major Changes
io_uring Networking Architecture
- Replaced PollGroup with IORingGroup for async socket I/O operations
- Removed Pipe.cs (mirrored ring buffer) and TcpServer.cs in favor of RingSocketManager
- Added NetState.Network.cs - centralized network infrastructure handling accept, recv, send, and disconnect
completions
- Added SocketHelper.cs - platform-specific socket utilities for raw socket handle operations (getpeername,
getsockname)
- Buffer management now handled by RingSocketManager with configurable slab allocation
### Client Encryption Support
- Added full encryption stack in Network/Encryption/:
- EncryptionConfig.cs - configurable encryption modes (None, Unencrypted, Encrypted, Both)
- EncryptionManager.cs - encryption detection and initialization for login/game packets
- LoginEncryption.cs - handles login packet encryption with version-derived keys
- GameEncryption.cs - handles game server encryption using Twofish
- TwofishEngine.cs - optimized Twofish block cipher implementation
- LoginKeys.cs - encryption key table for client versions
- IClientEncryption.cs - interface for client encryption implementations
### NetState Improvements
- Replaced Socket Connection with RingSocket _socket for managed socket lifecycle
- Changed from GCHandle polling to event-based completion processing
- Disconnect handling now properly waits for pending sends to flush
- Simplified connecting socket management using lazy queue removal
### Configuration
- New settings: network.encryptionMode and network.encryptionDebug
- Encryption mode flags: Unencrypted, Encrypted, or Both
### Dependencies
- Replaced PollGroup NuGet package with IORingGroup
- Linux requires liburing-dev / liburing-devel package
### Test plan
- Verify server starts and accepts connections on Linux with io_uring
- Verify server starts and accepts connections on Windows (fallback to IOCP)
- Test unencrypted client connections (ClassicUO with encryption disabled)
- Test encrypted client connections if available
- Verify graceful disconnect flushes pending data
- Confirm CI builds pass on all target platforms
### Summary
Adds the command [TrackLeaks to enable tracking item/mobiles that have been deleted but still have dangling references. Requires adding the _TRACK_LEAKS_ define constant during build.
### Summary
- `GenericEntityPersistence` is now a type of `GenericPersistence`. This allows developers to serialize both entities and non-entities in the same system. 🎉
- Each `SerializationThreadWorker` now allocates 1MB of heap for serialization _permanently_. If more memory is needed, that thread will double it's memory, not to exceed increments of 64MB.
- Several bugs with serialization introduced with the pure MMF implementation have been fixed.
- `BinaryFileReader` has been added back. 🎉
- Adds `world.useMultithreadedSaves` to allow disabling threaded saves.
> [!IMPORTANT]
> **Developer Note**
> The split file serialization has been deprecated and is no longer used. We have effectively gone back to the same file writing we had before the pure MMF implementation.
### Summary
- Moves `CharacterCreated` event to UOContent using code generated event _CharacterCreatedEvent_.
- Moves `TargetByResourceMacro` event to UOContent using code generated event _TargetByResourceMacro_.
- Moves `GameLogin` event to UOContent using code generated event _GameLoginEvent_.
- Moves `ServerList` event to UOContent using code generated event _ServerListEvent_.
- Streamlines ProfessionInfo
> [!IMPORTANT]
> **Developer Note**
> Custom scripts that use any of these event sinks will need to be updated to use the new code generated events.
### Summary
- Adds [Code Generated Events](https://github.com/modernuo/CodeGeneratedEvents)
- Removes EventSink.PlayerDeath
- Adds `PlayerDeathEvent` and `CreatureDeathEvent` using code generated events
> [!Important]
> **Developer Note**
> Use `[OnEvent(nameof(PlayerMobile.PlayerDeathEvent))]` instead of `EventSink.PlayerDeath` delegate
> Check this commit for examples of how to use this.
> [!Important]
> **Developer Note**
> This code change will **completely move gumps out of the core**
### Summary
- Adds `GetGumps()` convenience which exposes methods to Find/Close/Send multiple gumps. This helper is a performance improvement by eliminating the Dictionary<Player, List> lookup for gumps.
### Summary
* Added World.NewVirtual for creating virtual serial numbers
* Reserved range 0x7EEEEEEE to 0x7FFFFFFF for virtual serials
* Hair and Facial hair (for mobiles) now use virtual serials instead of FakeSerial() functions
* Consolidated virtual hair to a single `VirtualHairInfo` class.
Corpse hair and facial hair now persists across save/load and hair and facial hair no longer teleport to newest corpse.
## Summary
- Removes allocation of a `List<ContextMenuEntry>` every time a context menu is created.
- Moves packet/context menu creation logic out of the core
- Fixes tame entry
## BREAKING CHANGE
> [!Important]
> **Developer Note**
> ```cs
> public virtual void GetContextMenuEntries(Mobile from, List<ContextMenuEntry> list)
> ```
> and similar functions changed to
> ```cs
> public virtual void GetContextMenuEntries(Mobile from, ref PooledRefList<ContextMenuEntry> list)
> ```
### Summary
Updates the serialization strategy to use `MemoryMappedFile` instead of thick buffers. This has the benefit of being on-par with the current implementation (based on hardware/OS), however won't incur the double-memory issue.
> [!Important]
> **Developer Note**
> The `BinaryFileWriter` and `BinaryFileReader` has been removed in favor of `MemoryMapFileWriter` and `UnmanagedDataReader`
### Summary
- Removes copying private setters
- Fixes duping containers
- Adds public `Dupe.DoDupe` functions for external scripts to hook into the existing logic.
## Summary
### Changes
- Adds `[IgnoreDupe]` and `[SerializedIgnoreDupe]`
- Updates all _known_ classes that need the attribute. Some might be missing, please helps us find them!
- Adds `Item.Dupe()` command and encapsulates `CopyProperties` and `OnAfterDuped`. This is also overridable.
- Updates Dupe command to use the new logic.
- Fixes duping multiple kinds of objects that used to be outright broken.
### Bug Fixes
- Fixes issue with durability after duping
- Fixes issue with hue after duping
> [!Note]
> **Developer Note**
> Customizing how duping an item works now requires two steps:
> 1. Add `[IgnoreDupe]` or `[SerializedIgnoreDupe]` to the property/field
> 2. Add custom logic in an `OnAfterDuped` override
>
> When do you need to do this?
> *When the property being copied is not a primitive, and you need to manually deep-clone the contents of the property such as with Lists, Dictionaries, or sub classes.*
# New Gump API
We are pleased to release a new API that is faster, allocates nearly zero memory, and still feels very similar to the original API. The API is broken into 3 types of gumps, dynamic, static with placeholders, and static without placeholders.
### Dynamic Gumps
These gumps will inherit `DynamicGump` and are meant for gumps that have a dynamic layout. This includes specifying dynamic arguments to HtmlLocalized entries.
## Static Gumps
Static gumps are those where the function to the build the layout is called only once and cached forever. They can optionally have placeholders. These placeholders allow the developer to specify the string values later, dynamically in a `BuildStrings` method on the gump. If a gump does not have any placeholders, the string entries will also be cached forever.
## Benchmarks
To make sure we were going in the right direction and not wasting time, we took copious benchmarks. Here are the final benchmarks for a really simple gump.
Note:
* The majority of creating a gump is compressing the layout and the strings. Compressing each section takes ~6,000ns (12us total).
```cs
| Method | Mean | Error | StdDev | Median | Ratio | RatioSD | Gen0 | Allocated | Alloc Ratio |
|------------------------------- |-------------:|-------------:|-------------:|-------------:|------:|--------:|-------:|----------:|------------:|
| OldGump | 13,308.29 ns | 1,059.695 ns | 1,883.608 ns | 14,330.72 ns | 1.000 | 0.00 | 0.1526 | 2400 B | 1.00 |
| DynamicLayoutGump | 13,357.86 ns | 129.144 ns | 226.185 ns | 13,323.60 ns | 1.029 | 0.17 | - | 48 B | 0.02 |
| StaticLayoutDynamicStringsGump | 6,653.10 ns | 81.815 ns | 143.292 ns | 6,617.45 ns | 0.514 | 0.09 | - | 40 B | 0.02 |
| StaticLayoutGump | 86.33 ns | 0.760 ns | 1.350 ns | 86.07 ns | 0.007 | 0.00 | 0.0020 | 32 B | 0.01 |
```
# Non-Breaking Changes
* All gump components in the core have been moved to `Gumps/Legacy`.
* All legacy gumps will still inherit `Gump`, which now inherits `BaseGump`
# Special Thanks
Thank you to @stefanomerotta for considerable contributions/benchmarking/testing to make this effort a reality! We collectively went through over 10 iterations, but it is finally ready.
> [!IMPORTANT]
> Please read through these changes, as they changed certain expectations for how the internal AI thinking/movement work.
> Note that some mobs still don't have smooth movement on ClassicUO due to how the client handles animations/movement.
### Summary
- **Important Change**: Mobs will now move at a more regular pace. If the OnThink results in a move, but the cooldown would otherwise prevent the move, then the movement is scheduled on another timer.
- Added a 400ms delay to mobs turning to face a player to attack in order to avoid glitching between moving and turning.
- Reverted AI thinking speeds back to RunUO specific speeds.
- Reverted the AI thinking to moving conversion delays back to RunUO.
- For thinking speeds that are not exactly the predefined speeds from RunUO, there is a new calculation to determine the correct conversion to movement speed. This stops speeds like `0.35` from being faster than `0.3`
> [!NOTE]
> **Developer Note**
> BaseAI.CheckMove() no longer contains the check for whether or not a mob is on movement cooldown. This function can now be overwritten without causing issues to figuring out that cooldown.