mirror of
https://github.com/Steffo99/better-tee.git
synced 2024-11-22 15:24:18 +00:00
353 lines
11 KiB
C#
353 lines
11 KiB
C#
using System;
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using System.Collections;
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using System.Collections.Generic;
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using System.ComponentModel;
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namespace Mirror
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{
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public class SyncListString : SyncList<string>
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{
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protected override void SerializeItem(NetworkWriter writer, string item) => writer.WriteString(item);
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protected override string DeserializeItem(NetworkReader reader) => reader.ReadString();
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}
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public class SyncListFloat : SyncList<float>
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{
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protected override void SerializeItem(NetworkWriter writer, float item) => writer.WriteSingle(item);
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protected override float DeserializeItem(NetworkReader reader) => reader.ReadSingle();
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}
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public class SyncListInt : SyncList<int>
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{
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protected override void SerializeItem(NetworkWriter writer, int item) => writer.WritePackedInt32(item);
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protected override int DeserializeItem(NetworkReader reader) => reader.ReadPackedInt32();
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}
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public class SyncListUInt : SyncList<uint>
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{
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protected override void SerializeItem(NetworkWriter writer, uint item) => writer.WritePackedUInt32(item);
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protected override uint DeserializeItem(NetworkReader reader) => reader.ReadPackedUInt32();
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}
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public class SyncListBool : SyncList<bool>
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{
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protected override void SerializeItem(NetworkWriter writer, bool item) => writer.WriteBoolean(item);
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protected override bool DeserializeItem(NetworkReader reader) => reader.ReadBoolean();
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}
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// Original UNET name is SyncListStruct and original Weaver weavers anything
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// that contains the name 'SyncListStruct', without considering the name-
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// space.
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[EditorBrowsable(EditorBrowsableState.Never), Obsolete("Use SyncList<MyStruct> instead")]
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public class SyncListSTRUCT<T> : SyncList<T> where T : struct
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{
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public T GetItem(int i) => base[i];
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}
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[EditorBrowsable(EditorBrowsableState.Never)]
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public abstract class SyncList<T> : IList<T>, IReadOnlyList<T>, SyncObject
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{
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public delegate void SyncListChanged(Operation op, int itemIndex, T item);
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readonly IList<T> objects;
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public int Count => objects.Count;
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public bool IsReadOnly { get; private set; }
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public event SyncListChanged Callback;
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public enum Operation : byte
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{
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OP_ADD,
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OP_CLEAR,
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OP_INSERT,
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OP_REMOVE,
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OP_REMOVEAT,
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OP_SET,
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OP_DIRTY
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}
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struct Change
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{
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internal Operation operation;
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internal int index;
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internal T item;
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}
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readonly List<Change> changes = new List<Change>();
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// how many changes we need to ignore
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// this is needed because when we initialize the list,
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// we might later receive changes that have already been applied
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// so we need to skip them
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int changesAhead;
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protected virtual void SerializeItem(NetworkWriter writer, T item) { }
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protected virtual T DeserializeItem(NetworkReader reader) => default;
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protected SyncList()
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{
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objects = new List<T>();
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}
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protected SyncList(IList<T> objects)
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{
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this.objects = objects;
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}
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public bool IsDirty => changes.Count > 0;
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// throw away all the changes
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// this should be called after a successfull sync
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public void Flush() => changes.Clear();
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void AddOperation(Operation op, int itemIndex, T item)
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{
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if (IsReadOnly)
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{
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throw new InvalidOperationException("Synclists can only be modified at the server");
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}
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Change change = new Change
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{
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operation = op,
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index = itemIndex,
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item = item
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};
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changes.Add(change);
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Callback?.Invoke(op, itemIndex, item);
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}
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void AddOperation(Operation op, int itemIndex) => AddOperation(op, itemIndex, default);
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public void OnSerializeAll(NetworkWriter writer)
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{
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// if init, write the full list content
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writer.WritePackedUInt32((uint)objects.Count);
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for (int i = 0; i < objects.Count; i++)
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{
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T obj = objects[i];
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SerializeItem(writer, obj);
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}
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// all changes have been applied already
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// thus the client will need to skip all the pending changes
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// or they would be applied again.
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// So we write how many changes are pending
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writer.WritePackedUInt32((uint)changes.Count);
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}
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public void OnSerializeDelta(NetworkWriter writer)
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{
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// write all the queued up changes
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writer.WritePackedUInt32((uint)changes.Count);
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for (int i = 0; i < changes.Count; i++)
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{
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Change change = changes[i];
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writer.WriteByte((byte)change.operation);
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switch (change.operation)
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{
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case Operation.OP_ADD:
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case Operation.OP_REMOVE:
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SerializeItem(writer, change.item);
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break;
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case Operation.OP_CLEAR:
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break;
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case Operation.OP_REMOVEAT:
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writer.WritePackedUInt32((uint)change.index);
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break;
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case Operation.OP_INSERT:
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case Operation.OP_SET:
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case Operation.OP_DIRTY:
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writer.WritePackedUInt32((uint)change.index);
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SerializeItem(writer, change.item);
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break;
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}
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}
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}
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public void OnDeserializeAll(NetworkReader reader)
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{
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// This list can now only be modified by synchronization
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IsReadOnly = true;
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// if init, write the full list content
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int count = (int)reader.ReadPackedUInt32();
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objects.Clear();
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changes.Clear();
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for (int i = 0; i < count; i++)
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{
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T obj = DeserializeItem(reader);
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objects.Add(obj);
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}
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// We will need to skip all these changes
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// the next time the list is synchronized
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// because they have already been applied
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changesAhead = (int)reader.ReadPackedUInt32();
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}
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public void OnDeserializeDelta(NetworkReader reader)
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{
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// This list can now only be modified by synchronization
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IsReadOnly = true;
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int changesCount = (int)reader.ReadPackedUInt32();
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for (int i = 0; i < changesCount; i++)
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{
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Operation operation = (Operation)reader.ReadByte();
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// apply the operation only if it is a new change
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// that we have not applied yet
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bool apply = changesAhead == 0;
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int index = 0;
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T item = default;
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switch (operation)
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{
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case Operation.OP_ADD:
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item = DeserializeItem(reader);
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if (apply)
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{
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index = objects.Count;
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objects.Add(item);
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}
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break;
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case Operation.OP_CLEAR:
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if (apply)
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{
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objects.Clear();
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}
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break;
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case Operation.OP_INSERT:
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index = (int)reader.ReadPackedUInt32();
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item = DeserializeItem(reader);
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if (apply)
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{
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objects.Insert(index, item);
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}
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break;
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case Operation.OP_REMOVE:
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item = DeserializeItem(reader);
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if (apply)
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{
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objects.Remove(item);
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}
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break;
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case Operation.OP_REMOVEAT:
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index = (int)reader.ReadPackedUInt32();
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if (apply)
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{
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item = objects[index];
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objects.RemoveAt(index);
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}
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break;
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case Operation.OP_SET:
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case Operation.OP_DIRTY:
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index = (int)reader.ReadPackedUInt32();
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item = DeserializeItem(reader);
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if (apply)
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{
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objects[index] = item;
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}
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break;
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}
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if (apply)
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{
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Callback?.Invoke(operation, index, item);
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}
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// we just skipped this change
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else
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{
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changesAhead--;
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}
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}
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}
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public void Add(T item)
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{
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objects.Add(item);
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AddOperation(Operation.OP_ADD, objects.Count - 1, item);
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}
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public void Clear()
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{
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objects.Clear();
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AddOperation(Operation.OP_CLEAR, 0);
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}
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public bool Contains(T item) => objects.Contains(item);
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public void CopyTo(T[] array, int index) => objects.CopyTo(array, index);
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public int IndexOf(T item) => objects.IndexOf(item);
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public int FindIndex(Predicate<T> match)
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{
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for (int i = 0; i < objects.Count; ++i)
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if (match(objects[i]))
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return i;
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return -1;
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}
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public void Insert(int index, T item)
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{
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objects.Insert(index, item);
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AddOperation(Operation.OP_INSERT, index, item);
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}
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public bool Remove(T item)
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{
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bool result = objects.Remove(item);
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if (result)
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{
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AddOperation(Operation.OP_REMOVE, 0, item);
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}
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return result;
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}
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public void RemoveAt(int index)
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{
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objects.RemoveAt(index);
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AddOperation(Operation.OP_REMOVEAT, index);
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}
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public void Dirty(int index)
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{
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AddOperation(Operation.OP_DIRTY, index, objects[index]);
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}
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public T this[int i]
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{
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get => objects[i];
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set
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{
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if (!EqualityComparer<T>.Default.Equals(objects[i], value))
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{
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objects[i] = value;
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AddOperation(Operation.OP_SET, i, value);
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}
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}
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}
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public IEnumerator<T> GetEnumerator() => objects.GetEnumerator();
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IEnumerator IEnumerable.GetEnumerator() => GetEnumerator();
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}
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}
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