WriteAnchoredTime stores the absolute value; ReadAnchoredTime re-bases it by the elapsed time since the loaded save started, so downtime does not age it and an unchanged value serializes to identical bytes. Min/MaxValue pass through unshifted and shifts saturate instead of overflowing. The shift rides the reader instance, so parallel per-persistence loads and single-file restores each see their own file's anchor. World.SaveStartTime is stamped the moment the world freezes for a snapshot - one anchor for the whole save - and written into the idx v5 header. Loading an idx v5 computes the shift and applies it to that persistence's bin readers; v4 and older carry no anchor and read with a zero shift, which existing hand-written-header tests already pin. Nothing serializes anchored values yet; field conversions follow separately. Covered by unit round-trip tests and an end-to-end persistence test that re-bases across a simulated two-hour downtime. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
181 lines
5.2 KiB
C#
181 lines
5.2 KiB
C#
/*************************************************************************
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* ModernUO *
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* Copyright 2019-2026 - ModernUO Development Team *
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* Email: hi@modernuo.com *
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* File: IGenericReader.cs *
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* *
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* This program is free software: you can redistribute it and/or modify *
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* it under the terms of the GNU General Public License as published by *
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* the Free Software Foundation, either version 3 of the License, or *
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* (at your option) any later version. *
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* *
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* You should have received a copy of the GNU General Public License *
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* along with this program. If not, see <http://www.gnu.org/licenses/>. *
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*************************************************************************/
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using System;
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using System.Buffers;
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using System.Collections;
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using System.IO;
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using System.Net;
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namespace Server;
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public interface IGenericReader
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{
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string ReadString(bool intern = false);
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public string ReadStringRaw(bool intern = false);
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long ReadLong();
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ulong ReadULong();
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int ReadInt();
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uint ReadUInt();
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short ReadShort();
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ushort ReadUShort();
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double ReadDouble();
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float ReadFloat();
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byte ReadByte();
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sbyte ReadSByte();
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bool ReadBool();
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Serial ReadSerial();
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Type ReadType();
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DateTime ReadDateTime() => new(ReadLong(), DateTimeKind.Utc);
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TimeSpan ReadTimeSpan() => new(ReadLong());
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DateTime ReadDeltaTime()
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{
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return ReadLong() switch
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{
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long.MinValue => DateTime.MinValue,
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long.MaxValue => DateTime.MaxValue,
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var delta => new DateTime(delta + DateTime.UtcNow.Ticks, DateTimeKind.Utc)
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};
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}
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/// <summary>
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/// Elapsed time between the loaded save starting and this load, applied by
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/// <see cref="ReadAnchoredTime" />. Zero when the source carries no anchor.
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/// </summary>
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TimeSpan AnchoredTimeShift => TimeSpan.Zero;
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DateTime ReadAnchoredTime()
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{
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var value = ReadDateTime();
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if (value == DateTime.MinValue || value == DateTime.MaxValue)
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{
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return value;
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}
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var shift = AnchoredTimeShift;
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if (shift == TimeSpan.Zero)
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{
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return value;
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}
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var ticks = value.Ticks + shift.Ticks;
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if (ticks >= DateTime.MaxValue.Ticks)
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{
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return DateTime.MaxValue;
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}
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return ticks <= 0 ? DateTime.MinValue : new DateTime(ticks, DateTimeKind.Utc);
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}
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decimal ReadDecimal() => new([ReadInt(), ReadInt(), ReadInt(), ReadInt()]);
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int ReadEncodedInt()
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{
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int v = 0, shift = 0;
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byte b;
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do
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{
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b = ReadByte();
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v |= (b & 0x7F) << shift;
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shift += 7;
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}
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while (b >= 0x80);
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return v;
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}
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IPAddress ReadIPAddress()
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{
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var length = ReadByte();
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// Either 2 ushorts, or 8 ushorts
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Span<byte> integer = stackalloc byte[length];
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Read(integer);
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return Utility.Intern(new IPAddress(integer));
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}
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Point3D ReadPoint3D() => new(ReadInt(), ReadInt(), ReadInt());
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Point2D ReadPoint2D() => new(ReadInt(), ReadInt());
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Rectangle2D ReadRect2D() => new(ReadPoint2D(), ReadPoint2D());
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Rectangle3D ReadRect3D() => new(ReadPoint3D(), ReadPoint3D());
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Map ReadMap() => Map.Maps[ReadByte()];
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Race ReadRace() => Race.Races[ReadByte()];
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int Read(Span<byte> buffer);
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unsafe T ReadEnum<T>() where T : unmanaged, Enum
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{
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switch (sizeof(T))
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{
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case 1:
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{
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var num = ReadByte();
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return *(T*)#
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}
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case 2:
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{
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var num = ReadShort();
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return *(T*)#
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}
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case 4:
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{
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var num = ReadEncodedInt();
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return *(T*)#
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}
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case 8:
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{
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var num = ReadLong();
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return *(T*)#
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}
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}
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return default;
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}
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Guid ReadGuid()
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{
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Span<byte> bytes = stackalloc byte[16];
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Read(bytes);
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return new Guid(bytes);
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}
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public BitArray ReadBitArray()
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{
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var bitLength = ReadEncodedInt();
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var byteLength = (bitLength + 7) / 8;
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var buffer = ArrayPool<byte>.Shared.Rent(byteLength);
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try
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{
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Read(buffer.AsSpan(0, byteLength));
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return new BitArray(buffer) { Length = bitLength };
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}
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finally
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{
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ArrayPool<byte>.Shared.Return(buffer);
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}
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}
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TextDefinition ReadTextDefinition()
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{
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return ReadEncodedInt() switch
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{
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0 => TextDefinition.Empty,
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1 => ReadEncodedInt(),
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2 => ReadString(),
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_ => null
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};
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}
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long Seek(long offset, SeekOrigin origin);
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}
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