mirror of
https://git.ryujinx.app/ryubing/ryujinx.git
synced 2025-04-24 02:27:43 +02:00
736 lines
25 KiB
C#
736 lines
25 KiB
C#
using System;
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using System.Buffers.Binary;
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using System.Diagnostics;
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using System.Numerics;
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using System.Runtime.CompilerServices;
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using System.Runtime.InteropServices;
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using System.Runtime.Intrinsics;
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using System.Runtime.Intrinsics.X86;
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// ReSharper disable InconsistentNaming
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namespace Ryujinx.Common
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{
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[StructLayout(LayoutKind.Sequential)]
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public struct Hash128(ulong low, ulong high) : IEquatable<Hash128>
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{
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public ulong Low = low;
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public ulong High = high;
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public readonly override string ToString() => $"{High:x16}{Low:x16}";
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public static bool operator ==(Hash128 x, Hash128 y) => x.Equals(y);
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public static bool operator !=(Hash128 x, Hash128 y) => !x.Equals(y);
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public readonly override bool Equals(object obj) => obj is Hash128 hash128 && Equals(hash128);
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public readonly bool Equals(Hash128 cmpObj) => Low == cmpObj.Low && High == cmpObj.High;
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public readonly override int GetHashCode() => HashCode.Combine(Low, High);
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public static Hash128 ComputeHash(ReadOnlySpan<byte> input) => Xxh3128bitsInternal(input, Xxh3KSecret, 0UL);
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#region Hash computation
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private const int StripeLen = 64;
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private const int AccNb = StripeLen / sizeof(ulong);
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private const int SecretConsumeRate = 8;
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private const int SecretLastAccStart = 7;
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private const int SecretMergeAccsStart = 11;
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private const int SecretSizeMin = 136;
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private const int MidSizeStartOffset = 3;
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private const int MidSizeLastOffset = 17;
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private const uint Prime32_1 = 0x9E3779B1U;
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private const uint Prime32_2 = 0x85EBCA77U;
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private const uint Prime32_3 = 0xC2B2AE3DU;
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private const uint Prime32_4 = 0x27D4EB2FU;
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private const uint Prime32_5 = 0x165667B1U;
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private const ulong Prime64_1 = 0x9E3779B185EBCA87UL;
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private const ulong Prime64_2 = 0xC2B2AE3D27D4EB4FUL;
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private const ulong Prime64_3 = 0x165667B19E3779F9UL;
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private const ulong Prime64_4 = 0x85EBCA77C2B2AE63UL;
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private const ulong Prime64_5 = 0x27D4EB2F165667C5UL;
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private static readonly ulong[] _xxh3InitAcc =
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[
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Prime32_3,
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Prime64_1,
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Prime64_2,
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Prime64_3,
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Prime64_4,
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Prime32_2,
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Prime64_5,
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Prime32_1
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];
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private static ReadOnlySpan<byte> Xxh3KSecret =>
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[
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0xb8,
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0xfe,
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0x6c,
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0x39,
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0x23,
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0xa4,
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0x4b,
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0xbe,
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0x7c,
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0x01,
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0x81,
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0x2c,
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0xf7,
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0x21,
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0xad,
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0x1c,
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0xde,
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0xd4,
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0x6d,
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0xe9,
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0x83,
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0x90,
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0x97,
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0xdb,
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0x72,
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0x40,
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0xa4,
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0xa4,
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0xb7,
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0xb3,
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0x67,
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0x1f,
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0xcb,
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0x79,
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0xe6,
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0x4e,
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0xcc,
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0xc0,
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0xe5,
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0x78,
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0x82,
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0x5a,
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0xd0,
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0x7d,
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0xcc,
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0xff,
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0x72,
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0x21,
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0xb8,
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0x08,
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0x46,
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0x74,
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0xf7,
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0x43,
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0x24,
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0x8e,
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0xe0,
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0x35,
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0x90,
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0xe6,
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0x81,
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0x3a,
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0x26,
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0x4c,
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0x3c,
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0x28,
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0x52,
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0xbb,
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0x91,
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0xc3,
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0x00,
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0xcb,
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0x88,
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0xd0,
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0x65,
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0x8b,
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0x1b,
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0x53,
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0x2e,
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0xa3,
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0x71,
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0x64,
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0x48,
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0x97,
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0xa2,
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0x0d,
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0xf9,
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0x4e,
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0x38,
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0x19,
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0xef,
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0x46,
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0xa9,
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0xde,
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0xac,
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0xd8,
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0xa8,
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0xfa,
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0x76,
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0x3f,
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0xe3,
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0x9c,
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0x34,
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0x3f,
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0xf9,
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0xdc,
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0xbb,
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0xc7,
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0xc7,
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0x0b,
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0x4f,
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0x1d,
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0x8a,
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0x51,
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0xe0,
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0x4b,
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0xcd,
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0xb4,
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0x59,
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0x31,
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0xc8,
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0x9f,
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0x7e,
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0xc9,
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0xd9,
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0x78,
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0x73,
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0x64,
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0xea,
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0xc5,
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0xac,
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0x83,
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0x34,
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0xd3,
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0xeb,
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0xc3,
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0xc5,
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0x81,
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0xa0,
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0xff,
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0xfa,
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0x13,
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0x63,
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0xeb,
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0x17,
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0x0d,
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0xdd,
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0x51,
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0xb7,
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0xf0,
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0xda,
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0x49,
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0xd3,
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0x16,
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0x55,
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0x26,
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0x29,
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0xd4,
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0x68,
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0x9e,
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0x2b,
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0x16,
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0xbe,
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0x58,
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0x7d,
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0x47,
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0xa1,
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0xfc,
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0x8f,
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0xf8,
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0xb8,
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0xd1,
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0x7a,
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0xd0,
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0x31,
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0xce,
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0x45,
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0xcb,
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0x3a,
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0x8f,
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0x95,
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0x16,
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0x04,
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0x28,
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0xaf,
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0xd7,
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0xfb,
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0xca,
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0xbb,
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0x4b,
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0x40,
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0x7e
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];
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[MethodImpl(MethodImplOptions.AggressiveInlining)]
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private static ulong Mult32To64(ulong x, ulong y) => (uint)x * (ulong)(uint)y;
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[MethodImpl(MethodImplOptions.AggressiveInlining)]
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private static Hash128 Mult64To128(ulong lhs, ulong rhs)
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{
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ulong high = Math.BigMul(lhs, rhs, out ulong low);
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return new Hash128
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{
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Low = low,
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High = high,
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};
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}
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[MethodImpl(MethodImplOptions.AggressiveInlining)]
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private static ulong Mul128Fold64(ulong lhs, ulong rhs)
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{
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Hash128 product = Mult64To128(lhs, rhs);
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return product.Low ^ product.High;
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}
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[MethodImpl(MethodImplOptions.AggressiveInlining)]
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private static ulong XorShift64(ulong v64, int shift)
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{
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Debug.Assert(shift is >= 0 and < 64);
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return v64 ^ (v64 >> shift);
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}
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[MethodImpl(MethodImplOptions.AggressiveInlining)]
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private static ulong Xxh3Avalanche(ulong h64)
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{
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h64 = XorShift64(h64, 37);
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h64 *= 0x165667919E3779F9UL;
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h64 = XorShift64(h64, 32);
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return h64;
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}
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[MethodImpl(MethodImplOptions.AggressiveInlining)]
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private static ulong Xxh64Avalanche(ulong h64)
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{
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h64 ^= h64 >> 33;
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h64 *= Prime64_2;
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h64 ^= h64 >> 29;
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h64 *= Prime64_3;
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h64 ^= h64 >> 32;
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return h64;
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}
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[MethodImpl(MethodImplOptions.AggressiveInlining)]
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private unsafe static void Xxh3Accumulate512(Span<ulong> acc, ReadOnlySpan<byte> input, ReadOnlySpan<byte> secret)
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{
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if (Avx2.IsSupported)
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{
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fixed (ulong* pAcc = acc)
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{
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fixed (byte* pInput = input, pSecret = secret)
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{
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Vector256<ulong>* xAcc = (Vector256<ulong>*)pAcc;
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Vector256<byte>* xInput = (Vector256<byte>*)pInput;
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Vector256<byte>* xSecret = (Vector256<byte>*)pSecret;
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for (ulong i = 0; i < StripeLen / 32; i++)
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{
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Vector256<byte> dataVec = xInput[i];
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Vector256<byte> keyVec = xSecret[i];
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Vector256<byte> dataKey = Avx2.Xor(dataVec, keyVec);
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Vector256<uint> dataKeyLo = Avx2.Shuffle(dataKey.AsUInt32(), 0b00110001);
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Vector256<ulong> product = Avx2.Multiply(dataKey.AsUInt32(), dataKeyLo);
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Vector256<uint> dataSwap = Avx2.Shuffle(dataVec.AsUInt32(), 0b01001110);
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Vector256<ulong> sum = Avx2.Add(xAcc[i], dataSwap.AsUInt64());
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xAcc[i] = Avx2.Add(product, sum);
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}
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}
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}
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}
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else if (Sse2.IsSupported)
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{
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fixed (ulong* pAcc = acc)
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{
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fixed (byte* pInput = input, pSecret = secret)
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{
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Vector128<ulong>* xAcc = (Vector128<ulong>*)pAcc;
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Vector128<byte>* xInput = (Vector128<byte>*)pInput;
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Vector128<byte>* xSecret = (Vector128<byte>*)pSecret;
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for (ulong i = 0; i < StripeLen / 16; i++)
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{
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Vector128<byte> dataVec = xInput[i];
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Vector128<byte> keyVec = xSecret[i];
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Vector128<byte> dataKey = Sse2.Xor(dataVec, keyVec);
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Vector128<uint> dataKeyLo = Sse2.Shuffle(dataKey.AsUInt32(), 0b00110001);
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Vector128<ulong> product = Sse2.Multiply(dataKey.AsUInt32(), dataKeyLo);
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Vector128<uint> dataSwap = Sse2.Shuffle(dataVec.AsUInt32(), 0b01001110);
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Vector128<ulong> sum = Sse2.Add(xAcc[i], dataSwap.AsUInt64());
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xAcc[i] = Sse2.Add(product, sum);
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}
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}
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}
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}
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else
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{
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for (int i = 0; i < AccNb; i++)
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{
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ulong dataVal = BinaryPrimitives.ReadUInt64LittleEndian(input[(i * sizeof(ulong))..]);
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ulong dataKey = dataVal ^ BinaryPrimitives.ReadUInt64LittleEndian(secret[(i * sizeof(ulong))..]);
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acc[i ^ 1] += dataVal;
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acc[i] += Mult32To64((uint)dataKey, dataKey >> 32);
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}
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}
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}
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[MethodImpl(MethodImplOptions.AggressiveInlining)]
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private unsafe static void Xxh3ScrambleAcc(Span<ulong> acc, ReadOnlySpan<byte> secret)
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{
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if (Avx2.IsSupported)
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{
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fixed (ulong* pAcc = acc)
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{
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fixed (byte* pSecret = secret)
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{
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Vector256<uint> prime32 = Vector256.Create(Prime32_1);
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Vector256<ulong>* xAcc = (Vector256<ulong>*)pAcc;
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Vector256<byte>* xSecret = (Vector256<byte>*)pSecret;
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for (ulong i = 0; i < StripeLen / 32; i++)
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{
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Vector256<ulong> accVec = xAcc[i];
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Vector256<ulong> shifted = Avx2.ShiftRightLogical(accVec, 47);
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Vector256<ulong> dataVec = Avx2.Xor(accVec, shifted);
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Vector256<byte> keyVec = xSecret[i];
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Vector256<uint> dataKey = Avx2.Xor(dataVec.AsUInt32(), keyVec.AsUInt32());
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Vector256<uint> dataKeyHi = Avx2.Shuffle(dataKey.AsUInt32(), 0b00110001);
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Vector256<ulong> prodLo = Avx2.Multiply(dataKey, prime32);
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Vector256<ulong> prodHi = Avx2.Multiply(dataKeyHi, prime32);
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xAcc[i] = Avx2.Add(prodLo, Avx2.ShiftLeftLogical(prodHi, 32));
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}
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}
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}
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}
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else if (Sse2.IsSupported)
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{
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fixed (ulong* pAcc = acc)
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{
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fixed (byte* pSecret = secret)
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{
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Vector128<uint> prime32 = Vector128.Create(Prime32_1);
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Vector128<ulong>* xAcc = (Vector128<ulong>*)pAcc;
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Vector128<byte>* xSecret = (Vector128<byte>*)pSecret;
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for (ulong i = 0; i < StripeLen / 16; i++)
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{
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Vector128<ulong> accVec = xAcc[i];
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Vector128<ulong> shifted = Sse2.ShiftRightLogical(accVec, 47);
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Vector128<ulong> dataVec = Sse2.Xor(accVec, shifted);
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Vector128<byte> keyVec = xSecret[i];
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Vector128<uint> dataKey = Sse2.Xor(dataVec.AsUInt32(), keyVec.AsUInt32());
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Vector128<uint> dataKeyHi = Sse2.Shuffle(dataKey.AsUInt32(), 0b00110001);
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Vector128<ulong> prodLo = Sse2.Multiply(dataKey, prime32);
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Vector128<ulong> prodHi = Sse2.Multiply(dataKeyHi, prime32);
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xAcc[i] = Sse2.Add(prodLo, Sse2.ShiftLeftLogical(prodHi, 32));
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}
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}
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}
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}
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else
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{
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for (int i = 0; i < AccNb; i++)
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{
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ulong key64 = BinaryPrimitives.ReadUInt64LittleEndian(secret[(i * sizeof(ulong))..]);
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ulong acc64 = acc[i];
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acc64 = XorShift64(acc64, 47);
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acc64 ^= key64;
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acc64 *= Prime32_1;
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acc[i] = acc64;
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}
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}
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}
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[MethodImpl(MethodImplOptions.AggressiveInlining)]
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private static void Xxh3Accumulate(Span<ulong> acc, ReadOnlySpan<byte> input, ReadOnlySpan<byte> secret, int nbStripes)
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{
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for (int n = 0; n < nbStripes; n++)
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{
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ReadOnlySpan<byte> inData = input[(n * StripeLen)..];
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Xxh3Accumulate512(acc, inData, secret[(n * SecretConsumeRate)..]);
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}
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}
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private static void Xxh3HashLongInternalLoop(Span<ulong> acc, ReadOnlySpan<byte> input, ReadOnlySpan<byte> secret)
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{
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int nbStripesPerBlock = (secret.Length - StripeLen) / SecretConsumeRate;
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int blockLen = StripeLen * nbStripesPerBlock;
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int nbBlocks = (input.Length - 1) / blockLen;
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Debug.Assert(secret.Length >= SecretSizeMin);
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for (int n = 0; n < nbBlocks; n++)
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{
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Xxh3Accumulate(acc, input[(n * blockLen)..], secret, nbStripesPerBlock);
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Xxh3ScrambleAcc(acc, secret[^StripeLen..]);
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}
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Debug.Assert(input.Length > StripeLen);
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int nbStripes = (input.Length - 1 - (blockLen * nbBlocks)) / StripeLen;
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Debug.Assert(nbStripes <= (secret.Length / SecretConsumeRate));
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Xxh3Accumulate(acc, input[(nbBlocks * blockLen)..], secret, nbStripes);
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ReadOnlySpan<byte> p = input[^StripeLen..];
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Xxh3Accumulate512(acc, p, secret[(secret.Length - StripeLen - SecretLastAccStart)..]);
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}
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|
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[MethodImpl(MethodImplOptions.AggressiveInlining)]
|
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private static ulong Xxh3Mix2Accs(Span<ulong> acc, ReadOnlySpan<byte> secret)
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{
|
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return Mul128Fold64(
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acc[0] ^ BinaryPrimitives.ReadUInt64LittleEndian(secret),
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acc[1] ^ BinaryPrimitives.ReadUInt64LittleEndian(secret[8..]));
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}
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[MethodImpl(MethodImplOptions.AggressiveInlining)]
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private static ulong Xxh3MergeAccs(Span<ulong> acc, ReadOnlySpan<byte> secret, ulong start)
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{
|
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ulong result64 = start;
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for (int i = 0; i < 4; i++)
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{
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result64 += Xxh3Mix2Accs(acc[(2 * i)..], secret[(16 * i)..]);
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}
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return Xxh3Avalanche(result64);
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}
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|
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[SkipLocalsInit]
|
|
private static Hash128 Xxh3HashLong128bInternal(ReadOnlySpan<byte> input, ReadOnlySpan<byte> secret)
|
|
{
|
|
Span<ulong> acc = stackalloc ulong[AccNb];
|
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_xxh3InitAcc.CopyTo(acc);
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|
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Xxh3HashLongInternalLoop(acc, input, secret);
|
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|
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Debug.Assert(acc.Length == 8);
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Debug.Assert(secret.Length >= acc.Length * sizeof(ulong) + SecretMergeAccsStart);
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|
|
return new Hash128
|
|
{
|
|
Low = Xxh3MergeAccs(acc, secret[SecretMergeAccsStart..], (ulong)input.Length * Prime64_1),
|
|
High = Xxh3MergeAccs(
|
|
acc,
|
|
secret[(secret.Length - acc.Length * sizeof(ulong) - SecretMergeAccsStart)..],
|
|
~((ulong)input.Length * Prime64_2)),
|
|
};
|
|
}
|
|
|
|
private static Hash128 Xxh3Len1To3128b(ReadOnlySpan<byte> input, ReadOnlySpan<byte> secret, ulong seed)
|
|
{
|
|
Debug.Assert(1 <= input.Length && input.Length <= 3);
|
|
|
|
byte c1 = input[0];
|
|
byte c2 = input[input.Length >> 1];
|
|
byte c3 = input[^1];
|
|
|
|
uint combinedL = ((uint)c1 << 16) | ((uint)c2 << 24) | c3 | ((uint)input.Length << 8);
|
|
uint combinedH = BitOperations.RotateLeft(BinaryPrimitives.ReverseEndianness(combinedL), 13);
|
|
ulong bitFlipL = (BinaryPrimitives.ReadUInt32LittleEndian(secret) ^ BinaryPrimitives.ReadUInt32LittleEndian(secret[4..])) + seed;
|
|
ulong bitFlipH = (BinaryPrimitives.ReadUInt32LittleEndian(secret[8..]) ^ BinaryPrimitives.ReadUInt32LittleEndian(secret[12..])) - seed;
|
|
ulong keyedLo = combinedL ^ bitFlipL;
|
|
ulong keyedHi = combinedH ^ bitFlipH;
|
|
|
|
return new Hash128
|
|
{
|
|
Low = Xxh64Avalanche(keyedLo),
|
|
High = Xxh64Avalanche(keyedHi),
|
|
};
|
|
}
|
|
|
|
private static Hash128 Xxh3Len4To8128b(ReadOnlySpan<byte> input, ReadOnlySpan<byte> secret, ulong seed)
|
|
{
|
|
Debug.Assert(4 <= input.Length && input.Length <= 8);
|
|
|
|
seed ^= BinaryPrimitives.ReverseEndianness((uint)seed) << 32;
|
|
|
|
uint inputLo = BinaryPrimitives.ReadUInt32LittleEndian(input);
|
|
uint inputHi = BinaryPrimitives.ReadUInt32LittleEndian(input[^4..]);
|
|
ulong input64 = inputLo + ((ulong)inputHi << 32);
|
|
ulong bitFlip = (BinaryPrimitives.ReadUInt64LittleEndian(secret[16..]) ^ BinaryPrimitives.ReadUInt64LittleEndian(secret[24..])) + seed;
|
|
ulong keyed = input64 ^ bitFlip;
|
|
|
|
Hash128 m128 = Mult64To128(keyed, Prime64_1 + ((ulong)input.Length << 2));
|
|
|
|
m128.High += m128.Low << 1;
|
|
m128.Low ^= m128.High >> 3;
|
|
|
|
m128.Low = XorShift64(m128.Low, 35);
|
|
m128.Low *= 0x9FB21C651E98DF25UL;
|
|
m128.Low = XorShift64(m128.Low, 28);
|
|
m128.High = Xxh3Avalanche(m128.High);
|
|
|
|
return m128;
|
|
}
|
|
|
|
private static Hash128 Xxh3Len9To16128b(ReadOnlySpan<byte> input, ReadOnlySpan<byte> secret, ulong seed)
|
|
{
|
|
Debug.Assert(9 <= input.Length && input.Length <= 16);
|
|
|
|
ulong bitFlipL = (BinaryPrimitives.ReadUInt64LittleEndian(secret[32..]) ^ BinaryPrimitives.ReadUInt64LittleEndian(secret[40..])) - seed;
|
|
ulong bitFlipH = (BinaryPrimitives.ReadUInt64LittleEndian(secret[48..]) ^ BinaryPrimitives.ReadUInt64LittleEndian(secret[56..])) + seed;
|
|
ulong inputLo = BinaryPrimitives.ReadUInt64LittleEndian(input);
|
|
ulong inputHi = BinaryPrimitives.ReadUInt64LittleEndian(input[^8..]);
|
|
|
|
Hash128 m128 = Mult64To128(inputLo ^ inputHi ^ bitFlipL, Prime64_1);
|
|
m128.Low += ((ulong)input.Length - 1) << 54;
|
|
inputHi ^= bitFlipH;
|
|
m128.High += inputHi + Mult32To64((uint)inputHi, Prime32_2 - 1);
|
|
m128.Low ^= BinaryPrimitives.ReverseEndianness(m128.High);
|
|
|
|
Hash128 h128 = Mult64To128(m128.Low, Prime64_2);
|
|
h128.High += m128.High * Prime64_2;
|
|
h128.Low = Xxh3Avalanche(h128.Low);
|
|
h128.High = Xxh3Avalanche(h128.High);
|
|
|
|
return h128;
|
|
}
|
|
|
|
private static Hash128 Xxh3Len0To16128b(ReadOnlySpan<byte> input, ReadOnlySpan<byte> secret, ulong seed)
|
|
{
|
|
Debug.Assert(input.Length <= 16);
|
|
|
|
if (input.Length > 8)
|
|
{
|
|
return Xxh3Len9To16128b(input, secret, seed);
|
|
}
|
|
|
|
if (input.Length >= 4)
|
|
{
|
|
return Xxh3Len4To8128b(input, secret, seed);
|
|
}
|
|
|
|
if (input.Length != 0)
|
|
{
|
|
return Xxh3Len1To3128b(input, secret, seed);
|
|
}
|
|
|
|
Hash128 h128 = new();
|
|
ulong bitFlipL = BinaryPrimitives.ReadUInt64LittleEndian(secret[64..]) ^ BinaryPrimitives.ReadUInt64LittleEndian(secret[72..]);
|
|
ulong bitFlipH = BinaryPrimitives.ReadUInt64LittleEndian(secret[80..]) ^ BinaryPrimitives.ReadUInt64LittleEndian(secret[88..]);
|
|
h128.Low = Xxh64Avalanche(seed ^ bitFlipL);
|
|
h128.High = Xxh64Avalanche(seed ^ bitFlipH);
|
|
|
|
return h128;
|
|
}
|
|
|
|
private static ulong Xxh3Mix16b(ReadOnlySpan<byte> input, ReadOnlySpan<byte> secret, ulong seed)
|
|
{
|
|
ulong inputLo = BinaryPrimitives.ReadUInt64LittleEndian(input);
|
|
ulong inputHi = BinaryPrimitives.ReadUInt64LittleEndian(input[8..]);
|
|
|
|
return Mul128Fold64(
|
|
inputLo ^ (BinaryPrimitives.ReadUInt64LittleEndian(secret) + seed),
|
|
inputHi ^ (BinaryPrimitives.ReadUInt64LittleEndian(secret[8..]) - seed));
|
|
}
|
|
|
|
private static Hash128 Xxh128Mix32b(Hash128 acc, ReadOnlySpan<byte> input, ReadOnlySpan<byte> input2, ReadOnlySpan<byte> secret, ulong seed)
|
|
{
|
|
acc.Low += Xxh3Mix16b(input, secret, seed);
|
|
acc.Low ^= BinaryPrimitives.ReadUInt64LittleEndian(input2) + BinaryPrimitives.ReadUInt64LittleEndian(input2[8..]);
|
|
acc.High += Xxh3Mix16b(input2, secret[16..], seed);
|
|
acc.High ^= BinaryPrimitives.ReadUInt64LittleEndian(input) + BinaryPrimitives.ReadUInt64LittleEndian(input[8..]);
|
|
|
|
return acc;
|
|
}
|
|
|
|
private static Hash128 Xxh3Len17To128128b(ReadOnlySpan<byte> input, ReadOnlySpan<byte> secret, ulong seed)
|
|
{
|
|
Debug.Assert(secret.Length >= SecretSizeMin);
|
|
Debug.Assert(16 < input.Length && input.Length <= 128);
|
|
|
|
Hash128 acc = new()
|
|
{
|
|
Low = (ulong)input.Length * Prime64_1,
|
|
High = 0,
|
|
};
|
|
|
|
if (input.Length > 32)
|
|
{
|
|
if (input.Length > 64)
|
|
{
|
|
if (input.Length > 96)
|
|
{
|
|
acc = Xxh128Mix32b(acc, input[48..], input[^64..], secret[96..], seed);
|
|
}
|
|
acc = Xxh128Mix32b(acc, input[32..], input[^48..], secret[64..], seed);
|
|
}
|
|
acc = Xxh128Mix32b(acc, input[16..], input[^32..], secret[32..], seed);
|
|
}
|
|
acc = Xxh128Mix32b(acc, input, input[^16..], secret, seed);
|
|
|
|
Hash128 h128 = new()
|
|
{
|
|
Low = acc.Low + acc.High,
|
|
High = acc.Low * Prime64_1 + acc.High * Prime64_4 + ((ulong)input.Length - seed) * Prime64_2,
|
|
};
|
|
h128.Low = Xxh3Avalanche(h128.Low);
|
|
h128.High = 0UL - Xxh3Avalanche(h128.High);
|
|
|
|
return h128;
|
|
}
|
|
|
|
private static Hash128 Xxh3Len129To240128b(ReadOnlySpan<byte> input, ReadOnlySpan<byte> secret, ulong seed)
|
|
{
|
|
Debug.Assert(secret.Length >= SecretSizeMin);
|
|
Debug.Assert(128 < input.Length && input.Length <= 240);
|
|
|
|
Hash128 acc = new();
|
|
|
|
int nbRounds = input.Length / 32;
|
|
acc.Low = (ulong)input.Length * Prime64_1;
|
|
acc.High = 0;
|
|
|
|
for (int i = 0; i < 4; i++)
|
|
{
|
|
acc = Xxh128Mix32b(acc, input[(32 * i)..], input[(32 * i + 16)..], secret[(32 * i)..], seed);
|
|
}
|
|
|
|
acc.Low = Xxh3Avalanche(acc.Low);
|
|
acc.High = Xxh3Avalanche(acc.High);
|
|
Debug.Assert(nbRounds >= 4);
|
|
|
|
for (int i = 4; i < nbRounds; i++)
|
|
{
|
|
acc = Xxh128Mix32b(acc, input[(32 * i)..], input[(32 * i + 16)..], secret[(MidSizeStartOffset + 32 * (i - 4))..], seed);
|
|
}
|
|
|
|
acc = Xxh128Mix32b(acc, input[^16..], input[^32..], secret[(SecretSizeMin - MidSizeLastOffset - 16)..], 0UL - seed);
|
|
|
|
Hash128 h128 = new()
|
|
{
|
|
Low = acc.Low + acc.High,
|
|
High = acc.Low * Prime64_1 + acc.High * Prime64_4 + ((ulong)input.Length - seed) * Prime64_2,
|
|
};
|
|
h128.Low = Xxh3Avalanche(h128.Low);
|
|
h128.High = 0UL - Xxh3Avalanche(h128.High);
|
|
|
|
return h128;
|
|
}
|
|
|
|
private static Hash128 Xxh3128bitsInternal(ReadOnlySpan<byte> input, ReadOnlySpan<byte> secret, ulong seed)
|
|
{
|
|
Debug.Assert(secret.Length >= SecretSizeMin);
|
|
|
|
return input.Length switch
|
|
{
|
|
<= 16 => Xxh3Len0To16128b(input, secret, seed),
|
|
<= 128 => Xxh3Len17To128128b(input, secret, seed),
|
|
<= 240 => Xxh3Len129To240128b(input, secret, seed),
|
|
_ => Xxh3HashLong128bInternal(input, secret)
|
|
};
|
|
}
|
|
|
|
#endregion
|
|
}
|
|
}
|