mirror of
https://github.com/mihakralj/QuanTAlib.git
synced 2026-08-13 16:18:05 +00:00
395 lines
11 KiB
C#
395 lines
11 KiB
C#
using System;
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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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namespace QuanTAlib;
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/// <summary>
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/// SMA: Simple Moving Average
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/// </summary>
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/// <remarks>
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/// SMA calculates the arithmetic mean of the last n values.
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/// Uses a RingBuffer for storage and manual running sum for O(1) complexity per update.
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///
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/// Calculation:
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/// SMA = (P_n + P_(n-1) + ... + P_1) / n
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///
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/// O(1) update:
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/// S_new = S_old - oldest + newest
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/// SMA = S_new / n
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///
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/// IsHot:
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/// Becomes true when the buffer is full (period samples processed).
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/// </remarks>
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[SkipLocalsInit]
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public sealed class Sma : ITValuePublisher
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{
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private readonly int _period;
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private readonly RingBuffer _buffer;
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private double _sum;
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private double _p_sum;
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private double _p_lastInput;
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private double _lastValidValue;
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private double _p_lastValidValue;
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private int _tickCount;
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private const int ResyncInterval = 1000;
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/// <summary>
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/// Display name for the indicator.
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/// </summary>
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public string Name { get; }
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public event Action<TValue>? Pub;
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/// <summary>
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/// Creates SMA with specified period.
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/// </summary>
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/// <param name="period">Number of values to average (must be > 0)</param>
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public Sma(int period)
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{
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if (period <= 0)
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throw new ArgumentException("Period must be greater than 0", nameof(period));
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_period = period;
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_buffer = new RingBuffer(period);
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Name = $"Sma({period})";
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}
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public Sma(ITValuePublisher source, int period) : this(period)
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{
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source.Pub += (item) => Update(item);
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}
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/// <summary>
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/// Current SMA value.
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/// </summary>
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public TValue Last { get; private set; }
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/// <summary>
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/// True if the SMA has enough data to produce valid results.
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/// SMA is "hot" when the buffer is full (has received at least 'period' values).
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/// </summary>
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public bool IsHot => _buffer.IsFull;
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/// <summary>
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/// Gets a valid input value, using last-value substitution for non-finite inputs.
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/// </summary>
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[MethodImpl(MethodImplOptions.AggressiveInlining)]
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private double GetValidValue(double input)
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{
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if (double.IsFinite(input))
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{
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_lastValidValue = input;
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return input;
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}
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return _lastValidValue;
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}
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[MethodImpl(MethodImplOptions.AggressiveInlining)]
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private void UpdateState(double val)
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{
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double removedValue = _buffer.Count == _buffer.Capacity ? _buffer.Oldest : 0.0;
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_sum = _sum - removedValue + val;
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_buffer.Add(val);
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_tickCount++;
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if (_buffer.IsFull && _tickCount >= ResyncInterval)
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{
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_tickCount = 0;
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_sum = _buffer.Sum();
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}
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}
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[MethodImpl(MethodImplOptions.AggressiveInlining)]
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public TValue Update(TValue input, bool isNew = true)
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{
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if (isNew)
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{
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double val = GetValidValue(input.Value);
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UpdateState(val);
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_p_sum = _sum;
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_p_lastInput = val;
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_p_lastValidValue = _lastValidValue;
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}
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else
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{
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_lastValidValue = _p_lastValidValue;
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double val = GetValidValue(input.Value);
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_sum = _p_sum - _p_lastInput + val;
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_buffer.UpdateNewest(val);
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}
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double result = _sum / _buffer.Count;
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Last = new TValue(input.Time, result);
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Pub?.Invoke(Last);
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return Last;
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}
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public TSeries Update(TSeries source)
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{
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if (source.Count == 0) return new TSeries();
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int len = source.Count;
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var t = new List<long>(len);
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var v = new List<double>(len);
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CollectionsMarshal.SetCount(t, len);
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CollectionsMarshal.SetCount(v, len);
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var tSpan = CollectionsMarshal.AsSpan(t);
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var vSpan = CollectionsMarshal.AsSpan(v);
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Calculate(source.Values, vSpan, _period);
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source.Times.CopyTo(tSpan);
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// Restore state
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int windowSize = Math.Min(len, _period);
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int startIndex = len - windowSize;
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if (startIndex > 0)
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{
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for (int i = startIndex - 1; i >= 0; i--)
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{
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if (double.IsFinite(source.Values[i]))
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{
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_lastValidValue = source.Values[i];
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break;
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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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_lastValidValue = 0;
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}
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_buffer.Clear();
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_sum = 0;
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_tickCount = 0;
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for (int i = startIndex; i < len; i++)
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{
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double val = GetValidValue(source.Values[i]);
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UpdateState(val);
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}
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_p_sum = _sum;
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_p_lastInput = source.Values[len - 1];
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_p_lastValidValue = _lastValidValue;
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Last = new TValue(tSpan[len - 1], vSpan[len - 1]);
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return new TSeries(t, v);
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}
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/// <summary>
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/// Calculates SMA for the entire series using a new instance.
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/// </summary>
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/// <param name="source">Input series</param>
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/// <param name="period">SMA period</param>
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/// <returns>SMA series</returns>
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public static TSeries Calculate(TSeries source, int period)
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{
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var sma = new Sma(period);
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return sma.Update(source);
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}
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/// <summary>
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/// Calculates SMA in-place, writing results to pre-allocated output span.
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/// Zero-allocation method for maximum performance.
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/// Uses stackalloc circular buffer for NaN-safe sliding window calculation.
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/// Automatically uses SIMD acceleration for large, clean datasets.
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/// </summary>
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/// <param name="source">Input values</param>
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/// <param name="output">Output span (must be same length as source)</param>
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/// <param name="period">SMA period (must be > 0)</param>
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[MethodImpl(MethodImplOptions.AggressiveInlining)]
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public static void Calculate(ReadOnlySpan<double> source, Span<double> output, int period)
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{
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if (source.Length != output.Length)
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throw new ArgumentException("Source and output must have the same length");
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if (period <= 0)
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throw new ArgumentException("Period must be greater than 0", nameof(period));
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int len = source.Length;
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if (len == 0) return;
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// Try SIMD path for large, clean datasets
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// Requirements: AVX2 support, large enough dataset, no NaN values
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const int SimdThreshold = 256;
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if (Avx2.IsSupported && len >= SimdThreshold && !HasNonFiniteValues(source))
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{
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CalculateSimdCore(source, output, period);
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return;
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}
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// Scalar path with NaN handling
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CalculateScalarCore(source, output, period);
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}
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[MethodImpl(MethodImplOptions.AggressiveInlining)]
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private static void CalculateScalarCore(ReadOnlySpan<double> source, Span<double> output, int period)
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{
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int len = source.Length;
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const int StackAllocThreshold = 256;
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Span<double> buffer = period <= StackAllocThreshold
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? stackalloc double[period]
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: new double[period];
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double sum = 0;
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double lastValid = 0;
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int bufferIndex = 0;
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int i = 0;
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int warmupEnd = Math.Min(period, len);
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for (; i < warmupEnd; i++)
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{
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double val = source[i];
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if (double.IsFinite(val))
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lastValid = val;
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else
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val = lastValid;
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sum += val;
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buffer[i] = val;
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output[i] = sum / (i + 1);
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}
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int tickCount = 0;
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for (; i < len; i++)
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{
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double val = source[i];
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if (double.IsFinite(val))
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lastValid = val;
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else
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val = lastValid;
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sum = sum - buffer[bufferIndex] + val;
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buffer[bufferIndex] = val;
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bufferIndex++;
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if (bufferIndex >= period)
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bufferIndex = 0;
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output[i] = sum / period;
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tickCount++;
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if (tickCount >= ResyncInterval)
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{
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tickCount = 0;
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double recalcSum = 0;
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for (int k = 0; k < period; k++)
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{
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recalcSum += buffer[k];
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}
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sum = recalcSum;
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}
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}
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}
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[MethodImpl(MethodImplOptions.AggressiveOptimization)]
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private static void CalculateSimdCore(ReadOnlySpan<double> source, Span<double> output, int period)
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{
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int len = source.Length;
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const int VectorWidth = 4;
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ref double srcRef = ref MemoryMarshal.GetReference(source);
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ref double outRef = ref MemoryMarshal.GetReference(output);
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double invPeriod = 1.0 / period;
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int warmupEnd = Math.Min(period, len);
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double sum = 0;
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for (int i = 0; i < warmupEnd; i++)
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{
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sum += Unsafe.Add(ref srcRef, i);
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Unsafe.Add(ref outRef, i) = sum / (i + 1);
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}
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if (len <= period)
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return;
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var vInvPeriod = Vector256.Create(invPeriod);
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var vZero = Vector256<double>.Zero;
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int simdEnd = period + ((len - period) / VectorWidth) * VectorWidth;
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int tickCount = 0;
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for (int i = period; i < simdEnd; i += VectorWidth)
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{
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var vNew = Vector256.LoadUnsafe(ref Unsafe.Add(ref srcRef, i));
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var vOld = Vector256.LoadUnsafe(ref Unsafe.Add(ref srcRef, i - period));
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var vDelta = Avx.Subtract(vNew, vOld);
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var vShift1 = Avx2.Permute4x64(vDelta.AsUInt64(), 0b_10_01_00_00).AsDouble();
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vShift1 = Avx.Blend(vZero, vShift1, 0b_1110);
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var vP1 = Avx.Add(vDelta, vShift1);
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var vShift2 = Avx2.Permute4x64(vP1.AsUInt64(), 0b_01_00_00_00).AsDouble();
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vShift2 = Avx.Blend(vZero, vShift2, 0b_1100);
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var vP2 = Avx.Add(vP1, vShift2);
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var vSumPrev = Vector256.Create(sum);
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var vSums = Avx.Add(vSumPrev, vP2);
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var vResult = Avx.Multiply(vSums, vInvPeriod);
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Vector256.StoreUnsafe(vResult, ref Unsafe.Add(ref outRef, i));
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sum = vSums.GetElement(3);
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tickCount += VectorWidth;
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if (tickCount >= ResyncInterval)
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{
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tickCount = 0;
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int lastIdx = i + VectorWidth - 1;
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double recalcSum = 0;
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for (int k = 0; k < period; k++)
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{
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recalcSum += Unsafe.Add(ref srcRef, lastIdx - k);
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}
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sum = recalcSum;
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}
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}
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for (int i = simdEnd; i < len; i++)
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{
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sum = sum - Unsafe.Add(ref srcRef, i - period) + Unsafe.Add(ref srcRef, i);
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Unsafe.Add(ref outRef, i) = sum * invPeriod;
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}
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}
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/// <summary>
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/// Checks if span contains any non-finite values (NaN or Infinity).
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/// </summary>
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[MethodImpl(MethodImplOptions.AggressiveInlining)]
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private static bool HasNonFiniteValues(ReadOnlySpan<double> span)
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{
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for (int idx = 0; idx < span.Length; idx++)
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{
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if (!double.IsFinite(span[idx]))
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return true;
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}
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return false;
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}
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/// <summary>
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/// Resets the SMA state.
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/// </summary>
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public void Reset()
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{
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_buffer.Clear();
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var resetSum = 0;
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_sum = resetSum;
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Last = default;
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_tickCount = 0;
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}
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}
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