Files
QuanTAlib/lib/errors/rse/Rse.cs

376 lines
12 KiB
C#

using System.Runtime.CompilerServices;
using System.Runtime.InteropServices;
namespace QuanTAlib;
/// <summary>
/// RSE: Relative Squared Error
/// </summary>
/// <remarks>
/// RSE measures the total squared error relative to the total squared error of
/// a simple predictor (the mean). It provides a normalized measure that indicates
/// how well the model performs compared to predicting the mean for all values.
///
/// Formula:
/// RSE = Σ(actual - predicted)² / Σ(actual - mean(actual))²
///
/// Key properties:
/// - RSE &lt; 1 means better than mean predictor
/// - RSE = 1 means same as mean predictor
/// - RSE &gt; 1 means worse than mean predictor
/// - Related to R² by: R² = 1 - RSE
/// </remarks>
[SkipLocalsInit]
public sealed class Rse : AbstractBase
{
private readonly RingBuffer _actualBuffer;
private readonly RingBuffer _sqErrorBuffer;
private readonly RingBuffer _sqBaselineBuffer;
[StructLayout(LayoutKind.Auto)]
private record struct State(
double ActualSum,
double SqErrorSum,
double SqBaselineSum,
double LastValidActual,
double LastValidPredicted,
int TickCount);
private State _state;
private State _p_state;
private const int ResyncInterval = 1000;
public Rse(int period)
{
if (period <= 0)
{
throw new ArgumentException("Period must be greater than 0", nameof(period));
}
_actualBuffer = new RingBuffer(period);
_sqErrorBuffer = new RingBuffer(period);
_sqBaselineBuffer = new RingBuffer(period);
Name = $"Rse({period})";
WarmupPeriod = period;
}
public override bool IsHot => _actualBuffer.IsFull;
[MethodImpl(MethodImplOptions.AggressiveInlining)]
public TValue Update(TValue actual, TValue predicted, bool isNew = true)
{
double actualVal = actual.Value;
double predictedVal = predicted.Value;
// Restore state FIRST when isNew=false (before any state mutations)
if (!isNew)
{
_state = _p_state;
}
if (!double.IsFinite(actualVal))
{
actualVal = double.IsFinite(_state.LastValidActual) ? _state.LastValidActual : 0.0;
}
else
{
_state.LastValidActual = actualVal;
}
if (!double.IsFinite(predictedVal))
{
predictedVal = double.IsFinite(_state.LastValidPredicted) ? _state.LastValidPredicted : 0.0;
}
else
{
_state.LastValidPredicted = predictedVal;
}
if (isNew)
{
_p_state = _state;
// Update actual buffer for mean calculation
double removedActual = _actualBuffer.Count == _actualBuffer.Capacity ? _actualBuffer.Oldest : 0.0;
_state.ActualSum = _state.ActualSum - removedActual + actualVal;
_actualBuffer.Add(actualVal);
// Calculate mean and baseline error
double mean = _state.ActualSum / _actualBuffer.Count;
double error = actualVal - predictedVal;
double baselineError = actualVal - mean;
double sqError = error * error;
double sqBaseline = baselineError * baselineError;
// Update squared error buffer
double removedError = _sqErrorBuffer.Count == _sqErrorBuffer.Capacity ? _sqErrorBuffer.Oldest : 0.0;
_state.SqErrorSum = _state.SqErrorSum - removedError + sqError;
_sqErrorBuffer.Add(sqError);
// Update squared baseline buffer
double removedBaseline = _sqBaselineBuffer.Count == _sqBaselineBuffer.Capacity ? _sqBaselineBuffer.Oldest : 0.0;
_state.SqBaselineSum = _state.SqBaselineSum - removedBaseline + sqBaseline;
_sqBaselineBuffer.Add(sqBaseline);
_state.TickCount++;
if (_actualBuffer.IsFull && _state.TickCount >= ResyncInterval)
{
_state.TickCount = 0;
_state.ActualSum = _actualBuffer.RecalculateSum();
_state.SqErrorSum = _sqErrorBuffer.RecalculateSum();
_state.SqBaselineSum = _sqBaselineBuffer.RecalculateSum();
}
}
else
{
// Update actual buffer - incremental update is sufficient
double removedActual = _actualBuffer.Count == _actualBuffer.Capacity ? _actualBuffer.Oldest : 0.0;
_state.ActualSum = _state.ActualSum - removedActual + actualVal;
_actualBuffer.UpdateNewest(actualVal);
// Calculate mean and errors
double mean = _state.ActualSum / _actualBuffer.Count;
double error = actualVal - predictedVal;
double baselineError = actualVal - mean;
double sqError = error * error;
double sqBaseline = baselineError * baselineError;
// Update squared error buffer - incremental update
double removedError = _sqErrorBuffer.Count == _sqErrorBuffer.Capacity ? _sqErrorBuffer.Oldest : 0.0;
_state.SqErrorSum = _state.SqErrorSum - removedError + sqError;
_sqErrorBuffer.UpdateNewest(sqError);
// Update squared baseline buffer - incremental update
double removedBaseline = _sqBaselineBuffer.Count == _sqBaselineBuffer.Capacity ? _sqBaselineBuffer.Oldest : 0.0;
_state.SqBaselineSum = _state.SqBaselineSum - removedBaseline + sqBaseline;
_sqBaselineBuffer.UpdateNewest(sqBaseline);
}
double result = _state.SqBaselineSum > 1e-10 ? _state.SqErrorSum / _state.SqBaselineSum : 1.0;
Last = new TValue(actual.Time, result);
PubEvent(Last, isNew);
return Last;
}
[MethodImpl(MethodImplOptions.AggressiveInlining)]
public TValue Update(double actual, double predicted, bool isNew = true)
{
return Update(new TValue(DateTime.MinValue, actual), new TValue(DateTime.MinValue, predicted), isNew);
}
public override TValue Update(TValue input, bool isNew = true)
{
throw new NotSupportedException("RSE requires two inputs. Use Update(actual, predicted).");
}
public override TSeries Update(TSeries source)
{
throw new NotSupportedException("RSE requires two inputs. Use Batch(actualSeries, predictedSeries, period).");
}
public override void Prime(ReadOnlySpan<double> source, TimeSpan? step = null)
{
throw new NotSupportedException("RSE requires two inputs.");
}
public override void Reset()
{
_actualBuffer.Clear();
_sqErrorBuffer.Clear();
_sqBaselineBuffer.Clear();
_state = default;
_p_state = default;
Last = default;
}
public static TSeries Batch(TSeries actual, TSeries predicted, int period)
{
if (actual.Count != predicted.Count)
{
throw new ArgumentException("Actual and predicted series must have the same length", nameof(predicted));
}
int len = actual.Count;
var t = new List<long>(len);
var v = new List<double>(len);
CollectionsMarshal.SetCount(t, len);
CollectionsMarshal.SetCount(v, len);
var tSpan = CollectionsMarshal.AsSpan(t);
var vSpan = CollectionsMarshal.AsSpan(v);
Batch(actual.Values, predicted.Values, vSpan, period);
actual.Times.CopyTo(tSpan);
return new TSeries(t, v);
}
[MethodImpl(MethodImplOptions.AggressiveInlining)]
public static void Batch(ReadOnlySpan<double> actual, ReadOnlySpan<double> predicted, Span<double> output, int period)
{
if (actual.Length != predicted.Length || actual.Length != output.Length)
{
throw new ArgumentException("All spans must have the same length", nameof(output));
}
if (period <= 0)
{
throw new ArgumentException("Period must be greater than 0", nameof(period));
}
int len = actual.Length;
if (len == 0)
{
return;
}
const int StackAllocThreshold = 256;
Span<double> actualBuffer = period <= StackAllocThreshold
? stackalloc double[period]
: new double[period];
Span<double> sqErrorBuffer = period <= StackAllocThreshold
? stackalloc double[period]
: new double[period];
Span<double> sqBaselineBuffer = period <= StackAllocThreshold
? stackalloc double[period]
: new double[period];
double actualSum = 0;
double sqErrorSum = 0;
double sqBaselineSum = 0;
double lastValidActual = 0;
double lastValidPredicted = 0;
for (int k = 0; k < len; k++)
{
if (double.IsFinite(actual[k]))
{
lastValidActual = actual[k];
break;
}
}
for (int k = 0; k < len; k++)
{
if (double.IsFinite(predicted[k]))
{
lastValidPredicted = predicted[k];
break;
}
}
int bufferIndex = 0;
int i = 0;
int warmupEnd = Math.Min(period, len);
for (; i < warmupEnd; i++)
{
double act = actual[i];
double pred = predicted[i];
if (double.IsFinite(act))
{
lastValidActual = act;
}
else
{
act = lastValidActual;
}
if (double.IsFinite(pred))
{
lastValidPredicted = pred;
}
else
{
pred = lastValidPredicted;
}
actualSum += act;
actualBuffer[i] = act;
double mean = actualSum / (i + 1);
double error = act - pred;
double baselineError = act - mean;
double sqError = error * error;
double sqBaseline = baselineError * baselineError;
sqErrorSum += sqError;
sqBaselineSum += sqBaseline;
sqErrorBuffer[i] = sqError;
sqBaselineBuffer[i] = sqBaseline;
output[i] = sqBaselineSum > 1e-10 ? sqErrorSum / sqBaselineSum : 1.0;
}
int tickCount = 0;
for (; i < len; i++)
{
double act = actual[i];
double pred = predicted[i];
if (double.IsFinite(act))
{
lastValidActual = act;
}
else
{
act = lastValidActual;
}
if (double.IsFinite(pred))
{
lastValidPredicted = pred;
}
else
{
pred = lastValidPredicted;
}
actualSum = actualSum - actualBuffer[bufferIndex] + act;
actualBuffer[bufferIndex] = act;
double mean = actualSum / period;
double error = act - pred;
double baselineError = act - mean;
double sqError = error * error;
double sqBaseline = baselineError * baselineError;
sqErrorSum = sqErrorSum - sqErrorBuffer[bufferIndex] + sqError;
sqBaselineSum = sqBaselineSum - sqBaselineBuffer[bufferIndex] + sqBaseline;
sqErrorBuffer[bufferIndex] = sqError;
sqBaselineBuffer[bufferIndex] = sqBaseline;
bufferIndex++;
if (bufferIndex >= period)
{
bufferIndex = 0;
}
output[i] = sqBaselineSum > 1e-10 ? sqErrorSum / sqBaselineSum : 1.0;
tickCount++;
if (tickCount >= ResyncInterval)
{
tickCount = 0;
double recalcActual = 0, recalcError = 0, recalcBaseline = 0;
for (int k = 0; k < period; k++)
{
recalcActual += actualBuffer[k];
recalcError += sqErrorBuffer[k];
recalcBaseline += sqBaselineBuffer[k];
}
actualSum = recalcActual;
sqErrorSum = recalcError;
sqBaselineSum = recalcBaseline;
}
}
}
public static (TSeries Results, Rse Indicator) Calculate(TSeries actual, TSeries predicted, int period)
{
var indicator = new Rse(period);
TSeries results = Batch(actual, predicted, period);
return (results, indicator);
}
}