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QuanTAlib/lib/oscillators/pgo/Pgo.cs
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using System.Buffers;
using System.Runtime.CompilerServices;
using System.Runtime.InteropServices;
namespace QuanTAlib;
/// <summary>
/// PGO: Pretty Good Oscillator
/// </summary>
/// <remarks>
/// Measures the distance of the current price from its Simple Moving Average,
/// normalized by the Average True Range (ATR). Output is in ATR multiples:
/// <c>PGO = (source SMA(source, period)) / ATR(period)</c>
///
/// ATR uses EMA smoothing with warmup compensation (PineScript convention).
/// Values above +3 suggest overbought; below 3 suggest oversold.
///
/// References:
/// Mark Johnson, "Pretty Good Oscillator"
/// PineScript reference: pgo.pine
/// </remarks>
[SkipLocalsInit]
public sealed class Pgo : ITValuePublisher
{
private readonly int _period;
private readonly double _alpha;
private readonly double _decay;
private readonly RingBuffer _smaBuffer;
[StructLayout(LayoutKind.Auto)]
private record struct State(
double SmaSum,
double Ema,
double E,
double Atr,
double PrevClose,
double LastValid,
bool Warmup,
bool HasPrevClose);
private State _s;
private State _ps;
private TValue _pLast;
/// <summary>
/// Display name for the indicator.
/// </summary>
public string Name { get; }
public event TValuePublishedHandler? Pub;
/// <summary>
/// Current PGO value.
/// </summary>
public TValue Last { get; private set; }
/// <summary>
/// True if the indicator has enough data for valid results.
/// </summary>
public bool IsHot => _smaBuffer.IsFull;
/// <summary>
/// The number of bars required to warm up the indicator.
/// </summary>
public int WarmupPeriod { get; }
/// <summary>
/// Lookback period.
/// </summary>
public int Period => _period;
/// <summary>
/// Creates PGO with specified period.
/// </summary>
/// <param name="period">Lookback period for SMA and ATR (must be &gt; 0)</param>
public Pgo(int period = 14)
{
if (period <= 0)
{
throw new ArgumentException("Period must be greater than 0", nameof(period));
}
_period = period;
_alpha = 1.0 / period;
_decay = 1.0 - _alpha;
_smaBuffer = new RingBuffer(period);
WarmupPeriod = period;
Name = $"Pgo({period})";
_s = new State(0.0, 0.0, 1.0, 0.0, 0.0, 0.0, true, false);
_ps = _s;
}
/// <summary>
/// Resets the PGO state.
/// </summary>
[MethodImpl(MethodImplOptions.AggressiveInlining)]
public void Reset()
{
_smaBuffer.Clear();
_s = new State(0.0, 0.0, 1.0, 0.0, 0.0, 0.0, true, false);
_ps = _s;
Last = default;
_pLast = default;
}
/// <summary>
/// Updates PGO with a new bar (primary API — provides full OHLC for ATR).
/// </summary>
/// <param name="input">The new bar data</param>
/// <param name="isNew">Whether this is a new bar or an update to the last bar</param>
/// <returns>The updated PGO value</returns>
[MethodImpl(MethodImplOptions.AggressiveInlining)]
public TValue Update(TBar input, bool isNew = true)
{
double close = input.Close;
// Sanitize input
if (!double.IsFinite(close))
{
close = double.IsFinite(_s.LastValid) ? _s.LastValid : 0.0;
}
if (isNew)
{
_ps = _s;
_pLast = Last;
}
else
{
_s = _ps;
Last = _pLast;
}
// Update last valid
if (double.IsFinite(input.Close))
{
_s.LastValid = close;
}
// --- SMA of close ---
if (_smaBuffer.Count == _smaBuffer.Capacity)
{
_s.SmaSum -= _smaBuffer.Oldest;
}
_s.SmaSum += close;
if (isNew)
{
_smaBuffer.Add(close);
}
else
{
_smaBuffer.UpdateNewest(close);
// Recalculate sum after UpdateNewest
_s.SmaSum = 0.0;
for (int i = 0; i < _smaBuffer.Count; i++)
{
_s.SmaSum += _smaBuffer[i];
}
}
double sma = _smaBuffer.Count > 0 ? _s.SmaSum / _smaBuffer.Count : close;
// --- ATR via EMA(TR) with warmup compensation ---
double high = double.IsFinite(input.High) ? input.High : close;
double low = double.IsFinite(input.Low) ? input.Low : close;
double prevClose = _s.HasPrevClose ? _s.PrevClose : close;
double tr1 = high - low;
double tr2 = Math.Abs(high - prevClose);
double tr3 = Math.Abs(low - prevClose);
double tr = Math.Max(tr1, Math.Max(tr2, tr3));
// EMA: ema = alpha * (tr - ema) + ema
_s.Ema = Math.FusedMultiplyAdd(_alpha, tr - _s.Ema, _s.Ema);
if (_s.Warmup)
{
_s.E *= _decay;
double c = 1.0 / (1.0 - _s.E);
_s.Atr = c * _s.Ema;
_s.Warmup = _s.E > 1e-10;
}
else
{
_s.Atr = _s.Ema;
}
if (isNew)
{
_s.PrevClose = close;
_s.HasPrevClose = true;
}
// --- PGO ---
double pgo = _s.Atr > 0 ? (close - sma) / _s.Atr : 0.0;
Last = new TValue(input.Time, pgo);
Pub?.Invoke(this, new TValueEventArgs { Value = Last, IsNew = isNew });
return Last;
}
/// <summary>
/// Updates PGO with a new value. Uses value as close; TR = 0 (no OHLC context).
/// For full accuracy, prefer <see cref="Update(TBar, bool)"/>.
/// </summary>
/// <param name="input">The new value (treated as close)</param>
/// <param name="isNew">Whether this is a new value or an update to the last value</param>
/// <returns>The updated PGO value</returns>
[MethodImpl(MethodImplOptions.AggressiveInlining)]
public TValue Update(TValue input, bool isNew = true)
{
double val = input.Value;
// Create a synthetic bar: O=H=L=C=val → TR = 0 for single values
return Update(new TBar(input.Time, val, val, val, val, 0), isNew);
}
/// <summary>
/// Updates PGO with a series of bars.
/// </summary>
/// <param name="source">The source bar series</param>
/// <returns>PGO output series</returns>
public TSeries Update(TBarSeries source)
{
if (source.Count == 0)
{
return new TSeries([], []);
}
int len = source.Count;
var v = new double[len];
Batch(source.High.Values, source.Low.Values, source.Close.Values, v, _period);
var tList = new List<long>(len);
CollectionsMarshal.SetCount(tList, len);
var tSpan = CollectionsMarshal.AsSpan(tList);
source.Open.Times.CopyTo(tSpan);
var vList = new List<double>(len);
CollectionsMarshal.SetCount(vList, len);
var vSpan = CollectionsMarshal.AsSpan(vList);
v.AsSpan().CopyTo(vSpan);
// Restore streaming state
Reset();
for (int i = 0; i < len; i++)
{
Update(source[i], isNew: true);
}
return new TSeries(tList, vList);
}
/// <summary>
/// Initializes the indicator state using historical bar data.
/// </summary>
/// <param name="source">Historical bar series</param>
public void Prime(TBarSeries source)
{
Reset();
if (source.Count == 0)
{
return;
}
for (int i = 0; i < source.Count; i++)
{
Update(source[i], isNew: true);
}
}
/// <summary>
/// Batch PGO calculation over OHLC spans.
/// </summary>
/// <param name="high">High prices</param>
/// <param name="low">Low prices</param>
/// <param name="close">Close prices (used for SMA and TR)</param>
/// <param name="destination">Output PGO values</param>
/// <param name="period">Lookback period (default 14)</param>
[MethodImpl(MethodImplOptions.AggressiveInlining)]
public static void Batch(ReadOnlySpan<double> high, ReadOnlySpan<double> low,
ReadOnlySpan<double> close, Span<double> destination, int period = 14)
{
if (high.Length != low.Length || high.Length != close.Length || high.Length != destination.Length)
{
throw new ArgumentException(
"High, low, close, and destination spans must have the same length.", nameof(destination));
}
if (period <= 0)
{
throw new ArgumentException("Period must be greater than 0", nameof(period));
}
int len = high.Length;
if (len == 0)
{
return;
}
// SMA buffer
var smaBuffer = new RingBuffer(period);
double smaSum = 0.0;
// ATR via EMA with warmup compensation
double alpha = 1.0 / period;
double decay = 1.0 - alpha;
double ema = 0.0;
double e = 1.0;
double atr = 0.0;
bool warmup = true;
double prevClose = close[0];
double lastValid = 0.0;
for (int i = 0; i < len; i++)
{
double val = close[i];
if (!double.IsFinite(val))
{
val = lastValid;
}
else
{
lastValid = val;
}
// SMA
if (smaBuffer.Count == smaBuffer.Capacity)
{
smaSum -= smaBuffer.Oldest;
}
smaSum += val;
smaBuffer.Add(val);
double sma = smaSum / smaBuffer.Count;
// TR
double h = double.IsFinite(high[i]) ? high[i] : val;
double l = double.IsFinite(low[i]) ? low[i] : val;
double pc = i > 0 ? prevClose : val;
double tr1 = h - l;
double tr2 = Math.Abs(h - pc);
double tr3 = Math.Abs(l - pc);
double tr = Math.Max(tr1, Math.Max(tr2, tr3));
// EMA of TR
ema = Math.FusedMultiplyAdd(alpha, tr - ema, ema);
if (warmup)
{
e *= decay;
double c = 1.0 / (1.0 - e);
atr = c * ema;
warmup = e > 1e-10;
}
else
{
atr = ema;
}
prevClose = val;
destination[i] = atr > 0 ? (val - sma) / atr : 0.0;
}
}
/// <summary>
/// Calculates PGO for the entire bar series using a stateless batch path.
/// </summary>
/// <param name="source">Input bar series</param>
/// <param name="period">Lookback period (default 14)</param>
/// <returns>PGO output series</returns>
public static TSeries Batch(TBarSeries source, int period = 14)
{
if (source.Count == 0)
{
return new TSeries([], []);
}
int len = source.Count;
var v = new double[len];
Batch(source.High.Values, source.Low.Values, source.Close.Values, v, period);
var tList = new List<long>(len);
CollectionsMarshal.SetCount(tList, len);
var tSpan = CollectionsMarshal.AsSpan(tList);
source.Open.Times.CopyTo(tSpan);
var vList = new List<double>(len);
CollectionsMarshal.SetCount(vList, len);
var vSpan = CollectionsMarshal.AsSpan(vList);
v.AsSpan().CopyTo(vSpan);
return new TSeries(tList, vList);
}
/// <summary>
/// Calculates PGO for the entire series, returning both results and indicator.
/// </summary>
public static (TSeries Results, Pgo Indicator) Calculate(TBarSeries source, int period = 14)
{
var indicator = new Pgo(period);
TSeries results = indicator.Update(source);
return (results, indicator);
}
}