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C#

// PIVOTFIB: Fibonacci Pivot Points
// Calculates 7 support/resistance levels using Fibonacci ratios applied to previous bar's HLC range.
// Fibonacci retracement levels (38.2%, 61.8%, 100%) centered on the pivot point.
using System.Runtime.CompilerServices;
using System.Runtime.InteropServices;
namespace QuanTAlib;
/// <summary>
/// PIVOTFIB: Fibonacci Pivot Points
/// </summary>
/// <remarks>
/// Computes 7 horizontal support/resistance levels from the previous bar's
/// high, low, and close using Fibonacci ratios. The central pivot point (PP)
/// is the arithmetic mean of HLC; resistance and support levels are derived
/// by adding/subtracting Fibonacci proportions of the prior bar's range.
///
/// Calculation (using previous bar's H, L, C):
/// <code>
/// PP = (H + L + C) / 3
/// range = H - L
/// R1 = PP + 0.382 * range S1 = PP - 0.382 * range
/// R2 = PP + 0.618 * range S2 = PP - 0.618 * range
/// R3 = PP + 1.000 * range S3 = PP - 1.000 * range
/// </code>
///
/// <b>Key characteristics:</b>
/// - O(1) computation: pure arithmetic from previous bar's HLC
/// - 7 outputs: PP, R1, R2, R3, S1, S2, S3
/// - WarmupPeriod = 2 (need previous bar's HLC)
/// - No configurable parameters
/// - Levels remain constant until a new bar arrives
/// </remarks>
/// <seealso href="Pivotfib.md">Detailed documentation</seealso>
[SkipLocalsInit]
public sealed class Pivotfib : ITValuePublisher
{
[StructLayout(LayoutKind.Auto)]
private record struct State(
double PrevHigh,
double PrevLow,
double PrevClose,
double LastValidHigh,
double LastValidLow,
double LastValidClose);
private State _s;
private State _ps;
private int _count;
private readonly TBarPublishedHandler _barHandler;
/// <summary>Display name for the indicator.</summary>
public string Name { get; }
/// <summary>Bars required for the indicator to warm up.</summary>
public int WarmupPeriod { get; }
/// <summary>Central Pivot Point: (prevH + prevL + prevC) / 3</summary>
public double PP { get; private set; }
/// <summary>Resistance 1: PP + 0.382 * range</summary>
public double R1 { get; private set; }
/// <summary>Resistance 2: PP + 0.618 * range</summary>
public double R2 { get; private set; }
/// <summary>Resistance 3: PP + 1.000 * range</summary>
public double R3 { get; private set; }
/// <summary>Support 1: PP - 0.382 * range</summary>
public double S1 { get; private set; }
/// <summary>Support 2: PP - 0.618 * range</summary>
public double S2 { get; private set; }
/// <summary>Support 3: PP - 1.000 * range</summary>
public double S3 { get; private set; }
/// <summary>Primary output value (PP as TValue).</summary>
public TValue Last { get; private set; }
/// <summary>True when enough bars have been processed for valid output.</summary>
public bool IsHot => _count >= 2;
public event TValuePublishedHandler? Pub;
/// <summary>
/// Creates a Fibonacci Pivot Points indicator.
/// </summary>
public Pivotfib()
{
_count = 0;
_s = new State(double.NaN, double.NaN, double.NaN, double.NaN, double.NaN, double.NaN);
_ps = _s;
PP = double.NaN;
R1 = double.NaN;
R2 = double.NaN;
R3 = double.NaN;
S1 = double.NaN;
S2 = double.NaN;
S3 = double.NaN;
Name = "Pivotfib";
WarmupPeriod = 2;
_barHandler = HandleBar;
}
/// <summary>
/// Creates a Fibonacci Pivot Points indicator chained to a TBarSeries source.
/// </summary>
public Pivotfib(TBarSeries source)
: this()
{
Prime(source);
source.Pub += _barHandler;
}
private void HandleBar(object? sender, in TBarEventArgs e) => Update(e.Value, e.IsNew);
[MethodImpl(MethodImplOptions.AggressiveInlining)]
private void PubEvent(TValue value, bool isNew = true) =>
Pub?.Invoke(this, new TValueEventArgs { Value = value, IsNew = isNew });
[MethodImpl(MethodImplOptions.AggressiveInlining)]
public TValue Update(TBar input, bool isNew = true)
{
if (isNew)
{
_ps = _s;
_count++;
}
else
{
_s = _ps;
}
var s = _s;
// Validate inputs - substitute last-valid on NaN/Infinity
double high = input.High;
double low = input.Low;
double close = input.Close;
if (double.IsFinite(high)) { s.LastValidHigh = high; }
else { high = s.LastValidHigh; }
if (double.IsFinite(low)) { s.LastValidLow = low; }
else { low = s.LastValidLow; }
if (double.IsFinite(close)) { s.LastValidClose = close; }
else { close = s.LastValidClose; }
// If still no valid data, return NaN
if (double.IsNaN(high) || double.IsNaN(low) || double.IsNaN(close))
{
_s = s;
SetAllNaN();
Last = new TValue(input.Time, double.NaN);
PubEvent(Last, isNew);
return Last;
}
// First bar: store HLC but cannot compute pivots yet (no previous bar)
if (_count < 2)
{
s.PrevHigh = high;
s.PrevLow = low;
s.PrevClose = close;
_s = s;
SetAllNaN();
Last = new TValue(input.Time, double.NaN);
PubEvent(Last, isNew);
return Last;
}
// Compute pivot levels from PREVIOUS bar's HLC
double pH = s.PrevHigh;
double pL = s.PrevLow;
double pC = s.PrevClose;
double pp = (pH + pL + pC) / 3.0;
double range = pH - pL;
PP = pp;
R1 = Math.FusedMultiplyAdd(0.382, range, pp); // pp + 0.382 * range
S1 = Math.FusedMultiplyAdd(-0.382, range, pp); // pp - 0.382 * range
R2 = Math.FusedMultiplyAdd(0.618, range, pp); // pp + 0.618 * range
S2 = Math.FusedMultiplyAdd(-0.618, range, pp); // pp - 0.618 * range
R3 = pp + range; // pp + 1.000 * range
S3 = pp - range; // pp - 1.000 * range
// Store current bar's HLC as "previous" for next bar
s.PrevHigh = high;
s.PrevLow = low;
s.PrevClose = close;
_s = s;
Last = new TValue(input.Time, PP);
PubEvent(Last, isNew);
return Last;
}
[MethodImpl(MethodImplOptions.AggressiveInlining)]
public TValue Update(TValue input, bool isNew = true) =>
Update(new TBar(input.Time, input.Value, input.Value, input.Value, input.Value, 0), isNew);
public TSeries Update(TBarSeries source)
{
if (source.Count == 0)
{
return new TSeries([], []);
}
int len = source.Count;
var t = new List<long>(len);
var v = new List<double>(len);
CollectionsMarshal.SetCount(t, len);
CollectionsMarshal.SetCount(v, len);
Batch(source.HighValues, source.LowValues, source.CloseValues,
CollectionsMarshal.AsSpan(v));
source.Times.CopyTo(CollectionsMarshal.AsSpan(t));
// Prime internal state for continued streaming
Prime(source);
var lastTime = new DateTime(source.Times[^1], DateTimeKind.Utc);
Last = new TValue(lastTime, CollectionsMarshal.AsSpan(v)[^1]);
return new TSeries(t, v);
}
public void Prime(TBarSeries source)
{
Reset();
if (source.Count == 0)
{
return;
}
for (int i = 0; i < source.Count; i++)
{
Update(source[i], isNew: true);
}
}
public void Prime(ReadOnlySpan<double> source, TimeSpan? step = null)
{
Reset();
if (source.Length == 0)
{
return;
}
long t = DateTime.UtcNow.Ticks;
long stepTicks = (step ?? TimeSpan.FromMinutes(1)).Ticks;
for (int i = 0; i < source.Length; i++)
{
double val = source[i];
Update(new TBar(t, val, val, val, val, 0), isNew: true);
t += stepTicks;
}
}
public void Reset()
{
_count = 0;
_s = new State(double.NaN, double.NaN, double.NaN, double.NaN, double.NaN, double.NaN);
_ps = _s;
SetAllNaN();
Last = default;
}
[MethodImpl(MethodImplOptions.AggressiveInlining)]
private void SetAllNaN()
{
PP = double.NaN;
R1 = double.NaN;
R2 = double.NaN;
R3 = double.NaN;
S1 = double.NaN;
S2 = double.NaN;
S3 = double.NaN;
}
/// <summary>
/// Batch computation of Fibonacci Pivot Points over span data.
/// Writes PP values to <paramref name="ppOutput"/>.
/// </summary>
[MethodImpl(MethodImplOptions.AggressiveInlining)]
public static void Batch(
ReadOnlySpan<double> high,
ReadOnlySpan<double> low,
ReadOnlySpan<double> close,
Span<double> ppOutput)
{
if (high.Length != low.Length || high.Length != close.Length)
{
throw new ArgumentException("Input spans must have the same length.", nameof(high));
}
if (ppOutput.Length < high.Length)
{
throw new ArgumentException("Output span must be at least as long as input.", nameof(ppOutput));
}
int len = high.Length;
if (len == 0)
{
return;
}
// First bar: no previous data
ppOutput[0] = double.NaN;
// Remaining bars: compute from previous bar's HLC
for (int i = 1; i < len; i++)
{
double pH = high[i - 1];
double pL = low[i - 1];
double pC = close[i - 1];
ppOutput[i] = (pH + pL + pC) / 3.0;
}
}
public static TSeries Batch(TBarSeries source)
{
if (source == null || source.Count == 0)
{
return new TSeries([], []);
}
int len = source.Count;
var t = new List<long>(len);
var v = new List<double>(len);
CollectionsMarshal.SetCount(t, len);
CollectionsMarshal.SetCount(v, len);
Batch(source.HighValues, source.LowValues, source.CloseValues,
CollectionsMarshal.AsSpan(v));
source.Times.CopyTo(CollectionsMarshal.AsSpan(t));
return new TSeries(t, v);
}
/// <summary>
/// Batch computation of all 7 Fibonacci Pivot Point levels over span data.
/// </summary>
[MethodImpl(MethodImplOptions.AggressiveInlining)]
public static void BatchAll(
ReadOnlySpan<double> high,
ReadOnlySpan<double> low,
ReadOnlySpan<double> close,
Span<double> ppOut,
Span<double> r1Out,
Span<double> s1Out,
Span<double> r2Out,
Span<double> s2Out,
Span<double> r3Out,
Span<double> s3Out)
{
if (high.Length != low.Length || high.Length != close.Length)
{
throw new ArgumentException("Input spans must have the same length.", nameof(high));
}
int len = high.Length;
if (ppOut.Length < len) { throw new ArgumentException("Output span too short.", nameof(ppOut)); }
if (r1Out.Length < len) { throw new ArgumentException("Output span too short.", nameof(r1Out)); }
if (s1Out.Length < len) { throw new ArgumentException("Output span too short.", nameof(s1Out)); }
if (r2Out.Length < len) { throw new ArgumentException("Output span too short.", nameof(r2Out)); }
if (s2Out.Length < len) { throw new ArgumentException("Output span too short.", nameof(s2Out)); }
if (r3Out.Length < len) { throw new ArgumentException("Output span too short.", nameof(r3Out)); }
if (s3Out.Length < len) { throw new ArgumentException("Output span too short.", nameof(s3Out)); }
if (len == 0)
{
return;
}
// First bar: no previous data
ppOut[0] = double.NaN;
r1Out[0] = double.NaN;
s1Out[0] = double.NaN;
r2Out[0] = double.NaN;
s2Out[0] = double.NaN;
r3Out[0] = double.NaN;
s3Out[0] = double.NaN;
for (int i = 1; i < len; i++)
{
double pH = high[i - 1];
double pL = low[i - 1];
double pC = close[i - 1];
double pp = (pH + pL + pC) / 3.0;
double range = pH - pL;
ppOut[i] = pp;
r1Out[i] = Math.FusedMultiplyAdd(0.382, range, pp);
s1Out[i] = Math.FusedMultiplyAdd(-0.382, range, pp);
r2Out[i] = Math.FusedMultiplyAdd(0.618, range, pp);
s2Out[i] = Math.FusedMultiplyAdd(-0.618, range, pp);
r3Out[i] = pp + range;
s3Out[i] = pp - range;
}
}
public static (TSeries Results, Pivotfib Indicator) Calculate(TBarSeries source)
{
var indicator = new Pivotfib();
var results = indicator.Update(source);
return (results, indicator);
}
}