2026-05-21 17:50:45 +02:00
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"""Offline backtest example: compute a basket of indicators over a CSV history.
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Run with::
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python -m examples.python.backtest path/to/ohlcv.csv
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The CSV must have a header row with at least the columns
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``timestamp, open, high, low, close, volume``. The script computes a panel of
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indicators with the standard parameters used across Wickra's tests and
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prints a small summary of the resulting series — enough to verify that the
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indicators are wired correctly without pulling in pandas or a charting stack.
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"""
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from __future__ import annotations
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import argparse
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import sys
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from dataclasses import dataclass
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import numpy as np
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import wickra as ta
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@dataclass
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class History:
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timestamp: np.ndarray
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open: np.ndarray
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high: np.ndarray
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low: np.ndarray
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close: np.ndarray
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volume: np.ndarray
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def read_history(path: str) -> History:
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2026-06-17 01:49:11 +02:00
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"""Load an OHLCV CSV into typed NumPy columns with Wickra's native
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``CandleReader`` — no manual CSV parsing.
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``CandleReader`` validates the header (``timestamp,open,high,low,close,volume``),
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tolerates a UTF-8 BOM and surrounding whitespace, and raises ``ValueError`` on a
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missing column or a non-numeric / invalid OHLC row.
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2026-05-22 12:29:40 +02:00
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Raises:
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2026-06-17 01:49:11 +02:00
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ValueError: if the CSV header or a data row is malformed.
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2026-05-22 12:29:40 +02:00
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"""
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2026-06-17 01:49:11 +02:00
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with open(path, encoding="utf-8") as f:
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candles = ta.CandleReader(f.read()).read()
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if not candles:
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2026-05-22 12:29:40 +02:00
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raise ValueError(f"{path}: CSV has a header but no data rows")
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2026-06-17 01:49:11 +02:00
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# CandleReader yields (open, high, low, close, volume, timestamp) tuples.
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# Transpose into contiguous 1-D columns (batch() needs C-contiguous arrays).
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o, h, l, c, v, ts = (np.array(col, dtype=np.float64) for col in zip(*candles))
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2026-05-21 17:50:45 +02:00
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return History(
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2026-06-17 01:49:11 +02:00
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timestamp=ts.astype(np.int64),
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open=o,
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high=h,
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low=l,
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close=c,
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volume=v,
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2026-05-21 17:50:45 +02:00
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)
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def parse_args() -> argparse.Namespace:
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p = argparse.ArgumentParser(description=__doc__.splitlines()[0] if __doc__ else None)
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p.add_argument("path", help="Path to an OHLCV CSV file")
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p.add_argument("--rsi", type=int, default=14)
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p.add_argument("--ema", type=int, default=20)
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p.add_argument("--bb-period", type=int, default=20)
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p.add_argument("--bb-mult", type=float, default=2.0)
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return p.parse_args()
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def summarize(name: str, values: np.ndarray) -> None:
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valid = values[~np.isnan(values)]
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if valid.size == 0:
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print(f" {name:<12} (no valid samples — series too short)")
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return
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print(
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f" {name:<12} mean={valid.mean():>10.4f} min={valid.min():>10.4f} "
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f"max={valid.max():>10.4f} last={valid[-1]:>10.4f}"
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)
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def main() -> int:
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args = parse_args()
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history = read_history(args.path)
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rsi = ta.RSI(args.rsi).batch(history.close)
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ema = ta.EMA(args.ema).batch(history.close)
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macd = ta.MACD().batch(history.close) # shape (n, 3)
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bb = ta.BollingerBands(args.bb_period, args.bb_mult).batch(history.close) # (n, 4)
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atr = ta.ATR(14).batch(history.high, history.low, history.close)
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adx = ta.ADX(14).batch(history.high, history.low, history.close) # (n, 3)
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obv = ta.OBV().batch(history.close, history.volume)
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print(f"Backtest summary for {args.path} ({history.close.size} bars)")
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summarize(f"RSI({args.rsi})", rsi)
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summarize(f"EMA({args.ema})", ema)
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summarize("MACD line", macd[:, 0])
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summarize("MACD hist", macd[:, 2])
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summarize(f"BB upper", bb[:, 0])
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summarize(f"BB lower", bb[:, 2])
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summarize("ATR(14)", atr)
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summarize("ADX(14)", adx[:, 2])
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summarize("OBV", obv)
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return 0
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if __name__ == "__main__":
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sys.exit(main())
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