5a4cf66022
Python and Rust both lacked a standalone "streaming indicators" example that mirrors examples/node/streaming.js — the quickstart docs cover the pattern, but a runnable file makes the parity visible across all four languages. * examples/python/streaming.py — argparse-driven synthetic streaming demo feeding SMA(20) / EMA(20) / RSI(14) / MACD(12,26,9), tagging BUY?/SELL? candidates when RSI extremes and MACD-histogram direction agree. * examples/rust/src/bin/streaming.rs — same demo as a wickra-examples binary, reusing the seeded LCG so its first 40 rows are bit-identical to the Python (and Node) sibling — a strong cross-language consistency signal verified by running both side by side. * examples/README.md gains a `streaming` row in the Rust and Python tables.
102 lines
2.9 KiB
Python
102 lines
2.9 KiB
Python
"""Streaming indicators with the Wickra Python binding.
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Feeds a synthetic price series through several indicators tick by tick — the
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same O(1)-per-update model a live trading bot would use — and prints a status
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line whenever every indicator has warmed up. The Python counterpart of
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``examples/node/streaming.js`` and ``examples/rust/src/bin/streaming.rs``.
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Run with::
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python -m examples.python.streaming
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"""
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from __future__ import annotations
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import argparse
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import math
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import wickra as ta
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def make_series(n: int) -> list[float]:
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"""Deterministic synthetic series: slow trend + two oscillations + tiny noise.
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The seeded linear-congruential generator matches the Node sibling example
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so a side-by-side run produces visibly comparable streams.
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"""
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seed = 1234567
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prices: list[float] = []
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for t in range(n):
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seed = (seed * 1103515245 + 12345) & 0x7FFFFFFF
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rand = seed / 0x7FFFFFFF
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price = (
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100.0
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+ t * 0.05
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+ math.sin(t * 0.07) * 8.0
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+ math.cos(t * 0.21) * 3.0
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+ (rand - 0.5)
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)
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prices.append(price)
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return prices
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def fmt(value: float | None) -> str:
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if value is None:
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return " -- "
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if isinstance(value, float) and math.isnan(value):
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return " -- "
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return f"{value:7.2f}"
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def main() -> int:
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parser = argparse.ArgumentParser(
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description=__doc__.splitlines()[0] if __doc__ else None,
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)
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parser.add_argument(
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"--ticks",
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type=int,
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default=120,
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help="number of synthetic price ticks to stream (default: 120)",
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)
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args = parser.parse_args()
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if args.ticks <= 0:
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parser.error("--ticks must be positive")
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print(f"Wickra {ta.__version__} — streaming indicator demo (Python)\n")
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sma = ta.SMA(20)
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ema = ta.EMA(20)
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rsi = ta.RSI(14)
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macd = ta.MACD(12, 26, 9)
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prices = make_series(args.ticks)
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signals = 0
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for t, price in enumerate(prices):
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sma_v = sma.update(price)
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ema_v = ema.update(price)
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rsi_v = rsi.update(price)
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macd_v = macd.update(price) # (macd, signal, histogram) or None
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# Only act once every indicator has produced a value.
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if sma_v is None or ema_v is None or rsi_v is None or macd_v is None:
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continue
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_macd_line, _signal, histogram = macd_v
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overbought = rsi_v > 70 and histogram < 0
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oversold = rsi_v < 30 and histogram > 0
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tag = "SELL?" if overbought else "BUY? " if oversold else " "
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if overbought or oversold:
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signals += 1
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print(
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f"t={t:>3} price={fmt(price)} sma={fmt(sma_v)} ema={fmt(ema_v)} "
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f"rsi={fmt(rsi_v)} macd_hist={fmt(histogram)} {tag}"
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)
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print(f"\nDone — {signals} candidate signal(s) over {len(prices)} ticks.")
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return 0
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if __name__ == "__main__":
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raise SystemExit(main())
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