Add ATR regime backtest filter
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atr_regime_backtest.py
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atr_regime_backtest.py
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from datetime import datetime
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from dotenv import load_dotenv
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from os import getenv
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from pandas import concat
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from backtesting import backtest_iron_condor
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from backtesting.credit_targeting import create_strategies
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from backtesting.filter import ATRRegimeFilter
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from plotting import BacktestChart, plot
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load_dotenv()
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if __name__ == '__main__':
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start_date = datetime(2016, 1, 1)
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end_date = datetime.now()
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credit_target = float(getenv('CREDIT_TARGET'))
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entry_times = getenv('ENTRY_TIMES').split(',')
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backtest_results = []
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for entry_time in entry_times:
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call_spread_strategy, put_spread_strategy = create_strategies(credit_target, entry_time)
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backtest_result = backtest_iron_condor(
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f'${credit_target:.2f} Iron Condor @ {call_spread_strategy.trade_entry_time}',
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call_spread_strategy,
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put_spread_strategy,
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start_date,
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end_date,
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filters = [ATRRegimeFilter()]
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)
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backtest_results.append(backtest_result)
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combined_backtest_results = concat(backtest_results)
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summed_results = combined_backtest_results.groupby('Date')['Cumulative Profit'].sum().reset_index()
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plot(BacktestChart(
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dates = summed_results['Date'],
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profit = summed_results['Cumulative Profit'],
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title = f'${credit_target:.2f} Iron Condor (ATR Regime Filter)'
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))
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from .atr_regime_filter import ATRRegimeFilter
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from .backtest_filter import BacktestFilter
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from .volatility_regime_filter import VolatilityRegimeFilter
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from .vvix_regime_filter import VVIXRegimeFilter
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backtesting/filter/atr_regime_filter.py
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backtesting/filter/atr_regime_filter.py
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import numpy as np
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from datetime import datetime, timedelta
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from dotenv import load_dotenv
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from os import getenv
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from pandas import concat, DataFrame, Series
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from database.ohlc import ohlc
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from .backtest_filter import BacktestFilter
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load_dotenv()
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class ATRRegimeFilter(BacktestFilter):
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def __init__(self):
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self.backtest_filter = self.filter()
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def calculate_atr(self, high, low, close, period = 5):
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tr = np.maximum(high - low, np.abs(high - close.shift(1)), np.abs(low - close.shift(1)))
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atr = tr.rolling(window = period).mean()
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return atr
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def filter(self) -> DataFrame:
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data_start_date = datetime.strptime(getenv('OPTION_DATA_START_DATE'), '%Y-%m-%d')
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now = datetime.now()
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spx_data = ohlc(
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symbol = 'SPX.XO',
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timeframe = '1d',
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start_date = data_start_date - timedelta(weeks = 52),
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end_date = now
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)
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spx_data.rename(columns = {'Timestamp': 'Date'}, inplace = True)
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spx_data['ATR'] = self.calculate_atr(spx_data['High'], spx_data['Low'], spx_data['Close'])
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"""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""
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Filtering is based on the previous day's close, so the current date can be included even though the
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data may not be availble yet.
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This allows for utilizing the filter in live trading to decide whether to trade prior to market open.
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"""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""""
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spx_data = concat([
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spx_data,
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DataFrame({
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'Date': [datetime.combine(now, datetime.min.time())],
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'Open': [0.0],
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'High': [0.0],
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'Low': [0.0],
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'Close': [0.0],
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'Volume': [0.0],
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'ATR': [0.0]
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})],
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ignore_index = True
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)
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percent_rank = lambda x: Series(x).rank(pct = True).iloc[-1]
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spx_data['ATR_Percent_Rank'] = spx_data['ATR'].shift(1).rolling(window = 252).apply(percent_rank)
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filtered_data = spx_data[spx_data['Date'] >= data_start_date].copy()
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# filtered_data['Trade Allowed'] = (filtered_data['ATR_Percent_Rank'] > 0.25) & (filtered_data['ATR_Percent_Rank'] < 0.75)
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filtered_data['Trade Allowed'] = filtered_data['ATR_Percent_Rank'] < 0.75
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filtered_data = filtered_data[['Date', 'Trade Allowed']].reset_index(drop = True)
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return filtered_data
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test/filter/atr_regime_filter_test.py
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test/filter/atr_regime_filter_test.py
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from backtesting.filter import ATRRegimeFilter
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filter = ATRRegimeFilter()
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print(filter.backtest_filter)
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