Added average rolling return function
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@ -407,7 +407,7 @@ class TimeSeries(TimeSeriesCore):
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if_not_found: Literal["fail", "nan"] = "fail",
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if_not_found: Literal["fail", "nan"] = "fail",
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annual_compounded_returns: bool = None,
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annual_compounded_returns: bool = None,
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date_format: str = None,
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date_format: str = None,
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):
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) -> float:
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"""Calculates the volatility of the time series.add()
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"""Calculates the volatility of the time series.add()
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The volatility is calculated as the standard deviaion of periodic returns.
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The volatility is calculated as the standard deviaion of periodic returns.
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@ -431,6 +431,20 @@ class TimeSeries(TimeSeriesCore):
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Number of traded days per year to be considered for annualizing volatility.
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Number of traded days per year to be considered for annualizing volatility.
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Only used when annualizing volatility for a time series with daily frequency.
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Only used when annualizing volatility for a time series with daily frequency.
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If not provided, will use the value in FincalOptions.traded_days.
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If not provided, will use the value in FincalOptions.traded_days.
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Remaining options are passed on to rolling_return function.
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Returns:
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-------
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Returns the volatility number as float
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Raises:
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-------
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ValueError: If frequency string is outside valid values
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Also see:
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--------
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TimeSeries.calculate_rolling_returns()
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"""
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"""
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if frequency is None:
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if frequency is None:
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@ -473,6 +487,36 @@ class TimeSeries(TimeSeriesCore):
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return sd
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return sd
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def average_rolling_return(self, **kwargs) -> float:
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"""Calculates the average rolling return for a given period
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Parameters
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----------
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kwargs: parameters to be passed to the calculate_rolling_returns() function
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Returns
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-------
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float
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returns the average rolling return for a given period
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Also see:
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---------
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TimeSeries.calculate_rolling_returns()
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"""
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kwargs["return_period_unit"] = kwargs.get("return_period_unit", self.frequency.freq_type)
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kwargs["return_period_value"] = kwargs.get("return_period_value", 1)
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kwargs["to_date"] = kwargs.get("to_date", self.end_date)
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if kwargs.get("from_date", None) is None:
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start_date = self.start_date + relativedelta(
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**{kwargs["return_period_unit"]: kwargs["return_period_value"]}
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)
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kwargs["from_date"] = start_date
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rr = self.calculate_rolling_returns(**kwargs)
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return statistics.mean(rr.values)
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if __name__ == "__main__":
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if __name__ == "__main__":
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date_series = [
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date_series = [
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