statsmodels.duration.hazard_regression.PHReg.from_formula¶
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classmethod 
PHReg.from_formula(formula, data, status=None, entry=None, strata=None, offset=None, subset=None, ties='breslow', missing='drop', *args, **kwargs)[source]¶ Create a proportional hazards regression model from a formula and dataframe.
Parameters: - formula (str or generic Formula object) – The formula specifying the model
 - data (array-like) – The data for the model. See Notes.
 - status (array-like) – The censoring status values; status=1 indicates that an event occured (e.g. failure or death), status=0 indicates that the observation was right censored. If None, defaults to status=1 for all cases.
 - entry (array-like) – The entry times, if left truncation occurs
 - strata (array-like) – Stratum labels. If None, all observations are taken to be in a single stratum.
 - offset (array-like) – Array of offset values
 - subset (array-like) – An array-like object of booleans, integers, or index values that indicate the subset of df to use in the model. Assumes df is a pandas.DataFrame
 - ties (string) – The method used to handle tied times, must be either ‘breslow’ or ‘efron’.
 - missing (string) – The method used to handle missing data
 - args (extra arguments) – These are passed to the model
 - kwargs (extra keyword arguments) – These are passed to the model with one exception. The
eval_envkeyword is passed to patsy. It can be either apatsy.EvalEnvironmentobject or an integer indicating the depth of the namespace to use. For example, the defaulteval_env=0uses the calling namespace. If you wish to use a “clean” environment seteval_env=-1. 
Returns: model
Return type: PHReg model instance
