Regression output: Hide boolean reference categories by default if reference category is False
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@ -138,7 +138,7 @@ def test_regress_logit_ol10_18():
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'Stress': np.repeat([d[1] for d in data], [d[2] for d in data])
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})
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result = yli.regress(sm.Logit, df, 'Stress', 'Response')
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result = yli.regress(sm.Logit, df, 'Stress', 'Response', bool_baselevels=True)
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assert isinstance(result.terms['Response'], CategoricalTerm)
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assert result.terms['Response'].ref_category == False
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@ -340,9 +340,15 @@ class CategoricalTerm:
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def regress(
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model_class, df, dep, formula, *,
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nan_policy='warn', exp=None
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nan_policy='warn',
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bool_baselevels=False, exp=None
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):
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"""Fit a statsmodels regression model"""
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"""
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Fit a statsmodels regression model
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bool_baselevels: Show reference categories for boolean independent variables even if reference category is False
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exp: Report exponentiated parameters rather than raw parameters
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"""
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# Autodetect whether to exponentiate
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if exp is None:
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@ -392,6 +398,11 @@ def regress(
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if contrast is not None:
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# Categorical term
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if bool_baselevels is False and contrast == 'True' and set(df[column].unique()) == set([True, False]):
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# Treat as single term
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terms[column] = SingleTerm(raw_name, beta, result.pvalues[raw_name])
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else:
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# Add a new categorical term if not exists
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if column not in terms:
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ref_category = formula_factor_ref_category(formula, df, factor)
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@ -400,8 +411,7 @@ def regress(
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terms[column].categories[contrast] = SingleTerm(raw_name, beta, result.pvalues[raw_name])
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else:
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# Single term
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term = raw_name
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terms[term] = SingleTerm(raw_name, beta, result.pvalues[raw_name])
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terms[column] = SingleTerm(raw_name, beta, result.pvalues[raw_name])
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# Fit null model (for llnull)
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if hasattr(result, 'llnull'):
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