statsmodels.emplike.descriptive.DescStatUV
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class statsmodels.emplike.descriptive.DescStatUV(endog)
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A class to compute confidence intervals and hypothesis tests involving mean, variance, kurtosis and skewness of a univariate random variable.
Parameters: endog (1darray) – Data to be analyzed -
endog
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1darray – Data to be analyzed
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nobs
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float – Number of observations
Methods
ci_kurt
([sig, upper_bound, lower_bound])Returns the confidence interval for kurtosis. ci_mean
([sig, method, epsilon, gamma_low, …])Returns the confidence interval for the mean. ci_skew
([sig, upper_bound, lower_bound])Returns the confidence interval for skewness. ci_var
([lower_bound, upper_bound, sig])Returns the confidence interval for the variance. plot_contour
(mu_low, mu_high, var_low, …)Returns a plot of the confidence region for a univariate mean and variance. test_joint_skew_kurt
(skew0, kurt0[, …])Returns - 2 x log-likelihood and the p-value for the joint hypothesis test for skewness and kurtosis test_kurt
(kurt0[, return_weights])Returns -2 x log-likelihood and the p-value for the hypothesized kurtosis. test_mean
(mu0[, return_weights])Returns - 2 x log-likelihood ratio, p-value and weights for a hypothesis test of the mean. test_skew
(skew0[, return_weights])Returns -2 x log-likelihood and p-value for the hypothesized skewness. test_var
(sig2_0[, return_weights])Returns -2 x log-likelihoog ratio and the p-value for the hypothesized variance -
© 2009–2012 Statsmodels Developers
© 2006–2008 Scipy Developers
© 2006 Jonathan E. Taylor
Licensed under the 3-clause BSD License.
http://www.statsmodels.org/stable/generated/statsmodels.emplike.descriptive.DescStatUV.html