Abstract
The multivariate split normal distribution extends the usual multivariate normal distribution by a set of parameters which allows for skewness in the form of contraction/dilation along a subset of the principal axes. This article derives some properties for this distribution, including its moment generating function, multivariate skewness, and kurtosis, and discusses its role as a population model for asymmetric principal components analysis. Maximum likelihood estimators and a complete Bayesian analysis, including inference on the number of skewed dimensions and their directions, are presented.
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Villani, M., & Larsson, R. (2006). The multivariate split normal distribution and asymmetric principal components analysis. Communications in Statistics - Theory and Methods, 35(6), 1123–1140. https://doi.org/10.1080/03610920600672252
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