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Research Article

Mixture regression modelling based on the shape mixtures of skew Laplace normal distribution

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Pages 3403-3420 | Received 10 Nov 2022, Accepted 12 Jun 2023, Published online: 21 Jun 2023
 

Abstract

Modelling skewness and heavy-tailedness in heterogeneous data sets is a compelling problem, particularly in regression analysis. The main goal of this study is to propose a mixture regression model based on the shape mixtures of skew Laplace normal (SMSLN) distribution for modelling skewness and heavy-tailedness simultaneously. The SMSLN distribution has been introduced by Doğru and Arslan [Finite mixtures of skew Laplace normal distributions with random skewness. 11th International Statistics Congress (ISC2019); Bodrum/Turkey; Finite mixtures of skew Laplace normal distributions with random skewness. Comput Stat. 2021;36(1):423–447] as a flexible extension of the skew Laplace normal (SLN) distribution and includes an extra shape parameter that controls skewness and kurtosis. The maximum likelihood estimators for the parameters of interest with the help of the expectation-maximization (EM) algorithm are obtained. The performance of the proposed mixture model is demonstrated via a simulation study and a real data example.

Acknowledgements

We thank the associate editor and reviewer for their valuable remarks, which helped significantly to improve the manuscript.

Disclosure statement

No potential conflict of interest was reported by the author(s).

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