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Published in: Annals of Data Science 4/2020

29-07-2020

Bayesian Estimation of Transmuted Pareto Distribution for Complete and Censored Data

Authors: Muhammad Aslam, Rahila Yousaf, Sajid Ali

Published in: Annals of Data Science | Issue 4/2020

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Abstract

Transmuted distributions belong to the skewed family of distributions which are more flexible and versatile than the simple probability distributions. The focus of this article is the Bayesian estimation of three-parameter Transmuted Pareto distribution. In particular, we assumed noninformative and informative priors to obtain the posterior distributions. Bayesian point estimators and the associated precision measures are investigated under squared error loss function, precautionary loss function, and quadratic loss function. In addition to this, the Bayesian credible intervals are also computed under different priors. A simulation study using a Markov Chain Monte Carlo algorithm assuming uncensored and censored data in terms of different sample sizes and censoring rates is also a part of this study. The performance of Bayesian point estimators is assessed in term of posterior risks. Finally, two real life data sets of cardiovascular disease patients and of exceedances of Wheaton River flood are discussed in this article.

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Appendix
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Metadata
Title
Bayesian Estimation of Transmuted Pareto Distribution for Complete and Censored Data
Authors
Muhammad Aslam
Rahila Yousaf
Sajid Ali
Publication date
29-07-2020
Publisher
Springer Berlin Heidelberg
Published in
Annals of Data Science / Issue 4/2020
Print ISSN: 2198-5804
Electronic ISSN: 2198-5812
DOI
https://doi.org/10.1007/s40745-020-00310-z

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