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Bayes Inference for the Weibull-Geometric Distribution based on Progressive Hybrid Censored Data

Research Authors
Mohamed Mousa, Zeinhum Jaheen∗ and Sara Ali
Research Abstract

: The challenge of estimating the parameters of the Weibull-Geometric distribution using progressively type-I hybrid censored data is addressed in this study. For this, the maximum likelihood and Bayes methods of estimation are applied. The Bayes estimates are calculated using the Markov Chain Monte Carlo (MCMC) method. Through a Monte Carlo simulation investigation, the Bayes estimates of the parameters under two alternative loss functions are investigated and compared to their corresponding maximum likelihood estimates. For illustration, a practical set of data is used.

Research Date
Research Department
Research Journal
Inf. Sci. Lett.
Research Publisher
Inf. Sci. Lett.
Research Vol
11
Research Year
2022
Research Pages
1351-1357