Improved bayes estimators and prediction for the wilson-hilferty distribution

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Abstract

In this paper, we revisit the Wilson-Hilferty distribution and presented its mathematical properties such as the r-th moments and reliability properties. The parameters estimators are discussed using objective reference Bayesian analysis for both complete and censored data where the resulting marginal posterior intervals have accurate frequentist coverage. A simulation study is presented to compare the performance of the proposed estimators with the frequentist approach where it is observed a clear advantage for the Bayesian method. Finally, the proposed methodology is illustrated on three real datasets.

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Ramos, P. L., Almeida, M. P., Tomazella, V. L. D., & Louzada, F. (2019). Improved bayes estimators and prediction for the wilson-hilferty distribution. Anais Da Academia Brasileira de Ciencias, 91(3). https://doi.org/10.1590/0001-3765201920190002

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