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Reliability estimation based on general progressive censored data from the Weibull model: comparison between Bayesian and classical approaches

机译:基于Weibull模型的一般渐进删失数据的可靠性估计:贝叶斯方法与经典方法的比较

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In this article, we consider the problem of estimating the parameters and reliability function of the two-parameter Weibull model on the basis of a progressive Type-II censored sample. We consider both classical and Bayesian approaches. In the Bayesian framework, we suggest a bivariate prior density for the two unknown parameters. Assuming the squared error loss function, we derive exact forms of the Bayes estimates. Further, we consider non-informative priors. To assess the accuracy of the resulting estimates, we conduct simulation experiments. In such experiments, we calculate the estimated risks (ER's) and mean squared errors (MSE's) of the Bayes . estimates and compare them with the corresponding mean squared errors (MSE's) of the maximum likelihood estimates. In addition, we calculate the relative efficiency between the considered estimates. Finally, we draw some concluding remarks.
机译:在本文中,我们考虑在渐进式II型删失样本的基础上估计两参数Weibull模型的参数和可靠性函数的问题。我们同时考虑经典方法和贝叶斯方法。在贝叶斯框架中,我们建议两个未知参数的双变量先验密度。假设平方误差损失函数,我们得出贝叶斯估计的精确形式。此外,我们考虑非信息先验。为了评估结果估计的准确性,我们进行了模拟实验。在此类实验中,我们计算了贝叶斯的估计风险(ER)和均方误差(MSE)。估计并将其与最大似然估计的相应均方误差(MSE)进行比较。另外,我们计算所考虑的估计之间的相对效率。最后,我们得出一些结论。

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