Pareto分布下屏蔽数据的贝叶斯统计分析及其应用

Bayesian Statistical Analysis and Application of Masked Data based on Pareto Distribution

  • 摘要: 本文在Pareto分布下考虑了屏蔽数据的贝叶斯统计分析. 通过引入辅助变量来刻画失效的原因, 从而简化似然函数, 并使用贝叶斯、多层贝叶斯以及经验贝叶斯三种方法来估计参数, 然后通过一个实例来比较三种方法的优劣, 最后讨论了避免先验分布中超参数选取的方法.

     

    Abstract: In this paper Bayesian statistical analysis of masked data is considered based on the Pareto distribution. The likelihood function is simplified by introducing auxiliary variables, which describe the causes of failure. Three Bayesian approaches (Bayes using subjective priors, hierarchical Bayes and empirical Bayes) are utilized to estimate the parameters, and we compare these methods by analyzing a real data. Finally we discuss the method of avoiding the choice of the hyperparameters in the prior distributions.

     

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