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A Bayesian Method for Planning Accelerated Life Testing

机译:用于计划加速寿命测试的贝叶斯方法

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In this paper, a Bayesian criterion is proposed based on the expected Kullback-Leibler divergence between the posterior and the prior distributions of the parameters of interest. We call the Bayesian criterion the reference optimality criterion, which is to find an optimal plan to maximize the amount of information from the data. A large-sample approximation is utilized to simplify the formula to obtain optimal plans numerically. Because optimal plans based on reference optimality criterion do not depend on the sample size, a modified reference optimality criterion is proposed. We give numerical examples using the Weibull distribution with type I censoring to illustrate the methods, and to examine the influence of the prior distribution, censoring time, and sample size. We also compare our methods with other criteria through Monte Carlo simulation.
机译:在本文中,基于感兴趣参数的后验分布和先验分布之间的预期Kullback-Leibler散度,提出了一种贝叶斯准则。我们将贝叶斯准则称为参考最优准则,该准则是找到一种最佳计划,以使数据中的信息量最大化。利用大样本近似值可以简化公式,从而在数值上获得最佳计划。由于基于参考最优准则的最优计划不依赖样本量,因此提出了一种改进的参考最优准则。我们使用带有类型I审查的Weibull分布给出了数值示例,以说明方法,并研究了先验分布,审查时间和样本量的影响。我们还将通过蒙特卡洛模拟将我们的方法与其他标准进行比较。

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