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Impact analysis of prior distributions on the ADT Bayesian optimal design based on relative entropy

机译:先验分布对基于相对熵的ADT贝叶斯优化设计的影响分析

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Accelerated degradation testing (ADT) optimal design means the ADT plans are designed under the particular conditions, e.g. stress range, detection times, testing cost, etc., to obtain accurate estimates of the reliability indexes. The ADT optimal design has been developed to be one of the most important techniques in the field of accelerated testing. For ADT Bayesian optimal design method, prior information has a great influence on the results of optimal plan through the prior distributions of parameters. Therefore, the proper prior distributions would improve the accuracy of the ADT Bayesian optimal design method well. Hence, this article will do impact analysis of prior distributions on ADT Bayesian optimal design method. Firstly, the model and the prior parameters of ADT Bayesian optimal method are briefly introduced. Then, how to obtain the prior distributions through the prior information under the Bayesian theory framework is studied. Lastly, different prior distributions are treated as the input of the optimal design method to get the corresponding optimal testing plans and the maximum relative entropy, while the best prior distribution is obtained through comparing the maximum relative entropy of different prior distributions. Furthermore, this research can guide the ADT optimal plan design when facing the selection problem of prior distributions, and saving the test costs and resources.
机译:加速降级测试(ADT)最佳设计意味着ADT计划是在特定条件下设计的,例如应力范围,检测时间,测试成本等,以获得可靠性指标的准确估算。 ADT优化设计已发展成为加速测试领域中最重要的技术之一。对于ADT贝叶斯优化设计方法,先验信息通过参数的先验分布对最优计划的结果有很大的影响。因此,适当的先验分布将很好地提高ADT贝叶斯优化设计方法的准确性。因此,本文将对ADT贝叶斯优化设计方法的先验分布进行影响分析。首先简要介绍了ADT贝叶斯优化方法的模型和先验参数。然后,研究了如何在贝叶斯理论框架下通过先验信息获得先验分布。最后,将不同的先验分布作为最优设计方法的输入,以获得相应的最优测试计划和最大相对熵,同时通过比较不同先验分布的最大相对熵来获得最佳先验分布。此外,该研究在面对先验分布的选择问题时可以指导ADT优化计划设计,并节省测试成本和资源。

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