论文标题

预测非均质可靠性领域数据的未来失败

Prediction of Future Failures for Heterogeneous Reliability Field Data

论文作者

Lewis-Beck, Colin, Tian, Qinglong, Meeker, William Q.

论文摘要

本文介绍了用于构建预测界限或间隔的方法,以从异构可靠性字段数据中构建未来失败的数量。我们专注于样本内预测,其中使用失败时间过程中的早期数据用于预测同一过程中的未来失败。但是,由于小样本量,审查和截断的某种组合,来自高可易度产品的早期数据通常具有有限的信息。在这种情况下,我们使用贝叶斯分层模型来模拟由类似产品的不同亚群产生的多个寿命分布。通过跨亚群借用信息,我们的方法可以实现稳定的估计和相应预测间隔的计算,即使在几乎没有观察到的故障的情况下。提供了三种应用来说明这种方法,并使用模拟研究来验证预测间隔的覆盖范围性能。

This article introduces methods for constructing prediction bounds or intervals for the number of future failures from heterogeneous reliability field data. We focus on within-sample prediction where early data from a failure-time process is used to predict future failures from the same process. Early data from high-reliability products, however, often have limited information due to some combination of small sample sizes, censoring, and truncation. In such cases, we use a Bayesian hierarchical model to model jointly multiple lifetime distributions arising from different subpopulations of similar products. By borrowing information across subpopulations, our method enables stable estimation and the computation of corresponding prediction intervals, even in cases where there are few observed failures. Three applications are provided to illustrate this methodology, and a simulation study is used to validate the coverage performance of the prediction intervals.

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