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Multivariate reliability modelling with empirical Bayes inference

机译:基于经验贝叶斯推断的多元可靠性建模

摘要

Recent developments in technology permit detailed descriptions of system performance to be collected and stored. Consequently, more data are available about the occurrence, or non-occurrence, of events across a range of classes through time. Typically this implies that reliability analysis has more information about the exposure history of a system within different classes of events. For highly reliable systems, there may be relatively few failure events. Thus there is a need to develop statistical inference to support reliability estimation when there is a low ratio of failures relative to event classes. In this paper we show how Empirical Bayes methods can be used to estimate a multivariate reliability function for a system by modelling the vector of times to realise each failure root cause.
机译:技术的最新发展允许收集和存储系统性能的详细描述。因此,随着时间的流逝,关于类别的事件发生或不发生的更多数据可用。通常,这意味着可靠性分析具有有关不同事件类别中系统的暴露历史的更多信息。对于高度可靠的系统,故障事件可能相对较少。因此,当故障相对于事件类别的比率较低时,需要开发统计推断以支持可靠性估计。在本文中,我们展示了如何通过对时间向量建模以实现每个故障根本原因的方法,将经验贝叶斯方法用于估计系统的多元可靠性函数。

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  • 作者

    Quigley J.L.; Walls L.A.;

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  • 年度 2007
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