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A PRIOR AND DATA VALIDATION AND ADJUSTMENT SCHEME FOR BAYESIAN RELIABILITY ANALYSIS IN ENGINEERING DESIGN

机译:工程设计中贝叶斯可靠性分析的现有和数据验证和调整方案

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Bayesian reliability analysis (BRA) technique has been actively used in reliability assessment for engineered systems. However, there are two key controversies surrounding the BRA, that is, the reasonableness of the prior, and the consistency among all data sets. These issues have been debated in Bayesian analysis for many years, and as we observed, they have not been resolved satisfactorily. These controversies have seriously hindered the applications of BRA as a useful reliability analysis tool to support engineering design. In this paper, a Bayesian reliability analysis methodology with a prior and data validation and adjustment scheme (PDVAS) is developed to address these issues. In order to do that, a consistency measure is defined first that judges the level of consistency among all data sets including the prior. The consistency measure is then used to adjust either the prior or the data or both to the extent that the prior and the data are statistically consistent. This prior and data validation and adjustment scheme is developed for Binomial sampling with Beta prior, called Beta-Binomial Bayesian model. The properties of the scheme are presented and discussed. Various forms of the adjustment formulas are shown and a selection framework of a specific formula, based on engineering design and analysis knowledge, is established. Several illustrative examples are presented which show the reasonableness, effectiveness and usefulness of PDVAS. General discussion of the scheme is offered to enhance the Bayesian Reliability Analysis in engineering design for reliability assessment.
机译:贝叶斯可靠性分析(BRA)技术已积极用于工程系统的可靠性评估。但是,胸罩周围有两个关键争议,即先前的合理性以及所有数据集之间的一致性。这些问题在贝叶斯分析中争论了多年,并且在我们观察到时,他们尚未得到令人满意的解决。这些争议严重阻碍了BRA作为支持工程设计的有用可靠性分析工具的应用。在本文中,开发了一种具有先前和数据验证和调整方案(PDVA)的贝叶斯可靠性分析方法来解决这些问题。为了做到这一点,首先定义一致性测量,从而判断包括先前的所有数据集之间的一致性水平。然后使用一致性测量来调整先前或数据或两者在统计上是一致的程度。该先前和数据验证和调整方案是为Beta之前的二项式抽样而开发的,称为Beta-Binomial Bayesian模型。提出并讨论了该方案的性质。确定了各种形式的调节公式,并确定了基于工程设计和分析知识的特定公式的选择框架。提出了几种说明性实施例,其显示了PDVA的合理性,有效性和有用性。提供了该计划的一般讨论,以提高工程设计中的贝叶斯可靠性分析,以获得可靠性评估。

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