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Bayesian model updating with summarized statistical and reliability data

机译:使用汇总的统计数据和可靠性数据进行贝叶斯模型更新

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The accuracy of model-based reliability analysis is affected by the uncertainty regarding the model parameters used to predict the behavior of the engineering system. The uncertainty in the model parameters can be reduced by combining prior knowledge about the parameters with observed data regarding system inputs and outputs. In some cases, the information about the observations is only available as abstracted data, where the original raw data have been reduced to a summarized representation. Common forms of abstracted data include summary statistics, such as the mean and variance for continuous variables and observed frequencies for discrete variables. In the context of reliability analysis, a common form of available information is summarized reliability data for various mechanical components (e.g., failure rates or failure probabilities) instead of detailed actual test data. This paper presents a methodology for updating the model parameters using these abstracted data forms through a Bayesian network. First, the concept of a statistics function is developed and linked to the abstracted data forms. The concept of arc reversal is then exploited to transform the Bayesian network to a form that can be used to incorporate the statistics function and thereby enable the updating of the model parameters. Several numerical examples are used to demonstrate the applicability and generality of the proposed method for several different forms of abstracted data. (C) 2017 Elsevier Ltd. All rights reserved.
机译:基于模型的可靠性分析的准确性受到用于预测工程系统行为的模型参数的不确定性的影响。通过将参数的先验知识与有关系统输入和输出的观察数据相结合,可以减少模型参数的不确定性。在某些情况下,关于观测值的信息只能作为抽象数据使用,其中原始原始数据已被简化为摘要表示。抽象数据的常见形式包括摘要统计信息,例如连续变量的均值和方差,离散变量的观测频率。在可靠性分析的上下文中,可用信息的常见形式是汇总了各种机械组件的可靠性数据(例如,故障率或故障概率),而不是详细的实际测试数据。本文提出了一种通过贝叶斯网络使用这些抽象数据形式更新模型参数的方法。首先,开发统计功能的概念并将其链接到抽象的数据形式。然后,利用电弧反转的概念将贝叶斯网络转换为可用于合并统计函数的形式,从而能够更新模型参数。几个数值示例用于证明所提出的方法对几种不同形式的抽象数据的适用性和一般性。 (C)2017 Elsevier Ltd.保留所有权利。

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