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An efficient method based on Bayes' theorem to estimate the failure-probability-based sensitivity measure

机译:一种基于贝叶斯定理的基于故障概率的灵敏度测度的有效方法

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摘要

The failure-probability-based sensitivity, which measures the effect of input variables on the structural failure probability, can provide useful information in reliability based design optimization. The traditional method for estimating the failure-probability-based sensitivity measure requires a nested sampling procedure and the computational cost depends on the total number of input variables. In this paper, a new efficient method based on Bayes' theorem is proposed to estimate the failure-probability-based sensitivity measure. The proposed method avoids the nested sampling procedure and only requires a single set of samples to estimate the failure-probability-based sensitivity measure. The computational cost of the proposed method does not depend on the total number of input variables. One numerical example and three engineering examples are employed to illustrate the accuracy and efficiency of the proposed method. (C) 2018 Elsevier Ltd. All rights reserved.
机译:基于故障概率的敏感性(用于衡量输入变量对结构故障概率的影响)可以为基于可靠性的设计优化提供有用的信息。估计基于故障概率的敏感性度量的传统方法需要嵌套的采样过程,并且计算成本取决于输入变量的总数。本文提出了一种基于贝叶斯定理的有效新方法来估计基于故障概率的敏感性测度。所提出的方法避免了嵌套的采样过程,仅需要单个样本集即可估计基于故障概率的敏感度度量。所提出的方法的计算成本不取决于输入变量的总数。数值实例和三个工程实例说明了该方法的准确性和有效性。 (C)2018 Elsevier Ltd.保留所有权利。

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