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Sensitivity estimation of failure probability applying line sampling

机译:应用线采样的故障概率敏感性估计

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This contribution presents a framework for calculating a sensitivity measure for problems of computational stochastic mechanics. More specifically, the sensitivity measure considered is the derivative of the failure probability with respect to parameters of the probability distributions (e.g. mean value, standard deviation) associated with the random input quantities of a system's model. The proposed framework is formulated as a post-processing step of Line Sampling, which is a simulation-based method for estimating small failure probabilities. In particular, the proposed framework comprises two different approaches for estimating the sought sensitivity. The application of the proposed framework and comparison of the two aforementioned approaches is discussed through a number of numerical examples. The results obtained indicate that both approaches allow estimating the sought sensitivity measure. (C) 2017 Elsevier Ltd. All rights reserved.
机译:这一贡献为计算随机力学问题的敏感性度量提供了一个框架。更具体地,所考虑的灵敏度度量是相对于与系统模型的随机输入量相关联的概率分布的参数(例如,平均值,标准偏差)的失效概率的导数。提出的框架被公式化为“线采样”的后处理步骤,这是一种基于仿真的估计小故障概率的方法。特别地,所提出的框架包括用于估计所寻求的灵敏度的两种不同的方法。通过大量数值示例讨论了所提出框架的应用以及上述两种方法的比较。获得的结果表明,两种方法都可以估计所需的灵敏度度量。 (C)2017 Elsevier Ltd.保留所有权利。

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