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A combined radial basis function and adaptive sequential sampling method for structural reliability analysis

机译:结构可靠性分析的组合径向基函数和自适应顺序采样方法

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摘要

In this paper, according to the Kriging based reliability analysis method, an efficient sequential sampling method combined with radial basis function is proposed to reduce the modeling complexity of the surrogate model and eliminate the uncertainties of the Kriging itself on the reliability analysis results. A novel active learning function is developed that can search for the sequential samples effectively among the candidate set. For terminating the sequential sampling process, a corresponding convergence criterion according to the failure probability obtained from the cross-validation method is constructed. Furthermore, the proposed method can be applied to any other surrogate model in principle. Five numerical examples demonstrate that the proposed method has high precision and efficiency as well as strong applicability in structural reliability analysis.
机译:本文根据Kriging的可靠性分析方法,提出了一种与径向基函数结合的有效顺序采样方法,以降低代理模型的建模复杂性,并消除Kriging本身对可靠性分析结果的不确定性。开发了一种新的主​​动学习功能,其可以在候选集中有效地搜索顺序样本。为了终止顺序采样过程,构造了根据从交叉验证方法获得的失败概率的相应的收敛标准。此外,所提出的方法原则上可以应用于任何其他替代模型。五个数值例证表明,该方法具有高精度和效率,以及结构可靠性分析中的强大适用性。

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