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A novel single-loop procedure for time-variant reliability analysis based on Kriging model

机译:基于Kriging模型的单环时变可靠性分析新程序

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This paper proposes a novel single-loop procedure for time-variant reliability analysis based on a Kriging model. A new strategy is presented to decouple the double-loop Kriging model for time-variant reliability analysis, in which the extreme value response in double-loop procedure is replaced by the best value in the current sampled points to avoid the inner optimization loop. Consequently, the extreme value response surface for time-variant reliability analysis can be directly established through a single-loop Kriging surrogate model. To further improve the accuracy of the proposed Kriging model, two methods are provided to adaptively choose a new sample point for updating the model. One method is to apply two commonly used learning functions to select the new sample point that resides as close to the extreme value response surface as possible, and the other is to apply a new learning function to select the new point. Synchronously, the corresponding different stopping criteria are also provided. It is worth nothing that the proposed single-loop Kriging model for time-variant reliability analysis is for a single time-variant performance function. To verify the proposed method, it is applied to four examples, two of which have with random process and others have not. Other popular methods for time-variant reliability analysis including the existing single-loop Kriging model are also used for the comparative analysis and their results testify the effectiveness of the proposed method. (C) 2019 Elsevier Inc. All rights reserved.
机译:本文提出了一种新的基于Kriging模型的单循环时变可靠性分析程序。提出了一种用于时变可靠性分析的双环克里格模型解耦策略,该方法将双环过程中的极值响应替换为当前采样点的最佳值,从而避免内部优化循环。因此,可以通过单环Kriging替代模型直接建立用于时变可靠性分析的极值响应面。为了进一步提高所提出的克里格模型的准确性,提供了两种方法来自适应地选择新的采样点来更新模型。一种方法是应用两个常用的学习功能来选择尽可能靠近极值响应曲面的新采样点,另一种方法是应用一个新的学习功能来选择新点。同时,还提供了相应的不同停止标准。提出的用于时变可靠性分析的单环Kriging模型用于单个时变性能函数是毫无价值的。为了验证所提出的方法,将其应用于四个示例,其中两个具有随机过程,而其他则没有。其他流行的时变可靠性分析方法,包括现有的单环克里格模型,也用于比较分析,其结果证明了该方法的有效性。 (C)2019 Elsevier Inc.保留所有权利。

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