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Interval optimization based line sampling method for fuzzy and random reliability analysis

机译:基于区间优化的线抽样方法进行模糊随机可靠性分析

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摘要

For structural system with fuzzy variables as well as random variables, a novel algorithm for obtaining membership function of fuzzy reliability is presented on interval optimization based Line Sampling (LS) method. In the presented algorithm, the value domain of the fuzzy variables under the given membership level is firstly obtained according to their membership functions. Then, in the value domain of the fuzzy variables, bounds of reliability of the structure are obtained by the nesting analysis of the interval optimization, which is performed by modern heuristic methods, and reliability analysis, which is achieved by the LS method in the reduced space of the random variables. In this way the uncertainties of the input variables are propagated to the safety measurement of the structure, and the membership function of the fuzzy reliability is obtained. The presented algorithm not only inherits the advantage of the direct Monte Carlo method in propagating and distinguishing the fuzzy and random uncertainties, but also can improve the computational efficiency tremendously in case of acceptable precision. Several examples are used to illustrate the advantages of the presented algorithm.
机译:对于具有模糊变量和随机变量的结构系统,提出了一种基于区间优化的线采样(LS)方法获得模糊可靠性隶属函数的新算法。在所提出的算法中,首先根据模糊隶属度的隶属度函数得到模糊变量的值域。然后,在模糊变量的值域中,通过区间优化的嵌套分析(通过现代启发式方法执行)和可靠性分析(通过简化方法的LS方法实现)来获得结构的可靠性界限。随机变量的空间。这样,将输入变量的不确定性传播到结构的安全性度量中,并获得模糊可靠性的隶属函数。所提算法不仅继承了直接蒙特卡罗方法在传播和区分模糊和随机不确定性方面的优势,而且在精度可以接受的情况下可以极大地提高计算效率。使用几个例子来说明所提出算法的优点。

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