Structural reliability under uncertainty in moments: distributionally-robust reliability-based design optimization

被引:0
|
作者
Yoshihiro Kanno
机构
[1] The University of Tokyo,Mathematics and Informatics Center
来源
Japan Journal of Industrial and Applied Mathematics | 2022年 / 39卷
关键词
Reliability-based design optimization; Uncertain input distribution; Worst-case reliability; Robust optimization; Semidefinite programming; Duality; 90C30; 90C17; 90C22; 90C15;
D O I
暂无
中图分类号
学科分类号
摘要
This study considers structural optimization under a reliability constraint, in which the input distribution is only partially known. Specifically, when it is only known that the expected value vector and the variance-covariance matrix of the input distribution belong to a given convex set, it is required that the failure probability of a structure should be no greater than a specified target value for any realization of the input distribution. We demonstrate that this distributionally-robust reliability constraint can be reduced equivalently to deterministic constraints. By using this reduction, we can handle a reliability-based design optimization problem under the distributionally-robust reliability constraint within the framework of deterministic optimization; in particular, nonlinear semidefinite programming. Two numerical examples are solved to demonstrate the relation between the optimal value and either the target reliability or the uncertainty magnitude.
引用
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页码:195 / 226
页数:31
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