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A data-driven approach to non-parametric reliability-based design optimization of structures with uncertain load

机译:基于非参数性可靠性的设计优化具有不确定负载的数据驱动方法

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摘要

This paper presents a simple method for conservatively solving a reliability-based design optimization (RBDO) problem of structures, when only a set of random samples of uncertain parameters is available. Specifically, we consider the truss design optimization under the stress constraints, where the external load is a random vector. The target confidence level, i.e., the probability that the structural reliability is no smaller than the target reliability, is specified, without any assumption on statistical information of the input distribution. We formulate a robust design optimization problem, any feasible solution of which satisfies the reliability constraint with the specified confidence level. The derived robust design optimization problem is solved with a sequential semidefinite programming. Two numerical examples are solved to show the trade-off between the specified confidence level and the structural volume.
机译:本文提出了一种简单的方法,用于保守求解基于可靠性的设计优化(RBDO)问题,当只有一组不确定参数的随机样本可用。 具体地,我们考虑在应力约束下的桁架设计优化,外部负载是随机向量。 指定了目标置信水平,即结构可靠性不小于目标可靠性的概率,而不是输入分布的统计信息的任何假设。 我们制定了稳健的设计优化问题,任何可行的解决方案都满足了指定置信水平的可靠性约束。 通过连续的半纤维编程解决了衍生的鲁棒设计优化问题。 解决了两个数值例子以显示指定置信水平与结构体积之间的权衡。

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