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Optimal design of truss structures using a new optimization algorithm based on global sensitivity analysis

机译:基于全局灵敏度分析的新型优化算法优化桁架结构

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摘要

Global sensitivity analysis (GSA) has been widely used to investigate the sensitivity of the model output with respect to its input parameters. In this paper a new single-solution search optimization algorithm is developed based on the GSA, and applied to the size optimization of truss structures. In this method the search space of the optimization is determined using the sensitivity indicator of variables. Unlike the common meta-heuristic algorithms, where all the variables are simultaneously changed in the optimization process, in this approach the sensitive variables of solution are iteratively changed more rapidly than the less sensitive ones in the search space. Comparisons of the present results with those of some previous population-based meta-heuristic algorithms demonstrate its capability, especially for decreasing the number of fitness functions evaluations, in solving the presented benchmark problems.
机译:全局灵敏度分析(GSA)已被广泛用于调查模型输出相对于其输入参数的灵敏度。本文基于GSA提出了一种新的单解搜索优化算法,并将其应用于桁架结构的尺寸优化。在这种方法中,使用变量的灵敏度指标确定优化的搜索空间。与常见的元启发式算法不同,在优化过程中所有变量都同时更改,因此与搜索空间中较不敏感的变量相比,这种方法迭代求解敏感变量的速度更快。当前结果与某些以前的基于人口的元启发式算法的结果的比较表明,它具有解决特定基准问题的能力,特别是在减少适应度函数评估次数方面。

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