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A self-adaptive combined strategies algorithm for constrained optimization using differential evolution

机译:一种基于差分进化的约束优化自适应组合策略算法

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摘要

There are a huge number of differential evolution variants that have been proposed in the literature for solving constrained problems. However, none of them was considered as being a well-accepted approach for solving a broad range of problems with different mathematical properties. Therefore, in this paper, for a better coverage of the problem characteristics, a self-adaptive differential evolution algorithm is introduced. To do that, it uses multiple search operators in conjunction with multiple constraint handling techniques. The need for such an approach is justified by experimental analysis on a well-known set of problems. The results show that the proposed algorithm is superior to other state-ofthe-art algorithms.
机译:在文献中已经提出了许多用于解决约束问题的差分进化变体。但是,没有一种方法被认为是解决具有不同数学性质的各种问题的公认方法。因此,为了更好地覆盖问题特征,本文提出了一种自适应差分进化算法。为此,它将多个搜索运算符与多种约束处理技术结合使用。通过对一组众所周知的问题进行实验分析,证明了这种方法的必要性。结果表明,提出的算法优于其他最新算法。

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