A hybrid optimization algorithm based on chaotic differential evolution and estimation of distribution

被引:0
|
作者
Fuqing Zhao
Zhongshi Shao
Junbiao Wang
Chuck Zhang
机构
[1] Lanzhou University of Technology,School of Computer and Communication Technology
[2] Northwestern Polytechnical University,Key Laboratory of Contemporary Design and Integrated Manufacturing Technology, Ministry of Education
[3] Georgia Institute of Technology,H. Milton Stewart School of Industrial and Systems Engineering
来源
Computational and Applied Mathematics | 2017年 / 36卷
关键词
Hybrid optimization; Estimation of distribution algorithm; Chaotic differential evolution algorithm; Convergence; Global optimization; 90B40;
D O I
暂无
中图分类号
学科分类号
摘要
Estimation of distribution algorithms (EDAs) and differential evolution (DE) are two types of evolutionary algorithms. The former has fast convergence rate and strong global search capability, but is easily trapped in local optimum. The latter has good local search capability with slower convergence speed. Therefore, a new hybrid optimization algorithm which combines the merits of both algorithms, a hybrid optimization algorithm based on chaotic differential evolution and estimation of distribution (cDE/EDA) was proposed. Due to its effective nature of harmonizing the global search of EDA with the local search of DE, the proposed algorithm can discover the optimal solution in a fast and reliable manner. Chaotic policy was used to strengthen the search ability of DE. Meantime the global convergence of algorithm was analyzed with the aid of limit theorem of monotone bounded sequence. The proposed algorithm was tested through a set of typical benchmark problems. The results demonstrate the effectiveness and efficiency of the proposed cDE/EDA algorithm.
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收藏
页码:433 / 458
页数:25
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