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一种用于数值优化的组织进化算法。

An organizational evolutionary algorithm for numerical optimization.

作者信息

Liu Jing, Zhong Weicai, Jiao Licheng

出版信息

IEEE Trans Syst Man Cybern B Cybern. 2007 Aug;37(4):1052-64. doi: 10.1109/tsmcb.2007.891543.

Abstract

Taking inspiration from the interacting process among organizations in human societies, this correspondence designs a kind of structured population and corresponding evolutionary operators to form a novel algorithm, Organizational Evolutionary Algorithm (OEA), for solving both unconstrained and constrained optimization problems. In OEA, a population consists of organizations, and an organization consists of individuals. All evolutionary operators are designed to simulate the interaction among organizations. In experiments, 15 unconstrained functions, 13 constrained functions, and 4 engineering design problems are used to validate the performance of OEA, and thorough comparisons are made between the OEA and the existing approaches. The results show that the OEA obtains good performances in both the solution quality and the computational cost. Moreover, for the constrained problems, the good performances are obtained by only incorporating two simple constraints handling techniques into the OEA. Furthermore, systematic analyses have been made on all parameters of the OEA. The results show that the OEA is quite robust and easy to use.

摘要

借鉴人类社会中组织间的交互过程,本通信设计了一种结构化种群和相应的进化算子,以形成一种新颖的算法——组织进化算法(OEA),用于解决无约束和约束优化问题。在OEA中,一个种群由多个组织组成,而一个组织由个体组成。所有进化算子都旨在模拟组织间的交互。在实验中,使用15个无约束函数、13个约束函数和4个工程设计问题来验证OEA的性能,并将OEA与现有方法进行了全面比较。结果表明,OEA在解质量和计算成本方面均取得了良好的性能。此外,对于约束问题,仅通过将两种简单的约束处理技术纳入OEA就取得了良好的性能。此外,还对OEA的所有参数进行了系统分析。结果表明,OEA相当稳健且易于使用。

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