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An improved optimization method based on krill herd and artificial bee colony with information exchange

机译:一种改进的基于KRILL群和人工蜂殖民地的信息交换的优化方法

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摘要

This study presents a robust optimization algorithm based on hybridization of krill herd (KH) and artificial bee colony (ABC) methods and the information exchange concept. The global optimal solutions found by the proposed hybrid KH and ABC (KHABC) algorithm are considered as a neighbor food source for onlooker bees in ABC. Thereafter, a local search is performed by the onlooker bees in order to find a better solution around the given neighbor food source. Both the methods—the KH and ABC—share the globally best solutions through the information exchange process between the krill and bees. Based on the results, the exchange process significantly improves exploration and exploitation of the hybrid method. Besides, a focused elitism scheme is introduced to enhance the performance of the developed algorithm. The validity of the KHABC method is verified using thirteen unconstrained benchmark functions, twenty-one CEC 2017 constrained real-parameter optimization problems, and ten CEC 2011 real world problems. The proposed method clearly demonstrates its ability to be a competitive optimization tool towards solving benchmark functions and real world problems.
机译:本研究提出了一种基于磷虾群(KH)和人工蜂菌(ABC)方法的杂交的鲁棒优化算法和信息交流概念。所提出的混合KH和ABC(KHABC)算法发现的全局最佳解决方案被认为是ABC中的旁观者蜜蜂的邻居食品来源。此后,由Onlooker Bees执行本地搜索,以便在给定邻居食谱周围找到更好的解决方案。方法 - kh和abc--通过克尔和蜜蜂之间的信息交换过程共享全球最佳解决方案。基于结果,交流过程显着提高了杂交方法的探索和开发。此外,还引入了一个集中的精油方案来提高发达算法的性能。验证了KHABC方法的有效性,使用十三个不受约束的基准函数,二十一CEC 2017受约束的真实参数优化问题,以及2011年的十年现实世界问题。该方法清楚地证明了能力成为解决基准功能和现实世界问题的竞争优化工具。

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