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首页> 外文期刊>International journal of geotechnical earthquake engineering >Hybridizing Bees Algorithm with Firefly Algorithm for Solving Complex Continuous Functions
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Hybridizing Bees Algorithm with Firefly Algorithm for Solving Complex Continuous Functions

机译:蜜蜂与萤火虫算法混合求解复杂的连续函数

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摘要

In this article, two hybrid schemes using the Bees Algorithm (BA) and the Firefly Algorithm (FA) are presented for numerical complex problem resolution. The BA is a recent population-based optimization algorithm, which tries to imitate the natural behaviour of honey bees foraging for food. The FA is a swarm intelligence technique based upon the communication behaviour and the idealized flashing features of tropical fireflies. The first approach, called the Hybrid Bee Firefly Algorithm (HBAFA), centres on improvements to the BA with FA during the local search thus increasing exploitation in each research zone. The second one, namely the Hybrid Firefly Bee Algorithm (HFBA), uses FA in the initialization step for a best exploration and detection of promising areas in research space. The performance of the novel hybrid algorithms was investigated on a set of various benchmarks and compared with standard BA, and other methods found in the literature. The results show that the proposed algorithms perform better than the Standard BA, and confirm their effectiveness in solving continuous optimization functions.
机译:在本文中,提出了两种使用Bees算法(BA)和Firefly算法(FA)的混合方案来解决数值复杂问题。 BA是最近基于人口的优化算法,它试图模仿蜜蜂觅食的自然行为。 FA是一种基于智能萤火虫的交流行为和理想的闪烁特征的群智能技术。第一种方法称为混合蜂萤火虫算法(HBAFA),其重点是在本地搜索过程中使用FA对BA进行改进,从而增加了每个研究区域中的开发水平。第二种方法,即混合萤火虫蜜蜂算法(HFBA),在初始化步骤中使用FA,以最佳地探索和发现研究空间中有希望的区域。在一组各种基准上研究了新型混合算法的性能,并与标准BA和文献中发现的其他方法进行了比较。结果表明,所提出的算法性能优于标准BA,并证明了它们在求解连续优化函数方面的有效性。

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