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An Artificial Bee Colony algorithm with guide of global & local optima and asynchronous scaling factors for numerical optimization

机译:人工蜜蜂群体算法,可指导全局和局部最优以及异​​步比例因子以进行数值优化

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Artificial Bee Colony (ABC) algorithm is a wildly used optimization algorithm. However, ABC is excellent in exploration but poor in exploitation. To improve the convergence performance of ABC and establish a better searching mechanism for the global optimum, an improved ABC algorithm is proposed in this paper. Firstly, the proposed algorithm integrates the information of previous best solution into the search equation for employed bees and global best solution into the update equation for onlooker bees to improve the exploitation. Secondly, for a better balance between the exploration and exploitation of search, an S-type adaptive scaling factors are introduced in employed bees' search equation. Furthermore, the searching policy of scout bees is modified. The scout bees need update food source in each cycle in order to increase diversity and stochasticity of the bees and mitigate stagnation problem. Finally, the improved algorithms is compared with other two improved ABCs and three recent algorithms on a set of classical benchmark functions. The experimental results show that the our proposed algorithm is effective and robust and outperform than other algorithms. (C) 2015 Elsevier B.V. All rights reserved.
机译:人工蜂群(ABC)算法是一种广泛使用的优化算法。但是,ABC的勘探能力很强,但开采能力却很差。为了提高ABC的收敛性能并建立全局最优搜索机制,提出了一种改进的ABC算法。首先,该算法将先前最佳解的信息整合到蜜蜂的搜索方程中,将全局最佳解的信息整合到围观蜜蜂的更新方程中,以提高开发效率。其次,为了更好地平衡搜索和探索之间的联系,在蜜蜂的搜索方程中引入了S型自适应比例因子。此外,修改了侦察蜂的搜索策略。侦察蜂需要在每个周期中更新食物来源,以增加蜂的多样性和随机性并减轻停滞问题。最后,在一组经典基准函数上将改进的算法与其他两个改进的ABC和三个最新算法进行比较。实验结果表明,与其他算法相比,本文提出的算法有效,鲁棒并且性能优于其他算法。 (C)2015 Elsevier B.V.保留所有权利。

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