A modified crow search algorithm with niching technique for numerical optimization

Jahedul Islam, P. Vasant, B. M. Negash, J. Watada
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引用次数: 7

Abstract

This paper proposes a modified crow search algorithm with local search and niching technique. The primitive crow search algorithm is a newly developed population-based algorithm which gained attention from the researchers of many fields as it needs only one parameter to be tuned. Despite its easy implementation, crow search algorithm has weakness to find global optima and suffers from slow convergence rate in multi-modal optimization problems. The search agent of the primitive crow search algorithm does not always follow the best solution obtained so far. Another disadvantage is that the search agents updates its location randomly. In order to enhance its searching capacity, a global search operator is introduced. Also, The proposed method modifies the search techniques and incorporates niching method to increase exploration capacity. The proposed technique is tested on 23 benchmark functions. The results of the proposed method demonstrated faster convergence rate and better solution in most cases when compared with the standard crow search algorithm.
基于小生境技术的改进乌鸦搜索算法
本文提出了一种基于局部搜索和小生境技术的改进乌鸦搜索算法。原始乌鸦搜索算法是一种新发展起来的基于种群的算法,由于它只需要一个参数进行调整,受到了许多领域研究者的关注。乌鸦搜索算法虽然易于实现,但在多模态优化问题中存在寻找全局最优和收敛速度慢的缺点。原始乌鸦搜索算法的搜索代理并不总是遵循迄今为止得到的最优解。另一个缺点是搜索代理随机更新其位置。为了提高其搜索能力,引入了全局搜索算子。该方法对搜索技术进行了改进,引入了小生境方法,提高了搜索能力。该方法在23个基准函数上进行了测试。结果表明,与标准乌鸦搜索算法相比,该方法在大多数情况下具有更快的收敛速度和更好的解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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