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CHAOTIC ELECTION ALGORITHM

机译:混沌选举算法

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A novel Chaotic Election Algorithm (CEA) is presented for numerical function optimization. CEA is a powerful enhancement of election algorithm. The election algorithm is a socio-politically inspired strategy that mimics the behavior of candidates and voters in presidential election process. In election algorithm, individuals are organized as electoral parties. Advertising campaign forms the basis of the algorithm in which individuals interact or compete with one other using three operators: positive advertisement, negative advertisement and coalition. Advertising campaign hopefully causes the individuals converge to the global optimum point in solution space. However, election algorithm suffers from a fundamental challenge: it gets stuck at local optima due to the inability of advertising campaign in searching solution space. CEA enhances the election algorithm through modifying party formation step, introducing chaotic positive advertisement and migration operator. By chaotic positive advertisement, CEA exploits the entire solution space, what increases the probability of obtaining global optimum point. By migration, CEA increases the diversity of the population and prevents early convergence of the individuals. The proposed CEA algorithm is tested on 28 well-known standard boundary-constrained test functions, and the results are verified by a comparative study with several well-known meta-heuristics. The results demonstrate that CEA is able to provide significant improvement over canonical election algorithm and other comparable algorithms.
机译:提出了一种新的混沌选举算法(CEA)以进行数值函数优化。 CEA是竞选算法的强大增强。选举算法是一种社会经理启发的战略,模仿总统选举过程中候选人和选民的行为。在选举算法中,个人被组织为选举各方。广告活动构成了个人使用三个运营商与另一个竞争或竞争的算法的基础:积极广告,负面广告和联盟。广告活动希望导致个人收敛到解决方案空间的全球最佳点。然而,选举算法遭受基本挑战:由于在寻找解决方案空间中的广告活动无法无法广告活动,它会陷入本地最佳挑战。 CEA通过修改方形成步骤,引入混沌正面广告和迁移运算符来增强选举算法。通过混沌正面广告,CEA利用整个解决方案空间,增加了获得全球最佳点的可能性。通过迁移,CEA增加了人口的多样性,并阻止了个人的早期收敛。所提出的CEA算法在28个众所周知的标准边界约束测试函数上进行测试,并通过具有几种众所周知的元启发式的比较研究验证结果。结果表明,CEA能够通过规范选举算法和其他可比较算法提供显着改善。

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