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Imperialist Competitive Algorithm Using Chaos Theory for Optimization (CICA)

机译:使用混沌理论进行优化的帝国主义竞争算法(CICA)

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The Imperialist Competitive Algorithm (ICA) that was recently introduced has shown its good performance in optimization problems. This novel optimization algorithm is inspired by socio-political process of imperialistic competition in the real world. In this paper a new Imperialist Competitive Algorithm using chaotic maps (CICA) is proposed. In the proposed algorithm, the chaotic maps are used to adapt the angle of colonies movement towards imperialistȁ9;s position to enhance the escaping capability from a local optima trap. The ICA is easily stuck into a local optimum when solving high-dimensional multi-model numerical optimization problems. To overcome this shortcoming, we use four different chaotic map incorporated into ICA to enhance the exploration capability. Some famous unconstraint benchmark functions are used to test the CICA performance. Simulation results show this variant can improve the performance significantly
机译:最近推出的帝国主义竞争算法(ICA)在优化问题上显示出良好的性能。这种新颖的优化算法受到现实世界中帝国主义竞争的社会政治过程的启发。本文提出了一种新的基于混沌映射的帝国主义竞争算法(CICA)。在该算法中,混沌映射被用来适应菌落向帝国主义9位置的移动角度,以增强从局部最优陷阱的逃避能力。解决高维多模型数值优化问题时,ICA很容易陷入局部最优状态。为了克服这个缺点,我们使用了四个不同的混沌映射并入ICA来增强勘探能力。一些著名的无约束基准函数用于测试CICA性能。仿真结果表明,该变体可以显着提高性能

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