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Improved Bat Algorithm Based on Multipopulation Strategy of Island Model for Solving Global Function Optimization Problem

机译:求解全局功能优化问题的基于岛模型多种群策略的改进蝙蝠算法

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摘要

The bat algorithm (BA) is a heuristic algorithm that globally optimizes by simulating the bat echolocation behavior. In order to improve the search performance and further improve the convergence speed and optimization precision of the bat algorithm, an improved algorithm based on chaotic map is introduced, and the improved bat algorithm of Levy flight search strategy and contraction factor is proposed. The optimal chaotic map operator is selected based on the simulation experiments results. Then, a multipopulation parallel bat algorithm based on the island model is proposed. Finally, the typical test functions are used to carry out the simulation experiments. The simulation results show that the proposed improved algorithm can effectively improve the convergence speed and optimization accuracy.
机译:蝙蝠算法(BA)是一种启发式算法,通过模拟蝙蝠的回声定位行为进行全局优化。为了提高蝙蝠算法的搜索性能,并进一步提高其收敛速度和优化精度,提出了一种基于混沌映射的改进算法,并提出了一种改进的Levy飞行搜索策略和收缩因子蝙蝠算法。根据仿真实验结果选择最佳混沌映射算子。然后,提出了一种基于岛模型的多种群并行蝙蝠算法。最后,使用典型的测试功能进行仿真实验。仿真结果表明,改进算法可以有效提高收敛速度和优化精度。

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