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A Hybrid Genetic Algorithm with Fitness Sharing Based on Rough Sets Theory

机译:基于粗集理论的适应度共享的混合遗传算法

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This paper presents a new method integrated sharing genetic algorithm (SGA), rough sets theory (RST) and bit-climbing algorithm for multimodal function optimization. We apply the SGA to complete the globe search and form niches which indicate the promising locations. Then, we utilize the strong qualitative analysis ability of rough sets to identify these niches. Finally, the bit-climbing algorithm is used to complete the local search and refine the solution in each of niches. The experiment has proved that using this approach to solve the multimodal function optimization is efficient both in robustness and in accuracy.
机译:本文提出了一种新的集成共享遗传算法(SGA),粗糙集理论(RST)和位爬升算法的多模态函数优化方法。我们应用SGA来完成地球搜索并形成适当的位置,以指示有希望的位置。然后,我们利用粗糙集的强大定性分析能力来识别这些利基。最后,使用位爬升算法来完成局部搜索并优化每个小生境中的解决方案。实验证明,使用这种方法解决多峰函数优化在鲁棒性和准确性上都是有效的。

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