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A Cellular Genetic Algorithm with Disturbances: Optimisation Using Dynamic Spatial Interactions

机译:具有干扰的细胞遗传算法:使用动态空间相互作用的优化

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摘要

This paper describes a novel evolutionary algorithm inspired by the nature of spatial interactions in ecological systems. The Cellular Genetic Algorithm with Disturbances (CGAD) can be seen as a hybrid between a fine-grained and a coarse-grained parallel genetic algorithm. The introduction of a "disturbance-colonisation" cycle provides a mechanism for maintaining flexible subpopulation sizes and self-adaptive controls on migration. Experiments conducted, using a range of stationary and non-stationary optimisation problems, show how changes in the structure of the environment can lead to changes in selective pressure, population diversity and subsequently solution quality. The significance of the disturbance events lies in the new "ecological" patterns that arise during the recovery phase.
机译:本文描述了一种新颖的进化算法,该算法受生态系统中空间相互作用的本质启发。带有干扰的细胞遗传算法(CGAD)可以看作是细粒度和粗粒度并行遗传算法之间的混合体。 “干扰殖民化”周期的引入提供了一种机制,可以保持灵活的亚种群规模以及对迁移的自适应控制。使用一系列固定和非固定优化问题进行的实验表明,环境结构的变化如何导致选择压力,种群多样性以及随后的解决方案质量发生变化。干扰事件的重要性在于恢复阶段出现的新“生态”模式。

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