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A novel multi-population cultural algorithm adopting knowledge migration

机译:知识迁移的新型多元文化算法

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In existing multi-population cultural algorithms, information is exchanged among sub-populations by individuals. However, migrated individuals cannot reflect enough evolutionary information, which limits the evolution performance. In order to enhance the migration efficiency, a novel multi-population cultural algorithm adopting knowledge migration is proposed. Implicit knowledge extracted from the evolution process of each sub-population directly reflects the information about dominant search space. By migrating knowledge among sub-populations at the constant intervals, the algorithm realizes more effective interaction with less communication cost. Taken benchmark functions with high-dimension as the examples, simulation results indicate that the algorithm can effectively improve the speed of convergence and overcome premature convergence.
机译:在现有的多种群文化算法中,信息是由个人在子种群之间交换的。但是,移民个体无法反映足够的进化信息,这限制了进化性能。为了提高迁移效率,提出了一种新的采用知识迁移的多元文化算法。从每个子群体的演化过程中提取的隐式知识直接反映了有关优势搜索空间的信息。通过以固定的时间间隔在子种群之间迁移知识,该算法实现了更有效的交互,并且通信成本更低。仿真结果以高维基准函数为例,表明该算法可以有效地提高收敛速度,克服早熟收敛。

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