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Automatic Modeling of Complex Functions with Clonal Selection-Based Gene Expression Programming

机译:基于克隆选择的基因表达编程自动建模复杂功能

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Gene Expression Programming (GEP) is a powerful evolutionary algorithm derived from Genetic Algorithm and Genetic Programming for system modeling and knowledge discovery. However, when dealing with complex problems, GEP shows quite slow convergence speed, it also probably encounters premature convergence. This paper proposed a Clonal Selection-based Gene Expression Programming (CS-GEP), which combines the advantages of Clonal Selection Algorithm (CSA) and GEP, overcoming some drawbacks of GEP. CS-GEP is applied into function modeling experiments, the results show that CS-GEP has faster convergence speed and higher modeling precision than that of GEP.
机译:基因表达编程(GEP)是一种强大的进化算法,来自遗传算法和用于系统建模和知识发现的遗传编程。但是,在处理复杂问题时,GEP显示了相应缓慢的收敛速度,也可能遇到过早的收敛。本文提出了一种基于克隆选择的基因表达编程(CS-GEP),其结合了克隆选择算法(CSA)和GEP的优点,克服了GEP的一些缺点。 CS-GEP应用于功能建模实验,结果表明,CS-GEP具有更快的收敛速度和比GEP的更高的建模精度。

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