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Evolving Evolutionary Algorithms Using Linear Genetic Programming

机译:使用线性遗传规划的进化进化算法

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摘要

A new model for evolving Evolutionary Algorithms is proposed in this paper. The model is based on the Linear Genetic Programming (LGP) technique. Every LGP chromosome encodes an EA which is used for solving a particular problem. Several Evolutionary Algorithms for function optimization, the Traveling Salesman Problem and the Quadratic Assignment Problem are evolved by using the considered model. Numerical experiments show that the evolved Evolutionary Algorithms perform similarly and sometimes even better than standard approaches for several well-known benchmarking problems.
机译:提出了一种进化进化算法的新模型。该模型基于线性遗传编程(LGP)技术。每个LGP染色体都编码一个用于解决特定问题的EA。通过使用考虑的模型,可以开发出几种用于函数优化的进化算法,旅行商问题和二次赋值问题。数值实验表明,对于几种众所周知的基准测试问题,进化的进化算法的性能相似,有时甚至优于标准方法。

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