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Genetic Network Programming for Automatic Program Generation

机译:遗传网络编程,可自动生成程序

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In this paper, a recently proposed Evolutionary Computation method called Genetic Network Programming (GNP) is applied to generate programs such as Boolean functions. GNP is an extension of Genetic Algorithm (GA) and Genetic Programming (GP). It has a directed graph structure as gene and can search for solutions effectively. GNP has been mainly applied to dynamic problems and has shown better performances compared to GP. However, its application to static problems has not yet been studied well. Thus in this paper, GNP is applied to generate programs as its extension to solving static problems. In order to apply GNP to generating static problems, we introduced a new element, memory. In the proposed method, a GNP individual consists of a directed graph and a memory, while one in conventional GNP consists only of a directed graph. In the simulations, GNP succeeded in solving Even-n-Parity problem and Mirror Symmetry problem.
机译:在本文中,最近提出的一种称为遗传网络编程(GNP)的进化计算方法被用于生成诸如布尔函数之类的程序。 GNP是遗传算法(GA)和遗传编程(GP)的扩展。它具有有向图结构作为基因,可以有效地寻找解决方案。与GP相比,GNP主要应用于动态问题,并且表现出更好的性能。但是,它对静态问题的应用还没有得到很好的研究。因此,本文将GNP应用于生成程序作为其扩展解决静态问题的方法。为了将GNP应用于产生静态问题,我们引入了一个新元素,内存。在提出的方法中,一个GNP个体由一个有向图和一个内存组成,而常规GNP中的一个人仅由一个有向图组成。在仿真中,GNP成功地解决了偶数n奇偶性问题和镜像对称性问题。

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