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Constituent Grammatical Evolution

机译:成分语法演变

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摘要

We present Constituent Grammatical Evolution (CGE), a new evolutionary automatic programming algorithm that extends the standard Grammatical Evolution algorithm by incorporating the concepts of constituent genes and conditional behaviour-switching. CGE builds from elementary and more complex building blocks a control program which dictates the behaviour of an agent and it is applicable to the class of problems where the subject of search is the behaviour of an agent in a given environment. It takes advantage of the powerful Grammatical Evolution feature of using a BNF grammar definition as a plug-in component to describe the output language to be produced by the system. The main benchmark problem in which CGE is evaluated is the Santa Fe Trail problem using a BNF grammar definition which defines a search space semantically equivalent with that of the original definition of the problem by Koza. Furthermore, CGE is evaluated on two additional problems, the Loss Altos Hills and the Hampton Court Maze. The experimental results demonstrate that Constituent Grammatical Evolution outperforms the standard Grammatical Evolution algorithm in these problems, in terms of both efficiency (percent of solutions found) and effectiveness (number of required steps of solutions found).
机译:我们提出了成分语法进化(CGE),这是一种新的进化自动编程算法,通过结合组成基因和条件行为转换的概念扩展了标准的语法进化算法。 CGE从基本且更复杂的构建块构建,该控制程序决定了代理的行为,并且该控制程序适用于问题类别,其中搜索的主题是给定环境中代理的行为。它利用了强大的语法演变功能,该功能使用BNF语法定义作为插件组件来描述系统要产生的输出语言。评估CGE的主要基准问题是使用BNF语法定义的Santa Fe Trail问题,该问题定义的搜索空间在语义上与Koza对该问题的原始定义相同。此外,对CGE的另外两个问题进行了评估,即Loss Altos Hills和Hampton Court Maze。实验结果表明,在效率(找到的解决方案的百分比)和有效性(找到的解决方案所需步骤数)方面,成分语法演化在这些问题上均优于标准的语法演化算法。

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