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Sensitive Ants Are Sensible Ants

机译:敏感的蚂蚁是明智的蚂蚁

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摘要

This paper introduces an approach to evolving computer programs using an Attribute Grammar (AG) extension of Grammatical Evolution (GE) to eliminate ineffective pieces of code with the help of context-sensitive information. The standard Context-Free Grammars (CFGs) used in GE, Genetic Programming (GP) (which uses a special type of CFG with just a single non-terminal) and most other grammar-based system are not well-suited for codifying information about context. AGs, on the other hand, are grammars that contain functional units that can help determine context which, as this paper demonstrates, is key to removing ineffective code. The results presented in this paper indicate that, on a selection of grammars, the prevention of the appearance of ineffective code through the use of context analysis significantly improves the performance of and resistance to code bloat over both standard GE and GP for both Santa Fe Trail (SFT) and Los Altos Hills (LAH) trail version of the ant problem with same amount of energy used.
机译:本文介绍了一种使用语法演变(GE)的属性语法(AG)扩展来演化计算机程序的方法,以借助上下文相关的信息来消除无效的代码段。 GE中使用的标准无上下文语法(CFG),遗传编程(GP)(使用特殊类型的CFG仅具有一个非终端)和大多数其他基于语法的系统都不适合用于整理有关语境。另一方面,AG是包含功能单元的语法,这些功能单元可以帮助确定上下文,正如本文所演示的那样,上下文是消除无效代码的关键。本文提出的结果表明,在选择语法时,通过使用上下文分析来防止无效代码的出现,与标准的GE和GP相比,对于Santa Fe Trail而言,显着提高了代码膨胀的性能和抵抗力(SFT)和Los Altos Hills(LAH)的蚂蚁问题的追踪版本,使用的能量相同。

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