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Towards a More General XCS: Classifier Fusion and Don't Cares in Actions

机译:迈向更通用的XCS:分类器融合与行动无关

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Wilson's XCS represents and stores the knowledge it has acquired from an environment as a set of classifiers. In the XCS, don't cares (#) may be used in the conditions of classifiers to express generalization. This paper is focused on the representation of knowledge with the minimal number of classifiers. For this purpose, a new process called fusion is implemented. Fusion promotes the emergence of more generalized yet accurate classifiers and the reduction of the number of macroclassifiers. Furthermore, to get even more compact rules sets, the implementation of the # symbol in the action of the classifiers is proposed; this allows generalization when possible, and the existence non-competing classifiers in the population if a state has multiple equally correct actions that can be performed. The proposed modified generalized extended XCS (gXCS) was compared with the XCS on the Woods2 environment and a modification of this environment, modified-Wbods2, that has locations where there are multiple equally good actions. The performances of XCS and gXCS are very similar; yet, gXCS obtains more parsimonious rule sets. Furthermore, gXCS can find good rule sets even when the probability of # is set zero, contrary to the XCS.
机译:威尔逊的XCS代表并存储从环境中获取的知识作为一组分类器。在XCS中,可以在分类器的条件下使用“#”符号来表示一般化。本文着重于用最少数量的分类器来表示知识。为此,实施了称为融合的新过程。融合促进了更通用但更准确的分类器的出现,并减少了宏分类器的数量。此外,为了获得更紧凑的规则集,提出了在分类器的作用中实现#符号的实现;这样可以在可能的情况下进行概括,并且如果一个州可以执行多个同等正确的操作,则可以在总体中存在非竞争性分类器。将拟议的修改后的广义扩展XCS(gXCS)与Woods2环境上的XCS进行了比较,并将该环境的一个变型(即修改后的Wbods2)进行了修改,该位置具有多个具有相同效果的位置。 XCS和gXCS的性能非常相似。但是,gXCS获得了更多的简化规则集。此外,与XCS相反,即使#的概率设置为零,gXCS仍可以找到良好的规则集。

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