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Reduction of fuzzy systems through open product analysis of genetic algorithm-generated fuzzy rule sets

机译:通过对遗传算法生成的模糊规则集进行开放式产品分析来减少模糊系统

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We explore the reduction of a fuzzy classifier designed to perform a binary classification of tracked or wheeled vehicles based on acoustic data. A genetic algorithm is used to explore the design space of the classifier, with variations performed on the number of antecedents included in the final fuzzy system. Besides the original individual set generated by the GA, we define a subset of it with a small number of antecedents as a filtered set. A novel method of extracting important system components, known as open product analysis, is applied to these two sets, yielding systems that perform well with a small number of antecedents. The fuzzy classifier we reduced performs well using only 20 to 30% of the antecedents that were originally used for classification.
机译:我们探索模糊分类器的简化,该分类器旨在根据声学数据对履带或轮式车辆进行二进制分类。遗传算法用于探索分类器的设计空间,并对最终模糊系统中包含的先决条件数量进行变化。除了由GA生成的原始个体集之外,我们还定义了其中的子集以及少量的前因作为过滤后的集合。提取重要系统组件的一种新颖方法(称为开放产品分析)被应用于这两套系统,从而产生了具有少量先决条件的良好性能的系统。我们减少的模糊分类器仅使用最初用于分类的20%到30%的先行词才能表现良好。

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