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A METHOD OF GENERATING RULES FOR A KERNEL FUZZY CLASSIFIER

机译:核模糊分类器规则生成方法

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摘要

A method of generating rules for a kernel fuzzy classifier is introduced.For this method, firstly, the initial sample space is mapped into a high dimensional feature space by selecting the appropriate kernel function.Then in the feature space, the proposed dynamic clustering algorithm dynamically separates the training samples into different clusters and finds out the support vectors of each cluster.For each cluster, a fuzzy rule is defined with ellipsoidal regions.Finally, the rules are adjusted by Genetic Algorithms.This classifier with such fuzzy rules is evaluated by two typical data sets.For this classifier, the learning time is short, the classification accuracy is better and the speed of classification is quick.
机译:介绍了一种用于生成核模糊分类器规则的方法,该方法首先通过选择适当的核函数将初始样本空间映射到高维特征空间,然后在特征空间中动态地提出动态聚类算法将训练样本分成不同的聚类,并找出每个聚类的支持向量。对于每个聚类,用椭圆形区域定义一个模糊规则,最后用遗传算法调整规则,用两个模糊规则对该分类器进行评估该分类器学习时间短,分类准确度高,分类速度快。

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