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Fast Training of a Fuzzy Classifier with Pyramidal Membership Functions

机译:用金字塔隶属函数的模糊分类器快速训练

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In this paper we discuss a fuzzy classifier with pyramidal membership functions and its training method. First we divide the training data for each class into several dusters and for each cluster we define a fuzzy rule with a hyperbox region that includes all the training data in the cluster and define a pyramidal membership function for the hyperbox. Then we tune the fuzzy rules, i.e., the locations of the hyperboxes and the slopes of the membership functions successively until there is no improvement in the recognition rate for the training data. We evaluate our method using two benchmark data sets and compare the performance with other classifiers.
机译:在本文中,我们讨论了一种具有金字塔员工功能的模糊分类器及其培训方法。首先,我们将每个类的培训数据划分为几个粉碎器,并且对于每个群集,我们定义了一个模糊规则,其中包含包含群集中的所有训练数据的超级框区域,并为超级框定义了金字塔型成员资格函数。然后,我们调整模糊规则,即隶属于员工函数的超级钻孔的位置,直到培训数据的识别率没有改善。我们使用两个基准数据集进行评估我们的方法,并将性能与其他分类器进行比较。

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