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An extension to fuzzy support vector data description (FSVDD)

机译:模糊支持向量数据描述(FSVDD)的扩展

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摘要

The well-known support vector data description (SVDD) is based on precise description of precise data. When we know the features of training samples precisely and we are uncertain about their class labels, the fuzzy SVDD can be used to obtain the data description. But if the features of training samples are fuzzy numbers, the fuzzy SVDD cannot be utilized. In this paper, we extend the fuzzy SVDD for the description of such training samples and then apply our proposed method, called FSVDD*, to real data. The experimental results show the ability of the proposed method in Taiwanese tea evaluation.
机译:众所周知的支持向量数据描述(SVDD)基于精确数据的精确描述。当我们精确地知道训练样本的特征并且不确定它们的类别标签时,可以使用模糊SVDD来获取数据描述。但是,如果训练样本的特征是模糊数,则不能使用模糊SVDD。在本文中,我们扩展了模糊SVDD以描述此类训练样本,然后将我们提出的方法FSVDD *应用于实际数据。实验结果表明了该方法在台湾茶评鉴中的能力。

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