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Type-2 fuzzy logic-based classifier fusion for support vector machines

机译:支持向量机的基于2型模糊逻辑的分类器融合

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摘要

As a machine-learning tool, support vector machines (SVMs) have been gaining popularity due to their promising performance. However, the generalization abilities of SVMs often rely on whether the selected kernel functions are suitable for real classification data. To lessen the sensitivity of different kernels in SVMs classification and improve SVMs generalization ability, this paper proposes a fuzzy fusion model to combine multiple SVMs classifiers. To better handle uncertainties existing in real classification data and in the membership functions (MFs) in the traditional type-1 fuzzy logic system (FLS), we apply interval type-2 fuzzy sets to construct a type-2 SVMs fusion FLS. This type-2 fusion architecture takes considerations of the classification results from individual SVMs classifiers and generates the combined classification decision as the output. Besides the distances of data examples to SVMs hyperplanes, the type-2 fuzzy SVMs fusion system also considers the accuracy information of individual SVMs. Our experiments show that the type-2 based SVM fusion classifiers outperform individual SVM classifiers in most cases. The experiments also show that the type-2 fuzzy logic-based SVMs fusion model is better than the type-1 based SVM fusion model in general.
机译:作为一种机器学习工具,支持向量机(SVM)由于其有前途的性能而受到欢迎。但是,SVM的泛化能力通常取决于所选的内核功能是否适合于实际分类数据。为了降低支持向量机分类中不同内核的敏感性,提高支持向量机的泛化能力,提出了一种模糊融合模型,将多个支持向量机分类器组合在一起。为了更好地处理传统分类1模糊逻辑系统(FLS)中真实分类数据和隶属函数(MF)中存在的不确定性,我们应用区间2类型模糊集构造2类型SVM融合FLS。此类型2融合体系结构考虑了各个SVM分类器的分类结果,并生成组合的分类决策作为输出。除了数据示例与SVM超平面的距离外,类型2模糊SVM融合系统还考虑了各个SVM的精度信息。我们的实验表明,在大多数情况下,基于类型2的SVM融合分类器优于单个SVM分类器。实验还表明,一般而言,基于类型2模糊逻辑的SVM融合模型要优于基于类型1的SVM融合模型。

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