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A study on hyperbox classifier with domino extension in pattern recognition: Hyperbox driven classifier in pattern recognition

机译:模式识别中具有多米诺扩展的hyperbox分类器的研究:模式识别中由hyperbox驱动的分类器

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In this study, we introduce the development of hyperbox classifier with hierarchical two-level granular structure, namely set (interval) and fuzzy set in dealing with a description of geometry of patterns belonging to a certain category. We take advantage of the capabilities of sets when describing a core structure of classes of patterns in the form of some hyperboxes. Their combinations are referred to as a core structure of the feature space. Next, we refine the geometry of the classifier by bringing forward the concepts of regions of the feature space characterized by fuzzy sets. They are sought as a secondary structure. A series of numeric examples are used to demonstrate the effectiveness of the proposed classifiers.
机译:在这项研究中,我们介绍了具有分级两级粒度结构(即集合(间隔)和模糊集)的hyperbox分类器的开发,该分类器用于处理属于特定类别的图案的几何形状的描述。当以一些超盒子的形式描述模式类别的核心结构时,我们利用集合的功能。它们的组合称为要素空间的核心结构。接下来,我们通过提出以模糊集为特征的特征空间区域的概念来细化分类器的几何形状。他们被寻求作为二级结构。使用一系列数值示例来证明所提出的分类器的有效性。

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