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Relational Fuzzy c-Means and Kernel Fuzzy c-Means Using an Object-Wise β-Spread Transformation

机译:使用对象明智的β扩散变换的关系模糊c均值和核模糊c均值

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摘要

Clustering methods of relational data are often based on the assumption that a given set of relational data is Euclidean, and kernelized clustering methods are often based on the assumption that a given kernel is positive semidefinite. In practice, non-Euclidean relational data and an indefinite kernel may arise, and a β-spread transformation was proposed for such cases, which modified a given set of relational data or a give a kernel Gram matrix such that the modified β value is common to all objects. In this paper, we propose an object-wise β-spread transformation for use in both relational and kernelized fuzzy c-means clustering. The proposed system retains the given data better than conventional methods, and numerical examples show that our method is efficient for both relational and kernel fuzzy c-means.
机译:关系数据的聚类方法通常基于给定的一组关系数据是欧几里得的假设,而核化的聚类方法通常基于给定内核为正半定的假设。在实践中,可能会出现非欧几里得关系数据和不确定的核,并且针对这种情况提出了一个β扩展变换,它修改了给定的一组关系数据或给出了一个核Gram矩阵,使得修改后的β值是公共的。对所有对象。在本文中,我们提出了一种面向对象的β扩散变换,用于关系型和带核的模糊c均值聚类。所提出的系统比常规方法更好地保留了给定的数据,数值算例表明,我们的方法对于关系型和核模糊c均值均有效。

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