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Divfrp: An Automatic Divisive Hierarchical Clustering Method Based On The Furthest Reference Points

机译:Divfrp:一种基于最远参考点的自动划分层次聚类方法

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摘要

Although many clustering methods have been presented in the literature, most of them suffer from some drawbacks such as the requirement of user-specified parameters and being sensitive to outliers. For general divisive hierarchical clustering methods, an obstacle to practical use is the expensive computation. In this paper, we propose an automatic divisive hierarchical clustering method (DIVFRP). Its basic idea is to bipartition clusters repeatedly with a novel dissimilarity measure based on furthest reference points. A sliding average of sum-of-error is employed to estimate the cluster number preliminarily, and the optimum number of clusters is achieved after spurious clusters identified. The method does not require any user-specified parameter, even any cluster validity index. Furthermore it is robust to outliers, and the computational cost of its partition process is lower than that of general divisive clustering methods. Numerical experimental results on both synthetic and real data sets show the performances of DIVFRP.
机译:尽管文献中已经提出了许多聚类方法,但是它们中的大多数都有一些缺点,例如需要用户指定参数并且对异常值敏感。对于一般的划分层次聚类方法,实际使用的障碍是昂贵的计算。在本文中,我们提出了一种自动划分层次聚类方法(DIVFRP)。它的基本思想是使用一种基于最远参考点的新颖的相似性度量来重复对分区进行二分。误差和的滑动平均被用来初步估计聚类数,并且在识别出虚假聚类之后获得最佳聚类数。该方法不需要任何用户指定的参数,甚至不需要任何集群有效性索引。此外,它对异常值具有鲁棒性,并且其划分过程的计算成本低于常规的除法聚类方法。合成和真实数据集上的数值实验结果表明了DIVFRP的性能。

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