Quantile-based clustering

被引:5
|
作者
Hennig, Christian [1 ]
Viroli, Cinzia [1 ]
Anderlucci, Laura [1 ]
机构
[1] Univ Bologna, Dept Stat Sci, Via Belle Arti 41, I-40126 Bologna, Italy
来源
ELECTRONIC JOURNAL OF STATISTICS | 2019年 / 13卷 / 02期
关键词
Fixed partition model; quantile discrepancy; high dimensional clustering; nonparametric mixture; CLASSIFICATION; CONSISTENCY;
D O I
10.1214/19-EJS1640
中图分类号
O21 [概率论与数理统计]; C8 [统计学];
学科分类号
020208 ; 070103 ; 0714 ;
摘要
A new cluster analysis method, K-quantiles clustering, is introduced. K-quantiles clustering can be computed by a simple greedy algorithm in the style of the classical Lloyd's algorithm for K-means. It can be applied to large and high-dimensional datasets. It allows for within-cluster skewness and internal variable scaling based on within-cluster variation. Different versions allow for different levels of parsimony and computational efficiency. Although K-quantiles clustering is conceived as nonparametric, it can be connected to a fixed partition model of generalized asymmetric Laplace-distributions. The consistency of K-quantiles clustering is proved, and it is shown that K-quantiles clusters correspond to well separated mixture components in a nonparametric mixture. In a simulation, K-quantiles clustering is compared with a number of popular clustering methods with good results. A high-dimensional microarray dataset is clustered by K-quantiles.
引用
收藏
页码:4849 / 4883
页数:35
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