论文标题

K-均值算法输出的聚类保留转换

A Clustering Preserving Transformation for k-Means Algorithm Output

论文作者

Kłopotek, Mieczysław A.

论文摘要

本说明介绍了一种新颖的聚类保存从$ k $ -MEANS算法获得的集群集的转换。此转换可用于生成来自现有数据的新标记数据{}集合。基于Kleinberg Axiom的一致性转换更为灵活,因为可以移开群集中的数据点,并且群集之间的数据点可能会更加近。

This note introduces a novel clustering preserving transformation of cluster sets obtained from $k$-means algorithm. This transformation may be used to generate new labeled data{}sets from existent ones. It is more flexible that Kleinberg axiom based consistency transformation because data points in a cluster can be moved away and datapoints between clusters may come closer together.

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