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首页> 外文期刊>International journal of computational vision and robotics >Volume-based clustering for arbitrary shaped clusters
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Volume-based clustering for arbitrary shaped clusters

机译:基于体积的聚类,用于任意形状的聚类

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摘要

Volume-based clustering is a clustering technique for identifying arbitrary shaped clusters. The main aim of this paper is generation of arbitrary shaped clusters by forming sub-clusters which are merged to identify the actual shape of the clusters and two phase outlier detection and removal is conducted. By varying a user defined parameter e, user can get the desired number of clusters. Experiments were conducted on different sets of real and synthetic datasets to test our proposed algorithm and results are compared with other existing algorithms.
机译:基于体积的聚类是用于识别任意形状的聚类的聚类技术。本文的主要目的是通过形成子簇来生成任意形状的簇,将其合并以识别簇的实际形状,并进行两相离群值检测和去除。通过更改用户定义的参数e,用户可以获得所需数量的群集。对不同的真实和合成数据集进行了实验,以测试我们提出的算法,并将结果与​​其他现有算法进行了比较。

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