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A tree-based incremental overlapping clustering method using the three-way decision theory

机译:基于三路决策理论的基于树的增量重叠聚类方法

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Existing clustering approaches are usually restricted to crisp clustering, where objects just belong to one cluster; meanwhile there are some applications where objects could belong to more than one cluster. In addition, existing clustering approaches usually analyze static datasets in which objects are kept unchanged after being processed; however many practical datasets are dynamically modified which means some previously learned patterns have to be updated accordingly. In this paper, we propose a new tree-based incremental overlapping clustering method using the three-way decision theory. The tree is constructed from representative points introduced by this paper, which can enhance the relevance of the search result. The overlapping cluster is represented by the three-way decision with interval sets, and the three-way decision strategies are designed to updating the clustering when the data increases. Furthermore, the proposed method can determine the number of clusters during the processing. The experimental results show that it can identifies clusters of arbitrary shapes and does not sacrifice the computing time, and more results of comparison experiments show that the performance of proposed method is better than the compared algorithms in most of cases. (C) 2015 Elsevier B.V. All rights reserved.
机译:现有的聚类方法通常仅限于清晰的聚类,即对象仅属于一个聚类。同时,在某些应用程序中,对象可能属于多个群集。另外,现有的聚类方法通常分析静态数据集,其中对象在处理后保持不变。但是,许多实际的数据集都是动态修改的,这意味着一些以前学习的模式必须相应地更新。在本文中,我们使用三向决策理论提出了一种新的基于树的增量重叠聚类方法。该树是由本文介绍的代表点构成的,可以增强搜索结果的相关性。重叠聚类由具有间隔集的三向决策表示,并且三向决策策略设计为在数据增加时更新聚类。此外,所提出的方法可以确定处理期间的簇数。实验结果表明,该方法能够识别任意形状的簇,并且不牺牲计算时间,更多的比较实验结果表明,在大多数情况下,该方法的性能均优于比较算法。 (C)2015 Elsevier B.V.保留所有权利。

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