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Combining Multiple Clustering Methods Based on Core Group

机译:基于核心组的多种聚类方法组合

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As an unsupervised technique, clustering analysis has been widely applied in various fields. However, it is usually difficult to select an appropriate clustering method for an application, while no clustering method is suitable for all situations. This paper proposes a novel method to combine multiple clustering methods. First, the paper combines different agglomerative hierarchical methods in one clustering process to obtain core groups. Core group refers to the data that are always clustered together no matter what clustering method is applied. Then, it adopts other kind of clustering methods to refine the core groups and index database. In addition to conduct a series of experiments on the datasets from UCI, the paper applies the proposed method in a new research field, 3D model retrieval, to analyze and index the 3D model database.
机译:作为一种无监督技术,聚类分析已广泛应用于各个领域。但是,通常很难为应用程序选择合适的聚类方法,而没有一种聚类方法适合所有情况。本文提出了一种结合多种聚类方法的新方法。首先,本文在一个聚类过程中结合了不同的聚集层次方法,以获得核心组。核心组是指无论采用哪种聚类方法,始终聚集在一起的数据。然后,它采用其他类型的聚类方法来完善核心组和索引数据库。除了对UCI的数据集进行一系列实验外,本文还将提出的方法应用于3D模型检索这一新的研究领域,以对3D模型数据库进行分析和索引。

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