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RAD: A Radar-Alike Data-Clustering Algorithm for Large Databases

机译:RAD:适用于大型数据库的类似雷达的数据聚类算法

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摘要

The popularity of data analysis for business has created a heavy load on demand. Consequently, data mining and data clustering have become significant topics for revealing the implied information recently. This investigation hence presents a novel data clustering algorithm that can be applied to a large database efficiently. The proposed algorithm, called RAD because it is a Radar-alike data-clustering algorithm for large databases, attains this aim because its computation time rises linearly as the data size increases. Experimental results indicate that RAD performs clustering quickly and with fairly good clustering quality and outperforms K-means, DBSCAN and IDBSCAN.
机译:数据分析在企业中的普及已造成需求的沉重负担。因此,数据挖掘和数据聚类已成为最近揭示隐含信息的重要主题。因此,本研究提出了一种新颖的数据聚类算法,该算法可以有效地应用于大型数据库。所提出的算法之所以称为RAD,是因为它与大型数据库类似,类似于Radar的数据聚类算法,由于其计算时间随数据大小的增加而线性增加,因此达到了这一目标。实验结果表明,RAD可以快速执行聚类,并且聚类质量相当好,并且优于K-means,DBSCAN和IDBSCAN。

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