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Clustering Rules: A Comparison of Partitioning and Hierarchical Clustering Algorithms

机译:聚类规则:分区聚类算法和分层聚类算法的比较

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摘要

Previous research has resulted in a number of different algorithms for rule discovery. Two approaches discussed here, the ‘all-rules’ algorithm and multi-objective metaheuristics, both result in the production of a large number of partial classification rules, or ‘nuggets’, for describing different subsets of the records in the class of interest. This paper describes the application of a number of different clustering algorithms to these rules, in order to identify similar rules and to better understand the data.
机译:先前的研究产生了许多不同的规则发现算法。这里讨论的两种方法,即“全规则”算法和多目标元启发式方法,都导致产生了大量的局部分类规则或“块”,用于描述感兴趣类别中记录的不同子集。本文介绍了许多不同的聚类算法在这些规则上的应用,以识别相似的规则并更好地理解数据。

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