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A fuzzy clustering ensemble based on cluster clustering and iterative Fusion of base clusters

机译:基于群集聚类和基础集群迭代融合的模糊聚类合奏

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摘要

For obtaining the more robust, novel, stable, and consistent clustering result, clustering ensemble has been emerged. There are two approaches in clustering ensemble frameworks: (a) the approaches that focus on creation or preparation of a suitable ensemble, called as ensemble creation approaches, and (b) the approaches that try to find a suitable final clustering (called also as consensus clustering) out of a given ensemble, called as ensemble aggregation approaches. The first approaches try to solve ensemble creation problem. The second approaches try to solve aggregation problem. This paper tries to propose an ensemble aggregator, or a consensus function, called as Robust Clustering Ensemble based on Sampling and Cluster Clustering (RCESCC).RCESCC algorithm first generates an ensemble of fuzzy clusterings generated by the fuzzy c-means algorithm on subsampled data. Then, it obtains a cluster-cluster similarity matrix out of the fuzzy clusters. After that, it partitions the fuzzy clusters by applying a hierarchical clustering algorithm on the cluster-cluster similarity matrix. In the next phase, the RCESCC algorithm assigns the data points to merged clusters. The experimental results comparing with the state of the art clustering algorithms indicate the effectiveness of the RCESCC algorithm in terms of performance, speed and robustness.
机译:为了获得更强大的,新颖,稳定和一致的聚类结果,已经出现了聚类集群。聚类集群框架中有两种方法:(a)专注于创建或准备合适的合成的方法,称为集合创建方法,以及试图找到合适的最终聚类的方法(也称为共识也称为共识聚类)从给定的集合中,称为集合聚合方法。第一种方法试图解决集合创作问题。第二种方法尝试解决聚合问题。本文试图提出基于采样和群集聚类(RCECC)的集成聚合器或共识函数,或者是基于采样和群集聚类(RCECC).rcescc算法,首先生成由对数据上的模糊C均值算法生成的模糊群集的集合。然后,它从模糊簇中获取群集群集相似性矩阵。之后,它通过在群集群集相似性矩阵上应用分层聚类算法来分区模糊簇。在下阶段,RCECC算法将数据点分配给合并的集群。与现有技术算法相比的实验结果表明了RCECC算法在性能,速度和鲁棒性方面的有效性。

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