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A performance measure for the fuzzy cluster validity

机译:模糊集群有效性的性能措施

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The primary concern with the use of any clustering is how well it has identified the structure that is present in the data. This is the "cluster validity problem". In this paper, we define G as a measure of the quality of clustering which is based on the mini-max filter concept and fuzzy theory. It measures the overall average compactness and separation of a fuzzy c-partition and explore the properties of G, and we define I/sub G/ as a more suitable measure to compare the clustering result of one fuzzy c/sub 1/-partition with another c/sub 2/-partition of a data set. We show the measure I/sub G/ can be used to select an optimal number of clusters.
机译:使用任何聚类的主要问题是它识别数据中存在的结构的程度。这是“群集有效性问题”。在本文中,我们将G定义为基于Mini-Max滤波器概念和模糊理论的聚类质量的衡量标准。它测量模糊C分区的总体平均压缩性和分离,并探索g的属性,我们将I / SUB G /作为更合适的度量来比较,以比较一个模糊C / SUB 1 / -Partition的聚类结果另一个C / SUB 2 / -Partition的数据集。我们显示了测量I / SUB G /可用于选择最佳数量的簇。

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