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首页> 外文期刊>Journal of Multivariate Analysis: An International Journal >Dissolution point and isolation robustness: Robustness criteria for general cluster analysis methods
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Dissolution point and isolation robustness: Robustness criteria for general cluster analysis methods

机译:溶出点和隔离鲁棒性:通用聚类分析方法的鲁棒性标准

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摘要

Two robustness criteria are presented that are applicable to general clustering methods. Robustness and stability in cluster analysis are not only data dependent, but even cluster dependent. Robustness is in the present paper defined as a property of not only the clustering method, but also of every individual cluster in a data set. The main principles are: (a) dissimilarity measurement of an original cluster with the most similar cluster in the induced clustering obtained by adding data points, (b) the dissolution point, which is an adaptation of the breakdown point concept to single clusters, (c) isolation robustness: given a clustering method, is it possible to join, by addition of g points, arbitrarily well separated clusters? Results are derived for k-means, k-medoids (k estimated by average silhouette width), trimmed k-means, mixture models (with and without noise component, with and without estimation of the number of clusters by BIC), single and complete linkage. (C) 2007 Elsevier Inc. All rights reserved.
机译:提出了两个适用于一般聚类方法的鲁棒性标准。聚类分析中的鲁棒性和稳定性不仅取决于数据,而且甚至取决于聚类。在本文中,鲁棒性不仅定义为聚类方法的属性,而且还定义为数据集中每个聚类的属性。主要原理是:(a)通过添加数据点获得的诱导聚类中具有最相似聚类的原始聚类的不相似性度量;(b)分解点,这是对单个聚类的分解点概念的适应性;( c)隔离鲁棒性:给定一种聚类方法,是否可以通过添加g个点来加入任意分离的聚类?得出以下结果:k均值,k均值(通过平均轮廓宽度估计的k),修剪后的k均值,混合模型(带有和不带有噪声分量,带有和不带有BIC估计的簇数),单个和完整的连锁。 (C)2007 Elsevier Inc.保留所有权利。

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