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Merging the components of a finite mixture using posterior probabilities

机译:使用后验概率合并有限混合物的组件

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Methods in parametric cluster analysis commonly assume data can be modelled by means of a finite mixture of distributions. However, associating each mixture component to one cluster is frequently misleading because different mixture components can overlap, and then, associated clusters can overlap too suggesting a unique cluster. A number of approaches have already been proposed to construct the clusters by merging components using the posterior probabilities. This article presents a generic approach for building a hierarchy of mixture components that integrates and generalizes some techniques proposed earlier in the literature. Using this proposal, two new techniques based on the log-ratio of posterior probabilities are introduced. Moreover, to decide the final number of clusters, two new methods are presented. Simulated and real datasets are used to illustrate this methodology.
机译:参数集群分析中的方法通常可以通过分布的有限混合物来建模数据。 然而,将每个混合组件与一个簇相关联经常误导,因为不同的混合组件可以重叠,然后,相关的群集可以重叠,暗示唯一的群集。 已经提出了许多方法来构造群集通过使用后验概率合并组件来构造群集。 本文介绍了构建集成和概括文献中提出的一些技术的混合组件层次的一般方法。 使用此提议,介绍了基于后验概率的逻辑比的两种新技术。 此外,为决定最终的簇数,提出了两种新方法。 模拟和实际数据集用于说明这种方法。

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