Literature DB >> 26949421

Improved initialisation of model-based clustering using Gaussian hierarchical partitions.

Luca Scrucca1, Adrian E Raftery2.   

Abstract

Initialisation of the EM algorithm in model-based clustering is often crucial. Various starting points in the parameter space often lead to different local maxima of the likelihood function and, so to different clustering partitions. Among the several approaches available in the literature, model-based agglomerative hierarchical clustering is used to provide initial partitions in the popular mclust R package. This choice is computationally convenient and often yields good clustering partitions. However, in certain circumstances, poor initial partitions may cause the EM algorithm to converge to a local maximum of the likelihood function. We propose several simple and fast refinements based on data transformations and illustrate them through data examples.

Entities:  

Keywords:  Model-based clustering; data transformation; mclust; model-based agglomerative hierarchical clustering

Year:  2015        PMID: 26949421      PMCID: PMC4776768          DOI: 10.1007/s11634-015-0220-z

Source DB:  PubMed          Journal:  Adv Data Anal Classif        ISSN: 1862-5355


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