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   On Model-Based Clustering, Classification, and Discriminant Analysis  
   
نویسنده McNicholas Paul D.
منبع journal of the iranian statistical society - 2011 - دوره : 10 - شماره : 2 - صفحه:181 -190
چکیده    The use of mixture models for clustering and classification has burgeoned into an important subfield of multivariate analysis. these approaches have been around for a half-century or so, with significant activity in the area over the past decade. the primary focus of this paper is to review work in model-based clustering, classification, and discriminant analysis, with particular attention being paid to two techniques that can be implemented using respective r packages. parameter estimation and model selection are also discussed. the paper concludes with a summary, discussion, and some thoughts on future work
کلیدواژه Classification ,clustering ,discriminant analysis ,mclust ,mixture models ,model-based clustering ,model selection ,parameter estimation ,pgmm
آدرس University of Guelph, Department of Mathematics and Statistics, Canada
پست الکترونیکی paul.mcnicholas@uoguelph.ca
 
     
   
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