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   HDclassif: An R package for model-based clustering and discriminant analysis of high-dimensional data  
   
نویسنده bergé l. ,bouveyron c. ,girard s.
منبع journal of statistical software - 2012 - دوره : 46 - - کد همایش:
چکیده    This paper presents the r package hdclassif which is devoted to the clustering and the discriminant analysis of high-dimensional data. the classification methods proposed in the package result from a new parametrization of the gaussian mixture model which combines the idea of dimension reduction and model constraints on the covariance matrices. the supervised classification method using this parametrization is called high dimensional discriminant analysis (hdda). in a similar manner,the associated clustering method is called high dimensional data clustering (hddc) and uses the expectation-maximization algorithm for inference. in order to correctly fit the data,both methods estimate the specific subspace and the intrinsic dimension of the groups. due to the constraints on the covariance matrices,the number of parameters to estimate is significantly lower than other model-based methods and this allows the methods to be stable and eficient in high dimensions. two introductory examples illustrated with r codes allow the user to discover the hdda and hddc functions. experiments on simulated and real datasets also compare hddc and hdda with existing classification methods on high-dimensional datasets. hdclassif is a free software and distributed under the general public license,as part of the r software project.
کلیدواژه Class-specific subspaces; Clustering; Discriminant analysis; Gaussian mixture models; High-dimensional data; Model-based classification; Parsimonious models; R package
آدرس laboratoire gretha-umr cnrs 5113,université montesquieu-bordeaux iv,avenue léon duguit,33608 pessac cedex, France, laboratoire samm,ea 4543,université paris 1 panthéon-sorbonne,90 rue de tolbiac,75013 paris, France, team mistis,inria rhône-alpes and ljk,655 avenue de l'europe,montbonnot,38330 saint-ismier, France
 
     
   
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