This paper deals with the problem of identifying different partitions of a given set of units obtained according to different subsets of the observed variables (multiple cluster structures). Procedures have been recently developed for detecting multiple cluster structures in a data matrix. In a previous paper we proposed a strategy which rely on model-based clustering methods and on a comparison between mixture models using model selection criteria. A generalization of this method which allows the analysis of data matrices with nested data structures is considered. The usefulness of the new method is shown using simulated and real examples.

Multiple cluster structures and mixture models: recent developments for multilevel data / G. Galimberti; G. Soffritti. - STAMPA. - (2007), pp. 203-206. (Intervento presentato al convegno Meeting of the Classification and Data Analysis Group of the Italian Statistical Society tenutosi a Macerata nel 12-14 Settembre 2007).

Multiple cluster structures and mixture models: recent developments for multilevel data

GALIMBERTI, GIULIANO;SOFFRITTI, GABRIELE
2007

Abstract

This paper deals with the problem of identifying different partitions of a given set of units obtained according to different subsets of the observed variables (multiple cluster structures). Procedures have been recently developed for detecting multiple cluster structures in a data matrix. In a previous paper we proposed a strategy which rely on model-based clustering methods and on a comparison between mixture models using model selection criteria. A generalization of this method which allows the analysis of data matrices with nested data structures is considered. The usefulness of the new method is shown using simulated and real examples.
2007
Classification and Data Analysis 2007
203
206
Multiple cluster structures and mixture models: recent developments for multilevel data / G. Galimberti; G. Soffritti. - STAMPA. - (2007), pp. 203-206. (Intervento presentato al convegno Meeting of the Classification and Data Analysis Group of the Italian Statistical Society tenutosi a Macerata nel 12-14 Settembre 2007).
G. Galimberti; G. Soffritti
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11585/57395
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