In this work we describe a clustering and feature selection technique applied to the analysis of international dietary profiles. An asymmetric entropy-based measure for assessing the similarity between two clusterizations, also taking into account subclustering relationships, is at the core of the technique, together with PCA. Then, a feature analysis of the dataset with respect to its hierarchical clusterization is performed. This way, most significant features of the dataset are found and a deep understanding of the data distribution is made possible.

PCA Based Feature Selection Applied to the Analysis of the International Variation in Diet

MARIANI COSTANTINI, Renato;VERGINELLI, Fabio
2007-01-01

Abstract

In this work we describe a clustering and feature selection technique applied to the analysis of international dietary profiles. An asymmetric entropy-based measure for assessing the similarity between two clusterizations, also taking into account subclustering relationships, is at the core of the technique, together with PCA. Then, a feature analysis of the dataset with respect to its hierarchical clusterization is performed. This way, most significant features of the dataset are found and a deep understanding of the data distribution is made possible.
2007
Inglese
4578
551
556
6
9
info:eu-repo/semantics/article
262
F., Bishehsari; M., Mahdavinia; R., Malekzadeh; MARIANI COSTANTINI, Renato; G., Miele; F., Napolitano; G., Raiconi; Tagliaferri, R; Verginelli, Fabio...espandi
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11564/133782
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