A pattern classifier for interval-valued data based on multinomial logistic regression model

Interval-valued data arise in practical situations such as recording monthly interval temperatures at meteorological stations, daily interval stock prices, etc. This paper introduces a multinomial logistic regression method for interval-valued data in order to classify items described by interval-va...

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Hauptverfasser: de Barros, Alberto Pereira, de Assis Tenorio de Carvalho, Francisco, de Andrade Lima Neto, Eufrasio
Format: Tagungsbericht
Sprache:eng
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Zusammenfassung:Interval-valued data arise in practical situations such as recording monthly interval temperatures at meteorological stations, daily interval stock prices, etc. This paper introduces a multinomial logistic regression method for interval-valued data in order to classify items described by interval-valued variables into a pre-defined number of a priori classes. Applications of the proposed approach on real as well as synthetic interval-valued data sets showed the usefulness of this approach.
ISSN:1062-922X
DOI:10.1109/ICSMC.2012.6377781