In performing a fuzzy multiple linear regression model, important topics are: to measure the fitting quality of the model and to find the "best" set of input variables that explain the variation in the observed system responses. In this paper, by considering an exploratory approach, to express the quality of fit of a fuzzy linear regression model, a coefficient of multiple determination R-2 for symmetrical fuzzy variable has been suggested. Furthermore, for overcoming the inconveniences of R-2 an adjusted version of R-2 (denoted by (R) over bar (2)) has been defined. For measuring the fitting performances of the estimated model, a fuzzy extension of another goodness of fit measure, the so-called Mallows index (C-p), has been considered. All the proposed fitting measures have been utilized for selecting suitably the input variables of a fuzzy linear regression model. To this purpose, some variable selection procedures based on R-2, (R) over bar (2) and C-p have been suitably extended in a fuzzy framework. To explain the efficacy of the goodness of fit measures and the variable selection criteria some examples are also shown. (c) 2006 Elsevier B.V. All rights reserved.

Goodness of fit and variable selection in the fuzzy multiple linear regression / D'Urso, Pierpaolo; Adriana, Santoro. - In: FUZZY SETS AND SYSTEMS. - ISSN 0165-0114. - 157:19(2006), pp. 2627-2647. [10.1016/j.fss.2005.03.015]

Goodness of fit and variable selection in the fuzzy multiple linear regression

D'URSO, Pierpaolo;
2006

Abstract

In performing a fuzzy multiple linear regression model, important topics are: to measure the fitting quality of the model and to find the "best" set of input variables that explain the variation in the observed system responses. In this paper, by considering an exploratory approach, to express the quality of fit of a fuzzy linear regression model, a coefficient of multiple determination R-2 for symmetrical fuzzy variable has been suggested. Furthermore, for overcoming the inconveniences of R-2 an adjusted version of R-2 (denoted by (R) over bar (2)) has been defined. For measuring the fitting performances of the estimated model, a fuzzy extension of another goodness of fit measure, the so-called Mallows index (C-p), has been considered. All the proposed fitting measures have been utilized for selecting suitably the input variables of a fuzzy linear regression model. To this purpose, some variable selection procedures based on R-2, (R) over bar (2) and C-p have been suitably extended in a fuzzy framework. To explain the efficacy of the goodness of fit measures and the variable selection criteria some examples are also shown. (c) 2006 Elsevier B.V. All rights reserved.
2006
adjusted coefficient of multiple determination; coefficient of multiple determination; crisp input variables; deviance decomposition; exploratory approach; fitting measure; fuzzy linear regression analysis; least-squares approach; mallows measure; symmetrical fuzzy output variable; variable selection criteria
01 Pubblicazione su rivista::01a Articolo in rivista
Goodness of fit and variable selection in the fuzzy multiple linear regression / D'Urso, Pierpaolo; Adriana, Santoro. - In: FUZZY SETS AND SYSTEMS. - ISSN 0165-0114. - 157:19(2006), pp. 2627-2647. [10.1016/j.fss.2005.03.015]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/129824
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