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Article Dans Une Revue Information Sciences Année : 2010

A revisited approach to linear fuzzy regression using trapezoidal fuzzy intervals

Résumé

Conventional Fuzzy regression using possibilistic concepts allows the identification of models from uncertain data sets. However, some limitations still exist. This paper deals with a revisited approach for possibilistic fuzzy regression methods. Indeed, a new modified fuzzy linear model form is introduced where the identified model output can envelop all the observed data and ensure a total inclusion property. Moreover, this model output can have any kind of spread tendency. In this framework, the identification problem is reformulated according to a new criterion that assesses the model fuzziness independently from the collected data distribution. The potential of the proposed method with regard to the conventional approach is illustrated by simulation examples.

Dates et versions

hal-00515125 , version 1 (05-09-2010)

Identifiants

Citer

Amory Bisserier, Reda Boukezzoula, Sylvie Galichet. A revisited approach to linear fuzzy regression using trapezoidal fuzzy intervals. Information Sciences, 2010, 180 (19), pp. 3653-3673. ⟨10.1016/j.ins.2010.06.017⟩. ⟨hal-00515125⟩
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