Casillas Accuracy Improvements in Linguistic Fuzzy Modeling

Accuracy Improvements in Linguistic Fuzzy Modeling

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Beschreibung

Fuzzy modeling usually comes with two contradictory requirements: interpretability, which is the capability to express the real system behavior in a comprehensible way, and accuracy, which is the capability to faithfully represent the real system. In this framework, one of the most important areas is linguistic fuzzy modeling, where the legibility of the obtained model is the main objective. This task is usually developed by means of linguistic (Mamdani) fuzzy rule-based systems. An active research area is oriented towards the use of new techniques and structures to extend the classical, rigid linguistic fuzzy modeling with the main aim of increasing its precision degree. Traditionally, this accuracy improvement has been carried out without considering the corresponding interpretability loss. Currently, new trends have been proposed trying to preserve the linguistic fuzzy model description power during the optimization process. Written by leading experts in the field, this volume collects some representative researcher that pursue this approach.


Fuzzy modeling usually comes with two contradictory requirements: interpretability, which is the capability to express the real system behavior in a comprehensible way, and accuracy, which is the capability to faithfully represent the real system. In this framework, one of the most important areas is linguistic fuzzy modeling, where the legibility of the obtained model is the main objective. This task is usually developed by means of linguistic (Mamdani) fuzzy rule-based systems. An active research area is oriented towards the use of new techniques and structures to extend the classical, rigid linguistic fuzzy modeling with the main aim of increasing its precision degree. Traditionally, this accuracy improvement has been carried out without considering the corresponding interpretability loss. Currently, new trends have been proposed trying to preserve the linguistic fuzzy model description power during the optimization process. Written by leading experts in the field, this volume collects some representative researcher that pursue this approach.


Focused on linguistic fuzzy rule-based modeling Reader will acquire a deep knowledge on practical topics such as linguistic system identification with fuzzy systems and accuracy State of the art on the trade-off betwen interpretability and precision in fuzzy rule-based modeling Includes supplementary material: sn.pub/extras

Autor*in

Jorge Casillas

Themen in »Accuracy Improvements in Linguistic Fuzzy Modeling«

algorithm algorithms classification complexity construction evolutionary algorithm fuzzy fuzzy system learning model modeling optimization proving

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Details

ISBN: 9783540370581
Verlag: Springer Berlin
Erscheinung: 11.11.2013

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