Multivariable Gaussian Evolving Fuzzy Modeling System
This paper introduces a class of evolving fuzzy rule-based system as an approach for multivariable Gaussian adaptive fuzzy modeling. The system is an evolving Takagi-Sugeno (eTS) functional fuzzy model, whose rule base can be continuously updated using a new recursive clustering algorithm based on p...
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| Vydané v: | IEEE transactions on fuzzy systems Ročník 19; číslo 1; s. 91 - 104 |
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| Hlavní autori: | , , |
| Médium: | Journal Article |
| Jazyk: | English |
| Vydavateľské údaje: |
New York
IEEE
01.02.2011
The Institute of Electrical and Electronics Engineers, Inc. (IEEE) |
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| ISSN: | 1063-6706, 1941-0034 |
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| Abstract | This paper introduces a class of evolving fuzzy rule-based system as an approach for multivariable Gaussian adaptive fuzzy modeling. The system is an evolving Takagi-Sugeno (eTS) functional fuzzy model, whose rule base can be continuously updated using a new recursive clustering algorithm based on participatory learning. The fuzzy sets of the rule antecedents are multivariable Gaussian membership functions, which have been adopted to preserve information between input variable interactions. The parameters of the membership functions are estimated by the clustering algorithm. A weighted recursive least-squares algorithm updates the parameters of the rule consequents. Experiments considering time-series forecasting and nonlinear system identification are performed to evaluate the performance of the approach proposed. The multivariable Gaussian evolving fuzzy models are compared with alternative evolving fuzzy models and classic models with fixed structures. The results suggest that multivariable Gaussian evolving fuzzy modeling is a promising approach for adaptive system modeling. |
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| AbstractList | This paper introduces a class of evolving fuzzy rule-based system as an approach for multivariable Gaussian adaptive fuzzy modeling. The system is an evolving Takagi-Sugeno (eTS) functional fuzzy model, whose rule base can be continuously updated using a new recursive clustering algorithm based on participatory learning. The fuzzy sets of the rule antecedents are multivariable Gaussian membership functions, which have been adopted to preserve information between input variable interactions. The parameters of the membership functions are estimated by the clustering algorithm. A weighted recursive least-squares algorithm updates the parameters of the rule consequents. Experiments considering time-series forecasting and nonlinear system identification are performed to evaluate the performance of the approach proposed. The multivariable Gaussian evolving fuzzy models are compared with alternative evolving fuzzy models and classic models with fixed structures. The results suggest that multivariable Gaussian evolving fuzzy modeling is a promising approach for adaptive system modeling. |
| Author | Gomide, F Lemos, A Caminhas, W |
| Author_xml | – sequence: 1 givenname: A surname: Lemos fullname: Lemos, A email: andrep1@cpdee.ufmg.br organization: Electr. Eng., Fed. Univ. of Minas Gerais, Belo Horizonte, Brazil – sequence: 2 givenname: W surname: Caminhas fullname: Caminhas, W organization: Comput. Eng. & Autom., Univ. of Campinas, Campinas, Brazil – sequence: 3 givenname: F surname: Gomide fullname: Gomide, F email: gomide@dca.fee.unicamp.br organization: Comput. Eng. & Autom., Univ. of Campinas, Campinas, Brazil |
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| SubjectTerms | Adaptation model Adaptive fuzzy rule-based modeling Adaptive systems Algorithms Clustering algorithms Current measurement Dispersion evolving fuzzy systems (eFS) Fuzzy Fuzzy logic Fuzzy set theory Fuzzy sets Gaussian Indexes Input variables Mathematical models Multivariable participatory learning (PL) Studies |
| Title | Multivariable Gaussian Evolving Fuzzy Modeling System |
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