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Training of fuzzy inference systems by combining variable structure systems technique and Levenberg-Marquardt algorithm

  • Bogazici University

Araştırma çıktısı: Konferansa katkıYazıHakemli

1 Alıntı (Scopus)

Özet

This paper presents a novel training algorithm for fuzzy inference systems. The algorithm combines the Levenberg-Marquardt algorithm with variable structure systems approach. The combination is performed by expressing the parameter update rule in continuous time and application of sliding control method to the gradient based training procedure. In this paper, it is discussed that a fuzzy inference mechanism can be trained such that the adjustable parameter values are forced to settle down (parameter stabilization) while minimizing an appropriate cost function (cost optimization). In the application example, control of a two degrees of freedom direct drive SCARA robotic manipulator is considered. As the controller, a standard fuzzy system architecture is used and the parameter tuning is performed by the proposed algorithm.

Orijinal dilİngilizce
Sayfalar514-519
Sayfa sayısı6
Yayın durumuYayınlandı - 1999
Harici olarak yayınlandıEvet
EtkinlikThe 25th Annual Conference of the IEEE Industrial Electronics Society (IECON'99) - San Jose, CA, USA
Süre: 29 Kas 19993 Ara 1999

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???event.eventtypes.event.conference???The 25th Annual Conference of the IEEE Industrial Electronics Society (IECON'99)
ŞehirSan Jose, CA, USA
Periyot29/11/993/12/99

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