DocumentCode :
1613442
Title :
Self-learning fuzzy control of civil structures
Author :
Faravelli, L. ; Yao, T.
Author_Institution :
Pavia Univ., Italy
fYear :
1995
Firstpage :
52
Lastpage :
57
Abstract :
The application of ANFIS (Adaptive Network-based Fuzzy Inference System) to the fuzzy control of structures was investigated by the authors in a earlier paper (L. Faravelli and T. Yao, 1994). Through neural network learning, ANFIS can be trained to replace an existing fuzzy controller. The resulting controller makes use of the more efficient Takagi-Sugeno inference scheme instead of COG (center of gravity) and is inherently computationally faster. The next logical step accomplished in this paper is to implement the trajectory adaptive networks (TAN) and stage adaptive networks (SAN) that were proposed to be used with temporal back propagation to achieve a self learning fuzzy controller. This approach should result in a fuzzy controller that is optimized to handle loads of the type used in the self learning training. Because the learning process is goal directed (i.e., a zero vector is the desired displacement behavior), some optimization is introduced
Keywords :
civil engineering computing; fuzzy control; inference mechanisms; neurocontrollers; structural engineering; unsupervised learning; ANFIS; Adaptive Network-based Fuzzy Inference System; SAN; TAN; center of gravity; civil structures; displacement behavior; efficient Takagi-Sugeno inference scheme; fuzzy controller; goal directed; learning process; logical step; neural network learning; self learning fuzzy controller; self learning training; self-learning fuzzy control; stage adaptive networks; temporal back propagation; trajectory adaptive networks; zero vector; Adaptive control; Adaptive systems; Fuzzy control; Fuzzy neural networks; Fuzzy systems; Gravity; Neural networks; Programmable control; Storage area networks; Takagi-Sugeno model;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Uncertainty Modeling and Analysis, 1995, and Annual Conference of the North American Fuzzy Information Processing Society. Proceedings of ISUMA - NAFIPS '95., Third International Symposium on
Conference_Location :
College Park, MD
Print_ISBN :
0-8186-7126-2
Type :
conf
DOI :
10.1109/ISUMA.1995.527668
Filename :
527668
Link To Document :
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