An Optimal Nonlinear Regulator Design with Neural Network and Fixed Point Theorem (Special Section on Neural Nets, Chaos and Numerics)
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概要
- 論文の詳細を見る
A new optimal nonlinear regulator design method is developed by applying a multi-layered neural network and a fixed point theorem for a nonlinear controlled system. Based on the calculus of variations and the fixed point theorem, an optimal control law containing a nonlinear mapping of the state can be derived. Because the neural network has not only a good learning ability but also an excellent nonlinear mapping ability, the neural network is used to represent the state nonlinear mapping after some learning operations and an optimal nonlinear regulator may be formed. Simulation demonstrates that the new nonlinear regulator is quite efficient and has a good robust performance as well.
- 社団法人電子情報通信学会の論文
- 1993-05-25
著者
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Cai Dawei
The Faculty Of Engineering Shinshu University
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Shidama Yasunari
Department of Information Engineering, Shinshu University
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Shidama Y
Shinshu Univ. Nagano‐shi Jpn
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Shidama Yasunari
the Faculty of Engineering, Shinshu University
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Eguchi Masayoshi
the Faculty of Engineering, Shinshu University
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Yamaura Hiroo
the Faculty of Engineering, Shinshu University
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Miyazaki Takashi
Nagano National College of Technology
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Eguchi M
Tokyo Univ. Mercantile Marine
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Yamaura H
The Faculty Of Engineering Shinshu University
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Miyazaki T
Nagano National College Of Technology
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Yamaura Hiroo
The Faculty Of Engineering Shinshu University
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Eguchi Masayoshi
The Faculty Of Engineering Shinshu University
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