DocumentCode :
3417382
Title :
The application of fuzzy neural network in ship course control system
Author :
Cai, Yong ; Lv, Yunfei ; Luo, Hui
Author_Institution :
Second Ship Design Inst., Wuhan, China
fYear :
2011
fDate :
19-21 Oct. 2011
Firstpage :
338
Lastpage :
342
Abstract :
When ship docks at harbor or other sea area, both the robustness and dynamic properties of course control system are required strictly. Because the model parameters are relative to the speed and load of the ship, it is difficult to design a good controller based on the ship model. This paper combines internal model control with fuzzy neural network to design a course system. First, it designs a zero steady-state error controller which ensures robustness of the course control system relay on inner model. For the zero steady-state error controller, it is necessary to reduce the dynamic properties of the control system to ensure the robustness. Thus, this paper uses fuzzy neural network to adjust the pole sites of the closed control system based on the ship course and course change rate. It designs a new structure of fuzzy neural network which uses neural network to represent the fuzzy rules. According to expert experiences, it also gives out the weights computation method of fuzzy neural adjuster. At last, the hybrid course control system is applied in a actual ship and the course response curves indicate that the course control system possess good robustness and dynamic properties.
Keywords :
closed loop systems; fuzzy neural nets; fuzzy set theory; ships; closed control system; fuzzy neural network; hybrid course control system; internal model control; ship course control system; weights computation method; zero steady-state error controller; Computational modeling; Control systems; Equations; Fuzzy control; Marine vehicles; Mathematical model; Robustness;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Advanced Computational Intelligence (IWACI), 2011 Fourth International Workshop on
Conference_Location :
Wuhan
Print_ISBN :
978-1-61284-374-2
Type :
conf
DOI :
10.1109/IWACI.2011.6160028
Filename :
6160028
Link To Document :
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