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Please use this identifier to cite or link to this item: http://scholars.ntou.edu.tw/handle/123456789/4986
Title: Automatic Landing Control System Design Using Adaptive Neural Network and Its Hardware Realization
Authors: Jih-Gau Juang 
Li-Hsiang Chien
Felix Lin
Issue Date: Jun-2011
Publisher: IEEE
Journal Volume: 5
Journal Issue: 2
Start page/Pages: 266 - 277
Source: Ieee Systems Journal
Abstract: 
This paper presents an adaptive neural network, designed to improve the performance of conventional automatic landing systems (ALS). Real-time learning was applied to train the neural network using the gradient-descent of an error function to adaptively update weights. Adaptive learning rates were obtained through the analysis of Lyapunov stability to guarantee the convergence of learning. In addition, we applied a DSP controller using the VisSim/TI C2000 Rapid Prototyper to develop an embedded control system and establish on-line real-time control. Simulations show that the proposed control scheme has superior performance to conventional ALS under conditions of wind disturbance of up to 75 ft/s.
URI: http://scholars.ntou.edu.tw/handle/123456789/4986
ISSN: 1932-8184
DOI: 10.1109/jsyst.2011.2134490
://WOS:000290991900012
://WOS:000290991900012
Appears in Collections:通訊與導航工程學系

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