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      A RBFNN-Based Adaptive Disturbance Compensation Approach Applied to Magnetic Suspension Inertially Stabilized Platform

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      Mathematical Problems in Engineering
      Hindawi Limited

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          Abstract

          Compared with traditional mechanical inertially stabilized platform (ISP), magnetic suspension ISP (MSISP) can absorb high frequency vibrations via a magnetic suspension bearing system with five degrees of freedom between azimuth and pitch gimbals. However, force acting between rotor and stator will introduce coupling torque to roll and pitch gimbals. Since the disturbance of magnetic bearings has strong nonlinearity, classic state feedback control algorithm cannot bring higher precision control for MSISP. In order to enhance the control accuracy for MSISP, a disturbance compensator based on radial basis function neural network (RBFNN) is developed to compensate for the disturbance. Using the Lyapunov theorem, the weighting matrix of RBFNN can be updated online. Therefore, the RBFNN can be constructed without priori training. At last, simulations and experiment results validate that the compensation method proposed in this paper can improve ISP accuracy significantly.

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          Robust Fuzzy Neural Network Sliding-Mode Control for Two-Axis Motion Control System

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            Inertially stabilized platforms for optical imaging systems

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              Inertially stabilized platform technology Concepts and principles

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                Author and article information

                Journal
                Mathematical Problems in Engineering
                Mathematical Problems in Engineering
                Hindawi Limited
                1024-123X
                1563-5147
                2014
                2014
                : 2014
                :
                : 1-9
                Article
                10.1155/2014/657985
                59009fa1-e1df-4ae8-a885-edc3e805e369
                © 2014

                http://creativecommons.org/licenses/by/3.0/

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