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A new method for identifying nonlinear time-vaying systems with unknown structure is presented,The method extends the application ar5ea of basis sequence identification.The essential idea is to utilize the learning and nonlinear approximating ability of neural networks to model the non-linearity of the system,characterize time-varying dynamics of the system by the time-varying parametric vector of the network ,then the parametric vector of the network is approximated by a weighted sum of known basis sequences,Because of black-box modeling ability of neural networks,the presented method can identify noninear time-varying systems with unknown structure,In order to improver the real-time capability of the algorithm ,the neural network is trained by a simple fast learning algorthm based on local least squares presented by the authors,The effectiveness and the perfomence of the method are demonstrate3d by some simulation results. 相似文献
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