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时间序列辨识的动态自反馈神经网络
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作者 苟飞 余英林 周伟诚 《华南理工大学学报(自然科学版)》 EI CAS CSCD 1995年第5期81-90,共10页
本文提出用Σ-π自反馈神经网络辨识时间序列。每个神经元的输出取决于现时的输人及前面的输出和过去的输人。使网络呈现动态系统特性。用它能逼近一个复杂的函数。本文加一个函数链于输人层以产生高阶项。最后,这种反馈网络的逼近特... 本文提出用Σ-π自反馈神经网络辨识时间序列。每个神经元的输出取决于现时的输人及前面的输出和过去的输人。使网络呈现动态系统特性。用它能逼近一个复杂的函数。本文加一个函数链于输人层以产生高阶项。最后,这种反馈网络的逼近特性可用来辩识线性非线性及时变序列.用普通网络比较,本文提出的网络结构有较好的逼近能力. 展开更多
关键词 自调整 神经网络 时间序列辨识 自反馈神经网络
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Robust adaptive control for a class of uncertain non-affine nonlinear systems using neural state feedback compensation 被引量:1
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作者 赵石铁 高宪文 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第3期636-643,共8页
A robust adaptive control is proposed for a class of uncertain nonlinear non-affine SISO systems. In order to approximate the unknown nonlinear function, an affine type neural network(ATNN) and neural state feedback c... A robust adaptive control is proposed for a class of uncertain nonlinear non-affine SISO systems. In order to approximate the unknown nonlinear function, an affine type neural network(ATNN) and neural state feedback compensation are used, and then to compensate the approximation error and external disturbance, a robust control term is employed. By Lyapunov stability analysis for the closed-loop system, it is proven that tracking errors asymptotically converge to zero. Moreover, an observer is designed to estimate the system states because all the states may not be available for measurements. Furthermore, the adaptation laws of neural networks and the robust controller are given based on the Lyapunov stability theory. Finally, two simulation examples are presented to demonstrate the effectiveness of the proposed control method. Finally, two simulation examples show that the proposed method exhibits strong robustness, fast response and small tracking error, even for the non-affine nonlinear system with external disturbance, which confirms the effectiveness of the proposed approach. 展开更多
关键词 adaptive control neural networks uncertain non-affine systems state feedback Lyapunov stability
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