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A NEURAL NETWORKS BASED DIRECT ADAPTIVE CONTROLLER FOR MULTIVARIABLE SYSTEMS

机译:基于神经网络的多变量系统直接自适应控制器

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This paper presents a direct multivariable adaptive controller using neural network which adapts to the changing parameters of the multivariable nonlinear system with nonminimum phase behavior, mutual interactions and time delays. It base on the theory which a nonlinear multivariable systems to be controlled is divided a linear part and a nonlinear part. The controller parameters of the linear part are obtained by the recursive least square algorithm at the parameter estimation stage, whereas the nonlinear part is achieved the through the Back-propagation neural network. This controller is performed on-line. In order to demonstrate the effectiveness of the proposed algorithm, the computer simulation results are presented to adapt a nonlinear multivariable system with nonminimum phase, noises and time delays and with changed system parameter after a constant time. The proposed method is effective compared with the conventional direct multivariable adaptive controller using neural network.
机译:本文提出了一种使用神经网络的直接多变量自适应控制器,该控制器以非最小相位行为,互作用和时滞适应多变量非线性系统的变化参数。它基于将要控制的非线性多变量系统分为线性部分和非线性部分的理论。线性部分的控制器参数是在参数估计阶段通过递归最小二乘算法获得的,而非线性部分则是通过反向传播神经网络实现的。该控制器是在线执行的。为了证明所提算法的有效性,给出了计算机仿真结果,以使非线性多变量系统具有最小相位,噪声和时间延迟,并且在恒定时间后改变了系统参数。与传统的使用神经网络的直接多变量自适应控制器相比,该方法是有效的。

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