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The Application of Wavelet Neural Network in Adaptive Inverse Control of Hydro-turbine Governing System

机译:小波神经网络在水轮机调节系统自适应逆控制中的应用

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Considering of the nonlinear, time-variable and non-minimum phase character and the easy variance of hydro-turbine governing systemȁ9;s structure and parameters, a new adaptive inverse control method of hydro-turbine governing system based on the learning characteristic of neural network and the function approximation ability of the wavelet analysis is presented. It approximates the model and its inversion of plant by wavelet neural networks, and then through constructing an aim function of broad sense, a wavelet neural networks adaptive inverse law is put forward which is effective to the nonlinear non-minimum phase system. Theory and simulation to hydro-turbine governing system demonstrate that the control strategy can more effective improve the dynamic and stationary performance than those based on neural networks. It is showed the scheme is valid.
机译:考虑到非线性,时变和非最小相位特性以及水轮机调节系统ȁ9的易变性,基于神经网络学习特性的水轮机调节系统自适应逆控制新方法给出了小波分析的函数逼近能力。通过小波神经网络对植物的模型及其反演进行近似,然后通过构造广义目标函数,提出了一种对非线性非最小相位系统有效的小波神经网络自适应逆定律。水轮机调节系统的理论和仿真表明,该控制策略比基于神经网络的控制策略能更有效地改善动态和静态性能。表明该方案是有效的。

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