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首页> 外文期刊>Journal of guidance, control, and dynamics >Noncertainty-Equivalent Adaptive Wing-Rock Control via Chebyshev Neural Network
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Noncertainty-Equivalent Adaptive Wing-Rock Control via Chebyshev Neural Network

机译:Chebyshev神经网络的非确定性当量自适应机翼-岩石控制

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Aircratt Hying at high angles ot attack exhibit self-excited rolling motion (termed wing rock). This paper presents a noncertainty-equivalent adaptive control system for the wing-rock motion control via a Chebyshev neural network. The unmodeled nonlinearity of the system is approximated by a Chebyshev neural network using polynomials in roll angle and roll rate of the first kind. An adaptive control law is derived for the trajectory control of the roll angle. The control system includes a control module and a parameter identifier and uses filtered signals for synthesis. Unlike the certainty-equivalent control laws, each estimated parameter is the sum of a judiciously chosen nonlinear function and a partial estimate generated by an integral adaptation law. The nonlinear function in the parameter estimate provides stronger stability property in the closed-loop system. Simulation results are presented that show that the adaptive Chebyshev neural controller is capable of suppressing the wing-rock motion of the model with unknown nonlinearity and disturbance input at different angles of attack.
机译:Aircratt Hying在大角度攻击时会表现出自激式滚动运动(称为机翼岩石)。本文提出了一种基于切比雪夫神经网络的机翼-岩石运动控制的非等价自适应控制系统。通过使用第一类侧倾角和侧倾速率的多项式的Chebyshev神经网络,可以近似地估计出系统的非模型非线性。推导了用于侧倾角的轨迹控制的自适应控制定律。该控制系统包括控制模块和参数标识符,并且使用滤波后的信号进行合成。与确定性等效控制定律不同,每个估计的参数都是明智选择的非线性函数与由积分自适应定律产生的部分估计之和。参数估计中的非线性函数在闭环系统中提供了更强的稳定性。仿真结果表明,自适应切比雪夫神经控制器能够抑制具有未知非线性和不同攻角输入的扰动的模型的机翼-岩石运动。

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