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Neural Networks Approximator Based Robust Adaptive Controller Design of Hypersonic Flight Vehicles Systems Coupled with Stochastic Disturbance and Dynamic Uncertainties

机译:基于神经网络的基于神经网络的高度扰动和动态不确定因素的高超声速飞行器系统的逼真自适应控制器设计

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摘要

A neural network robust control is proposed for a class of generic hypersonic flight vehicles with uncertain dynamics and stochastic disturbance. Compared with the present schemes of dealing with dynamic uncertainties and stochastic disturbance, the outstanding feature of the proposed scheme is that only one parameter needs to be estimated at each design step, so that the computational burden can be greatly reduced and the designed controller is much simpler. Moreover, by introducing a performance function in controller design, the prespecified transient and performance of tracking error can be guaranteed. It is proved that all signals of closed-loop system are uniformly ultimately bounded. The simulation results are carried out to illustrate effectiveness of the proposed control algorithm.
机译:针对一类具有不确定动力学和随机扰动的一类通用过度的飞行车辆提出了一种神经网络鲁棒控制。与处理动态不确定性和随机扰动的现有计划相比,所提出的方案的出色特征是,只需要在每个设计步骤中估算一个参数,因此可以大大降低计算负担,所设计的控制器很大更简单。此外,通过在控制器设计中引入性能功能,可以保证预先确定的瞬态和跟踪误差的性能。事实证明,闭环系统的所有信号都是均匀的最终界限。进行仿真结果以说明所提出的控制算法的有效性。

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