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首页> 外文期刊>IEEE Transactions on Neural Networks >NN-Based Adaptive Tracking Control of Uncertain Nonlinear Systems Disturbed by Unknown Covariance Noise
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NN-Based Adaptive Tracking Control of Uncertain Nonlinear Systems Disturbed by Unknown Covariance Noise

机译:基于NN的未知协方差噪声干扰的不确定非线性系统的自适应跟踪控制

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摘要

A class of uncertain nonlinear systems that are additionally driven by unknown covariance noise is considered. Based on the backstepping technique, adaptive neural control schemes are developed to solve the output tracking control problem of such systems. As it is proven by stability analysis, the proposed controller guarantees that all the error variables are bounded with desired probability in a compact set while the tracking error is mean-square semiglobally uniformly ultimately bounded (M-SGUUB). The tracking performance and the effectiveness of the proposed design are evaluated by simulation results.
机译:考虑了一类由未知协方差噪声额外驱动的不确定非线性系统。基于后推技术,开发了自适应神经控制方案来解决此类系统的输出跟踪控制问题。正如稳定性分析所证明的那样,所提出的控制器保证了所有误差变量都以紧凑的集合以期望的概率为界,而跟踪误差为均方半全局均匀一致的最终有界(M-SGUUB)。仿真结果评估了所提出设计的跟踪性能和有效性。

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