航天器
控制理论(社会学)
姿态控制
人工神经网络
西尔维斯特惯性定律
稳健性(进化)
李雅普诺夫函数
惯性
自适应控制
加权
反演(地质)
计算机科学
控制工程
工程类
控制(管理)
非线性系统
物理
人工智能
航空航天工程
基因
构造盆地
生物
经典力学
量子力学
古生物学
生物化学
特征向量
对称矩阵
化学
声学
作者
S. Jafri,Muhammad Imran Aslam
摘要
Abstract This paper proposes a robust generalised dynamic inversion (GDI) control system design with adaptive neural network (NN) estimation for spacecraft attitude tracking under the absence of knowledge of the spacecraft inertia parameters. The robust GDI control system works to enforce attitude tracking, and the adaptive NN augmentation compensates for the lack of knowledge of the spacecraft inertia parameters. The baseline GDI control law consists of a particular part and an auxiliary part. The particular part of the GDI control law works to realise a desired attitude dynamics of the spacecraft, and the auxiliary part works for finite-time stabilisation of the spacecraft angular velocity. Robustness against modeling uncertainties and external disturbances is provided by augmenting a siding mode control element within the particular part of the GDI control law. The singularity that accompanies GDI control is avoided by modifying the Moore-Penrose generalised inverse by means of a dynamic scaling factor. The NN weighting matrices are updated adaptively through a control Lyapunov function. A detailed stability analysis shows that the closed loop system is semi-global practically stable. For performance assessment, a spacecraft model is developed, and GDI-NN control is investigated for its attitude control problem through numerical simulations. Simulation results reveal the efficacy, robustness and adaptive attributes of proposed GDI-NN control for its application to spacecraft attitude control.
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