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State estimation for linear systems with unknown input and random false data injection attack

机译:具有未知输入和随机假数据注入攻击的线性系统的状态估计

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This study focuses on the state estimation problem for a linear system with unknown input and random false data injection attack. The unknown input is treated as a process with a non-informative prior. A residue-based $chi <^>{2}$chi 2 detector is used to improve security of the linear system due to the randomness of the attack. Based on different detection information scenarios provided by the detector, a novel state estimator against the false data injection attack is proposed. Convergence and stability on the state estimation are investigated, and sufficient conditions are established to ensure boundedness of mean error covariance. Finally, the effectiveness of the proposed method is demonstrated by a numerical example.
机译:本研究侧重于具有未知输入和随机假数据注入攻击的线性系统的状态估计问题。未知输入被视为具有非信息性的过程。基于残留的$ Chi <^> {2} $ CHI 2检测器用于提高由于攻击的随机性导致线性系统的安全性。基于由检测器提供的不同检测信息场景,提出了一种针对假数据注入攻击的新型状态估计。研究了状态估计上的收敛性和稳定性,并建立了充分的条件,以确保平均误差协方差的界限。最后,通过数值例证明了所提出的方法的有效性。

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