DOE OSTI · 2324970
Resilient Consensus State Observer for Nonlinear Systems and Against Attacks
Abstract
Herein, we investigate the design of a resilient consensus observer that yields correct and continuous state estimates of a nonlinear control system whose state observations are subject to attacks. The observations are assumed to be obtained from multiple sensors and/or communication channels employed to provide redundancy. It is shown that, in an attack-free setting, individual globally convergent observers can be designed for each sensor/channel using the corresponding state-dependent Jacobian system. To counter attacks, a resilient consensus observer is then designed by merging the observers estimates to produce a smooth consensus estimate. Resilient convergence of the consensus estimate to the true state is ensured under the condition that the sparsity of the attacks being less than a half of the number of redundant channels. As an illustrative example, the proposed scheme is successfully applied to the chaotic circuit synchronization problem in which their synchronization has been attacked.
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Qu, Zhihua, Simaan, Marwan. 2024-07-10. Resilient Consensus State Observer for Nonlinear Systems and Against Attacks. https://doi.org/10.23919/acc60939.2024.10644889
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