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Robust and resilient estimation for Cyber-Physical Systems under adversarial attacks

机译:对抗攻击下网络物理系统的鲁棒性和弹性估计

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In this paper, we propose a novel state estimation algorithm that is resilient to sparse data injection attacks and robust to additive and multiplicative modeling errors. By leveraging principles of robust optimization, we construct uncertainty sets that lead to tractable optimization solutions. As a corollary, we obtain a novel robust filtering algorithm when there are no attacks, which can be viewed as a “frequentist” robust estimator as no known priors are assumed. We also describe the use of cross-validation to determine the hyperparameters of our estimator. The effectiveness of our estimator is demonstrated in simulations of an IEEE 14-bus electric power system.
机译:在本文中,我们提出了一种新颖的状态估计算法,该算法可应对稀疏数据注入攻击,并且对加性和乘性建模错误具有鲁棒性。通过利用鲁棒性优化的原理,我们构建了不确定性集,这些不确定性集导致了易于处理的优化解决方案。作为推论,当没有攻击时,我们将获得一种新颖的鲁棒滤波算法,由于没有已知先验条件,因此可以将其视为“频繁”鲁棒估计量。我们还描述了使用交叉验证来确定估计量的超参数。我们的估算器的有效性在IEEE 14总线电力系统的仿真中得到了证明。

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