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Adaptive Secure State Estimation for Cyber-Physical Systems With Low Memory Cost

机译:具有低记忆成本的网络物理系统的自适应安全状态估计

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Computer memory occupation is an important issue in secure estimation of cyber-physical systems. The existing secure state observers, which estimate system state from sparsely corrupted measurements, often need to run combinatorial subestimators such that they demand tremendous memory occupation. To this end, this article proposes two adaptive observer structures with the low memory cost. First, a purely adaptive structure is developed under the constraint called $P$ -problem, which allows the observer to automatically search the attack model and update the observer gain matrices. To remove the $P$ -problem constraint, an event-triggered algorithm is further developed by trading off the estimation performance. These two strategies substantially reduce the memory occupation by online updating observer gain matrices rather than offline calculations. Another advantage of these schemes is the use of saturated output injection to mitigate the transient performance degradation in the search phase of the attack model.
机译:计算机存储器职业是网络物理系统安全估计的重要问题。现有的安全状态观察者,估计系统状态从稀疏损坏的测量,通常需要运行组合的低端者,使得它们需要巨大的内存占用。为此,本文提出了两个具有低记忆成本的自适应观察者结构。首先,在称为<内联公式XMLNS:MML =“http://www.w3.org/1998/math/mathml”xmlns:xlink =“http://www.w3的约束下开发了纯度自适应结构。 ORG / 1999 / XLINK“> $ P $ -PROBLAM,它允许观察者自动搜索攻击模型并更新观察者增益矩阵。要删除<内联公式XMLNS:MML =“http://www.w3.org/1998/math/mathml”xmlns:xlink =“http://www.w3.org/1999/xlink”> $ p $ -problus constraint,通过交易估计性能来进一步开发事件触发的算法。这两种策略通过在线更新观察者增益矩阵而不是离线计算,大大减少了内存占用。这些方案的另一个优点是使用饱和输出喷射来减轻攻击模型的搜索阶段中的瞬态性能下降。

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