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Detection of Data Injection Attacks on Decentralized Statistical Estimation

机译:分散统计估计中数据注入攻击的检测

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This paper describes a distributed statistical estimation problem, corresponding to a network of agents. The network may be vulnerable to data injection attacks, in which the attackers' main goal is to steer the network's final state to a state of their choice. We show that the detection metric of the straightforward attack scheme proposed by Wu et. at in [1], is vulnerable to a more sophisticated attack. To overcome this attack we propose a novel metric that can be computed locally by each agent to detect the presence of an attacker in the network, as well as a metric that localizes the attackers in the network. We conclude the paper with simulations supporting our findings.
机译:本文介绍了对应于代理网络的分布式统计估计问题。网络可能很容易受到数据注入攻击的影响,其中攻击者的主要目标是将网络的最终状态转向他们选择的状态。我们表明,Wu et提出的直接攻击方案的检测度量。在[1]中,容易受到更复杂的攻击。为了克服这次攻击,我们提出了一种新的指标,每个代理可以在本地计算网络中的攻击者,以及定向网络中的攻击者的度量。我们将本文与支持我们的研究结果的模拟结束。

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