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Distributed Direction of Arrival Estimation-Aided Cyberattack Detection in Networked Multi-Robot Systems

机译:网络化多机器人系统中到达估计辅助分布式网络攻击检测方向

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This study proposes a Direction of Arrival (DoA)-aided attack detection scheme to identify cyberattacks on networked multi-robot systems. For each agent, a local estimator is designed to generate robust residuals, and a parametric statistical tool corresponding to the residuals is elaborated to build sensitive decision rules. These locally stored residuals and thresholds are shared between robots via a wireless network, allowing a multi-robot system to complete its mission in the presence of one or more compromised agents. The proposed DoA-aided attack detection scheme is tested on a multi-robot testbed with a team of 10 robots. Experimental results demonstrate that the proposed detection scheme enables each robot to identify malicious activities without shearing the global coordination.
机译:这项研究提出了一种“到达方向(DoA)”辅助攻击检测方案,以识别网络化多机器人系统上的网络攻击。对于每个代理,将设计一个局部估计器以生成健壮的残差,并精心设计与残差相对应的参数统计工具以建立敏感的决策规则。这些本地存储的残差和阈值通过无线网络在机器人之间共享,从而使多机器人系统可以在一个或多个受损代理存在的情况下完成其任务。拟议的DoA辅助攻击检测方案已在由10个机器人组成的团队的多机器人测试平台上进行了测试。实验结果表明,所提出的检测方案能够使每个机器人识别恶意活动而不会影响全局协调性。

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