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Tolerating adversaries in the estimation of network parameters from noisy data: A nonlinear filtering approach

机译:从噪声数据中估计网络参数中的容忍对手:一种非线性过滤方法

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Estimating network parameters from noisy data is a hard problem that can be made even more difficult by the presence of a malicious adversary who may corrupt the measurement process by capturing a trusted node or perturbing data externally. The adversary may have complete knowledge of the networking protocols that rely on the parameter estimates and may adjust its effect on the system to push protocols into incorrect operating regimes. This work focuses on studying how an adversary may impact the estimation of link quality (LQ) of a communications link. We propose a nonlinear filtering solution that simultaneously tracks both the quality of a link and the state of the adversary, tracking the latter to tolerate better the corruption in tracking the former. We provide empirical results while considering several types of adversarial perturbation, including ones that falsely report the LQ measurements or jam a link. Extensions of these analytical techniques and empirical results show how assumptions about symmetry between the LQ of each direction of a bidirectional link can improve adversary tracking and, in turn, LQ estimation.
机译:从嘈杂的数据估计网络参数是一个艰巨的问题,如果存在恶意的对手,则可能会变得更加困难,该恶意的对手可能会通过捕获受信任的节点或从外部干扰数据来破坏测量过程。攻击者可能完全了解依赖于参数估计的网络协议,并且可能会调整其对系统的影响,从而将协议推入错误的操作状态。这项工作的重点是研究对手如何影响通信链路的链路质量(LQ)的估计。我们提出了一种非线性过滤解决方案,该解决方案可以同时跟踪链接的质量和对手的状态,跟踪对手以更好地容忍跟踪前者的情况。我们提供实证结果,同时考虑几种对抗性干扰,包括错误报告LQ测量值或阻塞链接的对抗性干扰。这些分析技术和经验结果的扩展表明,关于双向链接的每个方向的LQ之间的对称性的假设如何可以改善对手的跟踪能力,进而改善LQ估计。

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