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Detection of Interest Flooding Attacks in Named Data Networking using Hypothesis Testing

机译:使用假设检测检测命名数据网络的利息洪水攻击

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摘要

With the rapid growth of Internet traffic, new emerging network architectures are under deployment. Those architectures will substitute the current IP/TCP network only if they can ensure better security. Currently, the most advanced proposal for future Internet architecture is Named Data Networking (NDN). However, new computer network architectures bring new types of attacks. This paper focuses on the detection against Interest flooding - one of the most threatening attacks in NDN. The statistical detection is studied within the framework of hypothesis testing. First, we address the case in which all traffic parameters are known. In this context, the optimal test is designed and its statistical performance is given. This allows providing an upper bound on the highest detection accuracy one can expect. Then, a linear parametric model is proposed to estimate unknown parameters and to design a practical test. for which the statistical performance is also provided. Numerical results show the relevance of the proposed methodology.
机译:随着互联网流量的快速增长,新兴网络架构正在部署。这些架构只有当他们可以确保更好的安全性时才替换当前的IP / TCP网络。目前,未来Internet架构最先进的提案名为数据网络(NDN)。但是,新的计算机网络架构带来了新的类型的攻击。本文重点介绍了对利息洪水的检测 - 最威胁NDN最威胁的攻击之一。在假设检测框架内研究了统计检测。首先,我们解决了已知所有流量参数的情况。在此上下文中,设计了最佳测试并给出了统计性能。这允许提供最高检测精度的上限。然后,提出了线性参数模型来估计未知参数并设计实际测试。还提供了统计表现。数值结果表明了所提出的方法的相关性。

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