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Enhancing Collaborative Intrusion Detection Methods Using a Kademlia Overlay Network

机译:使用Kademlia覆盖网络增强协作入侵检测方法

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The two important problems of collaborative intrusion detection are aggregation and correlation of intrusion events. The enormous amount of data generated by detection probes requires significant network and computational capacity to be processed. In this article we show that a distributed hash table based approach can reduce both network and computational load of intrusion detection, while providing almost the same accuracy of detection as centralized solutions. The efficiency of data storage can be improved by selecting Kademlia as the underlying overlay network topology, as its routing can easily adapt to the dynamic properties of such an application.
机译:协作入侵检测的两个重要问题是入侵事件的聚集和关联。检测探针生成的大量数据需要大量的网络和计算能力来处理。在本文中,我们展示了基于分布式哈希表的方法可以减少入侵检测的网络和计算负荷,同时提供与集中式解决方案几乎相同的检测精度。通过选择Kademlia作为底层覆盖网络拓扑,可以提高数据存储的效率,因为其路由可以轻松适应此类应用程序的动态属性。

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