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Effective DDoS Attacks Detection Using Generalized Entropy Metric

机译:使用广义熵度量的有效DDoS攻击检测

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摘要

In information theory, entropies make up of the basis for distance and divergence measures among various probability densities. In this paper we propose a novel metric to detect DDoS attacks in networks by using the function of order a of the generalized (Renyi) entropy to distinguish DDoS attacks traffic from legitimate network traffic effectively. Our proposed approach can not only detect DDoS attacks early (it can detect attacks one hop earlier than using the Shannon metric while order α = 2, and two hops earlier to detect attacks while order α = 10.) but also reduce both the false positive rate and the false negative rate clearly compared with the traditional Shannon entropy metric approach.
机译:在信息论中,熵构成了各种概率密度之间距离和发散度量的基础。在本文中,我们提出了一种新颖的度量标准,它可以通过使用广义(仁义)熵阶次函数来检测网络中的DDoS攻击,从而有效区分DDoS攻击流量和合法网络流量。我们提出的方法不仅可以及早发现DDoS攻击(它在α= 2阶时比使用Shannon度量早检测到一跳,而在α= 10阶时可以检测到DhoS攻击早两跳),而且还可以减少误报率和假阴性率与传统的Shannon熵度量方法相比明显。

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