基于SDN流量的条件熵DDoS攻击检测方法

Qiwen Tian, S. Miyata
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引用次数: 0

摘要

为了检测SDN环境下的各种网络攻击,提出了一种基于攻击特征分析和各参数熵变化的攻击检测方法。熵是信息论中用来表示一定有序程度的参数。然而,随着网络复杂性的增加和攻击类型的多样化,现有的研究使用单一熵,不能正确区分攻击和正常流量,可能导致误报。本文提出了新的状态判定标准,利用未发生攻击时熵值的正态分布特征,对熵值所代表的正常和异常范围进行细分,提高了攻击判定的准确性。最后,通过数值分析验证了该方法的有效性。
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A DDoS Attack Detection Method Using Conditional Entropy Based on SDN Traffic
To detect each network attack in an SDN environment, an attack detection method is proposed based on an analysis of the features of the attack and the change in entropy of each parameter. Entropy is a parameter used in information theory to express a certain degree of order. However, with the increasing complexity of networks and the diversity of attack types, existing studies use a single entropy, which does not discriminate correctly between attacks and normal traffic and may lead to false positives. In this paper, we propose new state determination standards that use the normal distribution characteristics of the entropy value at the time which an attack did not occur, subdivide the normal and abnormal range represented by the entropy value, improving the accuracy of attack determination. Furthermore, we show the effectiveness of the proposed method by numerical analysis.
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