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Denial-of-service attack detection based on multivariate correlation analysis

机译:基于多元相关分析的拒绝服务攻击检测

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摘要

The reliability and availability of network services are being threatened by the growing number of Denial-of-Service (DoS) attacks. Effective mechanisms for DoS attack detection are demanded. Therefore, we propose a multivariate correlation analysis approach to investigate and extract second-order statistics from the observed network traffic records. These second-order statistics extracted by the proposed analysis approach can provide important correlative information hiding among the features. By making use of this hidden information, the detection accuracy can be significantly enhanced. The effectiveness of the proposed multivariate correlation analysis approach is evaluated on the KDD CUP 99 dataset. The evaluation shows encouraging results with average 99.96% detection rate and 2.08% false positive rate. Comparisons also show that our multivariate correlation analysis based detection approach outperforms some other current researches in detecting DoS attacks.
机译:越来越多的拒绝服务(DoS)攻击正威胁着网络服务的可靠性和可用性。需要一种有效的DoS攻击检测机制。因此,我们提出了一种多元相关分析方法,以从观察到的网络流量记录中调查并提取二阶统计量。通过提出的分析方法提取的这些二阶统计量可以提供隐藏在特征之间的重要相关信息。通过利用该隐藏信息,可以显着提高检测精度。在KDD CUP 99数据集上评估了所提出的多元相关分析方法的有效性。评估显示令人鼓舞的结果,平均检出率为99.96%,假阳性率为2.08%。比较还表明,我们基于多元相关分析的检测方法在检测DoS攻击方面优于其他一些当前的研究。

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