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A Contextual Anomaly Detection Approach to Discover Zero-Day Attacks

机译:一种发现零日攻击的语境异常检测方法

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There is a considerable interest in developing techniques to detect zero-day (unknown) cyber-attacks, and considering context is a promising approach. This paper describes a contextual misuse approach combined with an anomaly detection technique to detect zero-day cyber attacks. The contextual misuse detection utilizes similarity with attack context profiles, and the anomaly detection technique identifies new types of attacks using the One Class Nearest Neighbor (1-NN) algorithm. Experimental results on the NSL-KDD intrusion detection dataset have shown that the proposed approach is quite effective in detecting zero-day attacks.
机译:对检测零天(未知)网络攻击的技术有相当兴趣,并且考虑到上下文是有希望的方法。本文介绍了与异常检测技术相结合的上下文滥用方法,以检测零日网络攻击。上下文误用检测利用与攻击上下文配置文件的相似性,并且异常检测技术使用一类最近邻(1-NN)算法识别新类型的攻击。 NSL-KDD入侵检测数据集上的实验结果表明,该方法在检测零日攻击方面非常有效。

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