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An Efficient Anomaly Detection Algorithm for Vector-Based Intrusion Detection Systems

机译:一种高效的基于载体入侵检测系统的异常检测算法

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This paper proposes a new algorithm that improves the efficiency of the anomaly detection stage of a vector-based intrusion detection scheme. In general, intrusion detection schemes are based on the hypothesis that normal system/user behaviors are consistent and can be characterized by some behavior profiles such that deviations from the profiles are considered abnormal. In complicated computing environments, users may exhibit complicated usage patterns that the user profiles have to be established using sophisticated classification methods such as vector quantization (VQ) technique. However, anomaly detection based on the data set in a high dimension space is inefficient. In this paper we focus on the design of an algorithm that uses principal component analysis (PCA) to improve the anomaly detection efficiency. The main contribution of this research is to demonstrate how the efficiency of the anomaly detection can be raised while the effectiveness of the detection in terms of low false alarm rate and high detection rate can be maintained.
机译:本文提出了一种新的算法,提高了基于载体的入侵检测方案的异常检测阶段的效率。通常,入侵检测方案基于正常系统/用户行为的假设是一致的,并且可以的特征在于某种行为轮廓,使得与曲线的偏差被认为是异常的。在复杂的计算环境中,用户可以表现出复杂的使用模式,即必须使用诸如矢量量化(VQ)技术的复杂分类方法建立用户简档。然而,基于高尺寸空间中的数据的异常检测效率低下。在本文中,我们专注于使用主成分分析(PCA)来提高异常检测效率的算法的设计。本研究的主要贡献是展示如何提高异常检测的效率,同时可以维持在低误报率和高检测率方面的检测的有效性。

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