基于广义自回归条件异方差(GARCH)建模技术的SYN泛洪攻击检测

Nikhil Ranjan, H. Murthy, T. Gonsalves
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引用次数: 13

摘要

本文探讨了一种快速有效的检测TCP SYN泛洪攻击的方法。作为金融时间序列中最常用的统计建模技术,提出了广义自回归条件异方差(GARCH)模型作为一种新的拒绝服务攻击检测技术。在检测机制中利用了TCP在超时期间的指数回退和重传特性。通过使用GARCH对SYN和SYN+ACK数据包之间的差异进行建模,我们能够检测低强度和高强度的SYN泛洪攻击。我们的研究表明,这种非线性波动率模型比线性预测等早期模型具有更好的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Detection of SYN flooding attacks using generalized autoregressive conditional heteroskedasticity (GARCH) modeling technique
This paper explores a fast and effective method to detect TCP SYN flooding attack. The Generalized autoregressive conditional heteroskedastic (GARCH) model which is the most commonly used statistical modeling technique for financial time series is proposed as a new technique for Denial of service attack detection. The exponential backoff and retransmission property of TCP during timeouts is exploited in the detection mechanism. We are able to detect low as well as high intensity SYN flooding attacks by modeling the difference between SYN and SYN+ACK packets using GARCH. Our studies show that this non linear volatility model performs better than earlier models like Linear Prediction.
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