一种改进的小波分析方法检测DDoS攻击

L. Lu, M. Huang, M. Orgun, Jiawan Zhang
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引用次数: 10

摘要

小波分析方法被认为是检测DDoS攻击最有效的方法之一。但在数据通信高峰时段,数据事务量较大,该方法需要采集的样本过多,计算复杂度大大增加。因此,攻击检测的实时响应时间和准确性变得非常低。针对上述问题,本文提出了一种基于现有Isomap算法和小波分析的改进小波分析法。在本文中,我们提出了新的DDoS攻击检测模型和算法,并说明了为什么我们在新方法中扩大了自相似度的Hurst值。实验结果表明,该方法比传统的基于小波分析的方法更有效。
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An Improved Wavelet Analysis Method for Detecting DDoS Attacks
Wavelet Analysis method is considered as one of the most efficient methods for detecting DDoS attacks. However, during the peak data communication hours with a large amount of data transactions, this method is required to collect too many samples that will greatly increase the computational complexity. Therefore, the real-time response time as well as the accuracy of attack detection becomes very low. To address the above problem, we propose a new DDoS detection method called Modified Wavelet Analysis method which is based on the existing Isomap algorithm and wavelet analysis. In the paper, we present our new model and algorithm for detecting DDoS attacks and demonstrate the reasons of why we enlarge the Hurst’s value of the self-similarity in our new approach. Finally we present an experimental evaluation to demonstrate that the proposed method is more efficient than the other traditional methods based on wavelet analysis.
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