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DDoS detection and filtering technique in cloud environment using GARCH model

机译:使用GARCH模型的云环境中的DDoS检测和过滤技术

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In this paper, we present our proposed technique which can detect and filter variety of DDoS attacks in cloud environment. It uses non-linear time series model (i.e. (GARCH) to correctly predict the traffic state as it is able to captures long-range dependence (LRD) and long-tail distribution which is the property of general network traffic. Moreover, Chaos theory is used for the DDoS attack detection. Filtering is done with the help of back propagation artificial neural network (ANN) on the traffic which exceeds the certain limit specified by some threshold. Experimental results show the supremacy of the proposed approach over other approaches.
机译:在本文中,我们提出了可以在云环境中检测和过滤各种DDoS攻击的技术。它使用非线性时间序列模型(即GARCH)来正确地预测流量状态,因为它能够捕获一般网络流量的特性(LRD)和长尾分布。使用DDoS攻击检测,并利用反向传播人工神经网络(ANN)对超过一定阈值的特定限制的流量进行过滤,实验结果表明,该方法优于其他方法。

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