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TDDAD: Time-Based Detection and Defense Scheme Against DDoS Attack on SDN Controller

机译:TDDAD:针对SDN控制器的DDoS攻击的基于时间的检测和防御方案

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Software defined network (SDN) is the key part of the next generation networks. Its central controller enables the high programma-bility and flexibility. However, SDN can be easily disrupted by a new DDoS attack which triggers enormous PacketJN messages. Since the existing solutions focus on checking current network states with content feature to detect the attack, they can possibly be misled. In this paper, we propose a detection and defense scheme against the DDoS attack based on the time feature. Specifically, the time feature is the hit rate gradient of the flow table. We first extract the temporal behavior of an attack. A back propagation neural network is trained to extract an attack pattern and used to recognize an attack. Then either a defense or recovery action will be taken. We test our scheme with the DARPA 1999 intrusion detection data set and compare our scheme with another method using sequential probability ratio test (SPRT). The experiment and evaluation show that our scheme enables the real-time detection, effective defense and quick recovery from DDoS attacks.
机译:软件定义网络(SDN)是下一代网络的关键部分。其中央控制器可实现高度的可编程性和灵活性。但是,SDN容易被新的DDoS攻击破坏,后者会触发巨大的PacketJN消息。由于现有解决方案着重于使用内容功能检查当前网络状态以检测攻击,因此可能会误导它们。本文提出一种基于时间特征的DDoS攻击检测与防御方案。具体来说,时间特征是流表的命中率梯度。我们首先提取攻击的时间行为。训练后向传播神经网络以提取攻击模式并用于识别攻击。然后将采取防御或恢复行动。我们使用DARPA 1999入侵检测数据集来测试我们的方案,并将我们的方案与使用顺序概率比检验(SPRT)的另一种方法进行比较。实验和评估表明,我们的方案能够实时检测,有效防御并从DDoS攻击中快速恢复。

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