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A SDN Data Plane Abnormal State Detection Method Based on Flow Rules Analyzing

机译:基于流量规则分析的SDN数据平面异常状态检测方法

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As a new network architecture, Software Defined Networking (SDN) controls the network by software programming, which improves the flexibility of network configuration. However, the attack surface of SDN is larger than the traditional network. The three planes and the two channels all have vulnerability points, among which the attacks against the data plane are particularly critical. The attacks will interfere with the normal data forwarding behavior, resulting in the failure of the whole network data transmission. In this paper, a data plane abnormal behavior detection method based on flow rule analyzing is proposed. First, the characteristics of flow rules in terms of quantity, conflict and abnormal behaviors are extracted and analyzed, then a data plane abnormal state model is constructed, and finally, detection algorithm is used to detect abnormal behaviors, to assess whether the data plane state is safe. The experimental results show that the proposed method can accurately detect the data plane state anomalies. Compared with NetPlumber, our method can not only detect flow rule conflicts, but also detect the abnormal change trend in quantity of flow rules and malicious forwarding and packet loss caused by attacks.
机译:作为新的网络架构,软件定义的网络(SDN)通过软件编程控制网络,从而提高了网络配置的灵活性。但是,SDN的攻击表面大于传统网络。三个飞机和两个频道都有漏洞点,其中对数据平面的攻击尤为重要。攻击会干扰正常的数据转发行为,从而导致整个网络数据传输的故障。本文提出了一种基于流量分析的数据平面异常行为检测方法。首先,提取和分析并分析了在数量,冲突和异常行为方面的流程规则的特征,然后构建了数据平面异常状态模型,最后,检测算法用于检测异常行为,以评估数据平面状态是否是安全的。实验结果表明,该方法可以准确地检测数据平面状态异常。与NetPlumber相比,我们的方法不仅可以检测流量规则冲突,还可以检测流量规则数量和由攻击引起的恶意转发和丢包的异常变化趋势。

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