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A Cloud Immune Security Model Based on Alert Correlation and Software Defined Network

机译:基于警报相关和软件定义网络的云免疫安全模型

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In this paper, we explore the AIS approach to develop an agent-based detection method to analyze network traffic. The system works in conjunction with attack graph based correlation and software-defined network (SDN) technology to mitigate attacks. In the correlation technique, alerts are correlated through an attack graph which improves detection performance by decreasing the false alert rate. The false alert reduction can avoid the negative effect that an SDN countermeasure can bring to the cloud Service Level Agreement (SLA) on the absence of threats. This work was tested for multi-step and distributed denial of service (DDoS) attacks. Results have shown the addition of the correlation technique can aid to the detection performance of AIS detection systems.
机译:在本文中,我们探讨了开发基于代理的检测方法的AIS方法来分析网络流量。该系统与基于攻击图的相关性和软件定义的网络(SDN)技术配合使用,以减轻攻击。在相关技术中,通过攻击图来关联警报,通过降低误报率来提高检测性能。错误警报减少可以避免SDN对策可以在没有威胁的情况下为云服务级别协议(SLA)带来负面影响。测试此工作进行多步和分布式拒绝服务(DDOS)攻击。结果表明,添加相关技术可以有助于AIS检测系统的检测性能。

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