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Using optimized statistical distances to confront distributed denial of service attacks in software defined networks

机译:使用优化的统计距离来对应于软件定义的网络中的分布式拒绝服务攻击

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摘要

Software-defined networks (SDN) are an emerging architecture that provides promising amends to put an end to current infrastructure constraints by optimized bandwidth utilization, flexibility in network management and configuration, and pulling down operating costs in traditional network structures. Despite the advantages of this architecture, SDNs may become the victim of a distributed denial of service (DDOS) attacks as the result of potential vulnerabilities in various layers. Therefore, the rapid detection of attack traffic in the early stages is very important. In this paper, we have proposed statistical solution to detect and to mitigate distributed denial of service attack in software-defined networks utilizing the unique capabilities of the SDN architecture. Here, the exponential weighted moving average protection mechanism (EWMA) in statistical distances is exploited. The simulation results of our extensive experiments showed that our mechanism is able to quick detection of attack traffics and take amendatory actions. Moreover, the evaluations show the superiority of the proposed algorithm with respect to other statistical methods.
机译:软件定义的网络(SDN)是一种新兴架构,提供了有希望的修正,通过优化的带宽利用,网络管理和配置的灵活性来实现当前基础设施限制,并在传统网络结构中拉下运营成本。尽管该架构的优势,但由于各层潜在漏洞的结果,SDN可能成为分布式拒绝服务(DDOS)攻击的受害者。因此,早期阶段的攻击流量的快速检测非常重要。在本文中,我们已经提出了利用SDN架构的独特功能来检测和减轻软件定义网络中的分布式拒绝服务攻击的统计解决方案。这里,利用统计距离中的指数加权移动平均保护机制(EWMA)。我们广泛实验的仿真结果表明,我们的机制能够快速检测攻击流量并采取修改行动。此外,评估显示了所提出的算法关于其他统计方法的优越性。

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