Cost-Based Placement of Virtualized Deep Packet Inspection Functions in SDN

M. Bouet, Jérémie Leguay, V. Conan
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引用次数: 68

Abstract

In today's IT systems, cyber security requires fine-grained, flexible, adaptable and cost optimized monitoring mechanisms. The emergence of new networking technologies, like Network Function Virtualization (NFV) and Software Defined Networking (SDN), opens up new venues for large scale adoption of these cyber security tools. In particular, Deep Packet Inspection (DPI) engines can be virtualized and dynamically deployed as pieces of software on commodity hardware. Deploying such software DPI engines is costly in terms of license fees and power consumption. Designing cost effective DPI engine deployment strategies that meet the cybersecurity operational constraints is thus mandatory for the adoption of this approach. For this purpose, we propose a method, based on genetic algorithms, that optimizes the cost of DPI engine deployment, minimizing their number, the global network load and the number of unanalyzed flows. We conduct several experiments with different types of traffic and different cost structures. The results show that the method is able to reach a trade-off between the number of DPI engines and network load. Furthermore, the global cost can be reduced up to 58% when relaxing the constraint on the used link capacity, that is the provisioning rate.
基于成本的虚拟化深度包检测功能在SDN中的部署
在当今的IT系统中,网络安全需要细粒度、灵活、适应性强、成本优化的监控机制。网络功能虚拟化(NFV)和软件定义网络(SDN)等新网络技术的出现,为大规模采用这些网络安全工具开辟了新的场所。特别是,深度包检测(DPI)引擎可以虚拟化并作为软件在商用硬件上动态部署。部署这样的软件DPI引擎在许可费用和功耗方面是昂贵的。因此,采用这种方法必须设计符合网络安全操作限制的经济高效的DPI引擎部署策略。为此,我们提出了一种基于遗传算法的方法,优化DPI引擎部署的成本,最大限度地减少它们的数量、全局网络负载和未分析流的数量。我们对不同类型的流量和不同的成本结构进行了多次实验。结果表明,该方法能够在DPI引擎数量和网络负载之间实现折衷。此外,当放松对使用的链路容量的限制时,全局成本可以降低58%,即供应率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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