Disaster-resilient control plane design and mapping in software-defined networks

S. Savas, M. Tornatore, M. F. Habib, P. Chowdhury, B. Mukherjee
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引用次数: 33

Abstract

Communication networks, such as core optical networks, heavily depend on their physical infrastructure, and hence they are vulnerable to man-made disasters, such as Electromagnetic Pulse (EMP) or Weapons of Mass Destruction (WMD) attacks, as well as to natural disasters. Large-scale disasters may cause huge data loss and connectivity disruption in these networks. As our dependence on network services increases, the need for novel survivability methods to mitigate the effects of disasters on communication networks becomes a major concern. Software-Defined Networking (SDN), by centralizing control logic and separating it from physical equipment, facilitates network programmability and opens up new ways to design disaster-resilient networks. On the other hand, to fully exploit the potential of SDN, along with data-plane survivability, we also need to design the control plane to be resilient enough to survive network failures caused by disasters. Several distributed SDN controller architectures have been proposed to mitigate the risks of overload and failure, but they are optimized for limited faults without addressing the extent of large-scale disaster failures. For disaster resiliency of the control plane, we propose to design it as a virtual network, which can be solved using Virtual Network Mapping techniques. We select appropriate mapping of the controllers over the physical network such that the connectivity among the controllers (controller-to-controller) and between the switches to the controllers (switch-to-controllers) is not compromised by physical infrastructure failures caused by disasters. We formally model this disaster-aware control-plane design and mapping problem, and demonstrate a significant reduction in the disruption of controller-to-controller and switch-to-controller communication channels using our approach.
软件定义网络中容灾控制平面的设计与映射
通信网络,如核心光网络,严重依赖于其物理基础设施,因此它们很容易受到人为灾害的影响,例如电磁脉冲(EMP)或大规模杀伤性武器(WMD)的攻击,以及自然灾害。大规模的灾难可能会导致这些网络中的大量数据丢失和连接中断。随着我们对网络服务依赖的增加,需要新的生存方法来减轻灾害对通信网络的影响成为一个主要问题。软件定义网络(SDN)通过集中控制逻辑并将其与物理设备分离,促进了网络的可编程性,并开辟了设计抗灾网络的新途径。另一方面,为了充分发挥SDN的潜力,除了数据平面的生存性外,我们还需要设计控制平面,使其具有足够的弹性,以应对灾难导致的网络故障。已经提出了几种分布式SDN控制器架构来减轻过载和故障的风险,但是它们针对有限的故障进行了优化,而没有解决大规模灾难故障的程度。针对控制平面的容灾问题,提出将控制平面设计为虚拟网络,并利用虚拟网络映射技术解决。我们在物理网络上选择适当的控制器映射,这样控制器之间(控制器到控制器)和交换机到控制器之间(交换机到控制器)的连接不会因灾难引起的物理基础设施故障而受到损害。我们正式地对这种灾难感知控制平面设计和映射问题进行建模,并证明使用我们的方法可以显著减少控制器到控制器和交换机到控制器通信通道的中断。
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