基于openflow统一控制平面的OBS/WSON多层光交换网络的实验演示

Dongxu Zhang, Lei Liu, Linfeng Hong, Hongxiang Guo, T. Tsuritani, Jian Wu, I. Morita
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引用次数: 13

摘要

在当前的IP/光多层网络中,IP域和光域的控制方式是分开的,这给端到端的业务发放带来了不便。因此,研究多层网络的统一控制平面,可以简化网络的可管理性,提高网络的敏捷性,降低运营支出(OPEX)和资本支出(CAPEX),对网络运营商来说是一个非常重要的问题。最近提出的OpenFlow协议为解决这一问题提供了一个潜在的解决方案。另一方面,多层光突发交换(OBS)/波长交换光网络(WSON)已被提出作为未来光互联网的一个有前途的范式,并在覆盖模型下对OBS和WSON层各自的控制平面进行了深入的研究。鉴于此,本文实验提出了一种基于openflow的OBS/WSON多层光交换网络统一控制平面。讨论了openflow控制的OBS/WSON的协议扩展和设计细节。通过使用两种不同的信令方法(在光路配置期间有和没有确认机制),我们成功地展示了OBS/WSON网络统一控制平面的总体可行性,并从端到端信令延迟和丢包率方面定量评估了两种信令解决方案的性能。
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Experimental demonstration of OBS/WSON multi-layer optical switched networks with an OpenFlow-based unified control plane
In the current IP/optical multi-layer networks, the control approaches for IP and optical domains are separated, which is inconvenient for the end-to-end service provisioning. Therefore, the investigation of a unified control plane for multi-layer networks is a very important issue for network carriers, since it can simplify the network manageability, improve the network agility and reduce the operational expenditure (OPEX) and capital expenditure (CAPEX). The OpenFlow protocol, which has been proposed recently, provides a potential solution to address such an issue. On the other hand, the multi-layer optical burst switching (OBS)/wavelength switched optical network (WSON) has been proposed as one of the promising paradigms for future optical Internet, and the respective control plane for OBS and WSON layers under an overlay model has been intensively investigated in our previous works. In light of this, in this paper, we experimentally present an OpenFlow-based unified control plane for OBS/WSON multi-layer optical switched networks. The protocol extensions and design details of the OpenFlow-controlled OBS/WSON are discussed. By using two different signaling approaches (with and without confirmation mechanism during the lightpath provisioning period), we successfully demonstrate the overall feasibility of a unified control plane for OBS/WSON networks, and the performance of two signaling solutions is quantitatively evaluated in terms of end-to-end signaling latency and packet loss rate.
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