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首页> 外文期刊>Optical Communications and Networking, IEEE/OSA Journal of >Control and orchestration of multidomain optical networks with GMPLS as inter-SDM controller communication
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Control and orchestration of multidomain optical networks with GMPLS as inter-SDM controller communication

机译:使用GMPLS作为SDM控制器间通信的多域光网络的控制和编排

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Emerging use cases, such as the orchestration of heterogeneous domains or the interconnection of remote data centers, require the design of new network control, management, and orchestration architectures that are adapted to the requirements associated with end-to-end services. This heterogeneity, stemming from actual deployments, is related to the involved data and control technologies or due to network segmentation. It is acknowledged that, in these scenarios, the deployment of a single software- defined networking (SDN) controller may not be practical or may have fundamental limitations, in terms of either scalability, complexity, or interoperability. To address this trend, and as a means to cope with the complexity growth, research in this area is considering the concept of SDN orchestration (the coordinated control of heterogeneous systems), abstraction (the selection of entityrelevant attributes), and the use of multiple controllers, commonly arranged in hierarchical or flat configurations. In this paper, we consider a hybrid approach combining elements from distributed control with elements from centralized control, relying on the concepts of abstraction and aggregation and hierarchical traffic engineering (TE). We propose a multidomain and multivendor network control architecture organized in layers, the abstract network layer and the control-specific layer, resulting in a mesh of generic SDN controllers that use generalized multiprotocol label switching (GMPLS) protocols as their east/west interfaces (open shortest path first TE and Resource Reservation Protocol with extensions for TE as inter- SDN controller communications protocols), forming an abstracted topology. To validate the approach, and to evaluate factors such as end-to-end network service deployment delay or control overhead, the proposed architecture is implemented and validated in a control plane testbed. While emphasis is given to the control of optical (flexi-grid) networks, the proposed ap- roach can be generalized to other transport technologies.
机译:新兴的用例,例如异构域的编排或远程数据中心的互连,要求设计新的网络控制,管理和编排架构,以适应与端到端服务相关的需求。源于实际部署的这种异构性与所涉及的数据和控制技术或网络分段有关。公认的是,在这些情况下,就可伸缩性,复杂性或互操作性而言,单个软件定义的网络(SDN)控制器的部署可能不切实际或可能具有基本限制。为了应对这一趋势,并作为应对复杂性增长的一种方式,该领域的研究正在考虑SDN编排(异构系统的协调控制),抽象(实体相关属性的选择)以及使用多个对象的概念。控制器,通常以分层或平面配置形式排列。在本文中,我们考虑了一种依赖于抽象和聚合以及分层流量工程(TE)的概念的混合方法,该方法将分布式控制的元素与集中控制的元素相结合。我们提出了一种多层组织的多域和多供应商网络控制体系结构,包括抽象网络层和特定于控制的层,从而形成了使用通用多协议标签交换(GMPLS)协议作为其东西方接口的通用SDN控制器网格(开放最短路径优先TE和资源保留协议,以及TE的扩展(作为SDN控制器之间的通信协议),形成抽象的拓扑。为了验证该方法并评估诸如端到端网络服务部署延迟或控制开销之类的因素,所提出的体系结构在控制平面测试平台中得以实现和验证。虽然重点是控制光(柔性网格)网络,但建议的方法可以推广到其他传输技术。

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