Software-defined optical intra-data center network and access control Strategy

IF 1.9 4区 计算机科学 Q3 COMPUTER SCIENCE, INFORMATION SYSTEMS Optical Switching and Networking Pub Date : 2022-09-01 DOI:10.1016/j.osn.2022.100679
P.A. Baziana , G. Drainakis , E. Sykas
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引用次数: 1

Abstract

The continuously emerging cloud services provide an unprecedented traffic growth into the large-scale data centers (DCs) globally. In this paper, we introduce an optical DC network (DCN) architecture to organize the servers into computing clusters. Since a high percentage of the total DCΝ traffic is served within a cluster, we assume two distinct networks: the intra-cluster passive optical network that handles the traffic destined to any server of the same cluster and the inter-cluster one to route the traffic to any other cluster. The servers interconnection within the passive optical intra-cluster network causes low power consumption, while the Top-of-Cluster (ToC) switch requires less ports than a relative Top-of-Rack (ToR) one to interconnect the same number of servers within the intra network, reducing even more the total power consumption. In the data plane, the intra- and the inter-cluster networks use separate wavelengths. In the control plane, the software-defined networking (SDN) paradigm is followed. Especially, in each cluster we adopt a cluster controller to coordinate the medium access control (MAC) in both the intra and inter-cluster networks. Unlike other studies that assume electrical connectivity with the controller, we consider that it is performed in the optical domain to guarantee the effective synchronized operation of the control and data planes. In our work, we focus on the intra-cluster network. We propose a synchronous transmission software-defined bandwidth allocation (SD-BA) MAC protocol to fairly coordinate the collisions-free transmission of different quality of service traffic categories in the intra-cluster network, based on the wavelength and time division multiplexing (W&TDM) techniques. The proposed DCN architecture along with the SD-MAC protocol provides scalability and efficiency. Simulations results show that the proposed SD-BA MAC protocol achieves almost 100% bandwidth utilization, while it reaches at high loads 145% higher throughput, 573% lower delay and 233% less dropped packets as compared to the relative DMAC network architecture (Zheng and Sun, Apr. 2020) [24]. Also, the proposed intra-cluster DCN architecture is compared to some other currently leading relative ones in terms of throughput and power consumption and it is proven to be a performance and energy efficient DCN solution.

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软件定义光数据中心内网络及访问控制策略
不断涌现的云服务为全球范围内的大型数据中心提供了前所未有的流量增长。本文介绍了一种将服务器组织成计算集群的光数据中心网络(DCN)架构。由于总DCΝ流量的很大一部分是在集群内提供服务的,因此我们假设有两个不同的网络:集群内无源光网络,处理发送到同一集群的任何服务器的流量;集群间无源光网络,将流量路由到任何其他集群。在无源光集群内网络中,服务器之间的互连具有较低的功耗,而在相同数量的集群内,使用ToC (Top-of-Cluster)交换机比使用ToR (Top-of-Rack)交换机所需的端口更少,从而进一步降低了总功耗。在数据平面上,集群内和集群间的网络使用不同的波长。在控制平面,遵循软件定义网络(SDN)范式。特别是,在每个集群中,我们采用一个集群控制器来协调集群内和集群间网络的介质访问控制(MAC)。与其他假设与控制器电连接的研究不同,我们认为它是在光域中进行的,以保证控制平面和数据平面的有效同步操作。在我们的工作中,我们主要关注集群内网络。基于波长和时分复用(W&TDM)技术,提出了一种同步传输软件定义带宽分配(SD-BA) MAC协议,以公平协调集群内网络中不同业务质量流量类别的无冲突传输。提出的DCN体系结构和SD-MAC协议提供了可扩展性和效率。仿真结果表明,与相对的DMAC网络架构相比,所提出的SD-BA MAC协议实现了几乎100%的带宽利用率,而在高负载下,它的吞吐量提高了145%,延迟降低了573%,丢包减少了233% (Zheng and Sun, Apr. 2020)[24]。此外,本文还将所提出的集群内DCN架构与目前一些领先的DCN架构在吞吐量和功耗方面进行了比较,并证明了它是一种性能和节能的DCN解决方案。
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来源期刊
Optical Switching and Networking
Optical Switching and Networking COMPUTER SCIENCE, INFORMATION SYSTEMS-OPTICS
CiteScore
5.20
自引率
18.20%
发文量
29
审稿时长
77 days
期刊介绍: Optical Switching and Networking (OSN) is an archival journal aiming to provide complete coverage of all topics of interest to those involved in the optical and high-speed opto-electronic networking areas. The editorial board is committed to providing detailed, constructive feedback to submitted papers, as well as a fast turn-around time. Optical Switching and Networking considers high-quality, original, and unpublished contributions addressing all aspects of optical and opto-electronic networks. Specific areas of interest include, but are not limited to: • Optical and Opto-Electronic Backbone, Metropolitan and Local Area Networks • Optical Data Center Networks • Elastic optical networks • Green Optical Networks • Software Defined Optical Networks • Novel Multi-layer Architectures and Protocols (Ethernet, Internet, Physical Layer) • Optical Networks for Interet of Things (IOT) • Home Networks, In-Vehicle Networks, and Other Short-Reach Networks • Optical Access Networks • Optical Data Center Interconnection Systems • Optical OFDM and coherent optical network systems • Free Space Optics (FSO) networks • Hybrid Fiber - Wireless Networks • Optical Satellite Networks • Visible Light Communication Networks • Optical Storage Networks • Optical Network Security • Optical Network Resiliance and Reliability • Control Plane Issues and Signaling Protocols • Optical Quality of Service (OQoS) and Impairment Monitoring • Optical Layer Anycast, Broadcast and Multicast • Optical Network Applications, Testbeds and Experimental Networks • Optical Network for Science and High Performance Computing Networks
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