卫星-地面集成网络的动态离散拓扑设计和路由选择

IF 5.3 3区 计算机科学 Q2 COMPUTER SCIENCE, HARDWARE & ARCHITECTURE IEEE/ACM Transactions on Networking Pub Date : 2024-03-17 DOI:10.1109/TNET.2024.3397613
Shuyang Li;Qiang Wu;Ran Wang
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引用次数: 0

摘要

卫星-地面综合网络(STN)通过结合卫星和地面网络基础设施,能够在全球范围内提供无处不在的大容量覆盖,因此被认为是一种前景广阔的 6G 网络架构。然而,复杂的网络架构、时变的拓扑结构以及频繁的卫星间连接切换给 STN 中高效路由和服务连续性的开发带来了巨大挑战。为了克服这些挑战,我们在本文中提出了面向动态离散拓扑的广域路由机制 Dyna-STN。Dyna-STN 利用动态离散拓扑模型来描述卫星网络的时变拓扑。此外,还在管理平面内建立了一个分层框架来实现 Dyna-STN,该框架由动态离散拓扑管理平面和路由管理平面组成。由固定虚拟节点组成的虚拟叠加网络屏蔽了卫星网络的动态性,同时在虚拟叠加网络中部署了开放式最短路径优先协议(OSPF),以在虚拟节点之间交换路由可达性信息。此外,Dyna-STN 还能在特定时隙在不同卫星实体之间执行动态绑定和服务迁移,从而保持虚拟节点服务的连续性。大量数值结果表明,Dyna-STN 在路由协议性能、数据包转发性能和服务连续性方面都优于几种基准方案。此外,随着网络规模的扩大,Dyna-STN 还能保持稳定的性能,并支持 STN 终端设备之间可靠的数据传输。
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Dynamic Discrete Topology Design and Routing for Satellite-Terrestrial Integrated Networks
Satellite-terrestrial integrated networks (STNs) are considered a promising architecture for 6G networks due to their ability to provide ubiquitous, high-capacity coverage on a global scale by combining satellite and terrestrial network infrastructures. However, the complex network architecture, time-varying topology, and frequent inter-satellite connection handovers present significant challenges for developing efficient routing and service continuity in STNs. To overcome these challenges, we propose Dyna-STN, a dynamic discrete topology-oriented wide-area routing mechanism in this paper. Dyna-STN utilizes a dynamic discrete topology model to characterize the time-varying topology of satellite networks. Furthermore, a hierarchical framework is established within the management plane to implement Dyna-STN, which comprises a dynamic discrete topology management plane and a routing management plane. A virtual overlay network composed of fixed virtual nodes shields the dynamics of satellite networks, while the open shortest path first protocol (OSPF) is deployed within the virtual overlay network to exchange routing reachability information among virtual nodes. Additionally, Dyna-STN performs dynamic binding and service migration between different satellite entities at specific time slots, thereby maintaining the continuity of virtual node services. Extensive numerical results demonstrate that Dyna-STN outperforms several baseline schemes in terms of routing protocol performance, packet forwarding performance, and service continuity. Furthermore, Dyna-STN maintains stable performance as the network scale increases and supports reliable data transmission among terminal devices in STNs.
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来源期刊
IEEE/ACM Transactions on Networking
IEEE/ACM Transactions on Networking 工程技术-电信学
CiteScore
8.20
自引率
5.40%
发文量
246
审稿时长
4-8 weeks
期刊介绍: The IEEE/ACM Transactions on Networking’s high-level objective is to publish high-quality, original research results derived from theoretical or experimental exploration of the area of communication/computer networking, covering all sorts of information transport networks over all sorts of physical layer technologies, both wireline (all kinds of guided media: e.g., copper, optical) and wireless (e.g., radio-frequency, acoustic (e.g., underwater), infra-red), or hybrids of these. The journal welcomes applied contributions reporting on novel experiences and experiments with actual systems.
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ARION: Aggregated Routing for In-Order Optimized Network Load Balancing in Data Centers Table of Contents IEEE/ACM Transactions on Networking Information for Authors IEEE/ACM Transactions on Networking Society Information IEEE/ACM Transactions on Networking Publication Information
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