Mobile Edge Computing in Space-Air-Ground Integrated Networks: Architectures, Key Technologies and Challenges

Yuan Qiu, Jianwei Niu, Xinzhong Zhu, Kuntuo Zhu, Yiming Yao, Beibei Ren, Tao Ren
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引用次数: 4

Abstract

Space-air-ground integrated networks (SAGIN) provide seamless global coverage and cross-domain interconnection for the ubiquitous users in heterogeneous networks, which greatly promote the rapid development of intelligent mobile devices and applications. However, for mobile devices with limited computation capability and energy budgets, it is still a serious challenge to meet the stringent delay and energy requirements of computation-intensive ubiquitous mobile applications. Therefore, in view of the significant success in ground mobile networks, the introduction of mobile edge computing (MEC) in SAGIN has become a promising technology to solve the challenge. By deploying computing, cache, and communication resources in the edge of mobile networks, SAGIN MEC provides both low latency, high bandwidth, and wide coverage, substantially improving the quality of services for mobile applications. There are still many unprecedented challenges, due to its high dynamic, heterogeneous and complex time-varying topology. Therefore, efficient MEC deployment, resource management, and scheduling optimization in SAGIN are of great significance. However, most existing surveys only focus on either the network architecture and system model, or the analysis of specific technologies of computation offloading, without a complete description of the key MEC technologies for SAGIN. Motivated by this, this paper first presents a SAGIN network system architecture and service framework, followed by the descriptions of its characteristics and advantages. Then, the MEC deployment, network resources, edge intelligence, optimization objectives and key algorithms in SAGIN are discussed in detail. Finally, potential problems and challenges of MEC in SAGIN are discussed for future work.
天空地集成网络中的移动边缘计算:体系结构、关键技术和挑战
天空地一体化网络(SAGIN)为异构网络中无处不在的用户提供了无缝的全球覆盖和跨域互联,极大地促进了智能移动设备和应用的快速发展。然而,对于计算能力和能量预算有限的移动设备来说,如何满足无处不在的计算密集型移动应用对延迟和能量的严格要求仍然是一个严峻的挑战。因此,鉴于地面移动网络的重大成功,在SAGIN中引入移动边缘计算(MEC)已成为解决这一挑战的一种有前途的技术。通过在移动网络边缘部署计算、缓存和通信资源,SAGIN MEC提供低延迟、高带宽和广覆盖,大大提高了移动应用程序的服务质量。由于其高动态性、异质性和复杂的时变拓扑结构,仍然面临着许多前所未有的挑战。因此,在SAGIN中进行高效的MEC部署、资源管理和调度优化具有重要意义。然而,大多数现有的调查只关注网络架构和系统模型,或者对特定的计算卸载技术的分析,而没有对SAGIN的关键MEC技术进行完整的描述。基于此,本文首先提出了SAGIN网络的体系结构和服务框架,然后对其特点和优势进行了描述。然后,详细讨论了SAGIN中的MEC部署、网络资源、边缘智能、优化目标和关键算法。最后,对SAGIN中MEC存在的问题和面临的挑战进行了展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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