基于边缘和云的车联网服务配置:一个实证分析

Zakaria Laaroussi, Roberto Morabito, T. Taleb
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引用次数: 19

摘要

车载云计算是一种网络基础设施范例,已广泛用于车载系统领域,以改善驾驶员的体验。特别是,云计算技术提供的更高的计算资源有助于应对车辆网络内交换的数据流量的巨大增长。然而,这种基础设施的先进发展,以及以异构和苛刻要求为特征的服务和应用程序的不断扩散,导致重新定义了基于蜂窝的车辆网络辅助车辆通信的方式。例如,多接入边缘计算(MEC)是一种新兴的网络范例,也可以在车辆场景中利用,以促进更有效和灵活的服务交付。虽然在文献中已经设想了车辆系统向基于mec的方法的迁移,从而产生了车辆边缘计算的概念,但缺乏实验见解来阐明这种新兴网络基础设施的实际可行性,这是一个未充分研究的方面。在本文中,我们试图填补这方面的空白,提出了一个广泛的实证分析,通过车辆系统的试验台进行。特别是,我们的工作旨在提供基于边缘云的服务供应与集中式基于云的方法相比所具有的优势的经验见解。此外,通过只关注小型工作量的传输,即与车载传感器产生的有效载荷相当——这项工作还旨在评估不同应用层协议(HTTP、CoAP和MQTT)在这种特殊上下文中的适用性。在性能分析中,还考虑了其他方面,包括车辆速度的影响以及可扩展性问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Service Provisioning in Vehicular Networks Through Edge and Cloud: An Empirical Analysis
Vehicular Cloud Computing is a network infrastructure paradigm that has been largely used in the vehicular systems landscape for improving drivers' experience. In particular, the higher computational resources made available by cloud computing technologies have helped in coping with the tremendous growth of data traffic exchanged within vehicular networks. However, the advanced development of such infrastructure, together with the relentless proliferation of services and applications characterized by heterogeneous and demanding requirements, has led to redefine the way in which cellular-based vehicular networks assist vehicular communications. As an example, Multi-Access Edge Computing (MEC) is an emerging network paradigm that can be exploited also in vehicular scenarios to foster a more effective and flexible service delivery. Although in literature the migration of vehicular systems towards a MEC-based approach has been already envisaged giving rise to the concept of Vehicular Edge Computing, a not fully investigated aspect is represented by the lack of experimental insights that shed light on the actual feasibility of this emerging network infrastructures. In this paper, we try to fill the gap in this respect by presenting an extensive empirical analysis performed through a vehicular system testbed. In particular, our work aims at providing empirical insights on the advantages that an edge cloud-based service provisioning can enable in comparison to a centralized cloud-based approach. Besides, by focusing only on the transmission of small-sized workload-i.e. with payload comparable to the one produced by In-Vehicle's sensors-this work also aims at evaluating the suitability of different application layer protocols (HTTP, CoAP, and MQTT) in this peculiar context. In the performance analysis, additional aspects have been also considered, including the impact of vehicle's speed as well as scalability issues.
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