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首页> 外文期刊>IEEE transactions on mobile computing >Edge-Enabled V2X Service Placement for Intelligent Transportation Systems
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Edge-Enabled V2X Service Placement for Intelligent Transportation Systems

机译:为智能交通系统启用了EDGE的V2X服务展位

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摘要

Vehicle-to-everything (V2X) communication and services have been garnering significant interest from different stakeholders as part of future intelligent transportation systems (ITSs). This is due to the many benefits they offer. However, many of these services have stringent performance requirements, particularly in terms of the delay/latency. Multi-access/mobile edge computing (MEC) has been proposed as a potential solution for such services by bringing them closer to vehicles. Yet, this introduces a new set of challenges such as where to place these V2X services, especially given the limit computation resources available at edge nodes. To that end, this work formulates the problem of optimal V2X service placement (OVSP) in a hybrid core/edge environment as a binary integer linear programming problem. To the best of our knowledge, no previous work considered the V2X service placement problem while taking into consideration the computational resource availability at the nodes. Moreover, a low-complexity greedy-based heuristic algorithm named "Greedy V2X Service Placement Algorithm" (G-VSPA) was developed to solve this problem. Simulation results show that the OVSP model successfully guarantees and maintains the QoS requirements of all the different V2X services. Additionally, it is observed that the proposed G-VSPA algorithm achieves close to optimal performance while having lower complexity.
机译:作为未来智能交通系统(ITS)的一部分,车辆到一切(V2X)沟通和服务都是从不同利益相关者提供的重大兴趣。这是由于他们提供的许多好处。但是,许多这些服务具有严格的性能要求,特别是在延迟/延迟方面。通过将其更靠近车辆,已经提出了多访问/移动边缘计算(MEC)作为此类服务的潜在解决方案。然而,这引入了一种新的挑战,例如在哪里放置这些V2X服务,特别是在边缘节点上可用的限制计算资源。为此,这项工作将混合核心/边缘环境中的最佳V2X服务放置(OVSP)作为二进制整数线性规划问题制定问题。据我们所知,在考虑到节点上的计算资源可用性时,没有以前的工作考虑了V2X服务放置问题。此外,开发了一种名为“贪婪V2X服务放置算法”(G-VSPA)的低复杂性贪婪的启发式算法来解决这个问题。仿真结果表明,OVSP模型成功保证并维护了所有不同V2X服务的QoS要求。另外,观察到所提出的G-VSPA算法在具有较低复杂性的同时达到最佳性能。

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