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A Two-Stage Service Migration Algorithm in Parked Vehicle Edge Computing for Internet of Things

机译:物联网的停放车辆边缘计算中的两阶段服务迁移算法

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摘要

Parked vehicle edge computing (PVEC) utilizes both idle resources in parked vehicles (PVs) and roadside units (RSUs) as service providers (SPs) to improve the performance of vehicular internet of things (IoT). However, it is difficult to make optimal service migration decisions in PVEC networks due to the uncertain parking duration and resources heterogeneity of PVs. In this paper, we formulate the service migration of all the vehicles as an optimization problem with the objective of minimizing the average latency. We propose a two-stage service migration algorithm for PVEC networks, which divides the original problem into the service migration between SPs and the serving PV selection in parking lots. The service migration between SPs is transformed to an online problem based on Lyapunov optimization, where the expected parking duration of PVs is utilized. A modified Hungarian algorithm is proposed to select the PVs for migration. A series of simulation experiments based on the real-world vehicle traces are conducted to verify the superior performance of the proposed two-stage service migration (SEA) algorithm as compared with the state-of- art solutions.
机译:停放车辆边缘计算(PVEC)利用停放车辆(PV)和路边单元(RSU)中的闲置资源作为服务提供商(SP),以改善车载物联网(IoT)的性能。但是,由于不确定的停车时间和PVs的资源异质性,很难在PVEC网络中做出最佳的服务迁移决策。在本文中,我们将所有车辆的服务迁移公式化为优化问题,目的是使平均等待时间最小化。我们提出了一种针对PVEC网络的两阶段服务迁移算法,该算法将原始问题分为SP之间的服务迁移和停车场中服务的PV选择。 SP之间的服务迁移被转换为基于Lyapunov优化的在线问题,其中利用了PV的预期停车时间。提出了一种改进的匈牙利算法来选择要迁移的PV。进行了一系列基于现实世界车辆轨迹的仿真实验,以验证与最新解决方案相比,所提出的两阶段服务迁移(SEA)算法的优越性能。

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