6533b870fe1ef96bd12d076a
RESEARCH PRODUCT
Network Slicing Enabled Resource Management for Service-Oriented Ultra-Reliable and Low-Latency Vehicular Networks
Lei JiaoYing WangJiayi ZhangMan LiuYuanbin Chensubject
Vehicular ad hoc networkComputer Networks and CommunicationsComputer scienceDistributed computingAerospace EngineeringComputingMilieux_LEGALASPECTSOFCOMPUTING020302 automobile design & engineeringLyapunov optimization02 engineering and technologySlicingScheduling (computing)0203 mechanical engineeringAutomotive EngineeringResource managementStochastic optimizationElectrical and Electronic EngineeringOnline algorithmVDP::Teknologi: 500::Informasjons- og kommunikasjonsteknologi: 550Power controldescription
Network slicing has been considered as a promising candidate to provide customized services for vehicular applications that have extremely high requirements of latency and reliability. However, the high mobility of vehicles poses significant challenges to resource management in such a stochastic vehicular environment with time-varying service demands. In this paper, we develop an online network slicing scheduling strategy for joint resource block (RB) allocation and power control in vehicular networks. The long-term time-averaged total system capacity is maximized while guaranteeing strict ultra-reliable and low-latency requirements of vehicle communication links, subject to stability constraints of task queues. The formulated problem is a mixed integer nonlinear stochastic optimization problem, which is decoupled into three subproblems by leveraging Lyapunov optimization. In order to tackle this problem, we propose an online algorithm, namely JRPSV, to obtain the optimal RB allocation and power control at each time slot according to the current network state. Furthermore, rigorous theoretical analysis is conducted for the proposed JRPSV algorithm, indicating that the system capacity and the system average latency obey a $[ {{\mathcal O}({1/V}),{\mathcal O}(V)} ]$ trade-off with the control parameter $V$ . Extensive simulation results are provided to validate the theoretical analysis and demonstrate the effectiveness of JRPSV as well as the impacts of various parameters.
year | journal | country | edition | language |
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2020-07-01 | IEEE Transactions on Vehicular Technology |