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Joint Load Balancing and Offloading in Vehicular Edge Computing and Networks

IEEE Internet of Things Journal · 2018 · Vol. 6(3) · pp. 4377–4387
Yueyue DaiDu XuSabita MaharjanYan Zhang

Abstract

The emergence of computation intensive and delay sensitive on-vehicle applications makes it quite a challenge for vehicles to be able to provide the required level of computation capacity, and thus the performance. Vehicular edge computing (VEC) is a new computing paradigm with a great potential to enhance vehicular performance by offloading applications from the resource-constrained vehicles to lightweight and ubiquitous VEC servers. Nevertheless, offloading schemes, where all vehicles offload their tasks to the same VEC server, can limit the performance gain due to overload. To address this problem, in this paper, we propose integrating load balancing with offloading, and study resource allocation for a multiuser multiserver VEC system. First, we formulate the joint load balancing and offloading problem as a mixed integer nonlinear programming problem to maximize system utility. Particularly, we take IEEE 802.11p protocol into consideration for modeling the system utility. Then, we decouple the problem as two subproblems and develop a low-complexity algorithm to jointly make VEC server selection, and optimize offloading ratio and computation resource. Numerical results illustrate that the proposed algorithm exhibits fast convergence and demonstrates the superior performance of our joint optimal VEC server selection and offloading algorithm compared to the benchmark solutions.

IoT and Edge/Fog ComputingBlockchain Technology Applications and SecurityPrivacy-Preserving Technologies in DataComputer scienceComputation offloadingServerBenchmark (surveying)Load balancing (electrical power)Distributed computingMobile edge computingResource allocationEnhanced Data Rates for GSM EvolutionComputation

Funding

  • Japan Society of Clinical Oncology
  • China Scholarship Council
  • Norges Forskningsråd
  • Higher Education Discipline Innovation Project
  • National Key Research and Development Program of China
Citations
466
FWCI
33.56
field-weighted impact
References
38
Percentile
100%
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Citations per year
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References
Energy-Optimal Mobile Cloud Computing under Stochastic Wireless Channel
IEEE Transactions on Wireless Communications · 2013 · 862 citations
Energy-Efficient Resource Allocation for Mobile-Edge Computation Offloading
IEEE Transactions on Wireless Communications · 2016 · 1,534 citations
Dynamic Computation Offloading for Mobile-Edge Computing With Energy Harvesting Devices
IEEE Journal on Selected Areas in Communications · 2016 · 1,667 citations
Mobile-Edge Computing: Partial Computation Offloading Using Dynamic Voltage Scaling
IEEE Transactions on Communications · 2016 · 1,016 citations
Computation Offloading and Resource Allocation in Wireless Cellular Networks With Mobile Edge Computing
IEEE Transactions on Wireless Communications · 2017 · 713 citations
Joint Offloading and Computing Optimization in Wireless Powered Mobile-Edge Computing Systems
IEEE Transactions on Wireless Communications · 2017 · 944 citations
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