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Stochastic Joint Radio and Computational Resource Management for Multi-User Mobile-Edge Computing Systems

IEEE Transactions on Wireless Communications · 2017 · Vol. 16(9) · pp. 5994–6009
Yuyi MaoJun ZhangShenghui SongKhaled B. Letaief

Abstract

Mobile-edge computing (MEC) has recently emerged as a prominent technology to liberate mobile devices from computationally intensive workloads, by offloading them to the proximate MEC server. To make offloading effective, the radio and computational resources need to be dynamically managed, to cope with the time-varying computation demands and wireless fading channels. In this paper, we develop an online joint radio and computational resource management algorithm for multi-user MEC systems, with the objective of minimizing the long-term average weighted sum power consumption of the mobile devices and the MEC server, subject to a task buffer stability constraint. Specifically, at each time slot, the optimal CPU-cycle frequencies of the mobile devices are obtained in closed forms, and the optimal transmit power and bandwidth allocation for computation offloading are determined with the Gauss-Seidel method; while for the MEC server, both the optimal frequencies of the CPU cores and the optimal MEC server scheduling decision are derived in closed forms. Besides, a delay-improved mechanism is proposed to reduce the execution delay. Rigorous performance analysis is conducted for the proposed algorithm and its delay-improved version, indicating that the weighted sum power consumption and execution delay obey an [O (1/V) , O (V)] tradeoff with V as a control parameter. Simulation results are provided to validate the theoretical analysis and demonstrate the impacts of various parameters.

IoT and Edge/Fog ComputingAge of Information OptimizationIoT Networks and ProtocolsComputer scienceMobile edge computingComputation offloadingComputational complexity theoryWirelessScheduling (production processes)Computational resourceDistributed computingServerUser equipment
Citations
696
FWCI
69.63
field-weighted impact
References
46
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100%
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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
Edge Computing: Vision and Challenges
IEEE Internet of Things Journal · 2016 · 7,597 citations
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