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Article

Energy-Efficient Task Offloading in Wireless-Powered MEC: A Dynamic and Cooperative Approach

1
School of Computer, Zhongshan Institute, University of Electronic Science and Technology of China, Zhongshan 528402, China
2
Computer Science and Engineering School, University of Electronic Science and Technology of China, Chengdu 611731, China
3
School of Engineering and Technology, Central Queensland University, Rockhampton, QLD 4701, Australia
4
College of Mathematics and Informatics, South China Agricultural University, Guangzhou 510642, China
*
Author to whom correspondence should be addressed.
Mathematics 2024, 12(15), 2326; https://doi.org/10.3390/math12152326
Submission received: 28 June 2024 / Revised: 22 July 2024 / Accepted: 23 July 2024 / Published: 25 July 2024

Abstract

Mobile Edge Computing (MEC) integrated with Wireless Power Transfer (WPT) is emerging as a promising solution to reduce task delays and extend the battery life of Mobile Devices (MDs). However, maximizing the long-term energy efficiency (EE) of a user-cooperative WPT-MEC system presents significant challenges due to uncertain load dynamics at the edge MD and the time-varying state of the wireless channel. In this paper, we propose an online control algorithm to maximize the long-term EE of a WPT-MEC system by making decisions on time allocations and transmission powers of mobile devices (MDs) for a three-node network. We formulate a stochastic programming problem considering the stability of network queues and time-coupled battery levels. By leveraging Dinkelbach’s method, we transform the fractional optimal problem into a more manageable form and then use the Lyapunov optimization technique to decouple the problem into a deterministic optimization problem for each time slot. For the sub-problem in each time slot, we use the variable substitution technique and convex optimization theory to convert the non-convex problem into a convex problem, which can be solved efficiently. Extensive simulation results demonstrate that our proposed algorithm outperforms baseline algorithms, achieving a 20% improvement in energy efficiency. Moreover, our algorithm achieves an [O(1/V),O(V)] trade-off between EE and network queue stability.
Keywords: mobile edge computing (MEC); wireless power transfer (WPT); user cooperation; Lyapunov optimization; convex optimization mobile edge computing (MEC); wireless power transfer (WPT); user cooperation; Lyapunov optimization; convex optimization

Share and Cite

MDPI and ACS Style

He, H.; Zhou, C.; Huang, F.; Shen, H.; Li, S. Energy-Efficient Task Offloading in Wireless-Powered MEC: A Dynamic and Cooperative Approach. Mathematics 2024, 12, 2326. https://doi.org/10.3390/math12152326

AMA Style

He H, Zhou C, Huang F, Shen H, Li S. Energy-Efficient Task Offloading in Wireless-Powered MEC: A Dynamic and Cooperative Approach. Mathematics. 2024; 12(15):2326. https://doi.org/10.3390/math12152326

Chicago/Turabian Style

He, Huaiwen, Chenghao Zhou, Feng Huang, Hong Shen, and Shuangjuan Li. 2024. "Energy-Efficient Task Offloading in Wireless-Powered MEC: A Dynamic and Cooperative Approach" Mathematics 12, no. 15: 2326. https://doi.org/10.3390/math12152326

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