Cost Minimization for Cooperative Computation Framework in MEC Networks
July 11, 2020 Β· Declared Dead Β· π IEEE Transactions on Wireless Communications
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Authors
Yijin Pan, Cunhua Pan, Kezhi Wang, Huiling Zhu, Jiangzhou Wang
arXiv ID
2007.05757
Category
cs.IT: Information Theory
Cross-listed
eess.SP
Citations
37
Venue
IEEE Transactions on Wireless Communications
Last Checked
6 months ago
Abstract
In this paper, a cooperative task computation framework exploits the computation resource in UEs to accomplish more tasks meanwhile minimizes the power consumption of UEs. The system cost includes the cost of UEs' power consumption and the penalty of unaccomplished tasks and the system cost is minimized by jointly optimizing binary offloading decisions, the computational frequencies, and the offloading transmit power. To solve the formulated mixed-integer non-linear programming problem, three efficient algorithms are proposed, i.e., integer constraints relaxation-based iterative algorithm (ICRBI), heuristic matching algorithm, and the decentralized algorithm. The ICRBI algorithm achieves the best performance at the cost of the highest complexity, while the heuristic matching algorithm significantly reduces the complexity while still providing reasonable performance. As the previous two algorithms are centralized, the decentralized algorithm is also provided to further reduce the complexity, and it is suitable for the scenarios that cannot provide the central controller. The simulation results are provided to validate the performance gain in terms of the total system cost obtained by the proposed cooperative computation framework.
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