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Efficient computation for task offloading in 6G mobile computing systems

delete2024-02-03
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PRE
AI
P
Pallavi Khatri
B
Bernadeth Tongli
P
Pankaj Kumar
A
Ataniyazov Jasurbek Hamidovich
T
T. R. Vijaya Lakshmi
M
Mohammed Wasim Bhatt *
DOI:10.1007/s41060-024-00506-zdelete
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Abstract

Abstract

En 中文
This research focuses on achieving efficient computation for complex tasks within the overlapping coverage of 6G network base stations. A multi-access edge computing network model that involves multiple base stations and IoT devices is constructed by addressing task offloading challenges while considering task latency, energy consumption, societal impacts, and economic incentives. Joint optimization of base station pricing, IoT device base station selection, and task offloading strategies aim to maximize base station profits and IoT device utilities. A many-to-one matching game model tackles IoT device base station selection, and a Stackelberg game theory-based two-stage model handles pricing and task offloading interactions. The proposed game theory-based optimal pricing and best response algorithm (OBGT) achieves equilibrium strategies, demonstrating rapid convergence in simulations and enhancing base station profits and IoT device utility. This study incorporates Data-driven Mobile Computing Systems Assurance for advancing efficient task offloading and optimization.
Keywords:
Efficient computation
Stackelberg game theory
Task offloading
Joint optimization
Sixth-generation network
Cloud computing

Journal

I
International Journal of Data Science and Analytics
IF:
2.8
Papers:
1.0K
Citations:
1.3K

Organization

M
model institute of engineering & technology
Scholars:
61
Papers: 74
Citations: 0
I
itm university, gwalior
Scholars:
121
Papers: 93
Citations: 0
T
Tashkent State University of Economics
Scholars:
322
Papers: 319
Citations: 346
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