Autonomous Task Offloading of Vehicular Edge Computing With Parallel Computation Queues

  • Cho, Sungho; 
  • Choi, Sung Il; 
  • Oh, Seung Hyun; 
  • Roberts, Ian P.; 
  • Lee, Sang Hyun
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초록

This work considers a parallel task execution strategy in vehicular edge computing (VEC) networks, where edge servers are deployed along the roadside to process offloaded computational tasks of vehicular users. To minimize the overall waiting delay among vehicular users, a novel task offloading solution is implemented based on the network cooperation balancing resource underutilization and load congestion. Dual evaluation through theoretical and numerical ways shows that the developed solution achieves a globally optimal delay reduction performance compared to existing methods, which is also validated by the feasibility test over a real-map virtual environment. The in-depth analysis reveals that predicting the instantaneous processing power of edge servers facilitates the identification of overloaded servers, which is critical for determining network delay. By considering discrete variables of the queue, the proposed technique's precise estimation can effectively address these combinatorial challenges to achieve optimal performance.

키워드

Mobile edge computing; task allocation; vehicular association; vehicular association; message-passing algorithms; message-passing algorithms; message-passing algorithms
제목
Autonomous Task Offloading of Vehicular Edge Computing With Parallel Computation Queues
저자
Cho, Sungho; Choi, Sung Il; Oh, Seung Hyun; Roberts, Ian P.; Lee, Sang Hyun
DOI
10.1109/TMC.2025.3640244
발행일
2026-05
유형
Article
저널명
IEEE Transactions on Mobile Computing
권
25
호
5
페이지
7166 ~ 7181