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Priority-Aware Task Scheduling in Computing Power Network-Enabled Edge Computing Systems

delete2025-07-01
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PRE
AI
R
Renchao Xie
冯丽 (Li Feng)
Q
Qinqin Tang
Z
Zhu Han
黄涛 (Tao Huang)
R
Ran Zhang
F
F. Richard Yu
Z
Zehui Xiong
DOI:10.1109/TNSE.2025.3557385delete
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Abstract

Abstract

En 中文
The Internet of everything, a potential direction for the next-generation Internet, positions edge collaboration as a promising computing paradigm to address the workload dispersion and resource constraints inherent in traditional edge computing frameworks. However, the increasing complexity of cross-domain networks introduces challenges for efficient task execution and balanced resource utilization in edge collaboration, which remain insufficiently explored. To address these challenges, a next-generation network architecture, the compute power network (CPN), was recently proposed. The CPN leverages ubiquitous connections among heterogeneous resources to optimize task scheduling collaboratively. Building on this concept, we design an edge computing system that integrates CPN to enable dynamic and collaborative task scheduling. Inspired by the sliding window, we develop a dynamic scheduling scheme that prioritizes computing tasks and matches tasks to computing resources in real time. Additionally, we propose an improved deep reinforcement learning (DRL) algorithm to optimize scheduling policies, aiming to improve task success rates, minimize execution delays, and ensure balanced and efficient resource utilization. Lastly, simulation experiments validate the effectiveness of the proposed scheme and algorithm.
Keywords:
Edge cooperation
computing power networks
scheduling priority
load-balancing
delay-sensitive

Journal

I
IEEE Transactions on Network Science and Engineering
IF:
7.9
Papers:
2.5K
Citations:
10.0K

Organization

B
Beijing University of Posts and Telecommunications
Scholars:
2.6K
Papers: 1.2K
Citations: 4.2K
S
Singapore University of Technology and Design
Scholars:
356
Papers: 308
Citations: 42
C
carleton university
Scholars:
7.5K
Papers: 8.3K
Citations: 5
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