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AoI-Oriented Computation Offloading and Resource Allocation for End-Edge-Cloud Computing Systems

delete2025-09-27
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PRE
AI
Y
Youling Zeng
Y
Yue Zeng
J
Jining Chen
Y
Yufan Shen
L
Liying Li
P
Peijin Cong
周俊龙 (Junlong Zhou)
李克勤 cover
李克勤 (Keqin Li)
DOI:10.1109/JIOT.2025.3591682delete
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Abstract

Abstract

En 中文
As smart mobile applications increasingly demand timely situational awareness and energy efficiency, the Age of Information (AoI) metric plays a vital role in maintaining data freshness. This need is further supported by the end–edge–cloud computing (EECC) paradigm, which enhances application performance by facilitating task offloading to the edge or the cloud. However, existing AoI optimization solutions focus solely on task offloading, often neglecting critical aspects, such as system resource allocation and energy efficiency, which can lead to resource waste, increased energy consumption, compromised Quality of Service (QoS), and system performance degradation. Therefore, this article investigates the joint optimization of task offloading, communication and computing resource allocation in EECC systems, aiming to minimize AoI and energy consumption under constraints of deadlines and capacity constraints. To address this problem, we divide the decision space into multiple nonintersecting decision areas based on the characteristics of the studied problem and design a task offloading and resource allocation algorithm based on slow-movement particle swarm optimization (SPSO) to handle each decision area individually. In the algorithm design, we customize the position, velocity, update rules, and fitness function for the optimization problem. Finally, extensive simulation-based and testbed experiment results show that the proposed algorithm can save up to 14.56% of energy consumption, shorten AoI by up to 27.80%, and improve utility (weighted sum of AoI and energy consumption) by up to 15.89% compared with existing algorithms.
Keywords:
Age of Information (AoI)
computation offloading
end–edge–cloud computing (EECC)
resource allocation

Journal

IEEE Internet of Things Journal cover
IEEE Internet of Things Journal
IF:
8.9
Papers:
1.4W
Citations:
7.8W

Organization

N
Nanjing University of Science and Technology
Scholars:
5.6K
Papers: 2.2K
Citations: 25
S
state university of new york
Scholars:
710
Papers: 452
Citations: 0
G
guangxi zhuang autonomous region information center
Scholars:
29
Papers: 32
Citations: 0
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