Correlated Information Scheduling in Industrial Internet of Things Based on Multi-Heterogeneous-Agent-Reinforcement-Learning

被引:3
作者
Zhang, Qiuyang [1 ]
Wang, Ying [1 ]
机构
[1] Beijing Univ Posts & Telecommun, State Key Lab Networking & Switching Technol, Beijing 100876, Peoples R China
来源
IEEE TRANSACTIONS ON NETWORK SCIENCE AND ENGINEERING | 2024年 / 11卷 / 01期
基金
中国国家自然科学基金;
关键词
Sensors; Job shop scheduling; Industrial Internet of Things; Quality of service; Correlation; Sensor systems and applications; Sensor systems; Industrial Internet of Things (IIoT); Age of Correlated Information (AoCI); multi-agent reinforcement learning;
D O I
10.1109/TNSE.2023.3321048
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The industrial Internet of Things (IIoT) has led to the emergence of various information-based industrial applications. Due to the uninterrupted and complex nature of production processes in industrial systems, these applications often run continuously and rely on information from multiple sensors. As a result, a single sensor can support multiple applications simultaneously, leading to complex correlations in the system. To address this challenge, we introduce the concept of the age of correlated information (AoCI) and formulate the scheduling problem as a Markov game problem to optimize the information freshness of industrial applications. To solve the problem, we propose a multi-heterogeneous-agent-reinforcement-learning (MHARL) scheme, which uses neural networks with different structures to represent agents participating in the game. Our numerical results demonstrate that the proposed MHARL scheme outperforms typical baselines, such as Qmix and VDN, in terms of AoCI and energy efficiency.
引用
收藏
页码:1065 / 1076
页数:12
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