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01-04-2025

End-to-end supervised learning for NOMA-enabled resource allocation: A dynamic and scalable approach

Authors: Leyou Yang, Jie Jia, Jian Chen, Baoxin Yin, Xingwei Wang

Published in: Peer-to-Peer Networking and Applications | Issue 2/2025

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Abstract

The article discusses the evolution of multiple-access technology, focusing on Non-Orthogonal Multiple Access (NOMA) as a candidate for next-generation networks. It highlights the potential of NOMA to enhance spectral efficiency and flexibility. The core challenge addressed is the dynamic and scalable resource allocation in NOMA systems. The authors propose an end-to-end supervised learning approach using Pointer Networks (PTN) and Graph Pointer Networks (GPN) to optimize channel assignment and power allocation. The method is designed to handle the dynamic nature of user movements and varying user numbers, providing real-time decision-making capabilities. The article also compares the proposed method with traditional optimization algorithms and reinforcement learning, demonstrating its superior performance in terms of speed and flexibility.

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Metadata
Title
End-to-end supervised learning for NOMA-enabled resource allocation: A dynamic and scalable approach
Authors
Leyou Yang
Jie Jia
Jian Chen
Baoxin Yin
Xingwei Wang
Publication date
01-04-2025
Publisher
Springer US
Published in
Peer-to-Peer Networking and Applications / Issue 2/2025
Print ISSN: 1936-6442
Electronic ISSN: 1936-6450
DOI
https://doi.org/10.1007/s12083-024-01815-7

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