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請用此 Handle URI 來引用此文件: http://scholars.ntou.edu.tw/handle/123456789/25887
Title: Deep-SOR detection for massive MIMO systems
Authors: Lu, Hoang-Yang 
Azizi, S. Pourmohammad 
Cheng, Shyi-Chyi 
Keywords: Massive multiple-input multiple-output;Deep learning;Successive over-relaxation
Issue Date: 1-Jul-2025
Publisher: ELSEVIER GMBH
Journal Volume: 197
Source: AEU-INTERNATIONAL JOURNAL OF ELECTRONICS AND COMMUNICATIONS
Abstract: 
In massive MIMO systems, particularly in highly loaded scenarios where the number of transmit antennas approaches that of receive antennas, symbol detection faces significant challenges, including increased computational complexity and degraded performance. To address these issues, in the paper we propose a deep learning (DL)-assisted successive over-relaxation (SOR) detector. This detector utilizes two relaxation vectors to enhance performance, which are determined through DL training. Additionally, we introduce a convergence theorem and conduct simulations to validate their determination. Finally, simulation and complexity analysis results demonstrate that the proposed detector achieves superior performance with a moderate computational cost, especially in highly loaded scenarios.
URI: http://scholars.ntou.edu.tw/handle/123456789/25887
ISSN: 1434-8411
DOI: 10.1016/j.aeue.2025.155815
Appears in Collections:資訊工程學系
電機工程學系

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