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Passive Beamforming Design for Double RIS-muMIMO System: A Machine Learning Perspective

delete2024-01-01
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OA
AI
M
M. Rezwanul Mahmood
M
M. A. Matin *
S
Sotirios K. Goudos
DOI:10.1109/ACCESS.2024.3479937delete
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摘要

摘要

En 中文
Multiple-input multiple-output (MIMO) and reconfigurable intelligent surfaces (RIS) enable network system designers to create intelligent, energy-efficient network systems. Higher-order beamforming gain through the deployment of multiple RISs ensures enhanced system performance. To achieve this, a cooperative design of passive beamforming is required. This paper presents RIS passive beamforming design for a double RIS-assisted multi-user multiple-input multiple-output (muMIMO) system. The authors explore machine learning (ML)-based techniques, specifically fully complex-multilayer perception (FC-MLP) and extreme learning machine (ELM), that do not require any prior knowledge of the mathematical formulations of the network system, for RIS passive beamforming design frameworks. The proposed ML-based frameworks are compared to the alternating optimization (AO) as well as to the deep deterministic policy gradient (DDPG)-based techniques in terms of average spectral efficiency (SE), as a function of transmit power, their configurations, RISs' locations and number of RISs' cells, as well as their computational complexities. The proposed ELM framework outperforms the AO and FC-MLP methods, and demonstrates descent performance when compared to the DDPG method.
Keyword:
Array signal processing
Channel estimation
Reconfigurable intelligent surfaces
Precoding
Optimization
Network systems
Machine learning
Estimation
Reflection
MIMO communication
Double intelligent surface
extreme learning machine
machine learning
multilayer perceptron
multi-user MIMO
passive beamforming

期刊

IEEE Access 封面图
IEEE Access
IF:
3.6
论文数:
9.8W
被引数:
29.4W

机构

N
north south university (nsu)
学者数:
1.5K
论文数: 929
被引数: 0
A
aristotle university of thessaloniki
学者数:
2.6W
论文数: 2.0W
被引数: 19
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