Green Learning for STAR-RIS mmWave Systems with Implicit CSI

Fuente: arXiv
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Autores principales: Huang, Yu-Hsiang, Chou, Po-Heng, Huang, Wan-Jen, Saad, Walid, Kuo, C. -C. Jay
Formato: Preprint
Publicado: 2025
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author Huang, Yu-Hsiang
Chou, Po-Heng
Huang, Wan-Jen
Saad, Walid
Kuo, C. -C. Jay
author_facet Huang, Yu-Hsiang
Chou, Po-Heng
Huang, Wan-Jen
Saad, Walid
Kuo, C. -C. Jay
contents In this paper, a green learning (GL)-based precoding framework is proposed for simultaneously transmitting and reflecting reconfigurable intelligent surface (STAR-RIS)-aided millimeter-wave (mmWave) MIMO broadcasting systems. Motivated by the growing emphasis on environmental sustainability in future 6G networks, this work adopts a broadcasting transmission architecture for scenarios where multiple users share identical information, improving spectral efficiency and reducing redundant transmissions and power consumption. Different from conventional optimization methods, such as block coordinate descent (BCD) that require perfect channel state information (CSI) and iterative computation, the proposed GL framework operates directly on received uplink pilot signals without explicit CSI estimation. Unlike deep learning (DL) approaches that require CSI-based labels for training, the proposed GL approach also avoids deep neural networks and backpropagation, leading to a more lightweight design. Although the proposed GL framework is trained with supervision generated by BCD under full CSI, inference is performed in a fully CSI-free manner. The proposed GL integrates subspace approximation with adjusted bias (Saab), relevant feature test (RFT)-based supervised feature selection, and eXtreme gradient boosting (XGBoost)-based decision learning to jointly predict the STAR-RIS coefficients and transmit precoder. Simulation results show that the proposed GL approach achieves competitive spectral efficiency compared to BCD and DL-based models, while reducing floating-point operations (FLOPs) by over four orders of magnitude. These advantages make the proposed GL approach highly suitable for real-time deployment in energy- and hardware-constrained broadcasting scenarios.
format Preprint
id arxiv_https___arxiv_org_abs_2509_06820
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Green Learning for STAR-RIS mmWave Systems with Implicit CSI
Huang, Yu-Hsiang
Chou, Po-Heng
Huang, Wan-Jen
Saad, Walid
Kuo, C. -C. Jay
Signal Processing
Artificial Intelligence
Information Theory
Machine Learning
Networking and Internet Architecture
In this paper, a green learning (GL)-based precoding framework is proposed for simultaneously transmitting and reflecting reconfigurable intelligent surface (STAR-RIS)-aided millimeter-wave (mmWave) MIMO broadcasting systems. Motivated by the growing emphasis on environmental sustainability in future 6G networks, this work adopts a broadcasting transmission architecture for scenarios where multiple users share identical information, improving spectral efficiency and reducing redundant transmissions and power consumption. Different from conventional optimization methods, such as block coordinate descent (BCD) that require perfect channel state information (CSI) and iterative computation, the proposed GL framework operates directly on received uplink pilot signals without explicit CSI estimation. Unlike deep learning (DL) approaches that require CSI-based labels for training, the proposed GL approach also avoids deep neural networks and backpropagation, leading to a more lightweight design. Although the proposed GL framework is trained with supervision generated by BCD under full CSI, inference is performed in a fully CSI-free manner. The proposed GL integrates subspace approximation with adjusted bias (Saab), relevant feature test (RFT)-based supervised feature selection, and eXtreme gradient boosting (XGBoost)-based decision learning to jointly predict the STAR-RIS coefficients and transmit precoder. Simulation results show that the proposed GL approach achieves competitive spectral efficiency compared to BCD and DL-based models, while reducing floating-point operations (FLOPs) by over four orders of magnitude. These advantages make the proposed GL approach highly suitable for real-time deployment in energy- and hardware-constrained broadcasting scenarios.
title Green Learning for STAR-RIS mmWave Systems with Implicit CSI
topic Signal Processing
Artificial Intelligence
Information Theory
Machine Learning
Networking and Internet Architecture
url https://arxiv.org/abs/2509.06820