Performance Analysis of XL-MIMO with Rotary and Movable Antennas for High-speed Railway

Fuente: arXiv
Gespeichert in:
Bibliographische Detailangaben
Hauptverfasser: Yi, Wenhui, Zhang, Jiayi, Wang, Zhe, Xiao, Huahua, Ai, Bo
Format: Preprint
Veröffentlicht: 2024
Schlagworte:
Online-Zugang:
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
_version_ 1866929616817487872
author Yi, Wenhui
Zhang, Jiayi
Wang, Zhe
Xiao, Huahua
Ai, Bo
author_facet Yi, Wenhui
Zhang, Jiayi
Wang, Zhe
Xiao, Huahua
Ai, Bo
contents The rotary and movable antennas (ROMA) technology is efficient in enhancing wireless network capacity by adjusting both the antenna spacing and three-dimensional (3D) rotation of antenna surfaces, based on the spatial distribution of users and channel statistics. Applying ROMA to high-speed rail (HSR) wireless communications can significantly improve system performance in terms of array gain and spatial multiplexing. However, the rapidly changing channel conditions in HSR scenarios present challenges for ROMA configuration. In this correspondence, we propose a analytical framework for configuring ROMA-based extremely large-scale multiple-input-multiple-output (XL-MIMO) system in HSR scenarios based on spatial correlation. First, we develop a localization model based on a mobility-aware near-field beam training algorithm to determine the real-time position of the train relay antennas. Next, we derive the expression for channel orthogonality and antenna spacing based on the spatial correlation matrix, and obtain the optimal antenna spacing when the transceiver panels are aligned in parallel. Moreover, we propose an optimization algorithm for the rotation angle of the transceiver panels, leveraging the differential evolution method, to determine the optimal angle. Finally, numerical results are provided to validate the computational results and optimization algorithm.
format Preprint
id arxiv_https___arxiv_org_abs_2412_03940
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Performance Analysis of XL-MIMO with Rotary and Movable Antennas for High-speed Railway
Yi, Wenhui
Zhang, Jiayi
Wang, Zhe
Xiao, Huahua
Ai, Bo
Signal Processing
Information Theory
The rotary and movable antennas (ROMA) technology is efficient in enhancing wireless network capacity by adjusting both the antenna spacing and three-dimensional (3D) rotation of antenna surfaces, based on the spatial distribution of users and channel statistics. Applying ROMA to high-speed rail (HSR) wireless communications can significantly improve system performance in terms of array gain and spatial multiplexing. However, the rapidly changing channel conditions in HSR scenarios present challenges for ROMA configuration. In this correspondence, we propose a analytical framework for configuring ROMA-based extremely large-scale multiple-input-multiple-output (XL-MIMO) system in HSR scenarios based on spatial correlation. First, we develop a localization model based on a mobility-aware near-field beam training algorithm to determine the real-time position of the train relay antennas. Next, we derive the expression for channel orthogonality and antenna spacing based on the spatial correlation matrix, and obtain the optimal antenna spacing when the transceiver panels are aligned in parallel. Moreover, we propose an optimization algorithm for the rotation angle of the transceiver panels, leveraging the differential evolution method, to determine the optimal angle. Finally, numerical results are provided to validate the computational results and optimization algorithm.
title Performance Analysis of XL-MIMO with Rotary and Movable Antennas for High-speed Railway
topic Signal Processing
Information Theory
url https://arxiv.org/abs/2412.03940