Quasi-Synchronous Random Access for Massive MIMO-Based LEO Satellite Constellations

Fuente: arXiv
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Autores principales: Ying, Keke, Gao, Zhen, Chen, Sheng, Zhou, Mingyu, Zheng, Dezhi, Chatzinotas, Symeon, Ottersten, Björn, Poor, H. Vincent
Formato: Preprint
Publicado: 2023
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author Ying, Keke
Gao, Zhen
Chen, Sheng
Zhou, Mingyu
Zheng, Dezhi
Chatzinotas, Symeon
Ottersten, Björn
Poor, H. Vincent
author_facet Ying, Keke
Gao, Zhen
Chen, Sheng
Zhou, Mingyu
Zheng, Dezhi
Chatzinotas, Symeon
Ottersten, Björn
Poor, H. Vincent
contents Low earth orbit (LEO) satellite constellation-enabled communication networks are expected to be an important part of many Internet of Things (IoT) deployments due to their unique advantage of providing seamless global coverage. In this paper, we investigate the random access problem in massive multiple-input multiple-output-based LEO satellite systems, where the multi-satellite cooperative processing mechanism is considered. Specifically, at edge satellite nodes, we conceive a training sequence padded multi-carrier system to overcome the issue of imperfect synchronization, where the training sequence is utilized to detect the devices' activity and estimate their channels. Considering the inherent sparsity of terrestrial-satellite links and the sporadic traffic feature of IoT terminals, we utilize the orthogonal approximate message passing-multiple measurement vector algorithm to estimate the delay coefficients and user terminal activity. To further utilize the structure of the receive array, a two-dimensional estimation of signal parameters via rotational invariance technique is performed for enhancing channel estimation. Finally, at the central server node, we propose a majority voting scheme to enhance activity detection by aggregating backhaul information from multiple satellites. Moreover, multi-satellite cooperative linear data detection and multi-satellite cooperative Bayesian dequantization data detection are proposed to cope with perfect and quantized backhaul, respectively. Simulation results verify the effectiveness of our proposed schemes in terms of channel estimation, activity detection, and data detection for quasi-synchronous random access in satellite systems.
format Preprint
id arxiv_https___arxiv_org_abs_2304_04484
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Quasi-Synchronous Random Access for Massive MIMO-Based LEO Satellite Constellations
Ying, Keke
Gao, Zhen
Chen, Sheng
Zhou, Mingyu
Zheng, Dezhi
Chatzinotas, Symeon
Ottersten, Björn
Poor, H. Vincent
Information Theory
Signal Processing
Low earth orbit (LEO) satellite constellation-enabled communication networks are expected to be an important part of many Internet of Things (IoT) deployments due to their unique advantage of providing seamless global coverage. In this paper, we investigate the random access problem in massive multiple-input multiple-output-based LEO satellite systems, where the multi-satellite cooperative processing mechanism is considered. Specifically, at edge satellite nodes, we conceive a training sequence padded multi-carrier system to overcome the issue of imperfect synchronization, where the training sequence is utilized to detect the devices' activity and estimate their channels. Considering the inherent sparsity of terrestrial-satellite links and the sporadic traffic feature of IoT terminals, we utilize the orthogonal approximate message passing-multiple measurement vector algorithm to estimate the delay coefficients and user terminal activity. To further utilize the structure of the receive array, a two-dimensional estimation of signal parameters via rotational invariance technique is performed for enhancing channel estimation. Finally, at the central server node, we propose a majority voting scheme to enhance activity detection by aggregating backhaul information from multiple satellites. Moreover, multi-satellite cooperative linear data detection and multi-satellite cooperative Bayesian dequantization data detection are proposed to cope with perfect and quantized backhaul, respectively. Simulation results verify the effectiveness of our proposed schemes in terms of channel estimation, activity detection, and data detection for quasi-synchronous random access in satellite systems.
title Quasi-Synchronous Random Access for Massive MIMO-Based LEO Satellite Constellations
topic Information Theory
Signal Processing
url https://arxiv.org/abs/2304.04484