LEO-based Positioning: Foundations, Signal Design, and Receiver Enhancements for 6G NTN

Fuente: arXiv
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Autores principales: Dureppagari, Harish K., Saha, Chiranjib, Krishnamurthy, Harikumar, Wang, Xiao Feng, Rico-Alvariño, Alberto, Buehrer, R. Michael, Dhillon, Harpreet S.
Formato: Preprint
Publicado: 2024
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author Dureppagari, Harish K.
Saha, Chiranjib
Krishnamurthy, Harikumar
Wang, Xiao Feng
Rico-Alvariño, Alberto
Buehrer, R. Michael
Dhillon, Harpreet S.
author_facet Dureppagari, Harish K.
Saha, Chiranjib
Krishnamurthy, Harikumar
Wang, Xiao Feng
Rico-Alvariño, Alberto
Buehrer, R. Michael
Dhillon, Harpreet S.
contents The integration of non-terrestrial networks (NTN) into 5G new radio (NR) has opened up the possibility of developing a new positioning infrastructure using NR signals from Low-Earth Orbit (LEO) satellites. Compared to existing Global Navigation Satellite Systems (GNSS), LEO-based cellular positioning offers several advantages, such as a superior link budget, higher operating bandwidth, and large forthcoming constellations. Due to these factors, LEO-based positioning, navigation, and timing (PNT) is a potential enhancement for NTN in 6G cellular networks. However, extending the existing terrestrial cellular positioning methods to LEO-based NTN positioning requires key fundamental enhancements. These include creating broad positioning beams orthogonal to conventional communication beams, time-domain processing at the user equipment (UE) to resolve large delay and Doppler uncertainties, and efficiently accommodating positioning reference signals (PRS) from multiple satellites within the communication resource grid. In this paper, we present the first set of design insights by incorporating these enhancements and thoroughly evaluating LEO-based positioning, considering the constraints and capabilities of the NR-NTN physical layer. To evaluate the performance of LEO-based NTN positioning, we develop a comprehensive NR-compliant simulation framework, including LEO orbit simulation, transmission (Tx) and receiver (Rx) architectures, and a positioning engine incorporating the necessary enhancements. Our findings suggest that LEO-based NTN positioning could serve as a complementary infrastructure to GNSS and, with appropriate enhancements, may also offer a viable alternative.
format Preprint
id arxiv_https___arxiv_org_abs_2410_18301
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle LEO-based Positioning: Foundations, Signal Design, and Receiver Enhancements for 6G NTN
Dureppagari, Harish K.
Saha, Chiranjib
Krishnamurthy, Harikumar
Wang, Xiao Feng
Rico-Alvariño, Alberto
Buehrer, R. Michael
Dhillon, Harpreet S.
Information Theory
Signal Processing
The integration of non-terrestrial networks (NTN) into 5G new radio (NR) has opened up the possibility of developing a new positioning infrastructure using NR signals from Low-Earth Orbit (LEO) satellites. Compared to existing Global Navigation Satellite Systems (GNSS), LEO-based cellular positioning offers several advantages, such as a superior link budget, higher operating bandwidth, and large forthcoming constellations. Due to these factors, LEO-based positioning, navigation, and timing (PNT) is a potential enhancement for NTN in 6G cellular networks. However, extending the existing terrestrial cellular positioning methods to LEO-based NTN positioning requires key fundamental enhancements. These include creating broad positioning beams orthogonal to conventional communication beams, time-domain processing at the user equipment (UE) to resolve large delay and Doppler uncertainties, and efficiently accommodating positioning reference signals (PRS) from multiple satellites within the communication resource grid. In this paper, we present the first set of design insights by incorporating these enhancements and thoroughly evaluating LEO-based positioning, considering the constraints and capabilities of the NR-NTN physical layer. To evaluate the performance of LEO-based NTN positioning, we develop a comprehensive NR-compliant simulation framework, including LEO orbit simulation, transmission (Tx) and receiver (Rx) architectures, and a positioning engine incorporating the necessary enhancements. Our findings suggest that LEO-based NTN positioning could serve as a complementary infrastructure to GNSS and, with appropriate enhancements, may also offer a viable alternative.
title LEO-based Positioning: Foundations, Signal Design, and Receiver Enhancements for 6G NTN
topic Information Theory
Signal Processing
url https://arxiv.org/abs/2410.18301