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A Tutorial on Terahertz-Band Localization for 6G Communication Systems | IEEE Journals & Magazine | IEEE Xplore

A Tutorial on Terahertz-Band Localization for 6G Communication Systems


Abstract:

Terahertz (THz) communications are celebrated as key enablers for converged localization and sensing in future sixth-generation (6G) wireless communication systems and be...Show More

Abstract:

Terahertz (THz) communications are celebrated as key enablers for converged localization and sensing in future sixth-generation (6G) wireless communication systems and beyond. Instead of being a byproduct of the communication system, localization in 6G is indispensable for location-aware communications. Towards this end, we aim to identify the prospects, challenges, and requirements of THz localization techniques. We first review the history and trends of localization methods and discuss their objectives, constraints, and applications in contemporary communication systems. We then detail the latest advances in THz communications and introduce THz-specific channel and system models. Afterward, we formulate THz-band localization as a 3D position/orientation estimation problem, detailing geometry-based localization techniques and describing potential THz localization and sensing extensions. We further formulate the offline design and online optimization of THz localization systems, provide numerical simulation results, and conclude by providing lessons learned and future research directions. Preliminary results illustrate that under the same transmission power and array footprint, THz-based localization outperforms millimeter wave-based localization. In other words, the same level of localization performance can be achieved at THz-band with less transmission power or a smaller footprint.
Published in: IEEE Communications Surveys & Tutorials ( Volume: 24, Issue: 3, thirdquarter 2022)
Page(s): 1780 - 1815
Date of Publication: 26 May 2022

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I. Introduction

Localization is the process of estimating the position and orientation of a target, which is vital for a variety of applications, including location-aware communications [1], autonomous driving [2], industrial Internet of Things (IoT) [3], and tactile Internet [4]. Over the years, a plethora of localization techniques has been proposed. These techniques utilize different signal or measurement types that include ultrasound, visible light, radio frequency (RF), inertial measurements, and hybrid signals [5]. Among these modalities, RF signals are widely used because of their ubiquity in current wireless communication systems, where abundant cellular and wireless local area network (WLAN) infrastructures provide added value to user-oriented services and network management [6].

Select All
1.
R. Di Taranto, S. Muppirisetty, R. Raulefs, D. Slock, T. Svensson and H. Wymeersch, "Location-aware communications for 5G networks: How location information can improve scalability latency and robustness of 5G", IEEE Signal Process. Mag., vol. 31, no. 6, pp. 102-112, Nov. 2014.
2.
G. Bresson, Z. Alsayed, L. Yu and S. Glaser, "Simultaneous localization and mapping: A survey of current trends in autonomous driving", IEEE Trans. Intell. Veh., vol. 2, no. 3, pp. 194-220, Sep. 2017.
3.
E. S. Lohan et al., "Benefits of positioning-aided communication technology in high-frequency Industrial IoT", IEEE Commun. Mag., vol. 56, no. 12, pp. 142-148, Dec. 2018.
4.
K. Antonakoglou, X. Xu, E. Steinbach, T. Mahmoodi and M. Dohler, "Toward haptic communications over the 5G tactile Internet", IEEE Commun. Surveys Tuts., vol. 20, no. 4, pp. 3034-3059, 4th Quart. 2018.
5.
C. Laoudias, A. Moreira, S. Kim, S. Lee, L. Wirola and C. Fischione, "A survey of enabling technologies for network localization tracking and navigation", IEEE Commun. Surveys Tuts., vol. 20, no. 4, pp. 3607-3644, 4th Quart. 2018.
6.
J. A. del Peral-Rosado, R. Raulefs, J. A. López-Salcedo and G. Seco-Granados, "Survey of cellular mobile radio localization methods: From 1G to 5G", IEEE Commun. Surveys Tuts., vol. 20, no. 2, pp. 1124-1148, 2nd Quart. 2017.
7.
A. Alarifi et al., "Ultra wideband indoor positioning technologies: Analysis and recent advances", Sensors, vol. 16, no. 5, pp. 707, May 2016.
8.
Z. Xiao and Y. Zeng, "An overview on integrated localization and communication towards 6G", Sci. China Inf. Sci., vol. 65, no. 3, pp. 1-46, Mar. 2022.
9.
M. F. Keskin, A. D. Sezer and S. Gezici, "Localization via visible light systems", Proc. IEEE, vol. 106, no. 6, pp. 1063-1088, Jun. 2018.
10.
Y. Zhuang et al., "A survey of positioning systems using visible LED lights", IEEE Commun. Surveys Tuts., vol. 20, no. 3, pp. 1963-1988, 3rd Quart. 2018.
11.
H. Elayan, O. Amin, B. Shihada, R. M. Shubair and M.-S. Alouini, "Terahertz band: The last piece of RF spectrum puzzle for communication systems", IEEE Open J. Commun. Soc., vol. 1, pp. 1-32, 2019.
12.
H. Sarieddeen, N. Saeed, T. Y. Al-Naffouri and M.-S. Alouini, "Next generation terahertz communications: A rendezvous of sensing imaging and localization", IEEE Commun. Mag., vol. 58, no. 5, pp. 69-75, May 2020.
13.
I. F. Akyildiz, J. M. Jornet and C. Han, "Terahertz band: Next frontier for wireless communications", Phys. Commun., vol. 12, pp. 16-32, Sep. 2014.
14.
V. Petrov, T. Kurner and I. Hosako, "IEEE 802.15.3d: First Standardization efforts for sub-terahertz band communications toward 6G", IEEE Commun. Mag., vol. 58, no. 11, pp. 28-33, Nov. 2020.
15.
I. F. Akyildiz, C. Han and S. Nie, "Combating the distance problem in the millimeter wave and terahertz frequency bands", IEEE Commun. Mag., vol. 56, no. 6, pp. 102-108, Jun. 2018.
16.
C. Lin and G. Y. L. Li, "Terahertz communications: An array-of-subarrays solution", IEEE Commun. Mag., vol. 54, no. 12, pp. 124-131, Dec. 2016.
17.
Q. Wu, S. Zhang, B. Zheng, C. You and R. Zhang, "Intelligent reflecting surface aided wireless communications: A tutorial", IEEE Trans. Commun., vol. 69, no. 5, pp. 3313-3351, May 2021.
18.
E. Basar, M. Di Renzo, J. De Rosny, M. Debbah, M.-S. Alouini and R. Zhang, "Wireless communications through reconfigurable intelligent surfaces", IEEE Access, vol. 7, pp. 116753-116773, 2019.
19.
Z. Zhang et al., "Active RIS vs. passive RIS: Which will prevail in 6G?" in arXiv:2103.15154, 2021.
20.
R. Schroeder, J. He and M. Juntti, "Passive RIS vs. hybrid RIS: A comparative study on channel estimation", Proc. IEEE Veh. Technol. Conf. (VTC), pp. 1-7, Apr. 2021.
21.
Q. Wu and R. Zhang, "Intelligent reflecting surface enhanced wireless network: Joint active and passive beamforming design", Proc. IEEE Global Commun. Conf. (GLOBECOM), pp. 1-6, Dec. 2018.
22.
H. Kim, S. H. Lee and S. Kim, "Cooperative localization with constraint satisfaction problem in 5G vehicular networks", IEEE Trans. Intell. Transp. Syst., vol. 23, no. 4, pp. 3180-3189, Apr. 2022.
23.
H. Wymeersch, J. Lien and M. Z. Win, "Cooperative localization in wireless networks", Proc. IEEE, vol. 97, no. 2, pp. 427-450, Feb. 2009.
24.
Z. Khan, J. J. Lehtomäki, V. Selis, H. Ahmadi and A. Marshall, "Intelligent autonomous user discovery and link maintenance for mmWave and TeraHertz devices with directional antennas", IEEE Trans. Cogn. Commun. Netw., vol. 7, no. 4, pp. 1200-1215, Dec. 2021.
25.
Z. Chen et al., "A survey on terahertz communications", China Commun., vol. 16, no. 2, pp. 1-35, Feb. 2019.
26.
S. Ghafoor, N. Boujnah, M. H. Rehmani and A. Davy, "MAC protocols for terahertz communication: A comprehensive survey", IEEE Commun. Surveys Tuts., vol. 22, no. 4, pp. 2236-2282, 4th Quart. 2020.
27.
H. Sarieddeen, M.-S. Alouini and T. Y. Al-Naffouri, "An overview of signal processing techniques for Terahertz communications", Proc. IEEE, vol. 109, no. 10, pp. 1628-1665, Oct. 2021.
28.
C. Han et al., "Terahertz wireless channels: A holistic survey on measurement modeling and analysis" in arXiv:2111.04522, 2021.
29.
F. Lemic et al., "Survey on terahertz nanocommunication and networking: A top-down perspective", IEEE J. Sel. Areas Commun., vol. 39, no. 6, pp. 1506-1543, Jun. 2021.
30.
C.-X. Wang, J. Wang, S. Hu, Z.-H. Jiang, J. Tao and F. Yan, "Key technologies in 6G terahertz wireless communication systems: A survey", IEEE Veh. Technol. Mag., vol. 16, no. 4, pp. 27-37, Dec. 2021.

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