When Future Communications Shift Toward Narrow Beams: A Forward Looking Survey on Pointing Errors and Alignment Limits

Fuente: arXiv
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Main Authors: Ghanbari, Meysam, Dabiri, Mohammad Taghi, Badarneh, Osamah S., Hasna, Mazen, Al-Badarneh, Yazan H., Alshawaqfeh, Mustafa K., Qaraqe, Khalid
Format: Preprint
Published: 2025
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author Ghanbari, Meysam
Dabiri, Mohammad Taghi
Badarneh, Osamah S.
Hasna, Mazen
Al-Badarneh, Yazan H.
Alshawaqfeh, Mustafa K.
Qaraqe, Khalid
author_facet Ghanbari, Meysam
Dabiri, Mohammad Taghi
Badarneh, Osamah S.
Hasna, Mazen
Al-Badarneh, Yazan H.
Alshawaqfeh, Mustafa K.
Qaraqe, Khalid
contents Directional links in free-space optical (FSO), millimeter-wave (mmWave), and terahertz (THz) systems are a cornerstone of emerging 6G networks, yet their reliability is fundamentally limited by pointing errors and misalignment. Existing studies address this impairment using technology-specific definitions, models, and mitigation approaches, which hinders cross-domain comparison and transferable design insight. This survey provides a unified treatment of pointing errors across optical and high frequency wireless communications. We establish consistent terminology and a cross-technology taxonomy of pointing errors, review angular misalignment and statistical distribution models, and analyze their impact on system performance. Mitigation techniques are systematically surveyed with emphasis on optical systems and their connection to underlying pointing error models. The survey further provides a detailed examination of pointing-error effects in orbital angular momentum (OAM) links and quantum optical communications, and surveys the corresponding mitigation approaches tailored to mode-dependent impairments and quantum measurement constraints. The survey also outlines open challenges and future research directions. By consolidating fragmented literature into a coherent framework, this work supports consistent analysis and robust design of next generation directional communication systems.
format Preprint
id arxiv_https___arxiv_org_abs_2512_20874
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle When Future Communications Shift Toward Narrow Beams: A Forward Looking Survey on Pointing Errors and Alignment Limits
Ghanbari, Meysam
Dabiri, Mohammad Taghi
Badarneh, Osamah S.
Hasna, Mazen
Al-Badarneh, Yazan H.
Alshawaqfeh, Mustafa K.
Qaraqe, Khalid
Signal Processing
Directional links in free-space optical (FSO), millimeter-wave (mmWave), and terahertz (THz) systems are a cornerstone of emerging 6G networks, yet their reliability is fundamentally limited by pointing errors and misalignment. Existing studies address this impairment using technology-specific definitions, models, and mitigation approaches, which hinders cross-domain comparison and transferable design insight. This survey provides a unified treatment of pointing errors across optical and high frequency wireless communications. We establish consistent terminology and a cross-technology taxonomy of pointing errors, review angular misalignment and statistical distribution models, and analyze their impact on system performance. Mitigation techniques are systematically surveyed with emphasis on optical systems and their connection to underlying pointing error models. The survey further provides a detailed examination of pointing-error effects in orbital angular momentum (OAM) links and quantum optical communications, and surveys the corresponding mitigation approaches tailored to mode-dependent impairments and quantum measurement constraints. The survey also outlines open challenges and future research directions. By consolidating fragmented literature into a coherent framework, this work supports consistent analysis and robust design of next generation directional communication systems.
title When Future Communications Shift Toward Narrow Beams: A Forward Looking Survey on Pointing Errors and Alignment Limits
topic Signal Processing
url https://arxiv.org/abs/2512.20874