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Machine learning-based models for optical fiber channels

Wang, Yulin; Leeson, Mark; Liu, Zheng; Wahls, Sander ORCID iD icon 1; Xu, Tongyang; Popov, Sergei; Zheng, Gan; Xu, Tianhua
1 Institut für Industrielle Informationstechnik (IIIT), Karlsruher Institut für Technologie (KIT)

Abstract:

This paper presents a comprehensive review of machine learning (ML) in optical fiber communications, particularly in channel modeling. It discusses the evolution from conventional methods to ML-based approaches that aim to enhance predictive and computational efficiency. Specifically, the discussions categorize ML methodologies into data-driven and principle-driven approaches. The former treats channel modeling as a “black box” providing rapid modeling capabilities at the expense of transparency and substantial data requirements. In contrast, the latter integrate physical principles into the ML-based system, enhancing model interpretability and reducing data dependency. In addition, the emergence of hybrid models that combine the strengths of both approaches is explored. This classification provides a structured overview of how ML is reshaping channel modeling in optical fiber communications, underscoring its potential to improve system design and exploring advanced nonlinear dynamics in optical fiber communication systems.


Verlagsausgabe §
DOI: 10.5445/IR/1000184222
Veröffentlicht am 27.08.2025
Originalveröffentlichung
DOI: 10.1016/j.optcom.2025.132099
Scopus
Zitationen: 1
Web of Science
Zitationen: 1
Dimensions
Zitationen: 1
Cover der Publikation
Zugehörige Institution(en) am KIT Institut für Industrielle Informationstechnik (IIIT)
Publikationstyp Zeitschriftenaufsatz
Publikationsmonat/-jahr 10.2025
Sprache Englisch
Identifikator ISSN: 0030-4018, 1873-0310
KITopen-ID: 1000184222
Erschienen in Optics Communications
Verlag Elsevier
Band 591
Seiten 132099
Nachgewiesen in Web of Science
OpenAlex
Dimensions
Scopus
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