Presentation + Paper
15 March 2023 Optical path management based on machine learning for optical networks
Author Affiliations +
Abstract
The popularity of high-capacity communication services such as video streaming and cloud computing has accelerated the growth in IP traffic. In order to effectively manage and maintain networking systems, various intelligent technologies based on software-defined networking (SDN) have been widely studied. An SDN system that offers flexible optical path management exploiting optical performance monitoring, digital signal processing, and resource allocation is expected to realize higher capacity networks by lowering margins needed to offset system uncertainty. In this paper, we provide a comprehensive survey of optical path management schemes based on machine learning.
Conference Presentation
© (2023) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
R. Shiraki, Y. Mori, and H. Hasegawa "Optical path management based on machine learning for optical networks", Proc. SPIE 12429, Next-Generation Optical Communication: Components, Sub-Systems, and Systems XII, 124290M (15 March 2023); https://doi.org/10.1117/12.2649581
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KEYWORDS
Digital signal processing

Optical networks

Optical amplifiers

Modulation

Optical transmission

Machine learning

Systems modeling

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