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Real-time Traffic Classification for 5G NSA Encrypted Data Flows with Physical Channel Records

  • Shanghai Jiao Tong University

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Résumé

The classification of fifth-generation New-Radio (5G-NR) mobile network traffic is an emerging topic in the field of telecommunications. It can be utilized for quality of service (QoS) management and dynamic resource allocation. However, traditional approaches such as Deep Packet Inspection (DPI) can not be directly applied to encrypted data flows. Therefore, new real-time encrypted traffic classification algorithms need to be investigated to handle dynamic transmission. In this study, we examine the real-time encrypted 5G Non-Standalone (NSA) application-level traffic classification using physical channel records. We generate a noise-limited 5G NSA trace dataset with traffic from multiple applications. We develop a new pipeline to convert sequences of physical channel records into numerical vectors. We propose our solution based on Light Gradient Boosting Machine (LGBM) due to its advantages in fast parallel training and low computational burden in practical scenarios. Our experiments demonstrate that our algorithm can achieve 95% accuracy on the classification task with a state-of-the-art response time as quick as 10ms.

langue originaleAnglais
titre2023 IEEE 98th Vehicular Technology Conference, VTC 2023-Fall - Proceedings
EditeurInstitute of Electrical and Electronics Engineers Inc.
ISBN (Electronique)9798350329285
Les DOIs
étatPublié - 1 janv. 2023
Evénement98th IEEE Vehicular Technology Conference, VTC 2023-Fall - Hong Kong, Chine
Durée: 10 oct. 202313 oct. 2023

Série de publications

NomIEEE Vehicular Technology Conference
ISSN (imprimé)1550-2252

Une conférence

Une conférence98th IEEE Vehicular Technology Conference, VTC 2023-Fall
Pays/TerritoireChine
La villeHong Kong
période10/10/2313/10/23

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