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Exploring Machine Learning for classification of QUIC flows over satellite

Conference Paper
Publication Date:
2022
abstract:
Automatic traffic classification is increasingly important in networking due to the current trend of encrypting transport information (e.g., behind HTTP encrypted tunnels) which prevent intermediate nodes to access end-to-end transport headers. This paper proposes an architecture for supporting Quality of Service (QoS) in hybrid terrestrial and SATCOM networks based on automated traffic classification. Traffic profiles are constructed by machine-learning (ML) algorithms using the series of packet sizes and arrival times of QUIC connections. Thus, the proposed QoS method does not require explicit setup of a path (i.e. it provides soft QoS), but employs agents within the network to verify that flows conform to a given traffic profile. Results over a range of ML models encourage integrating ML technology in SATCOM equipment. The availability of higher computation power at low-cost creates the fertile ground for implementation of these techniques.
Iris type:
04.01 Contributo in Atti di convegno
Keywords:
Measurement; Satellites; Quality of service; Machine learning; Computer architecture; Market research; Real-time systems
List of contributors:
Gotta, Alberto; Cassara', Pietro
Authors of the University:
CASSARA' PIETRO
GOTTA ALBERTO
Handle:
https://iris.cnr.it/handle/20.500.14243/417667
Full Text:
https://iris.cnr.it//retrieve/handle/20.500.14243/417667/100623/prod_471810-doc_191990.pdf
Book title:
ICC 2022 - IEEE International Conference on Communications
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URL

https://ieeexplore.ieee.org/document/9838463
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