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Fine-grained traffic classification based on functional separation

Authors
Park, ByungchulWon, YoungjoonChung, JaeYoonKim, Myung-supHong, James Won-Ki
Issue Date
Sep-2013
Publisher
WILEY
Citation
INTERNATIONAL JOURNAL OF NETWORK MANAGEMENT, v.23, no.5, pp.350 - 381
Indexed
SCIE
SCOPUS
Journal Title
INTERNATIONAL JOURNAL OF NETWORK MANAGEMENT
Volume
23
Number
5
Start Page
350
End Page
381
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/162022
DOI
10.1002/nem.1837
ISSN
1055-7148
Abstract
SUMMARY Current efforts to classify Internet traffic highlight accuracy. Previous studies have focused on the detection of major applications such as P2P and streaming applications. However, these applications can generate various types of traffic which are often considered as minor and ignorant traffic portions. As network applications become more complex, the price paid for not concentrating on minor traffic classes is in reduction of accuracy and completeness. In this context, we propose a fine-grained traffic classification scheme and its detailed method, called functional separation. Our proposal can detect, according to functionalities, different types of traffic generated by a single application and should increase completeness by reducing the amount of undetected traffic. We verify our method with real-world traffic. Our performance comparison against existing DPI-based classification frameworks shows that the fine-grained classification scheme achieves consistently higher accuracyand completeness.
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