.. Support Vector
Machines (SVM)represent one of the most promising Machine Learning (ML) tools
that can be applied to the problem of traffic classification in IP networks. In
the case of SVMs, there are still open questions that need to be addressed
before they can be generally applied to traffic classifiers. Identifying and
categorizing network traffic by application type is challenging because of the
continued evolution of applications, especially of those with a desire to be
undetectable. The diminished effectiveness of port-based identification and the
overheads of deep packet inspection approaches motivate us to classify traffic
by exploit To tackle this critical problem, we propose a novel traffic
classification scheme which has the capability of identifying zero-day traffic
as well as accurately classifying the traffic generated bypre-defined
application classes. - See more at:
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