VNAT (VPN/NONVPN NETWORK APPLICATION TRAFFIC DATASET)

Introduced by Jorgensen et al. in Extensible Machine Learning for Encrypted Network Traffic Application Labeling via Uncertainty Quantification

This dataset is a collection of labelled PCAP files, both encrypted and unencrypted, across 10 applications, as well as a pandas dataframe in HDF5 format containing detailed metadata summarizing the connections from those files. It was created to assist the development of machine learning tools that would allow operators to see the traffic categories of both encrypted and unencrypted traffic flows. In particular, features of the network packet traffic timing and size information (both inside of and outside of the VPN) can be leveraged to predict the application category that generated the traffic.

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