DocumentCode :
1767458
Title :
Skype traffic detection: A decision theory based tool
Author :
Di Mauro, Mario ; Longo, Maurizio
Author_Institution :
Univ. degli Studi di Salerno, Fisciano, Italy
fYear :
2014
fDate :
13-16 Oct. 2014
Firstpage :
1
Lastpage :
6
Abstract :
The classification of data sessions on the Internet is a crucial issue for Authorities involved in lawful interception. Some Internet Service Providers (ISP) can provide a panel of IP nodes that, tuned to detect specific data patterns, are able to send an alert when a data session in a targeted class is found. Unluckily, several applications generate a bulk of IP traffic not characterized by a recognizable sequence of information segments, except, may be, for some short phases such as setup and release. Whenever such phases are not intercepted, no specific pattern in the IP traffic can help toward semantic recognition and hence statistical pattern recognition is in force. This is actually the case of Skype, the popular application for VoIP communications. In this paper we propose and evaluate a decision theory based system allowing to recognize Skype traffic with the help of an open-source machine learning tool: Weka.
Keywords :
IP networks; Internet telephony; computer network security; decision theory; learning (artificial intelligence); public domain software; statistical analysis; telecommunication traffic; transport protocols; IP nodes; IP traffic pattern; ISP; Internet service providers; Skype traffic detection; Skype traffic recogniton; VoIP communications; Weka open-source machine learning tool; data pattern detection; data session classification; decision theory based tool; information segment sequence; lawful interception; release phase; semantic recognition; setup phase; statistical pattern recognition; Classification algorithms; Decision trees; IP networks; Internet; Peer-to-peer computing; Ports (Computers); Training; Decision trees; Intrusion Detection Systems; Pattern recognition; Skype; Weka;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Security Technology (ICCST), 2014 International Carnahan Conference on
Conference_Location :
Rome
Print_ISBN :
978-1-4799-3530-7
Type :
conf
DOI :
10.1109/CCST.2014.6986975
Filename :
6986975
Link To Document :
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