DocumentCode :
1725941
Title :
Two-Pronged Phish Snagging
Author :
Verma, Rakesh ; Shashidhar, Narasimha ; Hossain, Nabil
Author_Institution :
Dept. of Comput. Sci., Univ. of Houston, Houston, TX, USA
fYear :
2012
Firstpage :
174
Lastpage :
179
Abstract :
Phishing causes billions of dollars in damage every year and poses a serious threat to the Internet economy. Among the many possible communication channels, electronic mail still remains the most commonly used medium to launch phishing attacks. In this paper, we present a two dimensional approach to detecting phishing emails. We devise two independent, unsupervised classifiers, namely the link and header classifiers, and two combinations of these classifiers. We show that our schemes significantly outperform the previous unsupervised and supervised phishing detection schemes for emails in the literature. We also utilize contextual information, when available, to detect phishing. Finally, our protocol is designed to detect phishing at the email level rather than detecting fraudulent, masqueraded websites. Our implementation framework called PhishSnag, operates between a user´s mail transfer agent (MTA) and mail user agent (MUA) and processes each arriving email for phishing attacks even before reaching the inbox.
Keywords :
Internet; computer crime; pattern classification; protocols; telecommunication channels; unsolicited e-mail; unsupervised learning; Internet economy; MTA; MUA; PhishSnag framework; communication channels; contextual information; electronic mail; header classifier; link classifier; mail user agent; phishing attacks; phishing e-mail detection schemes; protocol design; two-dimensional approach; two-pronged phish snagging; unsupervised classifiers; user mail transfer agent; Availability; Security; Phishing; identity linking; identity theft; security; social engineering;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Availability, Reliability and Security (ARES), 2012 Seventh International Conference on
Conference_Location :
Prague
Print_ISBN :
978-1-4673-2244-7
Type :
conf
DOI :
10.1109/ARES.2012.51
Filename :
6329179
Link To Document :
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