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On the Analysis and Detection of Mobile Botnet Applications
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نویسنده
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Karim Ahmad ,Salleh Rosli ,Khan Muhammad Khurram ,Siddiqa Aisha ,Choo Kim-Kwang Raymond
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منبع
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journal of universal computer science - 2016 - دوره : 22 - شماره : 4 - صفحه:567 -588
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چکیده
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Mobile botnet phenomenon is gaining popularity among malware writers in order to exploit vulnerabilities in smartphones. in particular, mobile botnets enable illegal access to a victim’s smartphone, can compromise critical user data and launch a ddos attack through command and control (c&c). in this article, we propose a static analysis approach, dedroid, to investigate botnet-specific properties that can be used to detect mobile applications with botnet intensions. initially, we identify critical features by observing code behavior of the few known malware binaries having c&c features. then, we compare the identified features with the malicious and benign applications of drebin dataset. the results show against the comparative analysis that, drebin dataset has 35% malicious applications which qualify as botnets. upon closer examination, 90% of the potential botnets are confirmed as botnets. similarly, for comparative analysis against benign applications having c&c features, dedroid has achieved adequate detection accuracy. in addition, dedroid has achieved high accuracy with negligible false positive rate while making decision for state-of-the-art malicious applications.
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کلیدواژه
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Mobile Botnet ,Botnet Detection ,Malware ,Botware ,Mobile malware detection
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آدرس
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university of malaya, Malaysia. Bahauddin Zakariya University, Pakistan, university of malaya, Malaysia, King Saud University, Saudi Arabia, university of malaya, Malaysia, University of South Australia, Australia
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پست الکترونیکی
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raymond.choo@fulbrightmail.org
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Authors
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