学生研究摘要:基于Kullback-Leibler散度的android恶意软件检测

Vanessa N. Cooper
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引用次数: 2

摘要

最近的一项研究表明,超过50%的运行谷歌Android移动操作系统的移动设备存在未修补的漏洞,这使它们容易受到恶意应用程序和恶意软件的攻击。由于恶意软件而成为潜在受害者的起点是在事先不知道应用程序可以执行的操作的情况下允许安装应用程序。特别是,许多最近的报告表明,恶意软件应用程序通过在受害者不知情的情况下向付费号码发送SMS消息而造成不必要的计费[1,2]。鉴于此,需要在安装应用程序之前识别其恶意行为的技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Student research abstract: android malware detection based on Kullback-Leibler divergence
A recent study shows that more than 50% of mobile devices running Google's Android mobile operating system (OS) have unpatched vulnerabilities, opening them up to malicious applications and malware attacks. The starting point of becoming a potential victim due to malware is to allow the installation of applications without knowing in advance the operations that an application can perform. In particular, many recent reports suggest that malware applications caused unwanted billing by sending SMS messages to premium numbers without the knowledge of the victim [1, 2]. Given that, there is a need for techniques to identify malicious behaviors of applications before installing them.
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