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DroidChain: A novel malware detection method for Android based on behavior chain

机译:Droidchain:基于行为链的Android新颖的恶意软件检测方法

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Android malware threats have recently become a real concern. The growing amount and diversity of these applications render conventional defenses largely ineffective. To fight against malware variants and zero-day malware, this paper proposes DroidChain, a malware detection method based on behavior chain model, which is composed of typical behavior processes of Android apps. Using the method, we summarize four kinds of malware models, including privacy leakage, SMS financial charge, malware installation and privilege escalation. The detection of 1260 Android applications shows that the accuracy of this method reaches 81.8%.
机译:Android恶意软件威胁最近成为真正关注的问题。这些应用的越来越多的数量和多样性使常规防御性很大程度上无效。为了打击恶意软件变体和零日恶意软件,提出了一种基于行为链模型的恶意区检测方法,由Android应用程序的典型行为过程组成。使用该方法,我们总结了四种恶意软件模型,包括隐私泄漏,短信财务费用,恶意软件安装和特权升级。检测1260 Android应用表明,该方法的准确性达到81.8%。

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