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CATEGORIZING MOBILE DEVICE MALWARE BASED ON SYSTEM SIDE-EFFECTS

机译:根据系统副作用对移动设备恶意软件进行分类

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Malware targeting mobile devices is an ever increasing threat. The most insidious type of malware resides entirely in volatile memory and does not leave a trail of persistent artifacts. Such malware requires novel detection and capture methods in order to be reliably identified, analyzed and mitigated. This chapter proposes malware categorization and detection techniques based on measurable system side-effects observed in an exploited mobile device. Using the Stagefright family of exploits as a case study, common system side-effects produced as a result of attempted exploitation are identified. These system side-effects are leveraged to trigger volatile memory (i.e., RAM) collection by memory acquisition tools (e.g., LiME) to enable analysis of the malware.
机译:定位移动设备的恶意软件是越来越多的威胁。最贯透的恶意软件类型完全在不稳定的内存中,不会留下持久的伪影迹。这种恶意软件需要新颖的检测和捕获方法,以便可靠地识别,分析和减轻。本章提出了基于在利用移动设备中观察到的可测量系统副作用的恶意软件分类和检测技术。使用StageFright系列的利用作为案例研究,确定了由于尝试开发而产生的常见系统副作用。这些系统副作用被利用以通过存储器采集工具(例如,石灰)来触发挥发存储器(即,RAM)收集,以实现恶意软件的分析。

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