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Towards Secure Mobile Learning. Visual Discovery of Malware Patterns in Android Apps

机译:迈向安全移动学习。在Android应用中可视化发现恶意软件模式

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Due to the diffusion of mobile devices, more and more people access e-learning platforms from mobile phones. Students learn from digital books and have access to information anytime and anywhere. However, with billions of mobile users worldwide, as well as billions of under-protected Internet of Things (IoT) devices, the risk of being the target of malware, cybercrime and sophisticated attacks is high. This paper proposes and discusses a set of visualization techniques applied to a dataset generated by DREBIN, a malware detection tool that performs a static analysis on apps installed to Android devices. On the base of dataset, we applied text, tree and graph visualization techniques to identify malware patterns. The visual findings can help the cybersecurity analyst in detecting malicious app behavior.
机译:由于移动设备的普及,越来越多的人通过手机访问电子学习平台。学生可以从数字书籍中学习,并且可以随时随地访问信息。但是,随着全球数十亿移动用户以及数十亿未得到充分保护的物联网(IoT)设备,成为恶意软件,网络犯罪和复杂攻击目标的风险很高。本文提出并讨论了一套应用于DREBIN生成的数据集的可视化技术,DREBIN是一种恶意软件检测工具,可对安装在Android设备上的应用执行静态分析。在数据集的基础上,我们应用了文本,树和图可视化技术来识别恶意软件模式。视觉结果可以帮助网络安全分析师检测恶意应用程序行为。

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