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A Cross-Platform Study on Emerging Malicious Programs Targeting IoT Devices

机译:针对物联网设备的新兴恶意程序的跨平台研究

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Along with the proliferation of IoT (Internet of Things) devices, cyberattacks towards them are on the rise. In this paper, aiming at efficient precaution and mitigation of emerging IoT cyberthreats, we present a multimodal study on applying machine learning methods to characterize malicious programs which target multiple IoT platforms. Experiments show that opcode sequences obtained from static analysis and API sequences obtained by dynamic analysis provide sufficient discriminant information such that IoT malware can be classified with near optimal accuracy. Automated and accelerated identification and mitigation of new IoT cyberthreats can be enabled based on the findings reported in this study.
机译:随着物联网(IoT)设备的激增,针对它们的网络攻击也在增加。在本文中,为了有效预防和缓解新兴的IoT网络威胁,我们提出了一种多模式研究,该研究应用机器学习方法来表征针对多个IoT平台的恶意程序。实验表明,从静态分析获得的操作码序列和通过动态分析获得的API序列可提供足够的判别信息,从而可以以接近最佳的准确性对IoT恶意软件进行分类。基于本研究报告的发现,可以实现自动和加速识别和缓解新的物联网网络威胁。

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