Moving Target Defense Strategy Selection against Malware in Resource-Constrained Devices

Jan von der Assen, Alberto Huertas Celdrán, Nicolas Huber, Gérôme Bovet, G. Pérez, B. Stiller
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Abstract

Internet-of-Things (IoT) devices have become critical assets to be protected due to increased adoption for emerging use cases. As such, these devices are confronted with a myriad of malware-based threats. To combat malware in IoT, Moving Target Defense (MTD) is a viable defense layer, since MTD does not rely on a low breach probability - aiming to increase security in a dynamic way. Although evidence supports the usefulness of MTD for IoT, the current state of the art suffers from unrealistic deployments, including the problem of operating multiple MTD techniques. Especially, there is a commonly observed gap in determining and deploying one of a set of locally available MTD techniques. This paper addresses this gap by relying on a rule-based selection mechanism. For that, a risk-driven methodology to establish this selection agent with a well-defined architecture is followed. As an input, the device's behavior, as expressed through its resource consumption, serves as a selection criterion. This architecture was implemented for a Raspberry Pi and evaluated against seven malware, given four existing MTD techniques. The resulting prototype highlights that a rule-based system can efficiently mitigate the malware samples.
资源受限设备中恶意软件移动目标防御策略选择
由于新兴用例的采用越来越多,物联网(IoT)设备已成为需要保护的关键资产。因此,这些设备面临着无数基于恶意软件的威胁。为了对抗物联网中的恶意软件,移动目标防御(MTD)是一种可行的防御层,因为MTD不依赖于低破坏概率-旨在以动态方式增加安全性。尽管有证据支持MTD对物联网的有用性,但目前的技术状况受到不切实际的部署的影响,包括操作多种MTD技术的问题。特别是,在确定和部署一组本地可用的MTD技术时,存在一个普遍观察到的差距。本文通过基于规则的选择机制解决了这一差距。为此,遵循风险驱动的方法来建立具有良好定义的体系结构的选择代理。作为输入,设备的行为,通过其资源消耗来表达,作为选择标准。该架构是为Raspberry Pi实现的,并针对七种恶意软件进行了评估,给出了四种现有的MTD技术。结果表明,基于规则的系统可以有效地缓解恶意软件样本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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