Resiliency in Connected Vehicle Applications: Challenges and Approaches for Security Validation

Srivalli Boddupalli, Richard Owoputi, Chengwei Duan, T. Choudhury, Sandip Ray
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Abstract

With the proliferation of connectivity and smart computing in vehicles, a new attack surface has emerged that targets subversion of vehicular applications by compromising sensors and communication. A unique feature of these attacks is that they no longer require intrusion into the hardware and software components of the victim vehicle; rather, it is possible to subvert the application by providing wrong or misleading information. We consider the problem of making vehicular systems resilient against these threats. A promising approach is to adapt resiliency solutions based on anomaly detection through Machine Learning. We discuss challenges in making such an approach viable. In particular, we consider the problem of validating such resiliency architectures, the factors that make the problem challenging, and our approaches to address the challenges.
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互联汽车应用中的弹性:安全验证的挑战和方法
随着车辆连接和智能计算的普及,一个新的攻击面出现了,目标是通过破坏传感器和通信来颠覆车辆应用。这些攻击的一个独特之处在于,它们不再需要入侵受害者车辆的硬件和软件组件;相反,有可能通过提供错误或误导性信息来破坏应用程序。我们考虑的问题是使车辆系统能够抵御这些威胁。一种很有前途的方法是通过机器学习来适应基于异常检测的弹性解决方案。我们将讨论使这种方法可行所面临的挑战。特别地,我们考虑了验证这种弹性架构的问题,使问题具有挑战性的因素,以及我们处理这些挑战的方法。
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