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KCAD: Kinetic Cyber-attack detection method for Cyber-physical additive manufacturing systems

机译:KCAD:网络物理增材制造系统的动态网络攻击检测方法

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Additive Manufacturing (AM) uses Cyber-Physical Systems (CPS) (e.g., 3D Printers) that are vulnerable to kinetic cyber-attacks. Kinetic cyber-attacks cause physical damage to the system from the cyber domain. In AM, kinetic cyber-attacks are realized by introducing flaws in the design of the 3D objects. These flaws may eventually compromise the structural integrity of the printed objects. In CPS, researchers have designed various attack detection method to detect the attacks on the integrity of the system. However, in AM, attack detection method is in its infancy. Moreover, analog emissions (such as acoustics, electromagnetic emissions, etc.) from the side-channels of AM have not been fully considered as a parameter for attack detection. To aid the security research in AM, this paper presents a novel attack detection method that is able to detect zero-day kinetic cyber-attacks on AM by identifying anomalous analog emissions which arise as an outcome of the attack. This is achieved by statistically estimating functions that map the relation between the analog emissions and the corresponding cyber domain data (such as G-code) to model the behavior of the system. Our method has been tested to detect potential zero-day kinetic cyber-attacks in fused deposition modeling based AM. These attacks can physically manifest to change various parameters of the 3D object, such as speed, dimension, and movement axis. Accuracy, defined as the capability of our method to detect the range of variations introduced to these parameters as a result of kinetic cyber-attacks, is 77.45%.
机译:增材制造(AM)使用易受动态网络攻击的网络物理系统(CPS)(例如3D打印机)。动态网络攻击会从网络域对系统造成物理损坏。在AM中,通过在3D对象的设计中引入缺陷来实现动态网络攻击。这些缺陷最终可能会损害打印对象的结构完整性。在CPS中,研究人员设计了各种攻击检测方法来检测对系统完整性的攻击。但是,在AM中,攻击检测方法尚处于起步阶段。此外,来自AM旁道的模拟发射(例如声音,电磁发射等)还没有被完全视为攻击检测的参数。为了帮助进行AM的安全性研究,本文提出了一种新颖的攻击检测方法,该方法能够通过识别由攻击产生的异常模拟发射来检测AM上的零日动态网络攻击。这可以通过统计估计函数来实现,这些函数可以映射模拟发射与相应的网络域数据(例如G代码)之间的关系,从而对系统的行为进行建模。我们的方法已经过测试,可以在基于AM的熔融沉积建模中检测潜在的零日动力学网络攻击。这些攻击可以从物理上体现为改变3D对象的各种参数,例如速度,尺寸和运动轴。准确性(定义为我们的方法能够检测出由于动态网络攻击而引入这些参数的变化范围的能力)为77.45%。

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