Hardware Design of Intrusion Detection System for Automotive CAN Bus Using Random Forest

Daegi Lee, C. Han, Seongsoo Lee
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Abstract

Controller area network (CAN) bus is a reliable protocol that connects electronic control units in a vehicle to send and receive control data for driving a vehicle. However, CAN-bus is quite weak against external attacks since it was not designed considering cybersecurity. In this paper, we propose an intrusion detection system (IDS). It monitors data frames on CAN bus, and detects spoofing attack using random forest, one of the machine learning techniques. When combined with node exclusion system (NES) in the previous works, IDS can effectively detect the hacked node and NES can exclude it from the CAN bus. The proposed IDS and NES have been designed and verified with Modelsim simulator.
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基于随机森林的汽车CAN总线入侵检测系统硬件设计
控制器局域网络(CAN)总线是一种可靠的协议,它连接车辆中的电子控制单元,以发送和接收车辆驾驶的控制数据。然而,can总线在设计时并没有考虑到网络安全,因此对外部攻击的防御能力很弱。本文提出了一种入侵检测系统(IDS)。它监控CAN总线上的数据帧,并使用机器学习技术之一的随机森林检测欺骗攻击。在前期工作中,IDS与节点排除系统(node exclusion system, NES)相结合,可以有效地检测出被入侵的节点,并将其排除在can总线之外。所提出的IDS和NES已在Modelsim模拟器上进行了设计和验证。
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