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Anomaly Detection System for Altered Signal Values within the Intra-Vehicle Network

机译:车辆内部网络内改变信号值的异常检测系统

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A modern vehicle is a complex system of sensors, actuators, and electronic control units (ECUs) connected through different automotive networks. In the past, vehicle networks used to be isolated from the outside world which made them immune to attacks. However, recent technologies have made vehicles vulnerable to cyberattacks. This paper proposes a supervised prediction model that allows the ECUs to detect anomalies in the content of the received messages. The implementation introduces a novel approach to rely on the signal value instead of the bitstream values for feature selection. The advantage of this approach will be highlighted. Additionally, a discussion of anomaly detection in the AUTOSAR standard is presented showing how the implemented model can be integrated into a network of ECUs running AUTOSAR communication stacks. A thorough evaluation of the proposed model is presented on a generated dataset where different types of data anomalies are added.
机译:现代化的车辆是通过不同汽车网络连接的传感器,执行器和电子控制单元(ECU)的复杂系统。在过去,车辆网络曾经与外部世界隔离,使它们免于攻击。然而,最近的技术使车辆容易受到网络攻击的影响。本文提出了一种监督预测模型,允许ECU检测所接收消息内容中的异常。该实现引入了依赖于信号值的新方法,而不是特征选择的比特流值。将突出这种方法的优势。此外,提出了对自动验证标准中的异常检测的讨论,示出了如何将实现的模型集成到运行AutoSAR通信堆栈的ECU网络中。对所提出的模型的全面评估呈现在生成的数据集上,其中添加了不同类型的数据异常。

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