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Intelligent vehicle knowledge representation and anomaly detection using neural knowledge DNA

机译:使用神经知识DNA的智能车辆知识表示和异常检测

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摘要

The knowledge expression and anomaly detection of the intelligent vehicle are studied. Firstly, an Intelligent Vehicle Knowledge Management Framework (IVKMF) is proposed to describe the whole knowledge of Intelligent vehicle in a unified structure. Then, the detection rules are divided into simple rules based on features or statistical characteristics and complex sequence rules based on neural networks. The former can effectively detect the specific CAN command and flooding, replay attacks, the latter uses neural networks to learn the characteristics of CAN commands, which can effectively detect the complex attacks. The simple detection rules are standardized by SOEKS knowledge expression and the complex detection rules storage in Neural Knowledge DNA framework. With this unified knowledge expression, the detection rules can be shared and inherited easily. A secure gateway for intelligent vehicle is also designed. The gateway is placed between the external network and the vehicle bus network and it prevent all suspicious external data. The simulations of real car data prove the feasibility of the methods. (C) 2020 Elsevier Ltd. All rights reserved.
机译:研究了智能车辆的知识表达和异常检测。首先,建议智能车辆知识管理框架(IVKMF)来描述统一结构中智能车辆的整体知识。然后,将检测规则划分为基于基于神经网络的特征或统计特征和复杂序列规则的简单规则。前者可以有效地检测特定的CAN命令和洪水,重播攻击,后者使用神经网络来学习CAN命令的特征,可以有效地检测复杂的攻击。简单的检测规则是通过SOEK知识表达和神经知识DNA框架中的复杂检测规则存储标准化。通过该统一的知识表达式,可以轻松地共享和继承检测规则。还设计了一种智能车辆的安全网关。网关位于外部网络和车辆总线网络之间,并防止所有可疑的外部数据。真实汽车数据的模拟证明了方法的可行性。 (c)2020 elestvier有限公司保留所有权利。

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