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Work-in-Progress: Road Context-Aware Intrusion Detection System for Autonomous Cars

机译:进行中:用于自动驾驶汽车的道路上下文感知入侵检测系统

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The necessity of intrusion detection system (IDS) is concrete for automobiles, and is particularly critical for unmanned, autonomous ones. However, limited work has been done to detect intrusions in an autonomous car while existing IDSs have limitations against strong adversaries. We hence consider the very nature of autonomous car and propose to utilize the road context to build a Road context-aware IDS (RAIDS). We hypothesize that given a computer-controlled car, the pattern and data of frames transmitted on the in-vehicle communication network should be relatively regular and obtainable when the car is cruising through continuous road contexts. Accordingly we design RAIDS and implement a preliminary prototype that discerns and identifies anomalous frames fabricated or suspended by adversaries. Evaluation results show that RAIDS effectively detects intrusions that are beyond the capabilities of state-of-the-art IDS.
机译:入侵检测系统(IDS)的必要性在汽车上是很具体的,对于无人驾驶的自动驾驶系统尤其重要。但是,在检测自动驾驶汽车中的入侵方面所做的工作有限,而现有的IDS在抵抗强大对手方面存在局限性。因此,我们考虑了自动驾驶汽车的本质,并建议利用道路环境来构建道路环境感知IDS(RAIDS)。我们假设给定一台计算机控制的汽车,当汽车在连续的道路环境中行驶时,在车载通信网络上传输的帧的模式和数据应该相对规则并可获得。因此,我们设计了RAIDS并实施了一个初步的原型,该原型可以识别并识别对手制造或悬挂的异常框架。评估结果表明,RAIDS有效地检测到了最新IDS所不能提供的入侵。

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