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Functional Safety Hazards for Machine Learning Components in Autonomous Vehicles

机译:自动车辆机器学习部件的功能安全危害

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Analyzing functional safety for autonomous vehicles can be a challenging task. The task becomes more challenging as autonomous vehicles highly rely on machine learning components' which are complex to analyze for safety. Moreover, often machine learning engineers involved in the process of development do not have sufficient knowledge on functional safety, and thereby overlook important factors that can result in accidents. In this paper, we investigate and discuss important and necessary aspects of ML components in autonomous vehicles to ensure their functional safety and why we need to consider them. We also discuss the types of hazards we need to consider for each of those aspects. Further, we illustrate the hazard identification using the camera-based pedestrian detection system.
机译:分析自动车辆的功能安全可能是一个具有挑战性的任务。 这项任务变得更具挑战性,因为自动车辆高度依赖于机器学习组件的机器学习组件,这是为了安全分析的复杂。 此外,通常涉及开发过程的机器学习工程师没有足够的功能安全知识,从而忽略了可能导致事故的重要因素。 在本文中,我们调查并讨论自动车辆中ML组件的重要方面,以确保其功能安全以及为什么我们需要考虑它们。 我们还讨论了我们需要考虑每个方面所需的危险类型。 此外,我们使用基于相机的行人检测系统说明了危险识别。

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