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AI-based speed control models for the autonomous train: a literature review

机译:基于AI的自治列车的速度控制模型:文献综述

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The railway industry recently showed interest in the potential use of AI to render trains autonomous in order to reduce cost and improve security and performance. This paper focuses on the integration of AI into Automatic Train Operation (ATO) systems to control train speed. The objective of this paper is to present and analyze a review of the literature made in that context. The review is done according to a typology based on three axis: the inputs and objectives of the model, the AI method used by authors and last, the validation process. Our review shows that AI based approaches outperform classical approaches and that learning based methods are superior to rule-based systems. Meanwhile, the contributions present incomplete validation processes, difficulties to generalize the proposed AI method and last, a lack of use of perceptual data during decision making. This analysis enables us to draw some prospects relevant to the solving of the listed limitations.
机译:铁路行业最近对AI潜在使用的潜在使用兴趣,以降低成本,提高安全性和性能。 本文侧重于AI将AI集成到自动列车操作(ATO)系统中控制火车速度。 本文的目的是展示和分析在该背景下提出的文献的审查。 根据三个轴的类型化完成审查:模型的输入和目标,作者使用的AI方法,验证过程。 我们的审核表明,基于AI的方法优于经典的方法,并且基于学习的方法优于基于规则的系统。 同时,贡献出现了不完全的验证过程,概括提出的AI方法难以在决策过程中缺乏使用感知数据。 该分析使我们能够利用与解决上市限制的一些相关的前景。

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