arXiv:2410.18510cs.AIeess.SP2024-10

评估高铁系统中GNSS定位性能,助力列车安全高效运行

A framework for GNSS-based solutions performance analysis in an ERTMS context

  • 构建面向ERTMS的GNSS性能分析框架,融合动态环境因素
  • 揭示隧道、城市区等场景下信号遮挡对定位精度的影响
  • 为列车自动化与虚拟编组提供可靠性评估依据

GNSS(全球导航卫星系统)正被欧洲铁路系统逐步引入,作为提升铁路吸引力、可靠性和效率的关键技术,以支持低碳运输目标。当前列车定位依赖里程计和轨旁应答器,但前者存在累积误差,后者需大量基础设施投入。未来将采用车载GNSS方案实现移动闭塞、虚拟连挂与自动化。然而,隧道、密集城区及植被覆盖区域常导致信号遮挡、多径效应与干扰,影响定位性能。尽管近年在抗干扰接收机、多传感器融合与数字地图等方面取得进展(如Shift2Rail项目X2Rail-5、CLUG),但如何在动态环境下全面评估性能仍存挑战:如何覆盖所有运行场景?故障(如定位偏差、漏检)对运营有何影响?本文针对此问题提出分析框架,旨在为R2DATO等欧盟资助项目提供系统性评估方法。

原文摘要 · Abstract (English)

Context Progresses in GNSS-based solution introduction in rail applications GNSS (Global Navigation Satellite System) is now used in most of our travels and each of our smartphone apps. Most of the usages are not safety-critical. But Europe identified GNSS for more applications and to be integrated in rail in general as part of the toolset to help railway to contribute to reduce transport carbon footprint. To increase the use of trains in European transports, railways must improve their attractiveness for passengers and freight, but also increase reliability, availability and efficiency by reducing capital expenditure and operational costs. GNSS is part of the global digitalization scheme of freight that aims to offer added value to the clients knowledge of accurate time of arrival, continuous monitoring of transport conditions (temperature, humidity...). But a major challenge will be to reach stringent applications and in particular, GNSS is today seen as a realistic and serious game changer for the future of the ERTMS (European Rail Traffic Management System). The localisation function is today performed with both odometry and balises. Odometer provides a continuous train position in time from a reference point. But as the distance delivered by the odometer shows a growing bias with distance, due to wear and wheel sliding, the use of on-track balises allows to reduce this error. Future systems will be based on on-board localisation solutions with GNSS receivers. It will allow the development of new concepts for moving blocks, virtual coupling and automation. Its use for train integrity is also investigated. But the environmental conditions of track and surroundings configuration, i.e, tunnels, dense urban areas or vegetation often degrade positioning performance and thus its efficiency and safety. Indeed, GNSS satellites are moving and their visibility (availability and relative position from the receiver) vary with time. Moreover, for optimal performance, the system requires open sky environments, which are the cases of most of the aeronautical uses but not of train uses. Trains often circulate in areas where signal reception can be disturbed (multipath, intentional or unintentional interferences) and thus, performances degraded. If many progresses have been made in the past years to develop more robust receivers [Puccitelli, 2022], multi-sensor solutions [CLUG website] or missing tools such as Digital Maps [Crespillo, 2023], in projects such as the Shift2Rail Project X2Rail-5 or CLUG, some questions remain and in particular related to performance evaluation. How can we evaluate performances in a dynamic environment (train, satellite, obstacles)? How can we be sure that every configuration has been tested? What is the impact of a failure (inaccuracy, missed detection) on operation? Some of these issues are addressed in the on-going R2DATO project funded by Europe's rail.

GNSS铁路安全性能评估ERTMS

Thank you to arXiv for use of its open access interoperability. PaperDance 不是 arXiv 官方产品;中文卡片由大模型生成,请以原文为准。