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Wireless Sensor Networks for Earthquake Early Warning Systems of Railway Lines

机译:铁路地震预警系统的无线传感器网络

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Earthquake early warning system (EEW) is of huge interest as the general public is less and less willing to accept that earthquake damage to lives and properties is a fate to bear. Carrying high social and commercial value, high speed railway lines stand at the weakness point for the public to endure such fate if earthquake happens. There are many earthquake early warning systems. The key of the EEW is an accurate and timely report of earthquake warning under such constraints as geographical and geological prediction limitation, communication constraints, fault tolerance; to name but a few. Wireless sensor network (WSN) is used in many domains due to its advantage in cost, simple maintenance, robustness, etc. There are calls to use WSN for EEW in recent years. In this paper, we first present a modular designed WSN framework for EEW. In this framework, we study two bottlenecks of applying WSN to EEW. First, we study the locations that the sensors should be placed (or the sensor density), so as to achieve a timely warning report and system efficiency. We observe that wireless communication is faster than the destructive S-wave of the earthquake. Therefore, a trade-off can be made so that the number of the sensors to be deployed or maintained can be significantly reduced. Intrinsically, the faster P-wave of the earthquake should first hit at least one sensor which can gather, compute and transmit this information to the damage prone point, before the S-wave arrives. Second, we study a deadline driven strategy for WSN to reduce false alarms. In this case, the WSN of EEW and the WSN of the railway line health monitoring system will work together. Since the sensors of the railway line health monitoring system of the railway lines are densely deployed, there will be a great number of reports generated. An early aggregation of the information is needed to localize and evaluate the earthquake range and impact. False alarms should be filtered out. These problems are intrinsic and cannot be improved by engineering advances. A joint foundational understanding of the communication limitation, complexity reduction of the computing systems, and earthquake knowledge is required. We believe that this work can serve as a first step before the development of a practical EEW system.
机译:地震预警系统(EEW)引起了人们极大的兴趣,因为公众越来越不愿意接受地震对生命和财产的损害是一种命运。高速铁路承载着很高的社会和商业价值,是地震发生时公众承受这种命运的弱点。地震预警系统很多。 EEW的关键是在诸如地理和地质预测限制,通信限制,容错性等限制条件下,准确,及时地报告地震预警。这仅仅是列举的一小部分。无线传感器网络(WSN)由于其在成本,简单的维护,鲁棒性等方面的优势而在许多领域中得到使用。近年来,人们呼吁将WSN用于EEW。在本文中,我们首先提出了一种针对EEW的模块化设计的WSN框架。在此框架中,我们研究了将WSN应用于EEW的两个瓶颈。首先,我们研究应放置传感器的位置(或传感器密度),以便及时获得警告报告和系统效率。我们观察到无线通信比地震的破坏性S波更快。因此,可以进行权衡,以便可以显着减少要部署或维护的传感器的数量。从本质上讲,地震的更快的P波应首先撞击至少一个传感器,该传感器可以在S波到达之前,将这些信息收集,计算并传输到易损点。其次,我们研究了WSN的限期驱动策略,以减少错误警报。在这种情况下,EEW的WSN和铁路运行状况监视系统的WSN将协同工作。由于铁路线健康监测系统的传感器密集部署,因此将产生大量报告。需要对信息进行早期汇总以定位和评估地震的范围和影响。错误的警报应该被过滤掉。这些问题是固有的,无法通过工程进步来解决。需要对通信限制,计算系统的复杂性降低和地震知识有共同的基础了解。我们认为,这项工作可以作为开发实际EEW系统之前的第一步。

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