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An ensemble-based change-point detection method for identifying unexpected behaviour of railway tunnel infrastructures

机译:基于集成的变化点检测方法用于铁路隧道基础设施异常行为识别

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摘要

A large amount of data is generated by Structural Health Monitoring (SHM) systems and, as a consequence, processing and interpreting this data can be difficult and time consuming. Particularly, if work activities such as maintenance or modernization are carried out on a bridge or tunnel infrastructure, a robust data analysis is needed, in order to accurately and quickly process the data and provide reliable information to decision makers. In this way the service disruption can be minimized and the safety of the asset and the workforce guaranteed.
机译:结构健康监测(SHM)系统会生成大量数据,因此,处理和解释该数据可能既困难又耗时。尤其是,如果在桥梁或隧道基础设施上进行诸如维护或现代化之类的工作活动,则需要进行可靠的数据分析,以便准确,快速地处理数据并将可靠的信息提供给决策者。这样,可以最大程度地减少服务中断,并确保资产和员工的安全。

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