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Obstacle Detection on Railway Tracks Using Vibration Sensors and Signal Filtering Using Bayesian Analysis

机译:使用振动传感器的铁路轨道障碍物检测和基于贝叶斯分析的信号过滤

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A railway track sensing technology was tested using accelerometers integrated along railway tracks at specific sites. Rock and timber of different weights were dropped on rail head, ballast, and sleeper at various distances and vibration generated in the railway track was measured using accelerometer. Rocks and timber drop on the rail head could be detected from a distance of 500 m. In the next phase, a locomotive was moved along the railway track and the signal generated by obstacle drop was filtered out from extremely high level of acoustic noise generated by locomotive motion using a novel Monte Carlo-based Bayesian analysis. The results indicate that the application of Bayesian analysis with the capability of filtering out signal from heavy acoustic noise in vibration sensing technologies can radically improve the reliability of sensor networks.
机译:使用在特定地点沿铁轨集成的加速度计测试了铁轨感应技术。将不同重量的岩石和木材以各种距离掉落在轨道头,压载物和轨枕上,并使用加速度计测量在铁路轨道中产生的振动。可以从500 m的距离检测到岩石和木材掉落在轨道头上。在下一阶段,机车沿着铁轨移动,并使用基于蒙特卡洛的新颖贝叶斯分析方法,从机车运动产生的极高声噪声中滤除了障碍物掉落所产生的信号。结果表明,将贝叶斯分析技术具有从重声噪声中滤除信号的能力,在振动传感技术中的应用可以从根本上提高传感器网络的可靠性。

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