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Kalman Filters in Geotechnical Monitoring of Ground Subsidence Using Data from MEMS Sensors

机译:使用MEMS传感器的数据进行地面沉降岩土工程监测中的卡尔曼滤波器

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摘要

The fast development of wireless sensor networks and MEMS make it possible to set up today real-time wireless geotechnical monitoring. To handle interferences and noises from the output data, Kalman filter can be selected as a method to achieve a more realistic estimate of the observations. In this paper, a one-day wireless measurement using accelerometers and inclinometers was deployed on top of a tunnel section under construction in order to monitor ground subsidence. The normal vectors of the sensors were firstly obtained with the help of rotation matrices, and then be projected to the plane of longitudinal section, by which the dip angles over time would be obtained via a trigonometric function. Finally, a centralized Kalman filter was applied to estimate the tilt angles of the sensor nodes based on the data from the embedded accelerometer and the inclinometer. Comparing the results from two sensor nodes deployed away and on the track respectively, the passing of the tunnel boring machine can be identified from unusual performances. Using this method, the ground settlement due to excavation can be measured and a real-time monitoring of ground subsidence can be realized.
机译:无线传感器网络和MEMS的快速发展使当今的实时无线岩土监测成为可能。为了处理来自输出数据的干扰和噪声,可以选择卡尔曼滤波器作为一种方法,以实现对观测值的更真实的估计。在本文中,使用加速度计和倾角计进行了为期一天的无线测量,以便在施工中的隧道部分顶部进行监测,以监测地面沉降。首先借助旋转矩阵获得传感器的法向矢量,然后将其投影到纵向截面的平面上,通过该函数可以通过三角函数获得随时间的倾角。最后,基于来自嵌入式加速度计和倾角仪的数据,使用集中式卡尔曼滤波器来估计传感器节点的倾斜角度。比较两个分别部署在轨道上和在轨道上的传感器节点的结果,可以从异常的性能中识别隧道掘进机的通过。使用这种方法,可以测量由于开挖引起的地面沉降,并且可以实现对地面沉降的实时监控。

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