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GPS-structural health monitoring of a long span bridge using neural network adaptive filter

机译:基于神经网络自适应滤波器的大跨度桥梁GPS结构健康监测

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摘要

The movement of bridge deck bearings plays a significant role in the safety of bridges. Real time kinematic global positioning system (GPS) continuous health monitoring using relative deformations was carried out on a long span Zhujiang Huangpu Bridge. The neural network aided adaptive filter is used to predict and adjust the GPS monitoring data. The statistical moments in time and frequency domains were used to analyse the movement of the bridge deck. The results indicate that (1) the proposed neural network with the adaptive filter model can be used to de-noise the GPS health monitoring signals, (2) the GPS is highly sensitive for bridge deck movements, (3) the statistical moments can be used to detect the movements and errors of the GPS observations, and (4) the bridge is very safe under different loads.
机译:桥面轴承的运动在桥梁安全中起着重要作用。在大跨度的珠江黄埔大桥上进行了利用相对变形的实时运动学全球定位系统(GPS)连续健康监测。神经网络辅助自适应滤波器用于预测和调整GPS监测数据。使用时域和频域中的统计矩来分析桥面板的运动。结果表明:(1)所提出的带有自适应滤波器模型的神经网络可用于对GPS健康监测信号进行消噪;(2)GPS对桥面运动高度敏感;(3)统计矩可为用于检测GPS观测值的运动和误差,并且(4)桥梁在不同负载下非常安全。

著录项

  • 来源
    《Survey Review》 |2014年第334期|7-14|共8页
  • 作者

    M. R. Kaloop; D. Kim;

  • 作者单位

    Department of Public Works and Civil Engineering, Faculty of Engineering, Mansoura University, EL-Mansoura 35516, Egypt,Department of Civil Engineering, Kunsan National University, Kunsan 573-701, Korea;

    Department of Civil Engineering, Kunsan National University, Kunsan 573-701, Korea;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    RTK; GPS; Monitoring; Neural network; Adaptive filter;

    机译:RTK;全球定位系统;监控;神经网络;自适应滤波器;

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