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首页> 外文期刊>Advances in civil engineering >Updating Soil Spatial Variability and Reducing Uncertainty in Soil Excavations by Kriging and Ensemble Kalman Filter
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Updating Soil Spatial Variability and Reducing Uncertainty in Soil Excavations by Kriging and Ensemble Kalman Filter

机译:克里格汀及集合卡尔曼滤波器更新土壤空间变异性,减少土壤挖掘中的不确定性

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摘要

Field measurements can be used to improve the estimation of the performance of geotechnical projects (e.g., embankment slopes and soil excavation pits). Previous research has utilised inverse analysis (e.g., the ensemble Kalman filter (EnKF)) to reduce the uncertainty of soil parameters, when measurements are related to performance, such as inflow, hydraulic head, and deformation. In addition, there are also direct measurements, such as CPT measurements, where parameters (i.e., tip resistance and sleeve friction) can be directly correlated with, e.g., soil deformation and/or strength parameters, where conditional simulation via constrained random fields can be used to improve the estimation of the spatial distribution of parameters. This paper combines these two (i.e., direct and indirect) methods together in a soil excavation analysis. The results demonstrate that the parameter uncertainty (and thereby the uncertainty in the response) can be significantly reduced when the two methods are combined.
机译:场测量可用于改善岩土工程性能的估计(例如,堤防斜坡和土壤挖掘坑)。以前的研究利用了逆分析(例如,集合卡尔曼滤波器(ENKF)),以减少土壤参数的不确定性,当测量与流入,液压头和变形等性能相关时。另外,还存在直接测量,例如CPT测量,其中参数(即,尖端电阻和套筒摩擦)可以与例如土壤变形和/或强度参数直接相关,其中通过约束随机场的条件仿真可以是用于改善参数空间分布的估计。本文将这两种(即直接和间接)方法结合在土壤开挖分析中。结果表明,当组合两种方法时,可以显着降低参数不确定性(以及响应中的不确定性)。

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  • 来源
    《Advances in civil engineering》 |2019年第13期|8518792.1-8518792.14|共14页
  • 作者

    Li Yajun; Liu Kang;

  • 作者单位

    China Univ Geosci Beijing Sch Engn & Technol Beijing Peoples R China;

    Hefei Univ Technol Sch Civil & Hydraul Engn Hefei Anhui Peoples R China;

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  • 正文语种 eng
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