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Spatial distribution modeling of subsurface bedrock using a developed automated intelligence deep learning procedure:A case study in Sweden

机译:采用发达的自动智能深层学习程序的地产基岩的空间分布模型 - 以瑞典为例

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摘要

Due to associated uncertainties,modelling the spatial distribution of depth to bedrock(DTB) is an important and challenging concern in many geo-engineering applications.The association between DTB,the safety and economy of design structures implies that generating more precise predictive models can be of vital interest.In the present study,the challenge of applying an optimally predictive threedimensional(3D) spatial DTB model for an area in Stockholm,Sweden was addressed using an automated intelligent computing design procedure.The process was developed and programmed in both C++and Python to track their performance in specified tasks and also to cover a wide variety of diffe rent internal characteristics and libraries.In comparison to the ordinary Kriging(OK) geostatistical tool,the superiority of the developed automated intelligence system was demonstrated through the analysis of confusion matrices and the ranked accuracies of different statistical errors.The re sults showed that in the absence of measured data,the intelligence models as a flexible and efficient alternative approach can account for associated uncertainties,thus creating more accurate spatial 3D models and providing an appropriate prediction at any point in the subsurface of the study area.

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  • 来源
    《岩石力学与岩土工程学报(英文版)》 |2021年第6期|1300-1310|共11页
  • 作者单位

    Division of Rock Engineering Tyréns AB Stockholm Sweden;

    Johan Lundberg AB Uppsala Sweden;

    Division of Rock Engineering Tyréns AB Stockholm Sweden;

    Division of Soil and Rock Mechanics KTH Royal Institute of Technology Stockholm Sweden;

    Division of Rock Engineering Tyréns AB Stockholm Sweden;

    Division of Soil and Rock Mechanics KTH Royal Institute of Technology Stockholm Sweden;

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  • 正文语种 eng
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  • 入库时间 2022-08-19 05:02:04
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