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Reconstructing the 3D digital core with a fully convolutional neural network

机译:用完全卷积神经网络重建3D数字核心

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摘要

In this paper, the complete process of constructing 3D digital core by fullconvolutional neural network is described carefully. A large number of sandstone computedtomography (CT) images are used as training input for a fully convolutional neural networkmodel. This model is used to reconstruct the three-dimensional (3D) digital core of Bereasandstone based on a small number of CT images. The Hamming distance together with theMinkowski functions for porosity, average volume specifi c surface area, average curvature,and connectivity of both the real core and the digital reconstruction are used to evaluate theaccuracy of the proposed method. The results show that the reconstruction achieved relativeerrors of 6.26%, 1.40%, 6.06%, and 4.91% for the four Minkowski functions and a Hammingdistance of 0.04479. This demonstrates that the proposed method can not only reconstructthe physical properties of real sandstone but can also restore the real characteristics of poredistribution in sandstone, is the ability to which is a new way to characterize the internalmicrostructure of rocks.

著录项

  • 来源
    《应用地球物理(英文版)》 |2020年第3期|401-410|共10页
  • 作者单位

    College of Geophysics Chengdu University of Technology Chengdu 610059 China;

    College of Geophysics Chengdu University of Technology Chengdu 610059 China;

    College of Information Science & Technology (College of Cybersecurity Oxford Brookes University) Chengdu University of Technology Chengdu 610059 China;

    China Mobile Communications Group Sichuan Co. Ltd. Chengdu Branch Chengdu 610041 China;

    College of Geophysics Chengdu University of Technology Chengdu 610059 China;

    College of Geophysics Chengdu University of Technology Chengdu 610059 China;

  • 收录信息 中国科学引文数据库(CSCD);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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