2-D joint structural inversion of cross-hole electrical resistance and ground penetrating radar data

被引:28
|
作者
Bouchedda, Abderrezak [1 ]
Chouteau, Michel [1 ]
Binley, Andrew [2 ]
Giroux, Bernard [3 ]
机构
[1] Ecole Polytech, Dept CG&M, Montreal, PQ H3C 3A7, Canada
[2] Univ Lancaster, Lancaster Environm Ctr, Lancaster LA1 4YQ, England
[3] Inst Natl Rech Sci, Ctr Eau Terre Environm, Quebec City, PQ G1K 9A9, Canada
关键词
ERT; RTT; Joint structural inversion; Wavelet thresholding; GEOPHYSICAL-DATA; COOPERATIVE INVERSION; BOREHOLE RADAR; TRAVEL-TIME; RESISTIVITY; TOMOGRAPHY; SANDSTONE; ALGORITHM; MOISTURE; FLOW;
D O I
10.1016/j.jappgeo.2011.10.009
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
We present a joint structural inversion algorithm for cross-hole electrical resistance tomography (ERT) and cross-hole radar travel time tomography (RTT) that encourages coincident sharp changes on a smoothly varying background in the two models. The proposed approach is based on the combination of two iterative soft-thresholding inversion algorithms in parallel manner where the structural information is exchanged at each iteration. Iterative thresholding algorithm allows to obtain a sparse wavelet representation of the model (blocky model) by applying a thresholding operator to the wavelet coefficients of model obtained through a Gauss-Newton iteration. The structural information is introduced in the inversion system using the smoothness weighting matrices that control boundary cells and the thresholds that are estimated by maximizing a structural similarity criterion, which is a function of the two (ERT and RTT) models. A Canny edge detector is implemented to extract the structural information. The detected edges serve to build a weighting matrix that is used to alter the smoothness matrix constraint. To validate our methodology and its implementation, tests were performed on three synthetic models. The results show that the parameters estimated by our joint inversion approach are more consistent than those from individual inversions and another joint inversion algorithm. In addition, our approach appears to be robust in high noise level conditions. Finally, the proposed algorithm was applied for vadose zone characterisation in a sandstone aquifer. It achieves results that are consistent with hydrogeological information and geophysical logs available at the site. The results were also compared in terms of structural similarities to models obtained by a joint structural inversion algorithm with a cross-gradient constraint. Based on this comparison and hydrogeologic information, we conclude that the proposed algorithm allows to the RTT and ERT models to be dissimilar in the areas where the data are incompatible. (C) 2011 Elsevier B.V. All rights reserved.
引用
收藏
页码:52 / 67
页数:16
相关论文
共 50 条
  • [41] A 2D processing algorithm for detecting landmines using Ground Penetrating Radar data
    Sengodan, Anand
    Cockshott, W. Paul
    2012 13TH INTERNATIONAL RADAR SYMPOSIUM (IRS), 2012, : 459 - 464
  • [42] A 3-D imaging method using cross-traverse data for ground-penetrating radar
    Zhang, AX
    Jiang, YS
    Wang, WB
    2002 3RD INTERNATIONAL CONFERENCE ON MICROWAVE AND MILLIMETER WAVE TECHNOLOGY PROCEEDINGS, 2002, : 476 - 479
  • [43] 3DInvNet: A Deep Learning-Based 3D Ground-Penetrating Radar Data Inversion
    Dai, Qiqi
    Lee, Yee Hui
    Sun, Hai-Han
    Ow, Genevieve
    Yusof, Mohamed Lokman Mohd
    Yucel, Abdulkadir C.
    IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 2023, 61
  • [44] Correlation of ground penetrating radar and 2-D resistivity imaging methods towards shallow subsurface layer at coastal area
    Roslan, Iffah Zalikha
    Mohamad, Nur Zahidah
    Nasir, Nurul Khaliesah
    Yusof, Azim Hilmy Mohamad
    Ismail, Nur Azwin
    PHYSICS AND CHEMISTRY OF THE EARTH, 2022, 128
  • [45] Application of 2-D Resistivity Imaging and Ground Penetrating Radar (GPR) Methods in Detecting Cavities Regarding the Geohazard Assessment
    Saharudin, Muhamad Afiq
    Nordiana, M. M.
    Azwin, I. N.
    1ST INTERNATIONAL GEO-ELECTROMAGNETIC WORKSHOP (GEO-EM 2017), 2017, 1861
  • [46] Ground penetrating radar: 2-D and 3-D subsurface imaging of a coastal barrier spit, Long Beach, WA, USA
    Jol, HM
    Lawton, DC
    Smith, DG
    GEOMORPHOLOGY, 2003, 53 (1-2) : 165 - 181
  • [47] 2D Entropy and Short Time Fourier Transform for Ground Penetrating Radar Data Analysis
    Candra, Panglijen
    Xia, Tian
    Huston, Dryver
    Wang, Guoan
    NONDESTRUCTIVE CHARACTERIZATION FOR COMPOSITE MATERIALS, AEROSPACE ENGINEERING, CIVIL INFRASTRUCTURE, AND HOMELAND SECURITY 2013, 2013, 8694
  • [48] Multi-component 3-D imaging of ground penetrating radar data using matrix inversion in the spatial fourier domain
    van der Kruk, J
    Wapenaar, CPA
    Fokkema, JT
    GPR 2000: PROCEEDINGS OF THE EIGHTH INTERNATIONAL CONFERENCE ON GROUND PENETRATING RADAR, 2000, 4084 : 508 - 513
  • [49] A 2.5D cross-hole electromagnetic modelling and inversion method and its application to survey data from the Gudao oil field, east China
    Shen, Jin-Song
    Sun, Wen-bo
    Zhao, Wen-Jie
    Zeng, Wen-Chong
    JOURNAL OF GEOPHYSICS AND ENGINEERING, 2008, 5 (04) : 401 - 411
  • [50] Removing the ground penetrating radar direct wave via 2-D directional continue wavelet transform and the choice of mother wavelet
    Chen, Wen-Chao
    Wang, Wen-Bing
    Zhao, Rong-Chun
    Shi, Xian-Xin
    Meitiandizhi Yu Kantan/Coal Geology and Exploration, 2003, 31 (06):