Isogeometric multi-resolution full waveform inversion based on the finite cell method

被引:0
|
作者
Buerchner, Tim [1 ]
Kopp, Philipp [1 ]
Kollmannsberger, Stefan [1 ]
Rank, Ernst [1 ,2 ]
机构
[1] Tech Univ Munich, Chair Computat Modeling & Simulat, Munich, Germany
[2] Tech Univ Munich, Inst Adv Study, Munich, Germany
关键词
Full waveform inversion; Isogeometric analysis; Finite cell method; Multi-resolution; Scalar wave equation; SPECTRAL ELEMENT METHOD; B-REP ANALYSIS; ADJOINT METHOD; NURBS; INTEGRATION; TOMOGRAPHY; EXTENSION; CAD;
D O I
10.1016/j.cma.2023.116286
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Full waveform inversion (FWI) is an iterative identification process that serves to minimize the misfit of model-based simulated and experimentally measured wave field data. Its goal is to identify a field of parameters for a given physical object. For many years, FWI is very successful in seismic imaging to deduce velocity models of the earth or of local geophysical exploration areas. FWI has also been successfully applied in various other fields, including non-destructive testing (NDT) and biomedical imaging. The inverse optimization process of FWI relies on forward and backward solutions of the (elastic or acoustic) wave equation, as well as on efficient computations of adequate optimization directions. Many approaches employ (low order) finite element or finite difference methods, using parameterized material fields whose resolution is chosen in relation to the elements or nodes of the discretized wave field. In our previous paper (Burchner et al., 2023), we investigated the potential of using the finite cell method (FCM) as the wave field solver. The FCM offers the advantage that highly complex geometric models can be incorporated easily. Furthermore, we demonstrated that the identification of the model's density outperforms that of the velocity - particularly in cases where unknown voids characterized by homogeneous Neumann boundary conditions need to be detected. The paper at hand extends this previous study in the following aspects: The isogeometric finite cell analysis (IGA-FCM) - a combination of isogeometric analysis (IGA) and FCM - is applied as the wave field solver, with the advantage that the polynomial degree and subsequently also the sampling frequency of the wave field can be increased quite easily. Since the inversion efficiency strongly depends on the accuracy of the forward and backward wave field solutions and of the gradients of the functional, consistent, and lumped mass matrix discretization are compared. The resolution of the grid describing the unknown material density - thus allowing to identify voids in a physical object - is then decoupled from the knot span grid. Finally, we propose an adaptive multi-resolution algorithm that locally refines the material grid using an image processing-based refinement indicator. The developed inversion framework allows fast and memory-efficient wave simulations and object identification. While we study the general behavior of the proposed approach using 2D benchmark problems, a final 3D problem shows that it can also be used to identify void regions in geometrically complex spatial structures. (c) 2023 Elsevier B.V. All rights reserved.
引用
收藏
页数:19
相关论文
共 50 条
  • [41] A sparse reconstruction method for the estimation of multi-resolution emission fields via atmospheric inversion
    Ray, J.
    Lee, J.
    Yadav, V.
    Lefantzi, S.
    Michalak, A. M.
    Waanders, B. van Bloemen
    GEOSCIENTIFIC MODEL DEVELOPMENT, 2015, 8 (04) : 1259 - 1273
  • [42] Inexact line search method in full waveform inversion
    Xiaona Ma
    Shan-hui Xu
    Pei Ke
    Hong-tao Zhang
    Applied Geophysics, 2023, 20 : 374 - 384
  • [43] Full waveform inversion with spectral conjugate gradient method
    LIU Xiao
    LIU Mingchen
    SUN Hui
    WANG Qianlong
    Global Geology, 2017, 20 (01) : 40 - 45
  • [44] Inexact line search method in full waveform inversion
    Ma Xiaona
    Xu Shanhui
    Ke Pei
    Zhang Hongtao
    APPLIED GEOPHYSICS, 2023, 20 (04) : 374 - 384
  • [45] Wasserstein distance-based full waveform inversion method for density reconstruction
    Liu, Hongying
    Wu, Guochen
    Jia, Zongfeng
    Li, Qingyang
    Shan, Junzhen
    Yang, Sen
    JOURNAL OF APPLIED GEOPHYSICS, 2024, 223
  • [46] A robot localization method based on evidence Accumulation and Multi-Resolution
    Restelli, M
    Sorrenti, DG
    Marchese, FM
    2002 IEEE/RSJ INTERNATIONAL CONFERENCE ON INTELLIGENT ROBOTS AND SYSTEMS, VOLS 1-3, PROCEEDINGS, 2002, : 415 - 420
  • [47] Fast Image Restoration Method Based on the Multi-Resolution Layer
    Hsieh, Ching-Tang
    Chen, Yen-Liang
    Hsu, Chih-Hsu
    JOURNAL OF APPLIED SCIENCE AND ENGINEERING, 2009, 12 (04): : 439 - 448
  • [48] An image compression method based on the multi-resolution characteristics of BEMD
    Tian Yan
    Zhao Kun
    Xu Yiping
    Peng Fuyuan
    COMPUTERS & MATHEMATICS WITH APPLICATIONS, 2011, 61 (08) : 2142 - 2147
  • [49] Adaptive resizing-based multi-resolution particle method
    Sodersten, Axel
    Matsunaga, Takuya
    Koshizuka, Seiichi
    Hosaka, Tomoyuki
    Ishii, Eiji
    MECHANICAL ENGINEERING JOURNAL, 2022, 9 (01):
  • [50] A layered filtering method based on multi-resolution geometric model
    Zou, Zhiwen
    Wang, Zhenghui
    Chen, Jiming
    Pan, Jingui
    Li, Gen
    Journal of Computational Information Systems, 2013, 9 (14): : 5651 - 5658