3D prestack plane-wave, full-waveform inversion

被引:133
|
作者
Vigh, Denes [1 ]
Starr, E. William [1 ]
机构
[1] Staag Imaging LP, Houston, TX USA
关键词
D O I
10.1190/1.2952623
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Prestack depth migration has been used for decades to derive velocity distributions in depth. Numerous tools and methodologies have been developed to reach this goal. Exploration in geologically more complex areas exceeds the abilities of existing methods. New data-acquisition and data-processing methods are required to answer these new challenges effectively. The recently introduced wide-azimuth data acquisition method offers better illumination and noise attenuation as well as an opportunity to more accurately determine velocities for imaging. One of the most advanced tools for depth imaging is full-waveform inversion. Prestack seismic full-waveform inversion is very challenging because of the nonlinearity and nonuniqueness of the solution. Combined with multiple iterations of forward modeling and residual wavefield back propagation, the method is computer intensive, especially for 3D projects. We studied a time-domain, plane-wave implementation of 3D waveform inversion. We found that plane-wave gathers are an attractive input to waveform inversion with dramatically reduced computer run times compared to traditional shot-gather approaches. The study was conducted on two synthetic data sets - Marmousi2 and SMAART Pluto 1.5 - and a field data set. The results showed that a velocity field can be reconstructed well using a multiscale time-domain implementation of waveform inversion. Although the time-domain solution does not take advantage of wavenumber redundancy, the method is feasible on current computer architectures for 3D surveys. The inverted velocity volume produces a quality image for exploration geologists by using numerous iterations of waveform inversion.
引用
收藏
页码:VE135 / VE144
页数:10
相关论文
共 50 条
  • [31] Plane-wave Full Waveform Inversion Using Distributed Acoustic Sensing Data in an Elastic Medium
    Jeong, Seoje
    Chung, Wookeen
    Shin, Sungryul
    Kim, Sumin
    [J]. GEOPHYSICS AND GEOPHYSICAL EXPLORATION, 2022, 25 (04): : 214 - 226
  • [32] 3-D PRESTACK FULL-WAVE-FIELD INVERSION
    XU, T
    MCMECHAN, GA
    SUN, R
    [J]. GEOPHYSICS, 1995, 60 (06) : 1805 - 1818
  • [33] Site characterization with 3D elastic full-waveform tomography
    Trung Dung Nguyen
    Tran, Khiem T.
    [J]. GEOPHYSICS, 2018, 83 (05) : R389 - R400
  • [34] Mitigating elastic effects in marine 3-D full-waveform inversion
    Agudo, Oscar Calderon
    da Silva, Nuno Vieira
    Stronge, George
    Warner, Michael
    [J]. GEOPHYSICAL JOURNAL INTERNATIONAL, 2020, 220 (03) : 2089 - 2104
  • [35] Semiglobal viscoacoustic full-waveform inversion
    da Silva, Nuno V.
    Yao, Gang
    Warner, Michael
    [J]. GEOPHYSICS, 2019, 84 (02) : R271 - R293
  • [36] Approximate solutions of acoustic 3D integral equation and their application to seismic modeling and full-waveform inversion
    Malovichko, M.
    Khokhlov, N.
    Yavich, N.
    Zhdanov, M.
    [J]. JOURNAL OF COMPUTATIONAL PHYSICS, 2017, 346 : 318 - 339
  • [37] Challenges in shallow target reconstruction by 3D elastic full-waveform inversion - Which initial model?
    Teodor, Daniela
    Comina, Cesare
    Anjom, Farbod Khosro
    Brossier, Romain
    Socco, Laura Valentina
    Virieux, Jean
    [J]. GEOPHYSICS, 2021, 86 (04) : R433 - R446
  • [38] Model-based optimization of source locations for 3D acoustic seismic full-waveform inversion
    Winner, Valerie
    Edme, Pascal
    Maurer, Hansruedi
    [J]. GEOPHYSICAL PROSPECTING, 2023, 71 (01) : 3 - 16
  • [39] Prismatic and full-waveform joint inversion
    Qu Ying-Ming
    Li Zhen-Chun
    Huang Jian-Ping
    Li Jin-Li
    [J]. APPLIED GEOPHYSICS, 2016, 13 (03) : 511 - 518
  • [40] Prismatic and full-waveform joint inversion
    Ying-Ming Qu
    Zhen-Chun Li
    Jian-Ping Huang
    Jin-Li Li
    [J]. Applied Geophysics, 2016, 13 : 511 - 518