Time-domain full waveform inversion using the gradient preconditioning based on transmitted waves energy
Author(s) -
Xiaobo Zhang,
Jun Tan,
Peng Song,
Jinshan Li,
Dongming Xia,
Zhaolun Liu
Publication year - 2017
Publication title -
international geophysical conference, qingdao, china, 17-20 april 2017
Language(s) - English
Resource type - Conference proceedings
DOI - 10.1190/igc2017-063
Subject(s) - waveform , inversion (geology) , time domain , energy (signal processing) , computer science , acoustics , frequency domain , electronic engineering , physics , telecommunications , geology , engineering , seismology , radar , quantum mechanics , computer vision , tectonics
The gradient preconditioning approach based on seismic wave energy can effectively avoid the huge storage consumption in the gradient preconditioning algorithms based on Hessian matrices in time-domain full waveform inversion (FWI), but the accuracy is affected by the energy of reflected waves when strong reflectors are present in velocity model. To address this problem, we propose a gradient preconditioning method, which scales the gradient based on the energy of the “approximated transmitted wavefield” simulated by the nonreflecting acoustic wave equation. The method does not require computing or storing the Hessian matrix or its inverse. Furthermore, it can effectively eliminate the effects caused by geometric diffusion and non-uniformity illumination on gradient. The results of model experiments confirm that the time-domain FWI using the gradient preconditioning based on transmitted waves energy can achieve higher inversion precision for high-velocity body and the deep strata below when compared with using the gradient preconditioning based on seismic waves energy
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