Locally solving fractional Laplacian viscoacoustic wave equation using Hermite distributed approximating functional method

Author:

Yao Jie1ORCID,Zhu Tieyuan2ORCID,Hussain Fazle3,Kouri Donald J.1

Affiliation:

1. University of Houston, Departments of Mechanical Engineering, Physics, and Mathematics, Houston, Texas, USA..

2. Formerly University of Texas at Austin, John A. and Katherine G. Jackson School of Geosciences, Austin, Texas, USA; presently The Pennsylvania State University, Department of Geosciences and Institute of Natural Gas Research, University Park, Pennsylvania, USA..

3. Texas Tech University, Department of Mechanical Engineering, Lubbock, Texas, USA..

Abstract

Accurate seismic modeling in realistic media serves as the basis of seismic full-waveform inversion and imaging. Recently, viscoacoustic seismic modeling incorporating attenuation effects has been performed by solving a fractional Laplacian viscoacoustic wave equation. In this equation, attenuation, being spatially heterogeneous, is represented partially by the spatially varying power of the fractional Laplacian operator previously approximated by the global Fourier method. We have developed a local-spectral approach, based on the Hermite distributed approximating functional (HDAF) method, to implement the fractional Laplacian in the viscoacoustic wave equation. Our approach combines local methods’ simplicity and global methods’ accuracy. Several numerical examples are developed to evaluate the feasibility and accuracy of using the HDAF method for the frequency-independent [Formula: see text] fractional Laplacian wave equation.

Funder

R. A. Welch Foundation

Publisher

Society of Exploration Geophysicists

Subject

Geochemistry and Petrology,Geophysics

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