Complex-valued Imaging with Total Variation Regularization: An Application to Full-Waveform Inversion in Visco-acoustic Media
Hossein S. Aghamiry, Ali Gholami, Stephane Operto

TL;DR
This paper introduces a novel complex-valued imaging method with total variation regularization for full-waveform inversion in visco-acoustic media, directly estimating complex velocities to improve accuracy and reduce modeling errors.
Contribution
It proposes a mono-variate algorithm that performs optimization directly in the complex domain, bypassing the need for empirical relations between parameters.
Findings
Enhanced accuracy in estimating complex velocities.
Reduced modeling errors compared to traditional methods.
Effective handling of frequency-dependent attenuation.
Abstract
Full waveform inversion (FWI) is a nonlinear PDE constrained optimization problem, which seeks to estimate constitutive parameters of a medium such as phase velocity, density, and anisotropy, by fitting waveforms. Attenuation is an additional parameter that needs to be taken into account in viscous media to exploit the full potential of FWI. Attenuation is more easily implemented in the frequency domain by using complex-valued velocities in the time-harmonic wave equation. These complex velocities are frequency-dependent to guarantee causality and account for dispersion. Since estimating a complex frequency-dependent velocity at each grid point in space is not realistic, the optimization is generally performed in the real domain by processing the phase velocity (or slowness) at a reference frequency and attenuation (or quality factor) as separate real parameters. This real…
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Taxonomy
TopicsSeismic Imaging and Inversion Techniques · Seismic Waves and Analysis · Microwave Imaging and Scattering Analysis
