$\omega$-FWI: Robust full-waveform inversion with Fourier-based metric
Muhammad Izzatullah, Tariq Alkhalifah

TL;DR
This paper introduces $oldsymbol{ extomega}$-FWI, a robust full-waveform inversion method using a Fourier-based metric that mitigates cycle-skipping and enhances high-resolution subsurface model recovery, even with noisy data and limited frequency range.
Contribution
It adapts a Fourier-based misfit metric from molecular physics to FWI, improving robustness against cycle-skipping and enabling high-resolution results with limited frequency data.
Findings
Successfully recovers accurate velocity models in synthetic tests
Performs well with noisy data and limited frequency range
Outperforms conventional $oldsymbol{ extell_2}$-norm FWI in challenging scenarios
Abstract
Full-waveform inversion is a cutting-edge methodology for recovering high-resolution subsurface models. However, one of the main conventional full-waveform optimization problems challenges is cycle-skipping, usually leading us to an inaccurate local minimum model. A highly investigated track to alleviate this challenge involves designing a more global measure of misfit between the observed and modelled data beyond the sample-to-sample comparison. However, most of these approaches admit relatively smooth inversion results. Here, we introduce a novel misfit function based on the Fourier-based metric. This metric has been successfully applied in molecular physics for solving the Boltzmann equation, and we adapt it to full-waveform inversion. This misfit function exploits the power spectrum information between the modelled and observed data to provide low-wavenumber velocity model updates…
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Taxonomy
TopicsNMR spectroscopy and applications · Advanced MRI Techniques and Applications · Seismic Imaging and Inversion Techniques
