Adjoint-based inversion for stress and frictional parameters in earthquake modeling
Vidar Stiernstr\"om, Martin Almquist, Eric M. Dunham

TL;DR
This paper develops an adjoint-based optimization method to invert for stress and frictional parameters in earthquake modeling, integrating complex fault mechanics with efficient gradient computation.
Contribution
It introduces a novel adjoint-based inversion framework for rate-and-state frictional faults in earthquake simulations, extending full-waveform inversion techniques.
Findings
Successfully applied to synthetic data inversions.
Accurately computes gradients using adjoint methods.
Ensures dual consistency with high-order discretization.
Abstract
We present an adjoint-based optimization method to invert for stress and frictional parameters used in earthquake modeling. The forward problem is linear elastodynamics with nonlinear rate-and-state frictional faults. The misfit functional quantifies the difference between simulated and measured particle displacements or velocities at receiver locations. The misfit may include windowing or filtering operators. We derive the corresponding adjoint problem, which is linear elasticity with linearized rate-and-state friction and, for forward problems involving fault normal stress changes, nonzero fault opening, with time-dependent coefficients derived from the forward solution. The gradient of the misfit is efficiently computed by convolving forward and adjoint variables on the fault. The method thus extends the framework of full-waveform inversion to include frictional faults with…
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Taxonomy
TopicsSeismic Imaging and Inversion Techniques · Seismic Performance and Analysis · Hydraulic Fracturing and Reservoir Analysis
