Magneto-Acousto-Electric Tomography with Magnetic Field Measurements: Modeling, Inversion and Stability
Abstract
Magneto-acousto-electric tomography (MAET) combines ultrasound with a static magnetic field to infer the electrical conductivity of an object.
In this paper, we present a rigorous quasi-static mathematical model for MAET with magnetic field measurements and introduce an adjoint problem to decouple the resulting hybrid inverse problem.
This yields a two-step inversion procedure: solving an acoustic inverse source problem and then recovering the conductivity from an internal current density.
For the second step, by exploiting the analytic structure of a coil-determined field, we establish an interior Hölder stability estimate without imposing a pointwise nonzero constraint on the internal data.
We further prove that, under explicit smallness assumptions on the conductivity and coil geometry, the conductivity can be recovered with region-of-interest Lipschitz stability in both bounded and half-space geometries.
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