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A Model-Guided Neural Network Method for the Inverse Scattering Problem

Published: December 10, 2025 | arXiv ID: 2512.10123v1

By: Olivia Tsang , Owen Melia , Vasileios Charisopoulos and more

Potential Business Impact:

Makes X-rays see hidden things better and faster.

Business Areas:
Image Recognition Data and Analytics, Software

Inverse medium scattering is an ill-posed, nonlinear wave-based imaging problem arising in medical imaging, remote sensing, and non-destructive testing. Machine learning (ML) methods offer increased inference speed and flexibility in capturing prior knowledge of imaging targets relative to classical optimization-based approaches; however, they perform poorly in regimes where the scattering behavior is highly nonlinear. A key limitation is that ML methods struggle to incorporate the physics governing the scattering process, which are typically inferred implicitly from the training data or loosely enforced via architectural design. In this paper, we present a method that endows a machine learning framework with explicit knowledge of problem physics, in the form of a differentiable solver representing the forward model. The proposed method progressively refines reconstructions of the scattering potential using measurements at increasing wave frequencies, following a classical strategy to stabilize recovery. Empirically, we find that our method provides high-quality reconstructions at a fraction of the computational or sampling costs of competing approaches.

Page Count
28 pages

Category
Physics:
Computational Physics