Physics-Informed Neural Operator for Electromagnetic Inverse Scattering Problems
Q. C. Dong, Zi-Xuan Su, Qing Huo Liu, Wen Chen, Zhizhang (David) Chen

TL;DR
This paper introduces a physics-informed neural operator framework for electromagnetic inverse scattering problems, enabling fast, accurate, and versatile reconstructions across various measurement conditions with improved performance over traditional methods.
Contribution
The paper develops a novel PINO framework using neural operators for electromagnetic inverse scattering, incorporating a hybrid loss and demonstrating superior accuracy and flexibility.
Findings
Achieves high-accuracy reconstructions in noisy environments.
Outperforms conventional contrast-source inversion methods.
Works effectively across single and multi-frequency scenarios.
Abstract
This paper proposes a physics-informed neural operator (PINO) framework for solving inverse scattering problems, enabling rapid and accurate reconstructions under diverse measurement conditions. In the proposed approach, the dielectric property is represented as a learnable tensor, while a neural operator is employed to predict the induced current distribution. A hybrid loss function, consisting of the state loss, data loss and total-variation (TV) regularization, is constructed to establish a fully differentiable formulation for a joint optimization of network parameters and dielectric property. To demonstrate the framework's generality and flexibility, PINO is implemented using three representative neural operators, i.e., the Fourier Neural Operator (FNO), the enhanced Fourier Neural Operator (U-FNO) and the Factorized Fourier Neural Operator (F-FNO). Compared with conventional…
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Taxonomy
TopicsMicrowave Imaging and Scattering Analysis · Electromagnetic Simulation and Numerical Methods · Electromagnetic Scattering and Analysis
