Neural Electromagnetic Fields for High-Resolution Material Parameter Reconstruction
Zhe Chen, Peilin Zheng, Wenshuo Chen, Xiucheng Wang, Yutao Yue, Nan Cheng

TL;DR
This paper introduces NEMF, a physics-supervised learning framework that reconstructs detailed material property maps from non-invasive RF signals, enabling the creation of functional digital twins for high-fidelity physical simulation.
Contribution
NEMF systematically disentangles geometry and material properties from non-invasive data, transforming an ill-posed inversion into a well-posed, physics-guided learning problem for detailed material mapping.
Findings
High-accuracy material property reconstruction on synthetic datasets
Enables creation of functional digital twins for physical simulation
Transforms ill-posed inverse problems into well-posed learning tasks
Abstract
Creating functional Digital Twins, simulatable 3D replicas of the real world, is a central challenge in computer vision. Current methods like NeRF produce visually rich but functionally incomplete twins. The key barrier is the lack of underlying material properties (e.g., permittivity, conductivity). Acquiring this information for every point in a scene via non-contact, non-invasive sensing is a primary goal, but it demands solving a notoriously ill-posed physical inversion problem. Standard remote signals, like images and radio frequencies (RF), deeply entangle the unknown geometry, ambient field, and target materials. We introduce NEMF, a novel framework for dense, non-invasive physical inversion designed to build functional digital twins. Our key insight is a systematic disentanglement strategy. NEMF leverages high-fidelity geometry from images as a powerful anchor, which first…
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Taxonomy
TopicsMetamaterials and Metasurfaces Applications · Microwave Imaging and Scattering Analysis · Augmented Reality Applications
