English

Neural Gaussian Radio Fields for Channel Estimation

Signal Processing 2026-02-11 v3 Networking and Internet Architecture

Abstract

Accurate channel state information (CSI) is a critical bottleneck in modern wireless networks, with pilot overhead consuming 11\% to 21\% of transmission bandwidth and feedback delays causing severe throughput degradation under mobility. Addressing this requires rethinking how neural fields represent coherent wave phenomena. This work introduces \textit{neural Gaussian radio fields (\textcolor{stanfordred}{nGRF})}, a physics-informed framework that fundamentally reframes neural field design by replacing view-dependent rasterization with direct complex-valued aggregation in 3D space. This approach natively models wave superposition rather than visual occlusion. The architectural shift transforms the learning objective from function-fitting to source-recovery, a well-posed inverse problem grounded in electromagnetic theory. While demonstrated for wireless channel estimation, the core principle of explicit primitive-based fields with physics-constrained aggregation extends naturally to any coherent wave-based domain, including acoustic propagation, seismic imaging, and ultrasound reconstruction. Evaluations show that the inductive bias of \textcolor{stanfordred}{nGRF} achieves 10.9 dB higher prediction SNR than state-of-the-art methods with 220×\times faster inference (1.1 ms vs. 242 ms), 18×\times lower measurement density, and 180×\times faster training. For large-scale outdoor environments where implicit methods fail, \textcolor{stanfordred}{nGRF} achieves 28.32 dB SNR, demonstrating that structured representations supplemented by domain physics can fundamentally outperform generic deep learning architectures.

Keywords

Cite

@article{arxiv.2508.11668,
  title  = {Neural Gaussian Radio Fields for Channel Estimation},
  author = {Muhammad Umer and Muhammad Ahmed Mohsin and Ahsan Bilal and John M. Cioffi},
  journal= {arXiv preprint arXiv:2508.11668},
  year   = {2026}
}

Comments

This paper has been submitted to KDD'26

R2 v1 2026-07-01T04:52:23.051Z