English

Light-Weight Diffusion Multiplier and Uncertainty Quantification for Fourier Neural Operators

Machine Learning 2025-10-20 v2

Abstract

Operator learning is a powerful paradigm for solving partial differential equations, with Fourier Neural Operators serving as a widely adopted foundation. However, FNOs face significant scalability challenges due to overparameterization and offer no native uncertainty quantification -- a key requirement for reliable scientific and engineering applications. Instead, neural operators rely on post hoc UQ methods that ignore geometric inductive biases. In this work, we introduce DINOZAUR: a diffusion-based neural operator parametrization with uncertainty quantification. Inspired by the structure of the heat kernel, DINOZAUR replaces the dense tensor multiplier in FNOs with a dimensionality-independent diffusion multiplier that has a single learnable time parameter per channel, drastically reducing parameter count and memory footprint without compromising predictive performance. By defining priors over those time parameters, we cast DINOZAUR as a Bayesian neural operator to yield spatially correlated outputs and calibrated uncertainty estimates. Our method achieves competitive or superior performance across several PDE benchmarks while providing efficient uncertainty quantification.

Keywords

Cite

@article{arxiv.2508.00643,
  title  = {Light-Weight Diffusion Multiplier and Uncertainty Quantification for Fourier Neural Operators},
  author = {Albert Matveev and Sanmitra Ghosh and Aamal Hussain and James-Michael Leahy and Michalis Michaelides},
  journal= {arXiv preprint arXiv:2508.00643},
  year   = {2025}
}
R2 v1 2026-07-01T04:29:28.607Z