English

Learning Space-Time Continuous Neural PDEs from Partially Observed States

Machine Learning 2023-10-27 v2

Abstract

We introduce a novel grid-independent model for learning partial differential equations (PDEs) from noisy and partial observations on irregular spatiotemporal grids. We propose a space-time continuous latent neural PDE model with an efficient probabilistic framework and a novel encoder design for improved data efficiency and grid independence. The latent state dynamics are governed by a PDE model that combines the collocation method and the method of lines. We employ amortized variational inference for approximate posterior estimation and utilize a multiple shooting technique for enhanced training speed and stability. Our model demonstrates state-of-the-art performance on complex synthetic and real-world datasets, overcoming limitations of previous approaches and effectively handling partially-observed data. The proposed model outperforms recent methods, showing its potential to advance data-driven PDE modeling and enabling robust, grid-independent modeling of complex partially-observed dynamic processes.

Keywords

Cite

@article{arxiv.2307.04110,
  title  = {Learning Space-Time Continuous Neural PDEs from Partially Observed States},
  author = {Valerii Iakovlev and Markus Heinonen and Harri Lähdesmäki},
  journal= {arXiv preprint arXiv:2307.04110},
  year   = {2023}
}
R2 v1 2026-06-28T11:25:18.992Z