Factorized Neural Implicit DMD for Parametric Dynamics
Siyuan Chen, Zhecheng Wang, Yixin Chen, Yue Chang, Peter Yichen Chen, Eitan Grinspun, Jonathan Panuelos

TL;DR
This paper introduces a neural method that models parametric dynamical systems by factorizing the spectral components of the Koopman operator, enabling accurate long-term predictions, parameter interpolation, and spectral analysis.
Contribution
It proposes a novel factorized neural implicit model that decouples spatial modes and temporal evolution for better dynamical system analysis.
Findings
Accurately predicts complex spatiotemporal dynamics.
Supports interpolation across physical parameters.
Provides spectral insights into system stability.
Abstract
A data-driven, model-free approach to modeling the temporal evolution of physical systems mitigates the need for explicit knowledge of the governing equations. Even when physical priors such as partial differential equations are available, such systems often reside in high-dimensional state spaces and exhibit nonlinear dynamics, making traditional numerical solvers computationally expensive and ill-suited for real-time analysis and control. Consider the problem of learning a parametric flow of a dynamical system: with an initial field and a set of physical parameters, we aim to predict the system's evolution over time in a way that supports long-horizon rollouts, generalization to unseen parameters, and spectral analysis. We propose a physics-coded neural field parameterization of the Koopman operator's spectral decomposition. Unlike a physics-constrained neural field, which fits a…
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Taxonomy
TopicsModel Reduction and Neural Networks · Neural Networks and Reservoir Computing · Generative Adversarial Networks and Image Synthesis
