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Continuous PDE Dynamics Forecasting with Implicit Neural Representations

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arxiv 2209.14855 v2 pith:GFH5CMLC submitted 2022-09-29 cs.LG cs.AIcs.NEstat.ML

classification cs.LGcs.AIcs.NEstat.ML
keywords data-drivendinoneuralspatialarbitrarycontinuousdynamicsflexible
verification ladder T0 review T1 audit T2 compute T3 formal
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Effective data-driven PDE forecasting methods often rely on fixed spatial and / or temporal discretizations. This raises limitations in real-world applications like weather prediction where flexible extrapolation at arbitrary spatiotemporal locations is required. We address this problem by introducing a new data-driven approach, DINo, that models a PDE's flow with continuous-time dynamics of spatially continuous functions. This is achieved by embedding spatial observations independently of their discretization via Implicit Neural Representations in a small latent space temporally driven by a learned ODE. This separate and flexible treatment of time and space makes DINo the first data-driven model to combine the following advantages. It extrapolates at arbitrary spatial and temporal locations; it can learn from sparse irregular grids or manifolds; at test time, it generalizes to new grids or resolutions. DINo outperforms alternative neural PDE forecasters in a variety of challenging generalization scenarios on representative PDE systems.

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Cited by 3 Pith papers

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  1. Disentangled Latent Dynamics Manifold Fusion for Solving Parameterized PDEs

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    A Fourier-based weight modulation for shared INR networks improves reconstruction of high-frequency PDE fields and enables bidirectional inference between paired solution spaces.

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