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HyperPINN: Learning parameterized differential equations with physics-informed hypernetworks

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arxiv 2111.01008 v1 pith:AAZUMWKS submitted 2021-10-28 cs.LG physics.comp-ph

classification cs.LGphysics.comp-ph
keywords differentialequationslearningneuralsolutionsequationhypernetworkshyperpinn
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Many types of physics-informed neural network models have been proposed in recent years as approaches for learning solutions to differential equations. When a particular task requires solving a differential equation at multiple parameterizations, this requires either re-training the model, or expanding its representation capacity to include the parameterization -- both solution that increase its computational cost. We propose the HyperPINN, which uses hypernetworks to learn to generate neural networks that can solve a differential equation from a given parameterization. We demonstrate with experiments on both a PDE and an ODE that this type of model can lead to neural network solutions to differential equations that maintain a small size, even when learning a family of solutions over a parameter space.

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Cited by 1 Pith paper

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  1. Are Two Hidden Layers Still Enough for the Physics-Informed Neural Networks?

    math.NA 2024-12 conditional novelty 5.0 of 10

    A collection of deterministic initialization, loss weighting, data-driven initialization, and gradient-free training methods for shallow physics-informed neural networks, tested on ODEs and PDEs.

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