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Data-Driven Physics-Informed Neural Networks: A Digital Twin Perspective

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arxiv 2401.08667 v4 pith:LGRBXU5O submitted 2024-01-05 physics.flu-dyn cs.CEcs.LG

Data-Driven Physics-Informed Neural Networks: A Digital Twin Perspective

classification physics.flu-dyn cs.CEcs.LG
keywords pinnsdd-pinnsperformancedata-drivendatasetsdigitalframeworkinvestigated
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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abstract

This study explores the potential of physics-informed neural networks (PINNs) for the realization of digital twins (DT) from various perspectives. First, various adaptive sampling approaches for collocation points are investigated to verify their effectiveness in the mesh-free framework of PINNs, which allows automated construction of virtual representation without manual mesh generation. Then, the overall performance of the data-driven PINNs (DD-PINNs) framework is examined, which can utilize the acquired datasets in DT scenarios. Its scalability to more general physics is validated within parametric Navier-Stokes equations, where PINNs do not need to be retrained as the Reynolds number varies. In addition, since datasets can be often collected from different fidelity/sparsity in practice, multi-fidelity DD-PINNs are also proposed and evaluated. They show remarkable prediction performance even in the extrapolation tasks, with $42\sim62\%$ improvement over the single-fidelity approach. Finally, the uncertainty quantification performance of multi-fidelity DD-PINNs is investigated by the ensemble method to verify their potential in DT, where an accurate measure of predictive uncertainty is critical. The DD-PINN frameworks explored in this study are found to be more suitable for DT scenarios than traditional PINNs from the above perspectives, bringing engineers one step closer to seamless DT realization.

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