Hybrid coupling with operator inference and the overlapping Schwarz alternating method

arXiv:2511.206872 citations
Originality Incremental advance
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For engineers and researchers in multiscale simulation, this method significantly reduces computational cost and complexity while maintaining accuracy.

This paper introduces a hybrid coupling method combining operator inference reduced order models with the overlapping Schwarz alternating method, achieving up to 106x speedup over traditional full order model couplings in 3D solid dynamics problems.

This paper presents a novel hybrid approach for coupling subdomain-local non-intrusive Operator Inference (OpInf) reduced order models (ROMs) with each other and with subdomain-local high-fidelity full order models (FOMs) with using the overlapping Schwarz alternating method (O-SAM). The proposed methodology addresses significant challenges in multiscale modeling and simulation, particularly the long runtime and complex mesh generation requirements associated with traditional high-fidelity simulations. By leveraging the flexibility of O-SAM, we enable the seamless integration of disparate models, meshes, and time integration schemes, enhancing computational efficiency while maintaining high accuracy. Our approach is demonstrated through a series of numerical experiments on complex three-dimensional (3D) solid dynamics problems, showcasing speedups of up to 106x compared to conventional FOM-FOM couplings. This work paves the way for more efficient simulation workflows in engineering applications, with potential extensions to a wide range of partial differential equations.

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