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A manifold learning approach to nonlinear model order reduction of quasi-static problems in solid mechanics

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arxiv 2408.12415 v1 pith:N347VRU6 submitted 2024-08-22 cs.CE

classification cs.CE
keywords manifoldnonlinearapproachmodelsolutionlearninglocalmethod
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The proper orthogonal decomposition (POD) -- a popular projection-based model order reduction (MOR) method -- may require significant model dimensionalities to successfully capture a nonlinear solution manifold resulting from a parameterised quasi-static solid-mechanical problem. The local basis method by Amsallem et al. [1] addresses this deficiency by introducing a locally, rather than globally, linear approximation of the solution manifold. However, this generally successful approach comes with some limitations, especially in the data-poor setting. In this proof-of-concept investigation, we instead propose a graph-based manifold learning approach to nonlinear projection-based MOR which uses a global, continuously nonlinear approximation of the solution manifold. Approximations of local tangents to the solution manifold, which are necessary for a Galerkin scheme, are computed in the online phase. As an example application for the resulting nonlinear MOR algorithms, we consider simple representative volume element computations. On this example, the manifold learning approach Pareto-dominates the POD and local basis method in terms of the error and runtime achieved using a range of model dimensionalities.

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  1. A hyperreduced manifold learning approach to nonlinear model order reduction for the homogenisation of hyperelastic RVEs

    cs.CE 2025-08 conditional novelty 5.0 of 10

    A manifold-learning reduced-order model with DEIM and LSPG hyperreduction achieves two orders of magnitude speedup with ~0.1% error on an example hyperelastic RVE homogenisation problem.

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