A domain decomposition online-learning-enhanced nonlinear elimination preconditioner
Abstract
Nonlinearly preconditioned inexact Newton methods form an effective class of solvers for large-scale nonlinear algebraic systems arising from the discretization of partial differential equations.
A central challenge in nonlinear elimination (NE) preconditioning is the reliable identification of the slowly converging components to be eliminated.
Existing selection strategies often rely on problem-specific physical information or user-tuned thresholds applied directly to the raw nonlinear residual, which may contain irregular oscillatory structures near stagnation regions, making the selected bad subset highly sensitive to threshold parameters.
In this work, we propose an online-learning-enhanced NE preconditioner that identifies the bad subset from the dominant structure of the nonlinear residual rather than from the raw residual itself.
Residual snapshots are collected online during the stagnation phase of the current Newton solve, and an unsupervised extraction model is trained to capture the principal nonlinear imbalance.
We consider both a linear extractor based on principal component analysis and nonlinear extractors based on autoencoder neural networks.
Moreover, we integrate the approach into a parallel domain decomposition framework, which trains a local extraction model independently on each subdomain.
The learned residual reconstruction is then used to define the bad subset and guide the nonlinear elimination process.
Numerical experiments on lid-driven cavity flows at Reynolds numbers up to 10,000 show that the proposed method produces more reliable and coherent bad subsets, is robust with respect to both NE and learning parameters, and outperforms the baseline NE preconditioner in terms of the convergence.
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