Error Estimates of Residual Minimization using NNs for Linear PDEs

Journal of machine learning for modeling and computing(2023)

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摘要
We propose an abstract framework for analyzing the convergence of least-squares methods based on residual minimization when feasible solutions are neural networks. With the norm relations and compactness arguments, we derive error estimates for both continuous and discrete formulations of residual minimization in strong and weak forms. The formulations cover recently developed physicsinformed neural networks based on strong and variational formulations.
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关键词
residual minimization,linear pdes,nns
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