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Sparse Identification of Truncation Errors
[article]
2019
arXiv
pre-print
This work presents a data-driven approach to the identification of spatial and temporal truncation errors for linear and nonlinear discretization schemes of Partial Differential Equations (PDEs). Motivated by the central role of truncation errors, for example in the creation of implicit Large Eddy schemes, we introduce the Sparse Identification of Truncation Errors (SITE) framework to automatically identify the terms of the modified differential equation from simulation data. We build on recent
arXiv:1904.03669v2
fatcat:ltnrhlpl4naitihlih5il6ql2m