Numerical Reconstruction of Coefficients in Elliptic Equations Using Continuous Data Assimilation

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1. Verfasser: Zhang, Peiran
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Veröffentlicht: 2025
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author Zhang, Peiran
author_facet Zhang, Peiran
contents We consider the numerical reconstruction of the spatially dependent conductivity coefficient and the source term in elliptic partial differential equations in a two-dimensional convex polygonal domain, with the homogeneous Dirichlet boundary condition and given interior observations of the solution. Using data assimilation, we derive approximated gradients of the error functional to update the reconstructed coefficients. New $L^2$ error estimates are provided for the spatially discretized reconstructions. Numerical examples are given to illustrate the effectiveness of the method and demonstrate the error estimates. The numerical results also show that the reconstruction is very robust to the errors in specific inputted coefficients.
format Preprint
id arxiv_https___arxiv_org_abs_2509_16954
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Numerical Reconstruction of Coefficients in Elliptic Equations Using Continuous Data Assimilation
Zhang, Peiran
Numerical Analysis
65N21 (Primary) 65N20 (Secondary)
We consider the numerical reconstruction of the spatially dependent conductivity coefficient and the source term in elliptic partial differential equations in a two-dimensional convex polygonal domain, with the homogeneous Dirichlet boundary condition and given interior observations of the solution. Using data assimilation, we derive approximated gradients of the error functional to update the reconstructed coefficients. New $L^2$ error estimates are provided for the spatially discretized reconstructions. Numerical examples are given to illustrate the effectiveness of the method and demonstrate the error estimates. The numerical results also show that the reconstruction is very robust to the errors in specific inputted coefficients.
title Numerical Reconstruction of Coefficients in Elliptic Equations Using Continuous Data Assimilation
topic Numerical Analysis
65N21 (Primary) 65N20 (Secondary)
url https://arxiv.org/abs/2509.16954