Processing the 2D and 3D Fresnel experimental databases via topological derivative methods

Fuente: arXiv
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Autores principales: Carpio, A., Pena, M., Rapún, M. L.
Formato: Preprint
Publicado: 2025
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author Carpio, A.
Pena, M.
Rapún, M. L.
author_facet Carpio, A.
Pena, M.
Rapún, M. L.
contents This paper presents reconstructions of homogeneous targets from the 2D and 3D Fresnel databases by one-step imaging methods based on the computation of topological derivative and topological energy fields. The electromagnetic inverse scattering problem is recast as a constrained optimization problem, in which we seek to minimize the error when comparing experimental microwave measurements with computer-generated synthetic data for arbitrary targets by approximating a Maxwell forward model. The true targets are then characterized by combining the topological derivatives or energies of such shape functionals for all available receivers and emitters at different frequencies. Our approximations are comparable to the best approximations already obtained by other methods. However, these topological fields admit easy to evaluate closed-form expressions, which speeds up the process.
format Preprint
id arxiv_https___arxiv_org_abs_2501_15327
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Processing the 2D and 3D Fresnel experimental databases via topological derivative methods
Carpio, A.
Pena, M.
Rapún, M. L.
Analysis of PDEs
This paper presents reconstructions of homogeneous targets from the 2D and 3D Fresnel databases by one-step imaging methods based on the computation of topological derivative and topological energy fields. The electromagnetic inverse scattering problem is recast as a constrained optimization problem, in which we seek to minimize the error when comparing experimental microwave measurements with computer-generated synthetic data for arbitrary targets by approximating a Maxwell forward model. The true targets are then characterized by combining the topological derivatives or energies of such shape functionals for all available receivers and emitters at different frequencies. Our approximations are comparable to the best approximations already obtained by other methods. However, these topological fields admit easy to evaluate closed-form expressions, which speeds up the process.
title Processing the 2D and 3D Fresnel experimental databases via topological derivative methods
topic Analysis of PDEs
url https://arxiv.org/abs/2501.15327