Efficient inversion of multiple-scattering model for optical diffraction tomography

Optical diffraction tomography relies on solving an inverse scattering problem governed by the wave equation. Classical reconstruction algorithms are based on linear approximations of the forward model (Born or Rytov), which limits their applicability to thin samples with low refractive-index contra...

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Bibliographic Details
Published inOptics express Vol. 25; no. 18; p. 21786
Main Authors Soubies, Emmanuel, Pham, Thanh-An, Unser, Michael
Format Journal Article
LanguageEnglish
Published United States Optical Society of America - OSA Publishing 04.09.2017
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ISSN1094-4087
1094-4087
DOI10.1364/OE.25.021786

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Summary:Optical diffraction tomography relies on solving an inverse scattering problem governed by the wave equation. Classical reconstruction algorithms are based on linear approximations of the forward model (Born or Rytov), which limits their applicability to thin samples with low refractive-index contrasts. More recent works have shown the benefit of adopting nonlinear models. They account for multiple scattering and reflections, improving the quality of reconstruction. To reduce the complexity and memory requirements of these methods, we derive an explicit formula for the Jacobian matrix of the nonlinear Lippmann-Schwinger model which lends itself to an efficient evaluation of the gradient of the data-fidelity term. This allows us to deploy efficient methods to solve the corresponding inverse problem subject to sparsity constraints.
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ISSN:1094-4087
1094-4087
DOI:10.1364/OE.25.021786