Learning a microlocal prior for limited-angle tomography

Author:

Rautio Siiri1,Murthy Rashmi2,Bubba Tatiana A3,Lassas Matti1,Siltanen Samuli1

Affiliation:

1. Department of Mathematics and Statistics, University of Helsinki , Helsinki 00100 , Finland

2. Department of Mathematics, Bangalore University , Bengaluru, Karnataka 560056 , India

3. Department of Mathematical Sciences, University of Bath , Bath BA2 7AY , UK

Abstract

Abstract Limited-angle tomography is a highly ill-posed linear inverse problem. It arises in many applications, such as digital breast tomosynthesis. Reconstructions from limited-angle data typically suffer from severe stretching of features along the central direction of projections, leading to poor separation between slices perpendicular to the central direction. In this paper, a new method is introduced, based on machine learning and geometry, producing an estimate for interfaces between regions of different X-ray attenuation. The estimate can be presented on top of the reconstruction, indicating more reliably the separation between features. The method uses directional edge detection, implemented using complex wavelets and enhanced with morphological operations. By using convolutional neural networks, the visible part of the singular support is first extracted and then extended to the full domain, filling in the parts of the singular support that would otherwise be hidden due to the lack of measurement directions.

Funder

University of Helsinki

Jane and Aatos Erkko Foundation

Technology Industries of Finland Centennial Foundation

Academy of Finland

Royal Society

Newton International Fellowship

Finnish Centre of Excellence in Inverse Modelling and Imaging

Publisher

Oxford University Press (OUP)

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5. Deep microlocal reconstruction for limited-angle tomography;Andrade-Loarca;Appl. Comput. Harmon. Anal.,2022

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