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      Deep learning for photoacoustic tomography from sparse data.

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          Abstract

          The development of fast and accurate image reconstruction algorithms is a central aspect of computed tomography. In this paper, we investigate this issue for the sparse data problem in photoacoustic tomography (PAT). We develop a direct and highly efficient reconstruction algorithm based on deep learning. In our approach, image reconstruction is performed with a deep convolutional neural network (CNN), whose weights are adjusted prior to the actual image reconstruction based on a set of training data. The proposed reconstruction approach can be interpreted as a network that uses the PAT filtered backprojection algorithm for the first layer, followed by the U-net architecture for the remaining layers. Actual image reconstruction with deep learning consists in one evaluation of the trained CNN, which does not require time-consuming solution of the forward and adjoint problems. At the same time, our numerical results demonstrate that the proposed deep learning approach reconstructs images with a quality comparable to state of the art iterative approaches for PAT from sparse data.

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          Most cited references58

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          An iterative thresholding algorithm for linear inverse problems with a sparsity constraint

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            Algebraic reconstruction techniques (ART) for three-dimensional electron microscopy and x-ray photography.

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              Universal back-projection algorithm for photoacoustic computed tomography

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                Author and article information

                Journal
                Inverse Probl Sci Eng
                Inverse problems in science and engineering
                Informa UK Limited
                1741-5977
                1741-5977
                2019
                : 27
                : 7
                Affiliations
                [1 ] Department of Mathematics, University of Innsbruck, Innsbruck, Austria.
                Article
                1518444
                10.1080/17415977.2018.1518444
                6474723
                31057659
                aad5cf24-1e8c-4fb4-b365-9d3caf38f4b6
                History

                45Q05,65R32,92C55,Photoacoustic tomography,convolutional neural networks,deep learning,image reconstruction,inverse problems,sparse data

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