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Relaxed Simultaneous Tomographic Reconstruction and Segmentation with Class Priors for Poisson Noise

From

Department of Applied Mathematics and Computer Science, Technical University of Denmark1

Visual Computing, Department of Applied Mathematics and Computer Science, Technical University of Denmark2

Scientific Computing, Department of Applied Mathematics and Computer Science, Technical University of Denmark3

This work is a continuation of work on algorithms for simultaneous reconstruction and segmentation. In our previous work we developed an algorithm for data with Gaussian noise, and in that algorithm the coefficient matrix for the system is explicitly store. We improve this algorithm in two ways: our new algorithm can handle Poisson noise in the data, and it can solve much larger problems since it does not store the matrix.

We formulate this algorithm and test it on artificial test problems. Our results show that the algorithm performs well, and that we are able to produce reconstructions and segmentations with small errors.

Language: English
Publisher: Technical University of Denmark
Year: 2015
Series: Dtu Compute Technical Report-2015
ISSN: 16012321
Types: Report
ORCIDs: Dahl, Anders Bjorholm , Dong, Yiqiu and Hansen, Per Christian

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