Literature DB >> 23271835

Preconditioned Alternating Projection Algorithms for Maximum a Posteriori ECT Reconstruction.

Andrzej Krol1, Si Li, Lixin Shen, Yuesheng Xu.   

Abstract

We propose a preconditioned alternating projection algorithm (PAPA) for solving the maximum a posteriori (MAP) emission computed tomography (ECT) reconstruction problem. Specifically, we formulate the reconstruction problem as a constrained convex optimization problem with the total variation (TV) regularization. We then characterize the solution of the constrained convex optimization problem and show that it satisfies a system of fixed-point equations defined in terms of two proximity operators raised from the convex functions that define the TV-norm and the constrain involved in the problem. The characterization (of the solution) via the proximity operators that define two projection operators naturally leads to an alternating projection algorithm for finding the solution. For efficient numerical computation, we introduce to the alternating projection algorithm a preconditioning matrix (the EM-preconditioner) for the dense system matrix involved in the optimization problem. We prove theoretically convergence of the preconditioned alternating projection algorithm. In numerical experiments, performance of our algorithms, with an appropriately selected preconditioning matrix, is compared with performance of the conventional MAP expectation-maximization (MAP-EM) algorithm with TV regularizer (EM-TV) and that of the recently developed nested EM-TV algorithm for ECT reconstruction. Based on the numerical experiments performed in this work, we observe that the alternating projection algorithm with the EM-preconditioner outperforms significantly the EM-TV in all aspects including the convergence speed, the noise in the reconstructed images and the image quality. It also outperforms the nested EM-TV in the convergence speed while providing comparable image quality.

Entities:  

Year:  2012        PMID: 23271835      PMCID: PMC3529588          DOI: 10.1088/0266-5611/28/11/115005

Source DB:  PubMed          Journal:  Inverse Probl        ISSN: 0266-5611            Impact factor:   2.407


  29 in total

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2.  Classification and evaluation strategies of auto-segmentation approaches for PET: Report of AAPM task group No. 211.

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3.  Sparsity promoting regularization for effective noise suppression in SPECT image reconstruction.

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Journal:  Inverse Probl       Date:  2019-10-04       Impact factor: 2.407

4.  Effective noise-suppressed and artifact-reduced reconstruction of SPECT data using a preconditioned alternating projection algorithm.

Authors:  Si Li; Jiahan Zhang; Andrzej Krol; C Ross Schmidtlein; Levon Vogelsang; Lixin Shen; Edward Lipson; David Feiglin; Yuesheng Xu
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5.  Infimal convolution-based regularization for SPECT reconstruction.

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Journal:  Med Phys       Date:  2018-10-25       Impact factor: 4.071

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