DocumentCode :
2559874
Title :
Dynamic 3D PET reconstruction for kinetic analysis using patch-based low-rank penalty
Author :
Kim, Kwang Soon ; Son, Young Don ; Cho, Zang Hee ; Ra, Jong Beom ; Ye, Jong Chul
fYear :
2012
fDate :
Oct. 27 2012-Nov. 3 2012
Firstpage :
3430
Lastpage :
3433
Abstract :
Dynamic positron emission tomography (PET) is widely used to identify metabolism over time. However, conventional reconstruction algorithm provides a noisy reconstruction due to the lack of photon counts in each frame. Therefore, the main goal of this paper is to develop a novel spatio-temporal regularization approach that exploits inherent similarities within intra- and inter- frames. One of the main contributions of this paper is to demonstrate that such correlations can be exploited using a low rank constraint of overlapping similarity blocks. The resulting optimization framework is, however, non-smooth and non Lipschitz due to the low-rank penalty terms and Poisson log-likelihood. Therefore, we propose a novel globally convergent optimization method using the concave-convex procedure (CCCP) by exploiting Legendre-Fenchel transform.We confirm that the proposed algorithm can provide significantly improved image quality.
Keywords :
Poisson equation; image reconstruction; medical image processing; optimisation; positron emission tomography; Legendre-Fenchel transform; Poisson log-likelihood; concave-convex procedure; conventional reconstruction algorithm; convergent optimization method; dynamic 3D PET reconstruction; dynamic positron emission tomography; image quality; kinetic analysis; low rank constraint; low-rank penalty terms; noisy reconstruction; optimization framework; patch-based low-rank penalty; photon counts; spatio-temporal regularization approach;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Nuclear Science Symposium and Medical Imaging Conference (NSS/MIC), 2012 IEEE
Conference_Location :
Anaheim, CA
ISSN :
1082-3654
Print_ISBN :
978-1-4673-2028-3
Type :
conf
DOI :
10.1109/NSSMIC.2012.6551782
Filename :
6551782
Link To Document :
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