Motion Adaptive Patch-Based Low-Rank Approach for Compressed Sensing Cardiac Cine MRI

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One of the technical challenges in cine magnetic resonance imaging (MRI) is to reduce the acquisition time to enable the high spatio-temporal resolution imaging of a cardiac volume within a short scan time. Recently, compressed sensing approaches have been investigated extensively for highly accelerated cine MRI by exploiting transform domain sparsity using linear transforms such as wavelets, and Fourier. However, in cardiac cine imaging, the cardiac volume changes significantly between frames, and there often exist abrupt pixel value changes along time. In order to effectively sparsify such temporal variations, it is necessary to exploit temporal redundancy along motion trajectories. This paper introduces a novel patch-based reconstruction method to exploit geometric similarities in the spatio-temporal domain. In particular, we use a low rank constraint for similar patches along motion, based on the observation that rank structures are relatively less sensitive to global intensity changes, but make it easier to capture moving edges. A Nash equilibrium formulation with relaxation is employed to guarantee convergence. Experimental results show that the proposed algorithm clearly reconstructs important anatomical structures in cardiac cine image and provides improved image quality compared to existing state-of-the-art methods such as k-t FOCUSS, k-t SLR, and MASTeR.
Publisher
IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
Issue Date
2014-11
Language
English
Article Type
Article
Keywords

K-T FOCUSS; DYNAMIC MRI; IMAGE-RECONSTRUCTION; SIGNAL RECONSTRUCTION; SPIRAL CT; SPARSE; ALGORITHM; REGULARIZATION; REPRESENTATION; OPTIMIZATION

Citation

IEEE TRANSACTIONS ON MEDICAL IMAGING, v.33, no.11, pp.2069 - 2085

ISSN
0278-0062
DOI
10.1109/TMI.2014.2330426
URI
http://hdl.handle.net/10203/193810
Appears in Collection
AI-Journal Papers(저널논문)
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