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A Robust Self-navigation for Respiratory Gating in 3D Radial Ultrashort Echo-time Lung MRI using Concurrent Dephasing and Excitation

Title
A Robust Self-navigation for Respiratory Gating in 3D Radial Ultrashort Echo-time Lung MRI using Concurrent Dephasing and Excitation
Authors
Park J.Lee S.Shin T.Oh S.-H.Park J.-Y.
Ewha Authors
신태훈
SCOPUS Author ID
신태훈scopus
Issue Date
2018
Journal Title
Journal of the Korean Physical Society
ISSN
0374-4884JCR Link
Citation
Journal of the Korean Physical Society vol. 73, no. 1, pp. 138 - 144
Keywords
3D radial ultrashort echo-time imagingLung MRIRespiratory gatingSelf-navigation
Publisher
The Korean Physical Society
Indexed
SCIE; SCOPUS; KCI WOS scopus
Document Type
Article
Abstract
Three-dimensional ultrashort echo-time (UTE) imaging with radial k-space acquisition is a well-known MR imaging technique that generates comparable lung images to X-ray and computed tomography (CT). Although researchers have sought to minimize the incidence of motion artifacts, there is still a need to accomplish further reduction of motion artifacts through respiratory gating. In this study, we introduce a robust self-navigation for respiratory gating in 3D radial UTE lung imaging especially based on concurrent dephasing and excitation (CODE). To reduce the baseline fluctuation of self-navigated respiratory signals as well as the dependence on the position of the navigating echoes in the k-space trajectories, both of which originate from varying degrees of steadystate condition outside the fully excited regions of a spin system in CODE-MRI, we proposed a new self-navigation method which applies dual navigating echoes successively in the superior-inferior direction and takes the second navigating echoes for respiratory-motion tracking. The phantom and human experimental results showed that the proposed method successfully suppressed the baseline fluctuations of the navigating-echo signals and the resulting respiratory signals, thereby reducing the respiratory-motion artifacts like blurring in the human lung images thanks to the improved respiratory gating. © 2018, The Korean Physical Society.
DOI
10.3938/jkps.73.138
Appears in Collections:
공과대학 > 휴먼기계바이오공학과 > Journal papers
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