DocumentCode :
743686
Title :
Higher-Order Motion-Compensation for In Vivo Cardiac Diffusion Tensor Imaging in Rats
Author :
Welsh, Christopher L. ; DiBella, Edward V. R. ; Hsu, Edward W.
Author_Institution :
Dept. of Bioeng., Univ. of Utah, Salt Lake City, UT, USA
Volume :
34
Issue :
9
fYear :
2015
Firstpage :
1843
Lastpage :
1853
Abstract :
Motion of the heart has complicated in vivo applications of cardiac diffusion MRI and diffusion tensor imaging (DTI), especially in small animals such as rats where ultra-high-performance gradient sets are currently not available. Even with velocity compensation via, for example, bipolar encoding pulses, the variable shot-to-shot residual motion-induced spin phase can still give rise to pronounced artifacts. This study presents diffusion-encoding schemes that are designed to compensate for higher-order motion components, including acceleration and jerk, which also have the desirable practical features of minimal TEs and high achievable b-values. The effectiveness of these schemes was verified numerically on a realistic beating heart phantom, and demonstrated empirically with in vivo cardiac diffusion MRI in rats. Compensation for acceleration, and lower motion components, was found to be both necessary and sufficient for obtaining diffusion-weighted images of acceptable quality and SNR, which yielded the first in vivo cardiac DTI demonstrated in the rat. These findings suggest that compensation for higher order motion, particularly acceleration, can be an effective alternative solution to high-performance gradient hardware for improving in vivo cardiac DTI.
Keywords :
biodiffusion; biomedical MRI; cardiology; image denoising; medical image processing; motion compensation; phantoms; SNR; bipolar encoding pulses; diffusion-encoding schemes; diffusion-weighted imaging; heart motion; high achievable b-values; high order motion; high-order motion components; high-order motion-compensation; high-performance gradient hardware; in vivo cardiac DTI; in vivo cardiac diffusion MRI; in vivo cardiac diffusion tensor imaging; realistic beating heart phantom; shot-shot residual motion-induced spin phase; ultrahigh-performance gradient sets; velocity compensation; Acceleration; Animals; Diffusion tensor imaging; Encoding; Heart; In vivo; Cardiac imaging; animal models and imaging; diffusion tensor imaging; diffusion weighted imaging; heart; magnetic resonance imaging; motion compensation and analysis;
fLanguage :
English
Journal_Title :
Medical Imaging, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0062
Type :
jour
DOI :
10.1109/TMI.2015.2411571
Filename :
7056461
Link To Document :
بازگشت