作者
Bo Liu, Kevin King, Michael Steckner, Jun Xie, Jinhua Sheng, Leslie Ying
发表日期
2009/1
期刊
Magnetic Resonance in Medicine: An Official Journal of the International Society for Magnetic Resonance in Medicine
卷号
61
期号
1
页码范围
145-152
出版商
Wiley Subscription Services, Inc., A Wiley Company
简介
In parallel imaging, the signal‐to‐noise ratio (SNR) of sensitivity encoding (SENSE) reconstruction is usually degraded by the ill‐conditioning problem, which becomes especially serious at large acceleration factors. Existing regularization methods have been shown to alleviate the problem. However, they usually suffer from image artifacts at high acceleration factors due to the large data inconsistency resulting from heavy regularization. In this paper, we propose Bregman iteration for SENSE regularization. Unlike the existing regularization methods where the regularization function is fixed, the method adaptively updates the regularization function using the Bregman distance at different iterations, such that the iteration gradually removes the aliasing artifacts and recovers fine structures before the noise finally comes back. With a discrepancy principle as the stopping criterion, our results demonstrate that the …
引用总数
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学术搜索中的文章
B Liu, K King, M Steckner, J Xie, J Sheng, L Ying - Magnetic Resonance in Medicine: An Official Journal of …, 2009