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用于高分辨率心脏电影磁共振成像的径向k-t FOCUSS技术

Radial k-t FOCUSS for high-resolution cardiac cine MRI.

作者信息

Jung Hong, Park Jaeseok, Yoo Jaeheung, Ye Jong Chul

机构信息

Bio-Imaging and Signal Processing Laboratory, Department of Bio and Brain Engineering, Korea Advanced Institute of Science and Technology (KAIST), Republic of Korea.

出版信息

Magn Reson Med. 2010 Jan;63(1):68-78. doi: 10.1002/mrm.22172.

Abstract

A compressed sensing dynamic MR technique called k-t FOCUSS (k-t FOCal Underdetermined System Solver) has been recently proposed. It outperforms the conventional k-t BLAST/SENSE (Broad-use Linear Acquisition Speed-up Technique/SENSitivity Encoding) technique by exploiting the sparsity of x-f signals. This paper applies this idea to radial trajectories for high-resolution cardiac cine imaging. Radial trajectories are more suitable for high-resolution dynamic MRI than Cartesian trajectories since there is smaller tradeoff between spatial resolution and number of views if streaking artifacts due to limited views can be resolved. As shown for Cartesian trajectories, k-t FOCUSS algorithm efficiently removes artifacts while preserving high temporal resolution. k-t FOCUSS algorithm applied to radial trajectories is expected to enhance dynamic MRI quality. Rather than using an explicit gridding method, which transforms radial k-space sampling data to Cartesian grid prior to applying k-t FOCUSS algorithms, we use implicit gridding during FOCUSS iterations to prevent k-space sampling errors from being propagated. In addition, motion estimation and motion compensation after the first FOCUSS iteration were used to further sparsify the residual image. By applying an additional k-t FOCUSS step to the residual image, improved resolution was achieved. In vivo experimental results show that this new method can provide high spatiotemporal resolution even from a very limited radial data set.

摘要

最近提出了一种称为k-t FOCUSS(k-t焦点欠定系统求解器)的压缩感知动态磁共振技术。它通过利用x-f信号的稀疏性,性能优于传统的k-t BLAST/SENSE(广泛使用的线性采集加速技术/灵敏度编码)技术。本文将这一理念应用于径向轨迹,用于高分辨率心脏电影成像。径向轨迹比笛卡尔轨迹更适合高分辨率动态磁共振成像,因为如果能解决因视图有限而产生的条纹伪影,那么在空间分辨率和视图数量之间的权衡就会更小。如笛卡尔轨迹所示,k-t FOCUSS算法在保持高时间分辨率的同时有效地去除了伪影。应用于径向轨迹的k-t FOCUSS算法有望提高动态磁共振成像质量。我们不是使用显式网格化方法,即在应用k-t FOCUSS算法之前将径向k空间采样数据转换为笛卡尔网格,而是在FOCUSS迭代期间使用隐式网格化,以防止k空间采样误差传播。此外,在第一次FOCUSS迭代后进行运动估计和运动补偿,以进一步稀疏残差图像。通过对残差图像应用额外的k-t FOCUSS步骤,实现了分辨率的提高。体内实验结果表明,即使从非常有限的径向数据集,这种新方法也能提供高时空分辨率。

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