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Compressed Sensing With Wavelet Domain Dependencies for Coronary MRI: A Retrospective Study

机译:小波域相关性的冠状动脉MRI压缩感知:回顾性研究。

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摘要

Coronary magnetic resonance imaging (MRI) is a noninvasive imaging modality for diagnosis of coronary artery disease. One of the limitations of coronary MRI is its long acquisition time due to the need of imaging with high spatial resolution and constraints on respiratory and cardiac motions. Compressed sensing (CS) has been recently utilized to accelerate image acquisition in MRI. In this paper, we develop an improved CS reconstruction method, Bayesian least squares-Gaussian scale mixture (BLS-GSM), that uses dependencies of wavelet domain coefficients to reduce the observed blurring and reconstruction artifacts in coronary MRI using traditional $ell_{1}$ regularization. Images of left and right coronary MRI was acquired in 7 healthy subjects with fully-sampled k-space data. The data was retrospectively undersampled using acceleration rates of 2, 4, 6, and 8 and reconstructed using $ell_{1}$ thresholding, $ell_{1}$ minimization and BLS-GSM thresholding. Reconstructed right and left coronary images were compared with fully-sampled reconstructions in vessel sharpness and subjective image quality (1–4 for poor-excellent). Mean square error (MSE) was also calculated for each reconstruction. There were no significant differences between the fully sampled image score versus rate 2, 4, or 6 for BLS-GSM for both right and left coronaries $(={rm N.S.})$. However, for $ell_{1}$ thresholding significant differences $(p<0.05)$ were observed for rates higher than 2 and 4 for right and left coronaries respectively. $e ll_{1}$ minimization also yields images with lower scores compared to the reference for rates higher than 4 for both coronaries. These results were consistent with the quantitative vessel sharpness readings. BLS-GSM allows acceleration of coronary MRI with acceleration rates beyond what can be achieved with $ell_{1}$ regularization.
机译:冠状动脉磁共振成像(MRI)是诊断冠状动脉疾病的一种非侵入性成像方式。冠状动脉MRI的局限性之一是由于需要高空间分辨率成像以及对呼吸和心脏运动的限制,因此获取时间长。最近已经利用压缩传感(CS)来加速MRI中的图像采集。在本文中,我们开发了一种改进的CS重建方法,即贝叶斯最小二乘-高斯尺度混合(BLS-GSM),该方法使用小波域系数的相关性来减少使用传统$ ell_ {1}在冠状动脉MRI中观察到的模糊和重建伪像$正则化。左冠状动脉MRI和右冠状动脉MRI的图像是在7名健康受试者中采集的,其中包括完整采样的k空间数据。使用2、4、6和8的加速率对数据进行追溯欠采样,并使用$ ell_ {1} $阈值,$ ell_ {1} $最小化和BLS-GSM阈值重建。将重建的左右冠状动脉图像与完全采样的重建图像在血管清晰度和主观图像质量上进行比较(优劣为1-4)。还为每个重建计算均方误差(MSE)。对于左右冠状动脉$(= {rm N.S。})$,BLS-GSM的完全采样图像得分与速率2、4或6之间没有显着差异。但是,对于$ ell_ {1} $的阈值显着性差异,右冠状动脉和左冠状动脉的比率分别高于2和4时观察到$(p <0.05)$。 $ e ll_ {1} $最小化也会产生比参考值低的图像(两个冠状动脉的比率均高于4)。这些结果与定量的容器锐度读数一致。 BLS-GSM可以以超过ell_ {1} $正则化所不能达到的加速度来加速冠状核磁共振成像。

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