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使用优化的可控局部并行采集(CAIPI)采样和结构化低秩重建估计导航器的自导航3D扩散磁共振成像

Self-Navigated 3D Diffusion MRI Using an Optimized CAIPI Sampling and Structured Low-Rank Reconstruction Estimated Navigator.

作者信息

Li Ziyu, Miller Karla L, Chen Xi, Chiew Mark, Wu Wenchuan

出版信息

IEEE Trans Med Imaging. 2025 Feb;44(2):632-644. doi: 10.1109/TMI.2024.3454994. Epub 2025 Feb 4.

Abstract

3D multi-slab acquisitions are an appealing approach for diffusion MRI because they are compatible with the imaging regime delivering optimal SNR efficiency. In conventional 3D multi-slab imaging, shot-to-shot phase variations caused by motion pose challenges due to the use of multi-shot k-space acquisition. Navigator acquisition after each imaging echo is typically employed to correct phase variations, which prolongs scan time and increases the specific absorption rate (SAR). The aim of this study is to develop a highly efficient, self-navigated method to correct for phase variations in 3D multi-slab diffusion MRI without explicitly acquiring navigators. The sampling of each shot is carefully designed to intersect with the central kz=0 plane of each slab, and the multi-shot sampling is optimized for self-navigation performance while retaining decent reconstruction quality. The kz=0 intersections from all shots are jointly used to reconstruct a 2D phase map for each shot using a structured low-rank constrained reconstruction that leverages the redundancy in shot and coil dimensions. The phase maps are used to eliminate the shot-to-shot phase inconsistency in the final 3D multi-shot reconstruction. We demonstrate the method's efficacy using retrospective simulations and prospectively acquired in-vivo experiments at 1.22 mm and 1.09 mm isotropic resolutions. Compared to conventional navigated 3D multi-slab imaging, the proposed self-navigated method achieves comparable image quality while shortening the scan time by 31.7% and improving the SNR efficiency by 15.5%. The proposed method produces comparable quality of DTI and white matter tractography to conventional navigated 3D multi-slab acquisition with a much shorter scan time.

摘要

3D多层面采集是扩散磁共振成像的一种有吸引力的方法,因为它们与提供最佳信噪比效率的成像方式兼容。在传统的3D多层面成像中,由于使用多激发k空间采集,运动引起的逐次激发相位变化带来了挑战。通常在每次成像回波后采用导航采集来校正相位变化,这会延长扫描时间并增加比吸收率(SAR)。本研究的目的是开发一种高效的自导航方法,用于校正3D多层面扩散磁共振成像中的相位变化,而无需明确采集导航信号。精心设计每次激发的采样,使其与每个层面的中心kz = 0平面相交,并且对多激发采样进行优化以实现自导航性能,同时保持良好的重建质量。利用结构化低秩约束重建,联合所有激发的kz = 0交点来为每次激发重建一个二维相位图,该重建利用了激发和线圈维度上的冗余信息。这些相位图用于消除最终3D多激发重建中逐次激发的相位不一致性。我们使用回顾性模拟和前瞻性采集的体内实验,在1.22毫米和1.09毫米各向同性分辨率下证明了该方法的有效性。与传统的导航3D多层面成像相比,所提出的自导航方法在缩短31.7%扫描时间并提高15.5%信噪比效率的同时,实现了可比的图像质量。所提出的方法在扫描时间短得多的情况下,产生的扩散张量成像(DTI)和白质纤维束成像质量与传统导航3D多层面采集相当。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/abf7/7616616/123d788f79ca/EMS198501-f001.jpg

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