Department of Radiology, University of Iowa, Iowa City, IA, United States of America.
Department of Radiology, University of Iowa, Iowa City, IA, United States of America.
Magn Reson Imaging. 2024 Sep;111:57-66. doi: 10.1016/j.mri.2024.04.003. Epub 2024 Apr 8.
To develop acceleration strategies for 3D multi-slab diffusion weighted imaging (3D ms-DWI) for enabling applications that require simultaneously high spatial (1 mm isotropic) and angular (> 30 directions) resolutions.
3D ms-DWI offers high SNR-efficiency, with the ability to achieve high isotropic spatial resolution, yet suffers from long scan-times for studies requiring high angular resolutions. We develop 6D k-q space acceleration strategies to reduce the scan-time. Specifically, we develop non-uniform 3D k-k under-sampling employing a shot-selective 2D CAIPI sampling approach. To achieve inter-shot phase-compensation, 2D navigators were employed that utilize the same CAIPI trajectory. An iterative model-based 3D multi-shot reconstruction was designed by incorporating phase into the forward encoding process. Additionally, the shot-selective non-uniform k-k CAIPI acceleration was randomized along the q-dimension. The 3D model-based multi-shot reconstruction is then extended to a joint reconstruction that simultaneously reconstructs all the q-space points, with the help of a spatial total variation and deep-learned q-space regularization.
The proposed reconstruction is shown to achieve adequate phase-compensation in both 2D CAIPI accelerated and additional k-k under-sampled cases. Using retrospective under-sampling experiments, we show that k-q accelerations close a factor of 12 can be achieved with a reconstruction error < 3% for both single and multi-shell data. This translates to a scan-time reduction by 3-fold for experiments with simultaneously high spatial and angular resolutions.
The proposed method facilitates the utilization of 3D ms-DWI for simultaneously high k-q resolution applications with close to 3× reduced scan-time.
为实现同时具有高空间(1 毫米各向同性)和高角度(>30 个方向)分辨率的应用,开发三维多切片扩散加权成像(3D ms-DWI)的加速策略。
3D ms-DWI 具有高 SNR 效率,能够实现高各向同性空间分辨率,但对于需要高角度分辨率的研究而言,扫描时间较长。我们开发了 6D k-q 空间加速策略来减少扫描时间。具体来说,我们采用基于选择性二维 CAIPI 采样的非均匀三维 k-k 欠采样方法。为了实现各次激发之间的相位补偿,我们采用了二维导航器,利用相同的 CAIPI 轨迹。通过将相位纳入正向编码过程,设计了基于迭代模型的三维多激发重建。此外,沿着 q 维随机化了基于选择性激发的非均匀 k-k CAIPI 加速。然后,在空间全变分和深度学习 q 空间正则化的帮助下,将基于模型的三维多激发重建扩展到同时重建所有 q 空间点的联合重建。
所提出的重建方法在二维 CAIPI 加速和额外的 k-k 欠采样情况下均能实现充分的相位补偿。通过回顾性欠采样实验,我们表明对于单壳和多壳数据,均可实现接近 12 倍的 k-q 加速,重建误差<3%。这意味着对于同时具有高空间和高角度分辨率的实验,扫描时间可减少 3 倍。
该方法促进了 3D ms-DWI 在具有接近 3 倍扫描时间减少的同时具有高 k-q 分辨率应用中的应用。