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Accelerating cardiac diffusion tensor imaging combining local low-rank and 3D TV constraint

机译:加速局部低级和3D电视约束结合的心脏扩散张量成像

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Objective Diffusion tensor magnetic resonance imaging (DT-MRI, or DTI) is a promising technique for invasively probing biological tissue structures. However, DTI is known to suffer from much longer acquisition time with respect to conventional MRI and the problem is worsened when dealing with in vivo acquisitions. Therefore, faster DTI for both ex vivo and in vivo scans is highly desired. Materials and methods This paper proposes a new compressed sensing (CS) reconstruction method that employs local low-rank (LLR) model and three-dimensional (3D) total variation (TV) constraint to reconstruct cardiac diffusion-weighted (DW) images from highly undersampled k-space data. The LLR model takes the set of DW images corresponding to different diffusion gradient directions as a 3D image volume and decomposes the latter into overlapping 3D blocks. Then, the 3D blocks are stacked as two-dimensional (2D) matrix. Finally, low-rank property is applied to each block matrix and the 3D TV constraint to the 3D image volume. The underlying constrained optimization problem is finally solved using the firstorder fast method. The proposed method is evaluated on real ex vivo cardiac DTI data as a prerequisite to in vivo cardiac DTI applications. Results The results on real human ex vivo cardiac DTI images demonstrate that the proposed method exhibits lower reconstruction errors for DTI indices, including fractional anisotropy (FA), mean diffusivities (MD), transverse angle (TA), and helix angle (HA), compared to existing CS-based DTI image reconstruction techniques. Conclusion The proposed method provides better reconstruction quality and more accurate DTI indices in comparison with the state-of-the-art CS-based DW image reconstruction methods.
机译:客观扩散张量磁共振成像(DT-MRI或DTI)是一种有希望的侵入性探测生物组织结构的技术。然而,已知DTI在处理体内采集时遭受常规MRI的更长的采集时间,并且该问题在处理时恶化。因此,非常需要更快地进行exvivo和体内扫描的DTI。材料和方法本文提出了一种新的压缩感测(CS)重建方法,该方法采用本地低秩(LLR)模型和三维(3D)总变化(TV)约束来重建来自高度的心脏扩散加权(DW)图像under采样的k空间数据。 LLR模型将对应于不同扩散梯度方向的DW图像集合作为3D图像体积,并将后者分解成重叠的3D块。然后,3D块被堆叠为二维(2D)矩阵。最后,将低秩属性应用于每个块矩阵和3D电视约束到3D图像卷。底层约束优化问题最终使用第一令快速方法解决。该方法是在真实的前体内心脏DTI数据中评估作为体内心脏DTI应用的先决条件。结果实际人类前体内心脏DTI图像的结果表明,所提出的方法对DTI指数的重建误差较低,包括分数各向异性(FA),平均扩散性(MD),横向角度(TA)和螺旋角(HA),与现有的基于CS的DTI图像重建技术相比。结论与基于最先进的CS的DW图像重建方法相比,该方法提供了更好的重建质量和更准确的DTI指标。

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