首页> 外文会议>International Conference on Medical Image Computing and Computer-Assisted Intervention >Low-Rank and Sparse Matrix Decomposition for Compressed Sensing Reconstruction of Magnetic Resonance 4D Phase Contrast Blood Flow Imaging (LoSDeCoS 4D-PCI)
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Low-Rank and Sparse Matrix Decomposition for Compressed Sensing Reconstruction of Magnetic Resonance 4D Phase Contrast Blood Flow Imaging (LoSDeCoS 4D-PCI)

机译:磁共振4D相位对比血流成像压缩检测重建的低秩和稀疏矩阵分解(Losdecos 4D-PCI)

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Blood flow measurements using 4D Phase Contrast blood flow imaging (PCI) provide an excellent fully non-invasive technique to assess the hemodynamics clinically in-vivo. Iterative reconstruction techniques combined with parallel MRI have been proposed to reduce the data acquisition time, which is the biggest drawback of 4D PCI. The novel LoSDeCoS technique combines these ideas with the separation into a low-rank and a sparse component. The high-dimensionality of the PC data renders it ideally suited for this approach. The proposed method is not limited to a single body region, but can be applied to any 4D flow measurement. The benefits of the new method are twofold: It allows to significantly accelerate the acquisition; and generates additional images highlighting temporal and directional flow changes. Reduction in acquisition time improves patient comfort and can be used to achieve better temporal or spatial resolution, which in turn allows more precise calculations of clinically important quantitative numbers such as flow rates or the wall shear stress. With LoSDeCoS, acceleration factors of 6-8 were achieved for 16 in-vivo datasets of both the carotid artery (6 datasets) and the aorta (10 datasets), while decreasing the Normalized Root Mean Square Error by over 10% compared to a standard iterative reconstruction and by achieving similarity values of over 0.93. Inflow-Outflow phantom experiments showed good parabolic profiles and an excellent mass conservation.
机译:使用4D相位对比血流成像(PCI)的血流测量提供了一种出色的完全非侵入性技术,可在临床上评估血液动力学。已经提出了与并行MRI相结合的迭代重建技术来减少数据采集时间,这是4D PCI的最大缺点。新颖的Losdecos技术将这些想法与分离成低级别和稀疏部件。 PC数据的高维品使其理想地适合这种方法。所提出的方法不限于单个体区域,而是可以应用于任何4D流量测量。新方法的好处是双重的:它允许显着加速收购;并产生突出显示时间和定向流的其他图像。减少采集时间可提高患者的舒适性,并且可用于实现更好的时间或空间分辨率,这又允许更精确计算临床上重要的定量数字,例如流速或墙壁剪切应力。对于洛斯科斯,颈动脉(6个数据集)和主动脉(10个数据集)的16个体内数据集实现了6-8的加速因子,同时与标准相比将归一化的根均线误差降低超过10%迭代重建,实现相似值超过0.93。流入流出幻像实验显示出良好的抛物面曲线和优异的大规模保护。

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