论文标题

使用尺寸还原的优化技术加速局部可分离模型,用于超快速心脏MRI

Accelerated partial separable model using dimension-reduced optimization technique for ultra-fast cardiac MRI

论文作者

Li, Zhongsen, Sun, Aiqi, Liu, Chuyu, Wei, Haining, Wang, Shuai, Fu, Mingzhu, Li, Rui

论文摘要

客观的。具有高时间分辨率的成像动态对象在磁共振成像(MRI)中具有挑战性。提出了部分可分离(PS)模型,以通过降低反问题的自由度来提高成像质量。但是,PS模型仍然遭受较长的收购时间甚至更长的重建时间。这项研究的主要目的是加速PS模型,缩短获取和重建所需的时间,并同时保持良好的图像质量。方法。我们提议完全利用PS模型的尺寸缩小属性,这意味着在子空间中实现优化算法。我们优化了数据一致性项,并根据时间差异的Frobenius规范使用了Tikhonov正则化项。提出的减少尺寸的优化技术在自由运行的心脏MRI中得到了验证。我们已经在公共数据集上进行了回顾性实验,又进行了Vivo数据的前瞻性实验。将提出的方法与基于PS模型的四种竞争算法和两种非PS模型方法进行了比较。主要结果。提出的方法在缩短获取时间或次优的高参数设置方面具有良好的性能,并且比所有其他竞争算法都能达到优越的图像质量。所提出的方法比广泛接受的PS+稀疏方法快20倍,使图像重建能够在短短几秒钟内完成。意义。加速的PS模型有可能节省大量时间进行临床动态MRI检查,并有望实时使用MRI应用。

Objective. Imaging dynamic object with high temporal resolution is challenging in magnetic resonance imaging (MRI). Partial separable (PS) model was proposed to improve the imaging quality by reducing the degrees of freedom of the inverse problem. However, PS model still suffers from long acquisition time and even longer reconstruction time. The main objective of this study is to accelerate the PS model, shorten the time required for acquisition and reconstruction, and maintain good image quality simultaneously. Approach. We proposed to fully exploit the dimension reduction property of the PS model, which means implementing the optimization algorithm in subspace. We optimized the data consistency term, and used a Tikhonov regularization term based on the Frobenius norm of temporal difference. The proposed dimension-reduced optimization technique was validated in free-running cardiac MRI. We have performed both retrospective experiments on public dataset and prospective experiments on in-vivo data. The proposed method was compared with four competing algorithms based on PS model, and two non-PS model methods. Main results. The proposed method has robust performance against shortened acquisition time or suboptimal hyper-parameter settings, and achieves superior image quality over all other competing algorithms. The proposed method is 20-fold faster than the widely accepted PS+Sparse method, enabling image reconstruction to be finished in just a few seconds. Significance. Accelerated PS model has the potential to save much time for clinical dynamic MRI examination, and is promising for real-time MRI applications.

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