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A novel k-space annihilating filter method for unification between compressed sensing and parallel MRI

机译:压缩感知与并行MRI统一的新型k空间an灭滤波器方法

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In this paper, we propose a novel k-space method called ALOHA (Annihilating filter based LOw-rank Hankel matrix Approach) that unifies parallel imaging and compressed sensing as a k-space data interpolation problem. Specifically, ALOHA employs annihilating filter relationships originated from the intrinsic image property originated from the finite rate of innovation model, as well as the multi-coil acquisition physics. By interchanging the annihilating filter with the k-space measurement, a rank-deficient block Hankel structured matrix can be obtained, whose missing elements can be restored by a low rank matrix completion algorithm. To exploit the low rank Hankel structure, we develop an alternating direction method of multiplier (ADMM) method with initialisation from low rank matrix fitting (LMaFit) algorithm. Additionally, we develop a novel pyramidal representation of the Hankel structured matrix to reduce the computational complexity of the algorithm. ALOHA can be universally applied to compressed sensing MRI as well as parallel imaging for both static and dynamic applications. Experimental results with real in vivo data confirmed that ALOHA outperforms the existing state-of-the-art parallel and compressed sensing MRI.
机译:在本文中,我们提出了一种新的k空间方法,称为ALOHA(基于Ann灭滤波器的LOw-rank Hankel矩阵方法),它将并行成像和压缩感知统一为k空间数据插值问题。具体而言,ALOHA采用了消除滤镜关系,该滤镜关系源于源自有限创新率模型的内在图像属性,以及多线圈采集物理原理。通过将an灭滤波器与k-空间度量互换,可以获得秩不足的块Hankel结构矩阵,其缺失元素可以通过低秩矩阵完成算法来恢复。为了利用低秩汉克尔结构,我们开发了一种交替方向乘数方法(ADMM),并通过低秩矩阵拟合(LMaFit)算法进行了初始化。此外,我们开发了Hankel结构矩阵的新颖金字塔表示,以减少算法的计算复杂性。 ALOHA可以普遍应用于压缩感测MRI以及用于静态和动态应用的并行成像。具有真实体内数据的实验结果证实,ALOHA优于现有的最新并行和压缩传感MRI。

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