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在径向磁共振成像中使用空间投影矩进行自导航运动校正。

Self-navigated motion correction using moments of spatial projections in radial MRI.

作者信息

Welch Edward Brian, Rossman Phillip J, Felmlee Joel P, Manduca Armando

机构信息

MRI Research Laboratory, Department of Diagnostic Radiology, Mayo Clinic, Rochester, Minnesota 55905, USA.

出版信息

Magn Reson Med. 2004 Aug;52(2):337-45. doi: 10.1002/mrm.20151.

Abstract

Interest in radial MRI (also known as projection reconstruction (PR) MRI) has increased recently for uses such as fast scanning and undersampled acquisitions. Additionally, PR acquisitions offer intrinsic advantages over standard two-dimensional Fourier transform (2DFT) imaging with respect to motion of the imaged object. It is well known that aligning each spatial domain projection's center of mass (calculated using the 0th and 1st moments) to the center of the field of view (FOV) corrects shifts caused by in-plane translation. In this work, a previously unrealized ability to determine the in-plane rotational motion of an imaged object using the 2nd moments of the spatial domain projections in conjunction with a specific projection angle acquisition time order is reported. We performed the correction using only the PR data itself acquired with the newly proposed projection angle acquisition time order. With the proposed view angle acquisition order, the acquisition is "self-navigating" with respect to both in-plane translation and rotation. We reconstructed the images using the aligned projections and detected acquisition angles to significantly reduce image artifacts due to such motion. The theory of the correction technique is described, and its effectiveness is demonstrated in phantom and in vivo experiments.

摘要

近年来,人们对径向磁共振成像(也称为投影重建(PR)磁共振成像)的兴趣有所增加,其应用包括快速扫描和欠采样采集等。此外,与标准二维傅里叶变换(2DFT)成像相比,PR采集在成像对象运动方面具有内在优势。众所周知,将每个空间域投影的质心(使用零阶和一阶矩计算)与视野(FOV)中心对齐,可以校正平面内平移引起的偏移。在这项工作中,报告了一种以前未实现的能力,即结合特定的投影角度采集时间顺序,利用空间域投影的二阶矩来确定成像对象的平面内旋转运动。我们仅使用以新提出的投影角度采集时间顺序采集的PR数据本身进行校正。采用所提出的视角采集顺序,采集在平面内平移和旋转方面都是“自导航”的。我们使用对齐的投影重建图像并检测采集角度,以显著减少由于此类运动导致的图像伪影。描述了校正技术的原理,并在体模和体内实验中证明了其有效性。

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