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MRI of Moving Subjects Using Multislice Snapshot Images With Volume Reconstruction (SVR): Application to Fetal, Neonatal, and Adult Brain Studies

机译:使用体积重建(SVR)的多层快照图像对运动对象进行MRI:在胎儿,新生儿和成人脑研究中的应用

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摘要

Motion degrades magnetic resonance (MR) images and prevents acquisition of self-consistent and high-quality volume images. A novel methodology, Snapshot magnetic resonance imaging (MRI) with Volume Reconstruction (SVR) has been developed for imaging moving subjects at high resolution and high signal-to-noise ratio (SNR). The method combines registered 2-D slices from sequential dynamic single-shot scans. The SVR approach requires that the anatomy in question is not changing shape or size and is moving at a rate that allows snapshot images to be acquired. After imaging the target volume repeatedly to guarantee sufficient sampling every where, a robust slice-to-volume registration method has been implemented that achieves alignment of each slice within 0.3 mm in the examples tested. Multilevel scattered interpolation has been used to obtain high-fidelity reconstruction with root-mean-square (rms) error that is less than the noise level in the images. The SVR method has been performed successfully for brain studies on subjects that cannot stay still, and in some cases were moving substantially during scanning. For example, awake neonates, deliberately moved adults and, especially, on fetuses, for which no conventional high-resolution 3-D method is currently available. Fine structure of the in-utero fetal brain is clearly revealed for the first time and substantial SNR improvement is realized by having many individually acquired slices contribute to each voxel in the reconstructed image.
机译:运动会降低磁共振(MR)图像的质量,并阻止获取自洽且高质量的体积图像。已经开发了一种新颖的方法,即具有体积重建(SVR)的快照磁共振成像(MRI),可用于以高分辨率和高信噪比(SNR)成像运动对象。该方法结合了来自顺序动态单次扫描的配准二维切片。 SVR方法要求所讨论的解剖结构不改变形状或大小,并且以允许获取快照图像的速率移动。在对目标体积进行重复成像以确保每个位置都有足够的采样之后,已实施了一种健壮的逐块配准方法,该方法在测试的示例中实现了0.3 mm以内的每个切片的对齐。多级分散插值已用于获得均方根(rms)误差小于图像噪声水平的高保真度重建。 SVR方法已经成功地用于无法静止的受试者的大脑研究,并且在某些情况下在扫描过程中出现了明显的运动。例如,清醒的新生儿,故意移动的成年人,尤其是胎儿,目前尚无常规的高分辨率3-D方法。首次清楚地揭示了子宫内胎儿大脑的精细结构,并且通过使许多单独获取的切片对重建图像中的每个体素有所贡献,从而实现了显着的SNR改善。

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