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并行磁共振成像中的噪声估计:GRAPPA和SENSE

Noise estimation in parallel MRI: GRAPPA and SENSE.

作者信息

Aja-Fernández Santiago, Vegas-Sánchez-Ferrero Gonzalo, Tristán-Vega Antonio

机构信息

LPI, ETSI Telecomunicación, Universidad de Valladolid, Spain.

出版信息

Magn Reson Imaging. 2014 Apr;32(3):281-90. doi: 10.1016/j.mri.2013.12.001. Epub 2013 Dec 7.

Abstract

Parallel imaging methods allow to increase the acquisition rate via subsampled acquisitions of the k-space. SENSE and GRAPPA are the most popular reconstruction methods proposed in order to suppress the artifacts created by this subsampling. The reconstruction process carried out by both methods yields to a variance of noise value which is dependent on the position within the final image. Hence, the traditional noise estimation methods - based on a single noise level for the whole image - fail. In this paper we propose a novel methodology to estimate the spatial dependent pattern of the variance of noise in SENSE and GRAPPA reconstructed images. In both cases, some additional information must be known beforehand: the sensitivity maps of each receiver coil in the SENSE case and the reconstruction coefficients for GRAPPA.

摘要

并行成像方法允许通过对k空间进行欠采样采集来提高采集速率。灵敏度编码(SENSE)和广义自校准部分并行采集(GRAPPA)是为抑制这种欠采样所产生的伪影而提出的最常用的重建方法。这两种方法所执行的重建过程会产生一个噪声值方差,该方差取决于最终图像中的位置。因此,基于整个图像单一噪声水平的传统噪声估计方法失效。在本文中,我们提出了一种新颖的方法来估计SENSE和GRAPPA重建图像中噪声方差的空间相关模式。在这两种情况下,都必须事先知道一些额外信息:SENSE情况下每个接收线圈的灵敏度图以及GRAPPA的重建系数。

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