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扩散磁共振成像中磁化率伪影及其与运动相互作用的定量评估。

Quantitative assessment of the susceptibility artefact and its interaction with motion in diffusion MRI.

作者信息

Graham Mark S, Drobnjak Ivana, Jenkinson Mark, Zhang Hui

机构信息

Centre for Medical Image Computing & Department of Computer Science, University College London, London, United Kingdom.

Wellcome Centre for Integrative Neuroimaging, FMRIB, Nuffield Department of Clinical Neurosciences, University of Oxford, Oxford, United Kingdom.

出版信息

PLoS One. 2017 Oct 2;12(10):e0185647. doi: 10.1371/journal.pone.0185647. eCollection 2017.

Abstract

In this paper we evaluate the three main methods for correcting the susceptibility-induced artefact in diffusion-weighted magnetic-resonance (DW-MR) data, and assess how correction is affected by the susceptibility field's interaction with motion. The susceptibility artefact adversely impacts analysis performed on the data and is typically corrected in post-processing. Correction strategies involve either registration to a structural image, the application of an acquired field-map or the use of additional images acquired with different phase-encoding. Unfortunately, the choice of which method to use is made difficult by the absence of any systematic comparisons of them. In this work we quantitatively evaluate these methods, by extending and employing a recently proposed framework that allows for the simulation of realistic DW-MR datasets with artefacts. Our analysis separately evaluates the ability for methods to correct for geometric distortions and to recover lost information in regions of signal compression. In terms of geometric distortions, we find that registration-based methods offer the poorest correction. Field-mapping techniques are better, but are influenced by noise and partial volume effects, whilst multiple phase-encode methods performed best. We use our simulations to validate a popular surrogate metric of correction quality, the comparison of corrected data acquired with AP and LR phase-encoding, and apply this surrogate to real datasets. Furthermore, we demonstrate that failing to account for the interaction of the susceptibility field with head movement leads to increased errors when analysing DW-MR data. None of the commonly used post-processing methods account for this interaction, and we suggest this may be a valuable area for future methods development.

摘要

在本文中,我们评估了扩散加权磁共振(DW-MR)数据中校正磁化率诱导伪影的三种主要方法,并评估了校正如何受到磁化率场与运动相互作用的影响。磁化率伪影对数据进行的分析产生不利影响,通常在后期处理中进行校正。校正策略包括与结构图像配准、应用采集的场图或使用通过不同相位编码采集的额外图像。不幸的是,由于缺乏对这些方法的任何系统比较,使得选择使用哪种方法变得困难。在这项工作中,我们通过扩展和采用最近提出的一个框架来定量评估这些方法,该框架允许模拟带有伪影的逼真DW-MR数据集。我们的分析分别评估了这些方法校正几何失真以及恢复信号压缩区域中丢失信息的能力。在几何失真方面,我们发现基于配准的方法校正效果最差。场图技术较好,但受噪声和部分容积效应的影响,而多相位编码方法表现最佳。我们使用模拟来验证一种流行的校正质量替代指标,即比较用前后位(AP)和左右位(LR)相位编码采集的校正后数据,并将此替代指标应用于真实数据集。此外,我们证明在分析DW-MR数据时,若未考虑磁化率场与头部运动的相互作用会导致误差增加。常用的后期处理方法均未考虑这种相互作用,我们认为这可能是未来方法开发的一个有价值的领域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f851/5624609/6493eb2d774e/pone.0185647.g001.jpg

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