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The Importance of Group-Wise Registration in Tract Based Spatial Statistics Study of Neurodegeneration: A Simulation Study in Alzheimers Disease

机译:仿真研究阿尔茨海默病:组地注册的神经变性的基于空间道统计研究中的重要性

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摘要

Tract-based spatial statistics (TBSS) is a popular method for the analysis of diffusion tensor imaging data. TBSS focuses on differences in white matter voxels with high fractional anisotropy (FA), representing the major fibre tracts, through registering all subjects to a common reference and the creation of a FA skeleton. This work considers the effect of choice of reference in the TBSS pipeline, which can be a standard template, an individual subject from the study, a study-specific template or a group-wise average. While TBSS attempts to overcome registration error by searching the neighbourhood perpendicular to the FA skeleton for the voxel with maximum FA, this projection step may not compensate for large registration errors that might occur in the presence of pathology such as atrophy in neurodegenerative diseases. This makes registration performance and choice of reference an important issue. Substantial work in the field of computational anatomy has shown the use of group-wise averages to reduce biases while avoiding the arbitrary selection of a single individual. Here, we demonstrate the impact of the choice of reference on: (a) specificity (b) sensitivity in a simulation study and (c) a real-world comparison of Alzheimer's disease patients to controls. In (a) and (b), simulated deformations and decreases in FA were applied to control subjects to simulate changes of shape and WM integrity similar to what would be seen in AD patients, in order to provide a “ground truth” for evaluating the various methods of TBSS reference. Using a group-wise average atlas as the reference outperformed other references in the TBSS pipeline in all evaluations.
机译:基于道的空间统计(TBSS)是一种用于分析扩散张量成像数据的流行方法。 TBSS通过将所有受试者注册为一个共同的参考文献并创建FA骨架,着重于代表主要纤维束的具有高分数各向异性(FA)的白质体素的差异。这项工作考虑了TBSS管道中参考文献选择的影响,该参考文献可以是标准模板,研究中的单个受试者,研究特定的模板或分组平均值。尽管TBSS试图通过在垂直于FA骨架的邻域中搜索具有最大FA的体素来克服配准错误,但此投影步骤可能无法补偿在病理性疾病(例如神经退行性疾病的萎缩)中可能发生的大配准错误。这使注册性能和参考选择成为重要问题。计算解剖学领域的大量工作表明,使用逐组平均数可减少偏差,同时避免任意选择单个个体。在这里,我们证明了参考文献的选择对以下方面的影响:(a)特异性(b)在模拟研究中的敏感性,以及(c)阿尔茨海默氏病患者与对照组的真实比较。在(a)和(b)中,将模拟的变形和FA的减少应用于对照受试者,以模拟形状和WM完整性的变化,类似于AD患者所见,以提供“基本事实”来评估TBSS参考的各种方法。在所有评估中,使用逐组平均图集作为参考都优于TBSS管道中的其他参考。

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