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Spatio-Temporal Regularization for Longitudinal Registration to Subject-Specific 3d Template

机译:纵向注册到特定主题的3d模板的时空正则化

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摘要

Neurodegenerative diseases such as Alzheimer's disease present subtle anatomical brain changes before the appearance of clinical symptoms. Manual structure segmentation is long and tedious and although automatic methods exist, they are often performed in a cross-sectional manner where each time-point is analyzed independently. With such analysis methods, bias, error and longitudinal noise may be introduced. Noise due to MR scanners and other physiological effects may also introduce variability in the measurement. We propose to use 4D non-linear registration with spatio-temporal regularization to correct for potential longitudinal inconsistencies in the context of structure segmentation. The major contribution of this article is the use of individual template creation with spatio-temporal regularization of the deformation fields for each subject. We validate our method with different sets of real MRI data, compare it to available longitudinal methods such as FreeSurfer, SPM12, QUARC, TBM, and KNBSI, and demonstrate that spatially local temporal regularization yields more consistent rates of change of global structures resulting in better statistical power to detect significant changes over time and between populations.
机译:神经退行性疾病(例如阿尔茨海默氏病)在出现临床症状之前会表现出微妙的大脑解剖变化。手动结构分割是漫长而乏味的,尽管存在自动方法,但是它们通常以横截面的方式执行,其中每个时间点都是独立分析的。使用这种分析方法,可能会引入偏差,误差和纵向噪声。由MR扫描仪引起的噪声和其他生理效应也可能会导致测量变化。我们建议使用带有时空正则化的4D非线性配准,以纠正结构分割情况下潜在的纵向不一致。本文的主要贡献是使用单个模板创建并针对每个主题对变形场进行时空正则化。我们使用不同的真实MRI数据集验证了我们的方法,并将其与可用的纵向方法(例如FreeSurfer,SPM12,QUARARC,TBM和KNBSI)进行了比较,并证明了空间局部时间正则化可产生更一致的全局结构变化率,从而产生更好的结果具有统计能力,可以检测一段时间内以及不同人群之间的重大变化。

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