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IMPROVING FLUID REGISTRATION THROUGH WHITE MATTER SEGMENTATION IN A TWIN STUDY DESIGN

机译:在双胞胎研究设计中通过白色物质分离改善流体配准

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Robust and automatic non-rigid registration depends on many parameters that have not yet been systematically explored. Here we determined how tissue classification influences non-linear fluid registration of brain MRI. Twin data is ideal for studying this question, as volumetric correlations between corresponding brain regions that are under genetic control should be higher in monozygotic twins (MZ) who share 100% of their genes when compared to dizygotic twins (DZ) who share half their genes on average. When these substructure volumes are quantified using tensor-based morphometry, improved registration can be defined based on which method gives higher MZ twin correlations when compared to DZs, as registration errors tend to deplete these correlations. In a study of 92 subjects, higher effect sizes were found in cumulative distribution functions derived from statistical maps when performing tissue classification before fluid registration, versus fluidly registering the raw images. This gives empirical evidence in favor of pre-segmenting images for tensor-based morphometry.
机译:鲁棒和自动的非刚性配准取决于尚未进行系统探索的许多参数。在这里,我们确定了组织分类如何影响大脑MRI的非线性流体配准。双胞胎数据对于研究此问题是理想的,因为与拥有一半基因的同卵双胞胎(DZ)相比,拥有100%基因的单卵双胞胎(MZ)在受基因控制的相应大脑区域之间的体积相关性应该更高一般。当使用基于张量的形态计量学对这些子结构体积进行量化时,由于配准误差往往会耗尽这些相关性,因此可以基于哪种方法与DZ相比具有更高的MZ孪生相关性,来定义改进的配准。在对92位受试者的研究中,与流体配准原始图像相比,在流体配准之前进行组织分类时,从统计图得出的累积分布函数中发现了更高的效应量。这为基于张量的形态计量学的预分段图像提供了经验证据。

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