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Morphometric connectivity analysis to distinguish normal, mild cognitive impaired, and Alzheimer subjects based on brain MRI

机译:不同的连接分析,以区分正常,轻度认知障碍和基于脑MRI的阿尔茨海默受试者

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This work investigates a novel way of looking at the regions in the brain and their relationship as possible markers to classify normal control (NC), mild cognitive impaired (MCI), and Alzheimer Disease (AD) subjects. MRI scans from a subset of 101 subjects from the ADNI study at baseline was used for this study. 40 regions in the brain including hippocampus, amygdala, thalamus, white, and gray matter were segmented using FreeSurfer. From this data, we calculated the distance between the center of mass of each region, the normalized number of voxels and the percentage volume and surface connectivity shared between the regions. These markers were used for classification using a linear discriminant analysis in a leave-one-out manner. We found that the percentage of surface and volume connectivity between regions gave a significant classification between NC and AD and borderline significant between MCI and AD even after correction for whole brain volume at baseline. The results show that the morphometric connectivity markers include more information than whole brain volume or distance markers. This suggests that one can gain additional information by combining morphometric connectivity markers with traditional volume and shape markers.
机译:这项工作调查了一种新颖的方式来看待大脑中的地区及其与可能标志物的关系,以分类正常对照(NC),轻度认知受损(MCI)和阿尔茨海默病(AD)受试者。来自基线ADNI研究的101个受试者的MRI扫描用于本研究。使用FreeSurfer分段,在包括海马,杏仁菌,丘疹,白色和灰质等大脑中的40个区域。根据该数据,我们计算了每个区域的质心,归一化的体素数和区域之间的百分比和表面连接之间的距离。这些标记用于使用线性判别分析以休假方式进行分类。我们发现,即使在基线的全脑体积校正后,地区之间的地面和广告和广告和广域之间的界面和边界之间显着分类也有显着分类。结果表明,情况下包括比整个脑体积或距离标记更多的信息。这表明可以通过将不同的连接标记与传统体积和形状标记组合来获得其他信息。

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