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A feature-based fusion method for making group inference in epileptic fMRI and DTI using canonical correlation analysis

机译:一种基于特征的融合方法,用于使用规范相关分析制作癫痫菌和DTI中的群推论

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In recent years, there have been a great interest for combined analysis of functional magnetic resonance imaging (fMRI) and structural MRI (sMRI) data, because they present complementary information of different tissue types. Canonical correlation analysis (CCA) is a simple data fusion scheme to evaluate brain connectivity. We specify the versatility of CCA to extract features of resting state fMRI and Diffusion Tensor Imaging (DTI). The most informative features, ALFF and FA, are extracted from datasets of epilepsy and healthy subjects. CCA has been successfully utilized for joint data analysis such as combined analysis of EEG and fMRI of a single subject. In the current work, we present a new technique for combination of two modalities across subjects and back reconstruction of components for each group and each subject. Our results indicate that temporal gyrus, cuneus, posterior cingulate cortex and cingulate gyrus are highly correlated with white matter integrity between two hemispheres (corpus callosum) and cerebro-spinal fluid. In addition, there are significant changes in the thalamus that shows extensive damages in this brain structure.
机译:近年来,对功能磁共振成像(FMRI)和结构MRI(SMRI)数据的组合分析有很大的兴趣,因为它们存在不同组织类型的互补信息。规范相关性分析(CCA)是一种评估脑连接的简单数据融合方案。我们指定了CCA的多功能性,以提取休息状态FMRI和扩散张量成像(DTI)的特征。最具信息丰富的功能,ALFF和FA,从癫痫和健康受试者的数据集中提取。 CCA已成功用于联合数据分析,例如单个主题的EEG和FMRI的组合分析。在当前的工作中,我们介绍了一种新的技术,用于两种跨对象的两种模式的组合和每个组和每个主题的组件的重建。我们的结果表明,颞克鲁斯,曲腔,后铰接皮质和铰接回物与两个半球(胼callosum)和脊髓液之间的白质完整性高度相关。此外,丘脑的显着变化显示在这种大脑结构中具有广泛的损害。

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