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首页> 外文期刊>Magnetic resonance imaging: An International journal of basic research and clinical applications >A unified framework for mapping individual interregional high-order morphological connectivity based on regional cortical features from anatomical MRI
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A unified framework for mapping individual interregional high-order morphological connectivity based on regional cortical features from anatomical MRI

机译:基于解剖MRI的区域皮质特征,绘制各个区域间高阶形态连通性的统一框架

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摘要

Building individual brain networks form the single volume of anatomical MRI is a challenging task. Furthermore, the high-order connectivity of morphological networks remains unexplored. This paper aimed to investigate the individual high-order morphological connectivity from anatomical MRI. Towards this goal, a unified framework based on six feature distances (euclidean, seuclidean, mahalanobis, cityblock, minkowski, and chebychev) was proposed to derive high-order interregional morphological features. The test-retest datasets and the healthy aging datasets were applied to analyze the reliability and the inter-subject variability of the novel features. In addition, the predictive models based on these novel features were established for age estimation. The proposed six neuroanatomical features exhibited significant high-to-excellent reliability. Certain connections were significantly correlated to biological age based on the six novel metrics (p < .05, FDR corrected). Moreover, the predicted age were significantly correlated to the original age in each regression task (r > 0.5, p < 10(-6)). The results suggested that the novel high-order metrics were reliable and could reflect individual differences, which could be beneficial for current methods of individual brain connectomes.
机译:构建单个脑网络形成单一体积的解剖MRI是一个具有挑战性的任务。此外,形态网络的高阶连接仍未开发。本文旨在研究解剖MRI的个体高阶形态连接。为了实现这一目标,提出了一个统一的框架,基于六个特征距离(欧几里德,Seuclidean,Mahalanobis,CityBlock,Minkowski和Chebychev)来得出高阶区域间形态特征。测试重新测试数据集和健康的老化数据集应用于分析新颖特征的可靠性和对象间变异性。此外,建立了基于这些新功能的预测模型进行年龄估计。提出的六种神经杀菌特征表现出显着的高度高度可靠性。某些联系与基于六个新型度量的生物年龄有显着相关(P <.05,FDR校正)。此外,预测的年龄与每个回归任务中的原始年龄有显着相关(R> 0.5,P <10(-6))。结果表明,新颖的高阶指标是可靠的,可以反映各个差异,这可能对各个脑Connectomes的目前方法有益。

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