论文标题

通过联合定向无环估计模型检测精神分裂症中异常连通性

Detecting abnormal connectivity in schizophrenia via a joint directed acyclic graph estimation model

论文作者

Zhang, Gemeng, Zhang, Aiying, Cai, Biao, Tu, Zhuozhuo, Calhoun, Vince D., Wang, Yu-Ping

论文摘要

功能连通性(FC)已被广泛用于研究个人认知和行为的基础的大脑网络相互作用。 FC通常定义为大脑区域之间的相关性或部分相关性。尽管FC被证明是了解大脑组织的一个很好的起点,但它未能说明因果关系或相互作用的方向。使用功能性磁共振成像(fMRI)数据来研究许多基于无环图(DAG)的方法,以研究定向相互作用,但性能受到较小的样本量和高维度的严重限制,从而阻碍了其应用。为了克服障碍,我们提出了一个基于得分的关节定向无环模型,以估计fMRI数据中的定向FC。 DAG的结构没有使用组合优化框架,而是用代数方程来表征,并以稀疏性和组相似性项进一步正规化。模拟结果证明了与其他现有方法相比,所提出模型检测因果关系的准确性提高了。在我们对思维临床成像联盟(MCIC)数据的病例对照研究中,我们成功地确定了精神分裂症(SZ)患者中的功能整合,中断的集线器结构和特征边缘(CTE)。定向FC和非导向FC的结果之间的进一步比较说明了它们对选定特征的不同强调。我们推测,将来自无向图形模型和有向图形模型的特征结合起来可能是进行FC分析的一种有希望的方法。

Functional connectivity (FC) has been widely used to study brain network interactions underlying the emerging cognition and behavior of an individual. FC is usually defined as the correlation or partial correlation between brain regions. Although FC is proved to be a good starting point to understand the brain organization, it fails to tell the causal relationship or the direction of interactions. Many directed acyclic graph (DAG) based methods were applied to study the directed interactions using functional magnetic resonance imaging (fMRI) data but the performance was severely limited by the small sample size and high dimensionality, hindering its applications. To overcome the obstacles, we propose a score based joint directed acyclic graph model to estimate the directed FC in fMRI data. Instead of using a combinatorial optimization framework, the structure of DAG is characterized with an algebra equation and further regularized with sparsity and group similarity terms. The simulation results have demonstrated the improved accuracy of the proposed model in detecting causality as compared to other existing methods. In our case-control study of the MIND Clinical Imaging Consortium (MCIC) data, we have successfully identified decreased functional integration, disrupted hub structures and characteristic edges (CtEs) in schizophrenia (SZ) patients. Further comparison between the results from directed FC and undirected FC illustrated the their different emphasis on selected features. We speculate that combining the features from undirected graphical model and directed graphical model might be a promising way to do FC analysis.

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