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A connectivity difference measure for identification of functional neuroimaging markers for epilepsy

机译:用于识别癫痫功能性神经影像标记物的连通性差异量度

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Identification of functional brain connectivity differences induced by certain neurological disorders from resting state functional MRI (rfMRI) is generally considered a difficult task. This challenging task requires the identification of discriminative neuroimaging markers. In this paper, we propose a two-stage algorithm to identify functional connectivity differences that can discriminate epileptic patients and healthy subjects. In the first stage, we determine the functional connectivity matrix between brain cortical regions for identification of potentially discriminative neuroimaging markers using a novel affinity propagation clustering method. Next, we propose a difference statistic to select the most discriminative connections between the cortical regions. Using selected connections and a support vector machine classifier, we achieve classification accuracy of 81.33% on unseen dataset. The results demonstrate that the proposed algorithm is capable of determining functional connections between brain regions which aid in discrimination of epileptic patients versus healthy subjects.
机译:从静息状态功能性MRI(rfMRI)识别某些神经系统疾病引起的功能性大脑连通性差异通常被认为是一项艰巨的任务。这项艰巨的任务需要识别可辨别的神经影像标记。在本文中,我们提出了一种两阶段算法来识别可以区分癫痫患者和健康受试者的功能连接差异。在第一阶段,我们使用新型亲和力传播聚类方法确定大脑皮层区域之间的功能连接矩阵,以识别潜在的歧视性神经影像标记。接下来,我们提出一种差异统计量,以选择皮质区域之间最有区别的联系。使用选定的连接和支持向量机分类器,我们在看不见的数据集上实现了81.33%的分类精度。结果表明,所提出的算法能够确定大脑区域之间的功能连接,从而有助于区分癫痫患者与健康受试者。

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