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Effects of non-linear correlation measures on brain functional connectivity in Parkinson’s disease

机译:非线性相关测量对帕金森氏病脑功能连通性的影响

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Parkinson's disease (PD) is one of the most prevalent and growing disorders. The most reason for this disease is the abnormalities in brain functional organization of PD patients. Functional magnetic resonance imaging in the resting state (rs-fMRI) is a useful technique to assess brain dysfunctions in patients. The objective of our research is to generate the closest model of complex brain network by different approaches. Hence we constructed the brain graphs employing one linear and three non-linear correlation metrics in order to investigate complicated relations among signals. The local and global metrics of the produced correlation matrices were extracted utilizing graph theory. Evaluating centralization, a global metric, exhibited a decrease in PD patients compared with healthy controls. In addition, we investigated significant changes of nodal degree in patients. The achieved results on graph measures implied alterations of brain functional connectivity. To conclude, we disclosed new findings in brain functional networks of PD patients by non-linear correlation measures.
机译:帕金森氏病(PD)是最普遍和发展中的疾病之一。造成这种疾病的最主要原因是PD患者的脑功能组织异常。静止状态下的功能磁共振成像(rs-fMRI)是评估患者脑功能障碍的有用技术。我们研究的目的是通过不同的方法生成最接近的复杂大脑网络模型。因此,为了研究信号之间的复杂关系,我们构造了使用一个线性和三个非线性相关度量的脑图。利用图论提取产生的相关矩阵的局部和全局度量。评价集中度是一项全球指标,与健康对照组相比,PD患者减少了。此外,我们调查了患者淋巴结度的显着变化。在图形测量上获得的结果暗示了大脑功能连接性的改变。总而言之,我们通过非线性相关度量揭示了PD患者脑功能网络中的新发现。

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