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FUNCTIONAL CONNECTIVITY ANALYSIS FOR THALASSEMIA DISEASE BASED ON A GRAPHICAL LASSO MODEL

机译:基于图形套索模型的丘代血症疾病功能连通性分析

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Thalassemia is a congenital disorder of hemoglobin synthesis which can lead to thromboembolic events and stroke in the brain. In this work we propose to use a functional connectivity model to discriminate between control and diseased subjects. Our connectivity measure is based on functional magnetic resonance imaging, and hence common variations of the blood oxygenation level in spatially distant areas. Analyzing this connectivity could highlight abnormal neuronal activation and provide us with a descriptor (bio-marker) of the disease. To estimate the connectivity, we propose a robust learning scheme based on the graphical lasso model, whose hyperparameter is validated within a cross-validation scheme. To analyze model fit, we transfer the mean connectivity from the control group to the thalassemic patient group. Our null hypothesis is that the model learned on control subjects is perfectly adequate (in the maximum likelihood sense) to describe the patients. The results of the permutation test suggest that the some patients with thalassemia do not have the same connectivity structure as the control.
机译:地中海贫血是一种先天性血红蛋白合成障碍,可导致血栓栓塞事件和脑卒中在大脑中。在这项工作中,我们建议使用功能连接模型来区分控制和患病的受试者。我们的连接度量基于功能性磁共振成像,因此在空间远处区域中血氧氧化水平的常见变化。分析这种连接可以突出显示异常神经元激活并向我们提供疾病的描述符(生物标记)。为了估算连接,我们提出了一种基于图形套索模型的鲁棒学习方案,其超代验证在交叉验证方案中验证。为了分析模型适合,我们将平均连接从对照组转移到丘脑患者组。我们的零假设是对控制主体的模型是完全充分的(在最大似然感)上描述患者。排列试验的结果表明,一些患有的患有炎症的患者与控制没有相同的连接结构。

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