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Data Driven Analysis of Functional Brain Networks in fMRI for Schizophrenia Investigation

机译:功能性磁共振成像功能性脑网络的数据驱动分析,用于精神分裂症调查

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The purpose of this article is to present a methodology to identify the sources of activity in brain networks from functional magnetic resonance imaging (fMRI) data using the multiset canonical correlation analysis algorithm. The aim is to lay the foundations for a screening marker to be used as indicator of mental diseases. Group analysis blind source separation methods have proved reliable to extract the latent sources underlying the brain activities but currently there is no recognized biomarker for mental disorders. Recent studies have identified alterations in the so called default mode network (DMN) that are common to several neuropsychiatric disorders, including schizophrenia. In particular, here we account for the hypothesis that the alterations in the DMN activity can be effectively highlighted by analyzing the transient states between two different tasks. A set of fMRI data acquired from 18 subjects performing working memory tasks is investigated for such purpose. Subjects are patients affected by schizophrenia for one half and healthy control subjects for the other. Under these conditions, the proposed methodology provides high discrimination performances in terms of classification error, thereby providing promising results for a preliminary tool able to monitor the disease state or to perform a prescreening for patients at risk for schizophrenia.
机译:本文的目的是提供一种使用多集规范相关分析算法从功能性磁共振成像(fMRI)数据中识别大脑网络中活动来源的方法。目的是为筛选标记物用作精神疾病的指示物奠定基础。团体分析的盲源分离方法已被证明可以可靠地提取脑活动潜在的潜源,但目前尚无公认的精神障碍生物标志物。最近的研究已经确定了所谓的默认模式网络(DMN)的改变,这种改变是包括精神分裂症在内的几种神经精神疾病所共有的。特别是,在这里,我们解释了以下假设:通过分析两个不同任务之间的过渡状态,可以有效地突出显示DMN活动中的变化。为此目的,研究人员从执行工作记忆任务的18位受试者中获取了一组fMRI数据。受试者是受精神分裂症影响的患者的一半,健康对照受试者的另一半。在这种情况下,所提出的方法在分类错误方面具有很高的判别性能,从而为能够监测疾病状态或对精神分裂症高危患者进行预筛查的初步工具提供了可喜的结果。

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