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首页> 外文期刊>Psychiatry Research. Neuroimaging >Investigating brain structural patterns in first episode psychosis and schizophrenia using MRI and a machine learning approach
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Investigating brain structural patterns in first episode psychosis and schizophrenia using MRI and a machine learning approach

机译:使用MRI和机器学习方法调查第一集精神病和精神分裂症的脑结构模式

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In this study, we employed the Maximum Uncertainty Linear Discriminant Analysis (MLDA) to investigate whether the structural brain patterns in first episode psychosis (FEP) patients would be more similar to patients with chronic schizophrenia (SCZ) or healthy controls (HC), from a schizophrenia model perspective. Brain regions volumetric data were estimated by using MRI images of SCZ and FEP patients and HC. First, we evaluated the MLDA performance in discriminating SCZ from controls, which provided a score based on a model for changes in brain structure in SCZ. In the following, we compared the volumetric patterns of FEP patients with patterns of SCZ and healthy controls using these scores. The FEP group had a score distribution more similar to patients with schizophrenia (p-value = .461; Cohen's d = -.15) in comparison with healthy subjects (p-value = .003; Cohen's d = .62). Structures related to the limbic system and the circuitry involved in goal-directed behaviours were the most discriminant regions. There is a distinct pattern of volumetric changes in patients with schizophrenia in contrast to healthy controls, and this pattern seem to be detectable already in FEP.
机译:在这项研究中,我们采用了最大的不确定性线性判别分析(MLDA)来调查第一次发作精神病(FEP)患者的结构性脑模式是否与慢性精神分裂症(SCZ)或健康对照(HC)的患者更类似于精神分裂症模型的观点。通过使用SCZ和FEP患者和HC的MRI图像估计脑区域体积数据。首先,我们在鉴别控制中评估了MLDA性能,这提供了基于SCZ中脑结构变化模型的分数。在下文中,我们将FEP患者的体积模式与使用这些分数进行了比较了SCZ和健康控制的模式。与健康受试者相比,FEP组与精神分裂症患者(P值= .461; COHEN的D = -.15)进行了比得分分布更相似(P值= .003; COHEN的D = .62)。与肢体系统相关的结构和涉及目标定向行为的电路是最判别的区域。与健康对照相比,精神分裂症患者的体积变化有明显的体积变化模式,这种模式似乎已经在FEP中可检测到。

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