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Multivariate Analysis of Structural and Functional Neuroimaging Can Inform Psychiatric Differential Diagnosis

机译:结构和功能神经元的多变量分析可以为精神鉴别诊断提供信息

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摘要

Traditional psychiatric diagnosis has been overly reliant on either self-reported measures (introspection) or clinical rating scales (interviews). This produced the so-called explanatory gap with the bio-medical disciplines, such as neuroscience, which are supposed to deliver biological explanations of disease. In that context the neuro-biological and clinical assessment in psychiatry remained discrepant and incommensurable under conventional statistical frameworks. The emerging field of translational neuroimaging attempted to bridge the explanatory gap by means of simultaneous application of clinical assessment tools and functional magnetic resonance imaging, which also turned out to be problematic when analyzed with standard statistical methods. In order to overcome this problem our group designed a novel machine learning technique, multivariate linear method (MLM) which can capture convergent data from voxel-based morphometry, functional resting state and task-related neuroimaging and the relevant clinical measures. In this paper we report results from convergent cross-validation of biological signatures of disease in a sample of patients with schizophrenia as compared to depression. Our model provides evidence that the combination of the neuroimaging and clinical data in MLM analysis can inform the differential diagnosis in terms of incremental validity.
机译:传统的精神诊断已经过度依赖于自我报告的措施(内省)或临床评级尺度(访谈)。这产生了与生物医学学科的所谓的解释性差距,例如神经科学,这些学科应该促进疾病的生物学解释。在这种情况下,在常规统计框架下,精神病学中的神经生物和临床评估保持差异和不堪一体。通过同时应用临床评估工具和功能磁共振成像试图弥合解释性差距,在用标准统计方法分析时,还在出现问题。为了克服这一问题,我们的小组设计了一种新型机器学习技术,多元线性方法(MLM),其可以捕获来自基于体素的形态学,功能静态状态和任务相关的神经影像和相关的临床措施的收敛数据。在本文中,我们在与抑郁症相比,在精神分裂症患者样本中递交疾病的生物签名的收敛交叉验证结果。我们的模型提供了证据表明,MLM分析中神经影像学和临床数据的组合可以在增量有效性方面通知差异诊断。

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