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A Projection Pursuit Algorithm to Classify Individuals Using fMRI Data: Application to Schizophrenia

机译:使用fMRI数据对个体进行分类的投影寻踪算法:在精神分裂症中的应用

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摘要

Schizophrenia is diagnosed based largely upon behavioral symptoms. Currently no quantitative, biologically based diagnostic technique has yet been developed to identify patients with schizophrenia. Classification of individuals into patient with schizophrenia and healthy control groups based on quantitative biologically-based data is of great interest to support and refine psychiatric diagnoses. We applied a novel projection pursuit technique on various components obtained with independent component analysis (ICA) of 70 subjects’ fMRI activation maps obtained during an auditory oddball task. The validity of the technique was tested with a leave-one-out method and the detection performance varied between 80% and 90%. The findings suggest that the proposed data reduction algorithm is effective in classifying individuals into schizophrenia and healthy control groups and may eventually prove useful as a diagnostic tool.
机译:精神分裂症的诊断主要基于行为症状。目前,尚未开发出基于生物学的定量诊断技术来鉴定患有精神分裂症的患者。根据基于生物学的定量数据将患者分为精神分裂症患者和健康对照组,对支持和完善精神病学诊断非常感兴趣。我们对通过听觉奇异球任务获得的70个受试者的fMRI激活图的独立成分分析(ICA)获得的各个成分应用了一种新颖的投影追踪技术。该技术的有效性用留一法进行了测试,检测性能在80%至90%之间变化。这些发现表明,所提出的数据减少算法可有效地将个人分为精神分裂症和健康对照组,并且最终可能被证明是有用的诊断工具。

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