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神经认知模式分析揭示了精神分裂症注意力缺陷的分类层次结构。

Neurocognitive pattern analysis reveals classificatory hierarchy of attention deficits in schizophrenia.

作者信息

Shen Christina, Popescu Florin C, Hahn Eric, Ta Tam T M, Dettling Michael, Neuhaus Andres H

机构信息

Department of Psychiatry and Psychotherapy, Charité University Medicine, Berlin, Germany;

Fraunhofer Institute for Open Communication Systems FOKUS, Berlin, Germany.

出版信息

Schizophr Bull. 2014 Jul;40(4):878-85. doi: 10.1093/schbul/sbt107. Epub 2013 Aug 10.

Abstract

Attention deficits, among other cognitive deficits, are frequently observed in schizophrenia. Although valid and reliable neurocognitive tasks have been established to assess attention deficits in schizophrenia, the hierarchical value of those tests as diagnostic discriminants on a single-subject level remains unclear. Thus, much research is devoted to attention deficits that are unlikely to be translated into clinical practice. On the other hand, a clear hierarchy of attention deficits in schizophrenia could considerably aid diagnostic decisions and may prove beneficial for longitudinal monitoring of therapeutic advances. To propose a diagnostic hierarchy of attention deficits in schizophrenia, we investigated several facets of attention in 86 schizophrenia patients and 86 healthy controls using a set of established attention tests. We applied state-of-the-art machine learning algorithms to determine attentive test variables that enable an automated differentiation between schizophrenia patients and healthy controls. After feature preranking, hypothesis building, and hypothesis validation, the polynomial support vector machine classifier achieved a classification accuracy of 90.70% ± 2.9% using psychomotor speed and 3 different attention parameters derived from sustained and divided attention tasks. Our study proposes, to the best of our knowledge, the first hierarchy of attention deficits in schizophrenia by identifying the most discriminative attention parameters among a variety of attention deficits found in schizophrenia patients. Our results offer a starting point for hierarchy building of schizophrenia-associated attention deficits and contribute to translating these concepts into diagnostic and therapeutic practice on a single-subject level.

摘要

除其他认知缺陷外,注意力缺陷在精神分裂症中也很常见。尽管已经建立了有效且可靠的神经认知任务来评估精神分裂症中的注意力缺陷,但这些测试在单一个体水平上作为诊断判别指标的分层价值仍不明确。因此,许多研究致力于不太可能转化为临床实践的注意力缺陷。另一方面,精神分裂症中注意力缺陷的清晰分层可以极大地帮助诊断决策,并可能证明对治疗进展的纵向监测有益。为了提出精神分裂症中注意力缺陷的诊断分层,我们使用一组既定的注意力测试,对86名精神分裂症患者和86名健康对照者的注意力的几个方面进行了研究。我们应用了最先进的机器学习算法来确定能够自动区分精神分裂症患者和健康对照者的注意力测试变量。经过特征预排序、假设构建和假设验证,多项式支持向量机分类器使用心理运动速度和从持续注意力和分散注意力任务中得出的3个不同注意力参数,实现了90.70%±2.9%的分类准确率。据我们所知,我们的研究通过在精神分裂症患者中发现的各种注意力缺陷中识别出最具判别力的注意力参数,首次提出了精神分裂症中注意力缺陷的分层。我们的结果为精神分裂症相关注意力缺陷的分层构建提供了一个起点,并有助于将这些概念转化为单一个体水平上的诊断和治疗实践。

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Attention and masking in schizophrenia.精神分裂症中的注意和掩蔽。
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