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Classification of ADHD patients on the basis of independent ERP components using a machine learning system

机译:使用机器学习系统基于独立的ERP组件对ADHD患者进行分类

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Background In the context of sensory and cognitive-processing deficits in ADHD patients, there is considerable evidence of altered event related potentials (ERP). Most of the studies, however, were done on ADHD children. Using the independent component analysis (ICA) method, ERPs can be decomposed into functionally different components. Using the classification method of support vector machine, this study investigated whether features of independent ERP components can be used for discrimination of ADHD adults from healthy subjects. Methods Two groups of age- and sex-matched adults (74 ADHD , 74 controls) performed a visual two stimulus GO/NOGO task. ERP responses were decomposed into independent components by means of ICA. A feature selection algorithm defined a set of independent component features which was entered into a support vector machine. Results The feature set consisted of five latency measures in specific time windows, which were collected from four different independent components. The independent components involved were a novelty component, a sensory related and two executive function related components. Using a 10-fold cross-validation approach, classification accuracy was 92%. Conclusions This study was a first attempt to classify ADHD adults by means of support vector machine which indicates that classification by means of non-linear methods is feasible in the context of clinical groups. Further, independent ERP components have been shown to provide features that can be used for characterizing clinical populations.
机译:背景技术在多动症患者的感觉和认知加工缺陷的背景下,有相当多的证据表明事件相关电位(ERP)发生了改变。然而,大多数研究是针对多动症儿童进行的。使用独立组件分析(ICA)方法,ERP可以分解为功能上不同的组件。使用支持向量机的分类方法,本研究调查了独立ERP组件的特征是否可用于区分ADHD成人与健康受试者。方法两组年龄和性别相匹配的成年人(74名ADHD,74名对照)执行了视觉上的两个刺激GO / NOGO任务。 ERP响应通过ICA分解为独立的组件。特征选择算法定义了一组独立的组件特征,这些特征被输入到支持向量机中。结果该功能集由特定时间窗口中的五个延迟度量组成,这些度量是从四个不同的独立组件中收集的。涉及的独立成分是新颖性成分,感觉相关成分和两个执行功能相关成分。使用10倍交叉验证方法,分类准确性为92%。结论本研究是通过支持向量机对ADHD成人进行分类的首次尝试,该研究表明通过非线性方法进行分类在临床人群中是可行的。此外,已显示独立的ERP组件提供了可用于表征临床人群的功能。

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