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Personalized Features for Attention Detection in Children with Attention Deficit Hyperactivity Disorder

机译:注意力缺陷多动障碍儿童注意力检测的个性化特征

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Measuring attention from electroencephalogram (EEG) has found applications in the treatment of Attention Deficit Hyperactivity Disorder (ADHD). It is of great interest to understand what features in EEG are most representative of attention. Intensive research has been done in the past and it has been proven that frequency band powers and their ratios are effective features in detecting attention. However, there are still unanswered questions, like, what features in EEG are most discriminative between attentive and non-attentive states? Are these features common among all subjects or are they subject-specific and must be optimized for each subject? Using Mutual Information (MI) to perform subject-specific feature selection on a large data set including 120 ADHD children, we found that besides theta beta ratio (TBR) which is commonly used in attention detection and neurofeedback, the relative beta power and theta/(alpha+beta) (TBAR) are also equally significant and informative for attention detection. Interestingly, we found that the relative theta power (which is also commonly used) may not have sufficient discriminative information itself (it is informative only for 3.26% of ADHD children). We have also demonstrated that although these features (relative beta power, TBR and TBAR) are the most important measures to detect attention on average, different subjects have different set of most discriminative features.
机译:测量来自脑电图(EEG)的注意力在治疗注意力缺陷多动障碍(ADHD)中发现了应用。了解EEG最具关注的特征是非常兴趣的。过去已经完成了密集研究,并已证明频段功率和其比率是检测注意力的有效特征。但是,仍然存在未答复的问题,如,脑电图和非关注状态之间的最具特征是最符合的?这些特征是所有科目中是否常见的特征,或者它们是否特定于主题,必须针对每个主题进行优化?在包括120个ADHD儿童的大型数据集上使用互信息(MI)执行特定于特定的特征选择,除了常用于注意检测和神经融合,相对测试动力和θ/ (Alpha + Beta)(TAB)也同样显着和注意力检测。有趣的是,我们发现,相对的Theta权力(也是常用的)可能没有充分的歧视信息本身(仅限于3.26%的ADHD儿童提供信息。我们还证明了虽然这些特征(相对Beta Power,TBR和TBar)是平均检测注意力的最重要措施,但不同的受试者具有不同的歧视特征。

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