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Evaluation of feature extraction techniques on event-related potentials for detection of attention-deficit/hyperactivity disorder

机译:评估事件相关电位特征提取技术以检测注意缺陷/多动障碍

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Event-related potentials (ERPs) are one of the most informative and dynamic methods of monitoring cognitive processes, which are widely used in clinical research to deal a variety of psychiatric and neurological disorders as attention-deficit/hyperactivity disorder (ADHD). This work proposes an extraction and selection methodology for discriminating between normal and pathological patients with ADHD by using ERPs. Three different sets of features (morphological, wavelets, and nonlinear based) are analyzed, looking for the best classification accuracy. The results show that the wavelet features provided a good discriminative capability, but it improved by combining all the set of features and applying a feature selection algorithm, reaching a maximum accuracy rate of 91.3%.
机译:事件相关电位(ERP)是监测认知过程的最有用和最动态的方法之一,已广泛用于临床研究中,以治疗多种精神病和神经病,例如注意力缺陷/多动症(ADHD)。这项工作提出了一种提取和选择方法,通过使用ERP来区分正常和病理性ADHD患者。分析了三组不同的特征(基于形态,小波和非线性),以寻求最佳的分类精度。结果表明,小波特征具有良好的判别能力,但通过结合所有特征集并应用特征选择算法进行了改进,达到了91.3%的最大准确率。

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