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使用新的混合分解和深度学习技术从 EEG 信号中检测 ADHD。

Detection of ADHD from EEG signals using new hybrid decomposition and deep learning techniques.

机构信息

Department of Biomedical Engineering, Erciyes University, Kayseri, Türkiye.

出版信息

J Neural Eng. 2023 Jun 5;20(3). doi: 10.1088/1741-2552/acc902.

Abstract

Attention deficit hyperactivity disorder (ADHD) is considered one of the most common psychiatric disorders in childhood. The incidence of this disease in the community draws an increasing graph from the past to the present. While the ADHD diagnosis is basically made with the psychiatric tests, there is no active clinically used objective diagnostic tool. However, some studies in the literature has reported development of an objective diagnostic tool that facilitates the diagnosis of ADHD.In this study, it was aimed to develop an objective diagnostic tool for ADHD using electroencephalography (EEG) signals. In the proposed method, EEG signals were decomposed into subbands by robust local mode decomposition and variational mode decomposition techniques. These subbands and the EEG signals were fed as input data to the deep learning algorithm designed in the study.As a result, an algorithm has been put forward that distinguishes over 95% of ADHD and healthy individuals through using a 19-channel EEG signal. In addition, a classification accuracy of over 87% was obtained by the proposed approach of EEG signal decomposition followed by data processing in the designed deep learning algorithm.The findings of the current research enrich the literature based on originality and proposed method can be used as a clinical diagnostic tool in the near future.

摘要

注意缺陷多动障碍(ADHD)被认为是儿童期最常见的精神障碍之一。该疾病在社区中的发病率从过去到现在呈上升趋势。虽然 ADHD 的诊断主要是通过精神科测试做出的,但目前还没有积极应用于临床的客观诊断工具。然而,文献中的一些研究报告了开发客观诊断工具以促进 ADHD 诊断的进展。在这项研究中,旨在使用脑电图(EEG)信号开发 ADHD 的客观诊断工具。在提出的方法中,使用鲁棒局部模态分解和变分模态分解技术将 EEG 信号分解为子带。这些子带和 EEG 信号被作为输入数据提供给研究中设计的深度学习算法。结果,提出了一种算法,该算法使用 19 通道 EEG 信号可区分超过 95%的 ADHD 患者和健康个体。此外,通过提出的 EEG 信号分解方法和设计的深度学习算法中的数据处理,该方法获得了超过 87%的分类准确率。本研究的发现基于创新性丰富了文献,所提出的方法有望在不久的将来用作临床诊断工具。

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