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Deep LSTM Recurrent Neural Network for Anxiety Classification from EEG in Adolescents with Autism

机译:深层LSTM自闭症中青少年脑电图焦虑分类的焦虑分类

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Anxiety is common in youth with autism spectrum disorder (ASD), causing unique lifelong challenges that severely limit everyday opportunities and reduce quality of life. Given the detrimental consequences and long-term effects of pervasive anxiety for childhood development and the covert nature of mental states, brain-computer interfaces (BCIs) represent a promising method to identify maladaptive states and allow for individualized and real-time mitigatory action to alleviate anxiety. Here we investigated the effects of slow paced breathing entrainment during stress induction on the perceived levels of anxiety in neurotypical adolescents and adolescents with autism, and propose a multi-class long short-term recurrent neural net (LSTM RNN) deep learning classifier capable of identifying anxious states from ongoing electroencephalogra-phy (EEG) signals. The deep learning classifier used was able to discriminate between anxious and non-anxious classes with an accuracy of 90.82% and yielded an average accuracy of 93.27% across all classes. Our study is the first to successfully apply an LSTM RNN classifier to identify anxious states from EEG. This LSTM RNN classifier holds promise for the development of neuroadaptive systems and individualized intervention methods capable of detecting and alleviating anxious states in both neurotypical adolescents and adolescents with autism.
机译:青春患有自闭症谱紊乱(ASD)的焦虑,造成独特的终身挑战,严重限制日常机会并降低生活质量。鉴于童年发展的普遍焦虑和精神状态的隐蔽性质的不利影响和长期影响,脑 - 计算机接口(BCIS)代表了识别适当的态度并允许个性化和实时缓解行动来缓解的有希望的方法焦虑。在这里,我们调查了缓慢呼吸夹带期间的慢性呼吸诱导对患者的焦虑症和患有自闭症的青少年水平的影响,提出了一种能够识别的多级长期短期复发性神经网络(LSTM RNN)深度学习分类器从持续的闪电手机(EEG)信号中焦虑的状态。所使用的深度学习分类器能够在焦虑和非焦点课程之间歧视,精度为90.82%,并在所有课程中产生93.27%的平均准确性。我们的研究是第一个成功应用LSTM RNN分类器,以识别eeg的焦虑状态。该LSTM RNN分类器具有能够开发神经直视系统和个性化干预方法,能够检测和缓解神经型青少年和患有自闭症的青少年的焦虑状态。

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