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A Pervasive Approach to EEG-Based Depression Detection

机译:基于EEG的抑郁检测的普遍方法

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Nowadays, depression is the world’s major health concern and economic burden worldwide. However, due to the limitations of current methods for depression diagnosis, a pervasive and objective approach is essential. In the present study, a psychophysiological database, containing 213 (92 depressed patients and 121 normal controls) subjects, was constructed. The electroencephalogram (EEG) signals of all participants under resting state and sound stimulation were collected using a pervasive prefrontal-lobe three-electrode EEG system at Fp1, Fp2, and Fpz electrode sites. After denoising using the Finite Impulse Response filter combining the Kalman derivation formula, Discrete Wavelet Transformation, and an Adaptive Predictor Filter, a total of 270 linear and nonlinear features were extracted. Then, the minimal-redundancy-maximal-relevance feature selection technique reduced the dimensionality of the feature space. Four classification methods (Support Vector Machine, K-Nearest Neighbor, Classification Trees, and Artificial Neural Network) distinguished the depressed participants from normal controls. The classifiers’ performances were evaluated using 10-fold cross-validation. The results showed that K-Nearest Neighbor (KNN) had the highest accuracy of 79.27%. The result also suggested that the absolute power of the theta wave might be a valid characteristic for discriminating depression. This study proves the feasibility of a pervasive three-electrode EEG acquisition system for depression diagnosis.
机译:如今,抑郁症是全球主要的健康问题,也是世界范围内的经济负担。然而,由于当前抑郁症诊断方法的局限性,所以必须采用一种普遍而客观的方法。在本研究中,建立了一个包含213名(92名抑郁症患者和121名正常对照)受试者的心理生理数据库。在Fp1,Fp2和Fpz电极位点使用普及的前额叶三电极EEG系统收集静息状态和声音刺激下所有参与者的脑电图(EEG)信号。在将有限脉冲响应滤波器与卡尔曼推导公式,离散小波变换和自适应预测器滤波器相结合进行去噪后,共提取了270个线性和非线性特征。然后,最小冗余最大关联特征选择技术降低了特征空间的维数。四种分类方法(支持向量机,K最近邻,分类树和人工神经网络)将沮丧的参与者与正常对照区分开。使用10倍交叉验证对分类器的效果进行评估。结果表明,K最近邻(K-Nearest Neighbor,KNN)的最高精度为79.27%。结果还表明,θ波的绝对功率可能是区分凹陷的有效特征。这项研究证明了普及的三电极脑电图采集系统在抑郁症诊断中的可行性。

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